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Shaping fluid-fluid interfaces: From molecular monolayers to thin liquid films.

机译:塑造流体界面:从分子单分子层到薄液膜。

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摘要

In this thesis, we present studies on the regular structuring of fluid/fluid interfaces.;In Chapter 1 through 3, we investigate the spreading of droplets and the impact of liquid jets on microtextured solid substrates. We show that the liquid films produced adopt the symmetry of the substrate topography, despite the different physical mechanisms involved in the film formation. When a droplet of partially wetting fluid spreads on a regular lattice of microposts, the shape of the resulting film depends on the dynamics of the spreading/imbibition, i.e. the geometrical features of the substrate and the contact angle of the fluid (Chapter 1). When a jet impacts a microtextured substrate, at high Reynolds number, the velocity field is no longer isotropic. The angular dependence results in the formation of polygonal hydraulic jumps (Chapter 2) and polygonal liquid sheet (Chapter 3).;In Chapter 4 and 5, we study a highly stable dispersion of micron scale bubbles. We show that each bubble is coated with an insoluble layer of condensed surfactant molecules. Under compression, the shell initially buckles into nanometer scale hexagonal domains. The nanopatterned interface resists further shrinkage of the bubble and the gas dispersion is stable over a year. We rationalize the surface structure by considering the mechanical features and the chemical composition of the interface.;Finally, in Chapter 6, we present an experimental study on the clogging of microchannels by colloidal suspensions and document the role of the interaction between particles and the flow properties.
机译:在本文中,我们对流体/流体界面的规则结构进行了研究。在第1至第3章中,我们研究了液滴的散布和液体喷射对微织构固体基质的影响。我们表明,尽管在成膜过程中涉及到不同的物理机制,但所产生的液膜仍采用基材形貌的对称性。当部分润湿的流体的液滴在微柱的规则晶格上扩散时,所得膜的形状取决于扩散/吸收的动力学,即基底的几何特征和流体的接触角(第1章)。当射流冲击高雷诺数的微织构基材时,速度场不再各向同性。角度依赖性导致形成多边形水力跃迁(第2章)和多边形液膜(第3章)。在第4章和第5章中,我们研究了微米级气泡的高度稳定分散。我们表明,每个气泡都覆盖有一层不溶的凝结表面活性剂分子层。在压缩下,外壳最初会弯成纳米级六角形区域。纳米图案的界面可防止气泡进一步收缩,并且气体分散在一年内稳定。我们通过考虑界面的机械特征和化学成分来合理化表面结构。最后,在第6章中,我们进行了胶体悬浮液堵塞微通道的实验研究,并记录了颗粒与流动之间相互作用的作用属性。

著录项

  • 作者

    Dressaire, Emilie Marie.;

  • 作者单位

    Harvard University.;

  • 授予单位 Harvard University.;
  • 学科 Engineering Chemical.;Engineering Mechanical.
  • 学位 Ph.D.
  • 年度 2009
  • 页码 252 p.
  • 总页数 252
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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