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Modeling of hydrogen diffusion in duplex stainless steel based on microstructure using finite element method

机译:基于微观结构的多相不锈钢氢扩散的建模

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摘要

Duplex stainless steels (DSS) are subjected to a deleterious effect known as hydrogen assisted cracking (HAC). Revealing the hydrogen diffusion behavior in DSS is the key to understanding the mechanism of HAC, since hydrogen diffusivity and solubility are different in ferrite and austenite. In this study, finite element (FE) analyses on hydrogen diffusion behavior in DSS were performed by considering the combined effect of heterogeneous microstructure and hydrostatic stress with the help of finite element program-ABAQUS. Two-dimensional dual-phase models with representative volume element were applied based on the obtained microstructure using optical microscopy. The constant loading catholic charging experiments were also carried out to provide comparative results for characterization on the susceptibility of DSS to HAC. Results indicate that hydrogen diffusion in DSS is strongly dependent on the morphological diversity of microstructure. Compared to the coupled analysis with stress effect, hydrogen diffusivity and concentration are observed with an increase, and experimental results show that most of the HAC cracks initiate in the ferrite phase and arrested by austenite.
机译:双相不锈钢(DSS)受到称为氢气辅助裂缝(HAC)的有害效果。揭示DSS中的氢气扩散行为是了解HAC机制的关键,因为铁氧体和奥氏体的氢扩散率和溶解度不同。在该研究中,通过在有限元编程 - ABAQUS的帮助下考虑异质组织微观结构和静压应力的组合效应来进行DSS中的有限元(Fe)对DSS中的氢扩散行为进行分析。使用光学显微镜基于所获得的微结构施加具有代表体积元件的二维双相模型。还进行了恒定的加载天主教充电实验,以提供对比较结果表征DSS对HAC的敏感性。结果表明,DSS中的氢气扩散强烈依赖于微观结构的形态多样性。与应力效应的偶联分析相比,通过增加观察到氢扩散和浓缩,实验结果表明,大多数HAC裂缝在铁氧体相中引发并被奥氏体阻止。

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