Yu Li-xia, Qin Li
Guang Pu Xue Yu Guang Pu Fen Xi. 2016 Jan;36(1):283-6.
Traditional temperature detection system based on Fiber Bragg Grating is suitable for large-scale, real-time multi-point temperature detection field. But its stability of temperature response is poor, shift amount of Bragg grating center wavelength is poor linearity with temperature variation. In order to improve the stability for system and temperature detection accuracy of the system, an improved temperature detection system based on Fiber Bragg Grating was designed. The method of dual fiber parallel acquisition for temperature data was used on the same point, and then center wavelength data was differentially processed. It was realized that the random errors of the system were effectively real-time eliminated in the process temperature. The function relationships of center wavelength shift amount of Fiber Bragg Grating and temperature variation was derived in this mode, and the new structure of the probes for Fiber Bragg Grating was designed. In the experiments, measurement data of Improved temperature detection system based on Fiber Bragg Grating was compared with the data of traditional system. Experimental results show that temperature measurement accuracy of improved system was up to 0.5 degrees C, and its accuracy has been improved compared to conventional systems. Meanwhile, the measurement error was significantly better than traditional systems. It proved that the design can improve the stability of temperature detection for the system.
基于光纤布拉格光栅的传统温度检测系统适用于大规模、实时多点温度检测领域。但其温度响应稳定性较差,布拉格光栅中心波长的漂移量与温度变化呈非线性关系。为提高系统稳定性和温度检测精度,设计了一种基于光纤布拉格光栅的改进型温度检测系统。在同一点采用双光纤并行采集温度数据的方法,然后对中心波长数据进行差分处理。实现了在温度过程中有效实时消除系统的随机误差。推导了这种模式下光纤布拉格光栅中心波长漂移量与温度变化的函数关系,并设计了新型光纤布拉格光栅探头结构。实验中,将基于光纤布拉格光栅的改进型温度检测系统的测量数据与传统系统的数据进行了比较。实验结果表明,改进系统的温度测量精度可达0.5摄氏度,与传统系统相比精度有所提高。同时,测量误差明显优于传统系统。证明了该设计可提高系统温度检测的稳定性。