Tribology Characteristics Of 22MNB5 Boron Steel Coated With Titanium Aluminum Nitrade
Boron steels are used in hot stamping process due to their good mechanical properties. During the stamping process, the dies are exposed to aggressive conditions including adhesive wear, thermal stresses, fatigue, and abrasion. In the present work, there are four samples with different HRC. The name...
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T Technology (General) TJ Mechanical engineering and machinery Abu Bakar, Muhammad Faizal Tribology Characteristics Of 22MNB5 Boron Steel Coated With Titanium Aluminum Nitrade |
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Boron steels are used in hot stamping process due to their good mechanical properties. During the stamping process, the dies are exposed to aggressive conditions including adhesive wear, thermal stresses, fatigue, and abrasion. In the present work, there are four samples with different HRC. The name for the four sample are first blank sample, blank sample with self-hardening, factory sample with 60 HRC and factory sample with 70 HRC. Blank sample is without doing anything. One sample will use different procedure of preparation which is using quenching that self-hardening while other two used hot stamping. Then all samples are coated with Titanium Alumiunm Nitrade (TiAlN) using Physical Vapor Deposition. After that, the samples coating were characterized and tested using Scanning Electron Microscopy (SEM), density, hardness test and wear test. By using SEM, the width of the stroke becomes smaller when using hot stamping process. For the hardness test, the sample form Proton Factory 70HRC stronger than others because using hot stamping process. Wear resistance of coatings increase due to the decreasing of coefficient of friction obtained. While others suggest that the transformation of the layer into produce martensite phase and more harder is the ultimate responsible for such changes. These four samples will make a comparison and find the best. Sample Proton Factory 70HRC it has lowest presence of porosity inside the sample so, the sample has highest hardness. The best will go further to machining process. The results in term of hardness and wear which are using hot stamping with higher HRC of sample will be better than others. |
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Master of Philosophy (M.Phil.) |
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Master's degree |
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Abu Bakar, Muhammad Faizal |
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Abu Bakar, Muhammad Faizal |
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Abu Bakar, Muhammad Faizal |
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Tribology Characteristics Of 22MNB5 Boron Steel Coated With Titanium Aluminum Nitrade |
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Tribology Characteristics Of 22MNB5 Boron Steel Coated With Titanium Aluminum Nitrade |
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Tribology Characteristics Of 22MNB5 Boron Steel Coated With Titanium Aluminum Nitrade |
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Tribology Characteristics Of 22MNB5 Boron Steel Coated With Titanium Aluminum Nitrade |
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Tribology Characteristics Of 22MNB5 Boron Steel Coated With Titanium Aluminum Nitrade |
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tribology characteristics of 22mnb5 boron steel coated with titanium aluminum nitrade |
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Universiti Teknikal Malaysia Melaka |
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Faculty of Manufacturing Engineering |
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2019 |
