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Research Article

Comprehensive Characterization of Date Palm Petiole Fiber Reinforced Epoxy Composites: Effect of Fiber Treatment and Loading on Various Properties

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References

  • Abu Sharkh, B., and H. Hamid. 2004. Degradation study of date palmfibre/polypropylene composites in natural and artificial weathering: Mechanical and thermal analysis. Polymer Degradation and Stability 85 (3):967–73. doi:10.1016/j.polymdegradstab.2003.10.022.
  • Adekunle, K., S. W. Cho, R. Ketzscher, and M. Skrifvars. 2012. Mechanical properties of natural fiber hybrid composites based on renewable thermoset resins derived from soybean oil, for use in technical applications. Journal of Applied Polymer Science 124:4530–41.
  • Amroune, S., A. Bezazi, A. Dufresne, F. Scarpa, and A. Imad. 2021. Investigation of the date palm fiber for green composites reinforcement: thermo-physical and mechanical properties of the fiber. Journal of Natural Fibers 18 (5):717–34. doi:10.1080/15440478.2019.1645791.
  • Armioun, S., S. Panthapulakkal, J. U. Scheel, J. Tjong, and M. Sain. 2016. Biopolyamide hybrid composites for high performance applications. Journal of Applied Polymer Science 133 (27):1–9. doi:10.1002/app.43595.
  • Basheer, A., A. N. Saba, M. D. Alotaibi, M. F. Alotibi, M. D. Jawaid, and O. Y. Alothman. 2019. Evaluation of mechanical, physical, and morphological properties of epoxy composites reinforced with different date palm fillers. Materials 12:1–17. doi:10.3390/ma12132145.
  • Berthet, M., H. A. Coussy, V. Guillard, and N. Gontard. 2016. Vegetal fiber-based composites: Which stakes for food packaging applications? Journal of Applied Polymer Science 133 (2):1–18. doi:10.1002/app.42528.
  • Bezazi, A., S. Amrounea, F. Scarpa, A. Dufresne, and A. Imad. 2020. Investigation of the date palm fiber for green composites reinforcement: Quasi-static and fatigue characterization of the fiber. Industrial Crops and Products 146:1–5. doi:10.1016/j.indcrop.2020.112135.
  • Bhargav, P. B., V. M. Mohan, A. K. Sharma, and V. V. R. N. Rao. 2009. Investigations on electrical properties of (PVA:NaF) Polymer electrolytes for electrochemical cell applications. Current Applied Physics 9 (1):165–71. doi:10.1016/j.cap.2008.01.006.
  • Chartoff, R. P., P. T. Weissman, and A. Sirkar. 1994. The application of dynamic mechanical methods to Tg determination in polymers: An overview. In Assignment of the glass transition, ASTM STP 1249, American society for testing and materials, ed. R. J. Seyler, 88–107. Philadelphia: ASTM International.
  • Gheith, M. H., M. A. Aziz, W. Ghori, N. Saba, M. Asim, M. Jawaid, and Y. O. Alothman. 2018. Flexural, thermal and dynamic mechanical properties of date palm fibres reinforced epoxycomposites . Journal of Material Research and Technology Advanced Online Publication. doi:10.1016/j.jmrt.2018.06.013.
  • Heckadka, S. S., S. Y. Nayak, K. Narang, and K. Vardhan Pant. 2015. Chopped strand/plain weave E-Glass as reinforcement in vacuum bagged epoxy composites. Journal of Materials 2015:1–7. doi:10.1155/2015/957043.
  • Jena, P. K., J. R. Mohanty, S. Nayak, K. R. Panda, R. Sahu, and S. K. Khuntia. 2020. Utilization of chemically modified novel urena lobata fibers as reinforcement in polymer composites – an experimental study. Journal of Natural Fibers Advanced Online Publication, 1–11. doi:10.1080/15440478.2020.1818352.
  • Joseph, S., S. P. Appukuttan, J. M. Kenny, D. Puglia, S. Thomas, and K. Joseph. 2010. Dynamic mechanical properties of oil palmmicrofibril-reinforced natural rubber composites. Journal of Applied Polymer Science 117 (3):1298.
  • Khelifa, H., A. Bezazi, H. Boumediri, G. G. Pino, P. N. B. Reis, F. Scarpa, and A. Dufresne. 2021. Mechanical characterization of mortar reinforced by date palm mesh fibers: Experimental and statistical analysis. Construction and Building Materials 300:1–22. doi:10.1016/j.conbuildmat.2021.124067.
  • Lila, M. K., A. Singhal, S. S. Banwait, and I. Singh. 2018. A recyclability study of bagasse fiber reinforced polypropylene composites. Polymer Degradation and Stability 152:272–79. doi:10.1016/j.polymdegradstab.2018.05.001.
