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Theoretical and Experimental Research on Bubble Actuated Micro-Pumps

机译:气泡驱动微型泵的理论与实验研究

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摘要

Bubble actuated micro-pumps have great potential to be integrated into microfluidic systems to allow the independence of peripheral equipment. Previous studies on bubble actuated valveless micro-pumps have been mainly limited to experimental studies and numerical simulations due to the complex behavior of bubbles. In this paper, the construction of a mathematical model for a bubble actuated valveless micro-pump considering fluid dynamics, heat and mass transfer and bubble dynamics is described. A prototype was fabricated and tested to verify this theoretical model. The morphological evolution of the driving bubbles during the heating process was observed by a high-speed charge-coupled device (CCD) camera, the flow rate produced by the micro-pump under different working conditions was recorded and the test results were explained by the heat dissipation model. The model in this study was able to precisely predict the flow of micro-pumps in different drive modes. The principle behind defining the heating frequency and the duty cycle based on the pump chamber volume was determined. The study shows the mechanism of bubble controlling and the good prospects of bubble actuated valveless micro-pumps.
机译:气泡驱动的微型泵具有集成到微流体系统中的巨大潜力,可以使外围设备独立。由于气泡的复杂行为,以前关于气泡驱动的无阀微型泵的研究主要限于实验研究和数值模拟。在本文中,描述了考虑流体动力学,传热和传质以及气泡动力学的气泡驱动无阀微型泵数学模型的构建。制作了原型并进行了测试,以验证该理论模型。通过高速电荷耦合器件(CCD)摄像机观察加热过程中驱动气泡的形态演变,记录微泵在不同工作条件下产生的流量,并通过测试来解释测试结果。散热模型。本研究中的模型能够精确预测不同驱动模式下的微型泵流量。确定了根据泵室容积定义加热频率和占空比的原理。研究表明了气泡控制的机理以及气泡驱动的无阀微型泵的良好前景。

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