论文标题
微通道中的超声振荡两相流
Ultrasonic Oscillatory Two-phase Flow in Microchannels
论文作者
论文摘要
进行实验和数值研究以评估微通道中超声振荡两相流的运输行为。这项工作的启发是灵感来自在创新的超声织物干燥装置中使用压电双齿换能器和微通道的流动,其中水 - 空气两相流是通过和谐振荡的微通道传输的。由于水和空气在振动循环中相互相互作用时,该流量表现出高度不稳定的行为,这使其与微通道中研究良好的稳定流动显着不同。通过梳理使用相位方法方法来解决两相流动的动力学的湍流雷诺平均纳维尔 - 斯托克斯(RANS)K-$ω$模型来实现计算流体动力学(CFD)建模。数值结果通过实验定性验证。通过参数研究,我们专门研究了振动条件(即频率和振幅),微通道锥角和壁表面接触角(即润湿性)对通过微通道流量的影响。结果将推动可能存在振荡或一般不稳定微通道两相流的潜在应用。
Experimental and numerical investigations are performed to provide an assessment of the transport behavior of an ultrasonic oscillatory two-phase flow in a microchannel. The work is inspired by the flow observed in an innovative ultrasonic fabric drying device using a piezoelectric bimorph transducer with microchannels, where a water-air two-phase flow is transported by harmonically oscillating microchannels. The flow exhibits highly unsteady behavior as the water and air interact with each other during the vibration cycles, making it significantly different from the well-studied steady flow in microchannels. The computational fluid dynamics (CFD) modeling is realized by combing the turbulence Reynolds-averaged Navier-Stokes (RANS) k-$ω$ model with the phase-field method to resolve the dynamics of the two-phase flow. The numerical results are qualitatively validated by the experiment. Through parametric studies, we specifically examined the effects of vibration conditions (i.e., frequency and amplitude), microchannel taper angle, and wall surface contact angle (i.e., wettability) on the flow rate through the microchannel. The results will advance the potential applications where oscillatory or general unsteady microchannel two-phase flows may be present.