The generalized diagram of fracture toughness for pipeline steels

被引:12
|
作者
Baron, A. A. [1 ]
机构
[1] Volgograd State Tech Univ, Volgograd 400131, Russia
关键词
Pipeline steels; Embrittlement; Hardness; Yield stress; Fracture toughness;
D O I
10.1016/j.ijpvp.2012.06.003
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Transit oil and gas pipelines usually exhaust their design service life after 30-40 years. Embrittlement is one of the most dangerous consequences of metal aging. Standard linear fracture toughness K-IC testing of pipeline steels is possible only at a sufficiently low temperature (-196 degrees C) when the pipe wall thickness satisfies plane strain conditions. In this case there arises the problem of calculating K-IC values at operational temperatures, by means of the results of low-temperature small specimen testing. The aim of the present work is building up the concept of a generalized fracture toughness diagram for different pipeline steels within the absolute temperature range 77 <= T <= 293 K. Nine different pipeline steels in "as-received" state were tested. A linear relationship between yield stress and Brinell hardness HB was revealed within the temperature range mentioned above. The generalized correlation between relations of K-IC,K-T/K-IC,K-243 and HBT/HB243 was found. Here subscripts "T" and "243" correspond respectively to any temperature and a phase transition temperature of 243 K. The correlation described makes it possible to propose a new simplified method for different pipeline steels fracture toughness estimations. (C) 2012 Elsevier Ltd. All rights reserved.
引用
收藏
页码:26 / 29
页数:4
相关论文
共 50 条
  • [21] Correlation of the microshear toughness and fracture toughness for pressure vessel steels and structural steels
    Zhang, XP
    Dorn, L
    Shi, YW
    [J]. INTERNATIONAL JOURNAL OF PRESSURE VESSELS AND PIPING, 2002, 79 (06) : 445 - 450
  • [22] Thermally Activated Crack Growth and Fracture Toughness Evaluation of Pipeline Steels Using Acoustic Emission
    Perveitalov, Oleg G.
    Nosov, Viktor V.
    Schipachev, Andrey M.
    Alekhin, Alexey I.
    [J]. METALS, 2023, 13 (07)
  • [23] CVN AND DWTT ENERGY METHODS FOR DETERMINING FRACTURE ARREST TOUGHNESS OF HIGH STRENGTH PIPELINE STEELS
    Zhu, Xian-Kui
    Leis, Brian N.
    [J]. PROCEEDINGS OF THE 9TH INTERNATIONAL PIPELINE CONFERENCE - 2012, VOL 3, 2013, : 565 - 573
  • [24] Fracture toughness analysis in transition temperature region of API X70 pipeline steels
    Shin, Sang Yong
    Hwang, Byoungchul
    Kim, Sangho
    Lee, Sunghak
    [J]. MATERIALS SCIENCE AND ENGINEERING A-STRUCTURAL MATERIALS PROPERTIES MICROSTRUCTURE AND PROCESSING, 2006, 429 (1-2): : 196 - 204
  • [25] Effect of microstructure and crystallographic orientation characteristics on low temperature toughness and fracture behavior of pipeline steels
    Duan, He
    Shan, Yiyin
    Yang, Ke
    Shi, Xianbo
    Yan, Wei
    [J]. JOURNAL OF MATERIALS RESEARCH AND TECHNOLOGY-JMR&T, 2022, 17 : 3172 - 3185
  • [26] FRACTURE TOUGHNESS DETERMINATION OF STRUCTURAL STEELS
    BRATINA, WJ
    MCGRATH, JT
    [J]. CANADIAN MINING AND METALLURGICAL BULLETIN, 1971, 64 (712): : 27 - &
  • [27] FRACTURE TOUGHNESS CHARACTERIZATION OF SHIPBUILDING STEELS
    LOSS, FJ
    HAWTHORN.JR
    [J]. REPORT OF NRL PROGRESS, 1973, (NOV): : 34 - 36
  • [28] Fracture toughness of carbon steels and their welds
    Timofeev, B
    Chernaenko, T
    Bazaras, Z
    [J]. Transport Means 2005, Proceedings, 2005, : 89 - 92
  • [29] FRACTURE TOUGHNESS CHARACTERIZATION OF SHIPBUILDING STEELS
    HAWTHORN.JR
    LOSS, FJ
    [J]. REPORT OF NRL PROGRESS, 1973, (DEC): : 34 - 36
  • [30] Fracture Toughness of Functionally Graded Steels
    Ali Nazari
    Jamshid Aghazadeh Mohandesi
    Shadi Riahi
    [J]. Journal of Materials Engineering and Performance, 2012, 21 : 558 - 563