Wear resistance of surface layers with subsequent diamond burnishing applied to 40X steel
Desislava MINCHEVA
Abstract. The subject of this study is weld overlays applied with the OK83.28 electrode on 40X steel, which underwent additional hardening through diamond burnishing with a specially designed diamond-tipped tool. The wear resistance of the welded and hardened layers was investigated under dry friction conditions. The wear characteristics of the samples were determined by measuring weight loss. A metallographic analysis of the structure formed in the welded layers after diamond burnishing was conducted. A residual stress analysis in the hardened zone was performed using X-ray diffraction. The microhardness of the hardened layers was measured using the Vickers method with a 50g load.
Keywords
Surfaced Layers, OK83.28, Diamond Burnishing, Wear Resistance, Microhardness, Microstructures
Published online 12/10/2024, 7 pages
Copyright © 2024 by the author(s)
Published under license by Materials Research Forum LLC., Millersville PA, USA
Citation: Desislava MINCHEVA, Wear resistance of surface layers with subsequent diamond burnishing applied to 40X steel, Materials Research Proceedings, Vol. 46, pp 307-313, 2024
DOI: https://doi.org/10.21741/9781644903377-40
The article was published as article 40 of the book Innovative Manufacturing Engineering and Energy
Content from this work may be used under the terms of the Creative Commons Attribution 3.0 license. Any further distribution of this work must maintain attribution to the author(s) and the title of the work, journal citation and DOI.
References
[1] M. Korzynski, Lubas, J., Swirad, S. and Dudek, K., Surface layer characteristics due to slide diamond burnishing with a cylindrical ended tool, J. Materials Processing Technology, Vol. 211, No. 1, (2010) pp.84–94.
[2] S. Swirad, The surface texture analysis after sliding burnishing with cylindrical elements, Wear, Vol. 271, Nos. 3–4, (2011), pp.576–581.
[3] G. Varga, Effects of technological parameters on the surface texture of burnished surfaces, Key Engineering Materials, Vol. 581 Precision Machining VII, pp.403–408, (2014) ISSN 1013-9826.
[4] J. Huuki, & Laakso, S. V., Surface improvement of shafts by the diamond burnishing and ultrasonic burnishing techniques, International Journal of Machining and Machinability of Materials, 19(3) (2017), 246-259.
[5] O. Taamallah, Hamadache, H., Mokas, N. et al., Investigation of the Effects of Slide Diamond Burnishing Process on the Mechanical Performance of GCr15 Steel. J Fail. Anal. and Preven. 23, 1101–1113 (2023). https://doi.org/10.1007/s11668-023-01652-5
[6] J.T. Maximov, Duncheva, G.V., Anchev, A.P. et al., Smoothing, deep, or mixed diamond burnishing of low-alloy steel components – optimization procedures. Int J Adv Manuf Technol 106, 1917–1929 (2020). https://doi.org/10.1007/s00170-019-04747-2
[7] J.T. Maximov, Duncheva, G. V., Anchev, A. P., Ganev, N., Amudjev, I. M., & Dunchev, V. P. Effect of slide burnishing method on the surface integrity of AISI 316Ti chromium–nickel steel. Journal of the Brazilian Society of Mechanical Sciences and Engineering, 40, (2018). 1-14.
[8] J. Maximov, Duncheva, G., Anchev, A., Dunchev, V., Argirov, Y., Nikolova, M., Effects of Heat Treatment and Diamond Burnishing on Fatigue Behaviour and Corrosion Resistance of AISI 304 Austenitic Stainless Steel, Applied Sciences (Switzerland), 2023, 13(4), 2570, ISSN 20763417. https://doi.org/10.3390/app13042570
[9] J. Maximov, Duncheva, G., Anchev, A., Dunchev, V., Argirov, Y., Effect of Diamond Burnishing on Fatigue Behaviour of AISI 304 Chromium-Nickel Austenitic Stainless Steel Materials, 2022, 15(14), 4768, ISSN 19961944. https://doi.org/10.3390/ma15144768
[10] K. Lyutskanov, Analysis and optimization of hydro abrasive wear of surfacing layers formed by using the method of gas-thermal welding with metal powders alloys. SCNVNA, 32, 62-65 (2018). https://doi.org/10.14748/scnvna.v32i0.4498
[11] Y. Denev, Application of hardfacing arc methods in Bulgarian ship repair SME. Trans Motauto World, 7(2), (2022). 50-52.
[12] U. Ozdemir, Sozeri, M., Findik, T., & Kilicli, V., Effect of buttering on the wear behavior of the SMA welded hardfacing layer in a low-carbon steel. Materials Testing, 65(4), 494-504. (2023). https://doi.org/10.1515/mt-2022-0438
[13] A. M. Stoyanova, Mechkarova, T.M., Argirov, Y.B., Konsulova-Bakalova, M.I., Atanasov, N.M., Study of structure and physico-mechanical properties of welding joints on vessel tank of austenite steel SS316, IOP Conference Series: Materials Science and Engineering, 2020, 843(1), 012013, ISSN 17578981. https://doi.org/10.1088/1757-899X/843/1/012013
[14] K. Lyutskanov, Hristov, H., & Demirova, K. Experimental research of abrasive wear of surfacing layers. SCNVNA, 32, 52-56. (2018). https://doi.org/10.14748/scnvna.v32i0.4496
[15] Y. Argirov, Mechkarova, T., Luckanov, G., & Mincheva, D. Investigations of Wear Resistance of Hardfaced Layers on Steel 40X. TEM Journal, 13(1) (2024)
[16] T. M. Mechkarova, A. Ucherdzhiev, N. Valchev,, & D. Mincheva,. Investigationof tribological characteristics of 40Xgradesteel after hardfaced MMA welding method. ANNUAL JOURNAL OF TECHNICAL UNIVERSITY OF VARNA, BULGARIA, 8(2), (2024). pp1-9. [17] Retrieved from: https://auremo.biz/materials/stal-40h.html
[18] ESAB (n.d). Catalog of ESAB electrodes. Information on: https://esab.com/gb/eur_en/
[19] Science Direct. (n.d.). Schaeffler diagram. Science Direct. Retrieved from: Information on https://www.sciencedirect.com/topics/engineering/schaeffler-diagram [accessed: 02 August 2023]