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Microscopic velocity field measurements inside a regular porous medium adjacent to a low Reynolds number channel flow

机译:常规多孔介质内的微观速度场测量与低雷诺数通道流相邻

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摘要

This study examines experimentally the hydrodynamic interaction between a regular porous medium and an adjacent free-flow channel at low Reynolds numbers (Re < 1). The porous medium consists of evenly spaced micro-structured rectangular pillars arranged in a uniform pattern, while the free-flow channel features a rectangular cross-sectional area. The overall arrangement comprises a polydimethylsiloxane microfluidic model where distilled water, doped with fluorescent particles, is the examined fluid. Using micro-particle image velocimetry, single-phase quantitative velocity measurements are carried out at the pore scale to reveal the microscopic characteristics of the flow for such a coupled system. Interfacial velocity-slip and stress-jump coefficients are also evaluated with a volume-averaging method based on the Beavers-Joseph and Ochoa-Tapia-Whitaker models, respectively. The results show that, from a microscopic point of view, parallel flow at the interface is not obtained due to the periodically generated U-shaped flow profile between the interface pillars. However, the interface coefficients show no sensitivity to moderate flow angles. The highly resolved experimental information obtained in this study can also be used for the validation of numerical models providing a unique dataset for free-flow and porous media coupled systems. Published under license by AIP Publishing.
机译:本研究检测实验常规多孔介质和低雷诺数(RE <1)的常规多孔介质和相邻自由流动通道之间的流体动力相互作用。多孔介质由以均匀图案布置的均匀间隔的微结构矩形柱组成,而自由流动通道具有矩形横截面积。整体布置包括聚二甲基硅氧烷微流体模型,其中掺杂有荧光颗粒的蒸馏水,是检测的流体。使用微粒子图像速度测量法,在孔刻度下进行单相定量速度测量,以揭示这种耦合系统的流动的微观特性。还通过基于海狸-Joseph和Ochoa-Tapia-Whitaker模型的体积平均法评估界面速度滑移和应力跳跃系数。结果表明,由于界面柱之间的周期性产生的U形流动轮廓,未获得界面处的并行流量。然而,界面系数没有对中等流动角度没有敏感性。本研究中获得的高度解决的实验信息也可用于验证提供自由流动和多孔介质耦合系统的唯一数据集的数值模型。通过AIP发布在许可证下发布。

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  • 来源
    《Physics of fluids》 |2019年第4期|共10页
  • 作者单位

    Univ Stuttgart Inst Aerosp Thermodynam ITLR D-70569 Stuttgart Germany;

    Eindhoven Univ Technol Multiscale Engn Fluid Dynam MEFD NL-5600 MB Eindhoven Netherlands;

    Univ Stuttgart Dept Hydromech &

    Modelling Hydrosyst IWS D-70569 Stuttgart Germany;

    Shanghai Jiao Tong Univ SJTU Inst Refrigerat &

    Cryogen Shanghai 200240 Peoples R China;

    Univ Stuttgart Inst Aerosp Thermodynam ITLR D-70569 Stuttgart Germany;

    Univ Stuttgart Dept Hydromech &

    Modelling Hydrosyst IWS D-70569 Stuttgart Germany;

    Univ Stuttgart Inst Aerosp Thermodynam ITLR D-70569 Stuttgart Germany;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 流体力学;
  • 关键词

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