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Laser-borided composite layer produced on austenitic 316L steel

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Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
Austenitic 316L steel is well-known for its good resistance to corrosion and oxidation. Therefore, this material is often used wherever corrosive media or high temperatures are to be expected. The main drawback of this material is very low hardness and low resistance to mechanical wear. In this study, the laser boriding was used in order to improve the wear behavior of this material. As a consequence, a composite surface layer was produced. The microstructure of laser-borided steel was characterized by only two zones: re-melted zone and base material. In the re-melted zone, a composite microstructure, consisting of hard ceramic phases (borides) and a soft austenitic matrix, was observed. A significant increase in hardness and wear resistance of such a layer was obtained.
Rocznik
Tom
Strony
35--39
Opis fizyczny
Bibliogr. 26 poz., rys.
Twórcy
  • Institute of Materials Science and Engineering, Poznan University of Technology
autor
  • Institute of Materials Science and Engineering, Poznan University of Technology
autor
  • Institute of Materials Science and Engineering, Poznan University of Technology
autor
  • Institute of Materials Science and Engineering, Poznan University of Technology
Bibliografia
  • [1] Glaeser W.A., Materials for Tribology, Tribology Series, 20, Elsevier, 1992.
  • [2] Skołek-Stefaniszyn E., Kaminski J., Sobczak J., Wierzchoń T., Modifying the properties of AISI 316L steel by glow discharge assisted low-temperature nitriding and oxynitriding, Vacuum 85 (2010) 164-169.
  • [3] Skołek-Stefaniszyn E., Burdynska S., Mroz W., Wierzchoń T., Structure and wear resistance of the composite layers produced by glow discharge nitriding and PLD method on AISI 316L austenitic stainless steel, Vacuum 83 (2009) 1442-1447.
  • [4] Li Y., Wang Z., Wang L., Surface properties of nitrided layer on AISI 316Laustenitic stainless steel produced by high temperature plasma nitriding in short time, Applied Surface Science 298 (2014) 243-250.
  • [5] Frączek T., Olejnik M., Jasiński J., Skuza Z., Short-term low-temperature glow discharge nitriding of 361L austenitic steel, Metalurgija 50 (3) (2011) 151-154.
  • [6] Sun Y., Li X., Bell T., Structural characteristics of low temperature plasma carburised austenitic stainless steel, Materials Science and Technology 15 (1999) 1171-1178.
  • [7] García Molleja J., Nosei L., Ferrón J., Bemporad E., Lesage J., Chicot D., Feugeas J., Characterization of expanded austenite developed on AISI 316L stainless steel by plasma carburization, Surface and Coatings Technology 204 (2010) 3750-3759.
  • [8] Ceschini L., Chiavari C., Lanzoni E., Martini C., Low-temperature carburised AISI 316L austenitic stainless steel: Wear and corrosion behavior, Materials and Design 38 (2012) 154-160.
  • [9] Sun Y., Tribocorrosion behavior of low temperature plasma carburized stainless steel, Surface and Coatings Technology 228 (2013) S342-S348.
  • [10] Ozdemir O., Omar M.A., Usta M., Zeytin S., Bindal C., Ucisik A.H., An investigation on boriding kinetics of AISI 316 stainless steel, Vacuum 83 (2009) 175-179.
  • [11] Balusamy T., Sankara Narayanan T.S.N., Ravichandran K., Park I.S., Lee M.H., Effect of surface mechanical attrition treatment (SMAT) on pack boronizing of AISI 304 stainless steel, Surface & Coatings Technology 232 (2013) 60-67.
  • [12] Kayali Y., Büyüksagis A., Yalçin Y., Corrosion and Wear Behaviors of Boronized AISI 316L Stainless Steel, Metals and Materials International 19 (5) (2013) 1053-1061.
  • [13] Major B., Chapter 7: Laser processing for surface modification by remelting and alloying of metallic systems in “Materials Surface Processing by Directed Energy Techniques” Edited by Yves Paleau, Elsevier (2006).
  • [14] Goły M., Kusiński J., Microstructure and properties of the laser treated 30CrMnMo16-8 chromium steel, in: Problems of modern techniques in aspect of engineering and education, eds.: Paweł Kurtyka [et al.], Monography, Pedagogical University. Cracow. Institute of Technology (2006) 183-188.
  • [15] Bartkowiak K., Waligóra W., Laser alloying of the construction steel 45 with boron. The scientific conference with foreign participation, TRANSFER 2001, Trenčin, Slovak Republic, 23-24 October 2001, 175-180.
  • [16] Kulka M., Makuch N., Pertek A., Microstructure and properties of laser-borided 41Cr4 steel. Optics & Laser Technology 45 (2013) 308-318.
  • [17] Paczkowska M., Ratuszek W., Waligora W., Microstructure of laser boronized nodular iron. Surf. Coat. Technol. 205 (2010) 2542-2545.
  • [18] Filip R., Sieniawski J., Pleszakov E., Formation of surface layers on Ti–6Al–4V titanium alloy by laser alloying. Surf. Eng. 22 (1) (2006) 53-57.
  • [19] Tian Y.S., Zhang Q.Y., Wang D.Y., Study on the microstructures and properties of the boride layers laser fabricated on Ti–6Al–4V alloy. J. Mater. Process. Technol. 209 (2009) 2887-2891.
  • [20] Guo C., Zhou J., Zhao J., Guo B., Yu Y., Zhou H., Chen J., Microstructure and friction and wear behavior of laser boronizing composite coatings on titanium substrate. Appl. Surf. Sci. 257 (2011) 4398-4405.
  • [21] Kulka M., Makuch N., Dziarski P., Piasecki A., Miklaszewski A., Microstructure and properties of laser-borided composite layers formed on commercially pure titanium, Optics and Laser Technology 56 (2014) 409-424.
  • [22] Kulka M., Dziarski P., Makuch N., Piasecki A., Miklaszewski A., Microstructure and properties of laser-borided Inconel 600-alloy, Applied Surface Science 284 (2013) 757-771.
  • [23] Kulka M., Makuch N., Dziarski P., Piasecki A., A study of nanoindentation for mechanical characterization of chromium and nickel borides' mixtures formed by laser boriding, Ceramics International 40 (4) (2014) 6083-6094.
  • [24] Kwok C.T., Cheng F.T., Man H.C., Laser-fabricated Fe-Ni-Co--Cr-B austenitic alloy on steels. Part I. Microstructures and cavitation erosion behavior, Surface and Coatings Technology 145 (2001) 194-205.
  • [25] Kim T.H., Kim B.C., Chromium carbide laser-beam surface-alloying treatment on stainless steel, Journal ofMaterials Science 27 (1992) 2967-2973.
  • [26] Kulka M., Mikołajczak D.,Makuch N., Dziarski P., Laser alloying of 316L steel with boron, Inżynieria Materiałowa 6 (2014) 512-515.
Uwagi
Opracowanie ze środków MNiSW w ramach umowy 812/P-DUN/2016 na działalność upowszechniającą naukę.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-d66a9206-1c0b-4c6d-a9ab-3cabb00b0506
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