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Original Articles

Study on the Pre-Treatment, Physical and Chemical Properties of Ramie Fibers Reinforced Poly (Lactic Acid) (PLA) Biocomposite

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References

  • Awal, A., M. Rana, and M. Sain. 2015. Thermorheological and mechanical properties of cellulose reinforced PLA bio-composites. Mechanics of Materials 80: 87–95. doi:10.1016/j.mechmat.2014.09.009.
  • Cao, Y., S. Sakamoto, and K. Goda 2007. 16th International Conference on Composite Materials, ICCM-16 - “A Giant Step Towards Environmental Awareness: From Green Composites to Aerospace”, July 8, 2007--July 13, 2007, Kyoto, Japan, Japan Society for Composite Materials (JSCM); Japan Aerospace Exploration Agency (JAXA); Asian Off. Aerosp. Res. Dev. /; Air Force Off. Sci. Res. (AOARD/AFOSR); Office of Naval Research (ONR); ACE-TeC. International Committee on Composite Materials.
  • Choi, H. Y., and J. S. Lee. 2012. Effects of surface treatment of ramie fibers in a ramie/poly(lactic acid) composite. Fibers and Polymers 13: 217–23. doi:10.1007/s12221-012-0217-6.
  • Dakai, C., L. Jing, and R. Jie. 2012. Biocomposites based on ramie fibers and poly(L-lactic acid) (PLLA): Morphology and properties. Polym Advancement Technological 23: 198–207. doi:10.1002/pat.1852.
  • Debeli, D. K., J. Guo, Z. Li, J. Zhu, N. Li. 2017. Treatment of ramie fiber with different techniques: The influence of diammonium phosphate on interfacial adhesion properties of ramie fiber-reinforced polylactic acid composite. Iranian Polymer Journal 26: 341–54. doi:10.1007/s13726-017-0524-2.
  • Faludi, G., G. Dora, B. Imre, et al. 2014. PLA/lignocellulosic fiber composites: particle characteristics, interfacial adhesion, and failure mechanism. Journal of Applied Polymer Science 131: 10. doi:10.1002/app.39902.
  • Gupta, B. S., I. Reiniati, and M. P. G. Laborie. 2007. Surface properties and adhesion of wood fiber reinforced thermoplastic composites. Colloid Surf A-Physicochem Engineering Asp 302: 388–95. doi:10.1016/j.colsurfa.2007.03.002.
  • Hendrick, E., and M. Frey. 2014. Increasing surface hydrophilicity in poly(Lactic acid) electrospun fibers by addition of Pla-b-Peg co-polymers. Journal of Engineered Fibers and Fabrics 9: 153–64.
  • Huda, M. S., L. T. Drzal, A. K. Mohanty, et al. 2008. Effect of fiber surface-treatments on the properties of laminated biocomposites from poly(lactic acid) (PLA) and kenaf fibers. Composites Science and Technology 68: 424–32. doi:10.1016/j.compscitech.2007.06.022.
  • Ketabchi, M. R., M. Khalid, C. Thevy Ratnam. 2016. Sonosynthesis of microcellulose from kenaf fiber: Optimization of process parameters. Journal of Natural Fibers 1–13. doi:10.1080/15440478.2016.1212767.
  • Nassiopoulos, E., and J. Njuguna. 2015. Thermo-mechanical performance of poly(lactic acid)/flax fibre-reinforced biocomposites. Materials & Design 66: 473–85. doi:10.1016/j.matdes.2014.07.051.
  • Orue, A., A. Jauregi, C. Pena-Rodriguez, et al. 2015. The effect of surface modifications on sisal fiber properties and sisal/poly (lactic acid) interface adhesion. Composites Part B-Engineering 73: 132–38. doi:10.1016/j.compositesb.2014.12.022.
