Thermomechanical response of a poroelastic half-space soil medium subjected to time harmonic loads
β Scribed by Zheng Lu; Hailin Yao; Ganbin Liu
- Publisher
- Elsevier Science
- Year
- 2010
- Tongue
- English
- Weight
- 586 KB
- Volume
- 37
- Category
- Article
- ISSN
- 0266-352X
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β¦ Synopsis
The thermomechanical responses of a porous elastic medium subjected to time harmonic loads (normal force and thermal source) are investigated analytically in the context of generalised thermoelastic theory with one relaxation time. The material of the foundation, obeying Biot's dynamic poroelastic theory, is idealised as a uniform, fully saturated poroelastic half-space stratum. The coupled governing equations are established based on Biot's dynamic poroelastic theory and on generalised thermoelastic theory. Assuming the disturbances to be harmonically time dependent, the general solutions of stress, displacement, temperature distribution and excess pore water pressure are deduced using the Fourier transform, and the transformed solutions are numerically inverted. The differences a mong the coupled thermohydro-mechanical dynamic model (THMD), the hydro-mechanical dynamic model (HMD) and the thermo-elastic dynamic model (TMD) are discussed. In addition, the effects of the thermal loading frequency on the displacement, stress, temperature distribution and excess pore water pressure components are analysed in the numerical results.
π SIMILAR VOLUMES
Dynamic response of an infinite beam resting on a layered poroelastic half-space subjected to moving loads is investigated in this study. The equivalent stiffness of the layered poroelastic half-space is obtained via the transmission and reflection matrices (TRM) method in the frequency wavenumber d
## Abstract The paper presents a threeβdimensional study on the steadyβstate response of a track system and layered halfβspace soil medium subjected to the load induced by the passages of a moving train with the substructure method. Practically, due to the ground water table being several meters be