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Acoustically generated flows in microchannel flexural plate wave sensors: Effects of compressibility

机译:微通道挠性板波传感器中的声流:可压缩性的影响

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摘要

Acoustically generated flowfields in flexural plate wave sensors filled with a Newtonian liquid (water) are considered. A computational model based on compressible flow is developed for the sensor with a moving wall for pumping and mixing applications in microchannels. For the compressible flow formulation, an isothermal equation of state for water is employed. The velocity and pressure profiles for different parameters including flexural wall frequency, channel height, amplitude of the wave and wave length are investigated for four microchannel height/length geometries. It is found that the flowfield becomes pseudo-steady after sufficient number of flexural cycles. Both instantaneous and time averaged results show that an evanescent wave is generated in the microchannel. The predicted flows generated by the FPWs are compared with results available in the literature. The proposed device can be exploited to integrate micropumps with complex microfluidic chips improving the portability of micro-total-analysis systems.
机译:考虑在填充有牛顿液体(水)的挠性板波传感器中通过声产生的流场。为带有可移动壁的传感器开发了基于可压缩流的计算模型,用于微通道中的泵送和混合应用。对于可压缩的流动配方,采用了水的等温状态方程。针对四个微通道高度/长度几何形状,研究了包括弯曲壁频率,通道高度,波幅和波长在内的不同参数的速度和压力分布。发现足够数量的挠曲循环后,流场变为伪稳态。瞬时和时间平均结果都表明在微通道中产生了van逝波。将FPW产生的预测流量与文献中可获得的结果进行比较。可以利用拟议的设备将微泵与复杂的微流控芯片集成在一起,从而改善微全分析系统的便携性。

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