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APPLICATION OF WATER-AIR COOLING TECHNOLOGIES FOR HEAT TREATMENT OF BEARING RINGS

https://doi.org/10.17073/0368-0797-2018-6-423-430

Abstract

The paper presents the results of mathematical modeling and  experimental researches executed during the development of the  techno logy of differential water-air cooling of bearing rings made  of 52100 (EN1.3505) steel produced by JSC “Vologda Bearing  Plant”. Overlapping the mathematical model of temperature variation curves across the bearing cross-section on the thermokinetic  diagram of the decomposition of supercooled austenite calculated  according to the mathematical model developed by JSC VNIIMT  has shown that a required microstructure of the heat-treated metal is  achieved in a wide range of differentiated water-air cooling modes.  Experimental studies of heat-strengthening of bearing rings by water-air jets were carried out on a specially assembled experimental  industrial device with a cooling system equipped with mixers and  collectors with flat-jet nozzles of the original design that ensure the  stability of the torch and the uniformity of spraying the water-air  mixture over a wide range of flow rates and water and air pressure.  The thermal hardening of the rings carried out at various cooling  regimes, followed by the determination of the mechanical properties and structural characteristics of the steel, has confirmed that the  water-air cooling technology achieves the required structural and  mechanical characteristics of the bearing rings and is a competitive,  environmentally friendly alternative to the technology of volume  quenching in oil tank.

About the Authors

Yu. G. Yaroshenko
Ural Federal University named after the first President of Russia B.N. Yeltsin.
Russian Federation

Professor-Сonsultant of the Chair “Thermal Physics and Informatics in Metallurgy”. 

Ekaterinburg.



Yu. I. Lipunov
OJSC “Scientific Research Institute of Metallurgical Heat Engineering” (“VNIIMT”) .
Russian Federation

Cand. Sci. (Eng.), Director of the Center of Modern Cooling Systems and Thermohardening Metals Technologies. 

Ekaterinburg.



A. B. Smakhanov
Ural Federal University named after the first President of Russia B.N. Yeltsin.
Russian Federation

MA Student of the Chair “Thermal Physics and Informatics in Metallurgy”.

Ekaterinburg.



M. V. Stolyarova
OJSC “Scientific Research Institute of Metallurgical Heat Engineering” (“VNIIMT”) .
Russian Federation

Cand. Sci. (Eng.), Research Associate of the Center of Modern cooling Systems and Thermohardening Metals Technologies. 

Ekaterinburg.



References

1. Luty  W.  Chtodziwa hartownicze.  Warszawa,  1986.  (Russ.ed.:  Luty  W. Zakalochnye sredy: Sprav. izd. Trans. from Polish. Chelyabinsk: Metallurgiya, 1990, 192 p.) (In Pol.).

2. Heat treatment problems solved by new quenching medium. Metallwork Praduc. 1967, vol. 3, no. 4, pp. 65–66.

3. Lasday Stenley B. Metal quenching with oils and syntezete media.  Indastrial Heating. 1976, vol. 43, no. 10, pp. 8–13, 16.

4. Suttie N.R. The use of polymer quenchants for aluminium alloy heat  treatment. Heat Treatment Metals. 1979, vol. 6, no. 1, pp. 19–21.

5. AQUATENSID /AQUACOOL. Available  at:  http://www.petrofer.com/images/petrofer/dokumente/produkte/en/PET_1_QUENCHANTS_EN.pdf

6. Aqua-Quench. Available at: https://www.houghtonintl.com/en-gb/find-your-products?search=&application=All&industry=All

7. Spraying Systems Co.  Available  at:  http://www.spray.de/spray_nozzles/spray_nozzles_overview.aspx

8. Zheludkevich M.S. Teplotekhnologicheskie osnovy upravlyaemogo vodovozdushnogo okhlazhdeniya pri zakalke izdelii iz zhelezouglerodistykh splavov: avtoref. diss…dokt. tekh. nauk [Heat engineering basics of controlled water-air cooling during quenching of  products of iron-carbon alloys: Extended Abstract of Dr. Sci. Diss.].  Minsk: 2001, 34 p. (In Russ.). 

