Research Article
BibTex RIS Cite
Year 2025, Volume: 9 Issue: 1, 158 - 165, 31.03.2025
https://doi.org/10.30939/ijastech..1644571

Abstract

References

  • [1] Lucia O, Maussion P, Dede EJ, Burdio JM. Induction heating technology and its applications: Past developments, current technology, and future challenges. IEEE Transactions on In-dustrial Electronics. 2014;61(5):2509–20. https://doi.org/10.1109/TIE.2013.2281162
  • [2] El-Mashad HM, Pan Z. Application of Induction Heating in Food Processing and Cooking. Food Engineering Reviews. 2017;9(2):82–90. https://doi.org/10.1007/s12393-016-9156-0
  • [3] Brieskorn L, Rahman M. Induction heating simulation for aircraft RTM toolings. Proceedings of the Institution of Me-chanical Engineers, Part L: Journal of Materials: Design and Applications. 2024;14644207241270760.https://doi.org/10.1177/14644207241270761
  • [4] Ganesh KC, Panda R. Failure Analysis of Automotive Pow-er-Shift Transmission Shaft. Journal of Failure Analysis and Prevention. 2024;24(3):1395–403. https://doi.org/10.1007/s11668-024-01936-4
  • [5] Liu Y, Chen Q, Chen J, Yang J, Dong S. Development of a novel fabricating thin-walled TA2 titanium tube via high-frequency induction welding. Progress in Natural Science: Materials International. 2024;34(2):314–22. https://doi.org/10.1016/j.pnsc.2024.03.001
  • [6] Li J, Li W, Xie Z, Dong S, Xie J, Ye F, et al. Microstructure and mechanical properties of thin-walled TA1 titanium pipes fabricated by high-frequency induction welding. Journal of Materials Research and Technology. 2024;33:5448–56. https://doi.org/10.1016/j.jmrt.2024.10.187
  • [7] Esteve V, Bellido JL, Jordán J. State of the art and future trends in monitoring for industrial induction heating applica-tions. Electronics (Basel). 2024;13(13):2591. https://doi.org/10.3390/electronics13132591
  • [8] Zheng K, Li D, Chen H, Qu S, Zhao Z, Zhang Y, et al. Effect of cooling rate on the phase transformation and post strength of Ti-6Al-4V under hot forming conditions: Experiments and modelling. J Alloys Compd. 2024;972(November 2023):172868. https://doi.org/10.1016/j.jallcom.2023.172868
  • [9] Kumar A, Mishra GJ, Gulati V, Srivastava AK, Kumar P, Kumar V, et al. A comprehensive review on heat-assisted in-cremental sheet forming. International Journal on Interactive Design and Manufacturing. 2024;18(6):3583–3601. https://doi.org/10.1007/s12008-023-01670-5
  • [10] Kattimani MA, Venkatesh PR, Kirthan LJ, Math MM, Prapul Chandra AC, Hegde R, et al. Design and optimization of fa-tigue life studies on induction hardened IN718 alloy for gas turbine applications. Advances in Materials and Processing Technologies. 2024;10(4):3607–19. https://doi.org/10.1080/2374068x.2023.2256121
  • [11] Aswad MF, Mohammed AJ, Faraj SR. Induction Surface Hardening: A review. J Phys Conf Ser. 2021;1973(1). https://doi.org/10.1088/1742-6596/1973/1/012087
  • [12] Ardelean M, Ardelean E, Heput T, Socalici A. Establishing the Main Technological Parameters of Induction Surface Hardening for Shaft Parts. :37–40.
  • [13] Rokicki P, Bąk E, Mrówka-Nowotnik G, Nowotnik A. Single-frequency induction hardening of structural steel. Journal of Achievements in Materials and Manufacturing Engineering. 2018;86(2):61–9.
  • [14] Shtarbakov V, Streblau M, Stavrev D, Aprahamian B. Inves-tigation of the process of hardening by induction heating of steel grade 40x ( din 41cr4 ): numerical modeling , experi-mental verification, structural changes. Presented at the sci-entific proceedings x international congress; 2013; Varna, Bulgaria.
  • [15] Rathinasuriyan C, Karthik K, Udhayaraj S, Bishwakarma S. Investigation of induction hardening on heat-treated EN8 steel by alternately timed quenching process. Mater Today Proc. 2023. https://doi.org/10.1016/j.matpr.2023.03.216
  • [16] Wendel M, Hoffmann F, Datchary W. Bearing steels for in-duction hardening - Part II. HTM - Journal of Heat Treatment and Materials. 2016;71(5):218–29. https://doi.org/10.3139/105.110277
  • [17] Li X, Li Z, Dong L, Liu B, Wang H, Shi T, et al. Study of microstructure evolution and fatigue crack extension proper-ties of 42CrMo steel strengthened by induction hardening. Journal of Materials Research and Technology. 2025;35(February):3887–3901. https://doi.org/10.1016/j.jmrt.2025.02.069
  • [18] Gao JW, Han RP, Zhu SP, Zhao H, Correia JAFO, Wang Q. Influence of induction hardening on the damage tolerance of EA4T railway axles. Eng Fail Anal. 2023;143(October 2022):1–11. https://doi.org/10.1016/j.engfailanal.2022.106916
  • [19] Areitioaurtena M, Segurajauregi U, Fisk M, Cabello MJ, Ukar E. Numerical and experimental investigation of residual stresses during the induction hardening of 42CrMo4 steel. European Journal of Mechanics, A/Solids. 2022;96(August 2021):104766. https://doi.org/10.1016/j.euromechsol.2022.104766
  • [20] Kim MH, Rhee KY, Paik YN, Hong JS, Ham YS. Experi-mental investigation on the mechanical behavior of high-frequency induction-hardened mild carbon, SPS5 steel. Ma-terials Science and Engineering: A. 2008;485(1–2):31–38. https://doi.org/10.1016/j.msea.2007.07.088
  • [21] Çığır Tİ, Eser AA, Göğer F, Acarer M. Comparison of Sur-face Hardening Processes Applied to AISI 5140 Steel withSide Load Test. International Journal of Automotive Sci-ence and Technology. 2024;8(1):87-95. https://doi.org/10.30939/ijastech..1370591
  • [22] Edgar Collins Bain B. Factors affecting the inherent harden-ability of steel. J. Heat Treating. 1979;1:57-100 https://doi.org/10.1007/BF02833240

