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Hygro-thermal vibration analysis of graded double-refined-nanoplate systems using hybrid nonlocal stress-strain gradient theory

机译:混合非局部应力-应变梯度理论的梯度双细化纳米板系统湿热振动分析

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A new dynamic modeling and free vibrational analysis of double-layered nanoplates made of functionally graded (FG) materials in hygro-thermal environments is presented for the first time. A better description of size-dependent phenomena is presented using a nonlocal stress-strain gradient theory. The double-layered nanoplate is subjected to hygro-thermal loading and it is resting on elastic medium. The gradation of material properties is considered using power-law model. Modeling of double-layered nanoplate is conducted according to a refined four-variable plate theory with fewer field variables than first order plate theory. The governing equations and related classical and non-classical boundary conditions are derived based on Hamilton's principle. These equations are solved for hinged nanoplates via Galerkin's method. It is indicated that type of vibration, moisture rise, temperature rise, nonlocal parameter, strain gradient parameter, material gradation, elastic foundation and side-to-thickness have a remarkable influence on vibration behavior of double-layered nanoscale plates. (C) 2017 Elsevier Ltd. All rights reserved.
机译:首次提出了在湿热环境中功能梯度(FG)材料制成的双层纳米板的新动态建模和自由振动分析。使用非局部应力应变梯度理论可以更好地描述尺寸相关现象。双层纳米板受到湿热负荷,并停留在弹性介质上。使用幂律模型考虑材料特性的等级。双层纳米板的建模是根据改进的四变量板理论进行的,其场变量少于一阶板理论。基于汉密尔顿原理,推导了控制方程及相关的经典和非经典边界条件。通过Galerkin方法求解了铰接纳米板的这些方程。结果表明,振动类型,湿度升高,温度升高,非局部参数,应变梯度参数,材料等级,弹性基础和厚度比对双层纳米板的振动行为有显着影响。 (C)2017 Elsevier Ltd.保留所有权利。

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