[1]
Edigarov V R, Mashkov Yu K and Makarenko N G 2006 Investigation of the effect of combined friction-electric treatment with simultaneous introduction of a modifier on the tribotechnical properties of steel friction surfaces Mechanical Engineering Technology No 1 pp.42-45.
Google Scholar
[2]
Kirichek A B, Solovyov D L and Lizutkin A G 2004 Technology and equipment for static-pulse surface plastic deformation treatment (Moscow: Mashinostroenie).
Google Scholar
[3]
Askinazi B M 1989 Strengthening and restoration of parts by electromechanical processing (Moscow: Mashinostroenie).
Google Scholar
[4]
Mashkov Yu K, Edigarov V R, Ovchar Z N and Baibaratskaya M Yu 2006 Combined friction-electric modification of steel friction surfaces Friction and wear vol 27 No 1 рр 89-92.
Google Scholar
[5]
Edigarov V R and Kilunin I Yu 2011 X-ray study of 38HS steel subjected to friction-electric modification Metalloobrabotka No. 4 (64) pp.23-29.
Google Scholar
[6]
Gorlenko A. O. and others 2000 Electromechanical methods of processing Encyclopedia vol III-3 Technology of manufacturing machine parts (Moscow: Mashinostroenie).
Google Scholar
[7]
Suslov A G and Gorlenko A. O 2001 Electromechanical processing: handbook of a machine-building technologist in 2 vol Vol 2 (Moscow: Mashinostroenie).
Google Scholar
[8]
Gorlenko A O 2011 Hardening of the friction surfaces of machine parts during electromechanical processing Bulletin of the Bryansk State Technical University No 3 pp.4-8.
Google Scholar
[9]
Chiganova G A and Mordvinova L E 2011 Effect of nanodiamond modification on the characteristics of diamond-containing nickel coatings Inorganic materials Vol 47 No 7 pp.801-805.
DOI: 10.1134/s0020168511070089
Google Scholar
[10]
Edigarov V R 2020 Friction-electric modification of the surfaces of machine parts with nanoscale carbon materials Mechanical Engineering technology. No. 4 pp.22-28.
Google Scholar
[11]
Gorlenko A O and Davydov S V 2017 Technology for creating wear-resistant surface layers with implanted materials based on tungsten carbide Reference: Engineering Journal No 1 (238) pp.3-10.
DOI: 10.14489/hb.2017.01.pp.003-010
Google Scholar
[12]
Gorlenko A O and Davydov S V 2016 Technology of implantation of materials based on tungsten carbide in order to increase the wear resistance of surfaces High-tech technologies in mechanical engineering No 9 (63) pp.3-9.
Google Scholar
[13]
Ageev E V, Latypov R A, Semenikhin B A and Ageeva E V 2011 Composition and properties of powders obtained by electroerosive dispersion of solid alloy waste Monograph (Kursk).
Google Scholar
[14]
Ageev E V, Gadalov V N, Ageeva E V and Bobryshev R V 2012 Powders obtained by electroerosive dispersion of solid alloy waste - a promising material for restoring parts of automotive equipment Izvestiya Yugo-Zapadnogo gosudarstvennogo universiteta No 1-1 (40) pp.182-189.
Google Scholar