تحسين الصلابة ومقاومة ألاحتكاك للفولاذ الصلبAISI H12 باستخدام الطلاء الصناعى (كربيد التنغستن)
DOI:
https://doi.org/10.65405/g0vhyq23Keywords:
Electron Microscope (SEM), Energy Dispersive X-ray analysis (EDX), American Iron and Steel Institute (AISI), Coefficient Of Friction , tungsten carbide coating, (WC) , H12 tool steel, High Velocity Oxygen Fuel (HVOF), hardnessAbstract
In this research, the effect and effectiveness of industrial coating, tungsten carbide coating on the tribological performance of AISI H12 tool steel was studied through wear test. We performed an analysis of the tungsten carbide coating on the erosion performance of H12 steel using optical techniques such as scanning electron microscopy (SEM), three-dimensional topographic images, and a coefficient of friction experiment. According to the results obtained from the erosion tests, tungsten carbide-coated steel reduced the coefficient of friction by 23.2% compared to uncoated steel. The aim of this study is to increase the wear resistance of H12 hot work steel, by using tungsten carbide coating.
Downloads
References
[1] J. W. Martin, “Concise Encyclopedia of the Mechanical Properties of Materials”, Elsevier Science & Technology, Oxford, United Kingdom (2010).
[2] Bert Verlinden, Julian Driver, Indradev Samajdar, Roger D. Doherty, “Thermo-Mechanical Processing of Metallic Materials: Volume 11”, Elsevier Science & Technology, Oxford, United Kingdom (2009).
[3] S. Maya-Johnson et al. Dry and lubricated Wear of rail steel under rolling contact fatigue - Wear mechanisms and crack growth, Wear (2017)
[4] Raghs, Bilgehan Kondul, Muhammet Huseyin cetin. Investigation of wear behavior of boronized H13 steel under environment of nano-silver-added lubricants coated with different ligands (2020).
[5] Bhaduri,, Amit, “Mechanical Properties and Working of Metals and Alloys”, Springer Nature Switzerland (2018).
[6] Holmberg, K. and A. Matthews. “Tribology of Engineered Surfaces.” Wear: Materials, Mechanisms, and Practice. Ed. Gwidon W. Stachowiak. John Wiley and Sons, Ltd. Hoboken, NJ. p.123 (2009)
[7] Wole Soboyejo, “Mechanical Properties of Engineered Materials”, CRC Press, United Kingdom (2019).
[8] Joshua Pelleg, “Mechanical Properties of Materials”, Springer Science & Business Media, United Kingdom (2012).
[9] D. Nikas et al. Mechanical properties and fatigue behaviour of railway wheel steels as influenced by mechanical and thermal loadings (2016).
[10] Z.K. Fu et al. Investigation on microstructure and Wear characteristic of laser cladding Fe-based alloy on wheel/rail materials (2015).
[11] Abdel Salam Makhlouf, Mahmood Aliofkhazraei , “Handbook of Materials Failure Analysis with Case Studies from the Chemicals, Concrete and Power Industries”, 1st Edition, Elsevier Science & Technology (2015).
[12] I.Saravanan, A.Devaraju, Ganesh babu, “Investigation of Surface Treatment process on stainless steel and its effects for tribological (2020).
[13] L. Qiao et al. Wet abrasive Wear behavior of WC-based cermet coatings prepared by HVOF spraying (2021).
[14] Q. Yang et al. Sliding wear wehavior of WC-12% co coatings at elevated temperatures (2006).
[15] B. Somasundaram et al. Wear behavior of HVOF sprayed WC-Co/NiCrAlYSi (35–65%) and WC-Co/NiCrAlYSi (80–20%) coatings on turbine SS316 steel (2020).
[16] Xue Han, Zhenpu Zhang, Jiayu Hou, “Tribological behavior of surface treatment/ austempered AISI 5160 steel”, Tribology International, (2020).
[17] Cheng, X., Jiang, Z., Wei, D., Hao, L., Wu, H., Xia, W., Zhang, X., Luo, S., and Jiang, L., "Effects of surface preparation on tribological behaviour of a ferritic stainless steel in hot rolling", (2017).
[18] Cetin, M. H. and Korkmaz, S., "Investigation of the concentration rate and aggregation behaviour of nano-silver added colloidal suspensions on wear behaviour of metallic materials by using ANOVA method", (2020).
[19] Vashishtha, N., Khatirkar, R. K., and Sapate, S. G., "Tribological behaviour of HVOF sprayed WC-12Co, WC-10Co-4Cr and Cr3C2−25NiCr coatings", (2017).
[20] Ian Hutchings, Philip Shipway, “Tribology: Friction and Wear of Engineering Materials”, Spedizione Gratis & Amazon (2017).
[21] O. Yazici et al. Investigation of effect of various processing temperatures on abrasive Wear behaviour of high power diode laser treated R260 grade rail steels Tribol (2018).
[22] . Pan, Q. and Lu, L., “Improved Fatigue Resistance of Gradient Nanograined Metallic Materials: Suppress Strain Localization and Damage Accumulation”, (2020).
[23] S. Maya-Johnson et al. Dry and lubricated Wear of rail steel under rolling contact fatigue - Wear mechanisms and crack growth (2017).
[24] Ma, L., He, C. G., Zhao, X. J., Guo, J., Zhu, Y., Wang, W. J., Liu, Q. Y., and Jin, X. S., "Study on wear and rolling contact fatigue behaviors of wheel/rail materials under different slip ratio conditions", (2016).
Downloads
Published
Issue
Section
License
Copyright (c) 2025 Comprehensive Journal of Science

This work is licensed under a Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 International License.