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my-utem-ep.249442021-09-29T12:17:11Z Tribology Characteristics Of 22MNB5 Boron Steel Coated With Titanium Aluminum Nitrade 2019 Abu Bakar, Muhammad Faizal T Technology (General) TJ Mechanical engineering and machinery Boron steels are used in hot stamping process due to their good mechanical properties. During the stamping process, the dies are exposed to aggressive conditions including adhesive wear, thermal stresses, fatigue, and abrasion. In the present work, there are four samples with different HRC. The name for the four sample are first blank sample, blank sample with self-hardening, factory sample with 60 HRC and factory sample with 70 HRC. Blank sample is without doing anything. One sample will use different procedure of preparation which is using quenching that self-hardening while other two used hot stamping. Then all samples are coated with Titanium Alumiunm Nitrade (TiAlN) using Physical Vapor Deposition. After that, the samples coating were characterized and tested using Scanning Electron Microscopy (SEM), density, hardness test and wear test. By using SEM, the width of the stroke becomes smaller when using hot stamping process. For the hardness test, the sample form Proton Factory 70HRC stronger than others because using hot stamping process. Wear resistance of coatings increase due to the decreasing of coefficient of friction obtained. While others suggest that the transformation of the layer into produce martensite phase and more harder is the ultimate responsible for such changes. These four samples will make a comparison and find the best. Sample Proton Factory 70HRC it has lowest presence of porosity inside the sample so, the sample has highest hardness. The best will go further to machining process. The results in term of hardness and wear which are using hot stamping with higher HRC of sample will be better than others. 2019 Thesis http://eprints.utem.edu.my/id/eprint/24944/ http://eprints.utem.edu.my/id/eprint/24944/1/Tribology%20Characteristics%20Of%2022MNB5%20Boron%20Steel%20Coated%20With%20Titanium%20Aluminum%20Nitrade.pdf text en public http://eprints.utem.edu.my/id/eprint/24944/2/Tribology%20Characteristics%20Of%2022mnb5%20Boron%20Steel%20Coated%20With%20Titanium%20Aluminum%20Nitrade.pdf text en validuser https://plh.utem.edu.my/cgi-bin/koha/opac-detail.pl?biblionumber=117722 mphil masters Universiti Teknikal Malaysia Melaka Faculty of Manufacturing Engineering Abu Bakar, Mohd Hadzley 1. Abdoos, M., Yamamoto, K., Bose, B., Fox-Rabinovich, G., & Veldhuis, S. (2019). Effect of coating thickness on the tool wear performance of low stress TiAlN PVD coating during turning of compacted graphite iron (CGI). Wear, 422-423, pp. 128–136. 2. Blokland, P., & Reniers, G. (2017). Total Respect Management (TR³M): A Systemic Management Approach in Aligning Organisations towards Performance, Safety and CSR. Environmental Management and Sustainable Development, 4(2), 1. 3. Boher C, Le Roux S, Penazzi L, Dessain C. Experimentalinvestigation of the tribological behavior and wearmechanisms of tool steel grades in hot stamping of a high-strength boron steel. Wear 2012;294–295:286–95. 4. Das, S., & Swain, B. P. (2017). Investigation of Titanium Aluminium Nitride (TiAlN): A Review. Lecture Notes in Electrical Engineering Advances in Electronics, Communication and Computing, pp. 147–158. 5. Elmkhah, H., Mahboubi, F., Abdollah-Zadeh, A., & Rouhaghdam, A. S. (2018). A new approach to improve the surface properties of H13 steel for metal forming applications by applying the TiAlN multi-layer coating. Journal of Manufacturing Processes, pp. 873–877. 6. Er, D., Taghavi, G., Azar, P., & Ürgen, M. (2018). Surface & Coatings Technology The corrosion protection ability of TiAlN coatings produced with CA-PVD under superimposed pulse bias, 346(April), 1–8. https://doi.org/10.1016/j.surfcoat.2018.04.034 7. Geng, Z., Shi, G., Shao, T., Liu, Y., Duan, D., & Reddyhoff, T. (2019). PT. Surface & Coatings Technology, #pagerange#. https://doi.org/10.1016/j.surfcoat.2019.02.076 8. Ghiotti A, Sgarabotto F, Bruschi S. A novel approach to weartesting in hot stamping of high strength boron steel sheets.Wear 2013;302:1319–26. 