Fatigue crack growth behavior in niobium-hydrogen alloys

被引:0
|
作者
Mark Ching-Cheng Lin
K. Salama
机构
[1] University of Houston,Department of Mechanical Engineering
[2] Industrial Technology Research Institute,Materials Research Laboratoires
[3] University of Houston,The Department of Mechanical Engineering
来源
Metallurgical and Materials Transactions A | 1997年 / 28卷
关键词
Hydride; Fatigue Crack Growth; Hydrogen Concentration; Crack Closure; Hydrogen Embrittlement;
D O I
暂无
中图分类号
学科分类号
摘要
Near-threshold fatigue crack growth behavior has been investigated in niobium-hydrogen alloys. Compact tension specimens (CTS) with three hydrogen conditions are used: hydrogen-free, hydrogen in solid solution, and hydride alloy. The specimens are fatigued at a temperature of 296 K and load ratios of 0.05, 0.4, and 0.75. The results at load ratios of 0.05 and 0.4 show that the threshold stress intensity range (ΔKth) decreases as hydrogen is added to niobium. It reaches a minimum at the critical hydrogen concentration (Ccr), where maximum embrittlement occurs. The critical hydrogen concentration is approximately equal to the solubility limit of hydrogen in niobium. As the hydrogen concentration exceeds Ccr, ΔKth increases slowly as more hydrogen is added to the specimen. At load ratio 0.75, ΔKth decreases continuously as the hydrogen concentration is increased. The results provide evidence that two mechanisms are responsible for fatigue crack growth behavior in niobium-hydrogen alloys. First, embrittlement is retarded by hydride transformation-induced and plasticity-induced crack closures. Second, embrittlement is enhanced by the presence of hydrogen and hydride.
引用
收藏
页码:2059 / 2065
页数:6
相关论文
共 50 条
  • [41] Illuminating the chemo-mechanics of hydrogen enhanced fatigue crack growth in aluminum alloys
    Zamora, R. J.
    Baker, K. L.
    Warner, D. H.
    ACTA MATERIALIA, 2015, 100 : 232 - 239
  • [42] Fatigue crack initiation and growth in solder alloys
    Kanchanomai, C.
    Mutoh, Y.
    FATIGUE & FRACTURE OF ENGINEERING MATERIALS & STRUCTURES, 2007, 30 (05) : 443 - 457
  • [43] FATIGUE DAMAGE AND CRACK GROWTH IN ALUMINIUM ALLOYS
    FORSYTH, PJE
    ACTA METALLURGICA, 1963, 11 (07): : 703 - &
  • [44] Fatigue crack growth in anodised aluminium alloys
    Cree, A. M.
    Weidmann, G. W.
    ADVANCED MARINE MATERIALS, INTERNATIONAL CONFERENCE, 2006, : 77 - 83
  • [45] Fatigue crack growth thresholds of TiAl alloys
    Chan, KS
    GAMMA TITANIUM ALUMINIDES 1999, 1999, : 517 - 525
  • [46] Random fatigue crack growth in aluminum alloys
    Ustilovsky, S
    Arone, R
    INTERNATIONAL JOURNAL OF FATIGUE, 1999, 21 : S275 - S282
  • [47] Evaluation of Fatigue Crack Growth in α-Titanium Alloys
    Umezawa, Osamu
    Hamada, Makiko
    Tatsumi, Toshifumi
    6TH NEW METHODS OF DAMAGE AND FAILURE ANALYSIS OF STRUCTURAL PARTS, 2016, 12 : 48 - 53
  • [48] EFFECTS OF GASEOUS HYDROGEN ON FATIGUE CRACK GROWTH BEHAVIOR OF LOW CARBON STEEL
    Lee, Dongsun
    Nishikawa, Hide-aki
    Oda, Yasuji
    Noguchi, Hiroshi
    ASME PRESSURE VESSELS AND PIPING CONFERENCE 2009, VOL 3: DESIGN AND ANALYSIS, 2010, : 499 - 507
  • [49] Fatigue crack growth behavior of laser-annealed IN 718 alloy in hydrogen
    Tsay, LW
    Lin, HH
    Shiue, RK
    CORROSION SCIENCE, 2004, 46 (11) : 2651 - 2662
  • [50] Fatigue Crack Growth Behavior of Austempered AISI 4140 Steel with Dissolved Hydrogen
    Nagarajan, Varun Ramasagara
    Putatunda, Susil K.
    Boileau, James
    METALS, 2017, 7 (11):