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Articles

Performance evaluation of HiPIMS, S3p and CAE deposited coatings during dry turning of Dss2205

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References

  • Banerjee, T.; Chattopadhyay, A.K. (2020) Dry turning performance of TiN-WSx/TiN hard-lubricious bilayer composite coating. Machining Science and Technology, 24(6): 837–860. doi:10.1080/10910344.2020.1765176.
  • Baptista, A.; Silva, F.; Porteiro, J.; Míguez, J.; Pinto, G. (2018) Sputtering Physical Vapour Deposition (PVD) coatings: A critical review on process improvement and market trend demands. Coatings, 8(11): 402. doi:10.3390/COATINGS8110402.
  • Barshilia, H.C.; Deepthi, B.; Selvakumar, N.; Jain, A.; Rajam, K.S. (2007) Nanolayered multilayer coatings of CrN/CrAlN prepared by reactive DC magnetron sputtering. Applied Surface Science, 253(11): 5076–5083. doi:10.1016/j.apsusc.2006.11.021
  • Boing, D.; Castro, F.L.; Schroeter, R.B. (2020) Prediction of PCBN tool life in hard turning process based on the three-dimensional tool wear parameter. The International Journal of Advanced Manufacturing Technology, 106(1–2): 779–790. doi:10.1007/s00170-019-04509-0
  • Boing, D.; de Oliveira, A.J.; Schroeter, R.B. (2020) Evaluation of wear mechanisms of PVD and CVD coatings deposited on cemented carbide substrates applied to hard turning. The International Journal of Advanced Manufacturing Technology, 106(11–12): 5441–5451. doi:10.1007/s00170-020-05000-x
  • Boothroyd, G. (2017) Fundamentals of Machining and Machine Tools. 3rd ed. Taylor and Francis, United Kingdom.
  • Bordinassi, E.C.; Stipkovic, M.F.; Batalha, G.F. (2006) Superficial integrity analysis in a super duplex stainless steel after turning. Journal of Achievements in Materials and Manufacturing Engineering18(1): 334–338.
  • Bunshah, R.F. (2002) Handbook of Hard Coatings. Norwich, NY.: William Andrew Publishing.
  • Çelik, Y.H.; Kilickap, E.; Güney, M. (2017) Investigation of cutting parameters affecting on tool wear and surface roughness in dry turning of Ti-6Al-4V using CVD and PVD coated tools. Journal of the Brazilian Society of Mechanical Science Engineering, 39, 2085–2093. doi:10.1007/s40430-016-0607-6.
  • Chang, Y.Y.; Yang, S.J.; Wang, D.Y. (2006) Structural and mechanical properties of AlTiN/CrN coatings synthesized by a cathodic-arc deposition process. Surface and Coatings Technology, 201(7): 4209–4214. doi:10.1016/j.surfcoat.2006.08.062
  • Chen, L.; Du, Y.; Yin, F.; Li, J. (2007) Mechanical properties of (Ti, Al)N monolayer and TiN/(Ti, Al)N multilayer coatings. International Journal of Refractory Metals and Hard Materials, 25(1): 72–76. doi:10.1016/j.ijrmhm.2006.01.005
  • Chen, Y.; Wang, J.; Chen, M. (2019) Enhancing the machining performance by cutting tool surface modifications: A focused review. Machining Science and Technology, 23(3): 477–509. doi:10.1080/10910344.2019.1575412
  • Chinchanikar, S.; Choudhury, S.K. (2016) Comparative evaluations of nose wear progression and failure modes during hard turning under dry and near-dry cutting conditions. International Journal of Machining and Machinability of Materials, 18(5/6): 466. doi:10.1504/IJMMM.2016.078991
