Skip to main content
Have a personal or library account? Click to login
Influence of wet chemistry treatment on the mechanical performance of natural fibres Cover

Influence of wet chemistry treatment on the mechanical performance of natural fibres

Open Access
|Jan 2012

References

  1. Bledzki, A. & Gassan, J. (1999). Composites reinforced with cellulose fibres.24, 221-274.
  2. Williams, G.I. & Wool, R.P. (2000). Composites from natural fibers and soy oil resins., 7, 421-32.
  3. Sinha, E. & Rout, S.K. (2009). Influence of fibre-surface treatment on structural, thermal and mechanical properties of jute fibre and its composite., 1, 65-76.
  4. Gassan, J. & Bledzki, A. (1999). Possibilities for improving the mechanical properties of jute/epoxy composites by alkali treatment of fibres., 59, 1303-1309.
  5. Khan, F. & Ahmad, S.R. (1996). Chemical modification and spectroscopic analysis of jute fibre., 52, 335-340.
  6. Sgriccia, N. & Hawley, M.C. (2007). Thermal, Morphological, and electrical characterization of microwave processed natural fiber composites., 66(9), 1986-1991.
  7. Sapieha, S., Verreault, M., Klemberg-Sapieha, J. E., Sacher, E., Wertheimer, M.R. (1990). X-ray photoelectron study of the plasma fluorination of lignocellulose., 2, 165-169.
  8. Van den Oever, M.J.A, Bos H.L. & van Kemenade, M.J. J.M. (2000). Influence of the physical structure of flax fibres on the mechanical properties of flax fibre reinforced polypropylene composites., 7, 387-402.
  9. Bogdan, A., Myalski, J., Wieczorek, J. & Koziol, M. (2009). Influence of chemical treatments for structure and mechanical properties of jute fibres used for polymer - matrix composite producing., 4, 358-362 (in Polish).
  10. Hyla, I. & Sleziona, J. (2004). Composites. Elements of mechanics and design. Wydawnictwo Politechniki Slaskiej, Gliwice (in Polish).
  11. Mastalerz, P. (1986). Organic chemistry. PWN, Warszawa (in Polish).
  12. Bachtiar, D., Sapuan, S.M. & Hamdan, M.M. (2008). The effect of alkaline treatment on tensile properties of sugar palm fibre reinforced epoxy composites., 29, 1285-1290 DOI: 10.1016/j.matdes.2007.09.006.
  13. Van de Weyenberg, I., Truong, T.C., Vangrimde, B. & Verpoest, I. (2006). Improving the properties of UD flax fibre reinforced composites by applying an alkaline fibre treatment., 37, 1368-1376, DOI: 10.1016/j.compositesa.2005.08.016.
  14. Sydenstricker, T.H.D., Mochnaz, S., Amico, S.C. (2003). Pull-out and other evaluations in sisal-reinforced polyester biocomposites., 22, 375-380, DOI: 10.1016/S0142-9418(02)00116-2.
  15. Cao, Y., Shibata, S., Fukumoto, I. (2006). Mechanical properties of biodegradable composites reinforced with bagasse fibre before and after alkali treatments., 37, 423-429, DOI: 10.1016/j.compositesa.2005.05.045.
  16. Canche-Escamilla, G., Cauich-Cupul, J.I., Mendizabal E., Puig, J.E., Vazquez-Torres, H. & Herrera-Franco P.J. (1999). Mechanical properties of acrylate-grafted henequen cellulose fibers and their application in composites., 30, 349-359.
DOI: https://doi.org/10.2478/v10026-011-0044-3 | Journal eISSN: 3072-0389 (formerly 1899-4741) | Journal ISSN: 1509-8117
Language: English
Page range: 21 - 27
Published on: Jan 2, 2012
Published by: West Pomeranian University of Technology, Szczecin
In partnership with: Paradigm Publishing Services
Publication frequency: Volume open

© 2012 Mateusz Koziol, Aleksandra Bogdan-Wlodek, Jerzy Myalski, Jakub Wieczorek, published by West Pomeranian University of Technology, Szczecin
This work is licensed under the Creative Commons License.