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Contact Mechanics Modeling of Homogeneous and Layered Elastic-Plastic Media: Surface Roughness and Adhesion Effects.

机译:均质和层状弹塑性介质的接触力学建模:表面粗糙度和粘合效应。

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摘要

The main objective of this dissertation was to analyze surface contact interaction at different length scales and to elucidate the effects of material properties (e.g., adhesion and mechanical properties), normal and shear (friction) surface tractions, and topography parameters (e.g., roughness) on contact deformation. To accomplish this objective, a surface adhesion model based on an interatomic potential was incorporated into finite element contact models of rough surfaces exhibiting multi-scale roughness described by statistical and fractal geometry models.;The problem of a rigid sphere in contact with an elastic-plastic half-space was first examined in the light of finite element simulations. Four post-yield deformation regimes were identified and the boundaries of neighboring regimes were obtained by curve-fitting of finite element results. Material hardness was shown to significantly deviate from the similarity solution with decreasing elastic modulus-to-yield strength ratio and the logarithmic dependence of the mean contact pressure on the indentation depth was found to hold only when the plastic zone was completely surrounded by elastic material. The obtained results have direct implication in material property measurements obtained with indentation method, particularly for materials exhibiting strain hardening behavior, and provide insight into the accumulation of plasticity due to repetitive contact loading, which is important in the understanding of the contact fatigue life of contact-mode devices.;Sliding contact between a rigid fractal surface exhibiting multi-scale roughness and an elastic-plastic half-space was examined to elucidate rough-surface deformation due to small-amplitude reciprocating sliding (fretting). Stick-slip at the asperity scale was analyzed based on Mindlin's theory and a friction model that accounts for both adhesion and plowing effects. Numerical results yield insight into the effects of surface roughness, contact pressure, oscillation amplitude, elastic modulus-to-yield strength ratio, and interfacial adhesion on the friction force, slip index, and energy dissipation. The results of this study illustrate the important role of the contact load and surface topography on the energy dissipation and fretting wear of small-amplitude oscillatory contacts.;Surface adhesion modeled as surface traction obeying the Lennard-Jones (LJ) potential was incorporated into the contact analysis of a rigid sphere indenting an elastic half-space to study contact instabilities associated with instantaneous surface contact (jump-in) and detachment (jump-out). This surface traction was introduced into a finite element contact model in the form of nonlinear spring elements and the jump-in/jump-out condition obtained analytically was confirmed by finite element results. Then, adhesive contact between a rigid sphere and an elastic-plastic half-space was analyzed and the effect of plasticity on the pull-off force and the commencement of contact instabilities was interpreted in terms of a modified Tabor parameter. The