Abstract <p>This study examines magneto-thermoelastic for a rotating half-space without energy dissipation, utilizing Green-Lindsay elasticity theory hyperbolic thermoelasticity model. Normal mode analysis is used to solve the problem, deriving the displacement components, temperature and stress components and analyzing specific cases. The numerical results are also obtained and presented graphically to show the effect of magnetic field, rotation and time on the components. Numerical computations are facilitated through Mathematica programming, focusing on a material exhibiting properties analogous to a magnesium crystal. The results reveal that the presence of magnetic field, rotation and time significantly increases and decreases the values of physical variables, especially with higher magnetic field and rotation, highlighting their considerable impact on the system’s dynamics. Also, the results underscore the significant influence of magnetic field, rotation and time on the various field quantities. The numerical and graphical results underscore the significant influence of magnetic field, time, and rotation on the various field quantities. The results presented in this research are helpful for the theoretical study and technological applications of wave propagation in the context of thermoelasticity has a great role in ceramics.</p>

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Effect of Magnetic Field on a Rotating Thermoelastic Problem for a Half-Space

  • S. M. Abo-Dahab,
  • R. A. Mohamed,
  • A. M. Abd-Alla,
  • H. A. Abd-Elahmeid,
  • F. S. Bayones

摘要

Abstract

This study examines magneto-thermoelastic for a rotating half-space without energy dissipation, utilizing Green-Lindsay elasticity theory hyperbolic thermoelasticity model. Normal mode analysis is used to solve the problem, deriving the displacement components, temperature and stress components and analyzing specific cases. The numerical results are also obtained and presented graphically to show the effect of magnetic field, rotation and time on the components. Numerical computations are facilitated through Mathematica programming, focusing on a material exhibiting properties analogous to a magnesium crystal. The results reveal that the presence of magnetic field, rotation and time significantly increases and decreases the values of physical variables, especially with higher magnetic field and rotation, highlighting their considerable impact on the system’s dynamics. Also, the results underscore the significant influence of magnetic field, rotation and time on the various field quantities. The numerical and graphical results underscore the significant influence of magnetic field, time, and rotation on the various field quantities. The results presented in this research are helpful for the theoretical study and technological applications of wave propagation in the context of thermoelasticity has a great role in ceramics.