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Research Article

Investigate the comparative performance of dry turning Monel 400 alloy by untreated and cryo-treated AlTiN carbide tools

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Pages 1869-1887 | Accepted 13 Apr 2023, Published online: 25 Apr 2023

References

  • Palacios JA, Olvera D, Urbikain G, et al. Combination of simulated annealing and pseudo spectral methods for the optimum removal rate in turning operations of nickel-based alloys. Adv Eng Software. 2018;115:391–397.
  • Urbikain Pelayo G, Olvera-Trejo D, Luo M, et al. A model-based sustainable productivity concept for the best decision-making in rough milling operations. Measurement. 2021;186:110120.
  • Fernandez-Valdivielso A, Lopez de Lacalle LN, Urbikain G, et al. Detecting the key geometrical features and grades of carbide inserts for the turning of nickel-based alloys concerning surface integrity. Proc IMechE Part C: J Mech Eng Sci. 2016;230(20):3725–3742.
  • Amigo FJ, Urbikain G, L´opez LN, et al. Prediction of cutting forces including tool wear in high-feed turning of Nimonic® C-263 superalloy: a geometric distortion-based model. Measurement. 2023;211:112580.
  • Pereira O, Urbikain G, Rodriguez A, et al. Internal cryolubrication approach for Inconel 718 milling. Procedia Manuf. 2017;13:89–93.
  • Amigo FJ, Urbikain G, Pereira O, et al. Combination of high feed turning with cryogenic cooling on Haynes 263 andInconel 718 superalloys. J Manuf Process. 2020;58:208–222.
  • Gandarias LN, Lopez DL, Aizpitarte X, et al. Study of the performance of the turning and drilling of austenitic stainless steels using two coolant techniques. Int J Mach Mach Mater. 2008;3(1–2):1–17.
  • Parida AK, Maity K. Comparison the machinability of Inconel 718, Inconel 625 and Monel 400 in hot turning operation, Eng. Sci Technol Int J. 2018;21(3):364–370.
  • Parida AK, Maity K. Experimental investigation on tool life and chip morphology in hot machining of Monel-400, Eng. Sci Technol Int J. 2018b;21(3):371–379.
  • Parida AK, Maity K. Modelling of machining parameters affecting flank wear and surface roughness in hot turning of Monel-400 using response surface methodology (RSM. Measurement. 2019;137(2019):375–381.
  • Nimel Sworna Ross MG, Srinivasan D, Gupta MK, et al. Role of sustainable cooling/lubrication conditions in improving the tribological and machining characteristics of Monel-400 alloy, Tribol. Int. 2022;176:107880.
  • Gill SS, Singh H, Singh R, et al. Cryo processing of cutting tool materials - a review. Int J Adv Manuf Technol. 2010;48:175–192.
  • Nie CY, Deng Y, Ding Y, et al. Effect of cryogenic treatment on improving the fracture toughness of TiN coated cemented carbide. Adv Mat Res. 2012;415–417. DOI:10.4028/www.scientific.net/AMR.415-417.1903
  • Rao Kusumba M, Kumar Domakonda V, Balasubramaniyan S. Application of cryogenically treated electrode for enhancement of process outcomes during sustainable electric discharge machining. Int J Mod Manuf Technol. 2020;12(2):86–92.
  • Suárez A, Veiga F, De Lacalle LNL, et al. An investigation of cutting forces and tool wear in turning of Haynes 282. J Manuf Process. 2019;37:529–540.
  • Altas E, Altin Karatas M, Gokkaya H, et al. Surface Integrity of NiTi Shape Memory Alloy in Milling with Cryogenic Heat-Treated Cutting Tools under Different Cutting Conditions. J of Materi Eng and Perform. 2021;30:9426–9439.
  • Samta G, Korucu S. Multiple optimization of cutting parameters in milling of cryogenically treated Aluminium 6061- T651 alloy with cryogenic and normal cutting inserts. Surf Topogr Metrol Prop. 2021;9:045003.
  • Ridwan F, Noerhamzah D. Cutting Forces and Flank Wears Analysis for End Mill Processes Using HSS Tools Cryogenic Treatment When Cutting PFRP Material. IOP Conf. Ser Mater Sci Eng. 2021;012044.
  • Ozdemir Z. Shallow cryogenic treatment effects on the mechanical properties of high Cr cast iron: low-carbon cast steel bimetallic casting. Inter Metalcast. 2021;15(3):952–961.
  • Ghadiri Zahrani E, Sedghi A. Experimental investigation of precision turning of Monel K-500 under dry conditions. Int J Adv Manuf Technol. 2014;73:1265–1272.
  • Dhananchezian M. Experimental investigation on dry turned Monel 400 alloy surface parameters with uncoated and coated tool, Mater. Today: Proc. 2021;46:8303–8306.
  • Dhananchezian M, Rajkumar K, Prithivirajan S. Cutting velocity influenced machinability of Monel 400 by coated tool, Mater. Manuf. 2023;38(1):116–125.
  • Childs T, Tyler C, Evans C, et al. Estimation of cutting conditions in precision micromachining of CuNi alloys of varying composition. Procedia CIRP. 2014;14:383–388.
