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How to Make a Fast Efficient Bubble-Driven Micromotor: A Mechanical View

机译:如何制造快速高效的气泡驱动微电机:机械视图

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摘要

Micromotors, which can be moved at a micron scale, have special functions and can perform microscopic tasks. They have a wide range of applications in various fields with the advantages of small size and high efficiency. Both high speed and efficiency for micromotors are required in various conditions. However, the dynamical mechanism of bubble-driven micromotors movement is not clear, owing to various factors affecting the movement of micromotors. This paper reviews various factors acting on micromotor movement, and summarizes appropriate methods to improve the velocity and efficiency of bubble-driven micromotors, from a mechanical view. The dynamical factors that have significant influence on the hydrodynamic performance of micromotors could be divided into two categories: environment and geometry. Improving environment temperature and decreasing viscosity of fluid accelerate the velocity of motors. Under certain conditions, raising the concentration of hydrogen peroxide is applied. However, a high concentration of hydrogen peroxide is not applicable. In the environment of low concentration, changing the geometry of micromotors is an effective mean to improve the velocity of micromotors. Increasing semi-cone angle and reducing the ratio of length to radius for tubular and rod micromotors are propitious to increase the speed of micromotors. For Janus micromotors, reducing the mass by changing the shape into capsule and shell, and increasing the surface roughness, is applied. This review could provide references for improving the velocity and efficiency of micromotors.
机译:可以以微米级移动的微型马达具有特殊功能,可以执行微观任务。它们具有体积小,效率高的优点,在各个领域都有广泛的应用。在各种条件下都需要高速和高效率的微型电动机。但是,由于影响微型马达运动的各种因素,气泡驱动微型马达运动的动力学机理尚不清楚。本文回顾了影响微电机运动的各种因素,并从机械角度总结了改善气泡驱动微电机速度和效率的适当方法。对微电机的流体动力学性能有重要影响的动力学因素可以分为两类:环境和几何。改善环境温度和降低流体粘度可加快电动机的速度。在某些条件下,应提高过氧化氢的浓度。但是,高浓度的过氧化氢是不适用的。在低浓度的环境中,改变微型电动机的几何形状是提高微型电动机速度的有效手段。对于管状和杆状微型电动机,增加半圆锥角并减小长度与半径的比率有利于提高微型电动机的速度。对于Janus微型电机,可以通过将形状更改为胶囊和外壳来减轻质量,并增加表面粗糙度。这篇综述可以为提高微电机的速度和效率提供参考。

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