一种基于超声空化气泡的微流体驱动方法

Fangyi Wang, Liang Wang, Jiamei Jin
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引用次数: 0

摘要

传统的热泡微流控驱动方法的应用受到局部热过高的限制。为了解决这一问题,本文提出了一种基于超声空化气泡的微流体驱动方法。采用压电换能器代替热法,产生超声波空化气泡,这种情况下,流量可以极低,但连续,没有热问题。基于该原理设计、制作并测试了样机,在80Vpp电压下,最小流量为0.1873 nL/min;在23.78kHz频率下,在130Vpp电压下,最大有效流量为17.741 nL/min。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A Microfluidic Driving Method based on Ultrasonic Cavitation Bubbles
The applications of traditional thermal bubble microfluidic driving methods are limited by high local heat. To overcome this problem, a novel microfluidic driving method based on ultrasonic cavitation bubbles is proposed in this paper. A piezoelectric transducer is employed instead of thermal method, to generate ultrasonic cavitation bubbles, in this case, the flow rate can be extremely low but continuous, without heat problems. A prototype based on this principle has been designed, fabricated and tested, showing a minimal flow rate of 0.1873 nL/min with 80Vpp applied voltage, and a maximal valid flow rate of 17.741 nL/min with 130Vpp applied voltage at the frequency of 23.78kHz.
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