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Contact Analysis of Functionally Graded Materials Using Smoothed Finite Element Methods

机译:用平滑有限元方法接触功能梯度材料的分析

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In the paper, the smoothed finite element method (S-FEM) based on linear triangular elements is used to solve 2D solid contact problems for functionally graded materials. Both conforming and nonconforming contacts algorithms are developed using modified Coulomb friction contact models including tangential strength and normal adhesion. Based on the smoothed Galerkin weak form, the system stiffness matrices are created using the formulation procedures of node-based S-FEM (NS-FEM) and edge-based S-FEM (ES-FEM), and the contact interface equations are discretized by contact point-pairs. Then these discretized system equations are converted into a form of linear complementarity problems (LCPs), which can be further solved efficiently using the Lemke method. The singular value decomposition method is used to deal with the singularity of the stiffness matrices in the procedure constructing the standard LCP, which can greatly improve the stability and accuracy of the numerical results. Numerical examples are presented to investigate the effects of the various parameters of functionally graded materials and comparisons have been made with reference solutions and the standard FEM. The numerical results demonstrate that the strain energy solutions of ES-FEM have higher convergence rate and accuracy compared with that of NS-FEM and FEM for functionally graded materials through the present contact analysis approach.
机译:在本文中,基于线性三角形元件的平滑有限元方法(S-FEM)用于求解功能渐变材料的2D固体接触问题。使用包括切向强度和正常粘合的改进的库仑摩擦接触型号开发了符合和不合格的触点算法。基于平滑的Galerkin弱形式,使用基于节点的S-FEM(NS-FEM)和基于边缘的S-FEM(ES-FEM)的配方过程来创建系统刚度矩阵,并且接触界面方程被离散化通过联系点对。然后,这些离散的系统方程被转换为线性互补问题(LCP)的形式,可以使用LEMKE方法有效地进行有效地解决。奇异值分解方法用于处理构建标准LCP的过程中刚度矩阵的奇异性,这可以大大提高数值结果的稳定性和准确性。提出了数值例子以研究功能梯度材料的各种参数的效果,并采用参考溶液和标准FEM进行了比较。数值结果表明,通过目前的接触分析方法与NS-FEM和FEM的NS-FEM和FEM相比,ES-FEM的应变能量溶液具有更高的收敛速度和精度。

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