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Tytuł artykułu

Friction evaluation of laser textured tool steel surfaces

Treść / Zawartość
Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
Surface textures can be defined as a regularly arranged micro-depressions or grooves with defined shape and dimensions. These textures, if they are manufactured by laser ablation process, contribute to a significant improvement of the tribological, optical or various biological properties. The aim of this paper is to analyze the influence of the surface textures prepared by laser surface texturing (LST) at the friction coefficient value measured on the tool (90MnCrV8 steel) – workpiece (S235JRG1 steel) interface. Planar frontal surfaces of compression platens have been covered by parabolic dimple-like depressions with different dimensions. The morphological analysis of such manufactured depressions has been performed by laser scanning microscopy. Influence of such created textures on the tribological properties of the contact pair has been analyzed by the ring compression test method in the terms of hydrodynamic lubrication regime. The experimental research shown that by applying of surface textures with defined shape and dimensions and using an appropriate liquid lubricant at the same time, the coefficient of contact friction can be reduced nearly to the half of its original value.
Rocznik
Strony
129--134
Opis fizyczny
Bibliogr. 38 poz., rys., tab., wykr.
Twórcy
  • Slovak University of Technology, Faculty of Material Science and Technology, Institute of Production Technologies, J. Bottu 25, 917 24 Trnava, Slovakia
autor
  • Slovak University of Technology, Faculty of Material Science and Technology, Institute of Production Technologies, J. Bottu 25, 917 24 Trnava, Slovakia
autor
  • Slovak University of Technology, Faculty of Material Science and Technology, Institute of Production Technologies, J. Bottu 25, 917 24 Trnava, Slovakia
Bibliografia
  • 1. Aspinwall D.K., Wise M.L.H., Stout K.J. et al. (1996), Electrical discharge texturing, Int. Journal of Machine Tools & Manufacture, 32(1-2), 183-193.
  • 2. Bizi-Bandoki P., Benayoun S., Valette S. et al. (2011), Modifications of roughness and wettability properties of metals induced by femtosecond laser treatment, Applied Surface Science, 257(12), 5213-5218.
  • 3. Braun D., Greiner Ch., Schneider J. et al. (2014), Efficiency of laser surface texturing in the reduction of friction under mixed lubrication, Tribology international, 77, 142-147.
  • 4. Cannon A.H., King W.P. (2009), Casting metal microstructures from a flexible and reusable mold, Journal of Micromechanics and Microengineering, 19, 1-6.
  • 5. Costa H.L., Hutchings I.M. (2009), Effects of die surface patterning on lubrication in strip drawing, Journal of Materials Processing Technology, 209(3), 1175-1180.
  • 6. CZ Ferro-Steel (2011), ČSN 11373 – non-alloy steel for construction purposes (http://www.czferrosteel.cz/pdf/tyce-11373.pdf)
  • 7. Demir A.G., Maressa P., Previtali B. (2013), Fibre laser texturing for surface functionalization, Physics Procedia, 41, 759-768.
  • 8. Etsion I. (2005), State of the art in laser surface texturing, Journal of Tribology, 127(1), 248-253.
  • 9. Etsion I., Kligerman Y., Halperin G. (1999), Analytical and experimental investigation of laser-textured mechanical seal faces, Tribology Transactions, 42(3), 511-516.
  • 10. Gualtieri E., Borghi A., Calabri L. et al. (2009), Increasing nanohardness and reducing friction of nitride steel by laser surface texturing, Tribology International, 42(5), 699-705.
  • 11. Huang J., Beckemper S., Gillner A. et al. (2010), Tunable surface texturing by polarization-controlled three-beam interference, Journal of Micromechanics and Microengineering, 20(9), p. 095004.
  • 12. Ibatan T., Uddin M.S. and Chowdbury M.A.K. (2015), Recent development on surface texturing in enhancing tribological performance of bearing sliders, Surface & coatings Technology, 272, 102- 120.
  • 13. Iyengar V.V., Nayak B.K., Gupta M.C. (2011), Ultralow reflectance metal surfaces by ultrafast laser texturing, Applied Optics, 49(31), 5983-5988.
  • 14. Jeng Y-R. (1996), Impact of Plateaued Surfaces on Tribological Performance, Tribology Transactions, 39(2), 354-361.
  • 15. Lu X., Khonsari M.M. (2007), An experimental investigation of dimple effect on the Stribeck curve of journal bearings, Tribology Letters, 27(2), 169-176.
