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Abstract

This chapter summarizes part of the work published by J. Puig (2001) and Puig et al. (2002), whose motivation has been the solution of this complex phenomenon within the theoretical framework described in previous chapters.

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Notes

  1. 1.

    Puig, J.M. (2001). Resolución del Problema de Inestabilidad Elástica por Compresión en Materiales Compuestos con Fibras Largas. Tesis de Especialidad, Universidad Politécnica de Cataluña. Barcelona, España.

  2. 2.

    Puig J.M, Car E., Oller S. (2002). Solución numérica para el pandeo inelástico de materiales compuestos reforzados con fibras largas. Capítulo del libro: Análisis y cálculo de estructuras de materiales compuestos, − pp. 295, 320 - Ed. S. Oller. Centro Internacional de Métodos Numéricos en Ingeniería. Barcelona

  3. 3.

    Oliver, J.; Cervera, M.; Oller, S. & Lubliner, J. (1990). Isotropic damage models and smeared crack analysis of concrete. In N. Bicanic & H. Mang (eds), Computer Aided Analysis and Design of Concrete Structures; Proceedings 2nd International Conference 2: 945–958.

  4. 4.

    Oller, S. (1991). Modelización Numérica de Materiales Friccionales. Monografía No. 3, Ed. Centro Internacional de Métodos Numéricos en Ingeniería. Barcelona.

  5. 5.

    Oller, S. (2001). Fractura mecánica – Un enfoque global. CIMNE-Ediciones UPC.

  6. 6.

    Rosen, B.W. (1965). Mechanics of composite strengthening. Fibre Composite Materials.

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    Hull, D. (1987). Materiales Compuestos. Editorial Reverté, S.A., Barcelona, España.

  8. 8.

    Balacó de Morais, A. (1996). Modelling lamina longitudinal compression strength of carbon fibre composite laminates. Journal of Composite Materials 30(10): 1115–1131.

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    Balacó de Morais, A. (2000). Prediction of the layer longitudinal compression strength. Journal of Composite Materials 34(21): 1808–1820.

  10. 10.

    Balacó de Morais, A. & Marques, A. T. (1997). A micromechanical model for the prediction of the lamina longitudinal compression strength of composite laminates. Journal of Composite Material 31(14): 1397–1412.

  11. 11.

    Barbero, E.J. & Tomblin, J.S. (1996). A damage mechanics model for compression strength of composites. International Journal of Solids Structures 33(29):4379–4393.

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    Barbero, E.J. & Tomblin, J.S. (1996). A damage mechanics model for compression strength of composites. International Journal of Solids Structures 33(29):4379–4393.

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    Tomblin, J. S. (1994). Compressive Strength Models for Pultruded Glass Fiber Reinforced Composites. PhD thesis, West Virginia University, Morgantown, WV, U.S.A.

  14. 14.

    Car, E.J. (2000). Modelo Constitutivo Continuo para el Estudio del Comportamiento Mecánico de los Materiales Compuestos. PhD thesis, Universitat Politècnica de Catalunya. Barcelona, España.

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© 2014 International Center for Numerical Methods in Engineering (CIMNE)

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Oller, S. (2014). Non-Linear Buckling of Reinforced Composites. In: Numerical Simulation of Mechanical Behavior of Composite Materials. Lecture Notes on Numerical Methods in Engineering and Sciences. Springer, Cham. https://doi.org/10.1007/978-3-319-04933-5_7

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  • DOI: https://doi.org/10.1007/978-3-319-04933-5_7

  • Publisher Name: Springer, Cham

  • Print ISBN: 978-3-319-04932-8

  • Online ISBN: 978-3-319-04933-5

  • eBook Packages: EngineeringEngineering (R0)

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