在脱离弹塑性缺口尖端的短裂纹上

Verônica Miquelin Machado, J. Castro, M. Meggiolaro
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引用次数: 1

摘要

对偏离弹塑性缺口尖端的短裂纹的行为进行了建模,以估计缺口结构部件中裂纹启动和扩展所需的应力,并评估在一般加载条件下可容忍的类裂纹缺陷的大小。该分析可以模拟疲劳和环境辅助开裂问题;可以评估两种情况下的缺口灵敏度;并且也可以用于在这种情况下为可容忍的非扩展类裂纹缺陷建立设计或验收标准。假设短裂纹的扩展是由外加应力和缺口尖端前方的应力梯度驱动的,并由材料对裂纹萌生和疲劳或EAC引起的长裂纹扩展的阻力支持。在弹塑性情况下,考虑短裂纹行为,缺口尖端前方的应力梯度用j场量化。在弹性和弹塑性条件下,通过对缺口试样进行适当的疲劳和EAC试验来评估该模型所作的可容忍短裂纹预测。缺口试样是专门设计用于从缺口尖端开始非扩展裂纹的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
On short cracks that depart from elastoplastic notch tips
The behavior of short cracks that depart from elastoplastic notch tips is modeled to estimate the stresses required to initiate and to propagate cracks in notched structural components, and to evaluate the size of tolerable crack-like defects under general loading conditions. This analysis can model both fatigue and environmentally assisted cracking problems; can evaluate notch sensitivity in both cases; and can as well be used to establish design or acceptance criteria for tolerable non-propagating crack-like defects in such cases. The growth of short cracks is assumed driven by the applied stresses and by the stress gradient ahead the notch tip, and supported by the material resistances to crack initiation and to long crack propagation by fatigue or EAC. In the elastoplastic case, the stress gradient ahead of the notch tip is quantified by a J-field to consider the short crack behavior. The tolerable short crack predictions made by this model are evaluated by suitable fatigue and EAC tests of notched specimens specially designed to start nonpropagating cracks from the notch tips, both under elastic and elastoplastic conditions.
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