Controlling factors and mechanisms of fatigue crack growth influenced by high pressure of gaseous hydrogen in a commercially pure iron

被引:21
作者
Shinko, Tomoki [1 ]
Halm, Damien [1 ]
Benoit, Guillaume [1 ]
Henaff, Gilbert [1 ]
机构
[1] Univ Poitiers, Ecole Natl Super Mecan & Aerotech, Inst Pprime, ENSMA,CNRS,UPR 3346, Teleport 2,1 Ave Clement Ader,BP 40109, F-86961 Futuroscope, France
关键词
Hydrogen embrittlement; Dislocations; Intergranular fracture; Quasi-cleavage fracture; Hydrogen gas pressure; Loading frequency; ENHANCED LOCALIZED PLASTICITY; HIGH-PURITY IRON; ENVIRONMENTALLY ASSISTED CRACKING; EDGE DISLOCATION; STRESS INTENSITY; EMBRITTLEMENT; PROPAGATION; FRACTURE; STEELS; STRAIN;
D O I
10.1016/j.tafmec.2020.102885
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
This paper proposes an extended discussion of experimental results previously published by the authors and from literature about fatigue crack growth influenced by high pressure of gaseous hydrogen in a commercially pure iron. Firstly a summary of these results obtained for different exposure conditions in terms of gas pressure and loading frequency is presented. Two characteristic regimes, the first at low Delta K values characterized by a moderated fatigue crack growth enhancement and a nearly fully intergranular mode, and a highly-accelerated regime with a quasi-cleavage failure mode with the formation of coarse striations. The mechanisms controlling the different regimes of Hydrogen-Assisted Fatigue Crack Growth are discussed on the basis of observations of fracture surfaces and of deformation substructures within the plastic zone while assessing the capability of different models from literature to account for these observations. In a last section, the dependency of the transition between the different regimes as well as the crack growth rate enhancement in the highly-accelerated regime with respect to the hydrogen gas pressure and loading frequency is analyzed.
引用
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页数:13
相关论文
共 93 条
[1]   EFFECT OF VACUUM ON THE PLASTIC ZONE AROUND A FATIGUE CRACK IN ARMCO IRON [J].
ALEKSEENKO, EN ;
GRINBERG, NM .
STRENGTH OF MATERIALS, 1979, 11 (10) :1173-1176
[2]   Hydrogen embrittlement in nickel, visited by first principles modeling, cohesive zone simulation and nanomechanical testing [J].
Alvaro, A. ;
Jensen, I. Thue ;
Kheradmand, N. ;
Lovvik, O. M. ;
Olden, V. .
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2015, 40 (47) :16892-16900
[3]   3D cohesive modelling of hydrogen embrittlement in the heat affected zone of an X70 pipeline steel [J].
Alvaro, Antonio ;
Olden, Vigdis ;
Akselsen, Odd Magne .
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2013, 38 (18) :7539-7549
[4]   Fatigue crack growth modeling of pipeline steels in high pressure gaseous hydrogen [J].
Amaro, Robert L. ;
Drexler, Elizabeth S. ;
Slifka, Andrew J. .
INTERNATIONAL JOURNAL OF FATIGUE, 2014, 62 :249-257
[5]  
[Anonymous], 2008, T JPN SOC MECH ENG A, DOI DOI 10.1299/KIKAIA.74.1528
[6]   DISLOCATION-STRUCTURES AROUND PROPAGATING FATIGUE CRACKS IN IRON [J].
AWATANI, J ;
KATAGIRI, K ;
NAKAI, H .
METALLURGICAL TRANSACTIONS A-PHYSICAL METALLURGY AND MATERIALS SCIENCE, 1978, 9 (01) :111-116
[7]  
Barnoush A., 2017, PHILOS T R SOC A, V375
[8]  
BEACHEM CD, 1972, METALL TRANS, V3, P437
[9]  
Bilotta G., 2016, THESIS ECOLE NATL SU
[10]  
Bilotta G., 2017, INT HYDR C IHC 2016