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Characterization and biodegradability of polypropylene composites using agricultural residues and waste fish

机译:使用农业残留物和废鱼的聚丙烯复合材料的表征和生物降解性

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摘要

The objective of this research was to study the potential of waste agricultural residues such as rice-husk fiber (RHF), bagasse fiber (BF), and waste fish (WF) as reinforcing and biodegradable agents for thermoplastic composites. Addition of maleic anhydride grafted polypropylene (MAPP) as coupling agent was performed to promote polymer/fiber interfacial adhesion. Several composites with various polypropylene (PP) as polymer matrix, RHF, BF, WF, and MAPP contents were fabricated by melt compounding in a twin-screw extruder and then by injection molding. The resulting composites were evaluated through mechanical properties in terms of tensile, flexural, elongation at break and Izod notched impact following ASTM procedures. Biodegradability of the composites was measured using soil burial test in order to study the rates of biodegradation of the composites. In general, the addition of RHF and BF promoted an increase in the mechanical properties, except impact strength, compared with the neat PP. According to the results, WF did not have reinforcing effect on the mechanical properties, while it could considerably improve the biodegradation of the composites. It was found that the composites with high content of WF had higher degradation rate. Except impact strength, all mechanical properties were found to enhance with increase in cellulosic fiber loading In addition, mechanical properties and biodegradability of the composites made up using RHF was superior to those of the composites fabricated with BF, due to its morphological (aspect ratio) characteristics.
机译:这项研究的目的是研究废弃的农业残留物,例如稻壳纤维(RHF),甘蔗渣纤维(BF)和废鱼(WF)作为热塑性复合材料的增强剂和可生物降解剂的潜力。加入马来酸酐接枝聚丙烯(MAPP)作为偶联剂以促进聚合物/纤维界面粘合。通过在双螺杆挤出机中熔融复合,然后通过注塑成型,制备了几种以各种聚丙烯(PP)为聚合物基体,RHF,BF,WF和MAPP含量的复合材料。按照ASTM程序通过拉伸,弯曲,断裂伸长率和悬臂梁缺口冲击性能的机械性能评估所得复合材料。为了研究复合物的生物降解速率,使用土壤掩埋试验测量了复合物的生物降解性。通常,与纯聚丙烯相比,添加RHF和BF可以提高机械强度(冲击强度除外)的提高。根据结果​​,WF对机械性能没有增强作用,但可以显着改善复合材料的生物降解性。研究发现,高WF含量的复合材料降解率较高。除冲击强度外,发现所有机械性能均随纤维素纤维载量的增加而增强。此外,由于RHF的形态(长宽比),其力学性能和生物降解性优于BF制备的复合材料。特征。

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