[1]
Kuznetsova E.G., Knyazev L.G., Prokhorenkov V.D., Gaidar S.M., Conservation formulations based on water-soluble corrosion inhibitors, Science in Central Russia, №. 5. pp.43-47, (2013).
Google Scholar
[2]
Titov N.V., Kolomeichenko A.V., Logachev V.N., Kravchenko I.N., Litovchenko N.N., Investigation of the hardness and wear resistance of working sections of machines hardened by vibroarc surfacing using cermet materials, Welding International. Vol. 29, № 9, pp.737-739, (2015).
DOI: 10.1080/09507116.2014.970336
Google Scholar
[3]
Kravchenko I.N., Puzryakov A.F., Belovc A.I., Methodology of the justification and selection of rational methods of reconditioning machine components on the basis of neural network technologies, Welding International, Vol. 25, № 3, pp.212-220, (2011).
DOI: 10.1080/09507116.2010.540875
Google Scholar
[4]
Kuznetsov Yu.A., Kravchenko I.N., Goncharenko V.V., Glinskii M.A., Machining of the ceramic oxide coating formed by plasma electrolytic oxidation, Russian metallurgy (Metally). Vol. 2018, № 13, pp.82-86, (2018).
DOI: 10.1134/s003602951813013x
Google Scholar
[5]
Gaidar S.M., Zhigarev V.D., Kravchenko I.N., Ovchinnikov V.A., Thermodynamc properties of energy-saturated materials, Polymer Science. Series D. Vol. 9, № 4, pp.422-427, (2016).
DOI: 10.1134/s1995421216040067
Google Scholar
[6]
Kuznetsov Yu.A., Kolomeichenko A.V., Goncharenko V.V., Kravchenko I.N., Investigation of internal stresses in thin layer oxide coatings on aluminum alloys, Materials Science Forum. Vol. 968, pp.153-160, (2019).
DOI: 10.4028/www.scientific.net/msf.968.153
Google Scholar
[7]
Kravchenko N.N., Shiyanand A.V., Zubrilina E.M., Thermoplastic hardening of metallic surfaces of welded and hardfaced components, Welding International. Vol. 27, № 5, pp.370-376, (2013).
DOI: 10.1080/09507116.2012.715919
Google Scholar
[8]
Kolomeichenko A.V., Kravchenko I.N., Elemental composition and microhardness of the coatings prepared on faced aluminum alloys by plasma electrolytic oxidation in a silicate-alkaline electrolyte, Russian metallurgy (Metally). Vol. 2019, № 13. pp.1410-1413, (2019).
DOI: 10.1134/s0036029519130147
Google Scholar
[9]
Kuznetsov Yu.A., Kravchenko I.N., Sevryukov A.A., Glinskii M.A. Technological methods for increasing the life of machine components, Russian metallurgy (Metally). Vol. 2019, № 13, pp.1421-1426, (2019).
DOI: 10.1134/s0036029519130184
Google Scholar
[10]
S.M. Gaidar, R.K. Nizamov, M.I. Golubev, The concept of creating corrosion inhibitors using nanotechnological approaches, Bulletin of Moscow State Forest University - Forest Bulletin. № 7, pp.140-142, (2012).
Google Scholar
[11]
S.M. Gaidar, A.S. Tarasov, V.A. Lazarev, Metal corrosion inhibitor. Patent for invention RUS 2263160 claimed 10/12/2004 IPC: C23F 11/14, (2004).
Google Scholar
[12]
S.M. Gaidar, D.I. Petrovsky, E.A. Petrovskaya, A.L. Dmitrevsky, Conservation grease. Patent for invention RUS 2553001 claimed 04/22/2014, IPC: C10M 101/02; C10M 121/04, (2014).
Google Scholar
[13]
S.M. Gaidar, Nanomaterials characterization and indicators to reduce parts wear of agricultural machines, Mechanization and electrification of agriculture. № 12, pp.20-22, (2009).
Google Scholar
[14]
M.Yu. Karelina, S.M. Gaidar, Study of tribotechnical preparations effectiveness based on nanomaterials, Truck, № 4, pp.17-29, (2015).
Google Scholar
[15]
S.M. Gaidar, R.K. Nizamov, V.D. Prokhorenkov, E.G. Kuznetsova, Innovative preservation compounds for agricultural machinery protection from corrosion, Technique and equipment for the village, №. 11, pp.40-43, (2012).
Google Scholar
[16]
S.M. Gaidar, M.Yu. Karelina, E.A. Petrovskaya, E.A. Ziyatdinov, Increasing friction units wear resistance, GOSNITI Transactions, Vol. 122, pp.40-47, (2016).
Google Scholar
[17]
S.M. Gaidar, R.K. Nizamov, S.A. Guryanov, M.I. Golubev, Theory and practice of creating atmospheric corrosion inhibitors, Technique and equipment for the village, № 4, pp.8-10, (2012).
Google Scholar
[18]
S.M. Gaidar, Modification of greases using nanotechnology, Technique in agriculture, № 2, pp.38-40, (2010).
Google Scholar
[19]
S.M. Gaidar, Agricultural machinery protection from corrosion and wear using nanotechnology: Doctoral thesis of tech. sciences (05.20.03) / Gaidar Sergey Mikhailovich; Russian State Agrarian University - Moscow Timiryazev Agricultural Academy. - Moscow, 433 p. (2011).
DOI: 10.33267/2072-9642-2021-10-41-44
Google Scholar
[20]
S.M. Gaidar, L.Yu. Demina, A.L. Dmitrevsky, E.A. Petrovskaya, Polyfunctional biocorrosion inhibitors - an effective means of increasing the preservation of machines in animal husbandry, Machinery and equipment for the village, No. 4, pp.26-29, (2014).
Google Scholar
[21]
S.M. Gaidar, A.S. Tarasov, V.A. Lazarev, Metal corrosion inhibitor. Patent for invention RUS 2263160 claimed. 12.10.2004 IPC: C23F 11/14, (2004).
Google Scholar
[22]
S.M. Gaidar, D.I. Petrovsky, E.A. Petrovskaya, A.L. Dmitrevsky, Conservation lubricant grease. Patent for invention RUS 2553001 claimed. 22.04.2014, IPC: C10M 101/02; C10M 121/04, (2015).
Google Scholar
[23]
S.M. Gaidar, Carboxylic acid ethanolamides as polyfunctional hydrocarbon oxidation inhibitors , Chemistry and Technology of Fuels and Oils. Vol. 46, № 6, pp.385-391, (2011).
DOI: 10.1007/s10553-011-0239-6
Google Scholar
[24]
S.M. Gaidar, R.K. Nizamov, M.I. Golubev, Conception of corrosion inhibiting factors creation with the usage of nanotechnological approach, Scientific Israel - Technological Advantages. Vol. 14, № 3, pp.88-91, (2012).
Google Scholar
[25]
S.M. Gaidar, R.K. Nizamov, M.I. Golubev, Conception of corrosion inhibiting factors creation with the usage of nanotechnological approach, Scientific Israel - Technological Advantages. Vol. 14, № 2-3, pp.92-95, (2012).
Google Scholar