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NUMERICAL ANALYSIS OF A PLANAR WAVE PROPAGATION BASED MICROPROPULSION SYSTEM

机译:基于平面波传播的微推进系统的数值分析

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Micropropulsion mechanisms differ from macro scale counterparts owing to the domination of viscous forces in microflows. In essence, propulsion mechanisms such as cilia and flagella of single celled organisms can be deemed as nature's solution to a challenging problem, and taken as a basis for the design of an artificial micropropulsion system. In this paper we present numerical analysis of the flow due to oscillatory planar waves propagating on microstrips. The time-dependent three-dimensional flow due to moving boundaries of the strip is governed by incompressible Navier-Stokes equations in a moving coordinate system, which is modeled by means of an arbitrary Lagrangian-Eulerian formulation. The fluid medium surrounding the actuator boundaries is bounded by a channel, and neutral boundary conditions are used in the upstream and downstream. Effects of actuation parameters such as amplitude, excitation frequency, wavelength of the planar waves are demonstrated with numerical simulations that are carried out by third party software, COMSOL. Functional-dependencies with respect to the actuation parameters are obtained for the average velocity of the strip and the efficiency of the mechanism.
机译:由于微流中的粘性力占主导地位,因此微推进机制与大型对应机制有所不同。从本质上讲,诸如单细胞生物的纤毛和鞭毛等推进机制可被视为自然界对具有挑战性的问题的解决方案,并被视为设计人工微推进系统的基础。在本文中,我们对由于在微带上传播的振荡平面波而引起的流动进行了数值分析。带钢运动边界引起的随时间变化的三维流动由运动坐标系中不可压缩的Navier-Stokes方程控制,该方程是通过任意Lagrangian-Eulerian公式建模的。致动器边界周围的流体介质受通道限制,上游和下游使用中性边界条件。激励参数的影响,例如振幅,激励频率,平面波的波长,均通过第三方软件COMSOL进行的数值模拟得到了证明。对于带材的平均速度和机构的效率,获得关于致动参数的功能依赖性。

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