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On the Characterization of Lifting Forces During the Rapid Compaction of Deformable Porous Media

机译:变形多孔介质快速压实过程中的升力特性研究

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摘要

In a recent paper, Wu et al. (2005, "Dynamic Compression of Highly Compressible Porous Medici With Application to Snow Compaction, " J. Fluid Mech., 542, pp. 281-304) developed a novel experimental and theoretical approach to investigate the dynamic lift forces generated in the rapid compression of highly compressible porous media, (e.g., snow layer), where a porous cylinder-piston apparatus was used to measure the pore air pressure generation and a consolidation theory was developed to capture the pore-pressure relaxation process. In the current study, we extend the approach of Wu et al. to various porous materials such as synthetic fibers. The previous experimental setup was completely redesigned, where an accelerometer and a displacement sensor were employed to capture the motion of the piston. The pore-pressure relaxation during the rapid compaction of the porous material was measured. The consolidation theory developed by Wu et al. was modified by introducing the damping effect from the solid phase of the porous materials. One uses Carman-Kozeny's relationship to describe the change in the permeability as a function of compression. By comparing the theoretical results with the experimental data, we evaluated the damping effect of the soft fibers, as well as that of the pore air pressure for two different porous materials, A and B. The experimental and theoretical approach presented herein has provided an important methodology in quantifying the contributions of different forces in the lift generation inside porous media and is an extension of the previous studies done by Wu et al.
机译:Wu等人在最近的一篇论文中。 (2005年,“高度可压缩的多孔Medici的动态压缩及其在积雪压实中的应用”,J。Fluid Mech。,542,第281-304页)开发了一种新颖的实验和理论方法来研究在快速压缩过程中产生的动态升力高度可压缩的多孔介质(例如雪层),其中使用多孔圆柱活塞设备测量孔隙气压的产生,并建立了固结理论来捕获孔隙压力的松弛过程。在当前的研究中,我们扩展了Wu等人的方法。各种多孔材料,例如合成纤维。之前的实验设置已完全重新设计,其中使用了加速度计和位移传感器来捕获活塞的运动。测量了在多孔材料的快速压实期间的孔隙压力松弛。 Wu等人发展的固结理论。通过引入来自多孔材料固相的阻尼效应来修改Pb。一个人使用卡曼-科泽尼(Carman-Kozeny)的关系来描述渗透率的变化与压缩的关系。通过将理论结果与实验数据进行比较,我们评估了软纤维的阻尼效果以及两种不同多孔材料A和B的孔隙气压的阻尼效果。本文介绍的实验和理论方法提供了重要的参考这种方法可以量化多孔介质内部提升过程中不同作用力的贡献,是对Wu等人先前研究的扩展。

著录项

  • 来源
    《Journal of Heat Transfer》 |2009年第10期|52-63|共12页
  • 作者单位

    Department of Mechanical Engineering and Cellular Biomechanics and Sports Science Laboratory, Villanova University, 800 Lancaster Avenue, Villanova, PA 19085;

    Cellular Biomechanics and Sports Science Laboratory, 800 Lancaster Avenue, Villanova, PA 19085 Division of Engineering, Penn State Berks, Reading, PA 19610;

    Department of Mechanical Engineering, Villanova University, 800 Lancaster Avenue, Villanova, PA 19085;

    Department of Mechanical Engineering and Cellular Biomechanics and Sports Science Laboratory, Villanova University, 800 Lancaster Avenue, Villanova, PA 19085;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    lift generation; porous media; permeability; compression; deformable;

    机译:提升一代多孔介质渗透性压缩;变形的;
  • 入库时间 2022-08-18 00:26:22

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