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Articles

Flax and hemp fibre reinforced pozzolanic matrix: evaluation of impact of time and natural weathering

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Pages 1403-1417 | Received 02 Oct 2015, Accepted 05 Apr 2016, Published online: 20 Apr 2016

References

  • Ardanuy, M., Claramunt, J., García-Hortal, J. A., & Barra, M. (2011). Fiber-matrix interactions in cement mortar composites reinforced with cellulosic fibers. Cellulose, 18, 281–289.10.1007/s10570-011-9493-3
  • Ardanuy, M., Claramunt, J., & Toledo Filho, R. D. (2015). Cellulosic fiber reinforced cement-based composites: A review of recent research. Construction and Building Materials, 79, 115–128.10.1016/j.conbuildmat.2015.01.035
  • Aziz, M. A., Paramasivam, P., & Lee, S. L. (1984). New reinforced concretes. 3: Concrete reinforced with natural fibres. Guildford: Surrey University Press.
  • Baley, C. (2002). Analysis of the flax fibres tensile behaviour and analysis of the tensile stiffness increase. Composites Part A: Applied Science and Manufacturing, 33, 939–948.10.1016/S1359-835X(02)00040-4
  • Baley, C. (2004). Fibres naturelles de renfort pour matériaux composites [Natural fibres as reinforcements in composite materials]. Saint-Denis: Techniques de l’Ingénieur. Ref. AM. 5–130.
  • Bledzki, A. K., & Gassan, J. (1999). Composites reinforced with cellulose based fibres. Progress in Polymer Science, 24, 221–274.10.1016/S0079-6700(98)00018-5
  • Bos, H. (2004). The potential of flax as reinforcement for composite materials. University of Technology, Eindhoven. ISBN 90-386-3005-0.
  • Brandt, A. M. (2008). Fibre reinforced cement–based (FRC) composites after over 40 years of development in building and civil engineering. Composite Structures, 86, 3–9.10.1016/j.compstruct.2008.03.006
  • Davies, P., Morvan, C., Sire, O., & Baley, C. (2007). Structure and properties of fibres from sea-grass (Zostera marina). Journal of Materials Science, 42, 4850–4857.10.1007/s10853-006-0546-1
  • Dhakal, H. N., Zhang, Z. Y., & Richardson, M. O. W. (2007). Effect of water absorption on the mechanical properties of hemp fibre reinforced unsaturated polyester composites. Composites Science and Technology, 67, 1674–1683.10.1016/j.compscitech.2006.06.019
  • Dittenber, D. B., & GangaRao, H. V. S. (2012). Critical review of recent publications on use of natural composites in infrastructure. Composites Part A: Applied Science and Manufacturing, 43, 1419–1429.10.1016/j.compositesa.2011.11.019
  • Garcia-Jaldon, D., Dupeyre, C., & Vignon, M. R. (1998). Fibres from semi-retted bundles by stream explosion treatment. Biomass & Bioenergy, 14, 251–260.
  • Hernandez-Olivares, F., Oteiza, I., & de Villanueva, L. (1992). Experimental analysis of toughness and modulus of rupture increase of sisal short fiber reinforced hemihydrated gypsum. Composite Structures, 22, 123–137.10.1016/0263-8223(92)90001-S
  • Kriker, A., Debicki, G., Bali, A., Khenfer, M. M., & Chabannet, M. (2005). Mechanical properties of date palm fibres and concrete reinforced with date palm fibres in hot-dry climate. Cement and Concrete Composites, 27, 554–564.10.1016/j.cemconcomp.2004.09.015
  • Li, Z., Wang, L., & Wang, X. (2004). Compressive and flexural properties of hemp fiber reinforced concrete. Fibers and Polymers, 5, 187–197.10.1007/BF02902998
  • Li, Z., Wang, X., & Wang, L. (2006). Properties of hemp fibre reinforced concrete composites. Composites Part A: Applied Science and Manufacturing, 37, 497–505.10.1016/j.compositesa.2005.01.032
  • Magniont, C., Escadeillas, G., Oms-Multon, C., & De Caro, P. (2010). The benefits of incorporating glycerol carbonate into an innovative pozzolanic matrix. Cement and Concrete Research, 40, 1072–1080.10.1016/j.cemconres.2010.03.009
  • Magniont, C., Escadeillas, G., Coutand, M., & Oms-Multon, C. (2012). Use of plant aggregates in building ecomaterials. European Journal of Environmental and Civil Engineering, 16, s17–s33.10.1080/19648189.2012.682452
  • Mansur, M. A., & Aziz, M. A. (1982). A study of jute fibre reinforced cement composites. International Journal of Cement Composites and Lightweight Concrete, 4, 75–82.10.1016/0262-5075(82)90011-2
