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A micromechanics-based strain gradient damage model for fracture prediction of brittle materials - Part II: Damage modeling and numerical simulations

机译:用于脆性材料断裂的基于微力学的应变梯度损伤模型-第二部分:损伤建模和数值模拟

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摘要

In this paper, we established a strain-gradient damage model based on microcrack analysis for brittle materials. In order to construct a damage-evolution law including the strain-gradient effect, we proposed a resistance curve for microcrack growth before damage localization. By introducing this resistance curve into the strain-gradient constitutive law established in the first part of this work (Li, 2011), we obtained an energy potential that is capable to describe the evolution of damage during the loading. This damage model was furthermore implemented into a finite element code. By using this numerical tool, we carried out detailed numerical simulations on different specimens in order to assess the fracture process in brittle materials. The numerical results were compared with previous experimental results. From these studies, we can conclude that the strain gradient plays an important role in predicting fractures due to singular or non-singular stress concentrations and in assessing the size effect observed in experimental studies. Moreover, the self-regularization characteristic of the present damage model makes the numerical simulations insensitive to finite-element meshing. We believe that it can be utilized in fracture predictions for brittle or quasi-brittle materials in engineering applications.
机译:在本文中,我们基于微裂纹分析建立了脆性材料的应变梯度损伤模型。为了构建包括应变梯度效应的损伤演化定律,我们提出了在损伤定位之前微裂纹生长的阻力曲线。通过将该电阻曲线引入到在本文的第一部分中建立的应变梯度本构关系(Li,2011),我们获得了一个能描述加载过程中损伤演变的能量势。该损伤模型还被实现为有限元代码。通过使用此数值工具,我们对不同的样本进行了详细的数值模拟,以评估脆性材料的断裂过程。数值结果与以前的实验结果进行了比较。从这些研究中,我们可以得出结论,应变梯度在预测由于奇异或非奇异应力集中引起的断裂以及评估实验研究中观察到的尺寸效应方面起着重要作用。此外,本损伤模型的自正则化特性使数值模拟对有限元网格不敏感。我们相信,它可以用于工程应用中脆性或准脆性材料的断裂预测。

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