Abstract
PurposeIn this work, the thermoelastic response in a micro-stretch thermoelastic half-space submerged in an unlimited non-viscous fluid under gravity, the medium is studied using the three-phase-lag model (3PHL) and Green-Naghdi theory (G-N III).Design/methodology/approachThe normal mode analysis was the analytic technique used to obtain the exact formula of the physical quantities.FindingsThe magnesium crystal element is used as an application to compare the predictions induced by gravity on microstretch thermoelastic immersed in an infinite fluid of the three-phase-lag model with those for Green–Naghdi. Gravity has been noticed to have a major effect on all physical quantities. Comparisons were also made for three values of wave number and three values of the real part frequency.Originality/valueThis work is concerned with the thermoelastic micro-stretch solid immersed in an infinite and inviscid fluid and subjected to a gravitational field. The governing equations are formulated in the context of the 3PHL model and G-N theory. An analytical solution to the problem is obtained by employing normal mode analysis. Comparisons of the physical quantities are shown in figures to study the effects of gravity, wave number and the real part of the frequency.
Subject
Mechanical Engineering,Mechanics of Materials,General Materials Science,Modeling and Simulation
Reference24 articles.
1. The size-dependent thermoelastic vibrations of nanobeams subjected to harmonic excitation and rectified sine wave heating;Mathematics,2020
2. The response of nanobeams with temperature- dependent properties using state-space method via modified couple stress theory;Symmetry,2020
3. A thermoelastic microelongated layer immersed in an infinite fluid and subjected to laser pulse heating;Mechanics and Mechanical Engineering,2019
4. Two temperature theory on a micropolar thermoelastic media with voids under the effect of inclined load via three-phase-lag model;Journal of Applied Mathematics and Mechanics,2021
5. Reflection of plane waves in a nonlocal microstretch thermoelastic medium with temperature dependent properties under three-phase-lag model;Mechanics of Advanced Materials and Structures,2022
Cited by
2 articles.
订阅此论文施引文献
订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献