A Novel Model of Semiconductor Porosity Medium According to Photo-Thermoelasticity Excitation with Initial Stress
Abstract
:1. Introduction
2. Mathematical Model and Basic Equations
- (i)
- According to [25,28], during the photo-excited process of semiconductor elastic medium, there is a link between thermal waves and plasma waves:The quantity symbolizes the general case of the thermal activation coupling parameter.
- (ii)
- According to the photo-thermoelastic theory, the equations of motion for semiconductor materials under the influence of double porosity and initial stress can be expressed as follows [29]:
- (iii)
- The photo-thermoelastic theory’s heat conduction equation for semiconductor media under the influence of twofold porosity and initial stress can be written as [30]:
- (iv)
- The double porosity model provides a novel approach to the investigation of significant mechanical and civil design problems. When conducting a nondestructive evaluation (NDE) of composite materials and structures, the phenomenon of coexistence of porosity and thermoelasticity is crucial. These substances are frequently discovered in the earth’s reservoir and crustal rocks. According to the coupling nature of the thermal waves and the porous potentials, the porous (voids) equation can be given as [12]:
3. A solution to the Problem
4. Boundary Conditions
5. Inversion of the Fourier-Laplace Transforms
6. Numerical Results and Discussion
7. Conclusions
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
Nomenclature
Lame’s parameters. | |
The distinction between the valence band and the conduction band’s deformation potential. | |
Absolute temperature. | |
Reference temperature when . | |
The thermal expansion of volume. | |
The thermal expansion coefficient. | |
The stress tensor. | |
The density. | |
Cubical dilatation. | |
Specific heat. | |
The thermal conductivity. | |
The carrier diffusion coefficient. | |
Lifetime. | |
Time variable. | |
The energy gap. | |
The strain tensor. | |
Displacement vector. | |
Carrier concentration. | |
The initial pressure. | |
The constants of voids. | |
Thermal memories. | |
The change in volume fraction field. |
Appendix A
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Raddadi, M.H.; El-Bary, A.; Tantawi, R.S.; Anwer, N.; Lotfy, K. A Novel Model of Semiconductor Porosity Medium According to Photo-Thermoelasticity Excitation with Initial Stress. Crystals 2022, 12, 1603. https://doi.org/10.3390/cryst12111603
Raddadi MH, El-Bary A, Tantawi RS, Anwer N, Lotfy K. A Novel Model of Semiconductor Porosity Medium According to Photo-Thermoelasticity Excitation with Initial Stress. Crystals. 2022; 12(11):1603. https://doi.org/10.3390/cryst12111603
Chicago/Turabian StyleRaddadi, Merfat H., A. El-Bary, Ramdan. S. Tantawi, N. Anwer, and Kh. Lotfy. 2022. "A Novel Model of Semiconductor Porosity Medium According to Photo-Thermoelasticity Excitation with Initial Stress" Crystals 12, no. 11: 1603. https://doi.org/10.3390/cryst12111603
APA StyleRaddadi, M. H., El-Bary, A., Tantawi, R. S., Anwer, N., & Lotfy, K. (2022). A Novel Model of Semiconductor Porosity Medium According to Photo-Thermoelasticity Excitation with Initial Stress. Crystals, 12(11), 1603. https://doi.org/10.3390/cryst12111603