Библиографический список |
1. Grigoriev A. K., Denisov G. A., Durnev G. A. Problems of chip waste processing by powder metallurgy. Powder, composite and textured materials: collection of scientific papers. Leningrad: LPI, 1986. pp. 21–26. 2. Verma P., Saha R., Chaira D. Waste steel scrap to nanostructured powder and superior compact trough power metallurgy: Power generation, processing and characterization. Powder Technology. 2018. Vol. 326. pp. 159–167. 3. Wan B., Chen W., Lu T., Liu F., Jiang Zh., Mao M. Review of solid state recycling of aluminum chips. Resources, Conservation and Recycling. 2017. Vol. 125. pp. 37–47. 4. Shial S. R., Masanta M., Chaira D. Recycling of waste Ti machining chips by planetary milling: generation of Ti powder and development of in situ TiC reinforced Ti–TiC composite powder mixture. Powder Technology. 2018. Vol. 329. pp. 232–240. 5. Petrov A. P., Bespalov A. V., Sokolov A. V., Shlyonsky A. G. The Rehbinder effect and nanostructuring of the workpiece surface during plastic deformation of metals. Tekhnologiya Legkikh Splavov. 2020. No. 4. pp. 67–74. 6. Reva V. P., Onischenko D. V. Mechanochemical grinding of metal using a destructured polymer. Problemy Mashinostroyeniya i Nadezhnosti Mashin. 2013. No. 2. pp. 77–83. 7. Reva V. P., Mukhtarov Sh. F., Yagofarov V. Yu., Akhmadkulov O. B., Mansurov Yu. N. Mechanochemical processes in the course of vibration treatment of titanium in the presence of mechanically degradable polymer. Vestnik Inzhenernoy Shkoly DVFU. Tekhnicheskie Nauki. 2017. No. 2. pp. 91–98. 8. Klyavin O. V., Mamyrin B. A., Khabarin L. V., Chernov Yu. M. Penetration of He in Ti and TiO during plastic deformation. Vestnik Tambovskogo Universiteta. Seriya: Estestvennye i Tekhnicheskie Nauki. 1998. Vol. 3, Iss. 3. pp. 211–212. 9. Klyavin O. V., Drinberg A. S., Chernov Yu. M., Shpeizman V. V. Dispersion of crystalline powder materials in gaseous media of different chemical compositions. Fizika Tverdogo Tela. 2012. Vol. 54, Iss. 5. pp. 1019–1028. 10. Klyavin O. V., Aruev N. N., Pozdnyakov A. O., Chernov Yu. M., Shpeizman V. V. Regularities of water desorption from the surface of materials deformed or ground in various gaseous media. Zhurnal Tekhnicheskoy Fiziki. 2020. Iss. 2. pp. 238–243. 11. Raghu T., Sundaresan R., Ramakrishnan P., Rama Mohan T. R. Synthesis of nanocrystalline copper-tungsten alloys by mechanical alloying. Materials Science and Engineering: A. 2001. Vol. 304–306. pp. 438–441. 12. Madavali B., Lee J.-H., Lee J., Cho K., Challapalli S., Hong S.-J. Effect of atmosphere and milling time on the coarsening of copper powders during mechanical milling. Powder Technology. 2014. Vol. 256. pp. 251–256. 13. Rodchenkova N. I., Zaika Yu. V., Denisov E. A. Numerical simulation of hydrogen transfer through a titanium membrane under conditions of hydride formation. Interaction of hydrogen isotopes with structural materials. Collection of abstracts of the XIII International school of young scientists and specialists named after A. A. Kurdyumov. 2019. pp. 40–42. 14. Voznesenskaya N. M., Tonusheva O. A., Leonov A. V., Dulnev K. V. Hydrogen influence on high-strength corrosionresistant steel VNS65 Sh properties and ways of elimination of hydrogen embrittlement. Trudy VIAM. 2018. No. 10. pp. 3–9. 15. Umeda J., Mimoto T., Imai H., Kondoh K. Powder forming process from machined titanium chips via heat treatment in hydrogen atmosphere. Materials Transactions. 2017. Vol. 58, No. 12. pp. 1702–1707. 16. Barrera O., Bombač D., Chen Y., Daff T., Galindo-Nava E., Gong P., Haley D., Horton R., Katzarov I., Kermode J., Liverani C., Stopher M., Sweeney F. Understanding and mitigating hydrogen embrittlement of steels: a review of experimental, modelling and design progress from atomistic to continuum. Journal of Materials Science. 2018. Vol. 53. pp. 6251–6290. 17. Denisov E. A., Companiets T. N., Yukhimchuk A. A., Boytsov I. E., Malkov I. L. Hydrogen and helium in nickel and steel 12X18N10T. Zhurnal Tekhnicheskoy Fiziki. 2013. Vol. 83, Iss. 6. pp. 3–9. 18. Liu P. P., Zhan Q., Han W. T., Yi X. O., Ohnuki S., Wan F. Effect of helium and hydrogen synergy on wacancy migration energy in Fe-10Cr model alloy. Journal of Alloys and Compounds. 2019. Vol. 788. DOI: 10.1016/j.jallcom.2019.02.227. 19. Muramatsu Y., Wanikawa S., Ohtaguchi M., Okada H., Abe F. Gas contamination due to milling atmospheres of mechanical alloying and its effect on impact strength. Materials Transactions. 2005. Vol. 46, Iss. 3. pp. 681–683. 20. Kornev V. M. Quantitative description of the Rehbinder effect (brittle and quasi-brittle bodies): from deceleration of destruction to spontaneous dispersion. Fizicheskaya Mezomekhanika. 2003. Vol. 6, No. 3. pp. 9–18. 21. Vladimirov V. I., Klyavin O. V., Kusov A. A. Dislocation distribution near crystal surface at plastic deformation. Fizika Tverdogo Tela. 1985. Vol. 27, No. 10. pp. 2926–2931. 22. Tyumentsev A. N., Korotaev A. D., Ditenberg I. A., Pinzhin Yu. P., Chernov V. M. Plastic deformation of highstrength metallic materials. Novosibirsk: Siberian Branch of RAS, 2018. 252 p. 23. Malkin A. I. Regularities and mechanisms of the Rehbinder's effect. Kolloidnyi Zhurnal. 2012. Vol. 74, No. 2. pp. 239–256. 24. Xiang L. I., Zhang X., Ren C., Zhang Zh., Huang H., Ma G., Huai P. First-principles study of helium behavior in nickel with noble gas incorporation. Journal of Applied Physics. 2020. Vol. 127, Iss. 17. DOI: 10.1063/1.5145016. |