ICF13A

13th International Conference on Fracture June 16–21, 2013, Beijing, China -9- References [1] L. Peng, J. Xu, J. Zhang and L. Zhao, Mixed mode delamination growth of multidirectional composite laminates under fatigue loading. Eng Fract Mech, 96 (2012) 676. [2] L. Sorensen, J. Botsis, T. Gmür and L. Humbert, Bridging tractions in mode I delamination: Measurements and simulations. Compos Sci Technol, 68 (2008) 2350. [3] A. J. Brunner, S. Stelzer, G. Pinter and G. P. Terrasi, Mode II fatigue delamination resistance of advanced fiber-reinforced polymer-matrix laminates: Towards the development of a standardized test procedure. Int J Fatigue, (2012). [4] A. J. Brunner, N. Murphy and G. Pinter, Development of a standardized procedure for the characterization of interlaminar delamination propagation in advanced composites under fatigue mode I loading conditions. Eng Fract Mech, 76 (2009) 2678. [5] M. Hojo, K. Nakashima, T. Kusaka, M. Tanaka, T. Adachi, T. Fukuoka and M. Ishibashi, Mode I fatigue delamination of Zanchor-reinforced CF/epoxy laminates. Int J Fatigue, 32 (2010) 37. [6] J. Andersons and M. Köig, Dependence of fracture toughness of composite laminates on interface ply orientations and delamination growth direction. 64 (2004) 2139. [7] B. D. Davidson, M. Kumar and M. A. Soffa, Influence of mode ratio and hygrothermal condition on the delamination toughness of a thermoplastic particulate interlayered carbon/epoxy composite. Composites Part A: Applied Science and Manufacturing, 40 (2009) 67. [8] L. Peng, J. Zhang, L. Zhao, R. Bao, H. Yang and B. Fei, Mode I delamination growth of multidirectional composite laminates under fatigue loading. J Compos Mater, 45 (2011) 1077. [9] P. Davies, B. R. K. Blackman and A. J. Brunner, Standard test methods for delamination resistance of composite materials: current status. Appl Compos Mater, 5 (1998) 345. [10]A. J. Brunner, B. R. K. Blackman and P. Davies, A status report on delamination resistance testing of polymer-matrix composites. Eng Fract Mech, 75 (2008) 2779. [11] T. E. Tay, Characterization and analysis of delamination fracture in composites - a review of developments from 1990 to 2001. Applied Mechanics Reviews, 56 (2003) 1. [12]B. D. Davidson, R. D. Bialaszewski and S. S. Sainath, A non-classical, energy release rate based approach for predicting delamination growth in graphite reinforced laminated polymeric composites. Compos Sci Technol, 66 (2006) 1479. [13]A. Quispitupa, C. Berggreen and L. A. Carlsson, On the analysis of a mixed mode bending sandwich specimen for debond fracture characterization. Eng Fract Mech, 76 (2009) 594. [14]A. B. Pereira and A. B. de Morais, Mixed mode I + II interlaminar fracture of carbon/epoxy laminates. Composites Part A: Applied Science and Manufacturing, 39 (2008) 322. [15]P. Naghipour, M. Bartsch, L. Chernova, J. Hausmann and H. Voggenreiter, Effect of fiber angle orientation and stacking sequence on mixed mode fracture toughness of carbon fiber reinforced plastics: Numerical and experimental investigations. Materials Science and Engineering: A, 527 (2010) 509. [16]N. S. Choi, A. J. Kinloch and J. G. Williams, Delamination fracture of multidirectional carbon-fiber/epoxy composites under mode I, mode II and mixed-mode I/II loading. J Compos Mater, 33 (1999) 73. [17]A. Szekrényes and J. Uj, Advanced beam model for fiber-bridging in unidirectional composite double-cantilever beam specimens. Engneering Fracture Mechanics, 72 (2005) 2686. [18]V. Tamuzs, S. Tarasovs and U. Vilks, Progressive delamination and fiber bridging modeling in double cantilever beam composite specimens. Eng Fract Mech, 68 (2001) 513. [19]J. Wang, Cohesive-bridging zone model of FRP-concrete interface debonding. Eng Fract Mech, 74 (2007) 2643. [20]B. F. Søensen and T. K. Jacobsen, Characterizing delamination of fibre composites by mixed mode cohesive laws. Compos Sci Technol, 69 (2009) 445.

RkJQdWJsaXNoZXIy MjM0NDE=