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A new thermo-optical system with a fractional Caputo operator for a rotating spherical semiconductor medium immersed in a magnetic field

Ahmed E. Abouelregal (Department of Mathematics, Faculty of Science, Mansoura University, Mansoura, Egypt)
Marin Marin (Department of Mathematics and Computer Science, Transilvania University of Brasov, Brasov, Romania) (Academy of Romanian Scientists, Bucuresti, Romania)
S.S. Saskar (Department of Statistics and Operations Research, King Saud University, Riyadh, Saudi Arabia)
Abdelaziz Foul (Department of Statistics and Operations Research, King Saud University, Riyadh, Saudi Arabia)

Engineering Computations

ISSN: 0264-4401

Article publication date: 5 September 2024

Issue publication date: 10 October 2024

26

Abstract

Purpose

Understanding the mechanical and thermal behavior of materials is the goal of the branch of study known as fractional thermoelasticity, which blends fractional calculus with thermoelasticity. It accounts for the fact that heat transfer and deformation are non-local processes that depend on long-term memory. The sphere is free of external stresses and rotates around one of its radial axes at a constant rate. The coupled system equations are solved using the Laplace transform. The outcomes showed that the viscoelastic deformation and thermal stresses increased with the value of the fractional order coefficients.

Design/methodology/approach

The results obtained are considered good because they indicate that the approach or model under examination shows robust performance and produces accurate or reliable results that are consistent with the corresponding literature.

Findings

This study introduces a proposed viscoelastic photoelastic heat transfer model based on the Moore-Gibson-Thompson framework, accompanied by the incorporation of a new fractional derivative operator. In deriving this model, the recently proposed Caputo proportional fractional derivative was considered. This work also sheds light on how thermoelastic materials transfer light energy and how plasmas interact with viscoelasticity. The derived model was used to consider the behavior of a solid semiconductor sphere immersed in a magnetic field and subjected to a sudden change in temperature.

Originality/value

This study introduces a proposed viscoelastic photoelastic heat transfer model based on the Moore-Gibson-Thompson framework, accompanied by the incorporation of a new fractional derivative operator. In deriving this model, the recently proposed Caputo proportional fractional derivative was considered. This work also sheds light on how thermoelastic materials transfer light energy and how plasmas interact with viscoelasticity. The derived model was used to consider the behavior of a solid semiconductor sphere immersed in a magnetic field and subjected to a sudden change in temperature.

Keywords

Acknowledgements

The authors present their appreciation to King Saud University for funding the publication of this research through the Researchers Supporting Program (RSPD 2024R1003), King Saud University, Riyadh, Saudi Arabia.

Citation

Abouelregal, A.E., Marin, M., Saskar, S.S. and Foul, A. (2024), "A new thermo-optical system with a fractional Caputo operator for a rotating spherical semiconductor medium immersed in a magnetic field", Engineering Computations, Vol. 41 No. 8/9, pp. 2026-2053. https://doi.org/10.1108/EC-01-2024-0007

Publisher

:

Emerald Publishing Limited

Copyright © 2024, Emerald Publishing Limited

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