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Dynamic fiber Bragg gratings based health monitoring system of composite aerospace structures

机译:基于动态光纤布拉格光栅的复合航空结构健康监测系统

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摘要

The main purpose of the current work is to develop a new system for structural health monitoring of composite aerospace structures based on real-time dynamic measurements, in order to identify the structural state condition. Long-gauge Fibre Bragg Grating (FBG) optical sensors were used for monitoring the dynamic response of the composite structure. The algorithm that was developed for structural damage detection utilizes the collected dynamic response data, analyzes them in various ways and through an artificial neural network identifies the damage state and its location. Damage was simulated by slightly varying locally the mass of the structure (by adding a known mass) at different zones of the structure. Lumped masses in different locations upon the structure alter the eigen-frequencies in a way similar to actual damage. The structural dynamic behaviour has been numerically simulated and experimentally verified by means of modal testing on two different composite aerospace structures. Advanced digital signal processing techniques, e.g. the wavelet transform (WT), were used for the analysis of the dynamic response for feature extraction. WT's capability of separating the different frequency components in the time domain without loosing frequency information makes it a versatile tool for demanding signal processing applications. The use of WT is also suggested by the no-stationary nature of dynamic response signals and the opportunity of evaluating the temporal evolution of their frequency contents. Feature extraction is the first step of the procedure. The extracted features are effective indices of damage size and location. The classification step comprises of a feed-forward back propagation network, whose output determines the simulated damage location. Finally, dedicated training and validation activities were carried out by means of numerical simulations and experimental procedures. Experimental validation was performed initially on a flat stiffened panel, representing a section of a typical aeronautical structure, manufactured and tested in the lab and, as a second step, on a scaled up space oriented structure, which is a composite honeycomb plate, used as a deployment base for antenna arrays. An integrated FBG sensor network, based on the advantage of multiplexing, was mounted on both structures and different excitation positions and boundary conditions were used. The analysis of operational dynamic responses was employed to identify both the damage and its position. The system that was designed and tested initially on the thin composite panel, was successfully validated on the larger honeycomb structure. Numerical simulation of both structures was used as a support tool at all the steps of the work providing among others the location of the optical sensors used. The proposed work will be the base for the whole system qualification and validation on an antenna reflector in future work.
机译:当前工作的主要目的是开发一种基于实时动态测量的复合材料航空结构结构健康监测的新系统,以识别结构状态条件。长规格光纤布拉格光栅(FBG)光学传感器用于监测复合结构的动力响应。开发用于结构损伤检测的算法利用收集的动态响应数据,以各种方式对其进行分析,并通过人工神经网络识别损伤状态及其位置。通过在结构的不同区域略微改变结构的质量(通过添加已知质量)来模拟损坏。结构上不同位置的肿块以与实际损坏相似的方式改变特征频率。通过对两种不同的复合航空结构进行模态测试,对结构动力行为进行了数值模拟和实验验证。先进的数字信号处理技术,例如小波变换(WT)用于分析特征提取的动态响应。 WT具有在时域中分离不同频率分量而又不会丢失频率信息的能力,使其成为要求苛刻的信号处理应用的多功能工具。动态响应信号的非平稳性质以及评估其频率内容随时间变化的机会也提示了WT的使用。特征提取是该过程的第一步。提取的特征是损伤大小和位置的有效指标。分类步骤包括前馈反向传播网络,其输出确定模拟的损坏位置。最后,通过数值模拟和实验程序进行了专门的培训和验证活动。实验验证最初是在平坦的加劲板上进行的,该加劲板是典型的航空结构的一部分,在实验室中进行了制造和测试,第二步是在放大的面向空间的结构上使用,该结构是复合蜂窝板,用作天线阵列的部署基础。基于多路复用优势的集成FBG传感器网络安装在两种结构上,并使用了不同的激励位置和边界条件。通过对运行动态响应的分析来识别损坏及其位置。该系统最初是在薄复合板上设计和测试的,已在较大的蜂窝结构上成功验证。在工作的所有步骤中,这两种结构的数值模拟都用作支持工具,其中提供了所用光学传感器的位置。拟议的工作将成为整个系统鉴定和未来天线反射器验证的基础。

著录项

  • 来源
    《Acta astronautica》 |2011年第8期|p.445-457|共13页
  • 作者单位

    NPI, ESA/ESTEC & Department of Mechanical Engineering & Aeronautics, University of Patras, GR 265 00 Patras, Greece;

    Applied Mechanics Laboratory, Department of Mechanical Engineering & Aeronautics, University of Patras, CR-26500 Patras, Achaia, Greece;

    Applied Mechanics Laboratory, Department of Mechanical Engineering & Aeronautics, University of Patras, CR-26500 Patras, Achaia, Greece;

    European Space Research and Technology Centre (ESA-ESTEC), Postbus 299, NL-2200 AC Noordwijk, The Netherlands;

    Applied Mechanics Laboratory, Department of Mechanical Engineering & Aeronautics, University of Patras, CR-26500 Patras, Achaia, Greece;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    structural health monitoring; fibre bragg grating; composite aerospace structures; dynamic testing; damage detection;

    机译:结构健康监测;光纤布拉格光栅复合航空结构;动态测试;损坏检测;

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