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Comparing methods for the modelling of boundary-driven streaming in acoustofluidic devices

机译:比较声流体装置中边界驱动流的建模方法

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摘要

Numerical simulations of acoustic streaming flows can be used not only to explain the complex phenomena observed in acoustofluidic manipulation devices, but also to predict and optimise their performances. In this paper, two numerical methods based on perturbation theory are compared in order to demonstrate their viability and applicability for modelling boundary-driven streaming flows in acoustofluidic systems. It was found that the Reynolds stress method, which predicts the streaming fields from their driving terms, can effectively resolve both the inner and outer streaming fields and can be used to demonstrate the driving mechanisms of a broad range of boundary-driven streaming flows. However, computational efficiency typically limits its useful application to two-dimensional models. We highlight the close relationship between the classical boundary-driven streaming vortices and the rotationality of the Reynolds stress force field. The limiting velocity method, which ignores the acoustic boundary layer and solves the outer streaming fields by applying the ‘limiting velocities’ as boundary conditions, is more computationally efficient and can be used for predicting three-dimensional outer streaming fields and provide insight into their origins, provided that the radius of curvature of the channel surfaces is much greater than the acoustic boundary layer thickness (δv). We also show that for the limiting velocity method to be valid the channel scales must exceed a value of approximately 100 δv (for an error of ~5% on the streaming velocity magnitudes) for the case presented in this paper. Comparisons of these two numerical methods can provide effective guidance for researchers in the field of acoustofluidics on choosing appropriate methods to predict boundary-driven streaming fields in the design of acoustofluidic particle manipulation devices.
机译:声流流动的数值模拟不仅可以用来解释在声流体操纵装置中观察到的复杂现象,而且可以用来预测和优化其性能。在本文中,比较了两种基于扰动理论的数值方法,以证明它们在声流体系统中边界驱动的流场建模中的可行性和适用性。研究发现,雷诺应力法可以根据其驱动项来预测流场,可以有效地解析内部流场和外部流场,并且可以用于说明各种边界驱动流场的驱动机制。但是,计算效率通常将其有用的应用限制在二维模型中。我们强调了经典边界驱动流涡旋与雷诺应力场旋转之间的密切关系。极限速度方法忽略了声边界层,并通过应用“极限速度”作为边界条件来求解外部流场,它的计算效率更高,可用于预测三维外部流场并提供其起源的洞察力假设通道表面的曲率半径远大于声边界层厚度(δv)。我们还表明,要使极限速度方法有效,对于本文中介绍的情况,通道比例必须超过大约100δv(对于流速度幅度的误差约为5%)。两种数值方法的比较可以为声流体领域的研究人员提供有效的指导,帮助他们选择合适的方法来预测声流体颗粒操纵装置设计中的边界驱动流场。

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