Unveiling liquid Pb-Bi embrittlement of 316LN stainless steel under fatigue crack propagation tests through multiscale advanced characterization

被引:0
作者
Xue, Baoquan [1 ,2 ]
Tan, Jibo [1 ]
Wu, Xinqiang [1 ]
Zhang, Ziyu [1 ]
Ke, Wei [1 ]
机构
[1] Chinese Acad Sci, Inst Met Res, CAS Key Lab Nucl Mat & Safety Assessment, Liaoning Key Lab Safety & Assessment Tech Nucl Mat, Shenyang 110016, Peoples R China
[2] Univ Sci & Technol China, Sch Mat Sci & Engn, Hefei 230026, Peoples R China
关键词
316LN austenite stainless steel; Lead-bismuth eutectic; Fatigue crack growth; Liquid metal embrittlement; LOW-CYCLE FATIGUE; LEAD-BISMUTH; METAL EMBRITTLEMENT; SUSCEPTIBILITY;
D O I
10.1016/j.corsci.2025.112752
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
316LN austenite stainless steel (AuSS) is a candidate structural material for the reactor vessel in lead-bismuth eutectic (LBE) cooled fast reactor. However, the potential risks of liquid metal embrittlement (LME) and the associated damage mechanisms for 316LN AuSS in LBE remain poorly understood. In this study, the micromechanisms of fatigue crack growth (FCG) of 316LN AuSS in oxygen-saturated liquid LBE at 200-400 degrees C were investigated by multiscale advanced characterization techniques. The FCG rate increased significantly when the LBE temperature exceeded 300 degrees C and the stress intensity range (Delta K) surpassed approximately 20 MPa & sdot;m0.5. Initially, 316 LN AuSS exhibited ductile cracking, which subsequently transitioned to quasicleavage and ultimately to cleavage cracking. As the crack propagated, the interaction between plastic deformation and liquid LBE wetting induced the evolution of the microstructures ahead of the crack tip, accompanied by an increase in LME sensitivity. The crack preferentially propagated along the deformation-induced microstructural interfaces, including twin boundaries and planar dislocation bands at cleavage crack tip. Liquid Pb-Bi atoms preferentially segregated at these microstructural interfaces, promoting brittle cracking. Even trace amounts of Pb atoms doped on the high-density dislocation walls can promote the interfacial cleavage cracking under conditions of high stress concentration ahead of the sharpened crack tip.
引用
收藏
页数:15
相关论文
共 45 条
  • [1] [Anonymous], 2015, NEA-7268)
  • [2] [Anonymous], 2015, ASME Boiler and Pressure Vessel Code
  • [3] Liquid metal embrittlement and deformation induced martensite: The case of 316 L austenitic steel LME by liquid eutectic gallium-indium
    Auger, T.
    Michel, V
    Cassayre, L.
    Baketi, H.
    Barkia, B.
    Michel, A.
    Perrin, E.
    [J]. CORROSION SCIENCE, 2021, 192
  • [4] Multiscale investigation of crack path and microstructural changes during liquid metal embrittlement of 304L austenitic steel in liquid sodium
    Barkia, B.
    Auger, T.
    Courouau, J. L.
    Bourgon, J.
    [J]. CORROSION SCIENCE, 2017, 127 : 213 - 221
  • [5] The Effects of Edge Dislocations on The Corrosion Behavior of Pure Iron in Liquid Lead-Bismuth Eutectic: A Molecular Dynamics Study
    Chen, Liming
    Liu, Sijie
    Wang, Li
    Gan, Shuyun
    Wen, Chunmei
    Li, Jiaqi
    Wu, Zhongzheng
    He, Xiaoxun
    Xu, Shuai
    Deng, Zhiyong
    Krsjak, Vladimir
    Daghbouj, Nabil
    Cao, Qilong
    Li, Bingsheng
    [J]. ANNALS OF NUCLEAR ENERGY, 2024, 206
  • [6] Chocholousek M., 2017, MatISSE, V42, pD5
  • [7] Dalle F, 2017, WOODHEAD PUBL SER EN, P595, DOI 10.1016/B978-0-08-100906-2.00017-3
  • [8] Low cycle fatigue behavior of 316LN stainless steel hollow specimen in air and liquid lead-bismuth eutectic
    Ding, Jianhua
    Tan, Jibo
    Zhang, Ziyu
    Wang, Xiang
    Wu, Xinqiang
    Han, En-Hou
    Ke, Wei
    [J]. INTERNATIONAL JOURNAL OF FATIGUE, 2023, 175
  • [9] Bismuth-induced embrittlement of copper grain boundaries
    Duscher, G
    Chisholm, MF
    Alber, U
    Rühle, M
    [J]. NATURE MATERIALS, 2004, 3 (09) : 621 - 626
  • [10] High-pressure corrosion fatigue experiments employing diverse methodologies for assessing rates of crack propagation
    Garcia, R. R. A.
    Mattos, O. R.
    [J]. JOURNAL OF MATERIALS RESEARCH AND TECHNOLOGY-JMR&T, 2024, 31 : 3301 - 3309