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Understanding transport of an elastic, spherical particle through a confining channel

机译:了解弹性球形颗粒通过限制通道的传输

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摘要

The transport of soft particles through narrow channels or pores is ubiquitous in biological systems and industrial processes. On many occasions, the particles deform and temporarily block the channel, inducing a built-up pressure. This pressure buildup often has a profound effect on the behavior of the respective system; yet, it is difficult to be characterized. In this work, we establish a quantitative correlation between the built-up pressure and the material and geometry properties through experiments and mechanics analysis. We fabricate microgels with a controlled diameter and elastic modulus by microfluidics. We then force them to individually pass through a constrictive or straight confining channel and monitor the pressure variation across the channel. To interpret the pressure measurement, we develop an analytical model based on the Neo-Hookean material law to quantify the dependence of the maximum built-up pressure on the radius ratio of the elastic sphere to the channel, the elastic modulus of the sphere, and two constant parameters in the friction constitutive law between the sphere and the channel wall. This model not only agrees very well with the experimental measurement conducted at large microgel deformation but also recovers the classical theory of contact at small deformation. Featuring a balance between accuracy and simplicity, our result could shed light on understanding various biological and engineering processes involving the passage of elastic particles through narrow channels or pores.
机译:在生物系统和工业过程中,软颗粒通过狭窄通道或孔的运输是普遍存在的。在许多情况下,颗粒会变形并暂时阻塞通道,从而产生积聚的压力。这种压力累积通常会对相应系统的行为产生深远影响。然而,很难刻画。在这项工作中,我们通过实验和力学分析来建立积聚压力与材料和几何特性之间的定量关系。我们通过微流体技术来制造具有可控直径和弹性模量的微凝胶。然后,我们迫使它们分别通过狭窄或笔直的封闭通道,并监控通道上的压力变化。为了解释压力测量,我们基于新霍克材料定律开发了一个分析模型,以量化最大累积压力对弹性球体与通道的半径比,球体的弹性模量和球体与通道壁之间的摩擦本构律中的两个常数参数。该模型不仅与在较大的微凝胶变形下进行的实验测量非常吻合,而且还恢复了在较小的变形下接触的经典理论。在准确性与简单性之间取得平衡,我们的结果可以帮助我们理解各种生物和工程过程,其中包括弹性颗粒通过狭窄通道或小孔的通过。

著录项

  • 来源
    《Applied Physics Letters》 |2020年第10期|103705.1-103705.5|共5页
  • 作者单位

    Department of Mechanical Engineering The City College of New York New York New York 10031 USA;

    Advanced Science and Research Center The City University of New York New York New York 10031 USA;

    Thayer School of Engineering Dartmouth College Hanover New Hampshire 03755 USA;

    Department of Civil Architectural and Environmental Engineering Missouri University of Science and Technology Rolla Missouri 65409 USA;

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

  • 入库时间 2022-08-18 05:17:20

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