西安交通大学能源与动力工程学院,西安,710049
: 2022-02-10。作者简介: 韩沛东(1992—),男,博士生
孙中国(通信作者),男,教授。基金项目: 国家自然科学基金资助项目(51922085)
网络首发:2022-08-10,
纸质出版:2022
移动端阅览
韩沛东, 刘启新, 周子棋, 等. 负压梯度下自由面流动模拟的无网格粒子法Dirichlet边界条件[J]. 西安交通大学学报, 2022,56(8):141-148.
HAN Peidong, LIU Qixin, ZHOU Ziqi, et al. Dirichlet Boundary Conditions in Meshless Particle Methods for Free-Surface Flow Simulation under Negative Pressure Gradient[J]. 2022, 56(8): 141-148.
韩沛东, 刘启新, 周子棋, 等. 负压梯度下自由面流动模拟的无网格粒子法Dirichlet边界条件[J]. 西安交通大学学报, 2022,56(8):141-148. DOI: 10.7652/xjtuxb202208015.
HAN Peidong, LIU Qixin, ZHOU Ziqi, et al. Dirichlet Boundary Conditions in Meshless Particle Methods for Free-Surface Flow Simulation under Negative Pressure Gradient[J]. 2022, 56(8): 141-148. DOI: 10.7652/xjtuxb202208015.
为改善无网格粒子法自由表面附近计算精度及稳定性
尤其在负压梯度条件下较难收敛的状况
提出了一种基于虚拟边界的狄利克雷边界条件赋值方法。以移动粒子半隐式法为例
采用最小二乘法对自由表面粒子进行多项式拟合
以拟合曲线作为虚拟边界
用自由表面粒子到虚拟边界的偏差矢量对自由表面粒子赋值进行修正。通过方形液滴旋转算例验证了算法的有效性与准确性
获得了自由表面平滑的模拟结果。进一步研究了关键参数的选择对边界条件的表达和计算精度的影响
发现当拟合搜索半径为4倍初始粒子间距时
可减小拟合误差
防止边界畸变。提出的改进方法提高了自由表面核截断区域的计算精度与稳定性
可显著改善负压梯度下大变形自由曲面外缘粒子因梯度力偏差而导致的粒子飘散情况
为改善大变形复杂界面流动计算提供了新的思路。
Dirichlet boundary conditions for the free-surface are normally imposed through direct assignment in meshless particle methods. The discretization error caused by the disordered particle distribution is generally ignored. Since it is especially difficult to calculate convergence under the negative pressure gradient
to improve the calculation accuracy and stability near the free surface
this paper proposes a Dirichlet boundary condition assignment method based on the virtual boundary. Using the moving particle semi-implicit method
polynomial fitting is carried out for free-surface particles with the least square method. The fitting curve is taken as the virtual boundary
and the deviation vector from the free-surface particle to the virtual boundary is used to correct the assignment. The validity and accuracy of the algorithm are proved through the case of a rotating square patch of fluid. This paper also further studies the influence of the key parameters on the accuracy and manifestation of the boundary conditions. When the search radius for fitting is four times the initial interparticle distance
fitting errors can be reduced and boundary deformation can be prevented. The proposed method can enhance the accuracy and stability in the kernel truncation region of the free surface
and can significantly suppress the particle drift caused by gradient force deviation on the free surface
in case of large deformation and under a negative pressure gradient. This paper provides new thoughts for improving the flow calculation of complex interfaces with large deformation.
KOSHIZUKA S, SHIBATA K, KONDO M, et al. Moving particle semi-implicit method: a meshfree particle method for fluid dynamics [M]. London, UK: Academic Press, 2018.
孙一颉, 席光, 孙中国. MPS-DEM耦合方法的多段系泊浮体波浪响应分析 [J]. 西安交通大学学报, 2019, 53(7): 8-15.
SUN Yijie, XI Guang, SUN Zhongguo. Wave response of moored multibody platforms based on MPS-DEM method [J]. Journal of Xi'an Jiaotong University, 2019, 53(7): 8-15.
孙中国, 李帝辰, 陈啸, 等. 采用移动粒子半隐式法的进口流动速度边界模型 [J]. 西安交通大学学报, 2013, 47(11): 87-91.
SUN Zhongguo, LI Dichen, CHEN Xiao, et al. Velocity boundary models of inlet flow using moving particle semi-implicit method [J]. Journal of Xi'an Jiaotong University, 2013, 47(11): 87-91.
魏冬冬, 姜毅, 赵良玉, 等. 液体火箭冷弹射系统推进剂晃动研究 [J]. 弹箭与制导学报, 2021, 41(3): 34-38.
WEI Dongdong, JIANG Yi, ZHAO Liangyu, et al. Research on propellant sloshing of liquid rocket cold launch system [J]. Journal of Projectiles, Rockets, Missiles and Guidance, 2021, 41(3): 34-38.
