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Design and modeling of fiber optical current sensor based on magnetostriction

机译:基于磁致伸缩的光纤电流传感器的设计与建模

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摘要

A novel fiber optical current sensor (FOCS) which is based on a giant magnetostrictive material, Terfenol-D (T-D) is modeled and prototyped. Several experiments have been conducted to validate the expected results. Magnetostriction is defined as the change in dimensions of a material under the influence of an external magnetic field. The cause of the change in length is due to the rotation and re-orientation of the small magnetic domains in the magnetostrictive material. The magnetostriction of Terfenol-D is modeled and investigated using several software packages. Here, a magnetostriction-based FOCS using a Terfenol-D/epoxy composite is investigated. Particularly, the FOCS is based on applying magnetostrictive composite material to transform an external magnetic field into a corresponding mechanical strain caused by the magnetostriction of the composite. The composite is incorporated in the FOCS for increased durability, flexibility in shape, extended frequency response, and tensile strength compared to monolithic materials. Coupling Terfenol-D with a fiber Bragg grating (FBG) is an excellent method of magnetic field sensing. It consists of an FBG embedded in the composite that converts magnetostrictive strain into frequency chirp of the optical signal in proportion to a magnetic field. This will form a sensor that is compact, lightweight, and immune from electromagnetic interference. For electromagnetic interference mitigation and optimal signal condition, an FBG, which can be easily integrated with an optical fiber network and reflect a narrow band of wavelengths based on grating periods, is used to encode strain information onto an optical signal. This FOCS has potential in detecting power systems faults due to its advantages over the conventional current transformers.;Experiments have been performed to investigate the effect of direct current (DC) and alternate current (AC) on the response of the FOCS. Consistent results that indicate its reliability have been obtained. The experiment results matched the predicted response. The effect of the temperature on the response of the FOCS also has been investigated. Finally, future research directions are presented for the enhancement of the FOCS technology.
机译:对基于巨型磁致伸缩材料Terfenol-D(T-D)的新型光纤电流传感器(FOCS)进行了建模和原型设计。已经进行了一些实验以验证预期结果。磁致伸缩定义为在外部磁场的影响下材料尺寸的变化。长度变化的原因是由于磁致伸缩材料中小磁畴的旋转和重新取向。使用几个软件包对Terfenol-D的磁致伸缩进行建模和研究。在这里,研究了使用Terfenol-D /环氧树脂复合材料的基于磁致伸缩的FOCS。特别地,FOCS基于施加磁致伸缩复合材料以将外部磁场转换成由复合材料的磁致伸缩引起的相应的机械应变。与单块材料相比,该复合材料被并入FOCS,以提高耐用性,形状灵活性,扩展的频率响应和拉伸强度。将Terfenol-D与光纤布拉格光栅(FBG)耦合是一种出色的磁场感应方法。它由嵌入复合材料中的FBG组成,该复合材料将磁致伸缩应变转换成与磁场成比例的光信号频率frequency。这将形成紧凑,轻巧且不受电磁干扰的传感器。为了减轻电磁干扰和优化信号条件,可以将FBG轻松集成到光纤网络中,并根据光栅周期反射窄波长带,从而将应变信息编码到光信号上。该FOCS相对于传统的电流互感器具有优势,因此具有检测电力系统故障的潜力。已经进行了一些实验来研究直流(DC)和交流(AC)对FOCS响应的影响。已获得表明其可靠性的一致结果。实验结果符合预期的响应。还研究了温度对FOCS响应的影响。最后,为增强FOCS技术提出了未来的研究方向。

著录项

  • 作者

    Lasassmeh, Suha.;

  • 作者单位

    The University of Wisconsin - Milwaukee.;

  • 授予单位 The University of Wisconsin - Milwaukee.;
  • 学科 Electrical engineering.
  • 学位 Ph.D.
  • 年度 2017
  • 页码 136 p.
  • 总页数 136
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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