Hydrogen Embrittlement Susceptibility and Hydrogen-Induced Additive Stress of 7050 Aluminum Alloy Under Various Aging States

被引:0
|
作者
W. J. Qi
R. G. Song
X. Qi
H. Li
Z. X. Wang
C. Wang
J. R. Jin
机构
[1] Changzhou University,School of Materials Science and Engineering
[2] Changzhou University,Jiangsu Key Laboratory of Materials Surface Science and Technology
关键词
aging; aluminum alloy; free electron theory; hydrogen-induced additive stress; hydrogen embrittlement;
D O I
暂无
中图分类号
学科分类号
摘要
Hydrogen embrittlement susceptibility of 7050 aluminum alloy under various aging states has been investigated by means of cathodic hydrogen permeation, slow strain rate test, hydrogen determinator, x-ray diffraction, and scanning electron microscope, and effect of hydrogen on atomic binding force of charged alloy has been calculated by free electron theory in this paper. Simultaneously, hydrogen-induced additive stress (σad) of 7050 aluminum alloy hydrogen charged with different current densities under various aging states have been investigated by flowing stress differential method. The results showed that hydrogen concentration of examined alloy increased with increasing charging time or current density under the same aging state. Hydrogen segregation occurred at grain boundaries which enlarged the crystal lattice constant, meanwhile, it reduced the average bonding energy and interatomic bonding force of the grain boundary atoms, thus resulting in hydrogen embrittlement; moreover, σad of 7050 aluminum alloy increased linearly with increasing hydrogen concentration under the same aging state, i.e., under aged: σad = −1.61 + 9.93 × 105CH, peak aged: σad = −1.55 + 9.67 × 105CH, over aged: σad = −0.16 + 9.35 × 105CH, correspondingly, σad increased the susceptibility to hydrogen embrittlement (IHE) further. Under the same charging condition, aging states had a great influence on σad and IHE, the under-aged state alloy was of the highest, the over-aged state alloy was of the lowest, and peak-aged was in the middle.
引用
收藏
页码:3343 / 3355
页数:12
相关论文
共 50 条
  • [31] Quantitative investigation of hydrogen-induced additive stress for high-strength steel
    Li, Huilu
    Chu, Wuyang
    Gao, Kewei
    Qiao, Lijie
    Jinshu Xuebao/Acta Metallurgica Sinica, 2002, 38 (08):
  • [32] Hydrogen-induced embrittlement wear of a high-strength, low-alloy steel in an acidic environment
    Zhang, TC
    Jiang, XX
    Li, SZ
    CORROSION, 1997, 53 (03) : 200 - 205
  • [33] Study on hydrogen-induced stress corrosion of 7N01-T4 aluminum alloy for railway vehicles
    Zhang, Li-jiao
    Li, Ming-gao
    HIGH TEMPERATURE MATERIALS AND PROCESSES, 2022, 41 (01) : 514 - 522
  • [34] Hydrogen-induced intergranular cracking of pure nickel under various strain rates and temperatures in gaseous hydrogen environment
    Wada, K.
    Shibata, C.
    Enoki, H.
    Iijima, T.
    Yamabe, J.
    MATERIALS SCIENCE AND ENGINEERING A-STRUCTURAL MATERIALS PROPERTIES MICROSTRUCTURE AND PROCESSING, 2023, 873
  • [36] SUSCEPTIBILITY TO HYDROGEN-INDUCED DELAYED FAILURE OF TEMPER-EMBRITTLED, LOW-ALLOY STEEL
    BERNABAI, U
    BOMBARA, G
    BORRUTO, A
    METALS TECHNOLOGY, 1983, 10 (JAN): : 20 - 23
  • [37] A MECHANISM FOR HYDROGEN-INDUCED INTERGRANULAR STRESS-CORROSION CRACKING IN ALLOY-600
    SHEN, CH
    SHEWMON, PG
    METALLURGICAL TRANSACTIONS A-PHYSICAL METALLURGY AND MATERIALS SCIENCE, 1990, 21 (05): : 1261 - 1271
  • [38] Influence of pH values on passive film-induced stress and susceptibility to stress corrosion cracking in 7050 aluminum alloy
    Qi X.
    Song R.-G.
    Qi W.-J.
    Jin J.-R.
    Wang C.
    Li H.
    Cailiao Gongcheng/Journal of Materials Engineering, 2016, 44 (05): : 86 - 92
  • [39] Hydrogen-induced phase transformations in Sm-Co alloy under the action of ultrasound
    Bulyk, I. I.
    Markovych, V. I.
    Trostyanchyn, A. M.
    Chervatyuk, V. A.
    MATERIALS SCIENCE, 2007, 43 (05) : 675 - 681
  • [40] Hydrogen-induced phase transformations in Sm-Co alloy under the action of ultrasound
    I. I. Bulyk
    V. I. Markovych
    A. M. Trostyanchyn
    V. A. Chervatyuk
    Materials Science, 2007, 43 : 675 - 681