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Amplitude modulation schemes for enhancing acoustically-driven microcentrifugation and micromixing

机译:用于增强声学驱动的微量离心和微混合的振幅调制方案

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摘要

The ability to drive microcentrifugation for efficient micromixing and particle concentration and separation on a microfluidic platform is critical for a wide range of lab-on-a-chip applications. In this work, we investigate the use of amplitude modulation to enhance the efficiency of the microcentrifugal recirculation flows in surface acoustic wave microfluidic systems, thus concomitantly reducing the power consumption in these devices for a given performance requirement—a crucial step in the development of miniaturized, integrated circuits for true portable functionality. In particular, we show that it is possible to obtain an increase of up to 60% in the acoustic streaming velocity in a microdroplet with kHz order modulation frequencies due to the intensification in Eckart streaming; the streaming velocity is increasing as the modulation index is increased. Additionally, we show that it is possible to exploit this streaming enhancement to effect improvements in the speed of particle concentration by up to 70% and the efficiency of micromixing by 50%, together with a modest decrease in the droplet temperature.
机译:驱动微离心以在微流体平台上进行有效的微混合以及颗粒浓缩和分离的能力对于广泛的芯片实验室应用至关重要。在这项工作中,我们研究了使用振幅调制来提高表面声波微流体系统中微离心再循环流的效率,从而在给定的性能要求下相应地降低了这些设备的功耗,这是开发小型化设备的关键步骤真正的便携式功能的集成电路。特别是,我们表明,由于Eckart流媒体的增强,在具有kHz阶调制频率的微滴中,声流速度最多可以提高60%。流率随着调制指数的增加而增加。此外,我们表明可以利用这种流动增强功能,将颗粒浓缩的速度提高多达70%,将微混合的效率提高50%,同时液滴温度适度降低。

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