The Effect of Heating Time in Induction Hardening Process on the Hardness Profile of a Ball Stud: A Case Study

Year 2025, Volume: 9 Issue: 1, 158 - 165, 31.03.2025
https://doi.org/10.30939/ijastech..1644571

Abstract

The induction hardening method is widely used for the surface hardening of industrial products to improve the resistance of the material to various failure modes such as fatigue, wear, etc. Hence, surface hardening of parts that undergo repetitive forces and that work in close contact with other moving components plays a significant role in their service life. In this study, an automotive ball stud part, which is a highly prone part to fatigue and wear failures, has been induction hardened for varying amounts of heating time (2s, 3s, 4s and 5s) under constant power (135 A) and frequency (50 Hz). The hardness, the hardness depth and the microstructure of the parts have been investigated utilizing hardness tests and optical microscopy. Additionally, the effect of different cooling durations (3s, 5s, and 7s) and the resistance of the parts to the bending force has also been examined. The results show that the increase in heating time has an increasing impact on the hardness of parts and the hardness depth. The bending forces have also been shown to be increasing by increasing the heating time. The highest hardness level, hardness depth and bending resistance have been found when induction heating the specimens for 5s. Increasing the cooling time has not led to a considerable variation in the hardness profile of the specimens.

References

  • [1] Lucia O, Maussion P, Dede EJ, Burdio JM. Induction heating technology and its applications: Past developments, current technology, and future challenges. IEEE Transactions on In-dustrial Electronics. 2014;61(5):2509–20. https://doi.org/10.1109/TIE.2013.2281162
  • [2] El-Mashad HM, Pan Z. Application of Induction Heating in Food Processing and Cooking. Food Engineering Reviews. 2017;9(2):82–90. https://doi.org/10.1007/s12393-016-9156-0
  • [3] Brieskorn L, Rahman M. Induction heating simulation for aircraft RTM toolings. Proceedings of the Institution of Me-chanical Engineers, Part L: Journal of Materials: Design and Applications. 2024;14644207241270760.https://doi.org/10.1177/14644207241270761
  • [4] Ganesh KC, Panda R. Failure Analysis of Automotive Pow-er-Shift Transmission Shaft. Journal of Failure Analysis and Prevention. 2024;24(3):1395–403. https://doi.org/10.1007/s11668-024-01936-4
  • [5] Liu Y, Chen Q, Chen J, Yang J, Dong S. Development of a novel fabricating thin-walled TA2 titanium tube via high-frequency induction welding. Progress in Natural Science: Materials International. 2024;34(2):314–22. https://doi.org/10.1016/j.pnsc.2024.03.001
  • [6] Li J, Li W, Xie Z, Dong S, Xie J, Ye F, et al. Microstructure and mechanical properties of thin-walled TA1 titanium pipes fabricated by high-frequency induction welding. Journal of Materials Research and Technology. 2024;33:5448–56. https://doi.org/10.1016/j.jmrt.2024.10.187
  • [7] Esteve V, Bellido JL, Jordán J. State of the art and future trends in monitoring for industrial induction heating applica-tions. Electronics (Basel). 2024;13(13):2591. https://doi.org/10.3390/electronics13132591
  • [8] Zheng K, Li D, Chen H, Qu S, Zhao Z, Zhang Y, et al. Effect of cooling rate on the phase transformation and post strength of Ti-6Al-4V under hot forming conditions: Experiments and modelling. J Alloys Compd. 2024;972(November 2023):172868. https://doi.org/10.1016/j.jallcom.2023.172868
