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Bioinspired engineering study of Plantae vascules for self-healing composite structures

机译:用于自愈复合结构的植物脉管的生物启发工程研究

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摘要

This paper presents the first conceptual study into creating a Plantae-inspired vascular network within a fibre-reinforced polymer composite laminate, which provides an ongoing self-healing functionality without incurring a mass penalty. Through the application of a ‘lost-wax’ technique, orthogonal hollow vascules, inspired by the ‘ray cell’ structures found in ring porous hardwoods, were successfully introduced within a carbon fibre-reinforced epoxy polymer composite laminate. The influence on fibre architecture and mechanical behaviour of single vascules (located on the laminate centreline) when aligned parallel and transverse to the local host ply was characterized experimentally using a compression-after-impact test methodology. Ultrasonic C-scanning and high-resolution micro-CT X-ray was undertaken to identify the influence of and interaction between the internal vasculature and impact damage. The results clearly show that damage morphology is influenced by vascule orientation and that a 10 J low-velocity impact damage event is sufficient to breach the vasculature; a prerequisite for any subsequent self-healing function. The residual compressive strength after a 10 J impact was found to be dependent upon vascule orientation. In general, residual compressive strength decreased to 70 per cent of undamaged strength when vasculature was aligned parallel to the local host ply and a value of 63 per cent when aligned transverse. This bioinspired engineering study has illustrated the potential that a vasculature concept has to offer in terms of providing a self-healing function with minimum mass penalty, without initiating premature failure within a composite structure.
机译:本文提出了第一个概念研究,目的是在纤维增强的聚合物复合材料层压板中创建灵感源自植物的血管网络,该网络可提供持续的自修复功能,而不会造成质量损失。通过应用“失蜡”技术,在空心碳纤维增强的环氧聚合物复合材料层压板中成功引入了正交空心空心血管,这些空心空心血管受到环状多孔硬木中“射线单元”结构的启发。使用碰撞后压缩测试方法,通过实验表征了当与本地主体层平行和垂直排列时,单个血管(位于层压材料中心线上)对纤维结构和机械性能的影响。进行了超声波C扫描和高分辨率的微CT X射线,以识别内部脉管系统与冲击损伤之间的影响以及相互作用。结果清楚地表明,损伤形态受血管取向的影响,并且10 J低速冲击损伤事件足以破坏血管。任何后续自我修复功能的前提条件。发现10 J冲击后的残余抗压强度取决于血管的方向。通常,当脉管系统平行于局部宿主层对齐时,残余抗压强度降至未损坏强度的70%,而横向对齐时则为63%。这项以生物为灵感的工程研究表明,脉管系统概念必须具备的潜力,即以最小的质量损失提供自愈功能,而不会引发复合结构内的过早破坏。

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