  • de Oliveira Junior, C.A.; Diniz, A.E.; Bertazzoli, R. (2014) Correlating tool wear, surface roughness and corrosion resistance in the turning process of super duplex stainless steel. Journal of the Brazilian Society of Mechanical Sciences and Engineering, 36(4): 775–785. doi:10.1007/s40430-013-0119-6
  • de Paiva, J.M.F.; Torres, R.D.; Amorim, F.L.; Covelli, D.; Tauhiduzzaman, M.; Veldhuis, S.; Dosbaeva, G.; Fox-Rabinovich, G. (2017) Frictional and wear performance of hard coatings during machining of superduplex stainless steel. The International Journal of Advanced Manufacturing Technology, 92(1–4): 423–432. doi:10.1007/s00170-017-0141-4
  • Demas, N.G.; Ajayi, O.O.; Shareef, I. (2011) Effects of surface contamination layers and roughness on the determination of mechanical properties of thin films using nanoindentation. American Society of Mechanical Engineers, Tribology Division, TRIB, 13–15. doi:10.1115/IJTC2011-61201
  • Demas, N.G.; Lorenzo-Martin, C.; Ajayi, O.O.; Erck, R.A.; Shareef, I. (2016) Measurement of thin-film coating hardness in the presence of contamination and roughness: Implications for tribology. Metallurgical and Materials Transactions A, 47(4): 1629–1640. doi:10.1007/s11661-016-3342-9
  • Elbah, M.; Laouici, H.; Benlahmidi, S.; Nouioua, M.; Yallese, M.A. (2019) Comparative assessment of machining environments (dry, wet and MQL) in hard turning of AISI 4140 steel with CC6050 tools. The International Journal of Advanced Manufacturing Technology, 105(5–6): 2581–2597. doi:10.1007/s00170-019-04403-9
  • Endrino, J.L.; Fox-Rabinovich, G.S.; Gey, C. (2006) Hard AlTiN, AlCrN PVD coatings for machining of austenitic stainless steel. Surface and Coatings Technology, 200(24): 6840–6845. doi:10.1016/j.surfcoat.2005.10.030
  • Galanis, D. (2008) Comparison between dry and wet machining of stainless steel. In: Bouzakis PK-D (Ed.). Proceedings of the 3rd International Conference on Manufacturing Engineering. Aristoteles University of Thessaloniki and Project Center Coatings in Manufacturing (PCCM), Greece, 1–3.
  • Grzesik, W. (2017) Advanced Machining Processes of Metallic Materials. Amsterdam: Elsevier.
  • Gunn, R.N. (1997) Duplex Stainless Steels: Microstructure, Properties and Applications. 1st ed. Woodhead Publ., Cambridge.
  • He, H.-B.; Han, W.-Q.; Li, H.-Y.; Li, D.-Y.; Yang, J.; Gu, T.; Deng, T. (2014) Effect of deep cryogenic treatment on machinability and wear mechanism of TiAlN coated tools during dry turning. International Journal of Precision Engineering and Manufacturing, 15(4): 655–660. doi:10.1007/s12541-014-0384-z
  • IMoA (2014) Practical Guidelines for the Fabrication of Duplex Stainless Steels. 3rd ed. International Molybdenum Association (IMoA), London.
  • Inspektor, A.; Salvador, P.A. (2014) Architecture of PVD coatings for metalcutting applications: A review. Surface and Coatings Technology, 257: 138–153. doi:10.1016/j.surfcoat.2014.08.068
  • International Organization for Standardization (1993) Tool life testing with single point turning tools. ISO, 3685: 1–48.
  • Jebaraj, Vinoth; Ajaykumar, L.; Deepak, C. (2017) Weldability, machinability, and surfacing of commercial duplex stainless steel AISI 2205 for marine application. Journal of Advanced Research, 8: 183–199.
