| ArticleName |
Сomparative analysis of hydrogen
embrittlement of pipe steels during gaseous testing and electrolytic hydrogen charging |
| ArticleAuthorData |
Peter the Great St. Petersburg Polytechnic University, St. Petersburg, Russia
A. S. Tsvetkov, Cand. Eng., Head of Testing Laboratory, e-mail: tsvetkov_as@spbstu.ru
A. G. Nikolaeva, Research Engineer, e-mail: nikolaeva_ag@spbstu.ru
Gazprom VNIIGAZ, St. Petersburg, Russia
S. Yu. Nastich, Dr. Eng., Chief Researcher, Materials Research Laboratory, Tubular Products Development Center, e-mail: S_Nastich@vniigaz.gazprom.ru A. B. Arabey, Cand. Eng., Chief Researcher, Tubular Products Development Center, e-mail: A_Arabey@vniigaz.gazprom.ru
JSC United Metallurgical Company, Moscow, Russia D. N. Romanenko, Cand. Eng., Chief Innovation Specialist, Innovative Development Department, Directorate for Technology and Product Development, e-mail: romanenko_dn1@omk.ru A. V. Muntin, Cand. Eng., Director of the Engineering and Technology Center, e-mail: muntin_av@vsw.ru |
| References |
1. Ishkov A. G., Nesterov N. B., Romanov K. V. et al. Risks of using the gas transportation system for hydrogen energy. Energeticheskaya politika. 2024. No. 2 (193). pp. 56–67. 2. Nastich S. Yu., Lopatkin V. A., Arabey A. B. et al. Changes in mechanical properties and the metal fracture nature of K60 pipes under the influence of gaseous hydrogen in the composition of transported methane-hydrogen mixtures. Gazovaya promyshlennost. 2023. No. 6 (850). pp. 34–45. 3. Mohtadi-Bonab M. A., Ghesmati-Kucheki H. Important factors on the failure of pipeline steels with focus on hydrogen induced cracks and improvement of their resistance: Review paper. Metals and Materials International. 2019. Vol. 25. pp. 1109–1134. 4. Kuhlmann M., Mitzschke N., Jüttner S. Determination of hydrogen transport behaviour in boron-manganese steels using different methods and boundary conditions. Metals. 2019. Vol. 9. No. 9. 1007. 5. Imdad A., Arniella V., Zafra A., Belzunce J. Tensile behavior of 42CrMo4 steel submitted to annealed, normalized, and quench and tempering heat treatments with in-situ hydrogen charging. International journal of hydrogen energy. 2024. Vol. 50. pp. 270–280. 6. Tsvetkov A. S., Nikolaeva A. G., Dagaev S. E. et al. Influence of hydrogen pressure and the concentration of hydrogen on the variations of the mechanical characteristics of pipe steel of K52 strength class. Metallurgist. 2025. Vol. 69. No. 2. pp. 193–203. 7. Wert C. A., Frank R. C. Trapping of interstitials in metals. Annual review of material science. 1983. Vol. 13. No. 1. pp. 139–172. 8. Tsvetkov A. S., Stepanov P. P., Mikhalev A. Yu. et al. Study of changes in mechanical properties of low-carbon pipe steel after exposure to hydrogen gas under pressure. Metallurg. 2025. No. 10. pp. 20–25. 9. Nastich S. Y., Lopatkin V. A. Effect of hydrogen gas on mechanical properties of pipe metal of main gas pipelines. Metallurgist. 2022. Vol. 66. pp. 625–638. 10. Shaposhnikov N. O., Tsvetkov A. S., Strekalovskaya D. A. et al. Physical modeling of steel resistance to hydrogen embrittlement. Key Engineering Materials. 2023. Vol. 943. pp. 91–96. 11. Bolobov V., Latipov I. U., Zhukov V. S., Popov G. Using the magnetic anisotropy method to determine hydrogenated sections of a steel pipeline. Energies. 