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Domain-integral methods for computation of fracture-mechanics parameters in three-dimensional functionally-graded solids.

机译:计算三维功能梯度固体中断裂力学参数的域积分方法。

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摘要

A natural or engineered multiphase composite with macro-scale spatial variation of material properties may be referred to as a functionally graded material, or FGM. FGMs can enhance structural performance by optimizing stiffness, improving heat, corrosion or impact resistance, or by reducing susceptibility to fracture. One promising application of FGMs is to thermal barrier coatings, in which a ceramic coating with high heat and corrosion resistance transitions smoothly to a tough metallic substrate. The absence of a discrete interface between the two materials reduces the occurrence of delamination and spallation caused by growth of interface and surface cracks. Fracture remains an important failure mechanism in FGMs, however, and the ability to predict critical flaw sizes is necessary for the engineering application of these materials.; This presentation describes the development of numerical methods used to compute fracture parameters necessary for the evaluation of flaws in elastic continua. The current investigation employs post-processing techniques in a finite-element framework to compute the J-integral, mixed-mode stress intensity factors and non-singular T-stresses along generally-curved, planar cracks in three-dimensional FGM structures. Domain and interaction integrals developed over the past thirty years to compute these fracture parameters have proved to be robust and accurate because they employ field quantities remote from the crack. The recent emergence of promising engineering applications of FGMs motivates the extension of these numerical methods to this new class of material.; This work first develops and applies a domain integral method to compute J-integral and stress intensity factor values along crack fronts in FGM configurations under mode-I thermo-mechanical loading. The proposed domain integral formulation accommodates both linear-elastic and deformation-plastic behavior in FGMs. Next discussed is the extension of interaction-integral procedures to compute directly mixed-mode stress intensity factors and T-stresses along planar, curved cracks in FGMs under linear-elastic loading. The investigation addresses effects upon interaction integral procedures imposed by crackfront curvature, applied crack-face tractions and material nonhomogeneity. Additional considerations for T-stress evaluation include the influence of mode mixity and computation of the anti-plane shear component of non-singular stress, T13.
机译:具有材料特性的宏观空间变化的天然或工程化的多相复合材料可以称为功能梯度材料或FGM。 FGM可通过优化刚度,改善耐热性,耐腐蚀性或抗冲击性或降低断裂敏感性来增强结构性能。 FGM的一个有前途的应用是在热障涂层中,其中具有高耐热性和耐腐蚀性的陶瓷涂层可以平滑过渡到坚硬的金属基材上。两种材料之间没有离散的界面,减少了由于界面和表面裂纹的增长而引起的分层和剥落的发生。断裂仍然是FGM中的重要失效机制,而预测关键缺陷尺寸的能力对于这些材料的工程应用是必需的。本演示介绍了用于计算断裂参数的数值方法的发展,这些参数对于评估弹性连续体中的缺陷是必需的。当前的研究在有限元框架中采用后处理技术,以计算三维FGM结构中沿一般弯曲的平面裂纹的J积分,混合模式应力强度因子和非奇异T应力。过去三十年来开发的用于计算这些断裂参数的域和相互作用积分已被证明是可靠且准确的,因为它们采用了远离裂纹的场量。 FGM的有希望的工程应用的最新出现促使将这些数值方法扩展到这种新型材料上。这项工作首先开发并应用域积分方法来计算I型热机械载荷下沿FGM配置沿裂纹前沿的J积分和应力强度因子值。拟议的域积分公式适应了FGM中的线弹性和变形塑性行为。接下来讨论的是相互作用积分过程的扩展,以计算线性弹性载荷下沿FGM平面弯曲裂纹直接混合模式应力强度因子和T应力。该研究解决了裂纹前沿曲率,施加的裂纹面牵引力和材料非均质性对相互作用积分过程的影响。 T应力评估的其他考虑因素包括模式混合的影响以及非奇异应力T13的反平面剪切分量的计算。

著录项

  • 作者

    Walters, Matthew C.;

  • 作者单位

    University of Illinois at Urbana-Champaign.;

  • 授予单位 University of Illinois at Urbana-Champaign.;
  • 学科 Engineering Civil.
  • 学位 Ph.D.
  • 年度 2005
  • 页码 207 p.
  • 总页数 207
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 建筑科学;
  • 关键词

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