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March 30, 2026ZAMM ‐ Journal of Applied Mathematics and Mechanics / Zeitschrift für Angewandte Mathematik und Mechanik0 citations

Comprehensive Analysis of Stress and Thermal Gradient Evolution in Thick‐Walled Cylindrical Tubes Subjected to External Pressure and Thermal Loading

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PTPankaj ThakurPGPriya Gulial

Key Points

  • The aim is to analyze the thermo-mechanical behavior of thick-walled cylindrical tubes under external pressure and thermal loading.
  • Analyzed thick-walled cylindrical tubes made of magnesium and aluminum.
  • Evaluated the effects of radius ratios on stress and pressure distributions.
  • Assessed mechanical loading and temperature gradients.
  • Conducted a comparative analysis of both materials under varying conditions.
  • Internal pressure decreases nonlinearly with increasing radius ratio.
  • Aluminum shows higher pressure resistance due to greater elastic modulus and yield strength.
  • Magnesium exhibits significant thermal softening, especially under elevated loads.
  • Aluminum demonstrates superior resistance to mechanical deformation compared to magnesium.

Abstract

ABSTRACT This study presents a comprehensive analysis of the thermo‐mechanical behavior of thick‐walled cylindrical tubes composed of magnesium (Mg) and aluminum (Al), subjected to external pressure and varying thermal conditions. The investigation focuses on the impact of radii ratios, mechanical loading, and temperature gradients on stress and pressure distributions in both contraction and extension regions. A comparative approach reveals that internal pressure decreases nonlinearly with increasing radii ratio, with aluminum consistently exhibiting higher pressure resistance due to its greater elastic modulus and yield strength. The rise in temperature induces thermal softening, more significant in magnesium, particularly under elevated loads in the extension regime. Stress distribution profiles demonstrate that aluminum offers superior resistance to mechanical deformation, whereas magnesium exhibits enhanced flexibility. The findings highlight the crucial influence of material selection and operating conditions on the structural and thermal performance of cylindrical components, providing valuable insights for the design and optimization of pressure‐bearing elements in thermally loaded environments.

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Cite This Study

Thakur et al. (2026) studied this question.

synapsesocial.com/papers/69ca134b883daed6ee09540fhttps://doi.org/10.1002/zamm.70370
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