References |
1. Nikulin S. A., Votinov S. N., Rozhnov A. B. Vanadium alloys for nuclear power engineering. Moscow : Izdatelskiy dom MISiS, 2014. 206 p. 2. Kalin B. A., Staltsov M. S., Tishchenko A. G., Chernov I. I. Vanadium alloys on the threshold of wide application in energetics. Tsvetnye Metally. 2016. No. 11. pp. 77–86. 3. Kalin B. A., Platonov P. A., Tuzov Yu. V. et al. Material physics. Vol. 6. Structural materials for nuclear engineering : Textbook for university students. Moscow : NIYaU MIFI, 2021. 736 p. 4. Kolbasov B. N., Borisov A. A., Vasiliev N. N. et al. The concept behind the demo fusion power reactor DEMO-S. Voprosy atomnoy nauki i tekhniki. Seriya "Termoyadernyi sintez". 2007. Iss. 4. pp. 3–13. 5. Votinov S. N., Kolotushkin V. P., Lyublinskii I. E. et al. Corrosion resistance of vanadium alloys clad by a ferritic corrosion-resistant steel in liquid-metal heat-transfer agents. Russian Metallurgy (Metally). 2009. No. 1. pp. 82–87. 6. Klueh R. L., De Van J. H. Effect of oxygen in sodium of vanadium and vanadium-titanium alloys. Journal of the Less Common Metals. 1970. Vol. 22. pp. 389–398. 7. Eliseeva O. I. Interaction of vanadium alloys with liquid sodium in static conditions. Voprosy atomnoy nauki i tekhniki. Seriya "Termoyadernyi sintez". 2011. Iss. 2. pp. 3–20. 8. Lyublinskiy I. E., Vertkov A. V., Evtikhin V. A. et al. Optimized doping of V – Ti – Cr alloys. Voprosy atomnoy nauki i tekhniki. Seriya "Termoyadernyi sintez". 2005. Iss. 3. pp. 70–78. 9. Chernov I. I., Staltsov M. S. Behaviour of helium and hydrogen in vanadium alloys – innovative fusion reactor first wall materials: a review. Part 1. V – Ti and V – Fe alloys. Tsvetnye Metally. 2022. No. 12. pp. 65–72. DOI: 10.17580/tsm.2022.12.09 10. Staltsov M. S., Chernov I. I., Aung Kyaw Zaw et al. Gas porosity formation in the vanadium alloys V – W, V – Ta, V – Zr during helium-ion irradiation at 650 oC. Atomic Energy. 2014. Vol. 116, No. 1. pp. 35–41. 11. Chernov I. I., Staltsov M. S., Kalin B. A. et al. Mechanisms of helium porosity formation in vanadium alloys as a function of the chemical composition. Atomic Energy. 2011. Vol. 109, Iss. 3. pp. 176–183. 12. Watkin J. S. Dependence of void swelling on the electron vacancy concentration. Proceedings of International Symposium on Irradiation Effects on the Microstructure and Properties of Metals. May 1976, St. Louis, USA, ASTM STR 611, Philadelphia. 1976. pp. 270–283. 13. Jones R. H., Atteridge D. G. A correlation between swelling and the number of bonding d electrons in some iron and nickel alloys. Journal of Nuclear Materials. 1977. Vol. 66. pp. 329–332.
