Szczegóły publikacji

Opis bibliograficzny

A massively parallel algorithm for the three-dimensional Navier-Stokes-Boussinesq simulations of the atmospheric phenomena / Maciej PASZYŃSKI, Leszek SIWIK, Krzysztof PODSIADŁO, Peter Minev // W: Computational Science - ICCS 2020 : 20th International Conference : Amsterdam, The Netherlands, June 3–5, 2020 : proceedings, Pt. 1 / eds. Valeria V. Krzhizhanovskaya, [et al.]. — Cham : Springer Nature Switzerland, cop. 2020. — (Lecture Notes in Computer Science ; ISSN 0302-9743 ; LNCS 12137. Theoretical Computer Science and General Issues ; ISSN 0302-9743). — ISBN: 978-3-030-50370-3; e-ISBN: 978-3-030-50371-0. — S. 102–117. — Bibliogr. s. 116–117, Abstr. — Publikacja dostępna online od: 2020-06-15

Autorzy (4)

Słowa kluczowe

Navier-Stokes Boussinesqalternating direction solverfinite difference methodmassive parallel computations

Dane bibliometryczne

ID BaDAP129155
Data dodania do BaDAP2020-06-26
Tekst źródłowyURL
DOI10.1007/978-3-030-50371-0_8
Rok publikacji2020
Typ publikacjimateriały konferencyjne (aut.)
Otwarty dostęptak
WydawcaSpringer
KonferencjaInternational Conference on Computational Science 2020
Czasopisma/serieLecture Notes in Computer Science, Theoretical Computer Science and General Issues

Abstract

We present a massively parallel solver using the direction splitting technique and stabilized time-integration schemes for the solution of the three-dimensional non-stationary Navier-Stokes-Boussinesq equations. The model can be used for modeling atmospheric phenomena. The time integration scheme utilized enables for efficient direction splitting algorithm with finite difference solver. We show how to incorporate the terrain geometry into the simulation and how to perform the domain decomposition. The computational cost is linear O(N) over each sub-domain, and near to O(N/c) in parallel over 1024 processors, where N is the number of unknowns and c is the number of cores. This is even if we run the parallel simulator over complex terrain geometry. We analyze the parallel scalability experimentally up to 1024 processors over a PROMETHEUS Linux cluster with multi-core processors. The weak scalability of the code shows that increasing the number of sub-domains and processors from 4 to 1024, where each processor processes the subdomain of 49×49×99 internal points ( 50×50×100 box), results in the increase of the total computational time from 120 s to 178 s for a single time step. Thus, we can perform a single time step with over 1,128,000,000 unknowns within 3 min. The number of unknowns results from the fact that we have three components of the velocity vector field, one component of the pressure, and one component of the temperature scalar field over 256,000,000 mesh points. The computation of the one time step takes 3 min on a Linux cluster. The direction splitting solver is not an iterative solver; it solves the system accurately since it is equivalent to Gaussian elimination. Our code is interfaced with the mesh generator reading the NASA database and providing the Earth terrain map. The goal of the project is to provide a reliable tool for parallel, fully three-dimensional computations of the atmospheric phenomena.

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Optimization of the alternating direction splitting solver for three-dimensional finite difference simulations of Navier-Stokes problem / Maciej PASZYŃSKI, Maciej WOŹNIAK, Peter Minev // W: KomPlasTech 2019 : XXVI International Conference on Computer Methods in Materials Technology : January 13-16, 2019, Zakopane : book of abstracts / ed. Danuta Szeliga, Łukasz Rauch. — [Zakopane : AKNET-PRess], [2019]. — ISBN: 978-83-947091-4-3. — S. 92–94. — Bibliogr. s. 94