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Influence of surface preparation on surface topography and tribological behaviours

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Wybrane pełne teksty z tego czasopisma
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Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
Wear tests were conducted using a ball-on-disc tester. In the experiment, a 42CrMo4 steel disc with a hardness of 40HRC was placed in contact with a 100Cr6 steel ball with a diameter of 6.35 mm. The hardness of the ball was set to 62HRC. Disc samples were prepared to obtain surfaces in range to the Sq parameter but of less than 0.5 μm. Dry tests were carried out. During the tests, the friction force was monitored as a function of time. Disc and ball wear was measured after the tests using a white light interferometer Talysurf CCI Lite. To decrease variations in the experimental results, during the tests, wear debris was continuously removed from the disc surfaces. It was found that the initial surface topography has a significant influence on friction and wear levels under dry sliding conditions. It was also identified the correlation between several surface topography parameters and friction and wear.
Rocznik
Strony
502--510
Opis fizyczny
Bibliogr. 33 poz., rys., tab., wykr.
Twórcy
autor
  • Rzeszow University of Technology, Faculty of Mechanical Engineering and Aeronautics, Powstancow Warszawy street 8, 35-959 Rzeszow, Poland
Bibliografia
  • [1] Bhushan, Modern Tribology Handbook, CRC Press, 2001.
  • [2] M.K. Besharati-Givi, P. Asadi, Advances in Friction-Stir Welding and Processing, first ed., Elsevier, 2014.
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  • [5] M. Walczak, D. Pieniak, M. Zwierzchowski, The tribological characteristics of SiC particle reinforced aluminium composites, Archives of Civil and Mechanical Engineering 15 (2015) 116–123.
  • [6] A. Dzierwa, P. Pawlus, W. Zelasko, R. Reizer, The study of the tribological properties of one-process and two-process textures after vapour blasting and lapping using pin-on-disc tests, Key Engineering Materials 527 (2013) 217–222.
  • [7] N. Selvakumar, S.C. Singh, Influence of nano ZrC content on tribological analysis, microstructure and mechanical properties of Cu–4Cr matrix composites produced by hot extrusion, Archives of Civil and Mechanical Engineering 16 (2016) 537–552.
  • [8] A. Dzierwa, P. Pawlus, W. Zelasko, Comparison of tribological behaviors of one-process and two-process steel surfaces in ball-on-disc tests, Proceedings of the Institution of Mechanical Engineers Part J-Journal of Engineering Tribology 228 (2014) 1195–1210.
  • [9] M. Sedlaček, L.M. Silva Vilhena, B. Podgornik, J. Vižintin, Surface topography modelling for reduced friction, Strojniški vestnik – Journal of Mechanical Engineering 57 (9) (2011) 674–680.
  • [10] F. Svahn, A. Kassaman-Rudolphi, E. Wallen, The influence of surface roughness on friction and wear of machine element coatings, Wear 254 (2003) 1092–1098.
  • [11] N. Tayebi, A.A. Polycarpou, Modeling the effect of skewness and kurtosis on the static friction coefficient of rough surfaces, Tribology International 37 (2004) 491–505.
  • [12] W.R. Chang, M. Hirvonen, R. Gronqvist, The effects of cut-off length on surface roughness parameters and their correlation with transition friction, Safety Science 42 (2004) 755–769.
  • [13] J. Sep, P. Pawlus, L. Galda, The effect of helical groove geometry on journal abrasive wear, Archives of Civil and Mechanical Engineering 13 (2013) 150–157.
  • [14] R. Reizer, L. Galda, A. Dzierwa, P. Pawlus, Simulation of textured surface topography during a low wear process, Tribology International 44 (2011) 1309–1319.
  • [15] S. Wang, Y-Z. Hu, W-Z. Wang, H. Wang, Transition of frictional states and surface roughness affects in lubricated contacts, Proceedings of the Institution of Mechanical Engineers Part J-Journal of Engineering Tribology 222 (2008) 407–414.
  • [16] S. Wang, Y-Z. Hu, Q.-C. Tan, Frictional behaviour of engineering surfaces in overall lubrication regimes of point contacts, Proceedings of the Institution of Mechanical Engineers Part J-Journal of Engineering Tribology 225 (2011) 1071–1080.
  • [17] J. Michalski, P. Pawlus, Description of honed cylinders surface topography, International Journal of Machine Tools and Manufacture 34 (1994) 199–210.
  • [18] W. Wieleba, The statistical correlation of the coefficient of friction and wear rate of PTFE composites with steel counterface roughness and hardness, Wear 252 (9–10) (2002) 719–729.
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  • [20] R. Singh, S.N. Melkote, F. Hashimoto, Frictional response of precision finished surfaces in pure sliding, Wear 258 (10) (2005) 1500–1509.
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  • [22] P. Nyman, R. Maki, R. Olsson, B. Ganemi, Influence of surface topography on friction characteristics in wet clutch applications, Wear 261 (1) (2006) 46–52.
  • [23] M. Sedlacek, B. Podgornik, J. Vizintin, Influence of surface preparation on roughness parameters, friction and wear, Wear 266 (2009) 482–487.
  • [24] M. Sedlacek, B. Podgornik, J. Vizintin, Correlation between standard roughness parameters skewness and kurtosis and tribological behaviour of contact surfaces, Tribology International 48 (2012) 102–112.
  • [25] W. Grabon, P. Pawlus, J. Sep, Tribological characteristics of one-process and two-process cylinder liner honed surfaces under reciprocating sliding conditions, Tribology International 43 (2010) 1882–1892.
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  • [27] M. Niemczewska-Wojcik, A. Mankowska-Snopczynska, W. Piekoszewski, The investigation of wear tracks with the use of non-contact measurement methods, Archives of Civil and Mechanical Engineering 13 (2013) 158–167.
  • [28] L. Chang, Y.R. Jeng, Effects of negative skewness of surface roughness on the contact and lubrication of nominally flat metallic surfaces, Proceedings of the Institution of Mechanical Engineers Part J-Journal of Engineering Tribology 227 (2012) 556–569.
  • [29] J.I. McCool, Non-Gaussian effects in microcontact, International Journal of Machine Tools and Manufacture 32 (1992) 115–123.
  • [30] N. Yu, A.A. Polycarpou, Contact of rough surfaces with asymmetric distribution of asperity heights, ASME Journal of Tribology 124 (2002) 367–376.
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Uwagi
PL
Opracowanie ze środków MNiSW w ramach umowy 812/P-DUN/2016 na działalność upowszechniającą naukę (zadania 2017)
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-881cca13-cea0-4f48-8654-974d46432de4
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