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A new boundary element algorithm for modeling and simulation of nonlinear thermal stresses in micropolar FGA composites with temperature-dependent properties

机译:一种新的边界元算法,用于温度依赖性特性的微柱FGA复合材料中非线性热应力的建模与模拟

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摘要

Abstract The main aim of this article is to develop a new boundary element method (BEM) algorithm to model and simulate the nonlinear thermal stresses problems in micropolar functionally graded anisotropic (FGA) composites with temperature-dependent properties. Some inside points are chosen to treat the nonlinear terms and domain integrals. An integral formulation which is based on the use of Kirchhoff transformation is firstly used to simplify the transient heat conduction governing equation. Then, the residual nonlinear terms are carried out within the current formulation. The domain integrals can be effectively treated by applying the Cartesian transformation method (CTM). In the proposed BEM technique, the nonlinear temperature is computed on the boundary and some inside domain integral. Then, nonlinear displacement can be calculated at each time step. With the calculated temperature and displacement distributions, we can obtain the values of nonlinear thermal stresses. The efficiency of our proposed methodology has been improved by using the communication-avoiding versions of the Arnoldi (CA-Arnoldi) preconditioner for solving the resulting linear systems arising from the BEM to reduce the iterations number and computation time. The numerical outcomes establish the influence of temperature-dependent properties on the nonlinear temperature distribution, and investigate the effect of the functionally graded parameter on the nonlinear displacements and thermal stresses, through the micropolar FGA composites with temperature-dependent properties. These numerical outcomes also confirm the validity, precision and effectiveness of the proposed modeling and simulation methodology.
机译:摘要本文的主要目的是开发一种新的边界元方法(BEM)算法来模拟,并模拟具有温度依赖性特性的微基波功能渐进的各向异性(FGA)复合材料中的非线性热应力问题。选择一些内部点来处理非线性术语和域积分。首先使用基于kirchhoff变换的基于使用基于kirchhoff变换的整体制剂来简化瞬态导热器件方程。然后,残留的非线性术语在当前制剂内进行。可以通过应用笛卡尔转换方法(CTM)有效地处理域积分。在所提出的BEM技术中,在边界和一些内部结构域中计算非线性温度。然后,可以在每个时间步骤计算非线性位移。利用计算的温度和位移分布,我们可以获得非线性热应力的值。通过使用Arnoldi(CA-Arnoldi)预处理器的通信避免版本来改善我们提出的方法的效率,用于求解由BEM产生的所产生的线性系统来减少迭代次数和计算时间。数值结果建立了温度依赖性性质对非线性温度分布的影响,并通过具有温度依赖性特性的微柱FGA复合材料研究了功能梯度参数对非线性位移和热应力的影响。这些数值结果还证实了所提出的建模和仿真方法的有效性,精度和有效性。

著录项

  • 作者

    Mohamed Abdelsabour Fahmy;

  • 作者单位
  • 年度 2021
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  • 原文格式 PDF
  • 正文语种 eng
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