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Optical fiber sensor for simultaneous measurement of distributed strain and temperature.

机译:光纤传感器,用于同时测量分布的应变和温度。

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摘要

Optical fiber sensors play an important role in health monitoring of space shuttles, aviation vehicles, and civil structures to issue early warnings. In this dissertation, a novel fiber sensor configuration using first and second order fiber Bragg gratings, coupled with Fourier demodulation technique, is investigated for simultaneously measuring strain and temperature. A detailed theoretical analysis for measurement resolution with regard to the sensor system matrix and the wavelength detection resolution is carried out for six different fiber grating based sensor configurations. Experimental methods to induce first and second order Bragg resonances in regular fiber gratings in single mode fibers are investigated. Far field (Fraunhofer field) diffraction intensity pattern in phase masks (dielectric surface relief gratings) is studied using simple plane wave electro-magnetic theory and the results are compared with the experimental measurements. A Fourier transform Bragg demodulator (FTBD) is built for simultaneously interrogating fiber gratings at 780 nm and 1550 nm wavelength ranges. The demodulator sensitivity and the grating sensor multiplexibility are investigated in terms of constraints arising from optical detectors, optical loss, and the spectral shape of the fiber gratings and mirrors. Finally, the measurement resolution of the whole sensor system is examined using simulated sensor data under two different laser tuning schemes; a single continuous sweep of the entire grating spectra and a multiple successive sweeps of the entire grating spectra. It is shown that the strain and temperature can be measured with a resolution of ±150 × 10−6 and ±25°C using first and second order fiber grating (1550 nm/780 nm) sensors bonded to a 30.48 cm x 2.54 cm x 2.3 mm aluminum beam and interrogated by a FTBD system with single laser sweep.
机译:光纤传感器在航天飞机,航空器和民用建筑的健康监控中发挥重要作用,以发出预警。本文研究了一种采用一阶和二阶光纤布拉格光栅并结合傅里叶解调技术的新型光纤传感器,以同时测量应变和温度。针对六种不同的基于光纤光栅的传感器配置,对传感器系统矩阵和波长检测分辨率的测量分辨率进行了详细的理论分析。研究了在单模光纤中的常规光纤光栅中诱发一阶和二阶布拉格共振的实验方法。利用简单的平面波电磁理论研究了相位掩模(电介质表面起伏光栅)中的远场(Fraunhofer场)衍射强度图,并将其结果与实验测量结果进行了比较。建立了傅里叶变换布拉格解调器(FTBD),用于同时询问780 nm和1550 nm波长范围内的光纤光栅。根据光检测器,光损耗以及光纤光栅和反射镜的光谱形状所产生的约束条件,研究了解调器的灵敏度和光栅传感器的可复用性。最后,在两种不同的激光调谐方案下,使用模拟的传感器数据检查整个传感器系统的测量分辨率。整个光栅光谱的单次连续扫描和整个光栅光谱的多次连续扫描。结果表明,使用键合到第一和第二阶光纤光栅(1550 nm / 780 nm)的传感器,可以在±150×10 -6 和±25°C的分辨率下测量应变和温度。 30.48厘米x 2.54厘米x 2.3毫米的铝梁,并通过FTBD系统进行单激光扫描。

著录项

  • 作者

    Sivanesan, Ponniah.;

  • 作者单位

    University of Maryland College Park.;

  • 授予单位 University of Maryland College Park.;
  • 学科 Physics Optics.; Engineering Electronics and Electrical.
  • 学位 Ph.D.
  • 年度 2002
  • 页码 p.2890
  • 总页数 228
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 光学;
  • 关键词

  • 入库时间 2022-08-17 11:45:59

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