ROOT CRACKING AND MAXIMUM HARDNESS IN HIGH-STRENGTH STEEL WELDS.

被引:0
|
作者
Suzuki, Haruyoshi [1 ]
机构
[1] Nippon Steel Corp, Jpn, Nippon Steel Corp, Jpn
关键词
STEEL - Hydrogen Embrittlement - STEEL TESTING - Hardness - WELDING - Steel;
D O I
暂无
中图分类号
学科分类号
摘要
Effects of maximum hardness in the HAZ on root crack initiation in the JIS-y (oblique-Y groove) cracking test are discussed. The values of critical hydrogen concentration Hc at the location of root crack initiation at 100 degree C on the way of cooling, were calculated, assuming uniform diffusion of hydrogen through weld zone. The value of log Hc decreased linearly with an increase of H//m//a//x, depending on the intensity of restraint. The correlation between log Hc and Hmax was found to be far poorer than that between log Hc and Pcm, Ito and Bessyo carbon equivalent, which is adequate for low carbon content steels. An analysis by the cracking parameter P//H//A, proposed by the author considering local accumulation of hydrogen at the site of crack initiation, revealed that log H//c vs. H//m//a//x relation is severely affected by the C% of test Steels, thus a wide scatter in Hc values. For the same value of H//m//a//x, a lower carbon content is more favorable against root cracking. The estimation agrees well with the JIS-y test result. The critical values of H//m//a//x for crack-free welding without preheating, have been P//H//A-estimated depending on H//D values. As an application, the P//H// A-estimated critical values of H//m//a//x agree satisfactorily with the Harasawa-Hart's observed values in the H-type self-restrained root cracking tests.
引用
收藏
页码:376 / 382
相关论文
共 50 条
  • [11] Study on Fatigue Characteristics of High-Strength Steel Welds
    Suk, Chang Hong
    Won, Yoo Seung
    Park, Jong Chan
    TRANSACTIONS OF THE KOREAN SOCIETY OF MECHANICAL ENGINEERS A, 2015, 39 (03) : 319 - 325
  • [12] Blast resistance of high-strength structural steel welds
    Falkenreck, Th. E.
    Boellinghaus, Th.
    WELDING IN THE WORLD, 2016, 60 (03) : 475 - 483
  • [13] Experimental and numerical analyses of high-strength steel welds
    Stroetmann, R.
    Kaestner, T.
    ADVANCES IN ENGINEERING MATERIALS, STRUCTURES AND SYSTEMS: INNOVATIONS, MECHANICS AND APPLICATIONS, 2019, : 1300 - 1305
  • [14] Prevention of weld metal hydrogen cracking in high-strength multipass welds
    Nevasmaa P.
    Welding in the World, 2004, 48 (5-6) : 2 - 18
  • [15] Dynamic hardness of high-strength steel and titanium alloy
    Stepanov, G
    Zubov, V
    JOURNAL DE PHYSIQUE IV, 2000, 10 (P9): : 647 - 651
  • [16] MEASUREMENTS OF CARBON CONTENT IN M-A CONSTITUENT IN HAZ OF HIGH STRENGTH STEEL WELDS.
    Matsuda, Fukuhisa
    Nakagawa, Hiroji
    Lee, Jong-Bong
    Transactions of JWRI (Japanese Welding Research Institute), 1987, 16 (01): : 217 - 219
  • [17] Deformation behaviour of high-strength steel welds using DIC
    Ghimire, Abhishek
    Wald, František
    ce/papers, 2023, 6 (3-4) : 557 - 561
  • [18] Temperature, macrostructure and hardness in high strength low alloy steel welds
    Moon, DW
    Lambrakos, SG
    Wong, RJ
    Metzbower, EA
    SCIENCE AND TECHNOLOGY OF WELDING AND JOINING, 2003, 8 (05) : 334 - 339
  • [19] Numerical Modelling for Resistance of Welds in Steel Structures from High-Strength Steel
    Ghimire, Abhishek
    Wald, František
    ce/papers, 2022, 5 (04): : 515 - 519
  • [20] CHARACTERIZATION OF HEAT-AFFECTED ZONE CRACKING IN AUSTENITIC STAINLESS STEEL WELDS.
    Kujanpaa, V.P.
    David, S.A.
    White, C.L.
    Welding Journal (Miami, Fla), 1987, 66 (08):