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首页> 外文期刊>Measurement Science & Technology >Relating the state of cure to the real-time internal strain development in a curing composite using in-fibre Bragg gratings and dielectric sensors
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Relating the state of cure to the real-time internal strain development in a curing composite using in-fibre Bragg gratings and dielectric sensors

机译:使用光纤布拉格光栅和介电传感器将固化状态与固化复合材料的实时内部应变发展联系起来

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The paper reports results of preliminary experiments on a continuous curing carbon fibre reinforced epoxy composite, designed to achieve simultaneous characterizations of the state of cure of the resin and the development of strain in the reinforcing fibres. The measurements were carried out using embedded dielectric microsensors and in-fibre Bragg gratings (IFBGs) to follow changes in the conductivity of the matrix resin and in the internal strain in the embedded optical fibre respectively. This was performed using an automated data acquisition system, part of which uses real-time dielectric measurements to follow the industrially relevant parameters of curing. The system can multiplex several sensors and could be used in a quasi-distributed system. The IFBG sensors were demodulated using a scanning fibre Fabry-Pérot interferometer. The results obtained with this combined cure monitoring system show that it is possible to monitor the strain levels in the optical fibre resulting from the onsets of liquification, gelation and vitrification within the surrounding resin matrix. The combined measurements constitute a first step towards a scientific study of the development of internal residual stresses in a cured composite, which will be crucial to the ultimate elimination of warpage and spring-back in large composite structures.
机译:本文报道了连续固化碳纤维增强环氧复合材料的初步实验结果,该复合材料旨在同时表征树脂的固化状态和增强纤维中应变的发展。使用嵌入式电介质微传感器和光纤布拉格光栅(IFBG)进行测量,以分别跟踪基体树脂的电导率和嵌入式光纤中的内部应变的变化。这是使用自动化数据采集系统执行的,该系统的一部分使用实时介电测量值来跟踪工业上与固化相关的参数。该系统可以多路复用多个传感器,并且可以在准分布式系统中使用。使用扫描光纤法布里-珀罗干涉仪对IFBG传感器进行解调。用这种组合的固化监测系统获得的结果表明,可以监测由于周围树脂基体内的液化,胶凝和玻璃化现象而引起的光纤应变水平。组合的测量值是对固化复合材料内部残余应力发展进行科学研究的第一步,这对于最终消除大型复合结构的翘曲和回弹至关重要。

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