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The nonlinear thermo-hyperelasticity wave propagation analysis of near-incompressible functionally graded medium under mechanical and thermal loadings

机译:机械和热载荷下近压功能渐变介质的非线性热超痉挛波传播分析

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This article presents a non-Fourier thermo-hyperelastic model to investigate thermal and stress wave propagation phenomenon in a near-incompressible functionally graded medium (FGM) for various thermal and mechanical boundary conditions. A strain energy function is chosen to modify FGM's hyperelastic equations considering the coupling effects of mechanical and thermal terms. By switching the strain tensor's invariants, equations are developed to estimate a near-incompressible model for rubber. The rubber is characterized by a gradual variation in the longitudinal direction. Therefore, the material properties of rubber mainly depend on coordinates in through an exponential function. The nonlinear governing equations are derived from the large displacement approach using Finite Strain Theory. To find an acceptable solution of nonlinear time-dependent thermo-hyperelastic equations, Newmark's time integration process and a nonlinear Hermitian finite element algorithm are employed. The final system's responses to different boundary conditions such as input surface traction, heat flux and variable material properties are described schematically, and their influence on the wave propagation is calculated. It is shown that the amplitude of oscillation in a functionally graded hyperelastic medium is less than that of a medium with constant properties. The results also show that the wave travels through the medium faster than the FGM. Moreover, the modified Fourier law of heat conduction is applied and the impact of enhanced heat conduction model on the thermo-hyperelastic responses is discussed.
机译:本文介绍了一种非傅立叶热超弹性模型,用于研究近乎不可压缩的功能渐进式介质(FGM)中的热和应力波传播现象,用于各种热和机械边界条件。选择应变能功能以修改考虑机械和热术语的耦合效应的FGM的超弹性方程。通过切换应变张量的不变性,开发了方程以估计橡胶的近压不可压缩模型。橡胶的特征在于纵向逐渐变化。因此,橡胶的材料特性主要取决于通过指数函数的坐标。非线性控制方程源自使用有限应变理论的大移位方法。为了找到可接受的非线性时间依赖性热超弹簧方程的解决方案,采用了纽马克的时间集成过程和非线性密封有限元算法。示意性地描述了最终系统对不同边界条件的反应,例如输入表面牵引,热通量和可变材料特性,并且计算它们对波传播的影响。结果表明,功能梯度的超弹性介质中的振幅小于具有恒定性质的介质的振幅。结果还表明,波浪通过介质快于FGM来传播。此外,讨论了修改的傅里叶的热传导定律,并讨论了增强的热传导模型对热超速度响应的影响。

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