  • [9] Kumar A, Mishra GJ, Gulati V, Srivastava AK, Kumar P, Kumar V, et al. A comprehensive review on heat-assisted in-cremental sheet forming. International Journal on Interactive Design and Manufacturing. 2024;18(6):3583–3601. https://doi.org/10.1007/s12008-023-01670-5
  • [10] Kattimani MA, Venkatesh PR, Kirthan LJ, Math MM, Prapul Chandra AC, Hegde R, et al. Design and optimization of fa-tigue life studies on induction hardened IN718 alloy for gas turbine applications. Advances in Materials and Processing Technologies. 2024;10(4):3607–19. https://doi.org/10.1080/2374068x.2023.2256121
  • [11] Aswad MF, Mohammed AJ, Faraj SR. Induction Surface Hardening: A review. J Phys Conf Ser. 2021;1973(1). https://doi.org/10.1088/1742-6596/1973/1/012087
  • [12] Ardelean M, Ardelean E, Heput T, Socalici A. Establishing the Main Technological Parameters of Induction Surface Hardening for Shaft Parts. :37–40.
  • [13] Rokicki P, Bąk E, Mrówka-Nowotnik G, Nowotnik A. Single-frequency induction hardening of structural steel. Journal of Achievements in Materials and Manufacturing Engineering. 2018;86(2):61–9.
  • [14] Shtarbakov V, Streblau M, Stavrev D, Aprahamian B. Inves-tigation of the process of hardening by induction heating of steel grade 40x ( din 41cr4 ): numerical modeling , experi-mental verification, structural changes. Presented at the sci-entific proceedings x international congress; 2013; Varna, Bulgaria.
  • [15] Rathinasuriyan C, Karthik K, Udhayaraj S, Bishwakarma S. Investigation of induction hardening on heat-treated EN8 steel by alternately timed quenching process. Mater Today Proc. 2023. https://doi.org/10.1016/j.matpr.2023.03.216
  • [16] Wendel M, Hoffmann F, Datchary W. Bearing steels for in-duction hardening - Part II. HTM - Journal of Heat Treatment and Materials. 2016;71(5):218–29. https://doi.org/10.3139/105.110277
  • [17] Li X, Li Z, Dong L, Liu B, Wang H, Shi T, et al. Study of microstructure evolution and fatigue crack extension proper-ties of 42CrMo steel strengthened by induction hardening. Journal of Materials Research and Technology. 2025;35(February):3887–3901. https://doi.org/10.1016/j.jmrt.2025.02.069
  • [18] Gao JW, Han RP, Zhu SP, Zhao H, Correia JAFO, Wang Q. Influence of induction hardening on the damage tolerance of EA4T railway axles. Eng Fail Anal. 2023;143(October 2022):1–11. https://doi.org/10.1016/j.engfailanal.2022.106916
  • [19] Areitioaurtena M, Segurajauregi U, Fisk M, Cabello MJ, Ukar E. Numerical and experimental investigation of residual stresses during the induction hardening of 42CrMo4 steel. European Journal of Mechanics, A/Solids. 2022;96(August 2021):104766. https://doi.org/10.1016/j.euromechsol.2022.104766
  • [20] Kim MH, Rhee KY, Paik YN, Hong JS, Ham YS. Experi-mental investigation on the mechanical behavior of high-frequency induction-hardened mild carbon, SPS5 steel. Ma-terials Science and Engineering: A. 2008;485(1–2):31–38. https://doi.org/10.1016/j.msea.2007.07.088
  • [21] Çığır Tİ, Eser AA, Göğer F, Acarer M. Comparison of Sur-face Hardening Processes Applied to AISI 5140 Steel withSide Load Test. International Journal of Automotive Sci-ence and Technology. 2024;8(1):87-95. https://doi.org/10.30939/ijastech..1370591
  • [22] Edgar Collins Bain B. Factors affecting the inherent harden-ability of steel. J. Heat Treating. 1979;1:57-100 https://doi.org/10.1007/BF02833240
There are 22 citations in total.

