| Literature DB >> 25177803 |
Hyung-Seok Lee1, Hwi Don Lee1, Hyo Jin Kim2, Jae Du Cho3, Myung Yung Jeong4, Chang-Seok Kim5.
Abstract
A linearized wavelength-swept thermo-optic laser chip was applied to demonstrate a fiber Bragg grating (FBG) sensor interrogation system. A broad tuning range of 11.8 nm was periodically obtained from the laser chip for a sweep rate of 16 Hz. To measure the linear time response of the reflection signal from the FBG sensor, a programmed driving signal was directly applied to the wavelength-swept laser chip. The linear wavelength response of the applied strain was clearly extracted with an R-squared value of 0.99994. To test the feasibility of the system for dynamic measurements, the dynamic strain was successfully interrogated with a repetition rate of 0.2 Hz by using this FBG sensor interrogation system.Entities:
Year: 2014 PMID: 25177803 PMCID: PMC4208164 DOI: 10.3390/s140916109
Source DB: PubMed Journal: Sensors (Basel) ISSN: 1424-8220 Impact factor: 3.576
Figure 1.Schematic of a wavelength-swept thermo-optic laser chip.
Figure 2.(a) The arbitrary drive signal of linearized wavelength-swept thermo-optic laser chip; (b) the static output spectrum of the laser; (c) wavelength versus time response of the laser chip.
Figure 3.(a) OSA peak hold mode spectra of the linearized wavelength-swept thermo-optic laser output; (b) Time domain tracing of the laser output at swept rate (f) of 16 Hz.
Figure 4.Experimental set-up for the FBG sensor interrogation system based on a linearized wavelength-swept thermo-optic laser chip.
Figure 5.The measured reflection signal of the FBG detected by (a) the OSA and (b) the LabVIEW.
Figure 6.The static strain response of FBG in (a) the wavelength domain, and (b) the time domain.
Figure 7.(a) The measured dynamic strain response of FBG for applied 0.2 Hz sinusoidal voltage to PZT actuator (b) and its PSD FFT spectrum.