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Some mechanical and magnetic properties of cold rolled X5CrNi18-8 stainless steel

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Języki publikacji
EN
Abstrakty
EN
Purpose: The paper analyzes the influence of the degree of cold deformation on the structure forming and changes of mechanical and magnetic properties of cold-rolled sheet on austenitic X5CrNi18-8 stainless steel. Design/methodology/approach: The investigations included observations of the structure on a light microscope, researches of mechanical properties in a static tensile test, microhardness measurements made by Vickers's method and magnetic behaviors determine by used normalized non-destructive testing methods (NDT). The analysis of the phase composition was carried out on the basis of X-ray researches. In the qualitative X-ray analysis the comparative method was applied. Whereas X-ray quantitative phase analysis was carried out by the Averbach Cohen method. Research limitations/implications: The X-ray phase analysis in particular permitted to disclose and identify the main phases on the structure of the investigated steel after its deformation within the range 10%-70%. Moreover results of the X-ray quantitative analysis allowed to determine the proportional part of martensite phases α' in the structure of investigated steel in the examined range of cold plastic deformation. Practical implications: The analysis of the obtained results permits to state that the degree of deformation has a significant influence on the structure, mechanical and magnetic properties of the investigated steel. Besides, it was found that the plastic deformation in cold rolling process of metastable austenitic steel type X5CrNi18-8 induces in its structure a phase transformation paramagnetic austenite into ferromagnetic martensite. Originality/value: plastic deformation in cold rolling process in the austenitic X5CrNi18-8 stainless steel a good correlation was found between changes of the structure and the effects of investigations of the mechanical properties, connected with martensitic α' phases forming. Existing this relation is of essential practical importance for the technology of sheet-metal rolling of austenitic steel.
Rocznik
Strony
89--94
Opis fizyczny
Bibliogr. 22 poz.
Twórcy
autor
autor
  • Division of Constructional and Special Materials, Institute of Engineering Materials and Biomaterials, Silesian University of Technology, ul. Konarskiego 18a, 44-100 Gliwice, Poland, agnieszka.kurc @polsl.pl
Bibliografia
  • [1] V. Tsakiris, D. Edmonds, Martensite and deformation twinning in austenitic steels, Materials Science and Engineering A 273-275 (1999) 430-436.
  • [2] H. Shin, T. Ha, Y. Chang, Kinetics of deformation induced martensitic transformation in a 304 stainless steel, Scripta Materialia 45 (2001) 823-829.
  • [3] A. Lebedev, V. Kosarchuk, Influence of phases transformations on the mechanical properties of austenitic stainless steels, International Journal of Plasticity 16/7 (2000) 749-767.
  • [4] V. Toshkov, R. Russev, T. Madjarov, E. Russeva, On low temperature ion nitriding of austenitic stainless steel AISI 316, Journal of Achievements in Materials and Manufacturing Engineering 25/1 (2007) 71-74.
  • [5] R. Reed, The spontaneous martensitic transformations in 18%Cr, 8%Ni steels, Acta Metallurgica 10 (1962) 865-877.
  • [6] S. Tavares, D. Gunderov, V. Stolyarov, Phase transformation induced by severe plastic deformation in the AISI 304L stainless steel, Materials Science and Engineering 358A (2003) 32-36.
  • [7] A. De, D. Murdock, M. Mataya, Quantitative measurement of deformation-induced martensite in 304 stainless steel by X-ray diffraction, Scripta Materialia 50 (2004) 1445-1449.
  • [8] D. Jandova, J. Rehor, Z. Novy, Proceedings of the 10th Scientific International Conference “Achievements in Mechanical and Materials Engineering” AMME’2001, Gliwice-Kraków-Zakopane, 2001, 243-246.
  • [9] F. Ciura, A. Kruk, G. Michta, W. Osuch, Influence of temperature and deformation degree on structure and mechanical properties during the phase transformation in Fe-30%Ni alloy, Proceedings of the 9th Scientific International Conference “Achievements in Mechanical and Materials Engineering” AMME’2000, Gliwice-Sopot-Gdańsk, 2000, 67-71 (in Polish).
  • [10] P. Mangonon, G. Thomas, The martensite phases in 304 stainless steel, Metallurgical Transactions 1 (1970) 1577-1586.
  • [11] P. Hedstrom, U. Lienert, J. Almer, Stepwise transformation behavior of the strain-induced martensitic transformation in a metastable stainless steel, Scripta Materialia 56 (2007) 213-216.
  • [12] K. Pałka, A. Weroński, K. Zalewski, Mechanical properties and corrosion resistance of burnished X5CrNi18-9 stainless steel, Journal of Achievements in Materials and Manufacturing Engineering 16 (2006) 57-62.
  • [13] M. Ahlers, The Martensitic Transformation, Revista Materialia 9/3 (2004) 169-183.
  • [14] W. Ozgowicz, E. Kalinowska-Ozgowicz, A. Kurc, Influence of plastic deformation on structure and mechanical properties of stainless steel type X5CrNi18-10, Archives of Materials Science and Engineering 32/1 (2008) 37-40.
  • [15] J. Talonen, P. Nenonen, G. Pape, H. Hanninen, Effect of Strain Rate on the Strain-Induced γ→α’, Martensite Transformation and Mechanical Properties of Austenitic Stainless Steels, Metallurgical and Materials Transactions 36A (2005) 421-432.
  • [16] J. Echigoya, T. Ueda, X. Li, H. Hatafuku, S. Takashai, Martensitic transformation due to plastic deformation and magnetic properties in SUS 304 stainless steel, Journal of Materials Processing Technology 108 (2001) 213-216.
  • [17] S. Tavares, D. Fruchart, S. Miraglia, A magnetic study of the reversion of martensite α’ in a 304 stainless steel, Journal of Alloys and Compounds 307 (2000) 311-317.
  • [18] K. Mumtaz, S. Takahasi, Magnetic measurements of martensitic transformation in austenitic stainless steel after room temperature rolling, Journal of Materials Science 39 (2004) 85-97.
  • [19] M. Milad, N. Zreiba, F. Elhalouanin, The effect of cold work on structure and properties of AISI 304 stainless steel, Journal of Materials Processing Technology 203 (2008) 80-85.
  • [20] S. Sagar, B. Kumar, G. Dobmann, D. Bhattachatya, Magnetic characterization of cold rolled and aged AISI 304 stainless steel, NDT & E International 38 (2005) 674-681.
  • [21] R. Nowosielski, R. Babilas, P. Ochin, Z. Stokłosa, Thermal and magnetic properties of selected Fe-based metallic glasses, Archives of Materials Science and Engineering 30/1 (2008) 13-16.
  • [22] B. Cullity, Elements of X-ray Diffraction, Addison-Wesley Series in Metallurgy and Materials, 1967.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-article-BSL7-0033-0038
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