9. Mashekov S.A., Absadykov B.N., Alimkulov M.M. Physical modeling in the study of the effect of modes of rolling and water-air  mixture cooling on the rails quality. Sovremennye problemy nauki i obrazovaniya. 2015, no. 2, р. 2. (In Russ.). 

10. Glazkov L.A., Zheludkevich M.S., Zelenin T.L., Tabolin A.A. Resource-saving technological process of heat treatment of large dies.  Vestnik BNTU. 2009, no. 2, pp. 31–34.

11. Golovko A.N., Rodman F., Njurnberger F. Investigation of the water-air cooling process of the thick walled extruded profile made of  alloy En Aw-6060 on the output table. Metallurgical and Mining Industry. 2012, vol. 4, no. 2, pp. 66–74.

12. Yaroshenko Y.G., Startseva M.V., Lipunov Y.I., Eismondt K.Y.,  Nekrasova E.V . Developing modern thermal strengthening technique for regulated fishplate cooling . WIT Transactions on Ecology and the Environment. 2014, vol. 190, no. 1, pp. 491–499.

13. Lipunov Yu.I., Eismondt K.Yu., Startseva M.V., Yaroshenko Yu.G.,  Nekrasova E.V . Introduction of modern energy-saving equipment  and environmentally pure strengthening technology into the production of rail pads. Chernaya metallurgiya. Byul. in-ta “Chermetinformatsiya”. 2013, no. 12, pp. 61–64. (In Russ.). 

14. Budrin D.V., Kondratov V.M. Quenching in air-water mixtures.  Metal Science and Heat Treatment. 1965, vol. 7, no. 6, pp. 367–370. 

15. Systems for accelerated cooling of plates. Bernhard Ludwig, MDS  Mannesmann Demag Sack GmbH, Düsseldorf. Metallurgical Plate and Technology. 1988, no. 4, pр. 10–17.

16. Lipunov Yu.I., Zaynullin L.A., Startseva M.V . Development of  high–efficiency technologies and devices of controlled cooling for  thermohardening of metal. Proceedings of the XI China-Russia Symposium on Advanced Material & Technologies,  Hailing Tu,  Solntsev K., Ring Zhou eds. Part I. China, Kunming, Yunnan Publishing Group Corporation, Yunnan Science & Technology Press,  2013, pp. 295–298. 

17. Mandzyak I.I., Pererva V.Ya., Shevchenko G.L. Investigation of  water-air cooling at heat treatment of metal. In: Energo- i resursosberezhenie v teploenergeticheskoi i sozial′noi sfere. Materialy mezhdunarodnoi nauchno-tekhnicheskoi conferentsii stud., aspir., uchenykh. 2013. Chelyabinsk [Energy and resource saving in heat  power and the social sphere. Proc. of Int. Sci.-Tech. Conf. of Students, Postgraduates and Scientists 2013. Chelyabinsk]. Chelyabinsk: SUSU, 2013, vol. 1, no. 1, pp. 206–209. (In Russ.).

18. Nasedkina Ya.I., Karavaeva M.V., Kaibyshev O.A. Effect of combined thermomechanical treatment on the structure and mechanical  properties of high carbon bearing steel. Vestnik UGATU. Mashinostroenie. 2012, vol. 16, no. 5 (50), pp. 145–148. (In Russ.).

19. Eismondt K.Yu. Study of the quenching medium, alternative to the  quenching oils. Metallovedenie i termicheskaya obrabotka metallov. 2000, no. 11, pp. 32–36. (In Russ.).

20. Petrash L.V . Zakalochnye sredy [Quenching medium]. Moscow:  Mashgiz, 1959, 111 p. (In Russ.).


Review

For citations:


Yaroshenko Yu.G., Lipunov Yu.I., Smakhanov A.B., Stolyarova M.V. APPLICATION OF WATER-AIR COOLING TECHNOLOGIES FOR HEAT TREATMENT OF BEARING RINGS. Izvestiya. Ferrous Metallurgy. 2018;61(6):423-430. (In Russ.) https://doi.org/10.17073/0368-0797-2018-6-423-430

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