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Articles

Effect of machining parameters on turning of VAT32® superalloy with ceramic tool

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Pages 800-806 | Received 30 Oct 2018, Accepted 24 Feb 2019, Published online: 26 Mar 2019

References

  • Reed, R. C. The Superalloys; Cambridge University Press: Cambridge, 2006.
  • Stemmer, C. E. Livro- Ferramentas de Corte I Editora da, UFSC: Florianópolis, 1993; p. 249.
  • Wallace Head, W. A Review of: “ SUPERALLOYS, SUPERCOMPOSITES AND SUPERCERAMICS” Edited by J.K. Tien AND T. Caulfield Academic Press Inc. 755 Pages, Hard Cover, 1989. Mater. Manuf. Process. 1990, 5(4), 663–665. DOI: 10.1080/10426919008953284.
  • Wang, J.; Zhang, D.; Wu, B.; Luo, M.; Technology, I. M. Residual Stresses Analysis in Ball End Milling of Nickel-Based Superalloy Inconel 718. Mater. Res. 2017, 20(6), 1681–1689. DOI: 10.1590/1980-5373-mr-2017-0561.
  • Wang, T. D.; Liu, E. L.; Li, Z. Study on Oxidation Resistance of Tool Materials for Machining Superalloy. Mater. Sci. Forum. 2016, 836–837, 215–219. DOI: 10.4028/www.scientific.net/MSF.836-837.215.
  • Dornelas, D. A. Caracterização MecâNica Em Temperaturas Elevadas Da Superliga MAR-M247, PhD Thesis, University of São Paulo, 2012.
  • Sharma, P.; Chakradhar, D.; Narendranath, S. Multi-Response Optimization of WEDM Process Using Hybrid Approach while Machining Inconel 625 Superalloy. J. Mach. Form. Technol. 2014, 6, 107.
  • Sawford, M. K.; Sinharoy, S.; Narasimhan, S. L.; Kajinic, A.; Wojcieszynski, A. L.; Wright, J. K. Wear Resistant High Temperature Alloy. U.S. Patent 2008/0008617, Jan 10, 2008, 2009.
  • Thakur, A.; Gangopadhyay, S. State-Of-the-Art in Surface Integrity in Machining of Nickel-Based Super Alloys. Int. J. Mach. Tools Manuf. 2016, 100, 25–54. DOI: 10.1016/j.ijmachtools.2015.10.001.
  • Taylor, P.; Mandal, A.; Dixit, A. R.; Das, A. K.; Mandal, N. Modeling and Optimization of Machining Nimonic C-263 Super Alloy Using Multi-Cut Strategy in WEDM. Mater. Manuf. Process. 2016, 37(7), 860–868.
  • Lu, X.; Jia, Z.; Wang, H.; Si, L.; Liu, Y.; Wu, W. Tool Wear Appearance and Failure Mechanism of Coated Carbide Tools in Micro-Milling of Inconel 718 Super Alloy. Ind. Lubr. Tribol. 2016, 2, 267–277. DOI: 10.1108/ILT-07-2015-0114.
  • Akhtara, W.; Suna, J.; Chena, W. Effect of Machining Parameters on Surface Integrity in High Speed Milling of Super Alloy GH4169/Inconel 718. Mater. Manuf. Process. 2016, 31(5), 620–627. DOI: 10.1080/10426914.2014.994769.
  • Tazehkandi, A. H.; Pilehvarian, F.; Davoodi, B. Experimental Investigation on Removing Cutting Fluid from Turning of Inconel 725 with Coated Carbide Tools. J. Clean. Prod. 2014, 80, 271–281. DOI: 10.1016/j.jclepro.2014.05.098.
  • Thakur, D. G.; Ramamoorthy, B.; Vijayaraghavan, L. Optimization of Minimum Quantity Lubrication Parameters in High Speed Turning of Superalloy Inconel 718 for Sustainable Development. World Acad. Sci. Eng. Technol. 2009, 54(2006), 224–226.
  • Katna, R.; Singh, K.; Agrawal, N.; Jain, S. Green Manufacturing—Performance of a Biodegradable Cutting Fluid. Mater. Manuf. Process. 2017, 32(13), 1522–1527. DOI: 10.1080/10426914.2017.1328119.
  • Somashekaraiah, R.; Suvin, P. S.; Gnanadhas, D. P.; Kailas, S. V.; Chakravortty, D. Eco-Friendly, Non-Toxic Cutting Fluid for Sustainable Manufacturing and Machining Processes. Tribol. Online. 2016, 5, 556–567. DOI: 10.2474/trol.11.556.
