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Stochastic nonlinear bending response of elastically supported nanotube-reinforced composite beam in thermal environment

机译:弹性支撑纳米管复合梁在热环境下的随机非线性弯曲响应

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摘要

This paper presents the second-order statistics of the nonlinear bending response of elastically supported single-wall carbon nanotube reinforced composite (CNTRC) beam composed of uniformly distributed (UD) and functionally graded (FG) reinforcements in thermal environments with uncertain system properties. The uncertain system properties such as material properties of matrix and SWCNTs, foundation parameters, thermal expansion coefficients are be modeled as uncorrelated Gaussian random variables. The material properties of FG-CNTRCs are assumed to be graded in the beam thickness direction and are evaluated through a micromechanical model. The higher order shear deformation theories (HSDT) with von-Karman nonlinear strain kinematics are used for the mathematical formulation of CNTRCs beam. The thermal effects are also included in the material properties of CNTRCs which are assumed to be temperature dependent and independent. The second-order perturbation technique (SOPT) and Monte Carlo simulation (MCS) via C~0 nonlinear finite element method (FEM) through Newton-Raphason method are proposed to examine the mean, COV and probability density function (PDF) of transverse deflection of the beam. Typical numerical results are presented for the different volume fraction of carbon nanotube, slenderness ratios, boundary conditions, foundation parameters, load parameters, CNTRC distribution, temperature dependent and independent material properties with random system properties. The present outlined approach is validated with the results available in the literature and by employing MCS.
机译:本文介绍了在热环境中系统特性不确定的弹性支撑单壁碳纳米管增强复合材料(CNTRC)梁的非线性弯曲响应的二阶统计量,该复合梁由均匀分布(UD)和功能梯度(FG)增强组成。将不确定的系统属性(例如基质和SWCNT的材料属性,基础参数,热膨胀系数)建模为不相关的高斯随机变量。假设FG-CNTRC的材料特性在射束厚度方向上分级,并通过微力学模型进行评估。具有von-Karman非线性应变运动学的高阶剪切变形理论(HSDT)用于CNTRCs梁的数学表达。热效应也包括在CNTRC的材料属性中,这些属性被认为是温度相关的和独立的。提出了利用C〜0非线性有限元法(FEM)和牛顿-拉斐逊法(Newton-Raphason method)的二阶摄动技术(SOPT)和蒙特卡罗模拟(MCS),以检验横向挠度的均值,COV和概率密度函数(PDF)光束针对碳纳米管的不同体积分数,细长比,边界条件,基础参数,载荷参数,CNTRC分布,温度相关和独立的材料特性(具有随机系统特性),给出了典型的数值结果。本文概述的方法通过文献中的可用结果以及采用MCS进行了验证。

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