9. Gierl Ch., Mohsin I.U., Danninger H., Boron Activated Sintering of PM Steels – Alternative Boron Sources, Powder Metallurgy Progress, 8 (2), 2008, 135-141 10. Golling, S., Frómeta, D., & Casellas, D. (2018). Author ’ s Accepted Manuscript Influence of microstructure on the fracture toughness of hot stamped boron steel Reference : Materials Science & Engineering A. https://doi.org/10.1016/j.msea.2018.11.080 11. Gracia-escosa, E., García, I., Damborenea, J. J. De, & Conde, A. (2017). Friction and wear behaviour of tool steels sliding against 22MnB5 steel. Integrative Medicine Research, (x x), 1–10. https://doi.org/10.1016/j.jmrt.2017.04.002 12. Hoche, H., Pusch, C., & Oechsner, M. (2018). Surface & Coatings Technology Establishing PVD-coatings for the corrosion protection of mild steel substrates for complex tribological and corrosive stresses. Surface & Coatings Technology, (November 2017), 1–10. https://doi.org/10.1016/j.surfcoat.2018.06.007 13. Hodgson, P. D., & Beladi, H. (2017). Author ’ s Accepted Manuscript. Materials Science & Engineering A. https://doi.org/10.1016/j.msea.2017.09.038 14. H. So, D. Faßmann, H. Hoffmann, R. Golle, M. Schaper, J. Mater. Process. Technol. 212 (2012) 437–449. 15. Järvinen, H., Honkanen, M., Patnamsetty, M., Järn, S., & Heinonen, E. (2018). Surface & Coatings Technology Press hardening of zinc-coated boron steels : Role of steel composition in the development of phase structures within coating and interface regions. Surface & Coatings Technology, 352(August), 378–391. https://doi.org/10.1016/j.surfcoat.2018.08.040 16. J. Bian, H. Mohrbacher, in:, Proc Int. Symp. New Dev. Adv. High-Strength Sheet Steels, 2013, pp. 23–27. 17. Kang, S., Kim, Y., Heo, Y. M., Kim, J. D., & Won, S. (2017). ScienceDirect ScienceDirect An Investigation of the trimming of boron nitride steel ( 22MnB5 ) An Investigation during of the the trimming of boron process during the die-quenching process. Procedia Engineering, 207, 1540–1545. https://doi.org/10.1016/j.proeng.2017.10.1075 18. Kazior, J. et al. (2002). The influence of boron on the mechanical properties of prealloyed CrM powders. Deformation and Fracture in Structural PM Materials. DF PM 2002. Vol. 1, pp.125-131. 19. K. Mori, T. Maeno, T. Suganami, Manuf. Rev. 2 (2015) 11. 20. Kuntz, Meinhard, and Reinhard Krüger. 2018. “The e Ff Ect of Microstructure and Chromia Content on the Properties of Zirconia Toughened Alumina.” Ceramics International 44 (2): 2011–20. https://doi.org/10.1016/j.ceramint.2017.10.146. 21. Li, N., Sun, C., Guo, N., Lin, J., & Takeki, M. (2014). Damage investigation of boron steel at hot stamping conditions. Procedia Engineering, 81(October), 1744–1749. https://doi.org/10.1016/j.proeng.2014.10.224 22. Li, N., Sun, C., Guo, N., Mohamed, M., & Lin, J. (2016). Journal of Materials Processing Technology Experimental investigation of boron steel at hot stamping conditions. Journal of Materials Processing Tech., 228, 2–10. https://doi.org/10.1016/j.jmatprotec.2015.09.043 23. Li, X., Chang, Y., Wang, C., Hu, P., & Dong, H. (2017). crossmark. Materials Science & Engineering A, 679(2), 240–248. https://doi.org/10.1016/j.msea.2016.10.045 24. Lian-fang, H. E., & Nan, X. (2011). Research on Mechanical Properties of 22MnB5 Steel Quenched in a Steel Die, 16(2), 129–132. https://doi.org/10.1007/s12204-011-1106-7 25. Liu, W., Chu, Q., He, R., Huang, M., Wu, H., Jiang, Q., … Wu, S. (2017). Preparation and properties of TiAlN coatings on silicon nitride ceramic cutting tools. Ceramics International, (October), 0–1. https://doi.org/10.1016/j.ceramint.2017.10.177 26. Lu, J., Song, Y., Hua, L., Liu, J., & Shen, Y. (2017). Materials Science & Engineering A In fl uence of thermal deformation conditions on the microstructure and mechanical properties of boron steel. Materials Science & Engineering A, 701(June), 328–337. https://doi.org/10.1016/j.msea.2017.06.101 27. M. Naderi, W. Bleck, in:, WIT Press, 2007, pp. 95–104. 28. Mokhtar, Muhammad Faiz B. 2017. “Investigation of Tool Wear and Surface Roughness When Machining Aisi 1045 Using Alumina Ceramic Cutting Tool.” 29. Mori, K., Yashima, S., & Kaido, T. (2018). ScienceDirect ScienceDirect ScienceDirect Springback behaviour and quenchability hot stamping of thick sheets models for capacity optimization in Industry Trade-off between used capacity and operational efficiency Springback behaviour and quenchability in hot stamping of thick. Procedia Manufacturing, 15, 1071–1078. https://doi.org/10.1016/j.promfg.2018.07.385 30. Mozgovoy, S., Alik, L., Hardell, J., & Prakash, B. (2019). Material transfer during high temperature sliding of Al-Si coated 22MnB5 steel against PVD coatings with and without aluminium, 427(December 2018), 401–411. https://doi.org/10.1016/j.wear.2018.12.042 31. N. Khakzad, G.L.L. Reniers, Revolutionizing safety and security in the chemical and process industry: applying the CHESS concept.