INCREASING WEAR RESISTANCE OF TAIL BY LASER HARDENING
Abstract and keywords
Abstract (English):
The presented paper is devoted to determining the sizes of laser thermal hardening zones, microhardness, and wear resistance of steel 25 samples reinforced with a defocused and oscillating beam. The results of tribotechnical tests on an upgraded reciprocating friction machine equipped with digital signal processing from strain sensor in LabVIEW are presented. It is found out that when treated with a defocused and oscillating beam, the hardening area of the samples was 25 and 50% of the nominal surface with an equal step of the quenching tracks, which indicates an increase in process productivity twice under equal hardening conditions. The wear resistance of the samples after quenching with a defocused and oscillating beam increased by 2.93 and 2.18 times compared with the initial value.

Keywords:
laser hardening, tracks, hardening, microhardness, friction factor, intensity, wear, wear resistance
References

1. Lackh L. Recent advances in laser surface hardening: techniques, modeling approaches. Crystals. 2024;14(8):726. doi:https://doi.org/10.3390/cryst14080726.

2. Alisin VV. Increase in wear resistance of heavy diesel cylinder liners by laser treatment. Transport, mining and construction engineering: science and production. 2022;16:51-55. doi.org/10.26160/2658-3305-2022-16-51-55

3. Biryukov VP, Shmelev SA, Bogdanov AV. Laser quenching of steels by rectangular patch to improve their work resource. Photonics. 2019;13(6):532-537. doi.org /https://doi.org/10.22184/1993-7296.FROS.2019.13.6.532.537.

4. Li J, YanH, Li S. Microstructure characteristics at different depths of 40CrNiMo steel after laser hardening. Materials Characterization. 2023;197:112680. doi: https://doi.org/10.1016/j.matchar.2023.112680.

5. Zhao K, Yan G, Li J, Guo W, Gu J, Li C The resistance to wear and thermal cracking of laser surface engineered P20 steel. Coatings. 2023;13:97. doi: 7.https://doi.org/10.3390/coatings13010097.

6. Anusha E, Kumar A, Shariff SM, Grochala D, Lesyk D. A novel method of laser surface hardening treatment inducing different thermal processing condition for Thin-sectioned 100Cr6 steel. Optics and Laser Technology. 2020;106:106061. doi:https://doi.org/10.1016/j.optlastec.2020.106061.

7. Dzhemelinskyi V, Hruska M, Mordyuk B. Surface hardness improvement of AISI D2 tool steel by laser transformation hardening process using high-power disk laser. Advances in Design, Simulation and Manufacturing VII. 2024:178-187. doi:https://doi.org/10.1007/978-3-031-61797-3.

8. Li J, Yan H, Li S, Zhang Y, Wu S. Sliding friction and wear properties of 40CrNiMo steel after laser hardening against GCr15 steel under oil lubrication. Coatings. 2022;12:604-623. doi:https://doi.org/10.3390/coatings12050604.

9. Hu X, Jia S, Lai F, Jiang L, Li X. Investigation on the parameters optimization and sliding wear behaviors under starved lubrication of discrete laser surface hardened 25CrNi2MoV steel. Tribology International. 2021;163:107176. doi:https://doi.org/10.1016/j.triboint.2021.107176.

10. Wu L, Long W, Hao Q, Cheng Z, Yang Y, Shi L, Wu Y. Research on 40Cr laser quenching process for guide rail. Journal of Physics: Conference Series. 2023;2566:012100. doi:https://doi.org/10.1088/1742-6596/2566/1/012100.

11. Furlani MR, Carvalho SM. Reduced coefficient of friction of laser surface hardened AISI 4130 steel substrates. Material Design and Processing Communications. 2022;2022:541853. doi:https://doi.org/10.1155/2022/7541853.

12. Albahlol OAA, Cug H, Akgul Y, Incesu A, Eticha AK. Effect of laser hardening on the mechanical, tribological and corrosion properties of low alloy steels. Journal of Mining and Metallurgy, Section B: Metallurgy. 2023;52(2):255-267. doi:https://doi.org/10.2298/JMMB230209022A.

13. Kanazawa T, Hayakawa M, Vinas D, Tahara Y, Hata N, Yoshimoto M. Sustainable technology for remanufacturing of carburized steels by laser hardening. Journal of Materials Research and Technology. 2023;24:39-48. doi:https://doi.org/10.1016/j.jmrt.2023.02.226.

14. Kuksenova LI, Lapteva ZVG, Kolmakov AG, Rybakova LM. Methods of testing for friction and wear: monograph. Moscow: Intermet Engineering; 2001.

15. Biryukov VP, Gudushauri EG, Fishkov AA. RF Patent No.2683600. MPK G01N 3/56 (2006.01). Method of measuring wear of metal materials and coatings. 2019 March 03.

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