developed finite element model with nonlinear spring elements representing adhesive surface interaction provides a physics-based, computationally-efficient technique for studying adhesive contacts. The obtained results provide explanation for the contact instabilities encountered during surface probing with microprobe tips and stiction (permanent adhesion) in contact-mode microdevices.;Adhesive contact between a rigid sphere and a layered medium analyzed with the finite element method shed light into adhesion-induced contact deformation. Two modes of surface detachment were observed for perfect bonding of the film to the substrate - brittle- and ductile-like surface detachment. Simulation results illustrate the effects of the maximum surface separation, film thickness, film-to-substrate elastic property mismatch, and substrate yield strength on the mode of surface detachment and residual deformation. Introducing a cohesive model that allows for crack formation and growth along the film/substrate interface in the previous finite element model, a residual cohesive zone was found at the crack tip after complete unloading. Contact instabilities and interface delamination were interpreted by the competing effects of surface adhesion and interfacial cohesion. Crack closure and crack-tip opening displacement (CTOD) were studied by performing a parametric study of the cohesive strength, interfacial energy, surface energy, surface adhesive strength, substrate yield strength, and initial defect size. The obtained results can be used to explain thin-film failure in contact systems due to the effect of adhesion and to improve the endurance of thin-film media subjected to surface tractions. (Abstract shortened by UMI.).
机译:本文的主要目的是分析不同长度尺度下的表面接触相互作用,并阐明材料性能(例如,粘附力和机械性能),法向和剪切(摩擦)表面牵引力以及形貌参数(例如粗糙度)的影响。接触变形。为了实现这一目标,将基于原子间电势的表面粘附模型结合到了具有多尺度粗糙度的粗糙表面的有限元接触模型中,该模型由统计和分形几何模型进行了描述。首先根据有限元模拟研究了塑料半空间。确定了四个屈服后变形机制,并通过有限元结果的曲线拟合获得了相邻机制的边界。结果表明,随着弹性模量与屈服强度比的降低,材料硬度显着偏离相似性解决方案,并且发现仅当塑料区域完全被弹性材料包围时,平均接触压力与压痕深度的对数关系才成立。所得结果直接影响了采用压痕法进行的材料性能测量,特别是对于表现出应变硬化行为的材料,并提供了由于重复接触载荷而产生的可塑性积累的信息,这对于理解接触件的接触疲劳寿命至关重要模式装置。检查表现出多尺度粗糙度的刚性分形表面与弹塑性半空间之间的滑动接触,以阐明由于小幅度往复滑动(微动)而引起的粗糙表面变形。根据Mindlin的理论和考虑粘附力和耕作效果的摩擦模型,分析了粗糙面的粘滑现象。数值结果可以深入了解表面粗糙度,接触压力,振荡幅度,弹性模量与屈服强度比以及界面附着力对摩擦力,滑移指数和能量耗散的影响。这项研究的结果说明了接触载荷和表面形貌对小振幅振荡接触的能量耗散和微动磨损的重要作用。将表面附着力建模为服从Lennard-Jones(LJ)势的表面牵引力刚体球体的接触分析,其中压入一个弹性半空间以研究与瞬时表面接触(跳入)和脱离(跳出)相关的接触不稳定性。将该表面牵引力以非线性弹簧元件的形式引入到有限元接触模型中,并通过有限元结果确定了解析获得的跳入/跳出条件。然后,分析了刚性球体与弹塑性半空间之间的粘着接触,并根据修改的Tabor参数解释了可塑性对拉力和接触不稳定性开始的影响。已开发的具有表示粘合剂表面相互作用的非线性弹簧元件的有限元模型提供了一种基于物理的,计算效率高的技术来研究粘合剂接触。所得结果提供了解释,说明了使用接触式微型设备进行微探针尖端进行表面探测和静摩擦(永久粘附)时遇到的接触不稳定性。;用有限元方法分析的刚性球体与层状介质之间的粘附接触使人们得以了解粘附-引起接触变形。观察到了两种表面分离模式以使薄膜与基材完美粘合-脆性和延展性表面分离。仿真结果说明了最大表面分离度,膜厚度,膜-基底弹性性能不匹配以及基底屈服强度对表面分离和残余变形模式的影响。在先前的有限元模型中引入允许沿着膜/基底界面形成和扩展裂纹的内聚模型,在完全卸载后,在裂纹尖端发现了一个残留的内聚区。接触不稳定性和界面分层是由表面粘附力和界面粘附力的竞争作用所解释的。通过对内聚强度,界面能,表面能,表面粘合强度,基底屈服强度和初始缺陷尺寸进行参数研究,研究了裂纹闭合和裂纹尖端开口位移(CTOD)。所获得的结果可用于解释由于粘附作用而引起的接触系统中的薄膜失效,并可以改善经受表面牵引的薄膜介质的耐久性。 (摘要由UMI缩短。)。

著录项

  • 作者

    Song, Zhichao.;

  • 作者单位

    University of California, Berkeley.;

  • 授予单位 University of California, Berkeley.;
  • 学科 Applied Mechanics.;Engineering Mechanical.
  • 学位 Ph.D.
  • 年度 2012
  • 页码 156 p.
  • 总页数 156
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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