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Numerical Simulation of Taylor Bubble Formation in Micro-channel by MPS Method

机译:MPS法在微通道内泰勒气泡形成的数值模拟

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摘要

Moving Particle Semi-implicit (MPS) method uses particles and their interactions to simulate incompressible flow and it is a promising meshless method for multiphase flow simulation. In order to simulate the micro-bubble generation in micro-channel, surface tension model in MPS is improved by introducing fourth order central difference scheme for the calculation of unit normal vector. Numerical results for the oscillation of macro and micro droplets are in good agreement with theoretical prediction, which confirmed the validation of our model. By introducing the improved surface tension model into MPS method, the micro-bubble generation in T-shaped micro-channel was simulated successfully. The reasonable agreement between numerical simulations with visualization experiment confirmed the capacity of MPS with the improved surface tension model for the microgravity or micro-scale two-phase flow, which is dominated by surface tension effect. Finally, micro-bubble generations in different micro-channels are simulated. It is found that bubble size will decrease with increasing liquid flow rate and increase with increasing gas flow rate. Compared with 45° bifurcation micro-channel, T-shaped micro-channel can generate bubble smaller and faster.
机译:移动粒子半隐式(MPS)方法使用粒子及其相互作用来模拟不可压缩的流,这是一种很有前途的无网格多相流模拟方法。为了模拟微通道中的微气泡产生,通过引入四阶中心差分方案来计算单位法向矢量,改进了MPS中的表面张力模型。宏观和微观液滴振荡的数值结果与理论预测吻合良好,这证实了我们模型的有效性。通过将改进的表面张力模型引入MPS方法,成功模拟了T形微通道中微气泡的产生。数值模拟与可视化实验之间的合理一致性证实了改进的表面张力模型对微重力或微尺度两相流具有MPS的能力,其中表面张力效应占主导地位。最后,模拟了不同微通道中的微气泡产生。发现气泡大小将随着液体流速的增加而减小,并随着气体流速的增加而增大。与45°分叉微通道相比,T形微通道可产生更小,更快的气泡。

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