PL EN


Preferencje help
Widoczny [Schowaj] Abstrakt
Liczba wyników
Tytuł artykułu

Influence of primary silicon precipitates on anodized aluminum alloys surface layer properties

Treść / Zawartość
Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
In this work, we presented the influence of the anodizing method and parameters, as well as the chemical composition of the used aluminium alloys on the properties and microstructure of the anodic layer produced on aluminium alloys, in particular on the size and morphology of the primary silicon precipitates and the homogeneity of the resulting oxide coating. Aluminium alloys AlSi8 and AlSi12, produced using the die-casting method and subsequently subjected to anodic oxidation were used as test material. The microstructure of the obtained surface layer was analyzed by taking into account the primary silicon precipitates. The results of the hardness and abrasive wear test also show the influence of anodizing and electrolyte parameters on the structure and properties of the tested aluminium alloys.
Czasopismo
Rocznik
Strony
111--120
Opis fizyczny
Bibliogr. 30 poz.
Twórcy
autor
  • Silesian University of Technology, Faculty of Transport Krasińskiego 8, 40-019 Katowice, Poland
autor
  • Silesian University of Technology, Faculty of Transport Krasińskiego 8, 40-019 Katowice, Poland
  • Silesian University of Technology, Faculty of Transport Krasińskiego 8, 40-019 Katowice, Poland
autor
  • Silesian University of Technology, Faculty of Transport Krasińskiego 8, 40-019 Katowice, Poland
autor
  • Infra SILESIA S.A. Kłokocińska 51, 44-251 Rybnik, Poland
Bibliografia
  • 1. Tichelaar, L.E. & Thompson, F.D. & Terryn, G.E. & at al. A transmission electron microscopy study of hard anodic oxide layers on AlSi(Cu) alloys. Electrochimica Acta. 2004. Vol. 49. P. 3169-3177.
  • 2. Vrublevsky, I. & Parkoun, V. & Schreckenbach, J. at al. Effect of the current density on the volume expansion of the deposited thin films of aluminium during porous oxide formation. Applied Surface Science. 2003. Vol. 220. 51-59.
  • 3. Vrublevsky, I. & Parkoun V. & Sokol, V. The study of the volume expansion of aluminium during porous oxide formation at galvanostatic regime. Applied Surface Science. 2004. Vol. 222. P. 215-225.
  • 4. Gwoździk, M. & Nitkiewicz, Z. Wear resistance of steel designed for surgical instruments after heat and surface treatments. Archives of Metallurgy and Materials. 2009. Vol. 54. No. 1. P. 241-246.
  • 5. Włodarczyk-Fligier, A. & Dobrzański, L.A. & Konieczny, J Ceramic particles. Journal of Achievements in Materials and Manufacturing Engineering. 2012. Vol. 51. No. 1. P. 22-29.
  • 6. Konieczny, J. & Dobrzański, L.A. & Labisz, K. & at al. The influence of cast method and anodizing parameters on structure and layer thickness of aluminium alloys. Journal of Materials Processing Technology. 2004. Vol. 157-158. P. 718-723.
  • 7. Labisz, K., & Tański, T. & Janicki, D. HPDL energy absorption on anodised cast Al-Si-Cu alloys surfaces during remelting, Archives of Foundry Engineering. 2012. Vol. 12. No. 2. P. 45-48.
  • 8. Juchim, S. Nanoporous structure of alumina in one- and two-step anodisation process. Przegląd Elektrotechniczny. 2013. Vol. 89. No. 7. P. 155-157.
  • 9. Posmyk, A. & Bogdan-Włodek, A. Thermal composite coatings improving quality of technical means of transport. Scientific Journal of Silesian University of Technology. Series Transport. 2015. Vol. 87. P. 21-26.
  • 10. Gilbert Kaufman, J. Properties of aluminum alloys: Fatigue Data and the Effects of Temperature, Product Form, and Processing. ASM International. 2008.
  • 11. Davis, J.R. Aluminum and Aluminum Alloys, ASM International, 1993.
  • 12. McQueen, J.H. & Spigarelli, S. & Kassner, M.E. & Evangelista, E. Hot Deformation and Processing of Aluminum Alloys. CRC Press Taylor & Francis Group. 2011.
  • 13. Totten, G.E. & MacKenzie D.S. Handbook of Aluminum: Volume 2: Alloy Production and Materials Manufacturing. Marcel Dekker Inc. 2005.
  • 14. Scully, J.R. & Silverman, D.C. & Kendig, M.W. Electrochemical Impedance: Analysis and Interpretantion. ASTM. 1993.
  • 15. Henley, V.F. Anodic Oxidation of Aluminium and Its Alloys. Pergamon Press. 2000.
  • 16. Brace, A.W. The technology of anodizing aluminium. Aluminum Anodizers. 2000.
  • 17. Sheasby, P.G. & Pinner, R. The Surface Treatment and Finishing of Aluminum and Its Alloys. Tom 2. ASM International. 2001.
  • 18. Kawai, S. Anodizing and coloring of aluminum alloys. Finishing Publications. 2002.
  • 19. Ghali, E. Corrosion Resistance of Aluminum and Magnesium Alloys: Understanding, Performance and Testing. Jon Wiley & Sons, INC. 2010.
  • 20. Skoneczny, W. Shaping the properties of aluminum and its alloys by hard anodizing. Wydawnictwo Politechniki Łódzkiej. Filia w Bielsku-Białej. 2001.
  • 21. Polski Komitet Normalizacyjny. Aluminum and aluminum alloys - anodic oxidation - p. 1: Methods for characterizing decorative and protective anodic oxide coatings on aluminum PN-EN 12373-1. PKN, 2004.
  • 22. Takadoum, J. Nanomaterials and Surface Engineering. ISTE Ltd. and John Wiley and Sons, Inc. 2010.
  • 23. Takadoum, J. Materials and Surface Engineering in Tribology. ISTE Ltd. and John Wiley and Sons. Inc, 2013.
  • 24. Tiwari, A. & Wang, R. & Wie, B. Advanced Surface Engineering Materials. Scrivener Publishing LCC. 2016.
  • 25. Grandfield, J. Light Metals 2014. Springer International Publishers. 2016.
  • 26. Minet, A. The Production of Aluminum and Its Industrial Use. Fb & c Limited. 2016.
  • 27. Cabot, T. & Tetrault, J. & Dong-Jin, S. Microcrystalline anodic coatings and related methods therefor. Sanford Process Corp. 2010.
  • 28. Lumley, R. Fundamentals of Aluminium Metallurgy: Production, Processing and Applications. Woodhead Publishing Limited. 2010.
  • 29. Dudin, M.N. & Voykova, N.A. & Frolova, E.E. & Artemieva, J.A. & Ruskova, E.P. & Abashidze, A.H. Modern trends and challenges of development of global aluminum. METABK. 2017. Vol. 56(1-2). P. 255-258.
  • 30. Kodres, C.A. & Polly, D.R. & Hoffard, T.A. & Anguiano, G.D. Surface Quality Impact of Replacing Vapor Degreasers with Aqueous Immersion Systems. Technical Report TR-2067-ENV Naval Facilities Engineering Service Center. 1997.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-116783a1-e852-4b09-b308-a85f40a8b18d
JavaScript jest wyłączony w Twojej przeglądarce internetowej. Włącz go, a następnie odśwież stronę, aby móc w pełni z niej korzystać.