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NUMERICAL SIMULATION OF ACOUSTIC STREAMING IN GAS-LIQUID TWO-PHASE FLOW

机译:气液两相流中声流的数值模拟

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摘要

Acoustic streaming phenomena pertaining to liquid-gas two-phase flow in a one-dimensional rigid duct is investigated numerically. The oscillatory bubbly flow is generated due to the sinusoidal vibration of the vertical left wall of the enclosure. Time-averaged streaming flow patterns exist in the duct as a consequence of interaction between gas bubbles and liquid which are similar to the Rayleigh-type acoustic streaming phenomena extensively investigated in single-phase flow. The liquid is treated as incompressible with a homogeneous distribution of non-condensable gas bubbles. The system is modeled with coupled nonlinear and flux-conservative partial differential equations combined with the Rayleigh-Plesset equation governing the bubble radius. The viscous interaction between bubbles and the surrounding incompressible liquid phase is the main mechanism for attenuation of the wave energy considered in this analysis. The numerical solutions are obtained by a control-volume based finite-volume Lagrangian method.
机译:数值研究了一维刚性管道中与气液两相流有关的声流现象。由于外壳的垂直左壁的正弦振动而产生振荡的气泡流。由于气泡和液体之间的相互作用,管道中存在时间平均流型,这与在单相流中广泛研究的瑞利型声流现象相似。液体被视为不可压缩的,具有均匀分布的不可冷凝气泡。该系统通过耦合非线性和磁通守恒的偏微分方程以及控制气泡半径的Rayleigh-Plesset方程进行建模。气泡与周围不可压缩液相之间的粘性相互作用是该分析中考虑的波能衰减的主要机制。通过基于控制体积的有限体积拉格朗日方法获得了数值解。

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