| Literature DB >> 29189755 |
Veronica De Miguel-Soto1, Daniel Leandro2, Aitor Lopez-Aldaba3, Juan Jesus Beato-López4, José Ignacio Pérez-Landazábal5,6, Jean-Louis Auguste7, Raphael Jamier8, Philippe Roy9, Manuel Lopez-Amo10.
Abstract
In this work, the performance of five different fiber optic sensors at cryogenic temperatures has been analyzed. A photonic crystal fiber Fabry-Pérot interferometer, two Sagnac interferometers, a commercial fiber Bragg grating (FBG), and a π-phase shifted fiber Bragg grating interrogated in a random distributed feedback fiber laser have been studied. Their sensitivities and resolutions as sensors for cryogenic temperatures have been compared regarding their advantages and disadvantages. Additionally, the results have been compared with the given by a commercial optical backscatter reflectometer that allowed for distributed temperature measurements of a single mode fiber.Entities:
Keywords: cryogenic temperature; interferometric sensor; optical backscatter reflectometer; optical fiber sensor; random distributed feedback fiber lasers; thermometry
Year: 2017 PMID: 29189755 PMCID: PMC5751612 DOI: 10.3390/s17122773
Source DB: PubMed Journal: Sensors (Basel) ISSN: 1424-8220 Impact factor: 3.576
Figure 1Schematic setup.
Figure 2Photographs of the setup: (a) placement of the sensors used in the experiment; (b) placement of the fiber used for distributed measurements.
Figure 3Four-bridge double-Y-shape-core microstructured optical fiber (MOF).
Figure 4Fiber based Fabry-Pérot (PCF-FP) sensor: (a) Optical spectrum and (b) its fast Fourier transform (FFT) module.
Figure 5Sagnac interferometers: (a) Optical spectrum and (b) its FFT module.
Figure 6Schematic diagram of the proposed random distributed feedback fiber laser (RDFB-RL) using a π-phase shifted fiber Bragg grating (PSFBG) sensor.
Figure 7Trace detected by the optical backscatter reflectometer (OBR).
Figure 8(a) Interferometric; (b) Wavelength selective fiber optic sensors response versus temperature.
Summary of the results.
| Type of Sensor | Sensor | Sensitivity | Resolution | Response Time |
|---|---|---|---|---|
| Wavelength selective | Commercial FBG | 11.6 pm/°C | 0.4 °C | ~3 s |
| PSFBG random laser | 9.5 pm/°C | 0.21 °C | ~3 s | |
| Interferometric | PCF Fabry-Pérot | 0.0147 π rad/°C | 1.15 °C | ~3 s |
| Sagnac 1 | 0.185 π rad/°C | 0.38 °C | ~15 s | |
| Sagnac 2 | 0.4023 π rad/°C | 0.1 °C | ~15 s |
Figure 9Fiber optic sensors response versus temperature above 0 °C.
Figure 10Example of optical backscatter reflectometer (OBR) traces: distributed temperature sensing. R1 to R4 represent the reference points (see also Figure 2b).
Figure 11Temperature evolution at the reference points measured with the OBR versus thermocouple temperature.