- Journal of Integrated Security Science. 1 (1) (2017) 2-15. 32. Namklang, P., & Uthaisangsuk, V. (2016). Description of microstructures and mechanical properties of boron alloy steel in hot stamping process. Journal of Manufacturing Processes, 21, 87–100. https://doi.org/10.1016/j.jmapro.2015.11.008 33. Nazeri, M., & Mohd, B. I. N. (2013). Optimization Of Quenching Process In Hot Stamping Of Boron Alloyed, (July). 34. Nikravesh, M., Naderi, M., Akbari, G. H., & Bleck, W. (2015). Phase transformations in a simulated hot stamping process of the boron bearing steel. JMADE, 84, 18–24. https://doi.org/10.1016/j.matdes.2015.06.108 35. Nishibata, T., & Kojima, N. (2012). Effect of quenching rate on hardness and microstructure of hot-stamped steel. Journal of Alloys and Compounds, 1–6. https://doi.org/10.1016/j.jallcom.2011.12.154 36. Panjan, P., & Kova, J. (2017). Surface & Coatings Technology Tribological aspects related to the morphology of PVD hard coatings, (June). https://doi.org/10.1016/j.surfcoat.2017.09.084 37. Pei, F., Liu, H. J., Chen, L., Xu, Y. X., & Du, Y. (2019). Improved properties of TiAlN coating by combined Si-addition and multilayer architecture, 790, 909–916. https://doi.org/10.1016/j.jallcom.2019.03.248 38. Pelcastre L, Hardell J, Rolland A, Prakash B. Influence ofmicrostructural evolution of Al-Si coated UHSS on itstribological behaviour against tool steel at elevatedtemperatures. J Mater Process Technol 2016;228:117–24. 39. Rao, J. (2018). Titanium Aluminium Nitride and Titanium Boride Multilayer Coatings Designed to Combat Tool Wear, 1–12. https://doi.org/10.3390/coatings8010012 40. Ribeiro, R., & Avillez, D. (2015). Cold-rolled multiphase boron steels : microstructure and mechanical properties Fábio Dian Murari a , André Luiz Vasconcelos da Costa e Silva b ,. Integrative Medicine Research, 4(2), 191–196. https://doi.org/10.1016/j.jmrt.2014.12.001 41. S. Curtze, Characterization of the Dynamic Behavior and Microstructure Evolution of High Strength Sheet Steels, Doctoral thesis, Tampere University of Technology, 2009. 42. Shugurov, A. R., & Kazachenok, M. S. (2018). Mechanical properties and tribological behavior of magnetron sputtered TiAlN/TiAl multilayer coatings. Surface & Coatings Technology, #pagerange#. https://doi.org/10.1016/j.surfcoat.2018.09.001 43. Sprute, T., Tillmann, W., Grisales, D., Selvadurai, U., & Fischer, G. (2014). Surface & Coatings Technology In fl uence of substrate pre-treatments on residual stresses and tribo-mechanical properties of TiAlN-based PVD coatings. Surface & Coatings Technology, 260, 369–379. https://doi.org/10.1016/j.surfcoat.2014.08.075 44. Windmann, M., Röttger, A., Hahn, I., & Theisen, W. (2017). SC. Surface & Coatings Technology. https://doi.org/10.1016/j.surfcoat.2017.04.075 45. Windmann M, Röttger A, Theisen W. Formation ofintermetallic phases in Al-coated hot-stamped 22MnB5sheets in terms of coating thickness and Si content. SurfCoat Technol 2014;246:17–25. 46. Yan, H., Tian, Q., Gao, D., & Yang, F. (2019). Surface & Coatings Technology Microstructure and properties of TiAlN / AlN multilayers with di ff erent modulation periods. Surface & Coatings Technology, 363(January), 61–65. https://doi.org/10.1016/j.surfcoat.2019.01.064 47. Yanagida, A., Mukai, T., & Matsumoto, K. (2018). ScienceDirect ScienceDirect ScienceDirect Adhesion behavior steel in hot flat Engineering of test Society with coated tools Procedia Manufacturing, 15, 1041–1046. https://doi.org/10.1016/j.promfg.2018.07.389 48. Yao, S. J., Feng, L., Yang, D. L., Han, D. X., Liu, Y., Li, Q. Q., … Chao, B. J. (2018). A potential hot stamping process for microstructure optimization of 22MnB5 steels characterized by asymmetric pre-rolling and one- or two-step pre- heating, 254(November 2017), 100–107. https://doi.org/10.1016/j.jmatprotec.2017.11.037 49. Yoon, T., Oh, M., Shin, H., & Kang, C. (2017). PT NU. Materials Characterization, (2016). https://doi.org/10.1016/j.matchar.2017.02.007 |