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Impact Behaviour of UHMWPE Woven Fabrics and Fabric-Reinforced Composite Laminates

机译:UHMWPE机织织物和织物增强复合层压板的冲击行为

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摘要

Ultra-high molecular weight polyethylene (UHMWPE) fibres have high tensile strength(approaching 4 GPa), high elastic modulus (about 130 GPa), and low density (970 kg/m3), which provide enhanced capacity to absorb energy and resist penetration under impact loading. For protection against impact threats, these fibres are most commonly used in the form of non-woven composite laminates comprising unidirectional plies of collimated fibres embedded in polyurethane or rubber matrices. However, there is a paucity of data on the impact behaviour of woven fabrics and fabric-reinforced composite laminates made of these fibres. Therefore, this thesis aims to investigate the penetration and failure mechanisms of UHMWPE woven fabrics and fabric-reinforced composite laminates and identify the effects of several important factors.The tensile properties of UHMWPE single yarns were tested at various strain rates from3.3×10-5 to 400 s-1. A transition from ductile to brittle failure of yarns was observed asthe strain rate increased. It was found that the tensile strength and Young’s modulusincreased while the failure strain and toughness decreased with strain rate at low strainrates (below 0.33 s-1). However, these tensile properties were almost insensitive to strain rate at higher strain rates. The strength of yarns followed the 2-parameter Weibulldistribution at all strain rates studied.The impact behaviour of multi-ply woven fabrics was studied by means of impact testingand finite element modelling. The effect of fabric folding was investigated for the firsttime by comparing the impact performance of unfolded fabrics, accordion-fold fabrics,and roll-fold fabrics. The results showed that the perforation resistance and energyabsorption capacity were significantly improved by folding a fabric into multiple pliescompared to the unfolded counterparts, and the roll-fold fabrics performed best.iiThe impact behaviour of woven fabric-reinforced composite laminates with four differentresins was experimentally investigated. The laminates having flexible matrices performed better in perforation resistance and energy absorption, but had a larger extent of deformation and damage than the counterparts made of rigid matrices. The matrix rigidity played a crucial role in controlling the propagation of transverse deformation, and thereby the local strain and perforation resistance of the laminates.
机译:超高分子量聚乙烯(UHMWPE)纤维具有高拉伸强度(接近4 GPa),高弹性模量(约130 GPa)和低密度(970 kg / m3),从而增强了吸收能量的能力并在低温下抵抗渗透冲击负荷。为了保护免受冲击的威胁,这些纤维最通常以非织造复合层压材料的形式使用,该复合层压材料包括嵌入聚氨酯或橡胶基质中的准直纤维的单向层。然而,关于由这些纤维制成的机织织物和织物增强的复合层压材料的冲击行为的数据很少。因此,本论文旨在研究UHMWPE机织织物和织物增强复合材料层压板的渗透和破坏机理,并确定几个重要因素的影响。在3.3×10- 5至400 s-1。随着应变率的增加,观察到了从韧性到脆性断裂的转变。发现在低应变率(低于0.33 s-1)下,抗拉强度和杨氏模量随应变率的增加而增加,而破坏应变和韧性则随应变率的降低而降低。但是,这些拉伸性能对较高应变速率下的应变速率几乎不敏感。在所有应变速率下,纱线的强度都遵循2-参数威布尔分布。通过冲击试验和有限元建模研究了多层机织织物的冲击行为。通过比较未折叠织物,手风琴式折叠织物和卷式折叠织物的冲击性能,首次研究了织物折叠的效果。结果表明,将织物折叠成多层,与未折叠的织物相比,能显着提高其抗穿孔性能和能量吸收能力,并且对折织物的性能最佳。ii实验研究了四种不同树脂对机织物增强复合材料层压板的冲击性能。具有挠性基体的层压板在抗穿孔性和能量吸收方面表现更好,但是与由刚性基体制成的层压体相比,具有更大程度的变形和损坏。基体刚度在控制横向变形的传播,从而控制层压板的局部应变和抗穿孔性方面起着至关重要的作用。

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