The Temperature in the Cutting Zone when Applying Deformational Cutting to Form a Hardened Layer
Authors: Vasiliev S.G., Shulyak Y.I. | Published: 15.04.2019 |
Published in issue: #4(709)/2019 | |
Category: Mechanical Engineering and Machine Science | Chapter: Technology and Equipment for Mechanical and Physico-Technical Processing | |
Keywords: deformational cutting, cutting zone temperature, strain hardening, hardened macrorelief |
Deformational cutting is a promising method of increasing wear resistance of friction surfaces by creating a strain hardened surface layer on them. An important factor influencing the deformational cutting process is the temperature in the cutting zone, therefore, it is necessary to obtain calculation formulas for predicting it. In this paper, the temperature change during deformational cutting of non-hardened austenitic steel in order to form a hardened layer was studied in relation to the cutting parameters: cutting depth, feed and cutting speed. Austenitic steel was selected as a promising material for strain hardening by the deformational cutting method. Temperature measurements were carried out using the natural thermocouple method. An empirical formula for calculating the temperature in the cutting zone depending on the cutting parameters was obtained.
References
[1] Zubkov N.N., Ovchinnikov A.I. Sposob polucheniya poverkhnostey s chereduyushchimisya vystupami i vpadinami (varianty) i instrument dlya ego osushchestvleniya [The method of obtaining surfaces with alternating protrusions and depressions (options) and a tool for its implementation]. Patent RF no. 2044606, 1995.
[2] Zubkov N.N. Razrabotka i issledovanie metoda deformiruyushchego rezaniya kak sposoba formoobrazovaniya razvitykh makrorelʹefov. Avtoref. Dokt. Diss. [Development and research of the method of deforming cutting as a method of forming developed macroreliefs. Abstract Doct. Diss.]. Moscow, 2001. 32 p.
[3] Zubkov N.N., Vasil’ev S.G. Wear resistance improvement based on deformational cutting. Uprochnyayushchie tekhnologii i pokrytiya, 2013, no. 8, pp. 3–9 (in Russ.).
[4] Vasil’ev S.G. Razrabotka metoda deformiruyushchego rezaniya dlya sozdaniya uprochnyayushchikh kompozitsionnykh pokrytiy. Kand. Diss. [Development of a method of deforming cutting to create reinforcing composite coatings. Cand. Diss.]. Moscow, 2001. 223 p.
[5] Spravochnik tekhnologa-mashinostroitelya [Directory technologist-mechanical engineer]. Vol. 2. Ed. Vasil’ev A.S., Kutin A.A. Moscow, Innovatsionnoe mashinostroenie publ., 2018. 818 p.
[6] Shulyak Ya.I. Peculiarities of the strain hardening of surface layers of parts by deformational cutting. Proceedings of Higher Educational Institutions. Маchine Building, 2015, no. 3(660), pp. 3–10 (in Russ.), doi: 10.18698/0536-1044-2015-3-3-10
[7] Shetty M.N. Dislocation and mechanical behaviour of materials. Delhi, PHI Learning Private Limited, 2013. 975 p.
[8] Zubkov N.N., Vasil’ev S.G., Poptsov V.V. Sposob poverkhnostnogo zakalochnogo uprochneniya rezhushche-deformiruyushchim instrumentom [The method of surface hardening cutting and deforming tool]. Patent RF no. 2556897, 2015.
[9] Zubkov N.N., Vasil’ev S.G., Poptsov V.V. Features of Quench Deformational Cutting. Metal working and material science, 2018, vol. 20, no. 2, pp. 35–49 (in Russ.), doi: http://dx.doi.org/10.17212/1994-6309-2018-20.2-35-49
[10] Shulyak Ya.I. Razrabotka i issledovanie sposoba deformatsionnogo uprochneniya poverkhnostey detaley metodom deformiruyushchego rezaniya. Kand. Diss. [Development and research of the method of deformation hardening of parts surfaces by the method of deforming cutting. Cand. Diss.]. Moscow, 2017. 233 p.
[11] Braslavskiy V.M. Tekhnologiya obkatki krupnykh detaley rolikami [Technology running large parts rollers]. Moscow, Mashinostroenie publ., 1975. 160 p.
[12] Zubkov N.N., Ovchinnikov A.I., Vasil’ev S.G. Tool–Workpiece Interaction in Deformational Cutting. Russian Engineering Research, 2016, vol. 36, no. 3, pp. 209–212, doi: 10.3103/S1068798X16030217
[13] Marochnik staley i splavov [Marker of steel and alloys]. Ed. Sorokin V.G. Moscow, Mashinostroenie publ., 1989. 640 p.
[14] Zubkov N., Poptsov V., Vasiliev S. Surface Hardening by Turning without Chip Formation. Jordan Journal of Mechanical and Industrial Engineering, 2017, vol. 36, no. 1, pp. 209–212.
[15] Mal’kova L.D., Buloshnikov V.S., Vasil’ev S. G., Mal’kov O.V., Syroegin I.A., Cherkasov A.S., Pavlyuchenkov I.A., Vinogradov D.V., Shulyak Ya.I. Fizicheskie osnovy mekhanicheskoy i fiziko-tekhnicheskoy obrabotki materialov [Physical bases of mechanical and physico-technical processing of materials]. Moscow, Bauman Press, 2016. 88 p.
[16] Dreval’ A.E., Vasil’ev S.G., Vinogradov D.V., Mal’kov O.V. Measuring Diagnostic Stand for Experimental Researches in Technology Machining. Science & Education of the Bauman MSTU, 2014, no. 12, pp. 22–58 (in Russ.). Available at: http://engineering-science.ru/file/755417.htmls=1 (accessed 09 April 2018), doi: 10.7463/1214.0749286