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Drop formation in multi-phase microfluidic flows.

机译:多相微流中的液滴形成。

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摘要

In this thesis, we present a basic study on the formation of liquid jets and their subsequent break-up into drops in multi-phase coaxial flows. We utilize the jet breakup and drop formation mechanisms to generate monodisperse double emulsions, which we use to form novel spherically layered materials.; In Chapter 1 we describe the basic dripping-to-jetting transition of a liquid injected into a second co-flowing immiscible liquid. We show that despite the large parameter space, the transition is controlled by the outer capillary number and the inner Weber number. In Chapter 2, using the same co-flowing geometry, we show with experimental evidence and a linear stability analysis that the jets generated with the inner Weber number break-up due to an absolute instability.; In Chapter 3 we fabricate a micro-capillary device that combines the co-flowing geometry with a flow-focusing geometry to generate monodisperse double emulsions. We demonstrate the potential of this technique by generating novel core-shell structures. In Chapter 4 we describe an alternate method to generate highly controlled monodisperse double and triple emulsions using multiple co-flowing streams arranged in series. We again demonstrate that this device can be used to form multi-layered core-shell structures.; In Chapters 6--8 we use the micro-capillary device from Chapter 3 to generate novel spherically layered materials from double emulsions. In Chapter 6 we describe the formation of diblock copolymer vesicles from double emulsions. During the formation of these polymer vesicles, the 'oil' phase can undergo an instability where it dewets from the diblock copolymer; this instability is described in Chapter 7. Finally, in Chapter 8 we generate and characterize temperature sensitive microgel spheres and a novel core-shell microgel structure.
机译:在本文中,我们对液体射流的形成及其随后在多相同轴流中分解为液滴的过程进行了基础研究。我们利用射流破裂和液滴形成机理产生单分散双乳状液,用于形成新型球形层状材料。在第1章中,我们描述了注入第二种同流不混溶液体中的液体从滴落到喷射的基本过渡过程。我们显示,尽管参数空间很大,但过渡仍受外部毛细管数和内部Weber数控制。在第二章中,使用相同的共流几何,我们通过实验证据和线性稳定性分析表明,由于绝对不稳定性,内部韦伯数产生的射流破裂。在第3章中,我们制造了一种微毛细管装置,该装置将同向流动的几何形状与流动聚焦的几何形状结合在一起以生成单分散的双乳状液。我们通过产生新颖的核-壳结构证明了该技术的潜力。在第4章中,我们描述了使用多个串联排列的并流物流产生高度受控的单分散双和三乳液的替代方法。我们再次证明该装置可用于形成多层核-壳结构。在第6--8章中,我们使用第3章中的微毛细管装置从双乳状液中产生新颖的球形层状材料。在第六章中,我们描述了由双重乳液形成的二嵌段共聚物囊泡。在这些聚合物囊泡的形成过程中,“油”相可能会发生不稳定,并从二嵌段共聚物中浸出。这种不稳定性在第7章中进行了描述。最后,在第8章中,我们生成并表征了对温度敏感的微凝胶球和新颖的核-壳微凝胶结构。

著录项

  • 作者

    Utada, Andrew Shin'ichi.;

  • 作者单位

    Harvard University.;

  • 授予单位 Harvard University.;
  • 学科 Physics Fluid and Plasma.; Engineering Materials Science.
  • 学位 Ph.D.
  • 年度 2007
  • 页码 103 p.
  • 总页数 103
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 等离子体物理学;工程材料学;
  • 关键词

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