| Literature DB >> 27338388 |
Xiaobin Xu1, Ningfang Song2, Zuchen Zhang3, Jing Jin4.
Abstract
Photonic bandgap fiber optic gyroscope (PBFOG) is a novel fiber optic gyroscope (FOG) with excellent environment adaptability performance compared to a conventional FOG. In this work we find and investigate the backward secondary-wave coherence (BSC) error, which is a bias error unique to the PBFOG and caused by the interference between back-reflection-induced and backscatter-induced secondary waves. Our theoretical and experimental results show a maximum BSC error of ~4.7°/h for a 300-m PBF coil with a diameter of 10 cm. The BSC error is an important error source contributing to bias instability in the PBFOG and has to be addressed before practical applications of the PBFOG can be implemented.Entities:
Keywords: bias error; fiber optic gyroscope; photonic bandgap fiber
Year: 2016 PMID: 27338388 PMCID: PMC4934277 DOI: 10.3390/s16060851
Source DB: PubMed Journal: Sensors (Basel) ISSN: 1424-8220 Impact factor: 3.576
Figure 1Diagram of a photonic bandgap fiber optic gyroscope.
Figure 2Secondary waves induced by back-reflection and backscatter of primary waves. (a) Before the primary waves enter the PBF coil; (b) After the primary waves have propagated through 1 loop of the PBF coil.
Figure 3Experimental setup for measuring the BSC error.
Figure 4Test results of (a) the BSC error and (b) bias stability in the PBFOG when the PBFs are connected to the IOC pigtails through normal fusion splicing. Inset: micrograph showing the fusion splicing between PBF and conventional fiber at point A or B.
Figure 5Micrographs showing (a) the cleaved angles of pigtails of the PBF coil and IOC and (b) cross section of the corresponding point after fusion splicing; (c) Test results of the BSC error and (d) bias stability in the PBFOG when the PBF coil is connected to the IOC pigtails through ~8° fusion splicing.