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首页> 外文期刊>International journal of geomechanics >Analysis of Rayleigh Waves in Micropolar Thermoelastic Solid over a Dual-Phase-Lag Semi-Infinite Thermoelastic Substrate under Interfacial Imperfections
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Analysis of Rayleigh Waves in Micropolar Thermoelastic Solid over a Dual-Phase-Lag Semi-Infinite Thermoelastic Substrate under Interfacial Imperfections

机译:在界面缺陷下双相滞后半无限热弹性基质中微柱热弹性固体瑞利波的分析

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摘要

The study unfurls the analysis of interfacial imperfections on Rayleigh waves transmitting through micropolar thermoelastic solid without energy dissipation over a semi-infinite isotropic thermoelastic solid in context of dual-phase-lag model. Separate analytical expressions regarding displacements and thermal stresses have been derived in order to characterize the dynamics of individual materials. Taking the free surface as thermally insulated and traction free, suitable spring boundary conditions on account of imperfect interfaces have been used upon the surface wave solutions of elastodynamical equations pertinent to those materials. From the real part of eleventh-order determinantal expression, we obtain the frequency equation of Rayleigh waves for the proposed earth model. Some special cases of boundaries i. e., normal stiffness, transverse stiffness, thermal contact conductance, slip boundary have been deduced from the imperfect one. Numerical computations have been performed in order to graphically illustrate the dependencies of different boundaries and phase lag on the phase velocity of Rayleigh waves. The study may find potential applications in fields of naval architecture and aeronautics where temperature induced elastic deformations occur. (c) 2019 American Society of Civil Engineers.
机译:该研究揭示了通过微柱热弹性固体传输的瑞利波界面缺陷的分析,在双相滞后模型中的半无限各向同性热弹性固体上没有能量耗散。已经得出了关于位移和热应力的单独分析表达,以表征各种材料的动态。将自由表面作为热绝缘和无牵引力,合适的弹簧边界条件是由于缺乏界面的缺陷界面已经用于与这些材料相关的弹性动力学方程的表面波解。从第十一阶的真实部分,我们获得了所提出的地球模型的瑞利波的频率方程。一些特殊情况的边界我。即,正常刚度,横向刚度,热接触电导,滑动边界已被推导出从不完美中推断出来。已经执行了数值计算,以便以图形方式示出不同边界和相位滞后对瑞利波的相位速度的依赖性。该研究可能在海军架构和航空航天领域找到潜在的应用,其中发生温度诱导的弹性变形。 (c)2019年美国土木工程学会。

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