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Microbubble dynamics in a viscous compressible liquid near a rigid boundary

机译:在刚性边界附近的粘性可压缩液体中的微泡动力学

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摘要

This paper is concerned with microbubble dynamics in a viscous compressible liquid near a rigid boundary. The compressible effects are modelled using the weakly compressible theory of Wang & Blake (2010, Non-spherical bubble dynamics in a compressible liquid. Part 1. Travelling acoustic wave. J. Fluid Mech., 730, 245-272), since the Mach number associated is small. The viscous effects are approximated using the viscous potential flow theory of Joseph & Wang (2004, The dissipation approximation and viscous potential flow. J. Fluid Mech., 505, 365-377), because the flow field is characterized as being an irrotational flow in the bulk volume but with a thin viscous boundary layer at the bubble surface. Consequently, the phenomenon is modelled using the boundary integral method, in which the compressible and viscous effects are incorporated into the model through including corresponding additional terms in the far field condition and the dynamic boundary condition at the bubble surface, respectively. The numerical results are shown in good agreement with the Keller-Miksis equation, experiments and computations based on the Navier-Stokes equations. The bubble oscillation, topological transform, jet development and penetration through the bubble and the energy of the bubble system are simulated and analysed in terms of the compressible and viscous effects.
机译:本文涉及在刚性边界附近的粘性可压缩液体中的微泡动力学。可压缩效果采用王&布莱克(2010,非球面泡沫动力学在可压缩液体中的弱可压缩理论。第1部分。行驶声波。J. Fluid Mech。,730,245-272),自马赫关联的数字很小。使用约瑟夫和王(2004,耗散近似和粘性电位流动的粘性电位流理论近似粘性效应。J. Fluid Mech。,505,365-377),因为流场的特征为是一种无驱速在散装体积中,但在气泡表面上有薄粘性边界层。因此,使用边界积分方法建模现象,其中通过包括远场条件的相应附加术语和气泡表面的动态边界条件,将可压缩和粘性效果结合到模型中。数值结果与基于Navier-Stokes方程的Keller-Miksis方程,实验和计算吻合良好。通过气泡和气泡系统的泡沫振荡,拓扑变换,喷射开发和渗透,并在可压缩和粘性效果方面进行分析。

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