  • Kawate, M.; Kimura Hashimoto, A.; Suzuki, T. (2003) Oxidation Resistance of CrI-xAlxN and TiI-xAlxN Films. Surface and Coatings Technology, 165(2): 163–167. doi:10.1016/S0257-8972(02)00473-5
  • Koyee, R.D.; Heisel, U.; Schmauder, S.; Eisseler, R. (2014) Experimental investigation and multiobjective optimization of turning duplex stainless steels. International Journal of Manufacturing Engineering, 2014: 1–13. doi:10.1155/2014/921081
  • Krolczyk, G.; Nieslony, P.; Legutko, S. (2014) Microhardness and surface integrity in turning process of duplex stainless steel (DSS) for different cutting conditions. Journal of Materials Engineering and Performance, 23(3): 859–866. doi:10.1007/s11665-013-0832-4
  • Krolczyk, G.M.; Nieslony, P.; Legutko, S. (2015) Determination of tool life and research wear during duplex stainless steel turning. Archives of Civil and Mechanical Engineering, 15(2): 347–354. doi:10.1016/j.acme.2014.05.001
  • Krolczyk, G.; Nieslony, A.P.; Maruda, R.W. (2016) Dry cutting effect in turning of a duplex stainless steel as a key factor in clean production. Journal of Clean Production, 30: 1–12.
  • Kulkarni, A.P.; Joshi, G.G.; Sargade, V.G. (2013) Performance of PVD AlTiCrN coating during machining of austenitic stainless steel. Surface Engineering, 29(5): 402–407. doi:10.1179/1743294413Y.0000000130
  • Kulkarni, A.P.; Sargade, V.G. (2015) Characterization and performance of AlTiN, AlTiCrN, TiN/TiAlN PVD coated carbide tools while turning SS 304. Materials and Manufacturing Processes, 30(6): 748–755. doi:10.1080/10426914.2014.984217
  • Liu, Z-w.; Hsu, C.-Y.; Wu, M.-C.; Tsao, C.-C. (2019) The effect of substrate temperature on the properties of (AlCrNbSiTiV)N films deposited by HIPIMS. The International Journal of Advanced Manufacturing Technology, 104(9–12): 4509–4516. doi:10.1007/s00170-019-04251-7
  • Liu, J.; Zhu, S.-S.; Deng, X.; Liu, J.-Y.; Wang, Z.-P.; Qu, Z. (2020) Cutting performance and wear behavior of AlTiN- and TiAlSiN-coated carbide tools during dry milling of Ti-6Al-4V. Acta Metallurgica Sinica (English Letters), 33(3): 459–470. doi:10.1007/s40195-020-01010-6
  • Martinho, R.P.; Silva, F.J.G.; Martins, C.; Lopes, H. (2019) Comparative study of PVD and CVD cutting tools performance in milling of duplex stainless steel. The International Journal of Advanced Manufacturing Technology, 102(5–8): 2423–2439. doi:10.1007/s00170-019-03351-8.
  • Masoudi, S.; Esfahani, M.J.; Jafarian, F.; Ali Mirsoleimani, S. (2019) Comparison the effect of MQL, wet and dry turning on surface topography, cylindricity tolerance and sustainability. International Journal of Precision Engineering and Manufacturing – Green Technology, 6(2), 100–113. doi:10.1007/s40684-019-00042-3.
  • Mishra, S.K.; Ghosh, S.; Aravindan, S. (2020) Investigations into friction and wear behavior of AlTiN and AlCrN coatings deposited on laser textured WC/Co using novel open tribometer tests. Surface and Coatings Technology, 387, 125513.
