Qiao Yi, Zhou Yi, Krishnaswamy Sridhar
Center for Quality Engineering and Failure Prevention, Northwestern University, Illinois 60208, USA.
Appl Opt. 2006 Jul 20;45(21):5132-42. doi: 10.1364/ao.45.005132.
A two-wave mixing (TWM) interferometer using photorefractive (PRC) InP:Fe crystal is configured to demodulate the spectral shift of a fiber Bragg grating (FBG) sensor. The FBG is illuminated with a broadband source, and any strain in the FBG is encoded as a wavelength shift of the light reflected by the FBG. The wavelength shift is converted into phase shift by means of an unbalanced TWM interferometer. TWM wavelength demodulation is attractive for monitoring dynamic strains because it is adaptive and multiplexable. Adaptivity implies that it can selectively monitor dynamic strains without active compensation of large quasi-static strains and large temperature drifts that otherwise would cause system to drift. Multiplexability implies that several FBG sensors can be simultaneously demodulated using a single demodulator. TWM wavelength demodulation is therefore a cost-effective method of demodulating several spectrally encoded FBG sensors.
一种使用光折变(PRC)InP:Fe晶体的双波混频(TWM)干涉仪被配置用于解调光纤布拉格光栅(FBG)传感器的光谱位移。用宽带光源照射FBG,FBG中的任何应变都被编码为FBG反射光的波长位移。通过不平衡TWM干涉仪将波长位移转换为相移。TWM波长解调对于监测动态应变具有吸引力,因为它具有自适应性和可复用性。自适应性意味着它可以选择性地监测动态应变,而无需对否则会导致系统漂移的大的准静态应变和大的温度漂移进行主动补偿。可复用性意味着可以使用单个解调器同时解调多个FBG传感器。因此,TWM波长解调是解调多个光谱编码FBG传感器的一种经济高效的方法。