Corrosion Fatigue of High-Strength Titanium Alloys Under Different Stress Gradients

被引:0
|
作者
Sergio Baragetti
Francesco Villa
机构
[1] University of Bergamo,Department of Management, Information and Production Engineering
[2] University of Bergamo,GITT Centre on Innovation Management and Technology Transfer
来源
JOM | 2015年 / 67卷
关键词
Stress Corrosion Crack; Fatigue Crack Growth Rate; Methanol Concentration; Corrosion Fatigue; High Methanol Concentration;
D O I
暂无
中图分类号
学科分类号
摘要
Ti-6Al-4V is the most widely used high strength-to-mass ratio titanium alloy for advanced engineering components. Its adoption in the aerospace, maritime, automotive, and biomedical sectors is encouraged when highly stressed components with severe fatigue loading are designed. The extents of its applications expose the alloy to several aggressive environments, which can compromise its brilliant mechanical characteristics, leading to potentially catastrophic failures. Ti-6Al-4V stress-corrosion cracking and corrosion-fatigue sensitivity has been known since the material testing for pressurized tanks for Apollo missions, although detailed investigations on the effects of harsh environment in terms of maximum stress reduction have been not carried out until recent times. In the current work, recent experimental results from the authors’ research group are presented, quantifying the effects of aggressive environments on Ti-6Al-4V under fatigue loading in terms of maximum stress reduction. R = 0.1 axial fatigue results in laboratory air, 3.5 wt.% NaCl solution, and CH3OH methanol solution at different concentrations are obtained for mild notched specimens (Kt = 1.18) at 2e5 cycles. R = 0.1 tests are also conducted in laboratory air, inert environment, 3.5 wt.% NaCl solution for smooth, mild and sharp notched specimens, with Kt ranging from 1 to 18.65, highlighting the environmental effects for the different load conditions induced by the specimen geometry.
引用
收藏
页码:1154 / 1161
页数:7
相关论文
共 50 条
  • [21] Corrosion of High-Strength Steel Wires under Tensile Stress
    Lv, Shanglin
    Li, Kefei
    Chen, Jie
    Li, Xiaobin
    MATERIALS, 2020, 13 (21) : 1 - 16
  • [22] HYDROGEN EMBRITTLEMENT AT POSITIVE POTENTIALS IN THE PROCESS OF STRESS CORROSION CRACKING OF HIGH-STRENGTH STEELS AND TITANIUM ALLOYS.
    Marichev, V.A.
    Protection of Metals (English translation of Zaschita Metallov), 1986, 22 (01): : 36 - 41
  • [23] Fatigue Behavior of Steel Fiber Reinforced High-Strength Concrete under Different Stress Levels
    Zhang, Chong
    Gao, Danying
    Gu, Zhiqiang
    1ST INTERNATIONAL CONFERENCE ON FRONTIERS OF MATERIALS SYNTHESIS AND PROCESSING (FMSP 2017), 2017, 274
  • [25] Benefits and Applications of High-Strength Titanium Alloys
    Putyrskii S.V.
    Yakovlev A.L.
    Nochovnaya N.A.
    Putyrskii, S.V. (admin@viam.ru), 2018, Pleiades journals (38) : 945 - 948
  • [26] Metallurgy of granules of high-strength titanium alloys
    Moiseev, VN
    Sysoeva, NV
    Ishunkina, TV
    METAL SCIENCE AND HEAT TREATMENT, 1995, 37 (5-6) : 248 - 250
  • [27] Barothermomechanical treatment of high-strength titanium alloys
    Éfros N.B.
    Loladze L.V.
    Éfros B.M.
    Tyutenko V.S.
    Russian Physics Journal, 2007, 50 (11) : 1165 - 1169
  • [28] Combined Action of Stress Corrosion Cracking and Fatigue during Fatigue Crack Corrosion of High-strength Steel.
    Deimling, H.J.
    Stellwag, B.
    Kaesche, H.
    Zeitschrift fuer Werkstofftechnik/Materials Technology and Testing, 1981, 12 (02): : 51 - 58
  • [29] FATIGUE PHENOMENA IN HIGH-STRENGTH ALUMINIUM ALLOYS
    HANSTOCK, RF
    JOURNAL OF THE INSTITUTE OF METALS, 1954, 83 (01): : 11 - &
  • [30] Effect of stress ratios on corrosion fatigue life of high-strength steel wires
    Jie, Zhiyu
    Chen, Chao
    Berto, Filippo
    Wang, Kainan
    Peng, Xi
    FATIGUE & FRACTURE OF ENGINEERING MATERIALS & STRUCTURES, 2022, 45 (02) : 593 - 606