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Numerical simulation of surface acoustic wave actuated enantiomer separation by the finite element immersed boundary method

机译:声表面波致动对映体分离的有限元浸入边界法数值模拟

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Enantiomers are chiral objects such as chemical molecules that can be distinguished by their handedness. They typically occur as racemic compounds of left- and right-handed species which may have completely different properties. Therefore, in applications such as drug design in pharmacology, enantiomer separation is an important issue. Here, we present a new technology for enantiomer separation by surface acoustic wave generated vorticity patterns consisting of pairwise counter-rotating vortices in a carrier fluid. The enantiomers are injected onto the surface of the fluid between two counter-rotating vortices such that right-handed (left-handed) enantiomers get attracted by left-rotating (right-rotating) vortices. In particular, we are concerned with the numerical simulation of this separation process by an application of the finite element immersed boundary method which relies on the solution of a coupled system consisting of the incompressible Navier Stokes equations and the equations of motion of the immersed enantiomers described with respect to an Eulerian and a Lagrangian coordinate system. For a model system of deformable, initially L-shaped enantiomers the results of the numerical simulations reveal a perfect separation. (C) 2015 Elsevier Ltd. All rights reserved.
机译:对映异构体是可以通过其手性加以区分的手性物体,例如化学分子。它们通常以左手和右手物种的外消旋化合物形式存在,它们可能具有完全不同的性质。因此,在药理学中的药物设计等应用中,对映体分离是重要的问题。在这里,我们介绍了一种新技术,用于通过表面声波产生的旋涡模式分离对映体,该旋涡模式由载流中的成对反向旋转旋涡组成。将对映体注入到两个反向旋转的涡旋之间的流体表面上,以使右旋(左旋)对映体被左旋(右旋)旋涡吸引。尤其是,我们通过有限元浸入边界方法的应用来关注此分离过程的数值模拟,该方法依赖于由不可压缩的Navier Stokes方程和所描述的浸入对映异构体的运动方程组成的耦合系统的解。关于欧拉坐标系和拉格朗日坐标系。对于可变形的,最初为L形对映体的模型系统,数值模拟结果显示出理想的分离效果。 (C)2015 Elsevier Ltd.保留所有权利。

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