  • Melo Filho, J. D. A., Silva, F. D. A., & Toledo Filho, R. D. (2013). Degradation kinetics and aging mechanisms on sisal fiber cement composite systems. Cement and Concrete Composites, 40, 30–39.10.1016/j.cemconcomp.2013.04.003
  • Mohr, B. J., Nanko, H., & Kurtis, K. E. (2005). Durability of kraft pulp fiber–cement composites to wet/dry cycling. Cement and Concrete Composites, 27, 435–448.10.1016/j.cemconcomp.2004.07.006
  • Mohr, B. J., Biernacki, J. J., & Kurtis, K. E. (2006). Microstructural and chemical effects of wet/dry cycling on pulp fiber–cement composites. Cement and Concrete Research, 36, 1240–1251.10.1016/j.cemconres.2006.03.020
  • Monroy Lazcano, S. N. (2010). Control del agrietamiento por contracción plástica en materiales cementantes fibroreforzados [Control of cracking due to plastic shrinkage in fibre reinforced cementitious materials] ( Master thesis in Building Materials Science). Universidad Autonoma de Nuevo León, Monterrey, Mexico.
  • Morton, J. H., Cooke, T., & Akers, S. (2010). Performance of slash pine fibers in fiber cement products. Construction and Building Materials, 24, 165–170.10.1016/j.conbuildmat.2007.08.015
  • Pacheco-Torgal, F., & Jalali, S. (2011). Cementitious building materials reinforced with vegetable fibres: A review. Construction and Building Materials, 25, 575–581.10.1016/j.conbuildmat.2010.07.024
  • Ramakrishna, G., & Sundararajan, T. (2005). Studies on the durability of natural fibres and the effect of corroded fibres on the strength of mortar. Cement and Concrete Composites, 27, 575–582.10.1016/j.cemconcomp.2004.09.008
  • Santos, S. F., Tonoli, G. H. D., Mejia, J. E. B., Fiorelli, J., & Savastano, H., Jr. (2015). Non-conventional cement-based composites reinforced with vegetable fibers: A review of strategies to improve durability. Materiales de Construccion, 65, 317.
  • Sedan, D., Pagnoux, C., Smith, A., & Chotard, T. (2007). Interaction fibre de chanvre/ciment: influence sur les propriétés mécaniques du composite [Hemp fibre/cement interaction: influence on composite mechanical properties]. Matériaux & Techniques, 95, 133–142.
  • Sedan, D., Pagnoux, C., Smith, A., & Chotard, T. (2008). Mechanical properties of hemp fibre reinforced cement: Influence of the fibre/matrix interaction. Journal of the European Ceramic Society, 28, 183–192.10.1016/j.jeurceramsoc.2007.05.019
  • Shahzad, A. (2012). Hemp fiber and its composites – a review. Journal of Composite Materials, 46, 973–986.10.1177/0021998311413623
  • Toledo Filho, R. D., Scrivener, K., England, G. L., & Ghavami, K. (2000). Durability of alkali-sensitive sisal and coconut fibres in cement mortar composites. Cement and Concrete Composites, 22, 127–143.10.1016/S0958-9465(99)00039-6
  • Toledo Filho, R. D., Ghavami, K., Sanjuán, M. A., & England, G. L. (2005). Free, restrained and drying shrinkage of cement mortar composites reinforced with vegetable fibres. Cement and Concrete Composites, 27, 537–546.10.1016/j.cemconcomp.2004.09.005
  • Tonoli, G. H. D., Santos, S. F., Savastano, H., Delvasto, S., Mejia de Gutierez, R., & Lopez de Murphy, M. D. M. (2011). Effects of natural weathering on microstructure and mineral composition of cementitious roofing tiles reinforced with fique fibre. Cement and Concrete Composites, 33, 225–232.10.1016/j.cemconcomp.2010.10.013
  • Yan, L., Chouw, N., & Jayaraman, K. (2014a). Flax fibre and its composites – a review. Composites Part B: Engineering, 56, 296–317.10.1016/j.compositesb.2013.08.014
  • Yan, L., & Chouw, N. (2014b). Natural FRP tube confined fibre reinforced concrete under pure axial compression: A comparison with glass/carbon FRP. Thin-Walled Structures, 82, 159–169.10.1016/j.tws.2014.04.013
  • Yan, L., Su, S., & Chouw, N. (2015a). Microstructure, flexural properties and durability of coir fibre reinforced concrete beams externally strengthened with flax FRP composites. Composites Part B: Engineering, 80, 343–354.10.1016/j.compositesb.2015.06.011
  • Yan, L., & Chouw, N. (2015b). Effect of water, seawater and alkaline solution ageing on mechanical properties of flax fabric/epoxy composites used for civil engineering applications. Construction and Building Materials, 99, 118–127.10.1016/j.conbuildmat.2015.09.025

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