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Detachment of an adhered micropillar from a dissimilar substrate

机译:从异种基材上拆下粘附的微柱

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摘要

The mechanics of detachment is analysed for 2D flat-bottomed planar pillars and 3D cylindrical pillars from a dissimilar elastic substrate. Application of an axial stress to the free end of the pillar results in a singularity in stress at the corner with the substrate. An eigenvalue analysis reveals that the stress field near the corner is dominated by two singular eigenfields having eigenvalues (λ_1, λ_2) with corresponding intensities (H_1, H_2). The asymptotic stress field σ_(ij) is of the form σ_(ij) = H_1r~(λ1-1)f_(ij)(λ_1 θ) + H_2r~(λ2-1)f_(ij)(λ_2, θ). where f_(ij) describe the angular dependence θ of σ_(ij), and r is the radial distance from the corner. The stress intensities (H_1, H_2) are calculated numerically, using a domain integral approach, as a function of the elastic mismatch between the pillar and substrate. The singular zone extends across approximately 10% of the pillar diameter (in 3D) or pillar width (in 2D). Interfacial failure is predicted for an assumed crack emanating from the corner of pillar and substrate. For the case of an interfacial crack that resides within the domain of corner singularity, a boundary layer analysis is performed to calculate the dependence of the interfacial stress intensity factor K upon (H_1, H_2). When the crack extends beyond the domain of corner singularity, it is necessary to consider the full geometry in order to obtain K. A case study explores the sensitivity of the pull-off stress to the flaw size and to the degree of material mismatch. The study has implications for the optimum design of adhesive surface micropatterns, for bonding to either stiffer or more compliant substrates.
机译:分析了来自不同弹性基材的2D平底平面柱和3D圆柱柱的分离机理。向支柱的自由端施加轴向应力会导致与基体拐角处的应力奇异。特征值分析表明,拐角附近的应力场由具有特征值(λ_1,λ_2)和相应强度(H_1,H_2)的两个奇异特征场控制。渐近应力场σ_(ij)的形式为σ_(ij)= H_1r〜(λ1-1)f_(ij)(λ_1θ)+ H_2r〜(λ2-1)f_(ij)(λ_2,θ)。其中f_(ij)描述σ_(ij)的角度依赖性θ,r是距拐角的径向距离。应力强度(H_1,H_2)使用域积分法根据支柱和基板之间的弹性失配进行数值计算。奇异区域跨越柱直径(3D)或柱宽度(2D)的大约10%延伸。可以预测从柱和基体的角产生的假定裂纹的界面破坏。对于位于角奇异性域内的界面裂纹,进行边界层分析以计算界面应力强度因子K对(H_1,H_2)的依赖性。当裂纹扩展到拐角奇点以外时,有必要考虑完整的几何形状以获得K。一个案例研究探讨了拉应力对缺陷尺寸和材料失配程度的敏感性。这项研究对胶粘剂表面微图案的最佳设计,与较硬或较柔顺的基材粘合具有重要意义。

著录项

  • 来源
    《Journal of the Mechanics and Physics of Solids》 |2015年第2期|159-183|共25页
  • 作者单位

    Engineering Department, University of Cambridge, Trumpington Street, Cambridge CB2 1PZ, UK;

    Engineering Department, University of Cambridge, Trumpington Street, Cambridge CB2 1PZ, UK;

    INM-Leibniz Institute for New Materials and Saarland University Campus D2 2, 66123 Saarbruecken, Germany;

    INM-Leibniz Institute for New Materials and Saarland University Campus D2 2, 66123 Saarbruecken, Germany,Departments of Materials and Mechanical Engineering, University of California, Santa Barbara, CA 93106, USA,School of Engineering, University of Aberdeen, King's College, Aberdeen AB24 2UE, UK;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Micropillar detachment; Fibrillar adhesion; Bio-inspired adhesion; Micro-pillar pull-off; Interfacial fracture mechanics;

    机译:微柱分离;纤维状粘连;生物启发的黏附;微柱拉拔;界面断裂力学;

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