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首页> 外文期刊>Journal of Mechanical Science and Technology >A ghost fluid method for sharp interface simulations of compressible multiphase flows
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A ghost fluid method for sharp interface simulations of compressible multiphase flows

机译:鬼流体方法用于可压缩多相流的清晰界面模拟

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摘要

A ghost fluid based computational tool is developed to study a wide range of compressible multiphase flows involving strong shocks and contact discontinuities while accounting for surface tension, viscous stresses and gravitational forces. The solver utilizes constrained reinitialization method to predict the interface configuration at each time step. Surface tension effect is handled via an exact interface Riemann problem solver. Interfacial viscous stresses are approximated by considering continuous velocity and viscous stress across the interface. To assess the performance of the solver several benchmark problems are considered: One-dimensional gas-water shock tube problem, shock-bubble interaction, air cavity collapse in water, underwater explosion, Rayleigh-Taylor Instability, and ellipsoidal drop oscillations. Results obtained from the numerical simulations indicate that the numerical methodology performs reasonably well in predicting flow features and exhibit a very good agreement with prior experimental and numerical observations. To further examine the accuracy of the developed ghost fluid solver, the obtained results are compared to those by a conventional diffuse interface solver. The comparison shows the capability of our ghost fluid method in reproducing the experimentally observed flow characteristics while revealing more details regarding topological changes of the interface.
机译:开发了一种基于幻影流体的计算工具,以研究涉及强冲击和接触不连续性的多种可压缩多相流,同时考虑了表面张力,粘性应力和重力。求解器利用约束的重新初始化方法来预测每个时间步的接口配置。表面张力效应通过精确的Riemann问题求解器进行处理。通过考虑跨界面的连续速度和粘性应力来近似界面粘性应力。为了评估求解器的性能,考虑了几个基准问题:一维气-水激波管问题,激波-气泡相互作用,水中的空气腔塌陷,水下爆炸,瑞利-泰勒不稳定性和椭圆形液滴振荡。从数值模拟获得的结果表明,数值方法在预测流动特征方面表现合理,并且与先前的实验和数值观测结果非常吻合。为了进一步检查开发的鬼流体求解器的准确性,将获得的结果与常规扩散界面求解器的结果进行比较。对比显示了我们的幻影流体方法能够再现实验观察到的流动特性,同时揭示了有关界面拓扑变化的更多细节。

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