On the parallelization of moving particle level set (MPLS) method for multiphase flow simulation using OpenMP

As the field of Computational Fluid Dynamics (CFD) continues to grow, some advanced simulation methods such as mesh-less (or particle) methods have been devised to solve fluid flow problems involving complex dynamics. The popular Moving Particle Semi-implicit (MPS) method is one of the particle meth...

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Main Authors: Ibrahim, A.M.E., Ng, K.C., Ng, Y.L.
Format: Article
Language:English
Published: 2020
Online Access:http://dspace.uniten.edu.my/jspui/handle/123456789/13338
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spelling my.uniten.dspace-133382020-08-12T07:12:48Z On the parallelization of moving particle level set (MPLS) method for multiphase flow simulation using OpenMP Ibrahim, A.M.E. Ng, K.C. Ng, Y.L. As the field of Computational Fluid Dynamics (CFD) continues to grow, some advanced simulation methods such as mesh-less (or particle) methods have been devised to solve fluid flow problems involving complex dynamics. The popular Moving Particle Semi-implicit (MPS) method is one of the particle methods commonly used to solve fluid flow problems without relying on the pre-existing mesh structure. Recently, based on the MPS method, two new methods, i.e. the Moving Particle Pressure Mesh (MPPM) and the Moving Particle Level-Set (MPLS) methods have been developed in our research team to simulate single-and multiphase flow problems and meanwhile to obtain a smoother pressure field. In the current work, the Open Multi Processing (OpenMP) library was used to parallelize the MPLS code on a shared memory machine and the effects of parallelism on the computation performances of MPLS were studied. The test case used to benchmark the computation performance was the multi-phase problem, i.e. the problem involving Rayleigh-Taylor Instability (RTI). The machine used in this work has 6 physical cores with 12 logical threads. The maximum speedup was 3.71x, which was comparable to those achieved by similar particle methods such as Direct Simulation Monte Carlo, Discrete Element Method, etc. Strong and weak scaling studies were conducted and the memory access (cache hit rates) under different scheduling patterns was investigated. It was found that the speedup and core performance of the level-set function implemented in the MPLS code was relatively high. © 2019 PENERBIT AKADEMIA BARU-All rights reserved. 2020-02-03T03:31:56Z 2020-02-03T03:31:56Z 2019 Article http://dspace.uniten.edu.my/jspui/handle/123456789/13338 en
institution Universiti Tenaga Nasional
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language English
description As the field of Computational Fluid Dynamics (CFD) continues to grow, some advanced simulation methods such as mesh-less (or particle) methods have been devised to solve fluid flow problems involving complex dynamics. The popular Moving Particle Semi-implicit (MPS) method is one of the particle methods commonly used to solve fluid flow problems without relying on the pre-existing mesh structure. Recently, based on the MPS method, two new methods, i.e. the Moving Particle Pressure Mesh (MPPM) and the Moving Particle Level-Set (MPLS) methods have been developed in our research team to simulate single-and multiphase flow problems and meanwhile to obtain a smoother pressure field. In the current work, the Open Multi Processing (OpenMP) library was used to parallelize the MPLS code on a shared memory machine and the effects of parallelism on the computation performances of MPLS were studied. The test case used to benchmark the computation performance was the multi-phase problem, i.e. the problem involving Rayleigh-Taylor Instability (RTI). The machine used in this work has 6 physical cores with 12 logical threads. The maximum speedup was 3.71x, which was comparable to those achieved by similar particle methods such as Direct Simulation Monte Carlo, Discrete Element Method, etc. Strong and weak scaling studies were conducted and the memory access (cache hit rates) under different scheduling patterns was investigated. It was found that the speedup and core performance of the level-set function implemented in the MPLS code was relatively high. © 2019 PENERBIT AKADEMIA BARU-All rights reserved.
format Article
author Ibrahim, A.M.E.
Ng, K.C.
Ng, Y.L.
spellingShingle Ibrahim, A.M.E.
Ng, K.C.
Ng, Y.L.
On the parallelization of moving particle level set (MPLS) method for multiphase flow simulation using OpenMP
author_facet Ibrahim, A.M.E.
Ng, K.C.
Ng, Y.L.
author_sort Ibrahim, A.M.E.
title On the parallelization of moving particle level set (MPLS) method for multiphase flow simulation using OpenMP
title_short On the parallelization of moving particle level set (MPLS) method for multiphase flow simulation using OpenMP
title_full On the parallelization of moving particle level set (MPLS) method for multiphase flow simulation using OpenMP
title_fullStr On the parallelization of moving particle level set (MPLS) method for multiphase flow simulation using OpenMP
title_full_unstemmed On the parallelization of moving particle level set (MPLS) method for multiphase flow simulation using OpenMP
title_sort on the parallelization of moving particle level set (mpls) method for multiphase flow simulation using openmp
publishDate 2020
url http://dspace.uniten.edu.my/jspui/handle/123456789/13338
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score 13.214268