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Splashing, feeding, contracting: Drop impact and fluid dynamics of Vorticella.

机译:飞溅,进料,收缩:跌落性涡虫的冲击力和流体动力学。

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摘要

This thesis comprises two main topics: understanding drop impact and splashing, and studying the feeding and contracting of the microorganism Vorticella. In Chapter 1, we study the effect of substrate compliance on the splash threshold of a liquid drop using an elastic membrane under variable tension. We find that splashing can be suppressed by reducing this tension. Measurements of the velocity and acceleration of the spreading drop after impact indicate that the splashing behavior is set at very early times after, or possibly just before, impact, far before the actual splash occurs. We also provide a model for the tension dependence of the splashing threshold. In Chapter 2, we study the evolution of the ejected liquid sheet, or lamella, created after impact of a liquid drop onto a solid surface using high-speed video. We find that the lamella rim thickness is always much larger than the boundary layer thickness, and that this thickness decreases with increasing impact speed. We also observe an unusual plateau behavior in thickness versus time at higher impact speeds as we approach the splash threshold. In Chapter 3, we show through calculations, simulations, and experiments that the eddies often observed near sessile filter feeders are due to the presence of nearby boundaries. We model the common filter feeder Vorticella, and also track particles around live feeding Vorticella to determine the experimental flow field. Our models are in good agreement both with each other and with the experiments. We also provide simple approximate equations to predict experimental eddy sizes due to boundaries. In Chapter 4, we show through calculations that filter feeders such as Vorticella can greatly enhance their nutrient uptake by feeding at an angle rather than perpendicular to a substrate. We also show experimental evidence that living Vorticella use this strategy. Finally, in Chapter 5, we discuss possible future directions for these projects, including potential insights from a close examination of lamella behavior at the splash threshold, and calculations to determine if Vorticella contract rapidly towards the substrate to which they are attached in order to mix the surrounding fluid.
机译:本论文包括两个主要主题:了解液滴的撞击和飞溅,以及研究微生物涡虫的摄食和收缩。在第1章中,我们研究了在可变张力下使用弹性膜对基质柔顺性对液滴飞溅阈值的影响。我们发现可以通过减小这种张力来抑制飞溅。撞击后铺展液滴的速度和加速度的测量结果表明,飞溅行为是在撞击发生后或可能不久之前,在实际飞溅发生之前的很早的时间设置的。我们还为飞溅阈值的张力依赖性提供了一个模型。在第二章中,我们研究了使用高速视频将液滴撞击到固体表面后产生的喷出的液体薄片或薄片的演变。我们发现,薄片边缘的厚度总是远远大于边界层的厚度,并且该厚度随着冲击速度的增加而减小。当我们接近飞溅阈值时,在更高的撞击速度下,我们还观察到厚度随时间变化的异常高原行为。在第3章中,我们通过计算,模拟和实验表明,在无柄滤食器附近经常观察到涡流是由于附近边界的存在。我们对常见的滤嘴喂食器涡菌进行建模,并跟踪活喂食涡菌的颗粒,以确定实验流场。我们的模型彼此之间以及与实验之间都非常吻合。我们还提供了简单的近似方程式,以预测由于边界而产生的实验涡流大小。在第4章中,我们通过计算表明,诸如Vorticella的过滤器进料器可以通过以一定角度而不是垂直于底物进料来极大地提高其养分吸收。我们还显示了实验证据,表明活涡虫使用这种策略。最后,在第5章中,我们讨论了这些项目可能的未来方向,包括仔细检查飞溅阈值处的薄片行为的潜在见解,以及确定Vorticella是否迅速向其附着的基质收缩以进行混合的计算方法周围的液体。

著录项

  • 作者

    Pepper, Rachel E.;

  • 作者单位

    Harvard University.;

  • 授予单位 Harvard University.;
  • 学科 Applied Mechanics.;Biophysics General.;Physics Fluid and Plasma.
  • 学位 Ph.D.
  • 年度 2009
  • 页码 120 p.
  • 总页数 120
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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