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Propagation of a thermoelastic wave in a half-space of a homogeneous isotropic material subjected to the effect of gravity field
The propagation of thermoelastic waves in a homogeneous, isotropic elastic semi-infinite space is subjected to a gravitational field, which is at temperature T0 initially, and whose boundary surface is subjected to heat source and load moving with finite velocity. Temper-ature and stress distribution occurring due to heating or cooling and have been determined using certain boundary conditions. Numerical results have been given and illustrated graphically in each case considered. The results indicate that the effect of gravity field is very pronounced. Comparison is made with the results predicted by the theory of thermo-elasticity in the absence of gravity. The results indicate that the effect of the gravity is very pronounced.
Propagation of a thermoelastic wave in a half-space of a homogeneous isotropic material subjected to the effect of gravity field
The propagation of thermoelastic waves in a homogeneous, isotropic elastic semi-infinite space is subjected to a gravitational field, which is at temperature T0 initially, and whose boundary surface is subjected to heat source and load moving with finite velocity. Temper-ature and stress distribution occurring due to heating or cooling and have been determined using certain boundary conditions. Numerical results have been given and illustrated graphically in each case considered. The results indicate that the effect of gravity field is very pronounced. Comparison is made with the results predicted by the theory of thermo-elasticity in the absence of gravity. The results indicate that the effect of the gravity is very pronounced.
Propagation of a thermoelastic wave in a half-space of a homogeneous isotropic material subjected to the effect of gravity field
Archiv.Civ.Mech.Eng
Abd-Alla, Abdelmooty M. (author) / Abo-Dahab, Sayed M. (author) / Alotaibi, Hind A. (author)
Archives of Civil and Mechanical Engineering ; 17 ; 564-573
2017-09-01
10 pages
Article (Journal)
Electronic Resource
English
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