Comparison of hydrogen gas embrittlement of austenitic and ferritic stainless steels
暂无分享,去创建一个
[1] R. Sisson,et al. Environmental degradation of engineering materials , 1987 .
[2] C. Altstetter,et al. Effects of deformation on hydrogen permeation in austenitic stainless steels , 1986 .
[3] R. P. Wei,et al. Crack paths and hydrogen-Afinssisted crack growth response in AlSi 4340 steel , 1984 .
[4] H. Birnbaum,et al. Direct observations of hydrogen enhanced crack propagation in iron , 1984 .
[5] H. Birnbaum,et al. Effect of hydrogen on the dislocation structure of deformed nickel , 1984 .
[6] G. Schuster,et al. Fatigue of stainless steel in hydrogen , 1983 .
[7] H. Birnbaum,et al. Direct observations of the effect of hydrogen on the behavior of dislocations in iron , 1983 .
[8] S. Singh,et al. Effects of hydrogen concentration on slow crack growth in stainless steels , 1982 .
[9] H. Birnbaum,et al. Direct observations of enhanced dislocation mobility due to hydrogen , 1981 .
[10] R. Wei,et al. Rate controlling processes for crack growth in hydrogen sulfide for an alsl 4340 steel , 1981 .
[11] M. R. Louthan,et al. Environmental degradation of engineering materials in aggressive environments : proceedings of Second International Conference on Environmental Degradation of Engineering Materials, September 21-23, 1981, Virginia Polytechnic Institute, Blacksburg, Va. , 1981 .
[12] H. Birnbaum,et al. On the role of phase transitions in the hydrogen embrittlement of stainless steels , 1980 .
[13] H. Birnbaum,et al. Studies of the orientations of fracture surfaces produced in austenitic stainless steels by stress-corrosion cracking and hydrogen embrittlement , 1980 .
[14] N. Moody,et al. Hydrogen-induced slow crack growth in Ti-6Al-6V-2Sn , 1980 .
[15] D. Eliezer,et al. The influence of austenite stability on the hydrogen embrittlement and stress- corrosion cracking of stainless steel , 1979 .
[16] R. D. McCright,et al. Stress Corrosion Cracking and Hydrogen Embrittlement of Iron Base Alloys , 1979 .
[17] R. A. Oriani,et al. Equilibrium and kinetic studies of the hydrogen-assisted cracking of steel , 1977 .
[18] Robert P. Wei,et al. Gaseous hydrogen embrittlement of high strength steels , 1977 .
[19] R. J. Richards,et al. Hydrogen transport by dislocations , 1976, Metallurgical and Materials Transactions A.
[20] W. Gerberich,et al. A short-time diffusion correlation for hydrogen-induced crack growth kinetics , 1975 .
[21] H. V. Leeuwen. Embrittlement by internal and by external hydrogen , 1975 .
[22] W. Gerberich,et al. Hydrogen-controlled cracking—An approach to threshold stress intensity , 1975 .
[23] R. A. Oriani,et al. Equilibrium aspects of hydrogen-induced cracking of steels , 1974 .
[24] A. Thompson. The behavior of sensitized 309S stainless steel in hydrogen , 1974 .
[25] A. Thompson. Hydrogen embrittlement of stainless steels by lithium hydride , 1973 .
[26] H. V. Leeuwen. A Quantitative Model of Hydrogen Induced Grain Boundary Cracking , 1973 .
[27] C. D. Beachem,et al. A new model for hydrogen-assisted cracking (hydrogen “embrittlement”) , 1972 .
[28] J. A. Donovan,et al. Hydrogen embrittlement of metals , 1972 .
[29] H. H. Johnson,et al. The effective area concept, permeation, and hydrogen gas crack growth kinetics , 1971 .
[30] A. Tetelman,et al. Embrittlement of a ferrous alloy in a partially dissociated hydrogen environment , 1971 .
[31] R. A. Oriani. Discussion of “Embrittlement of 4130 steel by low-pressur gaseous hydrogen” , 1970 .
[32] M. F. Kanninen,et al. Inelastic Behavior of Solids , 1970, Science.
[33] J. Field. Fracture of Solids , 1964 .
[34] N. Petch. XXX. The lowering of fracture-stress due to surface adsorption , 1956 .
[35] N. Petch,et al. Delayed Fracture of Metals under Static Load , 1952, Nature.