Numerical Simulation of Liquid Sloshing in Lng Tank Using Gpu-Accelerated Mps Method

被引:0
作者
Chen X. [1 ]
Wan D. [1 ]
机构
[1] Collaborative Innovation Center for Advanced Ship and Deep-Sea Exploration, School of Naval Architecture, Ocean and Civil Engineering, Shanghai Jiao Tong University, Shanghai
来源
Lixue Xuebao/Chinese Journal of Theoretical and Applied Mechanics | 2019年 / 51卷 / 03期
关键词
Liquid sloshing; Meshfree particle method; MPS method; Parallel acceleration technique;
D O I
10.6052/0459-1879-18-410
中图分类号
学科分类号
摘要
Liquid sloshing is a common phenomenon induced in partially filled tanks under external excitations, which may destroy the tank structure and vessel stability. Moving particle semi-implicit (MPS) method is a typical meshfree method which can effectively simulate violent liquid sloshing problem. However, the low computational efficiency of MPS is the bottleneck of its application in large-scale three-dimensional problems. In the past years, GPU parallel acceleration technique has been widely used in the field of scientific computing. In this work, GPU parallel acceleration technique is introduced into MPS method and an in-house solver MPSGPU-SJTU is developed by using CUDA language. Then this solver is used to simulate 3-D liquid sloshing in liquefied natural gas (LNG) tank. The convergent validation of particle spacing is carried out to verify the accuracy of present solver. The maximum particle number of simulation model is over two million particles. MPSGPU-SJTU solver can accurately predict the impact pressures by comparing with other results. In addition, the violent flow phenomena such as large deformation and nonlinear fragmentation of free surface can be observed in these simulations. The comparison of computation time between GPU and CPU solvers demonstrates GPU parallel acceleration technique can significantly reduce the computation time and improve the computational efficiency of MPS. The phenomena of liquid sloshing in LNG tank and rectangular tank are compared. The results show that LNG tank can reduce the sloshing amplitude and impact pressure in high filling level. However, the sloshing is more violent and the free surface presents three-dimensional feature in LNG tank with middle and low filling level. Finally, the investigation of the effect of different fluids such as water and LNG on sloshing phenomena is also conducted in this paper. It shows that the flow fields of both liquids are almost similar and the impact pressure is proportional to the liquid density. © 2019, Editorial Office of Chinese Journal of Theoretical and Applied Mechanics. All right reserved.
引用
收藏
页码:714 / 729
页数:15
相关论文
共 39 条
[1]  
Faltinsen O.M., A numerical nonlinear method of sloshing in tanks with two dimensional flow, Journal of Ship Research, 22, 3, pp. 193-202, (1978)
[2]  
Nakayama T., Washizu K., Nonlinear analysis of liquid motion in a container subjected to forced pitching oscillation, International Journal for Numerical Methods in Engineering, 15, 8, pp. 1207-1220, (1980)
[3]  
Nakayama T., Washizu K., The boundary element method applied to the analysis of two-dimensional nonlinear sloshing problems, International Journal for Numerical Methods in Engineering, 17, 11, pp. 1631-1646, (1981)
[4]  
Kim Y., Shin Y.S., Lee K.H., Numerical study on slosh-induced impact pressures on three-dimensional prismatic tanks, Applied Ocean Research, 26, 5, pp. 213-226, (2004)
[5]  
Zhu R.Q., Fang Z.Y., Zhang Z.G., Et al., Level-set method for predicting impact pressure induced by violent sloshing in a tank, Journal of Ship Mechanics, 12, 3, pp. 344-351, (2008)
[6]  
Xue M.A., Lin P.Z., Numerical study of ring baffle effects on reducing violent liquid sloshing, Computers & Fluids, 52, pp. 116-129, (2011)
[7]  
Zhu Y., Jiang S., Yang X., Et al., Mechanism analysis of pressure oscillation in particle method, Chinese Journal of Theoretical and Applied Mechanics, 50, 3, pp. 688-698, (2018)
[8]  
Ma W., A smoothed meshfree Galerkin method for 2D elasticity problem, Chinese Journal of Theoretical and Applied Mechanics, 50, 5, pp. 1115-1124, (2018)
[9]  
Li A., Fu Z., Li P., Et al., Generalized finite difference method for bioheat transfer analysis on skin tissue with tumors, Chinese Journal of Theoretical and Applied Mechanics, 50, 5, pp. 1198-1205, (2018)
[10]  
Shao J.R., Li H.Q., Liu G.R., Et al., An improved SPH method for modeling liquid sloshing dynamics, Computers & Structures, 100-101, pp. 18-26, (2012)