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Optimal weight for buckling of FG beam under variable axial load using Pareto optimality

机译:使用Pareto最优性,可变轴向载荷下FG梁屈曲的最佳重量

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摘要

In real situation, magnitude, distribution and/or location of axial loads causing a buckling are not known precisely, due to a lack of loading under different operational conditions. Thus, functionally graded structures have to be designed optimally in order to realize their potential. For this reason, this article investigates buckling of functionally graded (FG) beam under variable axial load and optimizes its wight to get the maximum buckling load. The gradation of beam through the thickness direction is described by different function distributions (i.e.; symmetric power and sigmoidal functions). Equations of equilibrium are developed on the basis of higher order shear deformation beam theory by using Hamilton's principles. Load distribution through the axial direction is portrayed by step, linear and parabolical continuous functions. Numerical differential quadrature method (DQM) is used to solve the equilibrium equations and get buckling loads. Multiobjective optimization procedure is performed to design FG beams under varying axial load for maximum buckling load and minimum weight objectives. Pareto front representation of the best light weight design of a beam under variable axial load that maximizes the critical buckling load parameter is predicted through optimization process. The proposed model is efficient in analysis, design and optimizing an isotropic and FG beam under variable inplane load.
机译:在实际情况下,由于在不同的操作条件下缺乏负载,因此不得而知,轴向载荷的幅度,分布和/或导致屈曲的位置不知所措。因此,功能梯度结构必须最佳地设计以实现它们的潜力。因此,本文调查了在可变轴向载荷下功能渐变(FG)光束的屈曲,并优化其致力以获得最大屈曲负荷。通过厚度方向的梁渐变由不同的函数分布(即;对称功率和S形函数)描述。通过使用Hamilton的原理,基于高阶剪切变形光束理论开发平衡方程。通过轴向的负载分布通过步骤,线性和抛物线连续功能来描绘。数值差分正交方法(DQM)用于解决平衡方程并获取屈曲负载。使用多目标优化程序来设计在不同轴向载荷下的FG梁,以获得最大屈曲负荷和最小重量目标。通过优化过程预测了可变轴向载荷下最大轴向载荷的光束的最佳重量设计的Pareto正面表示,通过优化过程预测了关键屈曲负荷参数。该模型在可变入口负载下的分析,设计和优化各向同性和FG梁中是有效的。

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