A modified spatiotemporal nonlocal thermoelasticity theory with higher-order phase delays for a viscoelastic micropolar medium exposed to short-pulse laser excitation

被引:18
作者
Abouelregal, Ahmed E. [1 ]
Marin, Marin [2 ,3 ]
Oechsner, Andreas [4 ]
机构
[1] Jouf Univ, Coll Sci, Dept Math, Sakaka 2014, Saudi Arabia
[2] Transilvania Univ Brasov, Dept Math & Comp Sci, Brasov 500036, Romania
[3] Acad Romanian Scientists, Ilfov St 3, Bucharest 050045, Romania
[4] Esslingen Univ Appl Sci, Fac Mech & Syst Engn, D-73728 Esslingen, Germany
关键词
Micropolar; Spatiotemporal nonlocality; Thermos-viscoelastic size-dependent; Phase delays; Laser pulse; NUMERICAL INVERSION; HEAT-CONDUCTION; PLANE-WAVES; ELASTICITY;
D O I
10.1007/s00161-024-01342-z
中图分类号
O414.1 [热力学];
学科分类号
摘要
At the microscale and nanoscale, materials exhibit size-dependent behaviors that classical models cannot capture. This analysis introduces a size-dependent higher-order thermoelastic heat conduction model, incorporating spatial and temporal nonlocal effects in a micropolar visco-thermoelastic medium subjected to laser pulse heat flux. The two-phase delay model, featuring higher-order temporal derivatives, captures the complex interactions among mechanical, thermal, and viscous properties in materials where size effects are significant. By including phase lag, the model effectively addresses non-Fourier heat conduction in short-duration laser pulse scenarios. It accurately predicts temperature distribution, stress response, and microrotation effects in microscale and nanoscale materials. The study visually represents how factors such as micropolarity, higher-order effects, phase delay, nonlocal index, and viscosity influence the size-dependent mechanical behavior of the half-space structure. The numerical results highlight the importance of size-dependent phenomena in nanostructures, revealing deviations from classical predictions due to nonlocal interactions. Overall, the proposed spatiotemporal nonlocal homogenization model serves as a valuable tool for analyzing the complex mechanical and thermal characteristics of nanomaterials.
引用
收藏
页数:25
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