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Evaluation of Different Compatibilization Strategies to Improve the Performance of Injection-Molded Green Composite Pieces Made of Polylactide Reinforced with Short Flaxseed Fibers

机译:评估提高短亚麻籽纤维增强聚丙交酯注塑绿色复合件性能的不同相容策略

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摘要

Green composites made of polylactide (PLA) and short flaxseed fibers (FFs) at 20 wt % were successfully compounded by twin-screw extrusion (TSE) and subsequently shaped into pieces by injection molding. The linen waste derived FFs were subjected to an alkalization pretreatment to remove impurities, improve the fiber surface quality, and make the fibers more hydrophobic. The alkali-pretreated FFs successfully reinforced PLA, leading to green composite pieces with higher mechanical strength. However, the pieces also showed lower ductility and toughness and the lignocellulosic fibers easily detached during fracture due to the absence or low interfacial adhesion with the biopolyester matrix. Therefore, four different compatibilization strategies were carried out to enhance the fiber–matrix interfacial adhesion. These routes consisted on the silanization of the alkalized FFs with a glycidyl silane, namely (3-glycidyloxypropyl) trimethoxysilane (GPTMS), and the reactive extrusion (REX) with three compatibilizers, namely a multi-functional epoxy-based styrene-acrylic oligomer (ESAO), a random copolymer of poly(styrene- -glycidyl methacrylate) (PS- -GMA), and maleinized linseed oil (MLO). The results showed that all the here-tested compatibilizers improved mechanical strength, ductility, and toughness as well as the thermal stability and thermomechanical properties of the green composite pieces. The highest interfacial adhesion was observed in the green composite pieces containing the silanized fibers. Interestingly, PS- -GMA and, more intensely, ESAO yielded the pieces with the highest mechanical performance due to the higher reactivity of these additives with both composite components and their chain-extension action, whereas MLO led to the most ductile pieces due to its secondary role as plasticizer for PLA.
机译:通过双螺杆挤出(TSE)成功地将20%(重量)的聚丙交酯(PLA)和短亚麻籽纤维(FFs)制成的绿色复合材料复合,然后通过注塑成型将其成型为碎片。将来自亚麻废料的FFs进行碱化预处理,以除去杂质,改善纤维表面质量,并使纤维更具疏水性。碱预处理的FFs成功地增强了PLA,从而获得了具有更高机械强度的绿色复合材料片。然而,这些碎片还显示出较低的延展性和韧性,并且由于不存在或与生物聚酯基质的界面粘合性低,木质纤维素纤维在断裂过程中容易分离。因此,进行了四种不同的增容策略以增强纤维-基质界面的粘合性。这些途径包括用缩水甘油基硅烷(即(3-环氧丙氧基丙基)三甲氧基硅烷(GPTMS)碱化FFs的硅烷化,以及用三种增容剂即多官能团的环氧基苯乙烯-丙烯酸低聚物( (ESAO),一种聚(苯乙烯-甲基丙烯酸缩水甘油酯)(PS-GMA)和马来酸亚麻籽油(MLO)的无规共聚物。结果表明,所有此处测试的相容剂均改善了生坯复合件的机械强度,延展性和韧性,以及热稳定性和热机械性能。在包含硅烷化纤维的绿色复合片中观察到最高的界面粘合性。有趣的是,PS- -GMA和更强烈的ESAO产生了具有最高机械性能的碎片,这是由于这些添加剂对复合组分和链延长作用的反应性更高,而MLO则由于它们的延展性最强作为PLA的增塑剂的辅助作用。

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