Fractional-Order Thermoelastic Wave Assessment in a Two-Dimensional Fiber-Reinforced Anisotropic Material
Abstract
:1. Introduction
2. Mathematical Model
3. Initial and Boundary Conditions
4. Method of Solution
5. Numerical Result and Discussion
6. Conclusions
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
Nomenclature
are the components of displacement, | |
, | is the increment in temperature, |
is the medium density, | |
is the reference temperature, | |
are the elastic constants, | |
are the components of stresses, | |
is the specific heat at constant strain, | |
are the reinforced anisotropic elastic parameters, | |
are the components of vector where , | |
is the thermal conductivity, | |
is the thermal relaxation time, | |
is the fractional parameter, where cover two types of conductivity, for normal conductivity, and for low conductivity | |
is a constant | |
is the Heaviside unit function | |
is the pulse heat flux characteristic time | |
, | are the number of components |
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Horrigue, S.; Abbas, I.A.
Fractional-Order Thermoelastic Wave Assessment in a Two-Dimensional Fiber-Reinforced
Horrigue S, Abbas IA.
Fractional-Order Thermoelastic Wave Assessment in a Two-Dimensional Fiber-Reinforced
Horrigue, Samah, and Ibrahim A. Abbas.
2020. "Fractional-Order Thermoelastic Wave Assessment in a Two-Dimensional Fiber-Reinforced
Horrigue, S., & Abbas, I. A.
(2020). Fractional-Order Thermoelastic Wave Assessment in a Two-Dimensional Fiber-Reinforced