PL EN


Preferencje help
Widoczny [Schowaj] Abstrakt
Liczba wyników
Tytuł artykułu

Sintered stainless steel surface alloyed with Si3N4 powder

Wybrane pełne teksty z tego czasopisma
Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
Purpose: The goal of this study was to investigate effects of laser surface alloying with Si3N4 powder on the microstructural changes and properties of vacuum sintered stainless steels, both austenitic X2CrNi17-12-2, ferritic X6Cr13 and duplex X2CrNiMo22-8-2. Design/methodology/approach: High power diode laser (HPDL) was applied to surface modification of sintered stainless steels with Si3N4 powder. The influence of laser alloying conditions on the width, penetration depth of alloyed surface layer were studied and analysed via FEM simulation. The microstructure of alloyed layers was examined using light and scanning electron microscopy as well as X-ray diffraction. The microhardness and wear resistance of studied surface layers were also evaluated. Findings: The hardness increased with addition of Si3N4 due to strong solution hardening effect of nitrogen and silicon that dissolved in the steel matrix during laser alloying. The strong austenite stabilizer effect of nitrogen was observed in ferritic stainless steel that revealed duplex microstructure. The hardness increased with addition of Si3N4 due to strong solution hardening effect of nitrogen and silicon dissolved in the steel matrix during laser alloying. The hardening effect of Si3N4 was strongest in case of ferritic stainless steel where microhardness increased to 450 HV0.1 for 2.1 kW of laser beam power. The duplex stainless steel shows the regular microhardness on the whole penetration depth. Laser surface alloying with Si3N4 improved wear resistance of sintered stainless steels compared to not processed stainless steel as well as comparing layers prepared as machined grooves and surface with pre-coated paste. Practical implications: Laser surface alloying with Si3N4 powder can be an efficient method of surface layer hardening of sintered stainless steels and produce improvement of surface layer properties in terms of hardness and wear resistance. Moreover, application of high power diode laser HPDL and surface prepared as machined grooves can guarantee uniform heating of treated surface, thus uniform thermal cycle across processed area and uniform penetration depth of alloyed surface layer. Originality/value: Application of high power diode laser can guarantee uniform heating of treated surface, thus uniform thermal cycle across processed area and uniform penetration depth of alloyed surface layer.
Rocznik
Strony
43--55
Opis fizyczny
Bibliogr. 26 poz.
Twórcy
autor
autor
  • Division of Materials Processing Technology, Management and Computer Techniques in Materials Science, Institute of Engineering Materials and Biomaterials, Silesian University of Technology, ul. Konarskiego 18a, 44-100 Gliwice, Poland, zbigniew.brytan@polsl.pl
Bibliografia
  • [1] J.C. Betts, The direct laser deposition of AISI316 stainless steel and Cr3C2 powder, Journal of Materials Processing Technology 209 (2009) 5229-5238.
  • [2] F. Laroudie, C. Tassin, M. Pons, Hardening of 316L stainless steel by laser surface alloying, Journal of Materials Science 30 (1995) 3652-3657.
  • [3] D. Zhang, X. Zhang, Laser cladding of stainless steel with Ni-Cr3C2 and Ni-WC for improving erosive-corrosive wear performance, Surface and Coatings Technology 190 (2005) 212-217.
  • [4] C. Tassin, F. Laroudie, M. Pons, L. Lelait, Improvement of the wear resistance of 316L stainless steel by laser surface alloying, Surface and Coatings Technology 80 (1996) 207-210.
  • [5] J. Dutta Majumdar, I. Manna, Laser surface alloying of AISI304-stainless steel with molybdenum for improvement in pitting and erosion-corrosion resistance, Materials Science and Engineering A 267 (1999) 50-59.
  • [6] C.T. Kwok, F.T. Cheng, H.C. Man, Laser surface modification of UNS S31603 stainless steel, Part I, Microstructures and corrosion characteristics, Materials Science and Engineering A 290 (2000) 55-73.
  • [7] S. Zherebtsov, K. Meakawa, T. Hayashi, M. Futakawa, Laser surface alloying of SUS316 stainless steel with Al-Si, JSME International Journal A 48/4 (2005) 292-298.
