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Vibrations and Spatial Patterns Change Effective Wetting Properties of Superhydrophobic and Regular Membranes

机译:振动和空间格局改变了超疏水和规则膜的有效润湿特性

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摘要

Small-amplitude fast vibrations and small surface micropatterns affect properties of various systems involving wetting, such as superhydrophobic surfaces and membranes. We review a mathematical method of averaging the effect of small spatial and temporal patterns. For small fast vibrations, this method is known as the method of separation of motions. The vibrations are substituted by effective force or energy terms, leading to vibration-induced phase control. A similar averaging method can be applied to surface micropatterns leading surface texture-induced phase control. We argue that the method provides a framework that allows studying such effects typical to biomimetic surfaces, such as superhydrophobicity, membrane penetration and others. Patterns and vibration can effectively jam holes and pores in vessels with liquid, separate multi-phase flow, change membrane properties, result in propulsion, and lead to many other multiscale, non-linear effects. Here, we discuss the potential application of these effects to novel superhydrophobic membranes.
机译:小幅度的快速振动和小的表面微图案会影响涉及润湿的各种系统的性能,例如超疏水表面和膜。我们回顾了平均小空间和时间模式的影响的数学方法。对于小的快速振动,该方法被称为运动分离方法。振动由有效力或能量项代替,从而导致振动引起的相位控制。可以将类似的平均方法应用于导致表面纹理诱导的相位控制的表面微图案。我们认为该方法提供了一个框架,可以研究仿生表面的典型效应,例如超疏水性,膜渗透性等。模式和振动可以有效地在液体中堵塞容器中的孔和孔,分离多相流,改变膜的性能,导致推进,并导致许多其他多尺度非线性效应。在这里,我们讨论这些效应对新型超疏水膜的潜在应用。

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