Page 142 - dysertaciyahembara
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159. Barrera O., Tarleton E., Tang H.W., Cocks A.C.F. Modelling the
coupling between hydrogen diffusion and the mechanical behaviour of metals//
Computational Materials Science. 2016; 122 p.219-228.
160. Delafosse D., Magnin T. Hydrogen induced plasticity in stress
corrosion cracking of engineering systems// Engineering Fracture Mechanics.
2001; 68(6) p.693-729.
161. Dadfarnia M., Somerday B., Balch D.K., Sofronis P., Nagao A.,
Schembri P., et al. Modeling hydrogen-induced fracture and crack propagation in
high strength steels// Sandia National Lab.(SNL-CA), Livermore, CA (United
States), 2017.
162. Wang Y., Wang X., Gong J., Shen L., Dong W. Hydrogen
embrittlement of catholically hydrogen-precharged 304L austenitic stainless
steel: Effect of plastic pre-strain// International journal of hydrogen energy.
2014;39(25) p.13909-13918.
163. Hüter C., Shanthraj P., McEniry E., Spatschek R., Hickel T.,
Tehranchi A., et al. Multiscale modelling of hydrogen transport and segregation
in polycrystalline steels// Metals. 2018; 8(6) p.430.
164. Ogawa Y., Birenis D., Matsunaga H., Takakuwa O., Yamabe J., Prytz
O., et al. The role of intergranular fracture on hydrogen-assisted fatigue crack
propagation in pure iron at a low stress intensity range// Materials Science and
Engineering a-Structural Materials Properties Microstructure and Processing.
2018; 733 p.316-28.
165. Wan L., Geng W.T., Ishii A., Du J.P., Mei Q.S., Ishikawa N., et al.
Hydrogen embrittlement controlled by reaction of dislocation with grain boundary
in alpha-iron// International Journal of Plasticity. 2019; 112 p.206-219.
166. Nibur K.A., Bahr D.F., Somerday B.P. Hydrogen effects on
dislocation activity in austenitic stainless steel// Acta Materialia. 2006; 54(10)
p.2677-2684.
167. Nagumo M. Hydrogen related failure of steels - a new aspect//
Materials Science and Technology. 2004; 20(8) p.940-950.
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