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In-situ investigation of the interaction between hydrogen and stacking faults in a bulk austenitic steel  ( SCI-EXPANDED收录 EI收录)  

文献类型:期刊文献

英文题名:In-situ investigation of the interaction between hydrogen and stacking faults in a bulk austenitic steel

作者:Shi, Hao[1];Nandy, Supriya[1,2];Cheng, Huijie[3];Sun, Binhan[3];Ponge, Dirk[1]

机构:[1]Max Planck Inst Eisenforsch GmbH, Dusseldorf, Germany;[2]VTT Tech Res Ctr Finland Ltd, Teknologian Tutkimuskeskus VTT Oy, Kemistintie 3, Espoo 02150, Finland;[3]East China Univ Sci & Technol, Sch Mech & Power Engn, Key Lab Pressure Syst & Safety, Minist Educ, Shanghai 200237, Peoples R China

年份:2024

卷号:262

外文期刊名:ACTA MATERIALIA

收录:;EI(收录号:20234415001239);WOS:【SCI-EXPANDED(收录号:WOS:001104397900001)】;

基金:Binhan Sun acknowledges the financial support from the National Natural Science Foundation of China (Grant No. 52275147) .

语种:英文

外文关键词:Hydrogen embrittlement (HE); Delayed fracture; Stacking fault; Shear modulus; Partial dislocation

摘要:The interaction between hydrogen (H) atoms and various microstructural defects remains a key to understand the H-induced damage and the subsequent premature failure of high-strength metallic materials. Previous studies on this subject are mainly focused on the in-situ probing of dislocations in a thin foil placed in an environmental transmission electron microscopy (TEM) cell. Here, a three-point bending test coupled with electron channeling contrast imaging (ECCI) has been applied to investigate the interaction of H with stacking faults (SFs) in a bulk high Mn austenitic steel. The expansion of some SFs, in terms of one partial dislocation movement within a partial dislocation pair, was observed on the H pre-charged sample when kept at a constant loading (i.e., a continuous H migration and likely build-up close to the pre-prepared notch tip). A temporal-resolved crosscorrelation EBSD (CC-EBSD) measurement shows that the migration of H towards the notch tip region has a minor effect on the internal stress evolution. However, the local shear modulus (mu) and stacking fault energy (gamma SF) can be reduced by a local H segregation. Further theoretical calculation of SF ribbon width indicates that the reduction of mu by H results in the shrinkage of SF, while the H-induced reduction of gamma SF results in SF expansion at a lower resolved shear stress. The observed expansion of SF ribbons can be interrupted by a combined reduction of both mu and gamma SF due to H.

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