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Bainitic steels as alternative for conventional carbon - manganese steels in manufacturing of fasteners - simulation of production chain

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443--462
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Bibliogr. 42 poz., rys.
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Bibliografia
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  • Buchmayr, B., Samoilov, A., Lachmann, L., Aigmuller, G., 1993, A fundamental TMCP rolling model for the prediction and optimisation of microstructure and properties of HSLA steels, Proc. Conf. Modelling of Metal Rolling Processes, London, 134-148.
  • Davenport, S.B., Silk, N.J., Sparks, C.N., Sellars, CM., 1999, Development of constitutive equations for the modelling of hot rolling, Materials Science and Technology, 16, 1-8.
  • Donnay, B., Herman, J.C., Leroy, V., Lottcr, U., Grossterlinden, R., Pircher, H., 1996, Microstructure colution of C-Mn steels in the hot deformation process: the STRIPCAM model, Proc. 2nd Conf. Modelling of Metal Rolling Pro-cesses, eds. Beynon, J.H., Ingham, P., Teichert, Ff., Wat-erson, K., London, 23-35.
  • Forestier, R., Massoni, E., Chastel, Y., 2002, Estimation of constitutive parameters using an inverse method coupled to a 3D finite clement software, Journal of Materials Processing Technology, 125, 594-601.
  • Głowacki, M., Kędzierski, Z., Kusiak, H., Madej, W., Pietrzyk, M., 1992, Simulation of metal flow, heat transfer and structure evolution during hot rolling in square-oval-square series, Journal of Materials Processing Technol¬ogy, 34, 509-516.
  • Grossterlinden, R., Kawalla, R., Lotter, U., Pircher, H., 1994, FEM Calculations and Simulation of Evolution of Mi-crostructure during the Hot Rolling of Flat Products -Part I and II, Metallurgy and Foundry Engineering, 20, 319-341.
  • Hadasik, E., Kuziak, R., Kawalla, R., Adamczyk, M., Pietrzyk, M., 2006, Rhcological model for simulation of hot roll¬ing of new generation steel strips for automotive indus¬try, steel research international, 11, 927-933.
  • Hansel, A., Spittel, T., 1979, Kraft- und Arbeitsbedarf Bildsa-mer Formgebungs-verfahren, VEB Deutscher Verlag fur Grundstoffindustrie, Leipzig.
  • Hoff, N.J., 1954, Approximate Analysis of Structures in the Presence of Moderately Large Steps Deformation, Quart., Appl. Mech., 2, 49.
  • Karjalainen, L.P., Perttu, J., 1996, Characteristics of static and metadynamic recrystallization strain accumulation in hot deformed austenite as revealed by stress relaxation method, ISIJInternational, 36, 729-736.
  • Koistinen, D.P., Marburger, R.E., 1959, A general equation prescribing the extent of the austenite-martensite trans-formation in pure iron-carbon alloys and plain carbon steels, Acta Metallurgica, 1, 59-60.
  • Kondek, T., Kuziak, R., Pietrzyk, M., 2003, Finite Element Modelling of Deformation of Steels in Two-Phase Range of Temperatures, Proc. COMPLAS VII, eds, Owen, D.R.J., Onate, E., Suarcz, B., CIMNE, Barcelona, CD ROM.
  • Kowalski, B., Sellars, CM., Pietrzyk, M., 2000, Development of a computer code for the interpretation of results of hot plane strain compression tests, ISIJ International, 40, 1230-1236.
  • Kuziak, R., Głowacki, M., Pietrzyk, M., 1996, Modelling of plastic flow, heat transfer and microstructure evolution during rolling of cutectoid steel rods, Journal of Materi¬als Processing Technology, 60, 589-596.
  • Kuziak, R., Pidvysots'kyy, V., Drozdowski, K., 2009, Validation of the thermo-mechanical-microstructural model of hot forging process, Computer Methods in Materials Science, 9, 424-434.
  • Kuziak, R., Skóra, M., Węglarczyk, S., Packo, M., Pietrzyk, M., 2011a, Computer aided design of the manufacturing chain for fasteners, Computer Methods in Materials Sci¬ence, 11,243-250.
  • Kuziak, R., Milcnin, A., Packo, M., Pietrzyk, M., 2011b, Fasteners of bainitic steels manufactured by drawing and forging, Hutnik-Wiadomości-Hutnicze, 78, 74-77.
