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Purpose: The aim of this paper was to check by three dimensional Finite Element Method simulations the possibility of existence the non-uniform deformation hypothesis as a cause of Ductility Minimum Temperature phenomenon (DMT) in CuNi25 alloy. The necessary information and mechanical properties have been collected during elevated temperature tensile tests and other research and analysis of microstructure changes in material after deformation at the range of DMT existence. Experimental results were compared with three dimensional finite element method (FEM) simulation. Design/methodology/approach: Numerous techniques were used to characterize properties of material: high temperature tensile tests, finite element method, transmission electron microscopy, scanning electron microscopy. Findings: During the experimental studies the course of elongation curves has been determined. The stress in material after deformation at elevated temperature was analysed by FEM simulation. It has been confirmed the possibility of existence the inhomogeneous deformation hypothesis as a cause of DMT phenomenon. Practical implications: Understanding of material properties during high temperature deformation leads to selection of the appropriate production parameters and reductions of cost, helps to avoid destruction of material during production or operating. FEM simulations can help to reduce the costs of multiple destructive tests to determine material properties. Originality/value: FEM simulation and investigations of this CuNi25 alloy complete knowledge about mechanical properties of this material and help us develop correct parameters for more effective technologies for material production and exploitation.
Wydawca
Rocznik
Tom
Strony
274--280
Opis fizyczny
Bibliogr. 24 poz., rys., tab.
Twórcy
autor
- Institute of Engineering Materials and Biomaterials, Silesian University of Technology, ul. Konarskiego 18a, 44-100 Gliwice, Poland
autor
- Institute of Engineering Materials and Biomaterials, Silesian University of Technology, ul. Konarskiego 18a, 44-100 Gliwice, Poland
autor
- Institute of Engineering Materials and Biomaterials, Silesian University of Technology, ul. Konarskiego 18a, 44-100 Gliwice, Poland
autor
- Department of Theoretical and Applied Mechanics, Silesian University of Technology, ul. Konarskiego 18a, 44-100 Gliwice, Poland
autor
- Department of Theoretical and Applied Mechanics, Silesian University of Technology, ul. Konarskiego 18a, 44-100 Gliwice, Poland
Bibliografia
- [1] R. Nowosielski, Ductility minimum temperature in selected mono-phase, binary brasses, Journal of Materials Processing Technology 109 (2001) 142-153.
- [2] R. Nowosielski: Explication of Minimum Plasticity Effect of Mono-Phase Brasses, Mechanic 135 (2000) (in Polish).
- [3] H.J. McQueen, Failure at elevated temperatures, Influence of Dynamic Restoration, Materials Science Forum 604-605 (2008) 285.
- [4] M. Vedani, D. Ripamonti, A. Mannucci, D. Dellasega, Hot Ductility of Microalloyed Steels, La Metallurgia Italiana, (2008) 19-24.
- [5] J. Kömi: Hot ductility of austenitic and duplex stainless steels under hot rolling conditions, Department of Mechanical Engineering University of Oulu, Oulu, 2001.
- [6] A. Lis, J. Lis, C. Kolan , M. Knapiński, Effect of strain rate on hot ductility of C-Mn-B steel, Journal of Achievements in Materials and Manufacturing Engineering 41/1-2 (2010) 26-33.
- [7] W. Ozgowicz, E. Kalinowska-Ozgowicz, B. Grzegorczyk, The influence of the temperature of tensile test on the structure and plastic properties of copper alloy type CuCr1Zr, Journal of Achievements in Materials and Manufacturing Engineering 29/2 (2008) 123-136.
- [8] S.A. Gavin, J. Billingham, J.P. Chubb, and P. Hancock, Effect of trace impurities on hot ductility of as-cast cupronickel alloys, Metals Technology 5/11 (1978) 397-401.
- [9] P. Sakiewicz, R. Nowosielski, S. Griner, R. Babilas, Changes of microstructure in CuNi25 alloy deformed at elevated temperature, Archives of Material Science and Engineering 50 (2011) 98-109.
- [10] R. Nowosielski , P. Sakiewicz, P. Gramatyka: The effect of ductility minimum temperature in CuNi25 alloy, Journal of Materials Processing Technology 162-163 (2005) 379-384.
- [11] W. Ozgowicz, The relationship between hot ductility and intergranular fracture in a CuSn6P alloy at elevated temperatures, Journal of Materials Processing Technology (2005) 392-401.
- [12] J. Lis, A.K. Lis, C. Kolan, Processing and properties of C-Mn steel with dual-phase microstructure Journal of Materials Processing Technology (2005) 350-354.
- [13] M.W. Grabski, Mechanical-Properties of Internal Interfacest, Journal de Physique I 46 (1985) 567.
- [14] K. Konopka, J.W. Wyrzykowski, The effect of the twin boundaries on the yield stress of a material, Journal of Materials Processing Technology 64/1-3 (1997) 223-230.
- [15] T. Watanabe, S. Tsurekawa, Toughening of brittle materials by grain boundary engineering, Materials Science and Engineering A 387-389 (2004) 447-455.
- [16] A. Zeren, M.Zeren: Stress relaxation properties of prestressed steel wires, Journal of Materials Processing Technology 141 (2003) 86-92.
- [17] L. Xaio, J.L. Bai, Stress relaxation properties and microscopic deformation structure of H68 and QSn6.5- 0.1 copper alloys at 353 K, Materials Science and Engineering A244 (1998) 250-256.
- [18] P. Virtanen, T. Tiainen. Stress relaxation behavior in bending of high strength copper alloys in the Cu-Ni-Sn system, Materials Science and Engineering (1997) 407-410
- [19] W. Bruckner, S. Baunack, Stress and oxidation in CuNi thin films. Thin Solid Films 355-356 (1999) 316-321.
- [20] W. Bruckner, V. Weihnacht, Stress relaxation in CuNi thin films, Journal of Applied Physics 85 (1999) 3602.
- [21] B. Druyanov, I. Roman, A continuum model for grain junctions in polycrystalline aggregate, Mechanism of Materials 30 (1998) 31-40.
- [22] G. Palumbo, D.M. Doyle, A.M. El-Sherik, U. Erb, K. Aust, Intercrystalline hydrogen transport in nanocrystalline nickel, Scripta Metallurgica et Materialia 25/3 (1991) 679-684.
- [23] W. Ozgowicz, B. Grzegorczyk, The influence of the temperature of plastic deformation on the structure and mechanical properties of copper alloys CuCo2Be and CuCo1Ni1Be, Archives of Materials Science and Engineering 39/1 (2009) 5-12.
- [24] V. Laporte, A. Mortensen: Intermediate temperature embrittlement of copper alloys International Materials Reviews 54/2 (2009) 94-116.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-f9b4786c-a648-400e-9840-c8d469e2643d