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Finite size effects on crack front pinning at heterogeneous planar interfaces: Experimental, finite elements and perturbation approaches

机译:有限尺寸对异质平面界面处裂纹前部钉扎的影响:实验,有限元和摄动方法

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摘要

Understanding the role played by the microstructure of materials on their macroscopic failure properties is an important challenge in solid mechanics. Indeed, when a crack propagates at a heterogeneous brittle interface, the front is trapped by tougher regions and deforms. This pinning induces non-linearities in the crack propagation problem, even within Linear Elastic Fracture Mechanics theory, and modifies the overall failure properties of the material. For example crack front pinning by tougher places could increase the fracture resistance of multilayer structures, with interesting technological applications. Analytical perturbation approaches, based on Bueckner-Rice elastic line models, focus on the crack front perturbations, and hence allow for a description of these phenomena. Here, they are applied to experiments investigating the propagation of a purely interfacial crack in a simple toughness pattern: a single defect strip surrounded by homogeneous interface. We show that by taking into account the finite size of the body, quantitative agreement with experimental and finite elements results is achieved. In particular this method allows to predict the toughness contrast i.e. the toughness difference between the single defect strip and its homogeneous surrounding medium. This opens the way to a more accurate use of the perturbation method to study more disordered heterogeneous materials, where the finite elements method is less adequate. From our results, we also propose a simple method to determine the adhesion energy of tough interfaces by measuring the crack front deformation induced by known interface patterns.
机译:理解材料的微观结构对其宏观破坏性能所起的作用是固体力学中的重要挑战。确实,当裂纹在异质脆性界面处扩展时,前部会被更坚硬的区域束缚并变形。即使在线性弹性断裂力学理论内,这种钉扎也会在裂纹扩展问题中引起非线性,并修改材料的整体破坏特性。例如,通过有趣的技术应用,在较硬的地方钉住裂纹前部钉可以增加多层结构的抗断裂性。基于Bueckner-Rice弹性线模型的分析摄动方法着重于裂纹前摄动,因此可以描述这些现象。在这里,它们被用于研究以简单的韧性模式传播纯界面裂纹的实验:单个缺陷带被均匀的界面包围。我们表明,通过考虑身体的有限尺寸,可以实现与实验和有限元素的定量一致性结果。特别地,该方法允许预测韧性对比,即单个缺陷带与其均匀周围介质之间的韧性差。这就为更精确地使用扰动方法研究有限元方法不够充分的无序异质材料开辟了道路。从我们的结果中,我们还提出了一种简单的方法,通过测量已知界面图案引起的裂纹前沿变形来确定坚硬界面的附着力。

著录项

  • 来源
    《Journal of the Mechanics and Physics of Solids》 |2013年第2期|311-324|共14页
  • 作者单位

    Laboratoire PMMH, UMR 7636 CNRS/ESPC1/P6/P7, 10 rue Vauquelin, 75231 Paris cedex 05, France;

    Surface du verre et interfaces, Unite Mixte CNRS/Saint-Gobain UMR 125 (SV1), 39 quai Lucien Lefranc, 93300 Aubervilliers, France;

    Surface du verre et interfaces, Unite Mixte CNRS/Saint-Gobain UMR 125 (SV1), 39 quai Lucien Lefranc, 93300 Aubervilliers, France;

    Surface du verre et interfaces, Unite Mixte CNRS/Saint-Gobain UMR 125 (SV1), 39 quai Lucien Lefranc, 93300 Aubervilliers, France;

    Laboratoire PMMH, UMR 7636 CNRS/ESPC1/P6/P7, 10 rue Vauquelin, 75231 Paris cedex 05, France;

    UPMC Univ Paris 6, Univ Paris-Sud, CNRS, UMR 7608, Lab FAST, Bat 502, Campus Univ. F-91405 Orsay, France;

  • 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

    interfacial brittle fracture; toughening; crack pinning; finite element method; perturbation approach;

    机译:界面脆性断裂增韧裂纹钉有限元法摄动法;

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