首页> 外文学位 >A multi-scale damage percolation model of ductile fracture .
【24h】

A multi-scale damage percolation model of ductile fracture .

机译:韧性断裂的多尺度损伤渗流模型。

获取原文
获取原文并翻译 | 示例

摘要

The traditional approach to modeling ductile fracture involves homogenizing the microstructure of a material into a simple, equivalent geometry from which the relevant constitutive laws can be derived. While attractive from a modeling perspective, critical details of the microstructure are lost in this homogenization process such as the particle size, shape, orientation, distribution and degree of clustering. Since void initiation and evolution is a highly localized phenomenon originating within heterogeneous particle clusters, these models fail to accurately predict fracture. These limitations can be overcome using a promising new technique known as damage percolation modeling that requires no idealizations or approximations of the microstructure. In this approach, digital imaging techniques or x-ray microtomography can be used to obtain the particle distribution in a material. Using this information, micromechanical models are applied to characterize void and crack formation leading to failure at the individual particle scale. The damage percolation model represents the future in material modeling as it directly relates changes in the local microstructure to the overall material behaviour.;In this research, the first fully-coupled multi-scale damage percolation model has been developed to predict fracture in advanced materials with heterogeneous particle distributions. In the first phase of this work, a sophisticated damage percolation model is developed using the latest micromechanical models to characterize void nucleation, growth, and coalescence in three-dimensions for general loading conditions. A novel strategy is proposed to determine the stress state within the reinforcing particles and inclusions to facilitate the development of a void nucleation model based solely upon the particle properties.;The percolation model was implemented into a commercial finite-element code using so-called "percolation elements" to capture the complex stress- and strain-gradients that develop during deformation. A particle field generator is developed and integrated into the finite-element code to create representative particle distributions within the percolation elements to provide stochastic predictions of fracture that reflect the experimental variation. Finally, the percolation model is validated numerically and experimentally for an automotive-grade aluminum alloy in a notched tensile test used for material characterization. The complete multi-scale percolation model predicts fracture as a direct consequence of the stress state, material properties and the local conditions within the microstructure.
机译:对延性断裂建模的传统方法涉及将材料的微观结构均质化为简单的等效几何体,从中可以得出相关的本构定律。尽管从建模角度来看很有吸引力,但在这种均质化过程中却丢失了微观结构的关键细节,例如粒度,形状,取向,分布和聚集程度。由于空隙的引发和演化是起源于异质颗粒簇的高度局部化的现象,因此这些模型无法准确预测破裂。这些局限性可以使用一种有希望的新技术来克服,该技术被称为损伤渗流建模,不需要微观结构的理想化或近似。在这种方法中,可以使用数字成像技术或X射线显微断层摄影术来获得材料中的颗粒分布。利用这些信息,可以应用微机械模型来表征导致单个颗粒级失效的空隙和裂纹形成。损伤渗流模型代表了材料建模的未来,因为它直接将局部微观结构的变化与整体材料行为联系起来。在本研究中,开发了第一个完全耦合的多尺度损伤渗流模型,以预测先进材料的断裂具有不均匀的颗粒分布。在这项工作的第一阶段,使用最新的微机械模型开发了复杂的破坏渗流模型,以表征在常规载荷条件下三维的空核,生长和聚结。提出了一种新的策略来确定增强颗粒和夹杂物内的应力状态,以促进仅基于颗粒性质的空隙形核模型的发展。渗流模型通过使用所谓的“渗滤元素”以捕获在变形过程中产生的复杂应力和应变梯度。开发了粒子场发生器,并将其集成到有限元代码中,以在渗滤元素内创建代表性的粒子分布,从而提供反映实验变化的裂缝的随机预测。最后,在用于材料表征的缺口拉伸试验中,对汽车级铝合金的渗流模型进行了数值和实验验证。完整的多尺度渗流模型可预测断裂是应力状态,材料特性和微观结构内局部条件的直接结果。

著录项

  • 作者

    Butcher, Cliff.;

  • 作者单位

    University of New Brunswick (Canada).;

  • 授予单位 University of New Brunswick (Canada).;
  • 学科 Engineering Mechanical.
  • 学位 Ph.D.
  • 年度 2011
  • 页码 240 p.
  • 总页数 240
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号