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高灵敏度游标增敏型光纤法珀应变传感器

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提出并制备一种游标增敏型光纤法布里-珀罗(法珀)应变传感器,实现高灵敏度应变测量.该传感器由两个单模光纤-空芯光纤-单模光纤结构的法布里-珀罗干涉仪(FPI)并联组成,分别作为传感腔和参考腔.保持传感腔不变,选择不同的参考腔,利用游标效应解调,追踪并联后反射谱包络的漂移,可实现不同的放大倍数.实验结果表明:在0~900 µε的应变范围内,单个传感腔的应变灵敏度为1.31 pm/με,并联之后传感器的应变灵敏度分别达到-11.50 pm/µε和-12.76 pm/με,放大了 8.70倍和9.74倍,传感器的应变灵敏度显著提升,同时,传感器具备制作简单、高灵敏度、易操作和低成本等特点,具有广阔的应用前景.
High-Sensitivity Vernier Sensitized Fiber Optic Fabry-Perot Strain Sensor
Objective Fiber optic strain sensors,with their immunity to electromagnetic interference,small size,light weight,and high stability in harsh environments,offer potential applications in numerous fields such as aerospace,biomedicine,and frozen soil monitoring.Recent research has demonstrated various fabrication techniques for these sensors,including fiber Bragg grating(FBG),long period fiber grating(LPFG),Fabry-Perot interferometer(FPI),tapered fiber,and diverse fiber optic interferometers.Some researchers have developed fiber optic sensors utilizing FP cavities and Mach-Zehnder interferometer(MZI)cascaded,achieving a strain sensitivity of 4.80 pm/με over a 0 to 600 με range,indicating low sensitivity.Others have introduced a novel parallel structure of fiber FPIs leveraging the cursor effect,comprising an open cavity FPI with a single-mode optical fiber(SMF)-SMF-SMF structure and a closed cavity FPI with an SMF-hollow core optical fiber(HCST)-SMF structure in parallel.This enhances the strain sensitivity of the sensor to-43.20 pm/με,which is 4.6 times higher than that of a single open chamber.However,despite its high strain sensitivity,this sensor is not widely adopted due to its large dislocation amplitude,manufacturing challenges,and low repeatability.In this study,we propose and prepare a vernier-sensitized fiber Fabry-Perot strain sensor to achieve high-sensitivity strain measurements.Methods In the high-sensitivity vernier sensitizer fiber Fabry-Perot strain sensor,both the sensor cavity and reference cavity employ an SMF-HCF-SMF structure for FPI.By adjusting the cavity lengths of both FPIs,two similar yet distinct free spectrum ranges(FSRs)are achieved,generating a vernier effect.As the external strain on the sensor cavity changes incrementally,the reflection spectrum of the sensor shifts,allowing for the measurement of the sensor's strain sensitivity.Subsequently,the strain sensitivity of the single sensing cavity is compared with that of the two samples in parallel,resulting in a significant enhancement in sensitivity.Results and Discussions Within the strain range of 0-900 με,the strain sensitivity of a single sensor cavity is 1.31 pm/με.After parallel connection,the strain sensitivity of the sensor reaches-11.50 pm/με and-12.76 pm/με,respectively,amplifying the sensitivity by 8.70 times and 9.74 times and significantly improving the sensor's strain sensitivity.Conclusions In this paper,we fabricate a vernier sensitized fiber Fabry-Perot strain sensor and improve the sensitivity of strain measurement by keeping the sensing cavity unchanged and altering the length of the reference cavity.The sensor consists of two FPIs with an SMF-HCF-SMF structure connected in parallel by 3 dB couplers.During preparation,the length of the hollow core fiber is controlled as closely as possible so that the sensing and reference cavities have similar FSRs,enabling the superimposed spectrum to produce a vernier effect.The experimental results show that within a strain range of 0-900 με,the sensitivity of a single sensing cavity is 1.31 pm/με,the length of the sensing cavity remains unchanged,and the length of the reference cavity is changed by changing the amplification factor of the strain sensitivity.The strain sensitivity of the sensor can be improved to-11.50 pm/με and-12.76 pm/με by using the cursor effect demodulation in parallel.This method yields a strain sensitivity 8.70 and 9.74 times higher than that of a single sensing cavity FPI,significantly enhancing strain sensitivity.Producing two samples for strain testing with different strain sensitivity amplifications can expand the sensor's measurement range in the future,improving measurement precision and accuracy to meet various strain conditions.The sensor also offers advantages such as low production cost,simple operation,and high sensitivity,making it applicable in fields like aerospace,frozen soil monitoring,and biomedicine.

fiber opticsoptical fiber sensingFabry-Perot interferometerparallel vernier sensitizationstrain

芮菲、葛益娴、苏蕊、倪海彬

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南京信息工程大学电子与信息工程学院,江苏南京 210044

南京信息工程大学江苏省大气环境与装备技术协同创新中心,江苏南京 210044

光纤光学 光纤传感 法布里-珀罗干涉仪 并联游标增敏 应变

2024

光学学报
中国光学学会 中国科学院上海光学精密机械研究所

光学学报

CSTPCD北大核心
影响因子:1.931
ISSN:0253-2239
年,卷(期):2024.44(16)