超级双相不锈钢的氢脆

X. Liang, G. Zhao, M. Dodge, T.L. Lee, H. Dong, P. Rivera-Diaz-Del-Castillo
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引用次数: 20

摘要

摘要在超级双相不锈钢(sdss)中,奥氏体和铁素体都容易发生氢脆,但人们对氢在两相中的作用缺乏了解。本文采用中子衍射法对含氢(h)试样进行了研究,研究了超级双相不锈钢的氢脆行为。结果表明,奥氏体在拉伸试验中保持了良好的塑性,而铁素体则失去了塑性。断口分析表明,氢的扩散引起试样从表面向中心的脆性向延性转变;氢脆在接近试样中心时消失,而在奥氏体中首先消失,而在铁素体中不消失。这种转变可以通过应用基于物理的氢脆模型来预测,该模型结合了氢浓度、氢扩散系数、残余应力、加载状态和温度的影响。本工作证明了奥氏体和铁素体对氢脆的不同敏感性,为描述氢脆提供了一种工具。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Hydrogen Embrittlement in Super Duplex Stainless Steels
Abstract In super duplex stainless steels (SDSSs), both austenite and ferrite are susceptible to hydrogen embrittlement, however there is a lack of understanding into the effect of hydrogen in each phase. In this study, in neutron diffraction was applied on hydrogen-charged (H-charged) samples to investigate the hydrogen embrittlement behaviour in super duplex stainless steels. The result reveals that austenite maintains good plasticity during tensile testing, whilst a loss of it is realised in ferrite. Fractography analysis reveals the diffusion of hydrogen induced a brittle-to-ductile transition from the sample surface towards the centre; hydrogen embrittlement vanishes as the specimen’s centre is approached, while it is demonstrated to disappear first in austenite but not in ferrite. This transition can be predicted by applying a physics-based hydrogen embrittlement model which incorporates the effects of hydrogen concentration, hydrogen diffusivity, residual stress, loading state and temperature. The present work demonstrates the dissimilar susceptibility of austenite and ferrite to hydrogen embrittlement, providing a tool to describe it.
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