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玻璃纤维和亚麻纤维增强的可持续中间层混合单向层压板的开发与分析

Development and Analysis of a Sustainable Interlayer Hybrid Unidirectional Laminate Reinforced with Glass and Flax Fibres.

作者信息

Schwieger York, Qayyum Usama, Terrasi Giovanni Pietro

机构信息

Mechanical Systems Engineering Laboratory, Swiss Federal Laboratories for Materials Science and Technology, Überlandstrasse 129, CH-8600 Dübendorf, Switzerland.

出版信息

Polymers (Basel). 2025 Jul 16;17(14):1953. doi: 10.3390/polym17141953.

DOI:10.3390/polym17141953
PMID:40732832
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC12300157/
Abstract

In this study, a new fibre combination for an interlayer hybrid fibre-reinforced polymer laminate was investigated to achieve pseudo-ductile behaviour in tensile tests. The chosen high-strain fibre for this purpose was S-Glass, and the low-strain fibre was flax. These materials were chosen because of their relatively low environmental impact compared to carbon/carbon and carbon/glass hybrids. An analytical model was used to find an ideal combination of the two materials. With that model, the expected stress-strain relation could also be predicted analytically. The modelling was based on preliminary tensile tests of the two basic components investigated in this research: unidirectional laminates reinforced with either flax fibres or S-Glass fibres. Hybrid specimens were then designed, produced in a heat-assisted pressing process, and subjected to tensile tests. The strain measurement was performed using distributed fibre optic sensing. Ultimately, it was possible to obtain repeatable pseudo-ductile stress-strain behaviour with the chosen hybrid when the specimens were subjected to quasi-static uniaxial tension in the direction of the fibres. The intended damage-mode, consisting of a controlled delamination at the flax-fibre/glass-fibre interface after the flax fibres failed, followed by a load transfer to the glass fibre layers, was successfully achieved. The pseudo-ductile strain averaged 0.52% with a standard deviation of 0.09%, and the average load reserve after delamination was 145.5 MPa with a standard deviation of 48.5 MPa. The integrated fibre optic sensors allowed us to monitor and verify the damage process with increasing strain and load. Finally, the analytical model was compared to the measurements and was partially modified by neglecting the Weibull strength distribution of the high-strain material.

摘要

在本研究中,对一种用于层间混杂纤维增强聚合物层压板的新型纤维组合进行了研究,以在拉伸试验中实现准延性性能。为此选择的高应变纤维是S玻璃纤维,低应变纤维是亚麻纤维。选择这些材料是因为与碳/碳和碳/玻璃混杂材料相比,它们对环境的影响相对较小。使用一个分析模型来找到这两种材料的理想组合。利用该模型,还可以通过分析预测预期的应力-应变关系。该建模基于本研究中所研究的两种基本组分的初步拉伸试验:用亚麻纤维或S玻璃纤维增强的单向层压板。然后设计混杂试样,通过热辅助压制工艺生产,并进行拉伸试验。使用分布式光纤传感进行应变测量。最终,当试样在纤维方向上承受准静态单轴拉伸时,使用所选的混杂材料能够获得可重复的准延性应力-应变性能。成功实现了预期的损伤模式,即在亚麻纤维失效后,亚麻纤维/玻璃纤维界面处发生可控分层,随后载荷转移到玻璃纤维层。准延性应变平均为0.52%,标准偏差为0.09%,分层后的平均载荷储备为145.5MPa,标准偏差为48.5MPa。集成光纤传感器使我们能够随着应变和载荷的增加监测和验证损伤过程。最后,将分析模型与测量结果进行比较,并通过忽略高应变材料的威布尔强度分布对其进行了部分修正。

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https://cdn.ncbi.nlm.nih.gov/pmc/blobs/de4a/12300157/141a42fba8c2/polymers-17-01953-g016.jpg
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