TY - JOUR
T1 - EFFECT OF MICROSTRUCTURAL CONSTITUENTS ON HYDROGEN EMBRITTLEMENT RESISTANCE OF API X60, X70, AND X80 PIPELINE STEELS
AU - Shin, Seung Hyeok
AU - Oh, Dong Kyu
AU - Kim, Sang Gyu
AU - Hwang, Byoungchul
N1 - Publisher Copyright:
© 2024 Polska Akademia Nauk. All rights reserved.
PY - 2024
Y1 - 2024
N2 - This study describes how microstructural constituents affected the hydrogen embrittlement resistance of high-strength pipeline steels. The american Petroleum institute (aPi) X60, X70, and X80 pipeline steels demonstrated complicated microstructure comprising polygonal ferrite (PF), acicular ferrite, granular bainite (gB), bainitic ferrite (BF), and secondary phases, e.g., the martensite-austenite (ma) constituent, and the volume fraction of the microstructures was dependent on alloying elements and processing conditions. To evaluate the hydrogen embrittlement resistance, a slow strain rate test (SSRT) was performed after electrochemical hydrogen charging. The SSRT results indicated that the X80 steel with the highest volume fraction of the ma constituent demonstrated relatively high yield strength but exhibited the lowest hydrogen embrittlement resistance because the ma constituent acted as a reversible hydrogen trap site.
AB - This study describes how microstructural constituents affected the hydrogen embrittlement resistance of high-strength pipeline steels. The american Petroleum institute (aPi) X60, X70, and X80 pipeline steels demonstrated complicated microstructure comprising polygonal ferrite (PF), acicular ferrite, granular bainite (gB), bainitic ferrite (BF), and secondary phases, e.g., the martensite-austenite (ma) constituent, and the volume fraction of the microstructures was dependent on alloying elements and processing conditions. To evaluate the hydrogen embrittlement resistance, a slow strain rate test (SSRT) was performed after electrochemical hydrogen charging. The SSRT results indicated that the X80 steel with the highest volume fraction of the ma constituent demonstrated relatively high yield strength but exhibited the lowest hydrogen embrittlement resistance because the ma constituent acted as a reversible hydrogen trap site.
KW - electrochemical hydrogen charging
KW - hydrogen embrittlement
KW - microstructure
KW - Pipeline steel
KW - slow strain rate test (SSRT)
UR - https://www.scopus.com/pages/publications/85190736307
U2 - 10.24425/amm.2024.147781
DO - 10.24425/amm.2024.147781
M3 - Article
AN - SCOPUS:85190736307
SN - 1733-3490
VL - 69
SP - 39
EP - 43
JO - Archives of Metallurgy and Materials
JF - Archives of Metallurgy and Materials
IS - 1
ER -