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Driving Forces of the Bubble-Driven Tubular Micromotor Based on the Full Life-Cycle of the Bubble

机译:基于气泡全生命周期的气泡驱动管状微电机的驱动力

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摘要

Micromotors show many advantages in practical applications, including small size, large push-to-weight ratio, and low power consumption. Micromotors have been widely used in a variety of applications, including cell manipulation, payload delivery, and removal of toxic components. Among them, bubble-driven micromotors have received great attention due to their large driving force and high speed. The driving force of the bubble-driven micromotor movement comes from the four stages of the life cycle of the bubble: nucleation, growth, slip, and ejection. At present, investigators are still unclear about the driving mechanism of the bubble-driven micromotors, the source of the driving force being still especially controversial. In response to this problem, this paper combines the mass transfer model, hydrodynamic theory, and numerical simulation to explain the driving force generated by the various stages of the life-cycle of the bubble. A mass transfer model was used to calculate the driving force of the motor contributed by the bubble nucleation and slip stage. Based on equilibrium of force and conservation of energy, a theoretical model of the driving force of the tubular micromotor in the growth and ejection stage of the bubble was established. The results show that the driving force contributed by the bubble in the nucleation and the slip stage is rather small. However, the stage of bubble growth and ejection provide most of the driving force. On further evaluating the effect of the bubble driving force on the motor speed, it was found that the growth stage plays a major role in the motion of the bubble-driven micromotor. The micromotor velocity based on the driving forces of the full life-cycle of bubbles agrees well with the experimental results.
机译:微型电动机在实际应用中显示出许多优势,包括体积小,推重比大和功耗低。微型马达已广泛用于各种应用中,包括细胞操纵,有效载荷输送和有毒成分的去除。其中,气泡驱动微型电动机由于其大的驱动力和高速度而受到了极大的关注。气泡驱动微电机运动的驱动力来自气泡生命周期的四个阶段:成核,生长,滑动和喷射。目前,研究人员仍不清楚气泡驱动微电机的驱动机制,其驱动力的来源仍然特别有争议。针对这一问题,本文结合了传质模型,流体力学理论和数值模拟,解释了气泡生命周期各个阶段产生的驱动力。传质模型用于计算气泡成核和滑移阶段对电机的驱动力。基于力的平衡和能量的守恒,建立了管状微电机在气泡生长和喷射阶段的驱动力的理论模型。结果表明,气泡在成核和滑移阶段所贡献的驱动力很小。但是,气泡增长和喷射阶段提供了大部分驱动力。在进一步评估气泡驱动力对电动机速度的影响时,发现生长阶段在气泡驱动微电动机的运动中起主要作用。基于气泡整个生命周期的驱动力的微电机速度与实验结果非常吻合。

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