  • Childs T, Evans C, Browy EC, et al. Tool temperatures and wear in micro-machining Cu-Ni alloys with diamond tools: models, simulations and experiments. Procedia CIRP. 2015;31:270–275.
  • Sajgalik M, Czan A, Drbul M, et al. Identification of technological parameters when machining Ni-Alloys by Monolithic ceramic milling tool. Procedia Manuf. 2017;14:51–57.
  • Shihan M, Chandradass J, Kannan TTM. Investigation of vibration analysis during end milling process of Monel alloy, Mater. Today: Proc. 2021;39(1):695–699.
  • SreeramaReddy TV, Sornakumar T, VenkataramaReddy M, et al. Machinability of C45 steel with deep cryogenic treated tungsten carbide cutting tool inserts. Int J Refract Hard Met. 2009;27:181–185.
  • Gill SS, Singh R, Singh J, et al. Investigation on wear behaviour of cryogenically treated TiAlN coated tungsten carbide inserts in turning. Int J Mach Tools Manuf. 2011;51:25–33.
  • Chetan SG, Rao PV. Performance evaluation of deep cryogenic processed carbide inserts during dry turning of Nimonic 90 aerospace grade alloy, Tribol. Int. 2017;115:397–408.
  • Jadhav P, Kumar S, Bongale A, Optimization of cutting forces by cryogenic treatment on tungsten carbide inserts during dry turning of the P 20 tool steel. Mater Today Proc. 28, (2020a) 2485–2493. DOI:10.1016/j.matpr.2020.04.798.
  • Singh J, Zaidi W. Application of cryo-treatment for improving machining characteristics and reduce manufacturing cost. Mater Today Proc. 2020;33(3):1531–1537.
  • Jadhav PS, Mohanty CP, Hotta TK, et al. An optimal approach for improving the machinability of Nimonic C-263 superalloy during cryogenic assisted turning. J Manuf Process. 2020b;58:693–705.
  • Özbek NA. Effects of cryogenic treatment types on the performance of coated tungsten tools in the turning of AISI H11 steel. J Mater Res Technol. 2020;9(4):9442–9456.
  • Akıncıoglu G, Investigation of the Effect of Cryogenic Treatment Cubic Boron Nitride Turning Insert Tools, J of Materi Eng and Perform. 30(2) (2021)1280–1288. DOI:10.1007/s11665-021-05453-5.
  • Liu WJ, Duan JH, Zhao HC, et al. Effect of cryogenic treatment time on microstructure and tribology performance of TiAlN coating, Surf. Topogr: Metrol Prop. 2021;9:035055.
  • Khan A, Maity K. Comparative study of some machinability aspects in turning of pure titanium with untreated and cryogenically treated carbide inserts. J Manuf Process. 2017;28:272–284.
  • Kumar S, Sudhakar Rao P, Goyal D, et al. Process modelling for machining Inconel 825 using cryogenically treated carbide insert. Met Powder Rep. 2021;76(1):S66–74.
  • Özbek NA, Çiçek A, Gülesin M, et al. Investigation of the effects of cryogenic treatment applied at different holding times to cemented carbide inserts on tool wear. Int J Mach Tools Manuf. 2014;86:34–43.
  • Palanisamy D, Devaraju A, Manikandan N, et al. Performance evaluation of cryo-treated tungsten carbide inserts in machining PH stainless steel. Mater Today Proc. 2020;22(3):487–491.
  • Özbek NA, Çiçek A, Gülesin M, et al. Effect of cutting conditions on wear performance of cryogenically treated tungsten carbide inserts in dry turning of stainless steel. Tribol Int. 2016;94:223–233.
  • Padmakumar M, Dinakaran D, Guruprasath J. Tribological behaviour of Cryogenically Treated WC-9Co Cemented Carbide. Mater Today Proc. 2018;5:7797–7807.
  • Sahoo BN, Mohanty A, Gangopadhyay S, et al. An insight into microstructure and machining performance of deep cryogenically treated cemented carbide inserts. J Manuf Process. 2020;58:819–831.
  • Uny F, Blanquet E, Frédéric Schuster and Frédéric Sanchette, Ti-Al-N-Based Hard Coatings: thermodynamical Background, CVD Deposition, and Properties. A Review, In: Perez-Taborda JA Bernal AGA (editors), Coatings and Thin-Film Technologies, 2018, DOI: 10.5772/intechopen.79747.
  • SreeramaReddy TV, Sornakumar T, VenkataramaReddy M, et al. Machining performance of low temperature treated P-30 tungsten carbide cutting tool inserts. Cryogenics. 2008;48:458–461.
  • Upendra Kumar PS. A comparative machinability study on titanium alloy Ti-6Al-4V during dry turning by cryogenic treated and untreated condition of uncoated WC inserts. Mater Today Proc. 2020;27(3):2324–2328.
  • Sonthesh MRA, Lokesh M, Manjunath LH. Investigating the impact of deep cryogenic treatment on surface roughness and cutting force in turning C45 steel. Mater Today Proc. 2020;24:1190–1198.
  • Deshpande RG, Venugopal KA. Machining with Cryogenically Treated Carbide Cutting Tool Inserts. Mater Today Proc. 2018;5:1872–1878.

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