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NUMERICAL SIMULATIONS OF SHOCK-BUBBLE INTERACTIONS USING AN IMPROVED GHOST FLUID METHOD

机译:改进的Ghost流体法数值模拟冲击-气泡相互作用

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The present work is concerned with numerical simulations for the shock-bubble interactions using the Ghost Fluid Method (GFM) in which the interface is captured with level set methods. The GFM is applied to the interactions between an air shock wave and a cylindrical or spherical helium bubble to investigate the numerical diffusion in the reinitialization procedure of the level set function. It is shown that the interface is not captured accurately using the GFM without the reinitialization of the level set function. The numerical diffusion in the reinitialization procedure affects the formation of a re-entrant jet and vortex structures after a shock wave impacts the bubble. It is also shown that the results with the hybrid particle level set method agree with the experiments by Haas and Sturtevant. The hybrid particle level set method is superior in the mass conservation. Also, we have improved the GFM by correcting velocities, pressure and density at boundary nodes using the Riemann solutions to avoid numerical oscillations near the gas-liquid interface. We have succeeded in capturing the sharp interface for the shock-air bubble interaction in water by using the improved GFM coupling with the hybrid particle level set method. Mass conservation in the hybrid particle level set method is better than that in the standard level set method with high order discretization scheme.
机译:目前的工作涉及使用鬼流体方法(GFM)进行的冲击-气泡相互作用的数值模拟,其中使用水平集方法捕获界面。将GFM应用于空气冲击波与圆柱或球形氦气气泡之间的相互作用,以研究水平设置函数的重新初始化过程中的数值扩散。结果表明,如果不重新设置级别设置功能,将无法使用GFM准确捕获接口。在冲击波撞击气泡之后,重新初始化过程中的数值扩散会影响折返射流的形成和涡旋结构。还表明,混合粒子水平集方法的结果与Haas和Sturtevant的实验一致。混合粒子水平设定方法在质量守恒方面具有优势。此外,我们通过使用Riemann解校正边界节点处的速度,压力和密度来避免在气液界面附近出现数值振荡,从而改善了GFM。通过使用改进的GFM结合杂化粒子水平设定方法,我们已经成功捕获了水中冲击气泡相互作用的尖锐界面。混合粒子水平集方法的质量守恒性优于具有高阶离散化方案的标准水平集方法。

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