Crack Driving Force Calculation in Arbitrarily Shaped Defects Based on 3D Non-Destructive Evaluation and Finite Element Analysis

S. Hertelé, Vitor Adriano, Somsubhro Chaudhuri, L. D. Wilde, O. Huising
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引用次数: 2

Abstract

The actual shape of a real defect differs from the simplified shapes that are assumed within an engineering critical assessment. Additionally, the re-characterization of interacting defects into one simplified defect is known to introduce conservatism, which may be undesirably large. Ongoing and expected technological advances of 3D NDE techniques (such as full-matrix capture ultrasonics and X-ray CT) allow to assume that defect simplification will no longer be required in the future, thus bypassing the uncontrolled conservatism resulting from defect simplification. A recently finished EPRG project has shown the feasibility of integrating the information provided by 3D NDE systems into finite element models. Promising results are obtained which, with additional effort, will provide a solid basis for in-the-field application. This paper first reports on the overall procedure of defect assessment by the adopted finite element analysis (both linearelastic and elastic-plastic). Next, the ability to couple FE model construction with non-destructive evaluation results is demonstrated for three scans obtained from different sources (one X-ray CT and two ultrasonic full matrix capture scans). Finally, concrete opportunities to improve the robustness, speed and accuracy of the methodology are addressed, which will be tackled in a follow-up project funded within PRCI.
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基于三维无损评价和有限元分析的任意形状缺陷裂纹驱动力计算
实际缺陷的实际形状不同于在工程关键评估中假设的简化形状。另外,将相互作用的缺陷重新描述为一个简化的缺陷会引入保守性,这可能是不受欢迎的大缺陷。3D无损检测技术(如全矩阵捕获超声和x射线CT)正在进行和预期的技术进步允许假设未来不再需要缺陷简化,从而绕过缺陷简化导致的不受控制的保守性。最近完成的EPRG项目表明,将3D无损检测系统提供的信息集成到有限元模型中是可行的。通过进一步的努力,取得了良好的效果,为现场应用提供了坚实的基础。本文首次报道了采用有限元分析(线弹性分析和弹塑性分析)进行缺陷评估的总体过程。接下来,演示了从不同来源获得的三次扫描(一次x射线CT和两次超声全矩阵捕获扫描)耦合有限元模型构建与无损评估结果的能力。最后,讨论了提高方法的稳健性、速度和准确性的具体机会,这将在PRCI资助的后续项目中加以解决。
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