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Nonlinear vibration analysis of a bi-directional functionally graded beam under hygro-thermal loads

机译:湿热荷载下双向功能梯度梁的非线性振动分析

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The nonlinear hygro-thermal dynamics of a bi-directionally functionally graded beam with coupled transverse and longitudinal displacements are studied. The material properties and hygro-thermal distributions are assumed to gradually change along both thickness and length directions according to the arbitray functions. The nonlinear coupled dynamic equations governing the transverse and longitudinal motions of the beam are derived using Hamilton's principle, the von Korman geometric nonlinearity and Euler-Bernoulli theory, as well as considering uniform, linear and sinusoidal distributed hygro-thermal loads. The generalized differential quadrature method with an iterative technique is applied for the nonlinear analysis. Parametric studies are implemented to explore the impacts of the material gradations, temperature rise and moisture concentration on nonlinear frequencies of the beam for various boundary conditions. Results show that the nonlinear dynamic is highly depended on hygro-thermal effects as well as the material properties, which can be used for designing accurately the multi-directionally functionally graded structures in different environmental conditions.
机译:研究了具有横向和纵向位移耦合的双向功能梯度梁的非线性湿热动力学。假设材料特性和湿热分布会根据任意函数沿厚度和长度方向逐渐变化。利用汉密尔顿原理,von Korman几何非线性和Euler-Bernoulli理论,并考虑均匀,线性和正弦分布的湿热负荷,推导了控制梁横向和纵向运动的非线性耦合动力学方程。采用迭代技术的广义微分求积法进行非线性分析。进行了参数研究,以探索在各种边界条件下,材料梯度,温度升高和水分浓度对梁非线性频率的影响。结果表明,非线性动力学高度依赖于湿热效应以及材料特性,可用于精确设计在不同环境条件下的多方向功能梯度结构。

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