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September 5, 2026International Journal of Numerical Methods for Heat &amp Fluid Flow

Refined multi-phase-lag effects in a rotating micropolar semiconducting elastic media under hydrostatic initial stress

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Authors

DNDenisa Maria NeaguMMMarín Marín

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Overview

Theoretical modeling demonstrates modified wave propagation in rotating micropolar semiconductors under initial stress, suggesting improved predictive accuracy over classical models.

Key Points

  • To analyze how thermal, elastic, micropolar, and plasma waves interact in a rotating semiconductor medium under photothermal excitation, hydrostatic initial stress, and refined multi-phase-lag thermoelasticity.
  • Formulated coupled governing equations incorporating micropolar elasticity, angular rotation, hydrostatic initial stress, and refined multi-phase-lag thermoelastic theory.
  • Applied the normal mode method to derive analytical solutions for displacement, normal stress, couple stress, temperature, carrier density, and microrotation under specified surface boundary conditions.
  • Compared wave behavior across four thermoelastic models while evaluating the specific impacts of rotation, initial stress, and thermoelectric coupling.
  • Refined multi-phase-lag parameters, angular rotation, and hydrostatic initial stress significantly altered the amplitude and propagation characteristics of all physical fields.
  • Thermoelectric coupling substantially shifted carrier density and temperature distributions compared to predictions from classical thermoelastic formulations.

Cite This Study

Neagu et al. (2026) studied this question.

synapsesocial.com/papers/6a9bd4126b95aff0620eb739https://doi.org/10.1108/hff-04-2026-0460
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