  • [8] W.-T. Tsai, T.-H. Lai, J.-T. Lee, Laser surface alloying of stainless steel with silicon nitride. Materials Science Engineering A 183 (1994) 239-245.
  • [9] Ch.-K. Sha, H.-L. Tsai, Hardfacing characteristics of S42000 stainless steel powder with added silicon nitride using a CO2 laser, Materials Characterization 52 (2004) 341-348.
  • [10] A. Lisiecki, A. Klimpel, Diode laser surface modification of Ti6Al4V alloy to improve erosion wear resistance, Archives of Materials Science and Engineering 32/1 (2008) 5-12.
  • [11] L.A. Dobrzański, S. Malara, T. Tański, Laser surface treatment of magnesium alloys with silicon carbide powder, Archives of Materials Science and Engineering 35/1 (2009) 54-60.
  • [12] L.A. Dobrzański, M. Bonek, E. Hajduczek, K. Labisz, M. Piec, E. Jonda, A. Polok, Structure and properties of laser alloyed gradient surface layers of the hot-work tool steel, Journal of Achievements in Materials and Manufacturing Engineering 31/2 (2008) 148-169.
  • [13] F. Yongquing, A.W. Batchelor, Laser alloying of aluminum alloy AA6061 with Ni and Cr, Part II, The effect of laser alloying on the fretting wear resistance, Surface and Coatings Technology 102 (2003) 468-471.
  • [14] A. Dudek, Z. Nitkiewicz, A. Górka, Structure and properties of laser alloyed surface layer, Journal of Achievements in Materials and Manufacturing Engineering 27/1 (2008) 75-78.
  • [15] S.-Z. Leea, K.-H. Zum Gahra, Laser-induced surface alloying of Al2O3 ceramics with ZrO2-TiO2 powders, Ceramics International 20/3 (1994) 147-157.
  • [16] A. Baron, W. Simka, G. Nawrat, D. Szewieczek, Electropolishing and chemical passivation of austenitic steel, Journal of Achievements in Materials and Manufacturing Engineering 31/2 (2008) 197-202.
  • [17] G. Niewielski, K. Radwański, D. Kuc, The impact of deformation on structural changes of the duplex steel, Journal of Achievements in Materials and Manufacturing Engineering 23/1 (2007) 31-34.
  • [18] W. Ozgowicz, A. Kurc, Structure and properties of forming austenitic X5CrNi18-9 stainless steel in a cold working, Journal of Achievements in Materials and Manufacturing Engineering 33/1 (2009) 19-26.
  • [19] L.A. Dobrzański, A. Zarychta, M. Ligarski, Phase transfor-mations during heat treatment of W-Mo-V 11-2-2 type high-speed steels with increased contents of Si and Nb or Ti, Journal of Materials Processing Technology 53/1-2 (1995) 109-120.
  • [20] L.A. Dobrzański, A. Drygała, K. Gołombek, P. Panek, E. Bielańska, P. Zięba, Laser surface treatment of multicrystalline silicon for enhancing optical properties, Journal of Materials Processing Technology 201/1-3 (2008) 291-296.
  • [21] L.A. Dobrzański, M. Bonek, A. Klimpel, A. Lisiecki, Surface-Layer’s Structure of X40CrMoV5-1 Steel Remelted and/or WC Alloyed with HPDL Laser, Materials Science Forum 437-438 (2003) 69-72
  • [22] Z. Brytan, L.A. Dobrzański, M. Actis Grande, M. Rosso, Characteristics of vacuum sintered stainless steels, Journal of Achievements in Materials and Manufacturing Engineering 33/2 (2009) 126-134.
  • [23] Z. Brytan, M. Actis Grande, M. Rosso, R. Bidulský, L.A. Dobrzański, Stainless steels sintered form the mixture of prealloyed stainless steel and alloying element powders, Materials Science Forum 672 (2011) 165-170.
  • [24] Z. Brytan, L.A. Dobrzański, M. Actis Grande, M. Rosso, The influence of sintering time on the properties of PM duplex stainless steel, Journal of Achievements in Materials and Manufacturing Engineering 37/2 (2009) 387-396.
  • [25] Z. Brytan, M. Bonek, L.A. Dobrzański, D. Ugues, M. Actis Grande, The laser surface remelting of austenitic stainless steel, Materials Science Forum 654-656 (2010) 2511-2514.
  • [26] Z. Brytan, M. Bonek, L.A. Dobrzański, W. Pakieła, Surface Layer Properties of Sintered Ferritic Stainless Steel Remelted and Alloyed with FeNi and Ni by HPDL Laser, Advanced Materials Research 291-294 (2011) 1425-1428.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-article-BSL8-0045-0020
JavaScript jest wyłączony w Twojej przeglądarce internetowej. Włącz go, a następnie odśwież stronę, aby móc w pełni z niej korzystać.