  • Nomani, J.; Pramanik, A.; Hilditch, T.; Littlefair, G. (2015) Chip formation mechanism and machinability of wrought duplex stainless steel alloys. The International Journal of Advanced Manufacturing Technology, 80(5–8): 1127–1135. doi:10.1007/s00170-015-7113-3
  • Noordin, M.Y.; Venkatesh, V.C.; Sharif, S. (2007) Dry turning of tempered martensitic stainless tool steel using coated cermet and coated carbide tools. Journal of Materials Processing Technology, 185(1–3): 83–90. doi:10.1016/j.jmatprotec.2006.03.137
  • Paiva, J.M.F.; Amorim, F.L.; Soares, P.C.; Veldhuis, S.C.; Mendes, L.A.; Torres, R.D. (2017) Tribological behavior of superduplex stainless steel against PVD hard coatings on cemented carbide. The International Journal of Advanced Manufacturing Technology, 90(5–8): 1649–1658. doi:10.1007/s00170-016-9514-3
  • Policena, M.R.; Devitte, C.; Fronza, G.; Garcia, R.F.; Souza, A.J. (2018) Surface roughness analysis in finishing end-milling of duplex stainless steel UNS S32205. The International Journal of Advanced Manufacturing Technology, 98(5–8): 1617–1625. doi:10.1007/s00170-018-2356-4
  • Pramanik, A.; Basak, A.K.; Dixit, A.R.; Chattopadhyaya, S. (2018) Processing of duplex stainless steel by WEDM. Materials and Manufacturing Processes, 33(14), 1559–1567. doi:10.1080/10426914.2018.1453165.
  • Sargade, V. G.; Gangopadhyay, S.; Paul, S. Chattopadhyay, A.K. (2010) Effect of coating thickness on the characteristics and dry machining performance of tin film deposited on cemented carbide inserts using CFUBMS. Materials and Manufacturing Processes, 26, 1028–1033. doi:10.1080/10426914.2010.526978
  • Selvaraj, D.P.; Chandramohan, P. (2010) Influence of cutting speed, feed rate and bulk texture on the surface finish of nitrogen alloyed duplex stainless steels during dry turning. Scientific & Engineering Research, 2: 453–460.
  • Selvaraj, P.D.; Chandramohan, P.; Mohanraj, M. (2014) Optimization of surface roughness, cutting force and tool wear of nitrogen alloyed duplex stainless steel in a dry turning process using Taguchi method. Journal of the International Measurement, 49: 205–215. doi:10.1016/j.measurement.2013.11.037
  • Sonawane, G.D.; Sargade, V.G. (2019) Evaluation and multi-objective optimization of nose wear, surface roughness and cutting forces using grey relation analysis (GRA). Journal of the Brazilian Society of Mechanical Science Engineering, 41: 1–13.
  • Sonawane, G.D.; Sargade, V.G. (2020) Machinability study of duplex stainless steel 2205 during dry turning. International Journal of Precision Engineering and Manufacturing, 21(5): 969–981. doi:10.1007/s12541-019-00305-8
  • Songmene, V.; Zaghbani, I.; Kientzy, G. (2018) Machining and machinability of tool steels: Effects of lubrication and machining conditions on tool wear and tool life data. Procedia CIRP, 77: 505–508. doi:10.1016/j.procir.2018.08.252
  • Strnad, G.; Paul, C. (2012) Novel coatings for high performance cutting and dry machining. 6th ed. Interdisciplinarity in Engineering International Conference “Petru Maior” University of Tîrgu Mureş, Romania, 75–80.
  • Subhash, N.; Soumya, S.; Raj, N.; Jagadeesha, T. (2019) Experimental study on tool wear and optimization of process parameters using ANN-GA in turning of super-duplex stainless steel under dry and wet conditions. In: Advanced Manufacturing Technology, Springer, Singapore, 411–420. doi:10.1007/978-981-13-6374-0_47.
  • Tabakov, V.P.; Vereschaka, A.S.; Vereschaka, A.A. (2017) Multilayer composition coatings for cutting tools: Formation and performance properties. Mechanics & Industry, 18: 1–9.