14. Pinizzotto R. F., Chen L. J., Ardell A. J. Nickel and nitrogen ion irradiation-induced void swelling and defect microstructures in Ni – Al, Ni – Cr and Ni – Ti solid solutions. Metallurgical Transactions A. 1978. Vol. 9, No. 12. pp. 1715–1727. 15. Binyukova S. Yu., Chernov I. I., Kalin B. A. et al. Formation of gas pores in nickel alloys and structural steel under irradiation by helium ions. Atomnaya energiya. 2002. Vol. 93, Iss. 1. pp. 32–40. 16. Staltsov M. S., Chernov I. I., Kalin B. A., Guseva L. Yu. Helium pores in ternary alloys V – Ti – Cr, V – W – Ta, V – W – Zr. Radiation solid body physics: Proceedings of the 27th International Conference. Russia, Sevastopol, 10–15 July 2017. Moscow : Izdatelstvo FGBNU “NII PMT”, 2017. pp. 187–195. 17. Belyaev A., Staltsov M., Chernov I. et al. Helium porosity formation in vanadium alloys of V – Ti – Cr, V – W – Zr and V – W – Ta systems in comparison with binary alloys. Proceedings of 15th International School-Conference “New materials — Materials of innovative energy: development, characterization methods and application”, KnE Materials Science. 2018. pp. 389–398. DOI: 10.18502/kms.v4i1.2189 18. Aung Kyaw Zaw, Chernov I. I., Staltsov M. S., Kalin B. A., Korchagin O. N. Research of helium and hydrogen behavior in vanadium-based alloys. Tsvetnye Metally. 2014. No. 12. pp. 12–16. 19. Chernov I. I., Staltsov M. S., Kalin B. A. et al. Some problems related to the presence of hydrogen in reactor materials. Interaction of Hydrogen Isotopes with Structural Materials: Proceedings of the 11th Kurdyumov International School of Young Researchers and Experts IHISM’16 Junior; Petrozavodsk, 27 June – 3 July 2016. Sarov : Izdatelstvo FGUP “RFYaTs-VNIIEF”, 2017. pp. 156–174. 20. Staltsov M. S., Aung Kyaw Zaw, Chernov I. I., Kalin B. A. Microstructural evolution and hydrogen retention in vanadium alloys during irradiation with helium and hydrogen ions. Radiation solid body physics: Proceedings of the 24 th International Conference. Sevastopol, 7–12 July, 2014. pp. 311–319. 21. Reed D. J. A review of recent theoretical developments in the understanding of migration of helium in metals and its interaction with lattice defects. Radiation Effects. 1977. Vol. 31, No. 3. pp. 129–147. 22. Chernov I. I., Kalin B. A. Radiation damage in metals irradiated with helium ions. Atomnaya tekhnika za rubezhom. 1986. No. 9. pp. 9–19. 23. Guseva M. I., Zakharov A. P., Kalin B. A. et al. Distribution of helium in high-nickel alloy: An electron microscopy study. Atomnaya energiya. 1982. Vol. 52, Iss. 6. pp. 401–404. 24. Myers S. М., Besenbacher F., Bettiger J. Deuterium He-implanted Fe: trapping and the surface permeation barrier. Applied Physics Letters. 1981. Vol. 39. pp. 450–452. 25. Binyukova S. Yu., Chernov I. I., Kalin B. A., Than Swe. Effectiveness of helium bubbles as traps for hydrogen. Journal of Nuclear Materials. 2007. Vol. 367–370, Part A. pp. 500–504. 26. Luchinin V. V., Savenko A. Yu. Nanoscopic ion-beam technology. Nanotechnology: Physics, processes, testing, instruments. Moscow : Fizmatlit, 2006. pp. 284–304. 27. Utke I., Hoffmann P., Melngailis J. Gas-assisted focused electron beam and ion beam processing. Journal of Vacuum Science and Technology. Series B. 2008. pp. 1197–1276. 28. Drozhzhina M. V., Kalin B. A., Nikolaeva I. D. et al. Use of accelerator EGP-15 for simulation study of radiation damageability of reactor materials. Radiation solid body physics : Proceedings of the 25th International Conference. Sevastopol, 6 – 11 July 2015. pp. 269–275. 29. Chernov I. I., Staltsov M. S., Aung Kyaw Zaw et al. Microstructural evolution of vanadium subjected to 7.5 MeV Ni2+ ion irradiation at 650 oC. Atomnaya energiya. 2015. Vol. 118, No. 6. pp. 321–324. 30. Ananyin V. M., Kalin B. A., Korchagin O. N. et al. An internal friction study to understand how oxygen interacts with titanium in vanadium. Fizika i khimiya obrabotki materialov. 2010. No. 2. pp. 66–70. 31. Lin Shao, Wei C.-C., Gigax J. et al. Effect of defect imbalance on void swelling distributions produced in pure iron irradiated with 3.5 MeV self-ions. Journal of Nuclear Materials. 2014. Vol. 453. pp. 176–181. 32. Staltsov M. S., Chernov I. I., Korshunov S. N., Lagov P. B. Gas porosity formed along the path of helium ions in vanadium alloys. Atomnaya energiya. 2019. Vol. 126, Iss. 1. pp. 40–46. 33. Shestakova V. M., Staltsov M. S., Chernov I. I., Kalin B. A. Effect of tantalum on gas porosity distribution along the specimen depth in vanadium alloys after helium ion irradiation. The future of mechanical engineering in Russia : Proceedings of the 11th National Conference among Young Researchers and Experts (with International Participants). Moscow, 24–27 September 2018. Moscow : Izdatelstvo MGTU im. N. E. Baumana, 2018. pp. 178–181. |