  • Lenard, J.G., Pietrzyk, M., Cser, L., 1999, Mathematical and physical simulation of the properties of hot rolled prod¬ucts, Elsevier, Amsterdam.
  • Madej, Ł., Szeliga, D., Kuziak, R., Pietrzyk, M., 2007, Physical and numerical modelling of forging accounting for exploitation properties of products, Computer Methods in Materials Science, 7, 397-405.
  • Madej, Ł., Węglarczyk, S., Pietrzyk, M., 2009a, Influence of technological parameters of manufacturing chain for steel bolts on die wear, Hutnik-Wiadomości Hutnicze, 76, 620-622.
  • Madej, Ł., Węglarczyk, S., Pietrzyk, M., 2009b, Simulation of drawing as an important stage in the steel bolt manufac-turing chain, Hutnik-Wiadomości Hutnicze, 76, 71-73.
  • Majta, J., Munther, P., Lenard, J.G., Kędzierski, Z., Pietrzyk, M., 1996, Finite-element technique applied to the simulation of thermal, mechanical and microstructural evolution during rolling of high Nb steel, Proc. 5th 1CTP, Co-lumbus, I, 19-22.
  • Norton, F.H., 1929, Creep of steel at high temperature, McGraw Hill, New York.
  • Pietrzyk, M., 1990, Finite element based model of structure development in the hot rolling process, Steel research, 61,603-607.
  • Pietrzyk, M., Kędzierski, Z., Kusiak, H., Madej, W., Lenard, J.G., 1993, Evolution of the microstructure in the hot rolling process, Steel Research, 64, 549-556.
  • Pietrzyk, M., Roucoules, C, Hodgson, P.D., 1995, Modelling the thermomechanical and microstructural evolution during rolling of a Nb HSLA steel, ISIJ International, 35,531-541.
  • Pietrzyk, M., Kuziak, R., 1999, Coupling the thermal-mechanical finite-element approach with phase trans¬formation model for low carbon steels, Proc. 2nd ESAFORM Conf. on Material Forming, ed., Covas J., Guimaraes, 525-528.
  • Pietrzyk, M., Kuziak, R., Kondek, T., 2003, Physical and nu-merical modelling of plastic deformation of steels in two-phase region, Proc. 45th MWSP Conf, Chicago, 209-220.
  • Pietrzyk, M., Madej, Ł., Węglarczyk, S., 2008, Tool for optimal design of manufacturing chain based on metal forming, CIRP Annals, 57, 309-312.
  • Scheil, E., 1935, Anlaufzeit der Austenitumwandlung, Archiv, für Eissenhüttenwesen, 12, 565-567. Sellars, CM., 1979, Physical metallurgy of hot working, in: Hot working and forming processes, eds. Sellars, CM., Da-vies, G.J., The Metals Soc, London, 3-15.
  • Sellars, CM., McTeggart, G., 1972, Hot workability, Int. Met. Rev., 17, 1-24.
  • Sellars, CM., Whiteman, J.A., 1979, Recrystallization and grain growth in hot rolling, Met. Sci. 13, 187-194.
  • Simmons, J.P., Shen, C, Wang, Y., 2000, Phase field modeling of simultaneous nucleation and growth by explicitly in¬corporating nucleation events, Scripta Materialia, 43, 935-942.
  • Suehiro, M., Senuma, T., Yada, H., Sato, K., 1992, Application of mathematical model for predicting microstructural evolution to high carbon steels, ISIJ International, 32, 433-439.
  • Szeliga, D., Gawad, J., Pietrzyk, M., 2006, Inverse analysis for identification of rheological and friction models in metal forming, Computer Methods in Applied Mechanics and Engineering, 195, 6778-6798.
  • Umemoto, M., Hiramatsu, A., Moriya, A., Watanabe, T., Nanba, S., Nakajima, N., Anan, G, Higo, Y., 1992, Computer modelling of .phase transformation from work-hardened austenite, ISIJ International, 32, 306-315.
  • Waengler, S., Kawalla, R., Kuziak, R., 2008, High strength-high toughness bainitic steels alloyed with niobium for long products, steel research international, 79, spec. ed. Metal Forming Conf, 2, 273-279.
  • Zajac, S., Schwinn, V., Tacke, K.H., 2005, Characterization and quantification of complex bainitic microstructures in high and ultra-high strength linepipe steels, Materials Science Forum, 500-501, 387-394.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-article-BUJ5-0051-0014
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