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Research Article

Damage Analysis of Low-Velocity Impact of Non-Woven Flax Epoxy Composites

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References

  • Al-Oqla, F. M., and S. M. Sapuan. 2014. Natural fiber reinforced polymer composites in industrial applications: Feasibility of date palm fibers for sustainable automotive industry. Journal of Cleaner Production 66:347–54. doi:10.1016/j.jclepro.2013.10.050.
  • Alves, C., P. M. C. Ferrão, A. J. Silva, L. G. Reis, M. Freitas, L. B. Rodrigues, and D. E. Alves. 2010. Ecodesign of automotive components making use of natural jute fiber composites. Journal of Cleaner Production 18 (4):313–27. doi:10.1016/j.jclepro.2009.10.022.
  • Bensadoun, F., D. Depuydt, J. Baets, I. Verpoest, and A. W. van Vuure. 2017. Low velocity impact properties of flax composites. Composite Structures 176 (Supplement C):933–44. doi:10.1016/j.compstruct.2017.05.005.
  • Fogorasi, M. S., and I. Barbu. 2017. The potential of natural fibres for automotive sector-review. IOP Conference Series: Materials Science and Engineering 252 (1):012044. doi:10.1088/1757-899X/252/1/012044.
  • Habibi, M., G. Lebrun, and L. Luc. 2017. Experimental characterization of short flax fiber mat composites: Tensile and flexural properties and damage analysis using acoustic emission. Journal of Materials Science 52 (11):6567–80. doi:10.1007/s10853-017-0892-1.
  • Habibi, M., L. Laperrière, and H. M. Hassanabadi. 2018a. Influence of low-velocity impact on residual tensile properties of nonwoven flax/epoxy composite. Composite Structures 186:175–82. doi:10.1016/j.compstruct.2017.12.024.
  • Habibi, M., L. Laperrière, and H. M. Hassanabadi. 2018b. Replacing stitching and weaving in natural fiber reinforcement manufacturing, part 1: Mechanical behavior of unidirectional flax fiber composites. Journal of Natural Fibers 1–13.
  • Habibi, M., L. Laperrière, and H. M. Hassanabadi. 2018c. Replacing stitching and weaving in natural fiber reinforcement manufacturing, part 2: Mechanical behavior of flax fiber composite laminates. Journal of Natural Fibers 1–10.
  • Habibi, M., L. Laperrière, and H. M. Hassanabadi. 2019. Effect of moisture absorption and temperature on quasi-static and fatigue behavior of nonwoven flax epoxy composite. Composites Part B: Engineering 166:31–40.
  • Hart, K. R., P. X. L. Chia, L. E. Sheridan, E. D. Wetzel, N. R. Sottos, and S. R. White. 2017. Comparison of compression-after-impact and flexure-after-impact protocols for 2D and 3D woven fiber-reinforced composites. Composites Part A: Applied Science and Manufacturing 101:471–79. doi:10.1016/j.compositesa.2017.07.005.
  • Karus, M., and M. Kaup. 2002. Natural fibres in the European automotive industry. Journal of Industrial Hemp 7 (1):119–31. doi:10.1300/J237v07n01_10.
  • Khalfallah, M., B. Abbès, F. Abbès, Y. Q. Guo, V. Marcel, A. Duval, F. Vanfleteren, and F. Rousseau. 2014. Innovative flax tapes reinforced Acrodur biocomposites: A new alternative for automotive applications. Materials & Design 64:116–26. doi:10.1016/j.matdes.2014.07.029.
  • Koronis, G., A. Silva, and M. Fontul. 2013. Green composites: A review of adequate materials for automotive applications. Composites Part B: Engineering 44 (1):120–27. doi:10.1016/j.compositesb.2012.07.004.
  • Meredith, J., R. Ebsworth, S. R. Coles, B. M. Wood, and K. Kirwan. 2012. Natural fibre composite energy absorption structures. Composites Science and Technology 72 (2):211–17. doi:10.1016/j.compscitech.2011.11.004.
  • Mohamed., H., L. Laperrière, G. Lebrun, and L. Toubal. 2017a. Combining short flax fiber mats and unidirectional flax yarns for composite applications: effect of short flax fibers on biaxial mechanical properties and damage behaviour. Composites Part B: Engineering. doi: 10.1016/j.compositesb.2017.05.023.
  • Rubio-López, A., J. Artero-Guerrero, J. Pernas-Sánchez, and C. Santiuste. 2017. Compression after impact of flax/PLA biodegradable composites. Polymer Testing 59 (Supplement C):127–35. doi:10.1016/j.polymertesting.2017.01.025.
  • Sun, X. C., and S. R. Hallett. 2018. Failure mechanisms and damage evolution of laminated composites under compression after impact (CAI): Experimental and numerical study. Composites Part A: Applied Science and Manufacturing 104:41–59. doi:10.1016/j.compositesa.2017.10.026.

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