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Carbon effect in the sintered high-speed steels matrix composites - HSSMC

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Wybrane pełne teksty z tego czasopisma
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Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
Goal: The goal of this monograph is development of the tool materials being the outcome of the concept of merging the surface engineering as the domain of knowledge with technology which is the powder metallurgy. The result are the fabricated materials with the gradient, high-speed steels matrix composites (HSSMC) surface layers on steel substrate, combining the mutually exclusive mechanical properties like the high surface hardness and ductility of a tool. Project/methodology/approach: Modern powder forming technologies were used for fabrication of the developed tool materials, e.g., powder injection moulding, pressureless forming, and classic compacting. Sintering was carried out in the vacuum or protective atmosphere conditions, which makes direct material hardening possible from the sintering temperature. Testing of mechanical properties encompassed hardness testing, bending strength testing, and determining the abrasion wear resistance. Detailed structural examinations were carried out to determine the effect of temperature and atmosphere during sintering on type and size of the carbide- and carbonitride precipitations. Moreover, retained austenite portion was determined after hardening and tempering. Achievements: The original achievement is development of the method of the polymer-powder slurry moulding for fabrication of coatings which, because of the binding agent degradation and sintering, form the homogeneous or gradient HSSMC surface layers on the steel substrate - completed or fabricated in the same technological process. Tool materials fabricated with this method are characteristic of high ductility of the steel core and high hardness of the surface layer. Limitations of research/applications: The assumption of the powder injection moulding technique is forming of the small elements with complex shapes and, therefore, this technology is not designed for fabrication of tools with the big overall dimensions. In case of the pressureless forming of the surface layers from HSSMC on the steel core or in case of regeneration of the tool worn out, the limitations come only from the heating device chamber size and the necessity to heat up the entire treated element. Practical applications: It is anticipated that the worked out and fabricated tool materials of the new generation will fill a gap in respect of the mechanical properties between the relatively ductile high-speed steels and the brittle sintered carbides. The newly developed method may be used in the mass- or piece production conditions making, e.g., regeneration possible of the costly tools’ surfaces. Originality/value: Employment of the modern powders forming techniques, and especially of the pressureless forming and sintering in the flowing nitrogen-hydrogen mixture atmosphere, makes it possible to fabricate tool materials with the layered or gradient structure with the multidirectional growing portion of the hard carbide- or carbonitride phases.
Rocznik
Strony
90--107
Opis fizyczny
Bibliogr. 73 poz., rys., tab.
Twórcy
autor
  • Silesian University of Technology, ul. Konarskiego 18a, 44-100 Gliwice, Poland
Bibliografia
  • [1] G. Matula, L.A. Dobrzański, A. Várez, B. Levenfeld, Development of a feedstock formulation based on PP for MIM of carbides reinforced M2, Archives of Materials Science and Engineering 27/2 (2008) 195-198.
  • [2] K. Gołombek, G. Matula, J. Mikuła, L.A. Dobrzański, Influence of binder composition on the properties of feedstock for cemented carbides, Archives of Materials Science and Engineering 51/2 (2011) 116-124.
  • [3] L.A. Dobrzański, G. Matula, G. Herranz, A. Várez, B. Levenfeld, J.M. Torralba, Metal injection moulding of HS12-1-5-5 high-speed steel using a PW-HDPE based binder, Journal of Materials Processing Technology 175/1-3 (2006) 173-178.
  • [4] G. Matula, L.A. Dobrzański, G. Herranz, A. Várez, B. Levenfeld, J.M. Torralba, Structure and properties of HS6-5-2 type HSS manufactured by different P/M methods, Journal of Achievements in Materials and Manufacturing Engineering 24/2 (2007) 71-74.
  • [5] G. Matula, Influence of binder composition on structure and properties of carbide alloyed composite manufactured with the PIM method, Journal of Achievements in Materials and Manufacturing Engineering 30/2 (2008) 193-196.
  • [6] A. Śliwa, G. Matula, L.A. Dobrzański, Finite Element Method application for determining feedstock distribution during powder injection moulding, Journal of Achievements in Materials and Manufacturing Engineering 37/2 (2009) 584-591.
  • [7] G. Matula, Carbide alloyed composite manufactured with the PIM method, Archives of Materials Science and Engineering 43/2 (2010) 117-124.
  • [8] G. Herranz, G.P. Rodriguez, R. Alonso, G. Matula, Sintering process of M2 HSS feedstock reinforced with carbides, Powder Injection Moulding International 4/2 (2010) 60-65.
  • [9] G. Matula, Study on steel matrix composites with (Ti,Al)N gradient PVD coatings, Journal of Achievements in Materials and Manufacturing Engineering 34/1 (2009) 79-86.
  • [10] G. Matula, L.A. Dobrzański, G. Herranz, A. Várez, B. Levenfeld, J.M. Torralba, Influence of Binders on the Structure and Properties of High Speed-Steel HS6-5-2 Type Fabricated Using Pressureless Forming and PIM Methods, Materials Science Forum 534-536 (2007) 693-696.
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  • [12] G. Matula, Application of polymer-powder slurry for fabrication of abrasion resistant coatings on tool materials, Archives of Materials Science and Engineering 48/1 (2011) 49-55.
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  • [19] G. Matula, L.A. Dobrzański, B. Dołżańska, Influence of cobalt portion on structure and properties of FGHM, International Journal of Materials and Product Technology 33/3 (2008) 280-290.
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  • [22] L.A. Dobrzański, B. Dołżańska, K. Gołombek, G. Matula, Characteristics of structure and properties of a sintered graded tool materials with cobalt matrix, Archives of Materials Science and Engineering 47/2 (2011) 69-76.
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  • [28] L.A. Dobrzański, G. Matula, Structure and properties of injection molded sintered high speed steel HS6-5-2, Proceedings of the 3rd Scientific Conference “Materials, Mechanical and Manufacturing Engineering” M3E'2005, Gliwice -Wisła, 2005, 203-210.
  • [29] G. Matula, L.A. Dobrzański, G. Herranz, A. Várez, B. Levenfeld, J.M. Torralba, Comparison of structure and mechanical properties of HS12-1-5-5 type high-speed steels produced by PIM method and heat treated, Proceedings of 7th International Tooling Conference “Tooling Materials and their applications from research to market”, Turin, 2006, 417-422.
  • [30] G. Matula, L.A. Dobrzański, G. Herranz, A. Várez, B. Levenfeld, J.M. Torralba, Influence of Atmosphere and Temperature of Debinding on Microstructure of HS6-5-2 HSS Parts Produced by Powder Injection Moulding, Processing and Fabrication of Advanced Materials XIII, Vol. II, Singapore, 2005, 752-761.
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Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-4e5e8441-e365-41e6-abcd-52e5a4997190
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