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Impact-activated solidification of cornstarch and water suspensions.

机译:玉米淀粉和水悬浮液的冲击活化固化。

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摘要

Liquids typically offer little resistance to impacting objects . Surprisingly, dense suspensions of liquids mixed with micron-sized particles can provide tremendous impact resistance, even though they appear liquid like when left at rest or perturbed lightly. The most well-known example is a dense mixture of cornstarch and water, which can easily provide enough impact resistance to allow a full-grown person to run across its surface. Previous studies have linked this so-called ``shear thickening'' to experiments carried out under steady state shear and attributed it to hydrodynamic interactions or granular dilation. However, neither of these explanations alone can account for the stress scales required to keep a running person above the free surface. This thesis investigates the mechanism for this impact resistance in dense suspensions. We begin by studying impact directly and watching a rod as it strikes the surface of a dense suspension of cornstarch and water. Using high-speed video and embedded force and acceleration sensing, we show that the rod motion leads to the rapid growth of a solid-like object below the impact site. With X-ray videography to see the dynamics of the suspension interior and laser sheet measurements of the surface profile, we show how this solid drags on the surrounding suspension, creating substantial peripheral flow and leading to the rapid extraction of the impactor's momentum. Suspecting that the solidification below the rod may be related to jamming of the particle sub-phase, we carry out 2D experiments with macroscopic disks to show how uniaxial compression of an initially unjammed system can lead to dynamic jamming fronts. In doing so, we show how these fronts are sensitive to the system's initial packing fraction relative to the point at which it jams and also discover that the widths of these fronts are related to a diverging correlation length. Finally, we take these results back to the suspension, where we perform careful, speed-controlled impact to probe the packing fraction dependence. The solidification we observe in these experiments is consistent with what we see in the 2D experiments, giving further support that the impact response of dense suspensions is caused by dynamic jamming fronts.
机译:液体通常对撞击物体几乎没有抵抗力。出乎意料的是,与微米级颗粒混合的稠密液体悬浮液可提供巨大的抗冲击性,即使它们像在静止或微扰时一样呈液体。最著名的例子是玉米淀粉和水的致密混合物,可以很容易地提供足够的抗冲击性,使一个成年的人可以在其表面上奔跑。先前的研究将这种所谓的``剪切增稠''与稳态剪切下进行的实验联系起来,并将其归因于流体动力相互作用或颗粒膨胀。然而,这些解释都不能单独说明使跑步者保持在自由表面上方所需的应力等级。本文研究了致密悬浮液中抗冲击性的机理。我们从直接研究冲击力开始,观察杆子撞击玉米淀粉和水的浓稠悬浮液的表面。使用高速视频以及嵌入的力和加速度感应,我们表明杆的运动导致撞击点下方的固体物体快速生长。通过X射线摄影,可以看到悬架内部的动力学和激光薄片对表面轮廓的测量,我们展示了这种固体如何在周围的悬架上拖动,从而产生大量的外围流动并导致快速提取冲击器的动量。怀疑棒下面的凝固可能与颗粒亚相的堵塞有关,我们使用宏观圆盘进行了2D实验,以显示最初未堵塞的系统的单轴压缩如何导致动态堵塞前沿。通过这样做,我们显示了这些前沿对系统的初始堆积分数(相对于其阻塞点)如何敏感,并且还发现这些前沿的宽度与发散的相关长度有关。最后,我们将这些结果带回悬浮液,在悬浮液中,我们进行仔细的速度控制的撞击以探查填料分数的依赖性。我们在这些实验中观察到的凝固与我们在2D实验中观察到的凝固一致,从而进一步支持了致密悬浮液的冲击响应是由动态干扰前沿引起的。

著录项

  • 作者

    Waitukaitis, Scott Russell.;

  • 作者单位

    The University of Chicago.;

  • 授予单位 The University of Chicago.;
  • 学科 Physics General.;Engineering Materials Science.
  • 学位 Ph.D.
  • 年度 2013
  • 页码 136 p.
  • 总页数 136
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 宗教;
  • 关键词

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