On the Modeling of Surface Tension and its Applications by the Generalized Interpolation Material Point Method

被引:0
作者
Chen, L. [1 ]
Lee, J. H. [1 ]
Chen, C. -F. [1 ]
机构
[1] Univ Alaska Fairbanks, Dept Mech Engn, Fairbanks, AK USA
来源
CMES-COMPUTER MODELING IN ENGINEERING & SCIENCES | 2012年 / 86卷 / 03期
关键词
MPM; GIMP; meshfree; particle; surface tension; CSF; smoothing; capillary rise; SMOOTHED PARTICLE HYDRODYNAMICS; LEVEL SET; FLOWS; FORMULATION; SIMULATION; TRACKING; EQUATION; FAILURE; IMPACT;
D O I
暂无
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
This paper presents a numerical procedure to model surface tension using the Generalized Interpolation Material Point (GIMP) method which employs a background mesh in solving the equations of motion. The force due to surface tension is formulated at the mesh grid points by using the continuum surface force (CSF) model and then added to the equations of motion at each grid point. In GIMP, we use the grid mass as the color function in CSF and apply a moving average smoothing scheme to the grid mass to improve the accuracy in calculating the surface interface. The algorithm, named as GIMP-CSF, is implemented using the software package Uintah and benchmarked by three numerical examples: static equilibrium of a 2D liquid drop, dynamic evolution of a square drop in 2D and 3D, and the capillary rise. The benchmark results, when compared to analytical solutions and those obtained by other approaches, demonstrated the accuracy and effectiveness of the GIMP-CSF algorithm.
引用
收藏
页码:199 / 223
页数:25
相关论文
共 50 条
[31]   Improved decohesion modeling with the material point method for simulating crack evolution [J].
Yang, Pengfei ;
Gan, Yong ;
Zhang, Xiong ;
Chen, Zhen ;
Qi, Wanjun ;
Liu, Ping .
INTERNATIONAL JOURNAL OF FRACTURE, 2014, 186 (1-2) :177-184
[32]   Generalized contact and improved frictional heating in the material point method [J].
Nairn, J. A. ;
Bardenhagen, S. G. ;
Smith, G. D. .
COMPUTATIONAL PARTICLE MECHANICS, 2018, 5 (03) :285-296
[33]   Microscale Surface Tension and its Applications [J].
Lambert, Pierre ;
Mastrangeli, Massimo .
MICROMACHINES, 2019, 10 (08)
[34]   An explicit phase field material point method for modeling dynamic fracture problems [J].
Zeng, Zhixin ;
Ni, Ruichen ;
Zhang, Xiong ;
Liu, Yan .
INTERNATIONAL JOURNAL FOR NUMERICAL METHODS IN ENGINEERING, 2023, 124 (12) :2680-2708
[35]   Caveats on the implementation of the generalized material point method [J].
Buzzi, O. ;
Pedroso, D. M. ;
Giacomini, A. .
CMES-COMPUTER MODELING IN ENGINEERING & SCIENCES, 2008, 31 (02) :85-106
[36]   Simulations of single and double shock experiments using generalized interpolation material point method with a noise control strategy [J].
Zhang, Huadian ;
Shukla, Manoj K. ;
Rajendran, A. M. ;
Jiang, Shan .
COMPUTATIONAL PARTICLE MECHANICS, 2023, 10 (06) :1795-1809
[37]   Analysis of the run-out processes of the Xinlu Village landslide using the generalized interpolation material point method [J].
Chunye Ying ;
Kun Zhang ;
Ze-Nian Wang ;
Sumi Siddiqua ;
Gehad Mohamed Hossam Makeen ;
Luqi Wang .
Landslides, 2021, 18 :1519-1529
[38]   Simulation analysis of detonation wave propagation in explosive with multiple initiation points by generalized Interpolation material point method [J].
Yu, Cheng ;
Li, Xiaojie ;
Yan, Honghao ;
Wang, Xiaohong ;
Wang, Yuxin .
ENGINEERING ANALYSIS WITH BOUNDARY ELEMENTS, 2024, 169
[39]   Modeling damage and plasticity in aggregates with the material point method (MPM) [J].
Raymond, Samuel J. ;
Jones, Bruce D. ;
Williams, John R. .
COMPUTATIONAL PARTICLE MECHANICS, 2019, 6 (03) :371-382
[40]   A generalized interpolation material point method for modelling coupled seepage-erosion-deformation process within unsaturated soils [J].
Lei, Xiaoqin ;
He, Siming ;
Chen, Xiaoqing ;
Wong, Henry ;
Wu, Lizhou ;
Liu, Enlong .
ADVANCES IN WATER RESOURCES, 2020, 141