  • Qaiss, A. E. K., R. Bouhfid, and H. Essabir. 2014. Natural fibers reinforced polymeric matrix: thermal, mechanical and interfacial properties. In Biomass and bioenergy: processing and properties, eds. K. R. Hakeem, M. Jawaid, and U. Rashid, 225–45. Cham: Springer International Publishing.
  • Sawpan, M. A., K. L. Pickering, and A. Fernyhough. 2011. Effect of fibre treatments on interfacial shear strength of hemp fibre reinforced polylactide and unsaturated polyester composites. Compos Pt A-Appl Sciences Manuf 42: 1189–96. doi:10.1016/j.compositesa.2011.05.003.
  • Seung Hwan, L., and S. Young Seok. 2013. Effect of enzyme and ammonia treatments in green composite systems. Journal Compos Materials 47: 3249–55. doi:10.1177/0021998312463458.
  • Surin, P., P. Rakkwamsuk, E. Wimolmala, et al. 2015. Effects of coir fiber and maleic anhydride modification on the properties of thermoplastic Starch/PLA composite laminates. Journal of Natural Fibers 12: 108–20. doi:10.1080/15440478.2014.901203.
  • Tingju, L., L. Shimeng, J. Man, et al. 2014. Effects of modifications of bamboo cellulose fibers on the improved mechanical properties of cellulose reinforced poly(lactic acid) composites. Composites Part B: Engineering 62: 191–97. doi:10.1016/j.compositesb.2014.02.030.
  • Tran Huu, N., S. Ogihara, T. Nguyen Huy, et al. 2011. Effect of alkali treatment on interfacial and mechanical properties of coir fiber reinforced poly(butylene succinate) biodegradable composites. Composites Part B: Engineering 42: 1648–56. doi:10.1016/j.compositesb.2011.04.001.
  • Wang, Y., R. Qi, C. Xiong, et al. 2011. Effects of coupling agent and interfacial modifiers on mechanical properties of poly(lactic acid) and wood flour biocomposites. Iranian Polymer Journal 20: 281–94.
  • Xia, X., W. Liu, L. Zhou, et al. 2016. Modification of flax fiber surface and its compatibilization in polylactic acid/flax composites. Iranian Polymer Journal 25: 25–35. doi:10.1007/s13726-015-0395-3.
  • Yu, T., Y. Li, and J. Ren. 2009. Preparation and properties of short natural fiber reinforced poly(lactic acid) composites. Transactions of Nonferrous Metals Society of China 19: s651–s55. doi:10.1016/S1003-6326(10)60126-4.
  • Yu, T., J. Ren, S. Li, et al. 2010a. Effect of fiber surface-treatments on the properties of poly(lactic acid)/ramie composites. Compos Pt A-Appl Sciences Manuf 41: 499–505. doi:10.1016/j.compositesa.2009.12.006.
  • Yu, T., J. Ren, S. M. Li, et al. 2010b. Effect of fiber surface-treatments on the properties of poly(lactic acid)/ramie composites. Compos Pt A-Appl Sciences Manuf 41: 499–505. doi:10.1016/j.compositesa.2009.12.006.
  • Zafar, M. T., S. N. Maiti, and A. K. Ghosh. 2016. Effect of surface treatment of jute fibers on the interfacial adhesion in poly(lactic acid)/jute fiber biocomposites. Fibers and Polymers 17: 266–74. doi:10.1007/s12221-016-5781-8.
  • Zhang, H., R. Ming, G. Yang, et al. 2015. Influence of alkali treatment on flax fiber for use as reinforcements in polylactide stereocomplex composites. Polymer Engineering and Science 55: 2553–58. doi:10.1002/pen.24147.
  • Zhu, Z., C. Ye, W. Fu, et al. 2016. Improvement in mechanical and thermal properties of polylactic acid biocomposites due to the addition of hybrid sisal fibers and diatomite particles. International Journal of Polymer Analysis and Characterization 21: 365–77. doi:10.1080/1023666X.2016.1160529.

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