Thermal analysis on porous material by finite element method

The aim of this project is to study the heat flux of two-phase rectangular composite bar via a random distribution of materials to discover the range of critical compositions for which the percolation of heat flux will be diminished. With an aid of a finite element software program, Ansys 11.0, the...

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Main Author: Ma, Su Mon Soe
Other Authors: Fan Hui
Format: Final Year Project
Language:English
Published: 2010
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Online Access:http://hdl.handle.net/10356/20797
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Institution: Nanyang Technological University
Language: English
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spelling sg-ntu-dr.10356-207972023-03-04T19:06:41Z Thermal analysis on porous material by finite element method Ma, Su Mon Soe Fan Hui Li Chuan School of Mechanical and Aerospace Engineering DRNTU::Engineering::Materials::Composite materials The aim of this project is to study the heat flux of two-phase rectangular composite bar via a random distribution of materials to discover the range of critical compositions for which the percolation of heat flux will be diminished. With an aid of a finite element software program, Ansys 11.0, the thermal properties of the modelled rectangular bar and results of the simulations are then interpreted and discussed. The first part of the project is to perform the thermal analysis on the air-aluminium composite bar and compare the analytical results and FEA results of the temperature distribution of aluminium composite bar. The second part of the project is to perform the nodal temperature analysis on the same composite bar to study the average centre node temperature. The third part of the project is to perform the heat flux temperature analysis on the same composite bar to study the average thermal flux of centre node line to discover the range of critical compositions for which the percolation of heat flux will be diminished. In the fourth part of the project is to evaluate and study the equivalent thermal conductivity of centre node temperature. At every case, the numerical simulation of the temperature and heat flux is obtained with a sample size of 30 for each of given volume fraction. The finite element simulation results for which the percolation of heat flux will be diminished are within the range of 30% to 40% of Air. Bachelor of Engineering (Mechanical Engineering) 2010-01-11T01:15:11Z 2010-01-11T01:15:11Z 2009 2009 Final Year Project (FYP) http://hdl.handle.net/10356/20797 en Nanyang Technological University 81 p. application/pdf
institution Nanyang Technological University
building NTU Library
continent Asia
country Singapore
Singapore
content_provider NTU Library
collection DR-NTU
language English
topic DRNTU::Engineering::Materials::Composite materials
spellingShingle DRNTU::Engineering::Materials::Composite materials
Ma, Su Mon Soe
Thermal analysis on porous material by finite element method
description The aim of this project is to study the heat flux of two-phase rectangular composite bar via a random distribution of materials to discover the range of critical compositions for which the percolation of heat flux will be diminished. With an aid of a finite element software program, Ansys 11.0, the thermal properties of the modelled rectangular bar and results of the simulations are then interpreted and discussed. The first part of the project is to perform the thermal analysis on the air-aluminium composite bar and compare the analytical results and FEA results of the temperature distribution of aluminium composite bar. The second part of the project is to perform the nodal temperature analysis on the same composite bar to study the average centre node temperature. The third part of the project is to perform the heat flux temperature analysis on the same composite bar to study the average thermal flux of centre node line to discover the range of critical compositions for which the percolation of heat flux will be diminished. In the fourth part of the project is to evaluate and study the equivalent thermal conductivity of centre node temperature. At every case, the numerical simulation of the temperature and heat flux is obtained with a sample size of 30 for each of given volume fraction. The finite element simulation results for which the percolation of heat flux will be diminished are within the range of 30% to 40% of Air.
author2 Fan Hui
author_facet Fan Hui
Ma, Su Mon Soe
format Final Year Project
author Ma, Su Mon Soe
author_sort Ma, Su Mon Soe
title Thermal analysis on porous material by finite element method
title_short Thermal analysis on porous material by finite element method
title_full Thermal analysis on porous material by finite element method
title_fullStr Thermal analysis on porous material by finite element method
title_full_unstemmed Thermal analysis on porous material by finite element method
title_sort thermal analysis on porous material by finite element method
publishDate 2010
url http://hdl.handle.net/10356/20797
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