Details

Primary Language English
Subjects Material Production Technologies, Automotive Engineering Materials
Journal Section Articles
Authors

Nuri Şen 0000-0002-6501-5858

Fatih Helimergin 0000-0002-5595-3533

Tolgahan Civek 0000-0002-1487-5903

Publication Date March 31, 2025
Submission Date February 21, 2025
Acceptance Date March 28, 2025
Published in Issue Year 2025 Volume: 9 Issue: 1

Cite

APA Şen, N., Helimergin, F., & Civek, T. (2025). The Effect of Heating Time in Induction Hardening Process on the Hardness Profile of a Ball Stud: A Case Study. International Journal of Automotive Science And Technology, 9(1), 158-165. https://doi.org/10.30939/ijastech..1644571
AMA Şen N, Helimergin F, Civek T. The Effect of Heating Time in Induction Hardening Process on the Hardness Profile of a Ball Stud: A Case Study. IJASTECH. March 2025;9(1):158-165. doi:10.30939/ijastech.1644571
Chicago Şen, Nuri, Fatih Helimergin, and Tolgahan Civek. “The Effect of Heating Time in Induction Hardening Process on the Hardness Profile of a Ball Stud: A Case Study”. International Journal of Automotive Science And Technology 9, no. 1 (March 2025): 158-65. https://doi.org/10.30939/ijastech. 1644571.
EndNote Şen N, Helimergin F, Civek T (March 1, 2025) The Effect of Heating Time in Induction Hardening Process on the Hardness Profile of a Ball Stud: A Case Study. International Journal of Automotive Science And Technology 9 1 158–165.
IEEE N. Şen, F. Helimergin, and T. Civek, “The Effect of Heating Time in Induction Hardening Process on the Hardness Profile of a Ball Stud: A Case Study”, IJASTECH, vol. 9, no. 1, pp. 158–165, 2025, doi: 10.30939/ijastech..1644571.
ISNAD Şen, Nuri et al. “The Effect of Heating Time in Induction Hardening Process on the Hardness Profile of a Ball Stud: A Case Study”. International Journal of Automotive Science And Technology 9/1 (March 2025), 158-165. https://doi.org/10.30939/ijastech. 1644571.
JAMA Şen N, Helimergin F, Civek T. The Effect of Heating Time in Induction Hardening Process on the Hardness Profile of a Ball Stud: A Case Study. IJASTECH. 2025;9:158–165.
MLA Şen, Nuri et al. “The Effect of Heating Time in Induction Hardening Process on the Hardness Profile of a Ball Stud: A Case Study”. International Journal of Automotive Science And Technology, vol. 9, no. 1, 2025, pp. 158-65, doi:10.30939/ijastech. 1644571.
Vancouver Şen N, Helimergin F, Civek T. The Effect of Heating Time in Induction Hardening Process on the Hardness Profile of a Ball Stud: A Case Study. IJASTECH. 2025;9(1):158-65.


International Journal of Automotive Science and Technology (IJASTECH) is published by Society of Automotive Engineers Turkey

by.png