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A fracture mechanics analysis of asperity cracking due to sliding contact

机译:推触头引起的粗糙裂缝的断裂力学分析

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Microfracture of surface protrusions residing on contacting surfaces, known as asperities, due to normal and shear surface traction occurs at various scales affecting the durability and performance of many mechanical components. In this study, microfracture of an asperity due to sliding against a rigid asperity was examined using a two-dimensional (plane strain) finite element model and linear elastic fracture mechanics. The effects of the asperity interference depth, sliding friction, crack position, and crack-face friction on the rate, direction, and dominant mode of crack growth were determined by the ranges of the maximum tensile and shear stress intensity factors. The asperity interference depth and sliding friction exhibited the most pronounced effects on the rate and direction of crack growth. A transition from shear to tensile dominant mode of crack growth was encountered with increasing asperity interference depth and/or sliding friction coefficient. Crack mechanism maps revealing the evolution of opening, slip, and stick between the crack faces are presented for a range of crack-face friction coefficient, asperity interference depth, and sliding friction coefficient. The simulation results provide insight into the underlying microfracture mechanics of asperities residing on sliding surfaces that exhibit different friction characteristics. (C) 2019 Elsevier Ltd. All rights reserved.
机译:驻留在接触表面上的表面突起的微折应,其被称为粗糙度,由于正常和剪切表面牵引力,在影响许多机械部件的耐久性和性能的各种尺度上发生。在该研究中,使用二维(平面应变)有限元模型和线性弹性骨折力学来检查由于滑动刚粗糙的滑动引起的粗糙度的微折衷。通过最大拉伸和剪切应力强度因子的范围测定粗糙干涉深度,滑动摩擦,裂缝位置和裂纹面摩擦对裂纹生长的速率,方向和显性模式的影响。粗糙的干涉深度和滑动摩擦表现出对裂纹增长的速率和方向的最明显的影响。通过增加粗糙干涉深度和/或滑动摩擦系数,遇到从剪切到拉伸显性模型的转变。裂缝机制图揭示了开口,滑动和杆之间的进化,呈现在裂缝面之间的一系列裂缝面摩擦系数,粗糙干燥深度和滑动摩擦系数。仿真结果提供了进入延伸在表现出不同摩擦特性的滑动表面上的粗糙度的底层微折衷机构。 (c)2019年elestvier有限公司保留所有权利。

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