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Characterization of hydrogen induced cracking in TRIP-assisted steels

机译:TRIP辅助钢中氢致裂纹的表征

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The present work evaluates hydrogen induced cracking in a TRIP-assisted steel with a multiphase microstructure, containing ferrite, bainite, retained austenite, and some martensite. When deformed, the retained austenite transforms to martensite, which changes the phase balance in the alloy. Each microstructural constituent demonstrates a different behavior in the presence of hydrogen. The goal of this work is to understand the response of the hydrogen saturated multiphase structure to a mechanical load. Tensile tests on notched samples combined with in-situ electrochemical hydrogen charging were conducted. The test was interrupted at specific points, before the macroscopic failure of the material. Hydrogen induced crack initiation and propagation were examined by studying the microstructure at several intermediate elongations. Characteristic hydrogen induced cracks were only observed after reaching tensile strength and were located at the surface in a specific pattern. Finite element simulations indicated that the observed crack pattern coincides with the increased stress regions induced by the notch presence. This indicates that hydrogen induced crack formation is dominantly stress induced for this steel. Copyright (C) 2015, Hydrogen Energy Publications, LLC. Published by Elsevier Ltd. All rights reserved.
机译:本工作评估了TRIP辅助钢中的氢诱导开裂,该钢具有多相微观结构,其中包含铁素体,贝氏体,残余奥氏体和一些马氏体。变形时,残留的奥氏体转变为马氏体,从而改变了合金的相平衡。每种微观结构成分在氢存在下均表现出不同的行为。这项工作的目的是了解氢饱和多相结构对机械负载的响应。对缺口样品进行拉伸试验,并结合原位电化学氢充注。在材料发生宏观破坏之前,在特定点中断了测试。氢诱导的裂纹萌生和扩展通过研究几个中间伸长率的微观结构进行了检查。仅在达到拉伸强度后才能观察到特征性的氢致裂纹,并且该裂纹以特定的图案位于表面。有限元模拟表明,观察到的裂纹模式与缺口存在引起的应力增加区域相吻合。这表明氢诱导的裂纹形成是该钢的主要应力诱导。 Hydrogen Energy Publications,LLC版权所有(C)2015。由Elsevier Ltd.出版。保留所有权利。

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