Multiphase SPH for surface tension: Resolving zero-surface-energy modes and achieving high Reynolds number simulations

被引:0
作者
Zhang, Shuaihao [1 ,2 ]
Lourenco, Sergio D. N. [1 ]
Hu, Xiangyu [2 ]
机构
[1] Univ Hong Kong, Dept Civil Engn, Pokfulam, Hong Kong, Peoples R China
[2] Tech Univ Munich, Sch Engn & Design, D-85748 Garching, Germany
关键词
Smoothed particle hydrodynamics; Surface tension; Zero-surface-energy modes; Multiphase flows; High Reynolds number; SMOOTHED PARTICLE HYDRODYNAMICS; NUMERICAL-SIMULATION; TRACKING METHOD; FLOWS; ALGORITHM; DROP;
D O I
10.1016/j.cma.2025.118147
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
This study introduces a Riemann-based Smoothed Particle Hydrodynamics (SPH) framework for the stable and accurate simulation of surface tension in multiphase flows, with density and viscosity ratios as high as 1000 and 100, respectively. The methodology begins with the computation of surface stress, from which the surface tension force is derived, ensuring the conservation of momentum. For the first time, this study identifies the root cause of particle disorder at fluid-fluid interfaces, attributed to a numerical instability defined herein as zero-surface-energy modes. To address this, we propose a novel penalty force method, which eliminates zero-surface-energy modes and significantly enhances the overall stability of the simulation. Importantly, the penalty force correction term is designed to maintain momentum conservation. The stability and accuracy of the proposed framework are validated through several benchmark cases with analytical solutions, performed under both two-dimensional and three-dimensional conditions. Furthermore, the robustness of the method is demonstrated in a three-dimensional high-velocity droplet impact scenario, achieving stable performance at high Reynolds numbers (Re = 10000) and Weber numbers (We = 25000). To the best of our knowledge, this represents the first successful demonstration of a mesh-free method achieving stable multiphase flow simulations under such extreme Re and We conditions. A qualitative comparison with previous experimental results is also conducted, confirming the reliability of the simulation outcomes. An open-source code is provided for further in-depth study.
引用
收藏
页数:25
相关论文
共 51 条
[1]  
Adami S., Hu X., Adams N.A., A new surface-tension formulation for multi-phase SPH using a reproducing divergence approximation, J. Comput. Phys., 229, 13, pp. 5011-5021, (2010)
[2]  
Zhang F., Yang P., Liu M., An improved continuum surface tension model in SPH for simulating free-surface flows and heat transfer problems, J. Comput. Phys., 490, (2023)
[3]  
Pozorski J., Olejnik M., Smoothed particle hydrodynamics modelling of multiphase flows: an overview, Acta Mech., 235, 4, pp. 1685-1714, (2024)
[4]  
Matsunaga T., Sodersten A., Koshizuka S., Hosaka T., Ishii E., Axisymmetric free-surface flow simulation using the moving surface mesh particle method and application to drop formation, J. Comput. Phys., 463, (2022)
[5]  
Scardovelli R., Zaleski S., Direct numerical simulation of free-surface and interfacial flow, Annu. Rev. Fluid Mech., 31, 1, pp. 567-603, (1999)
[6]  
Sussman M., Smereka P., Osher S., A level set approach for computing solutions to incompressible two-phase flow, J. Comput. Phys., 114, 1, pp. 146-159, (1994)
[7]  
Aalilija A., Gandin C.-A., Hachem E., On the analytical and numerical simulation of an oscillating drop in zero-gravity, Comput. & Fluids, 197, (2020)
[8]  
Chen S., Doolen G.D., Lattice Boltzmann method for fluid flows, Annu. Rev. Fluid Mech., 30, 1, pp. 329-364, (1998)
[9]  
Tryggvason G., Bunner B., Esmaeeli A., Juric D., Al-Rawahi N., Tauber W., Han J., Nas S., Jan Y.-J., A front-tracking method for the computations of multiphase flow, J. Comput. Phys., 169, 2, pp. 708-759, (2001)
[10]  
Colagrossi A., Landrini M., Numerical simulation of interfacial flows by smoothed particle hydrodynamics, J. Comput. Phys., 191, 2, pp. 448-475, (2003)