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首页> 外文期刊>Bulletin of the American Physical Society >APS -70th Annual Meeting of the APS Division of Fluid Dynamics- Event - Simulation of the ultrasound-induced growth and collapse of a near-wall bubble
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APS -70th Annual Meeting of the APS Division of Fluid Dynamics- Event - Simulation of the ultrasound-induced growth and collapse of a near-wall bubble

机译:APS-APS流体动力学分部第70届年会-事件-超声诱导近壁气泡的生长和破裂的模拟

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摘要

In this study, we consider the acoustically driven growth and collapse of a cavitation bubble in a fluid medium exposed to an ultrasound field. The bubble dynamics are modelled using a compressible, inviscid, multiphase model. The numerical scheme consists of a conservative interface capturing scheme which uses the fifth-order WENO reconstruction with a maximum-principle-satisfying and positivity-preserving limiter, and the HLLC approximate Riemann flux. To model the ultrasound input, a moving boundary oscillates through a fixed grid of finite-volume cells. The growth phase of the simulation shows the rapid non-spherical growth of the near-wall bubble. Once the bubble reaches its maximum size and the collapse phase begins, the simulation shows the formation of a jet which penetrates the bubble towards the wall at the later stages of the collapse. For a bubble with an initial radius of 50 $mu m$ and an ultrasound pressure amplitude of 200 kPa, the pressure experienced by the wall increased rapidly nearing the end of the collapse, reaching a peak pressure of 13 MPa. This model is an important development in the field as it represents the physics of acoustic cavitation in more detail than before.
机译:在这项研究中,我们考虑了声波驱动的空化气泡在暴露于超声场的流体介质中的生长和破裂。使用可压缩,无粘性的多相模型对气泡动力学进行建模。数值方案包括一个保守的接口捕获方案,该方案使用具有最大原理满足性和保留正性的限制器的五阶WENO重构以及HLLC近似黎曼通量。为了对超声输入进行建模,移动边界通过有限体积的单元格的固定网格振荡。模拟的增长阶段显示了近壁气泡的快速非球形增长。一旦气泡达到其最大尺寸并开始坍塌阶段,模拟就会显示出一个喷射流的形成,该喷射流会在塌陷的后期向壁中渗透气泡。对于初始半径为50μmm $且超声压力幅度为200 kPa的气泡,壁接近塌陷结束时所承受的压力迅速增加,达到13 MPa的峰值压力。该模型是该领域的重要发展,因为它比以前更详细地描述了声空化的物理学。

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