KIARA A, HENDRICKSON K, YUE D K P. SPH for incompressible free-surface flows: part I error analysis of the basic assumptions [J]. Computers Fluids, 2013, 86: 611-624.
DUAN Guangtao, YAMAJI A, KOSHIZUKA S, et al. The truncation and stabilization error in multiphase moving particle semi-implicit method based on corrective matrix: Which is dominant? [J]. Computers Fluids, 2019, 190: 254-273.
DUAN Guangtao, CHEN Bin, KOSHIZUKA S, et al. Stable multiphase moving particle semi-implicit method for incompressible interfacial flow [J]. Computer Methods in Applied Mechanics and Engineering, 2017, 318: 636-666.
KOSHIZUKA S, NOBE A, OKA Y. Numerical analysis of breaking waves using the moving particle semi-implicit method [J]. International Journal for Numerical Methods in Fluids, 1998, 26(7): 751-769.
LIU Moubin, LI Shangming. On the modeling of viscous incompressible flows with smoothed particle hydro-dynamics [J]. Journal of Hydrodynamics, 2016, 28(5): 731-745.
DUAN Guangtao, KOSHIZUKA S, YAMAJI A, et al. An accurate and stable multiphase moving particle semi-implicit method based on a corrective matrix for all particle interaction models [J]. International Journal for Numerical Methods in Engineering, 2018, 115(10): 1287-1314.
KHAYYER A, GOTOH H, SHIMIZU Y. Comparative study on accuracy and conservation properties of two particle regularization schemes and proposal of an optimized particle shifting scheme in ISPH context [J]. Journal of Computational Physics, 2017, 332: 236-256.
JANDAGHIAN M, SHAKIBAEINIA A. An enhanced weakly-compressible MPS method for free-surface flows [J]. Computer Methods in Applied Mechanics and Engineering, 2020, 360: 112771.
CHEN Xiao, XI Guang, SUN Zhongguo. Improving stability of MPS method by a computational scheme based on conceptual particles [J]. Computer Methods in Applied Mechanics and Engineering, 2014, 278: 254-271.
DUAN Guangtao, CHEN Bin, ZHANG Ximin, et al. A multiphase MPS solver for modeling multi-fluid interaction with free surface and its application in oil spill [J]. Computer Methods in Applied Mechanics and Engineering, 2017, 320: 133-161.
CHEN Xiao, SUN Zhongguo, LIU Ling, et al. Improved MPS method with variable-size particles [J]. International Journal for Numerical Methods in Fluids, 2016, 80(6): 358-374.
SHIBATA K, MASAIE I, KONDO M, et al. Improved pressure calculation for the moving particle semi-implicit method [J]. Computational Particle Mechanics, 2015, 2(1): 91-108.
朱跃, 姜胜耀, 杨星团, 等. 粒子法中自由表面粒子识别 [J]. 计算力学学报, 2018, 35(4): 500-506.
ZHU Yue, JIANG Shengyao, YANG Xingtuan, et al. Free surface detection method in particle method [J]. Chinese Journal of Computational Mechanics, 2018, 35(4): 500-506.
LIU Xiaoxing, MORITA K, ZHANG Shuai. A stable moving particle semi-implicit method with renormalized Laplacian model improved for incompressible free-surface flows [J]. Computer Methods in Applied Mechanics and Engineering, 2019, 356: 199-219.
LIU Xiaoxing, MORITA K, ZHANG Shuai. An advanced moving particle semi-implicit method for accurate and stable simulation of incompressible flows [J]. Computer Methods in Applied Mechanics and Engineering, 2018, 339: 467-487.
MATSUNAGA T, KOSHIZUKA S, HOSAKA T, et al. Moving surface mesh-incorporated particle method for numerical simulation of a liquid droplet [J]. Journal of Computational Physics, 2020, 409: 109349.
殷竞存, 朱晓临, 汪欢欢. 一种改进的流体模拟自由表面处理算法 [J]. 合肥工业大学学报(自然科学版), 2019, 42(4): 561-564.
YIN Jingcun, ZHU Xiaolin, WANG Huanhuan. An improved free surface handling algorithm in fluid simulation [J]. Journal of Hefei University of Technology(Natural Science), 2019, 42(4): 561-564.
GAROOSI F, SHAKIBAEINIA A. Numerical simulation of Rayleigh-Bénard convection and three-phase Rayleigh-Taylor instability using a modified MPS method [J]. Engineering Analysis with Boundary Elements, 2021, 123: 1-35.
KHAYYER A, GOTOH H. Enhancement of stability and accuracy of the moving particle semi-implicit method [J]. Journal of Computational Physics, 2011, 230(8): 3093-3118.
KHAYYER A, GOTHO H. Modified moving particle semi-implicit methods for the prediction of 2D wave impact pressure [J]. Coastal Engineering, 2009, 56(4): 419-440.
0
浏览量
5
下载量
0
CSCD
关联资源
相关文章
相关作者
相关机构
京公网安备11010802024621