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Theoretical Aspects of Microchannel Acoustofluidics: Thermoviscous Corrections to the Radiation Force and Streaming

机译:微通道声流学的理论方面:辐射力和流的热粘校正

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We study the effects of the temperature dependence of viscosity and density on the acoustic radiation force and the boundary-driven acoustic streaming in microchannel acoustofluidics. The acoustic streaming slip velocity for the bulk flow is calculated numerically taking these thermoviscous effects into account inside the micrometer-thin acoustic boundary layer and compare the results to recent analytical work in the literature. The acoustic radiation force is calculated for the case of an ultrasound wave scattering on a compressible, spherical particle suspended in a viscous, thermal conducting fluid. Using Prandtl–Schlichting boundary-layer theory, we include the viscosity and the volume thermal expansion coeffcient of the fluid and derive an analytical expression for the radiation force. The resulting force (valid for particle radius and boundary layers much smaller than the acoustic wavelength) is analyzed for microchannel acoustophoresis.
机译:我们研究了粘度和密度的温度依赖性对微通道声流体中声辐射力和边界驱动声流的影响。考虑到这些热粘性效应,在微米级薄的声边界层内部,通过数值计算了总流量的声流滑移速度,并将结果与​​文献中的最新分析工作进行了比较。对于超声波散射在悬浮在粘性导热流体中的可压缩球形颗粒上的情况,计算声辐射力。使用Prandtl–Schlichting边界层理论,我们包括了流体的粘度和体积热膨胀系数,并得出了辐射力的解析表达式。分析所得的力(对粒子半径和比声波长小得多的边界层有效)进行微通道声泳分析。

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