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首页> 外文期刊>International Journal of Mechanical Sciences >Nonlinear thermal behavior of shear deformable FG porous nanobeams with geometrical imperfection: Snap-through and postbuckling analysis
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Nonlinear thermal behavior of shear deformable FG porous nanobeams with geometrical imperfection: Snap-through and postbuckling analysis

机译:具有几何缺陷的剪切可变形FG多孔纳米芯片的非线性热行为:快速和后置分析

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摘要

Present paper deals with the nonlinear thermal bending response, thermal postbuckling behavior, and snapthrough phenomenon due to lateral mechanical load in a thermally preloaded functionally graded (FG) porous perfect/imperfect nanobeam subjected to two types of thermal loading, including heat conduction across the thickness and uniform temperature rise. Heterogenous material properties of the porous nanobeams are assumed to be position/temperature-dependent, where dependency is obtained according to the modified rule of mixture and Touloukian formulation. Two types of porosity distribution and also geometrical imperfection of the nanobeam are considered. Assuming the Timoshenko beam model and von-Karman nonlinearity, the nonlinear equilibrium equations are extracted on the basis of the nonlocal theory of elasticity. With the establishment of the principle of virtual displacement and Chebyshev polynomial of the first kind as the basic functions, the Ritz method is utilized to obtain the matrix form of the nonlocal governing equations. Two different strategies, including the Newton-Raphson technique and direct displacement control scheme, are first proposed to extract the nonlinear bending and postbuckling trajectories of the graded porous nanobeam. Afterwards, to trace the snapping behavior beyond limit loads of the graded porous nanobeam with thermal preloading, the cylindrical arch-length scheme as a path-following method is adopted. Numerical parametric investigations are given to discuss the influences of the power-law index, two types of porosity distribution and thermal loads, size-dependent nonlocal parameter, imperfection amplitude, and boundary conditions on the snap-through behavior and the nonlinear thermal stability of the FG nanobeam.
机译:本文涉及非线性热弯曲响应,热后置行为和随着横向机械负载的横向机械负载,其在热预加载的功能梯度(FG)多孔完美/缺乏纳米流中进行两种热负荷,包括横跨厚度的热传导均匀的温度升高。假设多孔纳米束的异质材料特性是定位/温度依赖性,其中根据混合物和Touloukian配方的改性规则获得依赖性。考虑了两种类型的孔隙率分布以及纳米辐射的几何缺陷。假设Timoshenko光束模型和von-Karman非线性,基于非识别弹性理论提取非线性平衡方程。通过建立虚拟位移和FeCbyshev的第一类作为基本功能的多项式的原理,利用RITZ方法获得非识别控制方程的基质形式。首先提出包括牛顿Raphson技术和直接位移控制方案的两种不同的策略,以提取分级多孔纳米射游的非线性弯曲和出现的突出轨迹。然后,为了追踪具有热预加载的渐变多孔纳米辐射的极限载荷的捕捉行为,采用作为路径跟踪方法的圆柱形拱长方案。给出了数值参数调查,讨论了动力法指数,两种孔隙度分布和热负荷,尺寸依赖性非峰值参数,缺陷幅度和边界条件的影响,以及对速度的行为和非线性热稳定性的边界条件FG Nanobeam。

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