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A multi-phase SPH model based on Riemann solvers for simulation of jet breakup

机译:基于Riemann求解器的多相SPH模型用于模拟射流破裂

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摘要

The discontinuous physical properties of the multiphase flow interface lead to the numerical instability, especially for the multiphase flow problems with large density or viscosity ratios. Based on Riemann solution, a novel multiphase SPH model is presented. The momentum equation of the Riemann form is improved to calculate the physical viscosity of multiphase flow and decrease the Riemann dissipation. The solid-wall boundary is imposed by one-sided Riemann problem. In addition, a repulsive force and the surface tension are applied on both sides of the multiphase interface to keep the interface sharpness and consider the small-scale interface effect. Three cases, squared droplet oscillating, single bubble rising (with different density and viscosity ratios) and two-bubble rising examples, are simulated to demonstrate the accuracy and effectiveness of the proposed method in dealing with the multiphase flow problems with the wide range of density and viscosity ratios and with the complex interfaces. Finally, the jet breakup problems of steady jets and pulsating jets are studied using the present model. A detailed process of jet breakup is observed, the surface wave structure of liquid jet could be identified. The influence of jet parameters (surface tension, velocity amplitude and velocity period) on physical information of jet is analyzed.
机译:多相流界面的不连续物理特性会导致数值不稳定,尤其是对于密度或粘度比较大的多相流问题。基于Riemann解决方案,提出了一种新型的多相SPH模型。改进了黎曼形式的动量方程,以计算多相流的物理粘度并减少了黎曼耗散。实壁边界由单面黎曼问题强加。另外,在多相界面的两侧施加排斥力和表面张力,以保持界面清晰度并考虑小规模界面效应。模拟了三种情况,方波振荡,单气泡上升(具有不同的密度和粘度比)和两个气泡上升的例子,以证明该方法在宽范围的密度下解决多相流动问题的准确性和有效性。和粘度比以及复杂的界面。最后,使用本模型研究了稳定射流和脉动射流的射流破裂问题。观察了射流破裂的详细过程,可以识别出射流的表面波结构。分析了射流参数(表面张力,速度振幅和速度周期)对射流物理信息的影响。

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