Microscopic Mechanism of Hydrogen Embrittlement in Fatigue and Fracture

被引:4
作者
Murakami, Yukitaka [1 ]
Yamabe, Junichiro [1 ]
Matsunaga, Hisao [1 ]
机构
[1] Kyushu Univ, Int Inst Carbon Neutral Energy Res WPI I2CNER, Nishi Ku, Fukuoka 8190395, Japan
来源
MATERIALS STRUCTURE & MICROMECHANICS OF FRACTURE VII | 2014年 / 592-593卷
关键词
Fatigue; Fracture; Hydrogen embrittlement; Fatigue crack growth; Fracture toughness; Small crack; AUSTENITIC STAINLESS-STEELS; CRACK GROWTH-BEHAVIOR;
D O I
10.4028/www.scientific.net/KEM.592-593.3
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
The microscope mechanism of hydrogen embrittlement (HE) is overviewed from the viewpoint of Mechanics-Microstructure-Environment Interactions. The plastic deformation (Mechanics) at crack tip for low strength steel is controlled by hydrogen concentration (Environment) to crack tip, eventually resulting in very strong time dependent phenomenon in static fracture and fatigue crack growth. Various typical phenomena in low strength steels which can be understood from the viewpoint of Mechanics-Environment Interactions will be presented. Fracture and fatigue of high strength steels (Microstructure) are strongly influenced by hydrogen. Especially, fatigue crack growth is remarkably accelerated by hydrogen-induced deformation twins. The HE phenomemon of the high-strength steels was applied to a newly inclusion rating method. Hydrogen trapped by nonmetalliec inclusions causes the elimination of fatigue limit at very high cycle fatigue. The values of threshold stress intensity factor K-TH in hydrogen for small cracks are much smaller than those for long cracks measured by the standard WOL or CT specimens, which are eventually unconservative for the design of hydrogen components. This phenomenon is similar to the small crack problem in fatigue.
引用
收藏
页码:3 / 13
页数:11
相关论文
共 16 条
[1]  
[Anonymous], 2008, T JPN SOC MECH ENG A, DOI DOI 10.1299/KIKAIA.74.1528
[2]   A New Nonmetallic Inclusion Rating Method by Positive Use of Hydrogen Embrittlement Phenomenon [J].
Fujita, Shinji ;
Murakami, Yukitaka .
METALLURGICAL AND MATERIALS TRANSACTIONS A-PHYSICAL METALLURGY AND MATERIALS SCIENCE, 2013, 44A (01) :303-322
[3]   Effects of hydrogen on fatigue crack growth behavior of austenitic stainless steels [J].
Kanezaki, T. ;
Narazaki, C. ;
Mine, Y. ;
Matsuoka, S. ;
Murakami, Y. .
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2008, 33 (10) :2604-2619
[4]   Solid solution softening and hardening by mobile solute atoms with special focus on hydrogen [J].
Kirchheim, Reiner .
SCRIPTA MATERIALIA, 2012, 67 (09) :767-770
[5]  
Kitagawa H., 1979, Trans J. Soc Mech Eng, V45, P1289, DOI DOI 10.1299/KIKAIA.45.1289
[6]  
Matsuo T, 2008, T JPN SOC MECH ENG A, V74, P1164
[7]  
Moody R. N., 1990, RES MECH, V30, P143
[8]   Factors influencing the mechanism of superlong fatigue failure in steels [J].
Murakami, Y ;
Nomoto, T ;
Ueda, T .
FATIGUE & FRACTURE OF ENGINEERING MATERIALS & STRUCTURES, 1999, 22 (07) :581-590
[9]  
Murakami Y., 2013, UNPUB
[10]  
Murakami Y., 2002, MTAL FATIGUE EFFECT