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Optimization of micropillar sequences for fluid flow sculpting

机译:流体造型的微柱顺序优化

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Inertial fluid flow deformation around pillars in a microchannel is a new method for controlling fluid flow. Sequences of pillars have been shown to produce a rich phase space with a wide variety of flow transformations. Previous work has successfully demonstrated manual design of pillar sequences to achieve desired transformations of the flow cross section, with experimental validation. However, such a method is not ideal for seeking out complex sculpted shapes as the search space quickly becomes too large for efficient manual discovery. We explore fast, automated optimization methods to solve this problem. We formulate the inertial flow physics in microchannels with different micropillar configurations as a set of state transition matrix operations. These state transition matrices are constructed from experimentally validated streamtraces for a fixed channel length per pillar. This facilitates modeling the effect of a sequence of micropillars as nested matrix-matrix products, which have very efficient numerical implementations. With this new forward model, arbitrary micropillar sequences can be rapidly simulated with various inlet configurations, allowing optimization routines quick access to a large search space. We integrate this framework with the genetic algorithm and showcase its applicability by designing micropillar sequences for various useful transformations. We computationally discover micropillar sequences for complex transformations that are substantially shorter than manually designed sequences. We also determine sequences for novel transformations that were difficult to manually design. Finally, we experimentally validate these computational designs by fabricating devices and comparing predictions with the results from confocal microscopy. (C) 2016 AIP Publishing LLC.
机译:微通道中支柱周围的惯性流体流动变形是一种控制流体流动的新方法。柱的顺序已显示出可产生丰富的相空间,并具有多种流动变换。先前的工作已经成功地演示了柱序的手动设计,并通过实验验证实现了流横截面的所需转换。但是,这种方法对于寻找复杂的雕刻形状并不理想,因为搜索空间很快变得太大而无法进行有效的手动发现。我们探索快速,自动的优化方法来解决此问题。我们将具有不同微柱配置的微通道中的惯性流物理学公式化为一组状态转移矩阵运算。这些状态转换矩阵是通过实验验证的流迹来构造的,每个柱的通道长度固定。这有助于建模一系列微柱作为嵌套矩阵矩阵产品的效果,这些产品具有非常有效的数值实现方式。使用这种新的正向模型,可以使用各种入口配置快速模拟任意微柱序列,从而使优化例程可以快速访问较大的搜索空间。我们将此框架与遗传算法集成在一起,并通过设计微柱序列进行各种有用的转化来展示其适用性。我们通过计算发现了复杂转换所需的微柱序列,这些序列比人工设计的序列要短得多。我们还确定了难以手动设计的新型转化序列。最后,我们通过制造设备并将预测结果与共聚焦显微镜的结果进行比较,实验性地验证了这些计算设计。 (C)2016 AIP出版有限责任公司。

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