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March 13, 20260 citationsOpen Access

Rotation Effects on a Nonlocal Micropolar Double-Porous Medium with Variable Conductivity and Initial Stress Using MGT Theory

DSDoaa M. SalahAAAM Abd-AllaSESMM El-Kabeir

Key Points

  • The research aims to analyze the two-dimensional behavior of a nonlocal micropolar double-porous medium under rotational and thermal influences.
  • Derived governing equations using generalized thermoelasticity.
  • Applied MGT heat conduction model with variable thermal conductivity.
  • Utilized Lame’s potentials and normal mode analysis for obtaining solutions.
  • Analyzed effects under various boundary conditions including variable temperature and normal stress.
  • Employed numerical evaluations using MATHEMATICA to illustrate the effects of different parameters.
  • Double porosity significantly enhances material responses under various conditions.
  • Increased time, rotation, and initial stress amplify effects on displacement and thermal stresses.
  • Results validate against existing literature, presenting several special cases for comparison.

Abstract

This study investigates the two-dimensional behavior of a nonlocal micropolar double-porous thermoelastic material with voids (MDPTMWV) within the framework of the Moore–Gibson–Thompson (MGT) theory. An isotropic, homogeneous, initially stressed, rotating thermoelastic half-space with double porosity is considered. The MGT heat conduction model, incorporating memory-dependent derivatives and variable thermal conductivity, is employed. Governing equations are derived using generalized thermoelasticity, and analytical solutions for displacement, temperature, equilibrated stress, and thermal stress components are obtained via Lame’s potentials combined with normal mode analysis. The model is analyzed under boundary conditions including variable temperature, normal stress, constant equilibrated stress, and stress-free surfaces. Numerical evaluations using MATHEMATICA illustrate the effects of time, rotation, initial stress, and nonlocal parameters. The results indicate that double porosity and the considered parameters significantly amplify material responses, particularly under increasing time, rotation, initial stress, and nonlocal effects. Several special cases are discussed and validated against the literature. These findings provide insights relevant to geophysics, seismology, and earthquake engineering.

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Cite This Study

Salah et al. (2025) studied this question.

synapsesocial.com/papers/69b3ab2902a1e69014ccbddahttps://doi.org/10.57647/mathsci.2026.97471
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