Simulating non-Newtonian flows with the moving particle semi-implicit method with an SPH kernel

被引:13
|
作者
Xiang, Hao [1 ]
Chen, Bin [1 ]
机构
[1] Xi An Jiao Tong Univ, State Key Lab Multiphase Flow Power Engn, Xian 710049, Peoples R China
基金
美国国家科学基金会;
关键词
MPS method; SPH kernel; non-Newtonian fluid; container filling; FREE-SURFACE FLOWS; HYDRODYNAMICS; FLUID; DYNAMICS;
D O I
10.1088/0169-5983/47/1/015511
中图分类号
O3 [力学];
学科分类号
08 ; 0801 ;
摘要
The moving particle semi-implicit (MPS) method and smoothed particle hydrodynamics (SPH) are commonly used mesh-free particle methods for free surface flows. The MPS method has superiority in incompressible flow simulation and simple programing. However, the crude kernel function is not accurate enough for the discretization of the divergence of the shear stress tensor by the particle inconsistency when the MPS method is extended to nonNewtonian flows. This paper presents an improved MPS method with an SPH kernel to simulate non-Newtonian flows. To improve the consistency of the partial derivative, the SPH cubic spline kernel and the Taylor series expansion are combined with the MPS method. This approach is suitable for all non-Newtonian fluids that can be described with tau = mu(|gamma|)Delta (where tau is the shear stress tensor, mu is the viscosity, |gamma| is the shear rate, and Delta is the strain tensor), e.g., the Casson and Cross fluids. Two examples are simulated including the Newtonian Poiseuille flow and container filling process of the Cross fluid. The results of Poiseuille flow are more accurate than the traditional MPS method, and different filling processes are obtained with good agreement with previous results, which verified the validation of the new algorithm. For the Cross fluid, the jet fracture length can be correlated with We(0.28)Fr(0.78) (We is the Weber number, Fr is the Froude number).
引用
收藏
页码:1 / 27
页数:27
相关论文
共 50 条
  • [21] Erratum to: Least squares moving particle semi-implicit method
    Tasuku Tamai
    Seiichi Koshizuka
    Computational Particle Mechanics, 2014, 1 : 441 - 441
  • [22] Improvement of Pressure Calculations in the Moving Particle Semi-Implicit Method for Free-Surface Flows
    Gou, Wenjin
    Zhang, Shuai
    Zheng, Yao
    INTERNATIONAL JOURNAL OF COMPUTATIONAL METHODS, 2020, 17 (09)
  • [23] Implementation of the moving particle semi-implicit method for free-surface flows on GPU clusters
    Gou, Wenjin
    Zhang, Shuai
    Zheng, Yao
    COMPUTER PHYSICS COMMUNICATIONS, 2019, 244 : 13 - 24
  • [24] Application of moving particle semi-implicit method on simulating melt spreading within OECD/ROSAU project
    Zhao L.
    Punetha M.
    Ma W.
    Bechta S.
    Isaksson P.
    Lomperski S.W.
    Farmer M.T.
    Licht J.R.
    Nuclear Engineering and Design, 2024, 427
  • [25] Modified Moving Particle Semi-Implicit Meshless Method for Incompressible Fluids
    Guo, Jun
    Tao, Zhi
    JOURNAL OF THERMAL SCIENCE, 2004, 13 (03) : 226 - 234
  • [26] A Simulation of Soil Dumping Using Moving Particle Semi-Implicit Method
    Kim, Kyung Sung
    Lee, Jong Hyun
    JOURNAL OF COASTAL RESEARCH, 2021, : 549 - 553
  • [27] Moving-particle semi-implicit method for fragmentation of incompressible fluid
    Koshizuka, S
    Oka, Y
    NUCLEAR SCIENCE AND ENGINEERING, 1996, 123 (03) : 421 - 434
  • [28] Moving particle semi-implicit method with improved pressures stability properties
    Fadafan, Masoud Arami
    Kermani, Masoud-Reza Hessami
    JOURNAL OF HYDROINFORMATICS, 2018, 20 (06) : 1268 - 1285
  • [29] ENHANCEMENT OF PRESSURE AND CURVATURE CALCULATION FOR THE MOVING PARTICLE SEMI-IMPLICIT METHOD
    Li, Jiazhi
    Jang, Sunghyon
    Yamaguchi, Akira
    PROCEEDINGS OF THE 26TH INTERNATIONAL CONFERENCE ON NUCLEAR ENGINEERING, 2018, VOL 8, 2018,
  • [30] Moving Particle Semi-Implicit Method for Control of Swarm Robotic Systems
    Chua, Joseph Aldrin
    Lim, Laurence Gan
    Augusto, Gerardo
    Maningo, Jose Martin
    Bandala, Argel
    Vicerra, Ryan Rhay
    Dadios, Elmer
    2019 IEEE 11TH INTERNATIONAL CONFERENCE ON HUMANOID, NANOTECHNOLOGY, INFORMATION TECHNOLOGY, COMMUNICATION AND CONTROL, ENVIRONMENT, AND MANAGEMENT (HNICEM), 2019,