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Nonlocal buckling characteristics of functionally graded nano-plates subjected to thermal loads and biaxial linearly varying forces

机译:功能梯度纳米板在热载荷和双轴线性变化力作用下的非局部屈曲特性

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The buckling characteristics of thin functionally graded (FG) nano-plates subjected to both thermal loads and biaxial linearly varying forces is investigated. Eringen's nonlocal elasticity theory is employed to account for the nano-scale phenomena in the plates. Hamilton's principle and the constitutive relations are used to derive the partial differential governing equations of motion for the thin plates that are modeled using Kirchhoff s plate theory. The mechanical properties of the FG nano-plates are assumed to vary smoothly across the thickness of the plate following a power law. Three types of thermal loads are presented and the spectral collocation method is utilized to solve for the critical buckling loads. The accuracy of the numerical solution of the proposed model is verified by comparing the results with those available in the literature. A comprehensive parametric study is carried out, and the effects of the nonlocal scale parameter, power law index, aspect ratio, slopes of the axial loads, boundary conditions, assumed temperature distributions, and the difference between the ceramic-rich and metal-rich surfaces on the nonlocal critical buckling loads of the nano-plates are examined. The results reveal that these parameters have significant influence on the stability behavior of the FG nano-plates.
机译:研究了经受热负荷和双轴线性变化力的薄功能梯度(FG)纳米板的屈曲特性。 eringen的非局部弹性理论被用于考虑板中的纳米级现象。汉密尔顿的原则和本构关系用于得出使用Kirchhoff S板理论建模的薄板的部分差分控制运动方程。假设FG纳米板的机械性能在电力法之后横跨板的厚度平滑地变化。提出了三种类型的热载荷,并且利用光谱搭配方法来解决关键屈曲负载。通过将结果与文献中可用的结果进行比较来验证所提出的模型的数值解的准确性。进行了一个综合的参数研究,并且非识别尺度参数,功率法指数,纵横比,轴向载荷,边界条件,假定温度分布的斜率以及富含金属富含金属表面的差异的影响在检查纳米板的非局部关键屈曲负荷上。结果表明,这些参数对FG纳米板的稳定性行为具有显着影响。

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