首页> 外文会议>ASME Fluids Engineering Division summer conference;FEDSM2009 >SIMULATION-BASED ANALYSIS OF THE MICROPROPULSION WITH ROTATING CORKSCREW MOTION OF FLAGELLA
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SIMULATION-BASED ANALYSIS OF THE MICROPROPULSION WITH ROTATING CORKSCREW MOTION OF FLAGELLA

机译:基于仿真的鞭毛旋转螺旋运​​动微推进器分析

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Microorganisms such as ecoli bacterium can propel themselves by means of a corkscrew motion in flow regimes where the Reynolds number is much smaller than one and inertial propulsion methods are ineffective. Micropropulsion with the rotating corkscrew motion of flagella can prove useful as a navigation mechanism for microswimming robots in medical applications. In this work, we present the motion of a mi-croswimmer that consists of an ellipsoid of length two-microns and diameter one micron with a flagellum of length two microns and diameter of 40 nanometers. The microswimmer resembles to a typical ecoli bacterium. We present the effect of parameters such as angular velocity and amplitude of the corkscrew motion. In simulations, time-dependent three-dimensional Navier-Stokes equations are solved in deforming mesh using a commercial package COMSOL. Mesh deformation is specified based on the displacement and rotation of the microswimmer that springs from the net force and torque around the center of mass due to the rotation of the corkscrew-like flagellum. The net linear and angular accelerations of the microswimmer are calculated using ordinary-differential equations that represent the equation of motion, and coupled with the Navier-Stokes equations and the mesh deformation. For simplicity, microswimmer is placed in a cylindrical channel of diameter 20 microns and length 60 microns.
机译:诸如生态细菌之类的微生物可以通过开瓶器运动在雷诺数远小于1且惯性推进方法无效的流动状态下自行推进。鞭毛旋转开瓶器运动产生的微推进可被证明是医疗应用中微泳机器人的导航机制。在这项工作中,我们介绍了一个微型croswimmer的运动,该运动由长度为2微米,直径为1微米的椭球和长度为2微米,直径为40纳米的鞭毛组成。微型游泳器类似于典型的生态细菌。我们介绍了诸如角速度和开瓶器运动幅度的参数的影响。在仿真中,使用商用软件包COMSOL在变形网格中求解了与时间有关的三维Navier-Stokes方程。网状变形是根据微螺旋桨的位移和旋转来确定的,微螺旋桨的位移和旋转源于由于开瓶器状鞭毛的旋转而围绕质心的净力和扭矩。使用代表运动方程的常微分方程,并结合Navier-Stokes方程和网格变形,可以计算微游泳者的净线性加速度和角加速度。为简单起见,将微泳器放置在直径20微米,长度60微米的圆柱形通道中。

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