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Numerical Model of Instrumented lindentation by a Rounded Cone Indenter Using Finite Element Method

机译:用有限元法通过圆形锥压贴仪表磨削的数值模型

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The paper serves as an introduction to investigation of mechanical properties of functionally graded materials and deals with numerical models of elastic nanoindentation. The models were based on the finite element method. Young's moduli were estimated by Oliver-Pharr method. The indenter geometry for which numerical solutions were accomplished was a rounded cone indenter. The effect of tip sharpness was examined by applying an increasing spherical tip radius. The results show that the apparent Young's modulus and the hardness increase linearly with increasing radius of the tip. The effect of approaching interface between two elastic materials on the apparent hardness and indentation modulus was identified in 3D model. The specimen consisted of two materials. First, the interface was planar and parallel to the direction of indentation, so that the Young's modulus changed suddenly. Second, the Young's modulus was continuously changing. The dependence on various boundary conditions of the specimen was also considered.
机译:本文用作功能梯度材料的力学性能调查的介绍,并涉及弹性纳米凸缘的数值模型。该模型基于有限元方法。奥利弗-Pharr方法估计杨氏的模态。完成数值溶液的压痕几何形状是圆形锥形压痕。通过施加增加的球形尖端半径来检查尖端清晰度的效果。结果表明,表观杨氏模量和硬度随着尖端半径的增加而线性增加。三维模型中鉴定了两种弹性材料与两个弹性材料之间接近界面的效果。标本由两种材料组成。首先,界面是平面的,并平行于压痕的方向,使年轻的模量突然变化。其次,杨氏模量不断变化。还考虑了对样本的各种边界条件的依赖。

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