  • Mahdavi, S., H. Kermanian, and A. Varshoei. 2010. Comparison of mechanical properties of date palm fiber- polyethylene composite. Bio-Resources 5 (4):2391–403.
  • Mahdi, E., D. R. H. Ochoa, A. Vaziri, A. Dean, and M. Kucukvar. 2021. Khalasa date palm leaf fiber as a potential reinforcement for polymeric composite materials. Composite Structures 265:1–10. doi:10.1016/j.compstruct.2020.113501.
  • Malathi, J., M. Kumaravadivel, G. M. Brahmanandhan, M. Hema, R. Baskaran, and S. Selvasekarapandian. 2010. Structural, thermal and electrical properties of PVALiCF3SO3 polymer electrolyte. Journal of Non- Crystalline Solids 365 (43):2277–81. doi:10.1016/j.jnoncrysol.2010.08.011.
  • Mohanty, J. R., S. N. Das, H. C. Das, and S. K. Swain. 2013. Effective mechanical properties of polyvinylalcohol biocomposites with reinforcement of date palm leaf fibers. Polymer Composites 34 (6):959–66. doi:10.1002/pc.22502.
  • Mohanty, J. R., S. N. Das, H. C. Das, and S. K. Swain. 2014. Effect of chemically modified date palm leaf fiber on mechanical, thermal and rheological properties of polyvinylpyrrolidone. Fibers and Polymers 15 (5):1062–70. doi:10.1007/s12221-014-1062-6.
  • Monteiro, S. N., V. Calado, R. J. S. Rodriguez, and F. M. Margem. 2012. Thermogravimetric stability of polymer composites reinforced with less common lignocellulosic fibers—an overview. Journal of Material Research & Technology 1 (2):117–26. doi:10.1016/S2238-7854(12)70021-2.
  • Nayak, S., and S. K. Khuntia. 2019. Development and study of properties of Moringa oleifera fruit fibers/polyethylene terephthalate composites for packaging applications. Composites Communications 15:113–19. doi:10.1016/j.coco.2019.07.008.
  • Nayak, S., S. K. Khuntia, S. D. Mohanty, and J. Mohapatra. 2020. Investigation and fabrication of thermo-mechanical properties of ceiba pentandra bark Fiber/Poly (Vinyl) alcohol composites for automobile dash board and door panel applications. Journal of Natural Fibers Advanced Online Publication, 1–13. doi:10.1080/15440478.2020.1745124.
  • Pothan, L. A., S. Thomas, and G. Groeninckx. 2006. The role of fibre/matrixinteractions on the dynamic mechanical properties ofchemically modified banana fibre/polyester composites. Composite A: Applied Science and Manufacturing 37 (9):1260–69. doi:10.1016/j.compositesa.2005.09.001.
  • Pradyot, N., S. K. Deb, S. Manna, U. De, and S. Tarafdar. 2010. Effect of gamma irradiation on a polymer electrolyte: Variation in crystallinity, viscosity and ion-conductivity with dose. Nuclear Instruments and Methods in Physics Research Section B 268 (1):73–78. https://doi.org/10.1016/j.nimb.2009.09.063.
  • Prajer, M., and M. P. Ansell. 2014. Bio-composites for structural applications: Poly-l-lactide reinforced with long sisal fiber bundles. Journal of Applied Polymer Science 131 (21):1–13. doi:10.1002/app.40999.
  • Rao, K. M. M., and K. M. Rao. 2007. Extraction and tensile properties of natural fibers: Vakka, date and bamboo. Composite Structures 77 (3):288–95. doi:10.1016/j.compstruct.2005.07.023.
  • Saba, N., O. Y. Alothman, Z. Almutairi, M. Jawaid, and W. Ghori. 2019. Date palm reinforced epoxy composites: Tensile, impact and morphological properties. Journal of Material Research and Technology 8 (5):3959–69. doi:10.1016/j.jmrt.2019.07.004.
  • Saba, N., A. Safwan, M. L. Sanyang, F. Mohammad, M. Pervaiz, M. Jawaid, O. Y. Alothman, and M. Sain. 2017. Thermal and dynamic mechanical properties of cellulose nano fibers reinforced epoxy composites. International Journal of Biological Macromolecules 102:822–28.
  • Sbiai, A., A. Maazouz, E. Fleury, A. Sautereau, and H. Kaddamu. 2010. Effective mechanical properties of polyvinylalcohol biocomposites with reinforcement of date palm leaf fibers. Bio-Resources 5 (2):672–82.
  • Senthilkumar, K., N. Saba, N. Rajini, M. Chandrasekar, M. Jawaid, S. Siengchin, and O. Y. Alotman. 2018. Mechanical properties evaluation of sisal fibre reinforced polymer composites: A review. Construction and Building Materials 174:713–29. doi:10.1016/j.conbuildmat.2018.04.143.

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