Generalized Lagging Response of Thermoelastic Beams

The vibrations of Euler-Bernoulli metal beam are accommodated in the present study by taking into account the possibility of activating the microstructural effects, captured by the temperature gradient phase lag, in the fast transient process captured by the heat flux phase lag. The thermal moment i...

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Main Authors: Ibrahim H. El-Sirafy, Mohamed A. Abdou, Emad Awad
Format: Article
Language:English
Published: Hindawi Limited 2014-01-01
Series:Mathematical Problems in Engineering
Online Access:http://dx.doi.org/10.1155/2014/780679
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spelling doaj-e54bf82755f344acb9fde53fa8cd612a2020-11-24T20:40:22ZengHindawi LimitedMathematical Problems in Engineering1024-123X1563-51472014-01-01201410.1155/2014/780679780679Generalized Lagging Response of Thermoelastic BeamsIbrahim H. El-Sirafy0Mohamed A. Abdou1Emad Awad2Department of Mathematics, Faculty of Science, Alexandria University, Alexandria, EgyptDepartment of Mathematics, Faculty of Education, Alexandria University, Alexandria, EgyptDepartment of Mathematics, Faculty of Education, Alexandria University, Alexandria, EgyptThe vibrations of Euler-Bernoulli metal beam are accommodated in the present study by taking into account the possibility of activating the microstructural effects, captured by the temperature gradient phase lag, in the fast transient process captured by the heat flux phase lag. The thermal moment is approximated as the difference between the top and the bottom surface temperatures (Massalas and Kalpakidis 1983). Three generalizations of the Biot model of thermomechanics are considered: Lord-Shulman, dual-phase-lag (Tzou 1997), and modified dual-phase-lag (Awad 2012). It is found that when the response time is shortened, the material dimensions are small, or when the method of heating is changed, the dual-phase-lag model records a significant decrease in the lattice variables. The spurious serrations of the classical thermoelastic wave are smoothed in the dual-phase-lag wave. The dual-phase-lag thermoelasticity is the closest macroscopic approach to the ultrafast model (Chen et al. 2002).http://dx.doi.org/10.1155/2014/780679
collection DOAJ
language English
format Article
sources DOAJ
author Ibrahim H. El-Sirafy
Mohamed A. Abdou
Emad Awad
spellingShingle Ibrahim H. El-Sirafy
Mohamed A. Abdou
Emad Awad
Generalized Lagging Response of Thermoelastic Beams
Mathematical Problems in Engineering
author_facet Ibrahim H. El-Sirafy
Mohamed A. Abdou
Emad Awad
author_sort Ibrahim H. El-Sirafy
title Generalized Lagging Response of Thermoelastic Beams
title_short Generalized Lagging Response of Thermoelastic Beams
title_full Generalized Lagging Response of Thermoelastic Beams
title_fullStr Generalized Lagging Response of Thermoelastic Beams
title_full_unstemmed Generalized Lagging Response of Thermoelastic Beams
title_sort generalized lagging response of thermoelastic beams
publisher Hindawi Limited
series Mathematical Problems in Engineering
issn 1024-123X
1563-5147
publishDate 2014-01-01
description The vibrations of Euler-Bernoulli metal beam are accommodated in the present study by taking into account the possibility of activating the microstructural effects, captured by the temperature gradient phase lag, in the fast transient process captured by the heat flux phase lag. The thermal moment is approximated as the difference between the top and the bottom surface temperatures (Massalas and Kalpakidis 1983). Three generalizations of the Biot model of thermomechanics are considered: Lord-Shulman, dual-phase-lag (Tzou 1997), and modified dual-phase-lag (Awad 2012). It is found that when the response time is shortened, the material dimensions are small, or when the method of heating is changed, the dual-phase-lag model records a significant decrease in the lattice variables. The spurious serrations of the classical thermoelastic wave are smoothed in the dual-phase-lag wave. The dual-phase-lag thermoelasticity is the closest macroscopic approach to the ultrafast model (Chen et al. 2002).
url http://dx.doi.org/10.1155/2014/780679
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AT mohamedaabdou generalizedlaggingresponseofthermoelasticbeams
AT emadawad generalizedlaggingresponseofthermoelasticbeams
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