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Multi-mode real-time strain monitoring in composites using low vacuum carbon fibers as a strain sensor under different loading conditions

机译:在不同负载条件下使用低真空碳纤维的复合材料中的多模实时应变监测

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Structural health monitoring is a vastly growing field consisting of sensors embedded in or attached with the structure which respond to the strain or other stimuli to monitor the deformation in real-time. In this study, a multi-mode strain detection is carried out in composites using nanomaterial-based sensor technology. A Carbon fiber (CF) sensor was developed using unidirectional carbon filaments aligned straightly together and its sensitivity was calculated experimentally, with gauge factor (GF) in 10.2-10.8 range. Then, this CF sensor is embedded gradually at different directions i.e. 0 degrees, +45 degrees, 90 degrees, -45 degrees between the plies of composite for real-time/in-situstrain monitoring. The composite specimen was then cut in star profile, each leg demonstrating the direction of the CF sensors. These composite samples are then tested under tensile and flexural cyclic loading. There is a good reproducibility in the results and the mechanical response of composite correlated perfectly with the electrical resistance of the CF sensor. It can also be noted that the sensors, depending on their respective position, manage to faithfully reproduce the mechanical behavior of the specimen tested (traction/compression). The results established that the CF exhibited good potential as flexible reinforcement forin-situmonitoring of composites and can provide detection over large sections and unapproachable locations. This study also showed that direction and position of the sensor plays a vital role in the detection, identification (whether its tensile or compressive) and quantification of the deformation experienced by the structure under different loading conditions.
机译:结构健康监测是一种巨大越来越多的领域,包括嵌入或附着的传感器,其结构响应应变或其他刺激以实时监测变形。在该研究中,使用基于纳米材料的传感器技术在复合材料中进行多模应变检测。使用单向碳长丝进行直接排列的单向碳纤维进行碳纤维(CF)传感器,并在实验上进行敏感性,在10.2-10.8范围内用仪表因子(GF)进行计算。然后,该CF传感器在不同方向上逐渐嵌入,即0度,+ 45度,90度,-45度,用于实时/位于风险的监测。然后将复合样品切割在星形轮廓中,每条腿展示CF传感器的方向。然后在拉伸和弯曲环状载荷下测试这些复合样品。在结果和复合材料的机械响应方面存在良好的再现性,与CF传感器的电阻完全相关。还可以注意到,根据其各自的位置,传感器,设法忠实地再现所测试的样本的力学行为(牵引/压缩)。结果确定,CF表现出良好的潜力作为复合材料的柔性加强件,可以在大段和未放弃的位置提供检测。本研究还表明,传感器的方向和位置在检测中起着至关重要的作用,识别(无论是其拉伸或压缩)和定量在不同的负载条件下结构所经历的变形。

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