Fazli Ali, Stevanovic Tatjana, Rodrigue Denis
Department of Chemical Engineering, Université Laval, Quebec, QC G1V 0A6, Canada.
Department of Wood and Forest Sciences, Université Laval, Quebec, QC G1V 0A6, Canada.
Polymers (Basel). 2022 Aug 5;14(15):3197. doi: 10.3390/polym14153197.
With the objective of turning wastes into added-value materials, sustainable and fully recycled wood-plastic composites were reinforced by waste tire rubber particles to show balanced properties and potentially low-cost materials. Recycled high density polyethylene (rHDPE) was compounded (melt extrusion) with flax fiber (FF) and waste regenerated tire rubber (RR) to investigate the effect of mixing ratio, coupling agent (maleated polyethylene, MAPE) and molding process (injection and compression molding) on the properties of hybrid composites. In particular, a complete set of characterization was performed including thermal stability, phase morphology and mechanical properties in terms of tension, flexion and impact, as well as hardness and density. Adding 40 wt.% of flax fibers (FF) increased the tensile (17%) and flexural (15%) modulus of rHDPE, while the impact strength decreased by 58%. Substitution of FF by waste rubber particles improved by 75% the impact strength due to the elasticity and energy absorption of the rubber phase. The effects of impact modification were more pronounced for rHDPE/(FF/RR) compatibilized with MAPE (10 wt.%) due to highly improved interfacial adhesion and compatibility. The results also suggest that, for a fixed hybrid composition (FF/RR, 25/55 wt.%), the injection molded composites have a more homogenous morphology with a uniform distribution of well embedded reinforcements in the matrix. This better morphology produced higher tensile strain at break (12%) and impact strength (9%) compared to compression molded samples.
为了将废物转化为增值材料,可持续且可完全回收的木塑复合材料用废轮胎橡胶颗粒增强,以展现出平衡的性能并成为潜在的低成本材料。将回收的高密度聚乙烯(rHDPE)与亚麻纤维(FF)和废旧再生轮胎橡胶(RR)进行混合(熔融挤出),以研究混合比例、偶联剂(马来酸酐接枝聚乙烯,MAPE)和成型工艺(注塑和压缩成型)对混杂复合材料性能的影响。具体而言,进行了一系列完整的表征,包括热稳定性、相形态以及拉伸、弯曲和冲击方面的力学性能,还有硬度和密度。添加40 wt.%的亚麻纤维(FF)使rHDPE的拉伸模量(提高17%)和弯曲模量(提高15%)增加,而冲击强度下降了58%。由于橡胶相的弹性和能量吸收,用废橡胶颗粒替代FF使冲击强度提高了75%。对于与10 wt.%的MAPE相容的rHDPE/(FF/RR),由于界面粘附和相容性得到极大改善,冲击改性效果更为显著。结果还表明,对于固定的混杂组成(FF/RR,25/55 wt.%),注塑成型的复合材料具有更均匀的形态,增强体在基体中分布均匀且嵌入良好。与压缩成型的样品相比,这种更好的形态产生了更高的断裂拉伸应变(12%)和冲击强度(9%)。