Updated Lagrangian particle hydrodynamics (ULPH) modeling for free-surface fluid flows

被引:0
作者
Jiale Yan
Shaofan Li
Xingyu Kan
Pengyu Lv
A-Man Zhang
Huiling Duan
机构
[1] Peking University,State Key Laboratory for Turbulence and Complex Systems, Department of Mechanics and Engineering Science, BIC
[2] Laoshan Laboratory,ESAT, College of Engineering
[3] Harbin Engineering University,Joint Laboratory of Marine Hydrodynamics and Ocean Engineering
[4] University of California,College of Shipbuilding Engineering
[5] Institute of Mechanics,Department of Civil and Environmental Engineering
[6] Chinese Academy of Sciences,Key Laboratory for Mechanics in Fluid Solid Coupling Systems
来源
Computational Mechanics | 2024年 / 73卷
关键词
Computational fluid dynamics; Density diffusive term; Free-surface flows; Free-surface detection; Peridynamics; Updated Lagrangian particle hydrodynamics (ULPH);
D O I
暂无
中图分类号
学科分类号
摘要
In this work, we develop an accurate and stable Updated Lagrangian particle hydrodynamics (ULPH) modeling to simulate complicated free-surface fluid flows. Leveraging its inherent properties as a Lagrangian particle method, the ULPH has natural advantages in modeling free-surface flows. However, similar to other meshfree methods, ULPH is subject to numerical instabilities and non-physical pressure fluctuations when solving the Navier–Stokes equation in the explicit numerical scheme. Within the framework of the ULPH method, several innovative enhanced treatment techniques have been proposed and combined with other previouly developed methods to establish an ULPH single-phase flow model. The main novelties of these techniques are the derivation of the density diffusive term in the continuum equation inspired by δ\documentclass[12pt]{minimal} \usepackage{amsmath} \usepackage{wasysym} \usepackage{amsfonts} \usepackage{amssymb} \usepackage{amsbsy} \usepackage{mathrsfs} \usepackage{upgreek} \setlength{\oddsidemargin}{-69pt} \begin{document}$$\delta $$\end{document}-SPH to eliminate pressure oscillations, and the proposal of a new free-surface search algorithm to determine the particles and their normal vectors at the free surface. The ULPH is a nonlocal fluid dynamics model, which is in fact a prototype of Peridynamics in fluid mechanics. Considering the nature of free-surface fluid flows, we strategically implement the diagonalization and renormalization of the shape tensor for particles located in close proximity to the free-surface region to improve the numerical stability of computations. Several complex free-surface flow benchmark examples have been simulated, which confirms that the enhanced treatment techniques can effectively capture the details of surface flow evolution and maintain long-term stability. Moreover, the qualitative and quantitative analyses of the results indicate that the proposed ULPH surface flow model is highly accurate and stable for simulating complex free-surface fluid flows.
引用
收藏
页码:297 / 316
页数:19
相关论文
共 207 条
  • [1] Stelling G(2003)An accurate and efficient finite-difference algorithm for non-hydrostatic free-surface flow with application to wave propagation Int J Numer Methods Fluids 43 1-23
  • [2] Zijlema M(2013)A weakly compressible free-surface flow solver for liquid–gas systems using the volume-of-fluid approach J Comput Phys 240 145-157
  • [3] Heyns JA(2020)Coupling effect of wall slip and spanwise oscillation on drag reduction in turbulent channel flow Phys Rev Fluids 5 229-256
  • [4] Malan AG(2007)An unsteady single-phase level set method for viscous free surface flows Int J Numer Methods Fluids 53 651-680
  • [5] Harms TM(2010)Numerical simulation of free-surface flow using the level-set method with global mass correction Int J Numer Methods Fluids 63 543-574
  • [6] Oxtoby OF(1992)Smoothed particle hydrodynamics Ann Rev Astron Astrophys 30 25-76
  • [7] Li Z(2010)Smoothed particle hydrodynamics (SPH): an overview and recent developments Arch Comput Methods Eng 17 92-110
  • [8] Ji S(2022)An accurate and robust axisymmetric SPH method based on Riemann solver with applications in ocean engineering Ocean Eng 244 225-240
  • [9] Duan H(2017)Incompressible material point method for free surface flow J Comput Phys 330 421-434
  • [10] Lan S(2020)Study on the fully coupled thermodynamic fluid-structure interaction with the material point method Comput Part Mech 7 3093-3118