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In-situ deformation monitoring of aerospace qualified composites with embedded improved draw tower fibre Bragg gratings

机译:原位变形监测或航空航天合格复合材料,嵌入改进的拉丝塔光纤布拉格光栅

摘要

Aerospace certified fibre reinforced plastics (FRPs) are extreme performing construction materials, which today are increasingly applied in primary structures of the new generation aircrafts (e.g. Boeing 787, Airbus 350, Bombardier C-Series), such as the fuselage, the wings and the fin. An interesting aspect on the technological point of view of sensing is that airplane manufacturers such as Airbus and Boeing are looking at incorporating health-monitoring systems (such as optical fibre sensors, especially fibre Bragg gratings) that will allow the airplane to self-monitor and report maintenance requirements to ground-based computer systems. However, one has to realize that the mechanical behaviour of anisotropic FRPs is significantly different compared to conventional isotropic construction materials. In this dissertation, the author focuses on monitoring the strain and (permanent) deformation in carbon reinforced plastic laminates with embedded fibre Bragg gratings. The research is divided in two main parts.In the first part of this research, the existing fibre draw tower technology is utilized, to manufacture an improved version of the existing in-line high quality, draw tower fibre Bragg gratings (DTG®s). With respect to accurate measurements and structural integrity, the research focuses on reducing the total diameter of the optical fibre, so the incorporation in the reinforcement fibres is enhanced and the distortion in the composite is reduced. The author elaborates in detail the methods of strain and temperature calibrations and the different setups which are applied. Additionally, with respect to the high temperatures during the composite manufacturing process, the thermal stability of the DTG®s is studied at elevated temperatures (>300°C).In the second part, the author embeds the DTG®s in specific types of thermoset and thermoplastic carbon reinforced plastic laminates. The author applies the embedded DTG®s in several stages of the composite lifetime. Starting with the monitoring of the composite manufacturing process and ending with fatigue testing until failure of the composite laminates. During the different experiments, the sensors are subjected to high temperatures, high pressures, extreme longitudinal strains and transverse strains and in the mean time, they are employed to very accurately measure (multi-axial) strains inside composites at microstrain level (~10 6).
机译:航空航天认证的纤维增强塑料(FRP)是性能极高的建筑材料,如今已越来越多地应用于新一代飞机(例如,波音787,空中客车350,庞巴迪C系列)的主要结构,例如机身,机翼和机翼。鳍。从传感技术的角度来看,一个有趣的方面是,空中客车公司和波音公司等飞机制造商正在考虑采用健康监测系统(例如光纤传感器,尤其是布拉格光纤光栅),以使飞机能够自我监测和监控。向地面计算机系统报告维护要求。但是,必须认识到,各向异性FRP的机械性能与传统的各向同性建筑材料相比有很大不同。在本文中,作者着重于监测带有嵌入式光纤布拉格光栅的碳增强塑料层压板的应变和(永久)变形。本研究分为两个主要部分。在本研究的第一部分中,利用了现有的光纤拉丝塔技术,以制造现有在线高质量拉丝塔架光纤布拉格光栅(DTG®)的改进版本。 。关于精确的测量和结构完整性,研究集中在减小光纤的总直径上,因此增强纤维中的掺入量增加了,复合材料中的变形也减少了。作者详细阐述了应变和温度校准的方法以及所应用的不同设置。此外,关于复合材料制造过程中的高温,研究了DTG®在高温(> 300°C)下的热稳定性。第二部分,作者将DTG®嵌入了特定类型的热固性和热塑性碳增强塑料层压板。作者将嵌入式DTG®应用于复合材料使用寿命的多个阶段。从复合材料制造过程的监视开始,以疲劳测试结束,直到复合材料层压板失效。在不同的实验中,传感器会经受高温,高压,极端的纵向应变和横向应变,同时,它们被用来非常精确地测量复合材料内部微应变水平下的(多轴)应变(〜10 6 )。

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    Voet Eli;

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  • 年度 2011
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