  • Thiele, J.D.; Melkote, S. (1999) Effect of cutting edge geometry and workpiece hardness on surface generation in the finish hard turning of AISI 52100 steel. Journal of Materials Processing Technology, 94(2–3): 216–226. doi:10.1016/S0924-0136(99)00111-9
  • Uddin, G.M.; Joyia, F.M.; Ghufran, M.; Khan, S.A.; Raza, M.A.; Faisal, M.; Arafat, S.M.; Zubair, S.W.H.; Jawad, M.; Zafar, M.Q.; Irfan, M.; Waseem, B.; Chaudhry, I.A.; Zeid, I. (2021) Comparative performance analysis of cemented carbide, TiN, TiAlN, and PCD coated inserts in dry machining of Al 2024 alloy. The International Journal of Advanced Manufacturing Technology, 112(5–6): 1461–1481. doi:10.1007/s00170-020-06315-5
  • Varghese, V.; K, A.; Ramesh, M.R.; Chakradhar, D. (2019) Investigation on the performance of AlCrN and AlTiN coated cemented carbide inserts during end milling of maraging steel under dry, wet and cryogenic environments. Journal of Manufacturing Processes, 43: 136–144. doi:10.1016/j.jmapro.2019.05.021
  • Vetter, J. (2014) Innovative PVD processes for advanced coatings based on HiPIMS and arc: Scalable pulsed power plasma and high ionization triple. In: Functional Coatings and Surface Engineering, Oerlikon Balzer, Montreal, Canada, 1–20.
  • Warcholinski, B.; Gilewicz, A. 2011, Mechanical properties of multilayer TiAlN/CrN coatings deposited by cathodic arc evaporation. Surface Engineering, 27(7): 491–497. doi:10.1179/026708410X12786785573355
  • Weirather, T.; Czettl, C.; Polcik, P.; Kathrein, M.; Mitterer, C. (2013) Surface & coatings technology industrial-scale sputter deposition of Cr 1 − x Al x N coatings with 0. 21 ≤ x ≤ 0. 74 from segmented targets Al target segment. Surface and Coatings Technology, 232: 303–310. doi:10.1016/j.surfcoat.2013.05.022
  • Wu, Z.L.; Li, Y.G.; Wu, B.; Lei, M.K. (2015) Effect of microstructure on mechanical and tribological properties of TiAlSiN nanocomposite coatings deposited by modulated pulsed power magnetron sputtering. Thin Solid Films, 597, 197–205. doi:10.1016/j.tsf.2015.11.047
  • Xing, Y.; Deng, J.; Wu, Z.; Liu, L.; Huang, P.; Jiao, A. (2018) Analysis of tool-chip interface characteristics of self-lubricating tools with nanotextures and WS2/Zr coatings in dry cutting. The International Journal of Advanced Manufacturing Technology, 97(5–8): 1637–1647. doi:10.1007/s00170-018-2054-2
  • Yang, S.-M.; Chang, Y.-Y.; Wang, D.-Y.; Lin, D.-Y.; Wu, W. (2007) Mechanical properties of nano-structured Ti-Si-N film synthesized by cathodic arc evaporation. Journal of Alloys and Compounds, 440(1–2): 375–379. doi:10.1016/j.jallcom.2006.12.124
  • Zha, X.; Chen, F.; Jiang, F.; Xu, X. (2019) Correlation of the fatigue impact resistance of bilayer and nanolayered PVD coatings with their cutting performance in machining Ti-6Al-4V. Ceramics International, 45(12): 14704–14717. doi:10.1016/j.ceramint.2019.04.193
  • Zhang, Q.; Xu, Y.; Zhang, T.; Wu, Z.; Wang, Q. (2018) Tribological properties, oxidation resistance and turning performance of AlTiN/AlCrSiN multilayer coatings by arc ion plating. Surface and Coatings Technology, 356: 1–10. doi:10.1016/j.surfcoat.2018.09.027
  • Zhao, J.; Liu, Z. (2020) Influences of coating thickness on cutting temperature for dry hard turning inconel 718 with PVD TiAlN coated carbide tools in initial tool wear stage. Journal of Manufacturing Processes, 56: 1155–1165. doi:10.1016/j.jmapro.2020.06.010

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