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Models of the fracture harmonic vibration of the multi-layered composites

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Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
Advanced mechanical and structural applications require accurate assessment of the damage state of materials during the fabrications as well as during the service. Due to the complex nature of the internal structure of the material, composites including the layered composite often fail in a variety of modes. The failure modes very often are influenced by the local material properties that may develop in time under heat and pressure, local defect distribution, process induced residual stress, and other factors. Consider a laminate composite in plane stress conditions, multi-layered beam bonded to planes having shear modulus Gi and Poisson's ratio vI respectively, subjected to bending. The behaviour of the cracks depends on the cracks configuration, size, orientation, material properties, and loading characteristic. The fracture mechanics problem will be attacked using the photoelastic visualization of the fracture events in a model structure. The proposed experimental method will developed fracture mechanics tools for a layered composite fracture problem.
Rocznik
Strony
15--22
Opis fizyczny
Bibliogr. 12 poz.
Twórcy
autor
  • Division of Strength of Materials and Structures, Technical University of Lodz, Stefanowskiego 1/15, 90-924 Lodz, Poland
Bibliografia
  • [1] Cherepanov, GP: Mechanics of Brittle Fracture, (1979), Mc Graw-Hill, New York.
  • [2] Cook, TS and Erdogan, F: Stresses in bonded materials with a crack perpendicular to the interface, Int. Journ. of Eng. Science, (1972), 10, 677-697.
  • [3] Frocht, MM: Photoelasticity, (1960), John Wiley, New York.
  • [4] Gupta, AG: Layered composite with a broken laminate, International Journal of Solids and Structures, 36, (1973), 1845-1864.
  • [5] Hilton, PD and Sin GC: A laminate composite with a crack normal to interfaces, International Journal of Solids and Structures, 7, (1971), 913.
  • [G] Neimitz, A: Mechanics of fracture, (1998), PWN, Warsaw, (in Polish).
  • [7] Sanford, RJ and Dally, J: A General Method For Determining Mixed-Mode Stress Intensity Factors From Isochromatic Fringe Patterns, Eng. Fract. Mech., (1979), 2, 621-633.
  • [8] Stupnicki, J: Trends of experimental mechanics, Journ. of Theoretical and Applied Mechanics, (1965), 2, 34, 207-233.
  • [9] Stupnicki, J, Olzak, M, Wójcik, R: Numerical analysis of surface crack propagation in rail-wheel contact zone, Rail Quality and Maintenance for Modem Railway operation, (1991), Kluwer Academic, The Netherlands, 385-395.
  • [10] Szczepiński, W: A photoelastic method for determining stresses by means isochromes only, Archives of Applied Mechanics, (1961), 5, 13.
  • [11] ANSYS User's Guide, 5.4, 5.6, Ansys, Inc., (1999), Huston, USA.
  • [12] Zienkiewicz, OC: The Finite Element Method in Engineering Science, (1971), Mc Craw-Hill, London, New York.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-article-LOD9-0022-0039
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