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材料科学与工程研究院《材料科学论坛》:电子陶瓷在实现零碳能源中的关键作用
Excited-State Catalysis in Organic Synthesis
Phase Engineering of Nanomaterials (PEN)
环境学术沙龙第685期:高价值知识产权的布局、申请和收益转化
报告题目:
Microscale Flow and Transport Problems arising in Surfactant Rheology, Printing Processes, and Polymer Electrophoresis
 报告人:
Satish Kumar
Assistant Professor 
Department of Chemical Engineering & Materials Science 
University of Minnesota
报告时间:
2007-06-06 14:00
报告地点:
工物馆348会议室
主办单位:
化学工程系
  简介:

Fluid flow and transport processes occurring on length scales of microns or less often involve phenomena which are unimportant at larger length scales. Although such phenomena can complicate our ability to understand and design microscale flow and transport processes, they also offer opportunities to engineer novel and useful effects. Three examples will be presented in this talk in support of this idea. In the first example, we consider an instability that arises when a fluid flows past a soft elastic solid. Experiments and theory suggest that this instability is responsible for certain rheological phenomena observed in surfactant solutions, and that it may also be useful for enhancing mixing in microscale flows. In the second example, we consider the displacement of one thin liquid film by another on a chemically patterned surface. Numerical simulations using a lubrication-theory-based model indicate a mechanism by which one liquid can be emulsified into the other, a step which is known to play a key role in lithographic printing processes. In the third example, we consider polymer electrophoresis through a narrow constriction. Brownian dynamics simulations show that the relationship between chain transit velocity and chain length depends in a sensitive way on the constriction geometry and applied electric field strength, and is controlled by an interplay between three distinct time scales.

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