2023. Vol. 16, Iss. 15. 5585. 12. Meng B., Gu C., Zhang L. et al. Hydrogen effects on X80 pipeline steel in high-pressure natural gas/hydrogen mixtures. International journal of hydrogen energy. 2017. Vol. 42. No. 11. pp. 7404–7412. 13. Wang C., Zhang J., Liu C. et al. Study on hydrogen embrittlement susceptibility of X80 steel through in-situ gaseous hydrogen permeation and slow strain rate tensile tests. International journal of hydrogen energy. 2023. Vol. 48. pp. 243–256. 14. Devyaterikova N. A., Laev K. A., Tsvetkov A. S. et al. Brief description of methods for assessing the compatibility of steels with hydrogen and the test results of X52 and X70 LDP. Chernye Metally. 2024. No. 2. pp. 32–38. 15. Fan X., Cheng Y. F. Hydrogen pipelines and embrittlement in gaseous environments: An upto-date review. Applied energy. 2025. Vol. 387. 125636. 16. Zhang P., Laleh M., Hughes A. E. et al. A systematic study on the influence of electrochemical charging conditions on the hydrogen embrittlement behavior of a pipeline steel. International journal of hydrogen energy. 2023. Vol. 48. No. 43. pp. 16501–16516. 17. Jeong Y. J., Kim S. J. Possibility of false interpretations of hydrogen measurements in ferritic steel after an electrochemical cathodic charging process. International journal of hydrogen energy. 2021. Vol. 46. No. 10. pp. 7615–7621. 18. Singh V., Singh R., Arora K. S. et al. Hydrogen induced blister cracking and mechanical failure in X65 pipeline steels. International journal of hydrogen energy. 2019. Vol. 44. pp. 22039–22049. 19. Jin T., Lin Z. Y., Cheng Y. F. Effect of non-metallic inclusions on hydrogen-induced cracking of API 5L X100 steel. International journal of hydrogen energy. 2010. Vol. 35. No. 15. pp. 8014–8021. 20. Dong C. F., Liu Z. Y., Li X. G. et al. Effects of hydrogen-charging on the susceptibility of X100 pipeline steel to hydrogen-induced cracking. International journal of hydrogen energy. 2009. Vol. 34. No. 24. pp. 9879–9884. 21. Polyansky V. A., Belyaev A. K., Polyansky A. M. et al. Hydrogen embrittlement as a result of surface phenomena during metals deformation. Fizicheskaya mezomekhanika. 2022. No. 25 (3). pp. 27–37. 22. Pyshmintsev I. Yu., Khatkevich V. M., Khudnev A. A. Influence of hydrogenation conditions of low-alloy pipe steel on the sorption process. Metally. 2025. No. 1. pp. 41–50. 23. Tröger M., Boschq C., Wiartw J.-N. et al. Investigations on hydrogen assisted cracking of welded high-strength pipes in gaseous hydrogen. Steely Hydrogen Conference Proceedings. 2014. pp. 491–501. 24. Liu Q., Atrens A. A. Critical review of the influence of hydrogen on the mechanical properties of medium-strength steels. Corrosion reviews. 2013. Vol. 3-6. No. 31. pp. 85–103. 25. Wanzenberg E., Henel M., Brauer H. et al. Forschungsvorhaben «H2-Pims»: Wasserstoff im Erdgasnetz sicher transportieren. Pipelinetechnik. 2019. Vol. 6. pp. 84–93. 26. Thomas A., Szpunar J. A. Hydrogen diffusion and trapping in X70 pipeline steel. International Journal of Hydrogen Energy. 2020. Vol. 45. No. 3. pp. 2390–2404. 27. Sun L., Li M., Gaudet M. et al. Effect of bainitic microstructure on hydrogen trapping in a low carbon micro-alloyed pipeline steel. International journal of hydrogen energy. 2025. Vol. 136. pp. 702–712. |