Page 349 - Дисертація ГРЕДІЛЬ_ФМІ
P. 349
349
270. Zvirko O., Tsyrulnyk O. Non-destructive electrochemical evaluation
of pipeline degradation. In: Bolzon G., Gabetta G., Nykyforchyn H. (eds)
Degradation Assessment and Failure Prevention of Pipeline Systems. Lecture
Notes in Civil Engineering. 2021. Vol. 102. Cham: Springer. P. 149–158.
271. Nykyforchyn H., Tsyrulnyk O., Hredil M. et al. Correlation between
degradation of corrosion and mechanical properties of long-term exploited oil and
gas pipeline steels. Zeszyty Naukowe. Mechanika / Politechnika Opolska. 2011.
Z. 99. S. 41–43.
272. Student O., Krechkovska H., Lesiuk G. et al. Features of the
microstructural and mechanical degradation of long term operated mild steel.
International Journal of Structural Integrity. 2018. Vol. 9, No. 3. P. 296–306.
273. Krechkovska H. V. Structural-fractographic features of structural
steels after long-term operation. Materials Science. 2021. Vol. 57, No. 2. P. 228–
233.
274. Makarenko V. D., Petrovs’kyi V. A., Chernov V. Y. Mechanism of
hydrogen delamination of pipe steels of oil and gas pipelines. Materials Science.
2003. Vol. 39. P. 895–900.
275. Mohtadi-Bonab M. A., Szpunar J. A., Basu R., Eskandari M. The
mechanism of failure by hydrogen induced cracking in an acidic environment for
API 5L X70 pipeline steel. International Journal of Hydrogen Energy. 2015. Vol.
40. P. 1096–1107.
276. Balueva A. Modeling of hydrogen embrittlement cracking in pipelines
under high pressures. Procedia Materials Science. 2014. Vol. 3. P. 1310–1315.
277. Martin M. L., Sofronis P. Hydrogen-induced cracking and blistering
in steels: A review. Journal of Natural Gas Science and Engineering. 2022. Vol.
101. Article No. 104547.
278. Krechkovs’ka H., Hredil M., Student O. Structural and fractographic
features of gas pipeline steel degradation. In: Bolzon G., Gabetta G., Nykyforchyn
H. (eds.) Degradation Assessment and Failure Prevention of Pipeline Systems.
Springer, 2021. P. 45–59.

