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The effect of indenter shape on sub-micron indentation according to discrete dislocation plasticity

机译:离散位错塑性对压头形状对亚微米压痕的影响

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Two-dimensional discrete dislocation simulations of indentation in the submicron range are presented for wedge indenters with a sharp tip and for indenters with a circular tip. Plane strain calculations are carried out for single crystals that are initially free of mobile dislocations and with all dislocations nucleating from a specified distribution of internal sources. The hardness is expressed in terms of the indentation force divided by the actual contact area accounting for roughness of the surface in contact with the indenter. For wedge indenters the hardness is found to decrease with increasing indentation depth, while for indenters with a circular tip the hardness increases somewhat with increasing indentation depth. However, at a given indentation depth, the indentation hardness of circular indenters increases with decreasing tip radius. The difference in hardness evolution for the two tip shapes is mainly due to the manner in which the evolution of the contact area depends on indenter tip shape. The nominal hardness, i.e. that based on the geometric contact area neglecting material sink-in or pile-up and surface roughness, is found to follow the inverse square root size dependence predicted by Nix and Gao [1] and by Swadener et al [2], even though the plastic zone found in the simulations differs significantly in shape and size from that assumed in deriving the scaling laws.
机译:针对具有尖锐尖端的楔形压头和具有圆形尖端的压头,提出了亚微米范围内压痕的二维离散位错模拟。对于最初没有活动位错且所有位错都来自内部源的指定分布的成核的单晶,进行了平面应变计算。硬度用压入力除以实际接触面积表示,该实际接触面积考虑了与压头接触的表面的粗糙度。对于楔形压头,发现硬度随压痕深度的增加而降低,而对于具有圆形尖端的压头,硬度随压痕深度的增加而有所增加。但是,在给定的压痕深度下,圆形压头的压痕硬度会随着尖端半径的减小而增加。两种尖端形状的硬度变化的差异主要是由于接触面积的变化取决于压头尖端形状的方式引起的。发现标称硬度(即基于几何接触面积而忽略材料下沉或堆积和表面粗糙度的标称硬度)遵循由Nix和Gao [1]和Swadener等人[2]预测的平方根反比关系。 ],即使在模拟中找到的塑性区在形状和大小上与推导缩放定律时所假定的塑性区明显不同。

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