Chloride-induced stress corrosion crack propagation mechanisms in austenitic stainless steel are mechanically driven

IF 5.3 2区 材料科学 Q2 MATERIALS SCIENCE, MULTIDISCIPLINARY
Ronit Roy , Haozheng J. Qu , Keyou S. Mao , Janelle P. Wharry
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Abstract

The objective of this study is to understand the mechanical aspects of chloride-induced stress corrosion cracking (CISCC) in austenitic stainless steel. CISCC is a critical degradation mode in austenitic stainless steel, so understanding its mechanisms is essential for predicting material integrity and lifetime. Here, CISCC is studied by transmission Kikuchi diffraction and transmission electron microscopy for two cases: propagation into a lower Schmid factor grain and a higher Schmid factor grain. The evolution of deformation fields near the crack-tip is estimated through local misorientations and geometrically necessary dislocations, and are more severe in the lower Schmid factor grain. In both grain types, cross slips are distributed closer to the crack, while co-planar slips appear away from the crack, revealing consistent crack-tip deformations. Strain-induced α’-martensite transformations occur in the higher Schmid factor grain. These results imply that grain texture can be used to predict and mitigate CISCC propagation in austenitic stainless steel.

Abstract Image

本研究旨在了解奥氏体不锈钢中氯化物诱导应力腐蚀开裂(CISCC)的机械方面。CISCC 是奥氏体不锈钢的一种关键降解模式,因此了解其机理对于预测材料的完整性和使用寿命至关重要。本文通过透射菊池衍射和透射电子显微镜研究了两种情况下的 CISCC:向低施密特因子晶粒和高施密特因子晶粒传播。裂纹尖端附近变形场的演变是通过局部错向和几何上必要的位错估算出来的,在低施密特因子晶粒中变形场的演变更为严重。在这两种晶粒类型中,交叉滑移分布在更靠近裂纹的地方,而共平面滑移则出现在远离裂纹的地方,这揭示了一致的裂纹尖端变形。在施密特因子较高的晶粒中,出现了应变诱导的α'-马氏体转变。这些结果表明,晶粒纹理可用于预测和减缓奥氏体不锈钢中的 CISCC 扩展。
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来源期刊
Scripta Materialia
Scripta Materialia 工程技术-材料科学:综合
CiteScore
11.40
自引率
5.00%
发文量
581
审稿时长
34 days
期刊介绍: Scripta Materialia is a LETTERS journal of Acta Materialia, providing a forum for the rapid publication of short communications on the relationship between the structure and the properties of inorganic materials. The emphasis is on originality rather than incremental research. Short reports on the development of materials with novel or substantially improved properties are also welcomed. Emphasis is on either the functional or mechanical behavior of metals, ceramics and semiconductors at all length scales.
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