This work presents the design, calibration and detailed performance characterization of a triaxial accelerometer based on fiber Bragg gratings (FBG), intended for space navigation applications. The results show the following: (i) improvements in the orthogonality of the sensor axes, which impact their cross-axis sensitivity; (ii) reductions in the electronic noise. Firstly, a single-axis FBG accelerometer with intensity modulation-direct detection interrogation system was put forward and designed in the paper. Experiments with different excitation frequencies were implemented, which demonstrate its good mechanical structure and fabrication technology.
[pdf] Special types are covered in depth, including apodized gratings for suppressing spectral sidelobes, chirped gratings for dispersion compensation and pulse stretching, tilted gratings to create notch filters,.
[pdf] FBGs are integral in monitoring power transformers, high-voltage equipment, and wind turbine blades. Their immunity to electromagnetic interference makes them especially valuable in such environments. Fiber Bragg grating (FBG) sensors have emerged as advanced tools for monitoring a wide range of physical parameters in various fields, including structural health, aerospace, biochemical, and environmental applications. This review provides a comprehensive overview of FBG sensor technology. Temperature and vibrating sensors are crucial in power utility systems to avoid the thermal and vibrating effects on the equipment. Typically, the perturbation is approximately periodic over a certain length of e.
[pdf] A high speed quasi-distributed demodulation method based on the microwave photonics and the chromatic dispersion effect is designed and implemented for weak fiber Bragg gratings (FBGs). A novel approach to fibre Bragg grating spectra processing is proposed. By changing the step size of each calculation. This paper introduces a computationally efficient Logarithmic Gaussian Levenberg-Marquardt (LGLM) algorithm for FBG demodulation, which significantly enhances system stability and improves range deviation by more than 11. © 2025 The Author. Our technique exploits the reflection characteristics of fiber Bragg gratings written in polarization-maintaining fibers to create a frequency discriminator, which is able to convert PM/FM signals into intensity-modulated (IM) signals. A simple theoretical analysis is presented to highlight the.
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