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Stokeslets-meshfree computations and theory for flow in a collapsible microchannel

机译:Stokeslets-meshfree计算和可折叠微通道中的流动理论

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We present both a theoretical model and Stokeslets-meshfree computations to study the induced flow motions and transport in a 2D microchannelwith moving multiple prescribed dynamic collapses (contractions) along the upper wall. The channel is assumed to have a length that is much greater than its width, i.e., (δ = W/L 1). The wall contractions are set to move with or without time (phase) lags with respect to each other. The theoretical analysis presented is based on the quasi-steady state approximations and the lubrication theory at the low Reynolds number flow regime. The meshfree numerical method is based on the method of fundamental solutions MFS, which uses a set of singularized force elements called Stokeslets to induce the flow motions. The flow field developments and structures induced by these wall contractions are given at various time snapshots during the collapsing cycle. The effect of the wall contractions amplitudes and the phase lags between individual contractions on the flow variables and on the time-averaged net flow over a complete cycle of contractions motions is studied. The present study is motivated by pumping mechanisms observed in insects, physiological systems that use multiple contractions to transport fluid, and the emerging novel microfluidic devices that mimic these systems.
机译:我们同时提供了理论模型和Stokeslets-meshfree计算,以研究在二维微通道中沿上壁移动多个规定的动态塌陷(收缩)引起的流动运动和运输。假定该通道的长度远大于其宽度,即(δ= W / L 1)。壁收缩设置为相对于彼此有或没有时间(相位)滞后。提出的理论分析是基于拟稳态近似和低雷诺数流态下的润滑理论。无网格数值方法是基于基本解MFS的方法,该方法使用一组称为Stokeslets的奇异力元素来诱导流动运动。由这些壁收缩引起的流场发展和结构在塌陷周期的各个时间快照中给出。研究了壁收缩幅度和各个收缩之间的相位滞后对整个收缩运动周期内的流量变量和时间平均净流量的影响。本研究的动机是在昆虫中观察到的泵送机制,使用多次收缩来输送流体的生理系统以及模仿这些系统的新兴新型微流体装置。

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