employee from 01.01.2019 until now
Ekaterinburg, Ekaterinburg, Russian Federation
employee from 01.01.2011 until now
Ekaterinburg, Ekaterinburg, Russian Federation
employee from 01.01.1970 until now
Ekaterinburg, Ekaterinburg, Russian Federation
student from 01.01.2022 until now
Ekaterinburg, Ekaterinburg, Russian Federation
employee from 01.01.2010 until now
Ekaterinburg, Ekaterinburg, Russian Federation
VAK Russia 1.4.7
VAK Russia 2.6.13
VAK Russia 1.4.3
UDC 546.62
UDC 548.73
V rabote demonstriruetsya effektivnaya vozmozhnost' ispol'zovaniya othodov (pyli drobemetnoy) proizvodstva ligatur sistemy V-Al dlya sozdaniya dispersno-uprochnennyh kompozicionnyh materialov na osnove alyuminiya. Proveden analiz himicheskogo, fazovogo i granulometricheskogo sostava pyli ot ligatur marok VnAl-65 i VnAl-1. S cel'yu povysheniya reakcionnoy sposobnosti pyl' drobemetnuyu (PD) podvergali mehanoaktivacii v planetarnoy mel'nice s ustanovleniem optimal'nogo vremeni obrabotki, chto pozvolilo znachitel'no umen'shit' sredniy razmer chastic do ~ 8 mkm s uvelicheniem udel'noy ih poverhnosti v neskol'ko raz i vyzvat' amorfizaciyu Al2O3. Metodami RFA analiza i elektronnoy mikroskopii pokazano, chto v processe spekaniya smesey (Al+PDVnAl-65, Al+PDVnAl-1) obrazuetsya kompozicionnyy material, v kotorom ravnomerno raspredeleny v alyuminievoy matrice, predstavlyayuschey iz sebya tverdyy rastvor V v Al, uprochnyayuschie intermetallidy (Al3V, Al23V4 i Fe4Al13).
alyuminiy, amorfizaciya, pyl' drobemetnaya, dispersno-uprochnennyy kompozit, reakcionnaya sposobnost'
1. Ligatury na osnove tugoplavkih redkih metallov dlya titanovyh splavov na osnove vanadiya. TU1761-022-25087982-98 (s izm. 1-4), AO Uralredmet.: Ekb.
2. Nikitin K.V. Recikling metalloothodov na osnove alyuminiya. Samara: SamGTU, 2016. 34 s.
3. Omran A.M. Fabrication and characterization of Al-based in situ composites reinforced by Al3V intermetallic compounds. E3 J. Sci. Res. 2014, 2(2), 26-34.
4. Blinichev V.N., Bobkov S.P., Gayumdzhan P.P. Vliyanie konstruktivnogo oformleniya mel'nic na udel'nye energozatraty i mehanohimicheskie prevrascheniya izmel'chaemyh materialov. Doklady VII Vsesoyuznogo simpoziuma po mehanoemissii i mehanohimii tverdyh tel. Ch. 1. Tashkent, 1981. s. 73-78.
5. Avvakumov E.G. Mehanicheskie metody aktivacii himicheskih processov. Novosibirsk: Nauka, 1986, 305 s.
6. S.V. Zhukov, M.P. Nikitin, A.K. Petrov; Pat. RF 2793561, 2023.
7. Boldyrev V.V., Abakumov E.G., Logvienko A.T. Effektivnost' izmel'chitel'nyh apparatov dlya mehanicheskogo aktivirovaniya tverdyh tel. Obogaschenie poleznyh iskopaemyh. Novosibirsk: Nauka, 1977. s. 3-10.
8. Gerold E., Luznik L, Samberger S., Antrekowitsch H. Sustainable extraction and recycling of non-ferrous metals: a review from a European perspective. Pholos. Trans. A Math. Phys. Eng. Sci. 2024, 382, 20240173. https://doi.org/10.1098/rsta.2024.0173
9. Krupnov L.V., Midyukov D.O., Daciev M.S., Il'in V.B. Izmenenie resursnoy bazy proizvodstva tyazhelyh cvetnyh metallov na primere medi i nikelya. Gornyy zhurnal. 2024, (3), 10-16. doi.org/10.17580/gzh.2024.03.01
10. Baklanov M.N., Eselevich D.A., Shevchenko V.G. Fiziko-himicheskoe issledovanie vozmozhnosti ispol'zovaniya othodov drobemetnoy zachistki ligatur Al-V dlya polucheniya funkcional'ny materialov na osnove alyuminiya. Rasplavy. 2022, (1), 3-11. https://doi.org/10.31857/S0235010622010029
11. Rietveld H.M. A profile refinement method for nuclear and magnetic structures. J. Appl. Crystallogr. 1969, 2(2), 65-71. DOI: https://doi.org/10.1107/S0021889869006558
12. Lyakishev N.P., Pliner Yu.L., Ignatenko G.F., Lappo S.I. Alyumotermiya. M.: «Metallurgiya», 1978, 424 s.
13. Lyakishev N.P. Diagrammy sostoyaniya dvoynyh metallicheskih sistem: Spravochnik: V 3t.: T1. Pod obsch. red. N.P. Lyakisheva. M.: Mashinostroenie, 1996, 992 s.
14. Chumarev V.M., Mar'evich V.P., Chencov V.P., Pazdnikov I.L., Pan'kov I.A., Baklanov M.N. Fazovyy sostav i temperatury plavleniya alyuminotermicheskih ligatur redkih tugoplavkih metallov. Rasplavy. 2009, (3), 29-35.
15. Gutman E.M. Mehanohimiya metallov i zaschita ot korrozii. M: Metallurgiya, 1974, 232 s.
16. Plantier K.B., Pantoya M.L., Gach A.E. Combustion wave speeds of nanocomposite Al/Fe2O3: the effects of Fe2O3 particle synthesis technique. Combust. Flame. 2005, 140(4), 299-309. https://doi.org/10.1016/j.combustflame.2004.10.009
17. Black P.J. The Structure of FeAl3. Acta Crystallogr. 1955, 8, 43. https://doi.org/10.1107/S0365110X5500011X
18. Han K., Ohnuma I., Kainuma R. Experimental determination of phase equilibria of Al-rich portion in the Al Fe binary system. J. Alloys Compd. 2016, 668, 97-106. https://doi.org/10.1016/j.jallcom.2016.01.215
19. Qin Z., Xiao J., Du T., Cheng R., Zhang J. Resource utilization strategy of Fe-bearing smelting slag in China: a review. Miner. Eng. 2024, 219, 109066. https://doi.org/10.1016/j.mineng.2024.109066



