Panico Martina, Cozzolino Ersilia, Papa Ilaria, Taha Iman, Lopresto Valentina
Department of Chemical, Materials and Production Engineering, University of Naples Federico II, P.le Tecchio 80, 80125 Naples, Italy.
Sustainable Materials in Polymer Engineering, Aalen University, Beethovenstraße 1, 73430 Aalen, Germany.
Polymers (Basel). 2024 Oct 8;16(19):2839. doi: 10.3390/polym16192839.
Currently, sustainability plays a central role in the response to global challenges, strongly influencing decisions in various sectors. From this perspective, global efforts to explore inventive and eco-friendly solutions to address the demands of industrialization and large-scale production are being made. Bio-based composites needed for lightweight applications benefit from the integration of natural fibers, due to their lower specific weight compared to synthetic fibers, contributing to the overall reduction in the weight of such structures without compromising the mechanical performance. Nevertheless, challenges arise when using natural fibers in composite laminates and hybridization seems to be a solution. However, there is still a lack of knowledge in the literature regarding the strategies and possibilities for reducing laminate thickness, without sacrificing the mechanical performance. This work aims to fill this knowledge gap by investigating the possibility of reducing the laminate thickness in hybrid flax/basalt composites made of plies, organized in the same stacking sequence, through only varying their number. Tensile, Charpy, flexural, and drop-weight tests were carried out for the mechanical characterization of the composites. The results obtained confirm the feasibility of achieving thinner hybrid composites, thus contributing to sustainability, while still having acceptable mechanical properties for structural applications.
目前,可持续性在应对全球挑战中发挥着核心作用,对各领域的决策产生着重大影响。从这一角度来看,全球正在努力探索创新且环保的解决方案,以满足工业化和大规模生产的需求。用于轻量化应用的生物基复合材料受益于天然纤维的整合,因为与合成纤维相比,它们的比重更低,有助于在不影响此类结构机械性能的情况下整体减轻结构重量。然而,在复合层压板中使用天然纤维时会出现挑战,而混杂似乎是一种解决方案。然而,文献中仍然缺乏关于在不牺牲机械性能的情况下减少层压板厚度的策略和可能性的知识。这项工作旨在通过研究仅通过改变层数来减少由相同堆叠顺序排列的亚麻/玄武岩混杂复合材料层压板厚度的可能性,来填补这一知识空白。对复合材料进行了拉伸、夏比、弯曲和落锤试验,以进行机械性能表征。所得结果证实了获得更薄混杂复合材料的可行性,从而有助于实现可持续性,同时对于结构应用仍具有可接受的机械性能。