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Fiber Bragg grating application to study an unmanned aerial system composite wing

机译:纤维布拉格光栅应用研究无人机的空中系统复合翼

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Structural health monitoring consists of structural integrity assessment by means of data acquisition and analysis from on-board sensors. Fiber Bragg grating-based monitoring is increasingly attracting the scientific community working on structural health monitoring due to its multiple advantages such as electromagnetic immunity, negligible weight and size, and multiplexing availability. However, the integration of fiber optics within a structure still requires new procedures and signal treatment techniques for increasing technology reliability and exploiting its full potential. In this article, five embedded Fiber Bragg grating sensors are installed in an unmanned aerial system wing for correlating operational conditions with structural strain in real time. Sensor locations are determined by a finite element model accounting for manufacturing limitations of the fiber line. The developed Fiber Bragg grating system and processing techniques are used in static and dynamic tests showing the capacities of this powerful technology. The assessment includes deflection shape estimation, strain cycles counting, audible and visual strain alarms, aileron control based on strain levels, and structural resonance response detection.
机译:结构健康监测通过从板上的传感器进行数据采集和分析,包括结构完整性评估。基于光纤的纤维纤维的监测越来越多地吸引科学界,由于其电磁抗扰度,重量和尺寸可忽略不足,多路复用可用性等多种优点,因此对结构健康监测进行了研究。然而,在结构中的光纤集成仍然需要新的程序和信号处理技术,以提高技术可靠性并利用其全部潜力。在本文中,五个嵌入式光纤布拉格光栅传感器安装在无人的空中系统机翼中,用于实时将操作条件与结构应变相关联。传感器位置由有限元模型确定用于纤维线的制造限制。发达的光纤布拉格光栅系统和加工技术用于静态和动态测试,显示这种强大技术的能力。评估包括偏转形状估计,应变循环计数,可视和视觉应变报警,基于应变水平的Aileron控制,以及结构共振响应检测。

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