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Development of Fiber Bragg Grating Strain, Thermal, and Magnetic Sensors for Smart Structure Applications.

机译:开发用于智能结构应用的光纤布拉格光栅应变,热和磁传感器。

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摘要

Optical fiber Bragg gratings offer great potential for sensing pertinent phenomena in a wide range of applications. Such range is demonstrated in this dissertation with the utilization of fiber Bragg gratings (FBGs) in two different fields of research. Both of these fields are encompassed by an overarching goal of developing smart structures capable of providing necessary feedback to enhance performance and safety. FBGs are employed in the field of structural health monitoring by measuring strain and detecting damage when embedded within AS4/3501-6 quasi-isotropic composites. The grating sensors are also utilized in the field of ferroic materials to explore novel methods of coupling external phenomena to the optical fiber reflection signal. The desire to create smart structures is carried out by developing the Bragg grating measurements system created by NASA Dryden Flight Research Center. This development involves studying the validity of strain measurements provided by embedded Bragg gratings and expanding the capabilities of the measurement system by coupling the sensors to additional types of external phenomena such as magnetic fields.;Theoretical and experimental work is carried out for both phases of the dissertation. In the strain sensing phase, photoelasticity, electromagnetic wave propagation, and coupled mode theory are applied to understand the theoretical behavior of FBGs. Mechanical loads are applied to composite specimens with embedded FBGs to monitor the response of the reflection signal. Finite element analysis is then performed to further clarify how the load is transferred from the host composite to the embedded fiber. In the thermal and magnetic sensing phase, a description is given for the fabrication and experimental results of coating FBGs with thin film ferroic materials. Next, a more extensive electromagnetic wave propagation theory is described in the context of manipulating various fiber characteristics for magnetic field coupling. A FBG magnetometer is then fabricated and a magneto-optic coupling is demonstrated experimentally with an externally applied magnetic field.
机译:布拉格光纤光栅为在广泛的应用中检测相关现象提供了巨大的潜力。通过在两个不同的研究领域中使用光纤布拉格光栅(FBG)来证明这一范围。这两个领域都被开发智能结构的总体目标所涵盖,该智能结构能够提供必要的反馈以增强性能和安全性。 FBG通过测量应变并检测嵌入AS4 / 3501-6准各向同性复合材料中的损坏,而用于结构健康监测领域。光栅传感器还用于铁材料领域,以探索将外部现象耦合到光纤反射信号的新颖方法。通过开发由NASA Dryden飞行研究中心创建的Bragg光栅测量系统来实现创建智能结构的愿望。这一发展包括研究由嵌入式布拉格光栅提供的应变测量的有效性,以及通过将传感器耦合到其他类型的外部现象(例如磁场)来扩展测量系统的功能。在这两个阶段都进行了理论和实验工作论文。在应变传感阶段,应用光弹性,电磁波传播和耦合模式理论来了解FBG的理论行为。将机械载荷施加到具有嵌入式FBG的复合样品上,以监控反射信号的响应。然后进行有限元分析,以进一步阐明载荷是如何从基质复合材料转移到嵌入纤维的。在热和磁传感阶段,对用薄膜铁磁材料涂覆FBG的制造和实验结果进行了描述。接下来,在操纵各种光纤特性以进行磁场耦合的背景下,将描述更广泛的电磁波传播理论。然后制造了FBG磁力计,并在外部施加的磁场下通过实验证明了磁光耦合。

著录项

  • 作者

    Emmons, Michael Christian.;

  • 作者单位

    University of California, Los Angeles.;

  • 授予单位 University of California, Los Angeles.;
  • 学科 Engineering Mechanical.
  • 学位 Ph.D.
  • 年度 2012
  • 页码 473 p.
  • 总页数 473
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:43:20

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