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126. Taketomi S., Matsumoto R., Miyazaki N. Atomistic study of the effect of
hydrogen on dislocation emission from a mode II crack tip in alpha iron. International
Journal of Mechanical Sciences. 2010. Vol. 52, Is. 2. P. 334338.
127. Tien J., Thompson A. W., Bernstein I. M., Richards R. J. Hydrogen
transport by dislocations. Metallurgical Transactions: A. 1976. Vol. 7, Is. 6.
P. 821829.
128. Troiano A. R. The Role of Hydrogen and Other Interstitials in the
Mechanical Behavior of Metals. Transactions of the American Society of Metals. 1960.
Vol. 52. P. 5480.
129. Turnbull A. Hydrogen diffusion and trapping in metals (Chapter 4).
Gaseous Hydrogen Embrittlement of Materials in Energy Technologies. Vol. 2:
Mechanisms, Modelling and Future Developments: 1st Edition / Ed. R. Gangloff,
B. Somerday. Woodhead Publishing, 2012. P. 89–128.
130. Turnbull A., Carroll M. W., Ferriss D. H. Review of hydrogen transport
and trapping in steels. Corrosion Science. 2001. Vol. 43, Is. 5. P. 871896.
131. Turnbull A., Carroll W., Hutchings R. Review of hydrogen diffusion and
trapping in steels. Corrosion Science. 2017. Vol. 123. P. 17–43.
132. Wang R. Effects of hydrogen on the fracture toughness of a X70 pipeline
steel. Corrosion Science. 2009. Vol. 51, Is. 12. P. 28032810.
133. Wei F. G., Hara T., Tsuzaki K. Precise determination of the activation
energy for desorption of hydrogen in two Ti-added steels by a single thermal-
desorption spectrum. Metallurgical and Materials Transactions: B, Process
Metallurgy and Materials Processing Science. 2004. Vol. 35, Is. 3. P. 587597.
134. Yamabe J., Yoshikawa M., Matsunaga H., and Matsuoka S. Hydrogen
trapping and fatigue crack growth property of low-carbon steel in hydrogen-gas
environment. International Journal of Fatigue. 2017. Vol. 102. P. 202213.
135. Zhang W., Atrens A. A review of hydrogen-enhanced crack growth in
pipeline steels. Corrosion Reviews. 2013. Vol. 31, Is. 34. P. 7388.

