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Improved Energy Absorption in 3D Woven Composites by Weave Parameter Manipulation

机译:通过编织参数操作改善3D编织复合材料中的能量吸收

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3D woven composites show significantly improved out-of-plane properties over traditional 2D laminates. This high through-thickness reinforcement is desirable in crashworthiness applications where crushing energy can be increased by composites' improved interlaminar toughness. However, their use in practical applications is stunted by the poor understanding of how small variations in weave parameters, whether intended or not, affect the performance of these materials. Here, we demonstrate that small changes in textile properties, in this case pick density and float length have a knock-on effect that can greatly improve or diminish the crush performance of a 3D woven layer-to-layer structural fabric. Quasi-static and dynamic energy absorption values up to approximately 95J/g and 92J/g respectively are achieved. Crush performance is investigated on omega-shaped coupons, under both quasi-static and dynamic loading conditions with crush rates between 2mm/min and 8.5m/s. The failure mechanisms present during progressive crush under quasi-static loading transitions between more expected brittle dominated failure and ductile dominated failure, which is more typical of metals under similar loading conditions. Whereas when dynamic loading is considered, the materials present a more typical splaying failure event. As a result, additional exploration of the three-point bending response of these varied architectures is presented as a means of further explaining the interplay between lamina bending and progressive folding/micro-buckling in these materials. The effect of the weave's architectural alterations on physical composite properties such as weight, density and conformability to shape is also investigated.
机译:3D编织复合材料显示出传统的2D层压板上的平面外性能显着提高。这种高通厚度加强件在持续的耐火性应用中是期望的,其中通过复合材料的改善的层间韧性可以增加破碎能量。然而,它们在实际应用中的使用是通过对织物参数的差异的差,无论是旨在的,是否有意,影响这些材料的性能。在这里,我们证明纺织性能的小变化,在这种情况下,挑选密度和浮动长度具有敲击效果,可以大大提高或减小3D编织层到层结构织物的压碎性能。达到准静态和动态能量吸收值,分别高达约95J / g和92J / g。在ω形优惠券上调查挤压性能,在准静态和动态负载条件下,挤压率在2mm / min之间和8.5m / s之间。在逐步脆性主导失败和延展性的脆性负载转变下逐渐粉碎过程中存在的失败机制在类似的负载条件下更为典型的金属。虽然考虑了动态加载时,材料呈现了更典型的次剧本失败事件。结果,对这些变化架构的三点弯曲响应的额外探索被呈现为进一步解释这些材料中的薄片弯曲和渐进式折叠/微屈曲之间的相互作用的方法。还研究了织织的架构改变对物理复合性质的影响,例如重量,密度和形状的形状的形状。

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