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Influence of Asymmetry and Driving Forces on the Propulsion of Bubble-Propelled Catalytic Micromotors

机译:不对称性和驱动力对气泡推进式催化微电机推进的影响

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Bubble-propelled catalytic micromotors have recently been attracting much attention. A bubble-propulsion mechanism has the advantage of producing a stronger force and higher speed than other mechanisms for catalytic micromotors, but the nature of the fluctuated bubble generation process affects the motions of the micromotors, making it difficult to control their motions. Thus, understanding of the influence of fluctuating bubble propulsion on the motions of catalytic micromotors is important in exploiting the advantages of bubble-propelled micromotors. Here, we report experimental demonstrations of the bubble-propelled motions of propeller-shaped micromotors and numerical analyses of the influence of fluctuating bubble propulsion on the motions of propeller-shaped micromotors. We found that motions such as trochoid-like motion and circular motion emerged depending on the magnitude or symmetricity of fluctuations in the bubble-propulsion process. We hope that those results will help in the construction and application of sophisticated bubble-propelled micromotors in the future.
机译:气泡推进催化微电机近来引起了很多关注。气泡推进机构具有比催化微电机的其他机构产生更大的力和更高的速度的优点,但是波动的气泡产生过程的性质影响微电机的运动,使得难以控制它们的运动。因此,了解波动的气泡推进对催化微电机的运动的影响对于利用气泡推进的微电机的优点是重要的。在这里,我们报告螺旋桨形微电机的气泡推进运动的实验演示和波动的气泡推进对螺旋桨形微电机的运动的影响的数值分析。我们发现诸如气泡运动和圆周运动之类的运动是根据气泡推进过程中波动的大小或对称性而出现的。我们希望这些结果将有助于将来复杂气泡驱动微电机的构建和应用。

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