Effects of hydrogen and strain rate on stress corrosion cracking mechanism of high strength pipeline steel

被引:0
|
作者
Gong, Ke [1 ,2 ]
Sun, Dongxu [1 ]
Liu, Xinyi [3 ]
Li, Jin [1 ]
Wu, Ming [1 ]
Hu, Min [4 ]
机构
[1] Liaoning Petrochem Univ, Coll Petr Engn, Key Lab Oil & Gas Storage & Transportat, Fushun 113001, Liaoning, Peoples R China
[2] Chinese Acad Sci, Ningbo Inst Mat Technol & Engn, Key Lab Marine Mat & Related Technol, Zhejiang Key Lab Marine Mat & Protect Technol, Ningbo 315201, Zhejiang, Peoples R China
[3] Tsinghua Univ, Sch Mat Sci & Engn, Key Lab Adv Mat, Minist Educ, Beijing 100084, Peoples R China
[4] Pertrochina, Planning & Engn Inst, Beijing 100000, Peoples R China
来源
关键词
Stress corrosion cracking; Hydrogen pre-charging; Strain rate; X100; steel; PH; DISSOLUTION; CHLORIDE; EMBRITTLEMENT; BEHAVIOR;
D O I
10.1016/j.mtcomm.2025.112172
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Hydrogen considerably affects the stress corrosion cracking (SCC) susceptibility of high-strength pipeline steel. The SCC mechanism of verification phase X100 steel, which can withstand higher transport pressures and reduce equipment weight, was studied by performing slow strain rate test (SSRT) tests at different strain rates and hydrogen pre-charging times. The results show that hydrogen pre-charging forms numerous microcracks inside the sample, which then join under tensile stress and lead to internal structural defects inside the material. Additionally, hydrogen atoms promote crack propagation by increasing the local dissolution rate at the crack tip, which significantly improves the SCC susceptibility. The strain rate indirectly alters the process for ion exchange between sample and solution medium, this ultimately alters the rate of electrochemical corrosion at the crack tip. X100 steel demonstrated the highest SCC susceptibility when the growth rate at the crack tip was comparable to the anodic dissolution rate.
引用
收藏
页数:11
相关论文
共 50 条
  • [1] Influence of carbon on stress corrosion cracking of high strength pipeline steel
    Wang, L. W.
    Du, C. W.
    Liu, Z. Y.
    Wang, X. H.
    Li, X. G.
    CORROSION SCIENCE, 2013, 76 : 486 - 493
  • [2] Effect of strain rate on stress corrosion cracking of X80 pipeline steel
    Cheng, Y. (chengyuan621@sina.com), 1600, Beijing Institute of Aeronautical Materials (BIAM)
  • [3] Threshold Stress Intensity of Hydrogen-Induced Cracking and Stress Corrosion Cracking of High Strength Steel
    LI Hui-lu
    GAO Ke-wei
    QIAO Li-jie
    WANG Yan-bing
    CHU Wu-yang
    HUI Wei-jun
    DONG Han
    WENG Yu-qing
    JournalofIronandSteelResearch(International), 2001, 8 (02) : 42 - 46
  • [4] ROLE OF STRAIN HARDENING EXPONENT IN STRESS CORROSION CRACKING OF A HIGH STRENGTH STEEL
    COLANGELO, VJ
    FERGUSON, MS
    CORROSION, 1969, 25 (12) : 509 - +
  • [5] Threshold stress intensity of hydrogen-induced cracking and stress corrosion cracking of high strength steel
    Li, HL
    Gao, KW
    Qiao, LJ
    Wang, YB
    Chu, WY
    Hui, WJ
    Dong, H
    Weng, YQ
    JOURNAL OF IRON AND STEEL RESEARCH INTERNATIONAL, 2001, 8 (02) : 42 - 46
  • [6] Effects of strain rate on stress corrosion cracking of X80 pipeline steel in ku'erle soil environment
    Xie, Fei
    Wang, Dan
    Wu, Ming
    Sun, Dongxu
    Hanjie Xuebao/Transactions of the China Welding Institution, 2015, 36 (01): : 55 - 58
  • [7] HYDROGEN SULFIDE STRESS-CORROSION CRACKING OF HIGH-STRENGTH STEEL WIRE
    TOWNSEND, HE
    CORROSION, 1972, 28 (02) : 39 - &
  • [8] Characteristics and mechanism of high pH stress corrosion cracking of pipeline steel X70
    Li, Guangfu
    Zhang, Guoliang
    Zhou, Jianjiang
    Huang, Chunbo
    Yang, Wu
    PROGRESSES IN FRACTURE AND STRENGTH OF MATERIALS AND STRUCTURES, 1-4, 2007, 353-358 : 219 - 222
  • [9] GROWTH-MECHANISM OF STRESS-CORROSION CRACKING IN HIGH-STRENGTH STEEL
    HIROSE, Y
    MURA, T
    ENGINEERING FRACTURE MECHANICS, 1984, 19 (06) : 1057 - &
  • [10] HYDROGEN EFFECTS ON FATIGUE CRACK GROWTH RATE IN HIGH STRENGTH PIPELINE STEEL
    Darcis, Ph. P.
    McColskey, J. D.
    Lasseigne, A. N.
    Siewert, T. A.
    EFFECTS OF HYDROGEN ON MATERIALS, 2009, : 381 - 388