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Development of natural fiber-reinforced plastics (NFRP) based on biobased polyethylene and waste fibers from Posidonia oceanica seaweed

机译:基于生物基聚乙烯和海洋波塞冬海藻废纤维的天然纤维增强塑料(NFRP)的开发

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In the present study the valorization of wastes from Posidonia oceanica (PO) has been carried out in order to obtain a fully biobased composite material in combination with a biobased polyethylene obtained from sugar cane as matrix. Morphological analysis by scanning electron microscopy (SEM) of the fractured surfaces from impact tests has revealed a homogenous distribution of particles of PO, as a consequence, good balanced properties have been obtained for composites with PO contents in the 5-40 wt%. Thermal properties of composites have been studied through differential scanning calorimetry (DSC) and thermogravymetric analysis (TGA); the obtained results show an improvement on the thermal degradation. With regard to thermomechanical properties, dynamic mechanical analysis (DMA) results have shown a much enhanced storage modulus (G) as the Posidonia oceanica content increases. Tensile tests have shown a remarkable increase in stiffness with tensile modulus values about 60% higher for composites with 40 wt% with regard to unfilled material. In a similar way, the flexural modulus is more than twice with regard the unloaded polyethylene. Shore D hardness confirms this improvement on mechanical properties and Charpy impact test shows values very similar to sample without PO, so that the intrinsic high impact energy absorption of HDPE is maintained in HDPE-PO composites. The water uptake test determines that the water absorption percent does not exceed 8%, which is relatively low for a high immersion time (5 months), which guarantees a dimensional stability in lifetime for these composites. POLYM. COMPOS., 36:1378-1385, 2015. (c) 2014 Society of Plastics Engineers
机译:在本研究中,已经对来自海洋波塞冬(Posidonia oceanica,PO)的废物进行了增值,以便获得与以甘蔗为基质的生物基聚乙烯相结合的完全生物基复合材料。通过冲击电子显微镜(SEM)对冲击表面的断裂表面进行形态学分析表明,PO颗粒的分布均匀,结果,对于PO含量为5-40重量%的复合材料,获得了良好的平衡性能。通过差示扫描量热法(DSC)和热重分析(TGA)研究了复合材料的热性能。所得结果显示出热降解的改善。关于热机械性能,动态机械分析(DMA)结果表明,随着海洋波塞冬(Posidonia oceanica)含量的增加,储能模量(G)大大提高。拉伸试验表明,对于未填充材料,复合材料的重量百分比为40%,复合材料的刚度显着提高,拉伸模量值提高了约60%。以类似的方式,相对于未加载的聚乙烯,弯曲模量大于两倍。肖氏D硬度证实了机械性能的这种改善,夏比冲击试验显示的值与不含PO的样品非常相似,因此HDPE-PO复合材料保持了HDPE固有的高冲击能吸收率。吸水率测试确定吸水率不超过8%,对于高浸入时间(5个月)而言,吸水率相对较低,这可以确保这些复合材料的使用寿命尺寸稳定性。 POLYM。 COMPOS。,36:1378-1385,2015.(c)2014年塑料工程师学会

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