An interrogation method with high resolution and high response speed for FBGs-based sensors

Hong Dang, Kunpeng Feng, Xun Sun, Yihua Jin, Yizhao Niu, Tangjun Shi, Jiwen Cui, Jiubin Tan
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Abstract

Recently, fiber Bragg gratings (FBGs) have played significant roles in a variety of fields such as optical communication, dimensional metrology, buildings health monitoring, ultrasonic waves and vibration measurement, petrochemical and other harsh/remote environments owing to their excellent performances like electromagnetic insensitivity, high accuracy and long term stability. In general, FBGs-based sensors are usually decoupled by detecting the variations of FBGs’ central wavelength, wherein, the accuracy and dynamic characteristics of the FBGs-based sensing are directly dependent on the spectral resolutions and response speed of the interrogation method. However, conventional spectral interrogation methods, which directly utilize an optical spectrum analyzer (OSA) with low resolutions and response speeds cannot satisfy the requirements of detecting small and dynamic variations of the FBGs’ central wavelength accurately. It is therefore of significance to find a FBGs interrogation method with high resolution and high response speed. In this paper, a high resolution and response speed interrogation method based on reflective-matched Fiber Bragg Gratings scheme is investigated in detail. The nonlinear problem of the reflective-matched FBGs sensing interrogation scheme is solved by establishing and optimizing the mathematical model. A mechanical adjustment to optimize the interrogation method by tuning the central wavelength of the reference FBG is investigated to improve the stability and antitemperature perturbation performance. To satisfy the measuring requirement of the optical and electric signal processing, an acquisition circuit board is well-designed, and experiments on the performance of the interrogation method are carried out. Experimental results indicate that the optical power resolution of the acquisition circuit border is better than 8 pW, and the stability of the interrogation method with the mechanical adjustment can reach 0.06%. Moreover, the linearity of the interrogation method is 3.3% in the measurable range of 60 pm; the influence of temperature is significantly reduced to 9.5%; the wavelength resolution and response speed can achieve 0.34 pm and 500 kHz, respectively.
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一种基于fbgs传感器的高分辨率、高响应速度询问方法
近年来,光纤布拉格光栅(fbg)以其电磁不敏感、高精度和长期稳定等优异性能,在光通信、尺寸计量、建筑健康监测、超声波和振动测量、石油化工等恶劣/偏远环境中发挥了重要作用。一般来说,基于FBGs的传感器通常通过检测FBGs中心波长的变化来解耦,其中,基于FBGs的传感精度和动态特性直接依赖于询问方法的光谱分辨率和响应速度。然而,传统的光谱探测方法直接利用分辨率低、响应速度慢的光谱分析仪(OSA),无法满足精确检测fbg中心波长微小动态变化的要求。因此,寻找一种高分辨率、高响应速度的fbg审讯方法具有重要意义。本文详细研究了一种基于反射匹配光纤光栅的高分辨率、高响应速度的探测方法。通过建立和优化数学模型,解决了反射匹配fbg传感讯问方案的非线性问题。研究了通过调整参考光纤光栅的中心波长来优化询问方法的机械调整,以提高稳定性和抗温度摄动性能。为满足光电信号处理的测量需求,设计了采集电路板,并对该方法进行了性能实验。实验结果表明,采集电路边界的光功率分辨率优于8 pW,采用机械调节的问询方法的稳定性可达0.06%。在60 pm的可测范围内,该方法的线性度为3.3%;温度的影响显著降低至9.5%;波长分辨率可达0.34 pm,响应速度可达500 kHz。
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