Megahid Sami F
Department of Mathematics, Faculty of Science, Mansoura University, Mansoura, 35516, Egypt.
Department of Mathematics, Faculty of Science, New Mansoura University, New Mansoura City, 35712, Egypt.
Sci Rep. 2025 Jul 24;15(1):26942. doi: 10.1038/s41598-025-11471-3.
Functionally graded materials (FGMs) are sophisticated composites distinguished by a progressive alteration in composition and characteristics, facilitating customized performance for particular applications. Their distinctive architecture facilitates improved mechanical characteristics, thermal resilience, and operational efficacy in domains such as aerospace, biomedical, and automotive engineering. This study presents a novel three-phase-lag (TPL) thermal conductivity model and examines the thermoelastic behavior of a functionally graded medium featuring a spherical void. The paper examines the coupled thermo-mechanical behavior under time-dependent slope-type heating given to the sphere's traction-free inner surface, addressing complex linkages often overlooked in previous research. This research meticulously investigates the influence of critical factors, relaxation times, and ramping time on the dynamic physical response. A rigorous Laplace transform methodology is used to resolve the governing equations, which yields extensive quantitative insights. The findings indicate that the dynamic behavior of functionally graded materials under complex mechanical and thermal loading situations can be more comprehensively understood. This study makes a significant contribution to the field by integrating the TPL model with functionally graded analysis. This represents a substantial progression in thermoelastic functionally graded analysis, with prospective applications in the design of advanced materials, optimization of thermal management systems, and smart material technologies.
功能梯度材料(FGMs)是一种复杂的复合材料,其特点是成分和特性逐渐变化,能够为特定应用提供定制化性能。它们独特的结构有助于在航空航天、生物医学和汽车工程等领域提高机械性能、热弹性和运行效率。本研究提出了一种新颖的三相滞后(TPL)热导率模型,并研究了具有球形空洞的功能梯度介质的热弹性行为。本文研究了在球体无牵引内表面施加随时间变化的斜坡型加热情况下的热-机械耦合行为,解决了以往研究中常常被忽视的复杂联系。本研究细致地考察了关键因素、弛豫时间和斜坡时间对动态物理响应的影响。采用严格的拉普拉斯变换方法求解控制方程,从而获得了广泛的定量见解。研究结果表明,在复杂的机械和热载荷情况下,可以更全面地理解功能梯度材料的动态行为。本研究通过将TPL模型与功能梯度分析相结合,为该领域做出了重大贡献。这代表了热弹性功能梯度分析的重大进展,在先进材料设计、热管理系统优化和智能材料技术方面具有潜在应用。