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Application of FEM for solving various issues in material engineering

Wybrane pełne teksty z tego czasopisma
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Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
Purpose: The aim of this work is to present selected problems concerning the application of Finite Element Method in materials engineering on the example of chosen program which makes the most of this method to simulation. Design/methodology/approach: Application of Finite Element Method was discussed and essential advantages resulting from application of it are pointed. Findings: Description of the importance and the utility of FEM during solving of problems dealing with very complicated geometry complex state of loadings, various boundary conditions and/or various materials. Research limitations/implications: The method must be applied very carefully because its results do not refer to real system but only to the model one. The obtained results of FEM calculations can be used to solve many problems at the early step of designing with success. Originality/value: The application of FEM method during working out the internal prosthesis of oesophagus which will enable help people suffering from oesophageal cancer.
Rocznik
Strony
134--141
Opis fizyczny
Bibliogr. 29 poz., rys., tabl.
Twórcy
autor
autor
autor
  • Institute of Engineering Materials and Biomaterials, Silesian University of Technology, ul. Konarskiego 18a, 44-100 Gliwice, Poland, agnieszka.j.nowak@polsl.pl
Bibliografia
  • [1]T. Antosik, J. Awrejcewicz, Numerical and experimental analysis of biomechanics of three lumbar vertebrae, Journal of Theoretical and Applied Mechanics 3 (1999) 413-434.
  • [2]K.J. Bathe, Finite element procedures in engineering analisis, Publication of Hall, New Jersey, 1982.
  • [3]P. Borkowski, K. Kędzior, G. Krzesiński, K.R. Skalski, P. Wymysłowski, T. Zagrajek, Numerical investigation of a new type of artificial lumbar disc, Journal of Theoretical and Applied Mechanics 42/1 (2004) 253-268.
  • [4]T. Chmielewski, H. Nowak, Computer-aided CAD CAM, WNT - Warsaw, 1996.
  • [5]D. Chua, et all, Finite elements simulation of stent expansion, Journal of Materials Processing Technology 120 (2002) 335-340.
  • [6]L.A. Dobrzański, A. Pusz, A.J. Nowak, M. Górniak, Application of computer techniques in modelling of biofunctional implants, Journal of Achievements in Materials and Manufacturing Engineering (in print).
  • [7]L.A. Dobrzański, A. Pusz, A.J. Nowak, M. Górniak, Constructional model of internal oesophageal prosthesis, Archives of Materials Science and Engineering 42/2 (2010) 69-76.
  • [8]L.A. Dobrzański, A. Pusz, A.J. Nowak, The effect of micropores on output properties of laminates materials with assumed medical implantation, Journal of Achievements in Materiale and Manufacturing Engineering 37/2 (2009) 408-415.
  • [9]L.A. Dobrzański, A. Pusz, A.J. Nowak, The elimination of micropores and surface defect in aramid-silicon laminated materials with special properties, Journal of Achievements in Materials and Manufacturing Engineering, 35/2 (2010) 121-128.
  • [10]L.A. Dobrzański, A. Śliwa, T. Tański, Numerical simulation model for the determination of hardness for casting the magnesium alloys MCMgAl6Zn1, Archives of Materials Science 29/3 (2008) 118-124.
  • [11]A. Grabarski, I. Wróbel, Introduction to FEM, Publication of Warsaw University of Technology, Warsaw, 2008 (in Polish).
  • [12]A. Kocałda, O. Czyżewski, Numerical analysis of abrasive wear of forging dies, Numiform 104-106 (2001).
  • [13]M. Kopernik, J. Nowak, Physical and numerical modeling of functional trileaflet aortic valves, Mechanic 11 (2008) 958-963.
  • [14]K. Król, Finite Element Method in the design calculations, Publication of Radom University of Technology, Radom, 2007 (in Polish).
  • [15]M.R. Labrosse, C.J. Beller, F. Robicsek, M.J. Thubrikar, Geometric modeling of functional trileaflet aortic valves. Development and clinical applications, Journal of Biomechanics 39 (2006) 2665-2672.
  • [16]S. Łączka, Introduction to the ANSYS Finite element system,Cracow Technical University Press, 1999.
  • [17]P. Ladeveze, E. Le Dantec, Damage modelling of the elementary ply for laminated composites, Composites Science and Technology 43 (1992) 257-267.
  • [18]J. Marciniak, Biomaterials, Publication of Silesian University of Technology, Gliwice, 2002 (in Polish).
  • [19]J. Marciniak, Engineering of Biomaterials, Publication of J. Skalimierski Company, Gliwice, 2009 (in Polish).
  • [20]F. Migliavacca, et all., Mechanical behavior of coronery stents investigated through the fine element method, Journal of Biomechanics 35 (2002) 803-811.
  • [21] T. Pedersen, Numerical modelling of cyclic plasticity and fatigue damage in cold-forging tools, International Journal of Mechanical Sciences 42 (2000) 799-818.
  • [22] G. Rakowski, Z. Kacprzyk, FEM in mechanical design, Publication of Warsaw University of Technology, Warsaw, 2005 (in Polish).
  • [23] www.ansys.com
  • [24] T. Rojek, J.J. Telega, Numerical simulation of bone-implant systems using a more realistic model of the contact interfaces with adhesion, Journal of Theoretical and Applied Mechanics 3 (1999) 659-686.
  • [25] A. Śliwa, M. 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.
  • [26] A. Śliwa, J. Mikuła, K. Głombek, L.A. Dobrzański, FEM modelling of internal stresses in PVD coated FGM”, Journal of Achievements in Materials and Manufacturing Engineering 36/1 (2009) 71-78.
  • [27] J. Stadnicki, Z. Tokarz, Analysis of deflection of composite aircraft wing, Bulletin of the Military Technical Academy 57/2 (2008) 45-54.
  • [28] Y. Takano et all., Optimizing stent expansion with new stent delivery system, Journal of the American College of Cardiology 38 (2001) 456-462.
  • [29] F.D. Whitcher, Symulation of in vivo loadin conditions of nitinol waskular stent structures, Computers and Structures, 64 (1997) 1007-1011.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-article-BOS2-0023-0019
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