Effect of isothermal temper embrittlement and subsequent hydrogen embrittlement on tensile properties of 2.25Cr–1Mo–0.25V base metal and welded metal

被引:0
作者
Zhi-peng Shen
Wei Fu
Ling-rui Kong
Han-han Ma
Xiao-hua He
Xiao-chun Yu
Chang-yu Zhou
机构
[1] Nanjing Tech University,School of Mechanical and Power Engineering
[2] Jiangsu Key Lab of Design and Manufacture of Extreme Pressure Equipment,undefined
来源
Journal of Iron and Steel Research International | 2021年 / 28卷
关键词
2.25Cr–1Mo–0.25V base metal; Temper embrittlement; Hydrogen embrittlement; Mechanical property; Combined effect;
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学科分类号
摘要
2.25Cr–1Mo–0.25V base metal (BM) and welded metal (WM) with different temper embrittlement states were obtained by isothermal temper embrittlement test. The ductile–brittle transition temperature and the carbide size of temper embrittled 2.25Cr–1Mo–0.25V BM and WM increased with the isothermal tempering time. The increase in temper embrittlement time leads to a decrease in yield strength (YS) and ultimate tensile strength (UTS). Hydrogen embrittlement (HE) can decrease the ductility and increase YS and UTS of the material. The hydrogen embrittlement sensitivity and microstructure analysis both show a combined effect of HE and temper embrittlement. The deeper the temper embrittlement, the more sensitive the material to HE. When the hydrogen content in the material is low, the WM is less susceptible to HE due to its welding defects.
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页码:1426 / 1438
页数:12
相关论文
共 139 条
  • [1] Xu H(2012)undefined Eng. Fail. Anal. 19 43-50
  • [2] Xia X(2018)undefined Materials 11 788-281
  • [3] Hua L(2000)undefined Mater. Sci. Eng. A 286 269-4876
  • [4] Sun Y(2013)undefined Int. J. Hydrogen Energy 38 4864-934
  • [5] Dai Y(2012)undefined Scripta Mater. 67 931-22583
  • [6] Song Y(2019)undefined Int. J. Hydrogen Energy 44 22576-321
  • [7] Han ZL(2014)undefined Corros. Sci. 78 313-207
  • [8] Chai MY(2019)undefined Int. J. Fatigue. 121 197-176
  • [9] Yang B(2016)undefined Mater. Sci. Eng. A 664 165-968
  • [10] Liu YL(2007)undefined Eng. Fract. Mech. 74 956-112