Lu Ji-Yun, Liang Da-Kai, Zhang Xiao-Li, Zhu Zhu
The Aeronautical Science Key Laboratory for Smart Material and Structures, Nanjing University of Aeronautics and Astronautics, Nanjing 210016, China.
Guang Pu Xue Yu Guang Pu Fen Xi. 2009 Dec;29(12):3429-33.
Spectrum of fiber bragg grating (FBG) sensor modulated by double long period grating (LPFG) is proposed in the paper. Double LPFG consists of two LPFGS whose center wavelengths are the same and reflection spectrum of FBG sensor is located in linear range of double LPFG transmission spectrum. Based on spectral analysis of FBG and double LPFG, reflection spectrum of FBG modulated by double LPFG is obtained and studied by use of band-hider filter characteristics for double LPFG. An FBG sensor is attached on the surface of thin steel beam, which is strained by bending, and the center wavelength of FBG sensor will shift. The spectral peak of FBG sensor modulated by double LPFG is changed correspondingly, and the spectral change will lead to variation in exit light intensity from double LPFG. Experiment demonstrates that the relation of filtering light intensity from double LPFG monitored by optical power meter to center wavelength change of FBG sensor is linear and the minimum strain of material (steel beam) detected by the modulation and demodulation system is 1.05 microepsilon. This solution is used in impact monitoring of optical fibre smart structure, and FBG sensor is applied for impulse response signal monitoring induced by low-velocity impact, when impact pendulum is loaded to carbon fiber-reinforced plastics (CFP). The acquired impact response signal and fast Fourier transform of the signal detected by FBG sensor agree with the measurement results of eddy current displacement meter attached to the FBG sensor. From the results, the present method using FBG sensor is found to be effective for monitoring the impact. The research provides a practical reference in dynamic monitoring of optical fiber smart structure field.
本文提出了一种由双长周期光栅(LPFG)调制的光纤布拉格光栅(FBG)传感器光谱。双LPFG由两个中心波长相同的LPFG组成,FBG传感器的反射光谱位于双LPFG透射光谱的线性范围内。基于FBG和双LPFG的光谱分析,利用双LPFG的带阻滤波器特性获得并研究了由双LPFG调制的FBG反射光谱。将一个FBG传感器粘贴在薄钢梁表面,钢梁因弯曲而产生应变,FBG传感器的中心波长会发生偏移。由双LPFG调制的FBG传感器的光谱峰值会相应改变,光谱变化会导致双LPFG出射光强度的变化。实验表明,光功率计监测到的双LPFG滤波光强度与FBG传感器中心波长变化之间的关系是线性的,调制解调系统检测到的材料(钢梁)最小应变为1.05微应变。该解决方案用于光纤智能结构的冲击监测,当冲击摆加载到碳纤维增强塑料(CFP)上时,FBG传感器用于监测低速冲击引起的脉冲响应信号。所采集的冲击响应信号以及FBG传感器检测到的信号的快速傅里叶变换与粘贴在FBG传感器上的涡流位移计的测量结果一致。从结果来看,发现使用FBG传感器的本方法对冲击监测是有效的。该研究为光纤智能结构领域的动态监测提供了实际参考。