A Smoothed Particle Hydrodynamics scheme for arbitrarily shaped rigid bodies within highly viscous fluids

We present a Smoothed Particle Hydrodynamics (SPH) scheme suitable to model spatially resolved flow of arbitrarily shaped rigid bodies within highly viscous fluids. Coupling to other methods is avoided by representing both fluid and solid phase by SPH particles. The scheme consists of two elements,...

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Main Authors: Bastien Dietemann, Torsten Kraft, Harald Kruggel-Emden, Claas Bierwisch
Format: Article
Language:English
Published: Elsevier 2020-09-01
Series:Journal of Computational Physics: X
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S2590055220300202
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spelling doaj-2bd7551c14d94be8b67916e3830a38e92020-12-17T04:51:19ZengElsevierJournal of Computational Physics: X2590-05522020-09-018100068A Smoothed Particle Hydrodynamics scheme for arbitrarily shaped rigid bodies within highly viscous fluidsBastien Dietemann0Torsten Kraft1Harald Kruggel-Emden2Claas Bierwisch3Fraunhofer IWM, Wöhlerstraße 11, 79108 Freiburg, Germany; Corresponding author.Fraunhofer IWM, Wöhlerstraße 11, 79108 Freiburg, GermanyMechanical Process Engineering and Solids Processing (MVTA), TU Berlin, Ernst-Reuter-Platz 1, 10587 Berlin, GermanyFraunhofer IWM, Wöhlerstraße 11, 79108 Freiburg, GermanyWe present a Smoothed Particle Hydrodynamics (SPH) scheme suitable to model spatially resolved flow of arbitrarily shaped rigid bodies within highly viscous fluids. Coupling to other methods is avoided by representing both fluid and solid phase by SPH particles. The scheme consists of two elements, an implicit viscosity solver and a rigid body solver, both of which are adapted from existing literature. We present how both methods can be coupled with ease and little modification. The scheme presented in this paper can be used for simulations of a representative volume element in which the motion of rigid bodies can be studied in defined velocity gradients composed of elongation and/or shear conditions. The scheme only requires stabilization by particle shifting. However, this causes the loss of exact momentum and energy conservation at the boundary between fluid and rigid bodies. Results are shown for both 2-dimensional and 3-dimensional simulations including academic cases with existing analytical solutions and industrially relevant cases of semi-dilute suspensions of rigid bodies of various shapes.http://www.sciencedirect.com/science/article/pii/S2590055220300202Suspension modelingImplicit viscosity solverRepresentative volume elementLees Edwards shear cellElongational flow
collection DOAJ
language English
format Article
sources DOAJ
author Bastien Dietemann
Torsten Kraft
Harald Kruggel-Emden
Claas Bierwisch
spellingShingle Bastien Dietemann
Torsten Kraft
Harald Kruggel-Emden
Claas Bierwisch
A Smoothed Particle Hydrodynamics scheme for arbitrarily shaped rigid bodies within highly viscous fluids
Journal of Computational Physics: X
Suspension modeling
Implicit viscosity solver
Representative volume element
Lees Edwards shear cell
Elongational flow
author_facet Bastien Dietemann
Torsten Kraft
Harald Kruggel-Emden
Claas Bierwisch
author_sort Bastien Dietemann
title A Smoothed Particle Hydrodynamics scheme for arbitrarily shaped rigid bodies within highly viscous fluids
title_short A Smoothed Particle Hydrodynamics scheme for arbitrarily shaped rigid bodies within highly viscous fluids
title_full A Smoothed Particle Hydrodynamics scheme for arbitrarily shaped rigid bodies within highly viscous fluids
title_fullStr A Smoothed Particle Hydrodynamics scheme for arbitrarily shaped rigid bodies within highly viscous fluids
title_full_unstemmed A Smoothed Particle Hydrodynamics scheme for arbitrarily shaped rigid bodies within highly viscous fluids
title_sort smoothed particle hydrodynamics scheme for arbitrarily shaped rigid bodies within highly viscous fluids
publisher Elsevier
series Journal of Computational Physics: X
issn 2590-0552
publishDate 2020-09-01
description We present a Smoothed Particle Hydrodynamics (SPH) scheme suitable to model spatially resolved flow of arbitrarily shaped rigid bodies within highly viscous fluids. Coupling to other methods is avoided by representing both fluid and solid phase by SPH particles. The scheme consists of two elements, an implicit viscosity solver and a rigid body solver, both of which are adapted from existing literature. We present how both methods can be coupled with ease and little modification. The scheme presented in this paper can be used for simulations of a representative volume element in which the motion of rigid bodies can be studied in defined velocity gradients composed of elongation and/or shear conditions. The scheme only requires stabilization by particle shifting. However, this causes the loss of exact momentum and energy conservation at the boundary between fluid and rigid bodies. Results are shown for both 2-dimensional and 3-dimensional simulations including academic cases with existing analytical solutions and industrially relevant cases of semi-dilute suspensions of rigid bodies of various shapes.
topic Suspension modeling
Implicit viscosity solver
Representative volume element
Lees Edwards shear cell
Elongational flow
url http://www.sciencedirect.com/science/article/pii/S2590055220300202
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