Resolving the fundamentals of the J-integral concept by multi-method in situ nanoscale stress-strain mapping.

IF 9.6 Q1 MATERIALS SCIENCE, MULTIDISCIPLINARY Communications Materials Pub Date : 2025-01-01 Epub Date: 2025-02-22 DOI:10.1038/s43246-025-00752-z
Michael Meindlhumer, Markus Alfreider, Noel Sheshi, Anton Hohenwarter, Juraj Todt, Martin Rosenthal, Manfred Burghammer, Enrico Salvati, Jozef Keckes, Daniel Kiener
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Abstract

The integrity of structural materials is oftentimes defined by their resistance against catastrophic failure through dissipative plastic processes at the crack tip, commonly quantified by the J-integral concept. However, to date the experimental stress and strain fields necessary to quantify the J-integral associated with local crack propagation in its original integral form were inaccessible. Here, we present a multi-method nanoscale strain- and stress-mapping surrounding a growing crack tip in two identical miniaturized fracture specimens made from a nanocrystalline FeCrMnNiCo high-entropy alloy. The respective samples were tested in situ in a scanning electron microscope and a synchrotron X-ray nanodiffraction setup, with detailed analyzes of loading states during elastic loading, crack tip blunting and general yielding, corroborated by a detailed elastic-plastic finite element model. This complementary in situ methodology uniquely enabled a detailed quantification of the J-integral along different integration paths from experimental nanoscale stress and strain fields. We find that conventional linear-elastic and elastic-plastic models, typically used to interpret fracture phenomena, have limited applicability at micron to nanoscale distances from propagating cracks. This for the first time unravels a limit to the path-independence of the J-integral, which has significant implications in the development and assessment of modern damage-tolerant materials and microstructures.

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用多方法原位纳米应力-应变映射解决j积分概念的基本原理。
结构材料的完整性通常由其在裂纹尖端的耗散塑性过程中抵抗灾难性破坏的能力来定义,通常由j积分概念量化。然而,到目前为止,量化与局部裂纹扩展相关的j积分的原始积分形式所需的实验应力场和应变场是无法获得的。在这里,我们在两个相同的由纳米晶FeCrMnNiCo高熵合金制成的小型化断裂样品中,展示了围绕裂纹尖端生长的多方法纳米尺度应变和应力映射。分别在扫描电子显微镜和同步x射线纳米衍射装置上进行了原位测试,详细分析了弹性加载、裂纹尖端钝化和一般屈服的加载状态,并通过详细的弹塑性有限元模型进行了验证。这种互补的原位方法独特地实现了从实验纳米尺度应力和应变场沿不同积分路径的j积分的详细量化。我们发现,通常用于解释断裂现象的传统线弹性和弹塑性模型在距离裂纹扩展的微米至纳米尺度上的适用性有限。这是第一次揭示了j积分的路径独立性的限制,这对现代损伤容忍材料和微结构的开发和评估具有重要意义。
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来源期刊
Communications Materials
Communications Materials MATERIALS SCIENCE, MULTIDISCIPLINARY-
CiteScore
12.10
自引率
1.30%
发文量
85
审稿时长
17 weeks
期刊介绍: Communications Materials, a selective open access journal within Nature Portfolio, is dedicated to publishing top-tier research, reviews, and commentary across all facets of materials science. The journal showcases significant advancements in specialized research areas, encompassing both fundamental and applied studies. Serving as an open access option for materials sciences, Communications Materials applies less stringent criteria for impact and significance compared to Nature-branded journals, including Nature Communications.
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