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Effects of drill microgeometry and cooling supply in the surface integrity

Wybrane pełne teksty z tego czasopisma
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Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
Purpose: The objective of this paper is to investigate the effect of drill microgeometry and cooling supply in the surface integrity of machined holes. The changes in the holes surface and subsurface due to differences on tools features were presented. Design/methodology/approach: Two types of carbide drills with differences in microgeometry and internal/external cooling were used in the machining of SAE 1045 steel. The surface integrity of the holes was evaluated in terms of surface and subsurface quality. The holes surface was examined using optical microscopy (texture) and roughness measurement. The subsurface analysis included plastic deformations, and micro and nanohardness. Findings: The differences in the cooling supply and drills microgeometry showed influence on surface integrity results. The drill type with internal cooling and improved microgeometry produced holes with a smoother surface and subsurface changes of lower magnitude. The most influent feature of microgeometry was the margin thickness. The drill with a thicker margin presented better results, mainly due to friction reduction. Practical implications: The performed investigations could be useful in the industrial practice and give the information for tool selection in drilling of SAE 1045 steel, which is very used in mechanical components industry. Originality/value: The paper shows the importance of analysing the effect of differences of tools features in surface integrity, which is often neglected, but has great influence on the components performance, mainly under severe mechanical and thermal loads. This work also presents the benefits in surface integrity due to drills microgeometry improvement.
Rocznik
Strony
118--124
Opis fizyczny
Bibliogr. 21 poz.
Twórcy
autor
autor
autor
  • Centre of Exact Sciences and Technology, University of Caxias do Sul, 1130 Francisco Getúlio Vargas, Caxias do Sul, Brazil, rpzeilma@ucs.br
Bibliografia
  • [1] M. Kurt, Y. Kaynak, E. Bagci, Evaluation of drilled hole quality in Al 2024 alloy, International Journal of Advanced Manufacturing Technology 37 (2008) 1051-1060.
  • [2] W.C. Ralph, W.S. Johnson, P. Toivonen, A. Makeev, J.C. Newman Jr., Effect of various aircraft production drilling procedures on hole quality, International Journal of Fatigue 28 (2006) 943-950.
  • [3] R.P. Zeilmann, G.L. Nicola, T. Vacaro, C.R. Teixeira, R. Heiler, Implications of the reduction of cutting fluid in drilling AISI P20 steel with carbide tools, International Journal of Advanced Manufacturing Technology (2011) DOI 10.1007/s00170-011-3401-8.
  • [4] G. Svinjarevic, A. Stoic, J. Kopac, Implementation of cutting tool management system, Journal of Achievements in Materials and Manufacturing Engineering 23/1 (2007) 99-102.
  • [5] A. Farias, S. Delijaicov, G.F. Batalha, Surface integrity functional analysis in hard turning AISI 8620 case hardened steel through 3D topographical measurement, Archives of Materials Science and Engineering 46/1 (2010) 47-52.
  • [6] A. Javidi, U. Rieger, W. Eichlseder, The effect of machining on the surface integrity and fatigue life, International Journal of Fatigue 30 (2008) 2050-2055.
  • [7] E.C. Bordinassi, M.F. Stipkovic, G.F. Batalha, S. Delijaicov, N.B. de Lima, Superficial integrity analysis in a super duplex stainless steel after turning, Journal of Achievements in Materials and Manufacturing Engineering 18 (2006) 335-338.
  • [8] D. Ulutan, T. Ozel, Machining induced surface integrity in titanium and nickel alloys: A review, International Journal of Machine Tools and Manufacture 51 (2011) 250-280.
  • [9] U.A. Dabade, S.S. Joshi, R. Balasubramaniam, V.V. Bhanuprasad, Surface finish and integrity of machined surfaces on Al/SiCp composites, Journal of Materials Processing Technology 192-193 (2007) 166-174.
  • [10] A.A. Farid, S. Sharif, M.H. Idris, Surface integrity study of high-speed drilling of Al-Si alloy using HSS drill, Proceedings of the Institution of Mechanical Engineers, Part B: Journal of Engineering Manufacture (2011) DOI: 10.1177/ 2041297510393642.
  • [11] N.H. Elmagrabi, F.M. Shuaeib, C.H.C. Haron, An overview on the cutting tool factors in machinability assessment, Journal of Achievements in Materials and Manufacturing Engineering 23/2 (2007) 87-90.
  • [12] R. M’Saoubi, J.C. Outeiro, H. Chandrasekaran, O.W. Dillon Jr., I.S. Jawahir, A review of surface integrity in machining and its impact on functional performance and life of machined products, International Journal of Sustainable Manufacturing 1/1-2 (2008) 203-236.
  • [13] E. Bagci, B. Ozcelik, Analysis of temperature changes on the twist drill under different drilling conditions based on Taguchi method during dry drilling of Al 7075-T651, International Journal of Advanced Manufacturing Technology 29 (2006) 629-636.
  • [14] Z. Tao, M.R. Lovell, J.C. Yang, Evaluation of interfacial friction in material removal processes: the role of workpiece properties and contact geometry, Wear 256 (2004) 664-670.
  • [15] J. Kwong, D.A. Axinte, P.J. Withers, M.C. Hardy, Minor cutting edge-workpiece interactions in drilling of an advanced nickel-based superalloy, International Journal of Machine Tools and Manufacture 49 (2009) 645-658.
  • [16] D. Jin, Z. Liu, W. Yi, G. Su, Influence of cutting speed on surface integrity for powder metallurgy nickel-based superalloy FGH95, International Journal of Advanced Manufacturing Technology (2011) DOI 10.1007/s00170-011-3196-7.
  • [17] Y. Choi, C.R. Liu, Effects of machining parameters on surface integrity of hard machined surfaces, Proceedings of the Institution of Mechanical Engineers, Part B: Journal of Engineering Manufacture 224 (2010) 699-708.
  • [18] B. Rao, C.R. Dandekar, Y.C. Shin, An experimental and numerical study on the face milling of Ti–6Al–4V alloy: Tool performance and surface integrity, Journal of Materials Processing Technology 211 (2011) 294-304.
  • [19] J.I. Hughes, A.R.C Sharman, K. Ridgway, The effect of tool edge preparation on tool life and workpiece surface integrity, Proceedings of the Institution of Mechanical Engineers, Part B: Journal of Engineering Manufacture 218 (2004) 1113-1123.
  • [20] A. Czarski, Comparative analysis of methods of hardness assessment, Archives of Materials Science and Engineering 40/2 (2009) 94-97.
  • [21] F.M. Al-Abbasi, Micromechanical modeling of ferrite-pearlite steels, Materials Science and Engineering A 527 (2010) 6904-6916.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-article-BSL7-0055-0028
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