Li Tianliang, Tan Yuegang, Zhou Zude
School of Mechanical and Electronic Engineering, Wuhan University of Technology, Wuhan 430000, Hubei, China.
Sensors (Basel). 2016 Apr 15;16(4):547. doi: 10.3390/s16040547.
This paper proposes a fiber Bragg grating sensing-based micro-vibration sensor. The optical fiber has been directly treated as an elastomer to design the micro-vibration sensor, which possesses two FBGs. The mass is fixed on the middle of the fiber, and the vertical vibration of the mass has been converted into the axial tension/compression of the fiber. The principle of the sensor has been introduced, and the experiment conclusions show that the sensor sensitivity is 2362 pm/g within the range of 200-1200 mm/s², which is consistent with theoretical analysis sensitivity of 2532.6 pm/g, and it shows an excellent linearity of 1.376%, while the resonant frequency of the sensor is 34 Hz, and the flat frequency range resides in the 0-22 Hz range. When used to measure micro-vibrations, its measured frequency relative error is less than 1.69% compared with the values acquired with a MEMS accelerometer, and the amplitude values of its measured vibration signal are consistent with the MEMS accelerometer under different excitation conditions too, so it can effectively realize the micro-vibration measurements.
本文提出了一种基于光纤布拉格光栅传感的微振动传感器。该光纤被直接当作弹性体来设计微振动传感器,该传感器拥有两个光纤布拉格光栅。质量块固定在光纤中部,质量块的垂直振动被转换为光纤的轴向拉伸/压缩。文中介绍了该传感器的原理,实验结果表明,在200 - 1200 mm/s²范围内,该传感器的灵敏度为2362 pm/g,与理论分析灵敏度2532.6 pm/g一致,线性度优良,为1.376%,同时该传感器的谐振频率为34 Hz,平坦频率范围在0 - 22 Hz之间。当用于测量微振动时,与采用微机电系统加速度计采集的值相比,其测量频率相对误差小于1.69%,并且在不同激励条件下其测量振动信号的幅值也与微机电系统加速度计一致,因此它能够有效地实现微振动测量。