Zhang Jingjing, Zheng Tengfei, Tang Lin, Qi Hui, Wu Xiaoyu, Zhu Linlong
School of Mechatronics Engineering, Xi'an Technological University, Xi'an 710021, China.
State Key Laboratory for Manufacturing Systems Engineering, Xi'an Jiaotong University, Xi'an 710049, China.
Micromachines (Basel). 2022 Aug 18;13(8):1337. doi: 10.3390/mi13081337.
BAW-based micromixers usually achieve mixing enhancement with acoustic-induced bubbles, while SAW-based micromixers usually enhance mixing efficiency by varying the configuration of IDTs and microchannels. In this paper, bubble-enhanced acoustic mixing induced by standing surface acoustic waves (SSAWs) in a microchannel is proposed and experimentally demonstrated. Significant enhancement in the mixing efficiency was achieved after the bubbles were stimulated in our acoustofluidic microdevice. With an applied voltage of 5 V, 50 times amplified, the proposed mixing microdevice could achieve 90.8% mixing efficiency within 60 s at a flow rate of 240 μL/h. The bubbles were generated from acoustic cavitation assisted by the temperature increase resulting from the viscous absorption of acoustic energy. Our results also suggest that a temperature increase is harmful to microfluidic devices and temperature monitoring. Regulation is essential, especially in chemical and biological applications.
基于体声波(BAW)的微混合器通常通过声致气泡来实现混合增强,而基于表面声波(SAW)的微混合器通常通过改变叉指换能器(IDT)和微通道的结构来提高混合效率。本文提出并通过实验证明了在微通道中由驻表面声波(SSAW)引起的气泡增强声混合。在我们的声流体微器件中刺激气泡后,混合效率得到了显著提高。施加5V电压时,放大了50倍,所提出的混合微器件在流速为240μL/h的情况下,60秒内可实现90.8%的混合效率。气泡是由声空化产生的,声能的粘性吸收导致温度升高辅助了声空化过程。我们的结果还表明,温度升高对微流体器件和温度监测是有害的。调节至关重要,特别是在化学和生物应用中。