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基于虚拟游标增敏的法布里-珀罗温度传感器 被引量:2

Fabry-Perot Temperature Sensor Based on Virtual Vernier Sensitization
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摘要 针对干涉型光纤传感器,提出一种利用虚拟干涉仪实现灵敏度可调控的光学游标增敏方法,并将其应用于光纤法布里-珀罗(FP)温度传感器的增敏测量中。通过将拉锥光纤插入封有UV胶的毛细管中制得所设计的温度传感器,利用UV胶在不同温度下的体积膨胀与收缩改变FP腔长,使其干涉谱发生漂移,从而实现温度测量。根据干涉公式得到虚拟干涉谱,该虚拟干涉谱与温度传感器干涉谱叠加后产生并联式光学游标效应,通过测量叠加谱包络的漂移实现温度的增敏测量。在分析游标增敏原理的基础上,通过改变双腔长度,对游标包络的放大情况进行了仿真,制备出温度传感器样品,通过实验实现了多种温度灵敏度的调控,验证了该增敏方法的可行性。该游标增敏方法避免了实体参考干涉仪引入的误差,且灵敏度调控更加灵活和准确,具有较好的应用前景。 Objective Optical fiber sensing technology has attracted attention because of its high sensitivity,corrosion resistance,immunity to electromagnetic interference,small size,and wide measurement bandwidth.Temperature plays a significant role in daily life and various applications;particularly,the controllability and accuracy of temperature sensitivity in biological protein activity and medical experiments are essential.Among them,the method of increasing temperature sensitivity through the vernier effect is widely used in optical fiber sensors.The optical vernier effect can be achieved using a sensing interferometer and a reference interferometer.The reference interferometer,which is not sensitive to temperature,provides a'calibration master ruler'to the sensing interferometer based on the optical vernier effect,thereby amplifying the temperature sensitivity,as opposed to using a single sensing interferometer.However,the instability of the interferometer can result in measurement errors.Therefore,this study proposes using a virtual reference interferometer for achieving a sensitivity-tunable optical vernier effect to increase the temperature sensitivity.This method is applied to the Fabry-Perot(FP) temperature sensor based on UV glue,and the sensitization effect of its temperature sensitivity is verified through experiments.Subsequently,the feasibility of realizing the increase of temperature sensitivity is demonstrated.Methods Theoretically,the principle of the vernier effect sensitization is derived from the interference formula.Therefore,the amplification of the vernier envelope is simulated by changing the cavity length of the sensing interferometer or that of the reference interferometer.It is verified that the increase in sensitivity can be achieved using the virtual vernier interferometer,and this sensitivity can be regulated by changing the cavity length.Experimentally,the FP temperature sensor is fabricated by inserting a tapered optical fiber into a capillary tube with UV glue.The UV glue expands and contracts at different temperatures,resulting in a change in the cavity length and a drift in the superimposed spectrum.In the experiment,various temperature sensitivities are controlled by changing the cavity length of the reference interferometer.The feasibility of the scheme is verified.Results and Discussions Based on the principle of increased sensitivity based on the vernier effect,when the cavity length of the sensing interferometer or reference interferometer is changed,the superimposed vernier interference envelope spectrum achieves a certain multiple of sensitivity amplification,compared to that achieved using single FP sensing interferometer.Subsequently,by the spectral simulation of the double cavity length,it is deduced that when the free spectral range of the sensing interferometer is larger than that of the reference interferometer,the cavity length of the sensing interferometer decreases with increasing temperature,and the spectrum moves to the left drift,whereas the interference spectral envelope drifts to the left.When the free spectral range of the sensing interferometer is smaller than that of the reference interferometer,the cavity length of the sensing interferometer decreases with increasing temperature and the spectrum shifts to the left,whereas the interference spectral envelope shifts to the right(Figs.3and 4).Therefore,the temperature sensitivity can be controlled by introducing reference interferometers with different cavity lengths without changing the sensing interferometer.In the experiment,according to the theoretical formula,the cavity lengths of the relevant reference interferometers are set as 180,160,150,144,and 140 μm,respectively,and their temperature sensitivities are 4.018,6.021,8.009,10.033,and 12.096.It is inferred through experiments that,compared with the single sensing interferometer with a temperature sensitivity of 2.015 nm/℃,the FP temperature sensor based on the virtual vernier achieves 2-6 times temperature sensitivities,which is consistent with the results obtained by the FP temperature sensor theoretically(Figs.9-13).Conclusions In this study,the temperature sensitivity regulation of the FP sensor is realized using the sensitization method of the optical vernier based on a virtual reference interferometer.The envelope drift simulations of the superimposed spectra with different double cavity lengths are conducted according to the amplification principle of the vernier envelope obtained from the sensing formula.In the experiment,when the cavity length of the virtual reference interferometer is changed,the control of different temperature sensitivities ranging from 2-6 times is realized,thereby verifying that the sensitization scheme of the optical vernier is feasible.This virtual simulation method not only avoids the influence of the external environment on the reference interferometer during the measurement process but also effectively increases the temperature sensitivity.This method does not require additional modification of the interferometer and can be applied to other interferometric fiber optic sensors;it has significant potential for the enhancement of existing fiber optic sensor networks.
作者 张诚 马雪慧 赵军发 沈振乾 吴继旋 杨婧 Zhang Cheng;Ma Xuehui;Zhao Junfa;Shen Zhenqian;Wu Jixuan;Yang Jing(School of Electronics and Information Engineering,Tiangong University,Tianjin 300387,China;Tianjin Key Laboratory of Optoelectronic Detection Technology and System,Tianjin 300387,China;Engineering Teaching Practice Training Center,Tiangong University,Tianjin 300387,China)
出处 《中国激光》 EI CAS CSCD 北大核心 2023年第13期187-195,共9页 Chinese Journal of Lasers
基金 国家自然科学基金青年项目(11904262) 天津市教委科研计划项目(2019KJ016) 天津市“项目+团队”重点培养专项(XB202007)。
关键词 传感器 光纤传感器 法布里-珀罗干涉仪 游标效应 温度测量 sensors fiber optics sensors Fabry-Perot interferometer vernier effect temperature measurement
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