Four spacetime dimensional simulation of rheological waves in solids and the merits of thermodynamics

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Main Authors: Pozsár, Áron, Szücs, Mátyás, Kovács, Róbert, Fülöp, Tamás
Format: Preprint
Published: 2020
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_version_ 1866929267363807232
author Pozsár, Áron
Szücs, Mátyás
Kovács, Róbert
Fülöp, Tamás
author_facet Pozsár, Áron
Szücs, Mátyás
Kovács, Róbert
Fülöp, Tamás
contents The recent results attained from a thermodynamically conceived numerical scheme applied on wave propagation in viscoelastic/rheological solids are generalized here, both in the sense that the scheme is extended to four spacetime dimensions and in the aspect of the virtues of a thermodynamical approach. Regarding the scheme, the arrangement of which quantity is represented where in discretized spacetime, including the question of appropriately realizing the boundary conditions, is nontrivial. In parallel, placing the problem in the thermodynamical framework proves to be beneficial in regards to monitoring and controlling numerical artefacts - instability, dissipation error, and dispersion error. This, in addition to the observed preciseness, speed, and resource-friendliness, makes the thermodynamically extended symplectic approach that is presented here advantageous above commercial finite element software solutions.
format Preprint
id arxiv_https___arxiv_org_abs_2012_02266
institution arXiv
publishDate 2020
record_format arxiv
spellingShingle Four spacetime dimensional simulation of rheological waves in solids and the merits of thermodynamics
Pozsár, Áron
Szücs, Mátyás
Kovács, Róbert
Fülöp, Tamás
Classical Physics
Numerical Analysis
The recent results attained from a thermodynamically conceived numerical scheme applied on wave propagation in viscoelastic/rheological solids are generalized here, both in the sense that the scheme is extended to four spacetime dimensions and in the aspect of the virtues of a thermodynamical approach. Regarding the scheme, the arrangement of which quantity is represented where in discretized spacetime, including the question of appropriately realizing the boundary conditions, is nontrivial. In parallel, placing the problem in the thermodynamical framework proves to be beneficial in regards to monitoring and controlling numerical artefacts - instability, dissipation error, and dispersion error. This, in addition to the observed preciseness, speed, and resource-friendliness, makes the thermodynamically extended symplectic approach that is presented here advantageous above commercial finite element software solutions.
title Four spacetime dimensional simulation of rheological waves in solids and the merits of thermodynamics
topic Classical Physics
Numerical Analysis
url https://arxiv.org/abs/2012.02266