Dolza Celia, Fages Eduardo, Gonga Eloi, Gomez-Caturla Jaume, Balart Rafael, Quiles-Carrillo Luis
Textile Industry Research Association (AITEX), Plaza Emilio Sala, 1, 03801 Alcoy, Spain.
Technological Institute of Materials (ITM), Universitat Politècnica de València (UPV), Plaza Ferrándiz y Carbonell 1, 03801 Alcoy, Spain.
Polymers (Basel). 2021 May 22;13(11):1692. doi: 10.3390/polym13111692.
Environmentally friendly wood plastic composites (WPC) with biobased high density polyethylene (BioHDPE) as the polymer matrix and hemp, flax and jute short fibers as natural reinforcements, were melt-compounded using twin-screw extrusion and shaped into pieces by injection molding. Polyethylene-graft-maleic anhydride (PE-g-MA) was added at two parts per hundred resin to the WPC during the extrusion process in order to reduce the lack in compatibility between the lignocellulosic fibers and the non-polar polymer matrix. The results revealed a remarkable improvement of the mechanical properties with the combination of natural fibers, along with PE-g-MA, highly improved stiffness and mechanical properties of neat BioHDPE. Particularly, hemp fiber drastically increased the Young's modulus and impact strength of BioHDPE. Thermal analysis revealed a slight improvement in thermal stability with the addition of the three lignocellulosic fibers, increasing both melting and degradation temperatures. The incorporation of the fibers also increased water absorption due to their lignocellulosic nature, which drastically improved the polarity of the composite. Finally, fire behavior properties were also improved in terms of flame duration, thanks to the ability of the fibers to form char protective barriers that isolate the material from oxygen and volatiles.
以生物基高密度聚乙烯(BioHDPE)为聚合物基体,以大麻、亚麻和黄麻短纤维为天然增强材料的环保型木塑复合材料(WPC),采用双螺杆挤出进行熔融共混,并通过注塑成型制成片材。在挤出过程中,以每百份树脂两份的比例向木塑复合材料中添加聚乙烯接枝马来酸酐(PE-g-MA),以减少木质纤维素纤维与非极性聚合物基体之间的相容性不足。结果表明,天然纤维与PE-g-MA相结合,显著提高了机械性能,同时极大地改善了纯BioHDPE的刚度和机械性能。特别是,大麻纤维显著提高了BioHDPE的杨氏模量和冲击强度。热分析表明,添加三种木质纤维素纤维后,热稳定性略有提高,熔点和降解温度均有所升高。由于纤维的木质纤维素性质,纤维的加入也增加了吸水率,这极大地改善了复合材料的极性。最后,由于纤维能够形成炭质保护屏障,将材料与氧气和挥发性物质隔离开来,因此在火焰持续时间方面,燃烧性能也得到了改善。