  • 16. Ma Ch., Bai S., Peng X. et al. (2013), Improving hydrophobicity of laser textured SiC surface with micro-square convexes, Applied Surface Science, 266(1), 51-56.
  • 17. Ma Ch., Zhu H. (2011), An optimum design model for textured surface with elliptical-shape dimples under hydrodynamic lubrication, Tribology International, 44(9), 987-995.
  • 18. Man H.C., Chiu K.Y., Guo X. (2010), Laser surface micro-drilling and texturing of metals for improvement of adhesion joint strength, Applied Surface Science, 256(10), 3166-3169.
  • 19. Mourier L., Mazuyer D., Lubrecht A.A. et al. (2006), Transient increase of film thickness in micro-textured EHL contacts, Tribology International, 39(12), 1745-1756.
  • 20. Ortabasi U., Meier D.L., Easoz J.R. et al. (1997), Excimer micromachining for texturing silicon solar cells, Lasers As Tools For Manufacturing II, SPIE Press, 54-64.
  • 21. Plančak M., Kostka P., Schrek A. (2012), Dictionary of metal forming, Nakladateľstvo STU, Bratislava.
  • 22. Preciz (2012), 1.2842 (90MnCrV8, 19 312 / 19 313), http://www.preciz.cz/sluzby-hlavni/material-normal/1.2842)
  • 23. Qiu M., Minson B., Raeymaekers B. (2013), The effect of texture shape on the friction coefficient and stiffness of gas-lubricated parallel slider bearings, Tribology International, 67, 278-288.
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  • 25. Ronen A., Etsion I., Kligerman Y. (2001), Friction-reducing surfacetexturing in reciprocating automotive components, Tribology Transactions, 44(3), 359-366.
  • 26. Samad-Zadeh A., Harsono M., Belikov A. et al. (2011), The influence of laser-textured dentinal surface on bond strength, Dental Materials, 27(10), 1038-1044.
  • 27. Scaraggi M. (2012), Textured surface hydrodynamic lubrication: Discussion, Tribology Letters, 48(3), 375-391.
  • 28. Schaeffer R.D. (2012), Fundamentals of laser micromachining, CRC Press. London.
  • 29. Shen C. and Khonsari M.M. (2015), Numerical optimization of texture shape for parallel surfaces under unidirectional and bidirectional sliding, Tribology International, 82, 1-11.
  • 30. Stašić J., Gaković B., Perrie W. et al. (2011), Surface texturing of the carbon steel AISI 1045 using femtosecond laser in single pulse and scanning regime, Applied Surface Science, 258(1), 290-296.
  • 31. Tang W., Zhou Y., Zhu H. et al. (2013), The effect of surface texturing on reducing the friction and wear of steel under lubricated sliding contact, Applied surface science, 273, 199-204.
  • 32. Engineering ToolBox (2014), Friction and coefficients of friction, (http://www.engineeringtoolbox.com/friction-coefficients-d_778.html)
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  • 34. Vilhena L.M., Sedlaček M., Podgornik B. et al. (2009), Surface texturing by pulsed Nd:YAG laser, Tribology International, 42(10), 1496-1504.
  • 35. Wahl R., Schneider J., Gumbsch P. (2012), Influence of the real geometry of the protrusions in microtextured surfaces on frictional behaviour, Tribology Letters, 47(3), 447-453.
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  • 37. Zhu X.P., Lei M.K., Ma T.C. (2003), Surface morphology of titanium irradiated by high-intensity pulsed ion beam, Nuclear Instruments & Methods in Physics Research Section B: Beam Interactions with Materials and Atoms, 211(1), 69-79.
  • 38. Zum Gahr K.H., Wahl R., Wauthier K. (2009), Experimental study of the effect of microtexturing on oil lubricated ceramic/steel friction pairs, Wear, 267(5-8), 1241-1251.
Uwagi
Opracowanie ze środków MNiSW w ramach umowy 812/P-DUN/2016 na działalność upowszechniającą naukę (zadania 2017).
This work was supported by the research project, entitled: Innovative methods of sheet metal forming tools surfaces improvement - R&D (Manunet 2014/11283); and VEGA project: Laser surface texturing technology research for an optimizing of tribological conditions in the sheet metal forming processes (0669/15).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-72ea9134-9f41-48dc-a25e-88a1e5aaf30c
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