Ren Junyu, Xie Fang, Chen Zhimin
Department of Physics, School of Science, Beijing Jiaotong University, Beijing 100044, People's Republic of China.
Rev Sci Instrum. 2010 Feb;81(2):025105. doi: 10.1063/1.3272059.
Random phase drift in single-mode optical fiber interferometers used with measurement systems, which is resulted from various types of environmental disturbances, should be eliminated in order to obtain high measurement precision. We propose an optical fiber interferometric measurement system which has the function of self-eliminating the random phase drift and is stable and robust enough for real-time precision measurement. By employing the characteristics of fiber Bragg gratings, the system interleaves two fiber Michelson interferometers together that share the common-interferometric-optical path. The signal of one of the interferometers is used to stabilize the system while the signal of the other interferometer is used for measurement. An electronic feedback loop for the stabilizing action is designed. The bandwidth of the feedback loop is 5 kHz, sufficiently wide to eliminate random phase drift resulted from various environmental disturbances. The system is endowed with high stability and therefore suitable for real-time precision measurement. By means of an active phase tracking technique to measure displacement, the linear regression coefficient of the displacement measurement results is 0.9998.
与测量系统一起使用的单模光纤干涉仪中,由各种环境干扰导致的随机相位漂移,为了获得高测量精度应予以消除。我们提出一种具有自消除随机相位漂移功能的光纤干涉测量系统,该系统对于实时精密测量而言足够稳定且坚固耐用。通过利用光纤布拉格光栅的特性,该系统将两个共享公共干涉光路的光纤迈克尔逊干涉仪交织在一起。其中一个干涉仪的信号用于稳定系统,而另一个干涉仪的信号用于测量。设计了用于稳定作用的电子反馈回路。反馈回路的带宽为5kHz,足够宽以消除由各种环境干扰导致的随机相位漂移。该系统具有高稳定性,因此适用于实时精密测量。通过采用有源相位跟踪技术测量位移,位移测量结果的线性回归系数为0.9998。