Heat Flow Transport Model by Gauss-Seidel Type Iteration Methods for Gas and Solid Materials

Technological processes for modification of materials, deposition, and prevented fumes in the pyrolysis processes are used gases materials in the medium with vacuum pressure or atmospheric air pressure. Therefore, it is essential to understand heat flow transport for designing an efficient reactor or...

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Main Authors: Nurlaela Rauf, Heryanto Haeruddin, Roni Rahmat, Dahlang Tahir
Format: Article
Language:English
Published: Lambung Mangkurat University Press 2021-03-01
Series:Jurnal Fisika Flux
Subjects:
Online Access:https://ppjp.ulm.ac.id/journal/index.php/f/article/view/10128
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spelling doaj-fdb30f8d783f484f83d14c9c566ca4472021-03-26T14:07:40ZengLambung Mangkurat University PressJurnal Fisika Flux1829-796X2541-17132021-03-01181566610.20527/flux.v18i1.101286681Heat Flow Transport Model by Gauss-Seidel Type Iteration Methods for Gas and Solid MaterialsNurlaela Rauf0Heryanto Haeruddin1Roni Rahmat2Dahlang Tahir3physics departmentHasanuddin Universityphysics departmentphysics departmentTechnological processes for modification of materials, deposition, and prevented fumes in the pyrolysis processes are used gases materials in the medium with vacuum pressure or atmospheric air pressure. Therefore, it is essential to understand heat flow transport for designing an efficient reactor or find the substrate's excellent position in the reactor or furnace for growing materials. We evaluated the energy transfer phenomena in the form of temperature distribution and heat flow for various heating sources for the gases and solid materials by Gauss-Seidel equation. The thermal conductivity coefficient (k), number of heating sources, and position of heating sources show an essential parameter for transmitting the distribution of the heat. For high k value shows efficiently for heat transfer at low temperature due to the atom's position close each other. The heat also affects to the phonon and lattice vibration like a wave which  successfully shows these phenomena in this study.https://ppjp.ulm.ac.id/journal/index.php/f/article/view/10128heat transport
collection DOAJ
language English
format Article
sources DOAJ
author Nurlaela Rauf
Heryanto Haeruddin
Roni Rahmat
Dahlang Tahir
spellingShingle Nurlaela Rauf
Heryanto Haeruddin
Roni Rahmat
Dahlang Tahir
Heat Flow Transport Model by Gauss-Seidel Type Iteration Methods for Gas and Solid Materials
Jurnal Fisika Flux
heat transport
author_facet Nurlaela Rauf
Heryanto Haeruddin
Roni Rahmat
Dahlang Tahir
author_sort Nurlaela Rauf
title Heat Flow Transport Model by Gauss-Seidel Type Iteration Methods for Gas and Solid Materials
title_short Heat Flow Transport Model by Gauss-Seidel Type Iteration Methods for Gas and Solid Materials
title_full Heat Flow Transport Model by Gauss-Seidel Type Iteration Methods for Gas and Solid Materials
title_fullStr Heat Flow Transport Model by Gauss-Seidel Type Iteration Methods for Gas and Solid Materials
title_full_unstemmed Heat Flow Transport Model by Gauss-Seidel Type Iteration Methods for Gas and Solid Materials
title_sort heat flow transport model by gauss-seidel type iteration methods for gas and solid materials
publisher Lambung Mangkurat University Press
series Jurnal Fisika Flux
issn 1829-796X
2541-1713
publishDate 2021-03-01
description Technological processes for modification of materials, deposition, and prevented fumes in the pyrolysis processes are used gases materials in the medium with vacuum pressure or atmospheric air pressure. Therefore, it is essential to understand heat flow transport for designing an efficient reactor or find the substrate's excellent position in the reactor or furnace for growing materials. We evaluated the energy transfer phenomena in the form of temperature distribution and heat flow for various heating sources for the gases and solid materials by Gauss-Seidel equation. The thermal conductivity coefficient (k), number of heating sources, and position of heating sources show an essential parameter for transmitting the distribution of the heat. For high k value shows efficiently for heat transfer at low temperature due to the atom's position close each other. The heat also affects to the phonon and lattice vibration like a wave which  successfully shows these phenomena in this study.
topic heat transport
url https://ppjp.ulm.ac.id/journal/index.php/f/article/view/10128
work_keys_str_mv AT nurlaelarauf heatflowtransportmodelbygaussseideltypeiterationmethodsforgasandsolidmaterials
AT heryantohaeruddin heatflowtransportmodelbygaussseideltypeiterationmethodsforgasandsolidmaterials
AT ronirahmat heatflowtransportmodelbygaussseideltypeiterationmethodsforgasandsolidmaterials
AT dahlangtahir heatflowtransportmodelbygaussseideltypeiterationmethodsforgasandsolidmaterials
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