  • Devillez, A.; Le Coz, G.; Dominiak, S.; Dudzinski, D. Dry Machining of Inconel 718, Workpiece Surface Integrity. J. Mater. Process. Technol. 2011, 211(10), 1590–1598. DOI: 10.1016/j.jmatprotec.2011.04.011.
  • Paspardelli, C.; Remoção de Pb e Bi Em Liga de Níquel Por Refino a Vácuo, Dissertation, University of São Paulo, 2011.
  • Farina, A. B.; Bacalhau, J. B.; Junior, R. T. C. F.; de Souza, E. N.; Mantovani, M. C.; Sokolowski, A.; Barbosa, C. A. Use of Thermodynamic Modelling to the Process Optimization and Development of New Alloys. Tecnol. em Metal. Mater. e Mineração. 2014, 11, 296–303. DOI: 10.4322/tmm.2014.040.
  • Farina, A. B.; Liberto, R. C. N.; Barbosa, C. A. Desenvolvimento de Novos Aços Válvula Para Aplicação Em Motores de Alto Desempenho. Tecnol. em Metal. Mater. e Mineração. 2013, 10, 329–335. DOI: 10.4322/tmm.2013.043.
  • Gobbi, V. J.; Comportamento Em Fluência e Caracterização Microestrutural Das Superligas VAT 36, VAT 32 e NIMONIC 80A, PhD Thesis, University of Brasília, 2013.
  • Choudhury, I.; El-Baradie, M. Machinability of Nickel-Base Super Alloys: A General Review. J. Mater. Process. Technol. 1998, 77(1–3), 278–284. DOI: 10.1016/S0924-0136(97)00429-9.
  • Ezugwu, E. O. Key Improvements in the Machining of Difficult-to-Cut Aerospace Superalloys. Int. J. Mach. Tools Manuf. 2005, 45(12–13), 1353–1367. DOI: 10.1016/j.ijmachtools.2005.02.003.
  • Roberto, L.; Coelho, R. T.; Catai, R. E. Desgaste de Ferramentas No Torneamento Com Alta Velocidade de Corte Da Superliga “ Waspaloy”. Rem Rev. Esc. Minas. 2004, 57(2), 109–114. DOI: 10.1590/S0370-44672004000200007.
  • Ezugwu, E. O. High Speed Machining of Aero-Engine Alloys. J. Brazilian Soc. Mech. Sci. Eng. 2004, 26(1), 1–11. DOI: 10.1590/S1678-58782004000100001.
  • Diniz, A. E.; Marcondes, F. C.; Coppini, N. L. Tecnologia de Usinagem Dos Materiais, 8th ed.; Artliber: São Paulo, 2013.
  • Bonhin, E. P.; David Müzel, S.; Kondo, M. Y.; Ribeiro, L. A.; Souza, J. V. C.; Ribeiro, M. V. Estudo Da Usinagem Da Superliga A Base De Ferro-Níquel Utilizando Ferramenta Cerâmica. In 60° Congresso Brasileiro de Cerâmica, Águas de Lindóia, São Paulo, May 15-18, 2016; pp 1243–1251.
  • Kondo, M. Y.; Pinheiro, C.; Souza, J. V. C.; Ribeiro, M. V.; Alves, M. C. S. ScienceDirect Optimizing for Power and in 28th Parameters Parameters for Cutting Cutting Power and Roughness Roughness in VAT Turning Turning with With an An Experimental Experimental Al A New Methodology to Analyze the Functional and Physical Architectur. Procedia CIRP. 2018, 77(Hpc), 610–613. DOI: 10.1016/j.procir.2018.08.200.
  • Shalaby, M. A.; Veldhuis, S. C. Wear and Tribological Performance of Different Ceramic Tools in Dry High Speed Machining of Ni-Co-Cr Precipitation Hardenable Aerospace Superalloy Wear and Tribological Performance of Different Ceramic Tools in Dry High. Tribol. Trans. 2018, 1–16. DOI: 10.1080/10402004.2018.1486494.
  • Tian, X.; Zhao, J.; Wang, X.; Yang, H.; Wang, Z. Performance of Si 3 N 4/(W, Ti) C Graded Ceramic Tool in High-Speed Turning Iron-Based Superalloys. Ceram. Int. 2018, 44(13), 15579–15587. DOI: 10.1016/j.ceramint.2018.05.222.
  • Chavan, V.; Kadam, S.; Sadaiah, M. Performance of Alumina-Based Ceramic Inserts in High-Speed Machining of Nimonic 80A. Mater. Manuf. Process. 2018, 00(00), 1–10.
  • Sørby, K.; Vagnorius, Z. High-Pressure Cooling Cooling in Turning Turning of Inconel Inconel with Ceramic Cutting Cutting Tools. Procedia CIRP. 2018, 77, 74–77. DOI: 10.1016/j.procir.2018.08.221.
  • Ferraresi, D. Fundamentos Da Usinagem Dos Metais; Edgard Blücher: São Paulo, 1977; pp 751.

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