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The Influence of Grain Size and Grain Size Distribution on Sliding Frictional Contact in Laterally Graded Materials

机译:粒度和粒度分布对水平梯度材料滑动摩擦接触的影响

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The sliding frictional contact problem for a laterally graded half-plane has been considered. Two finite element (FE) models, in macro and micro scales have been developed to investigate the effective parameters in contact mechanics of laterally graded materials loaded by flat and triangular rigid stamps. In macro scale model, the laterally graded half-plane is discretized by piecewise homogeneous layers for which the material properties are specified at the centroids by Mori-Tanaka method. In micro scale model, functionally graded material (FGM) structure has been modeled as ideal solid quadrant particles which are spatially distributed in a homogeneous matrix. Boundary conditions and loading is the same in both models. The microstructure has modeled as rearrangement and sizes changing of particles are possible to provide the possibility of crack nucleation investigation in non-singular regions. Analyses and comparison of the results showed that micro and macro scale results are in very good agreement. Also, increasing the grains aspect ratio and using optimum distribution of grains decrease stress distribution roughness on the surface. Therefore, the possibility of surface cracking far from stamp's edges decreased.
机译:已经考虑了横向渐变的半平面的滑动摩擦接触问题。已经开发了宏观和微观尺度的两个有限元(FE)模型,以研究由平面和三角形刚性压模加载的横向渐变材料的接触力学有效参数。在宏观模型中,横向分段的半平面由分段均质层离散化,通过Mori-Tanaka方法在质心处指定了材料属性。在微尺度模型中,功能梯度材料(FGM)结构已被建模为理想的固体象限粒子,它们在空间上分布在均匀的矩阵中。两种模型的边界条件和载荷都相同。微观结构被建模为粒子的重排和尺寸变化是可能的,从而提供了在非奇异区域进行裂纹成核研究的可能性。结果的分析和比较表明,微观和宏观结果非常吻合。而且,增加晶粒的长宽比并使用晶粒的最佳分布会降低表面上的应力分布粗糙度。因此,降低了远离印模边缘的表面开裂的可能性。

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