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基于包层模谐振的三包层石英特种光纤温度传感特性研究
引用本文:付兴虎,谢海洋,杨传庆,张顺杨,付广伟,毕卫红.基于包层模谐振的三包层石英特种光纤温度传感特性研究[J].物理学报,2016,65(2):24211-024211.
作者姓名:付兴虎  谢海洋  杨传庆  张顺杨  付广伟  毕卫红
作者单位:燕山大学信息科学与工程学院, 河北省特种光纤与光纤传感重点实验室, 秦皇岛 066004
基金项目:国家自然科学基金(批准号: 61205068, 61475133), 河北省自然科学基金(批准号: F2015203270), 河北省高等学校青年拔尖人才计划项目(批准号: BJ2014057), 燕山大学 “新锐工程”人才支持计划, 燕山大学信息学院优秀青年基金(批准号: 2014201) 资助的课题.
摘    要:提出了一种基于包层模谐振的光纤温度传感器. 它是通过将三包层石英特种光纤(TCQSF)两端分别与普通单模光纤(SMF)电弧熔接构成的SMF-TCQSF-SMF结构. 根据耦合模理论, 首先将TCQSF等效为三个同轴波导, 按各波导模场的分布特点标量计算其传输模式的色散曲线, 并深入研究其耦合长度与传输谱线之间的关系; 其次根据光纤的热光效应及热膨胀效应, 分析计算该传感器的温度灵敏度; 最后选取耦合长度为一个拍长时的传感器进行温度传感实验. 实验结果表明, 在35-95 ℃的温度变化范围内, 其温度灵敏度为73.74 pm/℃, 与理论计算结果一致. 因此, 该传感器具有结构简单、制备容易、灵敏度高、包层模激发可控等优点, 可用于工业生产、生物医学等温度传感领域.

关 键 词:包层模谐振  温度传感器  三包层石英特种光纤  耦合模理论
收稿时间:2015-06-06

Research on the temperature sensing characteristics of triple cladding quartz specialty fiber based on cladding mode resonance
Fu Xing-Hu,Xie Hai-Yang,Yang Chuan-Qing,Zhang Shun-Yang,Fu Guang-Wei,Bi Wei-Hong.Research on the temperature sensing characteristics of triple cladding quartz specialty fiber based on cladding mode resonance[J].Acta Physica Sinica,2016,65(2):24211-024211.
Authors:Fu Xing-Hu  Xie Hai-Yang  Yang Chuan-Qing  Zhang Shun-Yang  Fu Guang-Wei  Bi Wei-Hong
Institution:Key Laboratory for Special Fiber and Fiber Sensor of Hebei Province, School of Information Science and Engineering, Yanshan University, Qinhuangdao 066004, China
Abstract:A triple-cladding quartz specialty fiber (TCQSF) temperature sensor based on cladding mode resonance is made. The sensor is fabricated by just splicing a short, few-centimeter-long segment of TCQSF between two standard single-mode fibers (SMFs), so the sensor structure is simple. In order to explain its sensing principle in detail, we assume that the TCQSF is equivalent to three coaxial waveguides based on coupling mode theory. Utilizing the scalar method and the relationship between Bessel function and mode field distribution of step-index circular symmetry waveguide, the mode field distribution of these waveguides and their characteristic equation can be easily obtained. Then the dispersion curves of each mode which is transmitted in the three waveguides can be calculated. The intersection between the fundamental core mode LP01(rod) in the rod waveguide and the cladding mode LP01(tube) in the tube waveguide I indicates that the two modes have the same propagation constant, and satisfy the phase-matching condition when the wavelength is 1563.7 nm which is known the resonant wavelength. And only when the sensor length is equal to the beatlength, can the light be coupled completely from the core to the fluorine-doped silica cladding. Thus, the cladding mode resonance phenomenon occurs and a band-stop filter spectrum will be obtained. Then the sensor is applied to the simulation calculation of the temperature sensing characteristics. With increasing temperature, both the refractive index of each layer and the sizes of the axial and radial fibers will change, which will finally lead to a big difference on the dispersion curves of LP01(rod) and LP01(tube). Therefore, the resonant wavelength shift of the sensor can be obtained by just calculating the dispersion curves of these two modes at different temperatures, and the scope of curvature sensitivity is 70.76-97.36 pm/℃. Finally, a straight forward experiment is performed to prove the temperature sensing properties. Experimental results show that the sensor has a sensitivity in temperature of 73.74 pm/℃ at 35 ℃-95 ℃, which is completely consistent with the theoreticaly calculatied results. Thus, the proposed sensor has the advantages of simple structure, easy fabrication, highly sensitivity, controlled cladding mode excitation, and so on. It can be used in industrial production, biomedical and other temperature sensing areas.
Keywords:cladding mode resonance  temperature sensor  triple cladding quartz specialty fiber  coupling mode theory
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