Reprint

Discrete Multiphysics: Modelling Complex Systems with Particle Methods

Edited by
October 2021
262 pages
  • ISBN978-3-0365-2213-5 (Hardback)
  • ISBN978-3-0365-2214-2 (PDF)

This book is a reprint of the Special Issue Discrete Multiphysics: Modelling Complex Systems with Particle Methods that was published in

Chemistry & Materials Science
Engineering
Summary

Particle methods have proven their versatility and effectiveness in a variety of applications, ranging from the modelling of molecules to the simulation of galaxies. Their power is amplified when they are coupled within a discrete multiphysics framework. Moreover, particle methods also couple extremely well (better than mesh-based algorithms) with artificial neural networks, as recent studies on deep multiphysics show.

This Reprint collects studies that highlight the power of particle methods in addressing multiphysics problems (including multiphase and complex flows). It targets methods such as smoothed particle hydrodynamics (SPH), the lattice spring model (LSM) or the discrete element method (DEM), and applications ranging from cavitation to cardiovascular flows.

One of the reasons for looking at particle methods as members of the same family is that they all follow a very similar algorithm. This circumstance has two consequences: (i) it is straightforward to couple particle methods together, and (ii) it is relatively easy to learn a new particle method if you are already familiar with another one. Therefore, in this book, emphasis was placed on exploring the potential of coupling different particle methods, but also on material that is useful to researchers familiar with a specific particle method, who wish to expand their horizons. Consideration was also given to the ‘tricks of the trade’ of particle methods: i.e., rules of good practice that researchers with years of experience have developed, which are not normally found in the open literature.

Format
  • Hardback
License
© 2022 by the authors; CC BY-NC-ND license
Keywords
Kelvin–Voigt viscoelastic bonds; coarse grained model; particle method; viscoelastic particles; inhomogeneous particles; discrete multiphysics modelling; smoothed particle hydrodynamics; lattice spring model; particle-based method; aortic valve; calcification; stenosis; particle–fluid flow; discrete element method; lattice Boltzmann method; mass spring model; soft body deformation; physically based modelling; convection; air parcels; atmospheric model; high-performance computing; Coarray Fortran; PGAS; LAMMPS; particle method; discrete multiphysics; discrete multiphysics; the smoothed particle hydrodynamics (SPH) method; fluid–solid interactions (FSI); red-blood cells; numerical modelling; shear flow; Deep Vein Thrombosis (DVT); computer simulation; Discrete Multiphysics (DMP); Smoothed Particle Hydrodynamics (SPH); Lattice Spring Model (LSM); solid-solid interaction; agglomeration and venous valves; discrete multiphysics; smooth particle hydrodynamics; lattice spring model; fluid-structure interaction; particle-based method; coronary stent; mechanical deformation; Discrete Multiphysics; viscoelasticity; viscoleastic fluids; Smooth Particle Hydrodynamics; coarse-grained molecular dynamics; viscoelasticity modelling; particle method; smoothed particle hydrodynamics; simulation; cavitation; shock wave