Subrata Chandra Das, Angela D. La Rosa, Stergios Goutianos, Sotirios Grammatikos
{"title":"利用玻璃纤维杂化技术提高圆亚麻纤维增强复合材料与现成的可回收聚合物基质系统的耐久性,用于大规模结构应用","authors":"Subrata Chandra Das, Angela D. La Rosa, Stergios Goutianos, Sotirios Grammatikos","doi":"10.1016/j.jcomc.2024.100491","DOIUrl":null,"url":null,"abstract":"<div><p>Natural fibre composites (NFCs) are not durable in the long run because of the susceptibility of natural fibres to environmental conditions and specifically moisture. Hybridizing NFC laminates externally, with synthetic fibre reinforcements, may improve durability, due to their inherent environmental resistance. This work aims to investigate the effects of glass hybridization, on flax fibre composites, studied via accelerated ageing. In specific, the durability of hybrid flax/glass fibre reinforced polymer composites, with two recyclable polymer matrices was investigated. Unidirectional (UD) flax and UD glass fibre reinforcements were employed to fabricate laminates, with two fully-recyclable off-the-shelf resin systems, as matrix: (i) a bio-based epoxy resin and (ii) an acrylic liquid thermoplastic (Elium®). In addition, a standard petroleum-based epoxy polymer matrix was for reference purposes. Weathering and hygrothermal ageing were used to test the durability of coupons, exposed to UV radiation/condensation/water spray environment (weathering ageing), and full-immersion in distilled water at 23, 40, and 60°C (hygrothermal ageing). In all cases, ageing was performed for a total duration of 56 days. The performance of the unaged and aged composite coupons was assessed and compared in terms of flexural and viscoelastic performance as well as SEM (Scanning Electron Microscopy) analysis. It was revealed that the addition of glass fibres with flax fibres in the hybrid composites improves the performance and better resistance against ageing environments than their neat flax fibre composites.</p></div>","PeriodicalId":34525,"journal":{"name":"Composites Part C Open Access","volume":null,"pages":null},"PeriodicalIF":5.3000,"publicationDate":"2024-07-01","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"https://www.sciencedirect.com/science/article/pii/S2666682024000604/pdfft?md5=bc49b4560c7aac6f9946a4cdf6b35330&pid=1-s2.0-S2666682024000604-main.pdf","citationCount":"0","resultStr":"{\"title\":\"Glass fibre hybridization to improve the durability of circular flax fibre reinforced composites with off-the-shelf recyclable polymer matrix systems for large scale structural applications\",\"authors\":\"Subrata Chandra Das, Angela D. 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In addition, a standard petroleum-based epoxy polymer matrix was for reference purposes. Weathering and hygrothermal ageing were used to test the durability of coupons, exposed to UV radiation/condensation/water spray environment (weathering ageing), and full-immersion in distilled water at 23, 40, and 60°C (hygrothermal ageing). In all cases, ageing was performed for a total duration of 56 days. The performance of the unaged and aged composite coupons was assessed and compared in terms of flexural and viscoelastic performance as well as SEM (Scanning Electron Microscopy) analysis. 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引用次数: 0
摘要
由于天然纤维易受环境条件,特别是湿气的影响,天然纤维复合材料(NFC)并不具有长期耐久性。由于天然纤维具有固有的耐环境性,因此在外部与合成纤维加固材料杂化 NFC 层压材料可以提高耐久性。这项工作旨在通过加速老化研究玻璃杂化对亚麻纤维复合材料的影响。具体来说,研究了亚麻/玻璃纤维混合增强聚合物复合材料与两种可回收聚合物基材的耐久性。采用单向(UD)亚麻和 UD 玻璃纤维增强材料制造层压板,基体为两种完全可回收的现成树脂系统:(i) 生物基环氧树脂和 (ii) 丙烯酸液态热塑性塑料(Elium®)。此外,还有一种标准的石油基环氧聚合物基体供参考。风化老化和湿热老化用于测试试样的耐久性,暴露于紫外线辐射/冷凝/水喷雾环境(风化老化),以及完全浸泡在 23、40 和 60°C 的蒸馏水中(湿热老化)。在所有情况下,老化的总时间为 56 天。对未老化和老化复合材料试样的性能进行了评估,并从弯曲和粘弹性能以及扫描电子显微镜(SEM)分析方面进行了比较。结果表明,与纯亚麻纤维复合材料相比,在混合复合材料中添加玻璃纤维和亚麻纤维可提高性能和更好的抗老化环境。
Glass fibre hybridization to improve the durability of circular flax fibre reinforced composites with off-the-shelf recyclable polymer matrix systems for large scale structural applications
Natural fibre composites (NFCs) are not durable in the long run because of the susceptibility of natural fibres to environmental conditions and specifically moisture. Hybridizing NFC laminates externally, with synthetic fibre reinforcements, may improve durability, due to their inherent environmental resistance. This work aims to investigate the effects of glass hybridization, on flax fibre composites, studied via accelerated ageing. In specific, the durability of hybrid flax/glass fibre reinforced polymer composites, with two recyclable polymer matrices was investigated. Unidirectional (UD) flax and UD glass fibre reinforcements were employed to fabricate laminates, with two fully-recyclable off-the-shelf resin systems, as matrix: (i) a bio-based epoxy resin and (ii) an acrylic liquid thermoplastic (Elium®). In addition, a standard petroleum-based epoxy polymer matrix was for reference purposes. Weathering and hygrothermal ageing were used to test the durability of coupons, exposed to UV radiation/condensation/water spray environment (weathering ageing), and full-immersion in distilled water at 23, 40, and 60°C (hygrothermal ageing). In all cases, ageing was performed for a total duration of 56 days. The performance of the unaged and aged composite coupons was assessed and compared in terms of flexural and viscoelastic performance as well as SEM (Scanning Electron Microscopy) analysis. It was revealed that the addition of glass fibres with flax fibres in the hybrid composites improves the performance and better resistance against ageing environments than their neat flax fibre composites.