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Article

Solid-Phase Reference Baths for Fiber-Optic Distributed Sensing

by
Christoph K. Thomas
1,2,3,*,
Jannis-Michael Huss
1,
Mohammad Abdoli
1,
Tim Huttarsch
4 and
Johann Schneider
1
1
Micrometeorology Group, University of Bayreuth, 95447 Bayreuth, Germany
2
Bayreuth Center of Ecology and Environmental Research (BayCEER), University of Bayreuth, 95447 Bayreuth, Germany
3
College of Earth, Ocean, and Atmospheric Sciences, Oregon State University, Corvallis, OR 97331, USA
4
Geosciences Mechanics Shop, University of Bayreuth, 95447 Bayreuth, Germany
*
Author to whom correspondence should be addressed.
Sensors 2022, 22(11), 4244; https://doi.org/10.3390/s22114244
Submission received: 20 April 2022 / Revised: 26 May 2022 / Accepted: 28 May 2022 / Published: 2 June 2022
(This article belongs to the Special Issue Sensors for Distributed Monitoring)

Abstract

Observations from Raman backscatter-based Fiber-Optic Distributed Sensing (FODS) require reference sections of the fiber-optic cable sensor of known temperature to translate the primary measured intensities of Stokes and anti-Stokes photons to the secondary desired temperature signal, which also commonly forms the basis for other derived quantities. Here, we present the design and the results from laboratory and field evaluations of a novel Solid-Phase Bath (SoPhaB) using ultrafine copper instead of the traditional mechanically stirred liquid-phase water bath. This novel type is suitable for all FODS applications in geosciences and industry when high accuracy and precision are needed. The SoPhaB fully encloses the fiber-optic cable which is coiled around the inner core and surrounded by tightly interlocking parts with a total weight of 22 kg. The SoPhaB is thermoelectrically heated and/or cooled using Peltier elements to control the copper body temperature within ±0.04 K using commercially available electronic components. It features two built-in reference platinum wire thermometers which can be connected to the distributed temperature sensing instrument and/or external measurement and logging devices. The SoPhaB is enclosed in an insulated carrying case, which limits the heat loss to or gains from the outside environment and allows for mobile applications. For thermally stationary outside conditions the measured spatial temperature differences across SoPhaB parts touching the fiber-optic cable are <0.05 K even for stark contrasting temperatures of ΔT> 40 K between the SoPhaB’s setpoint and outside conditions. The uniform, stationary known temperature of the SoPhaB allows for substantially shorter sections of the fiber-optic cable sensors of less than <5 bins at spatial measurement resolution to achieve an even much reduced calibration bias and spatiotemporal uncertainty compared to traditional water baths. Field evaluations include deployments in contrasting environments including the Arctic polar night as well as peak summertime conditions to showcase the wide range of the SoPhaB’s applicability.
Keywords: distributed temperature sensing; fiber-optics; Raman scattering; atmospheric turbulence; hydrology; calibration; thermoelectric effect; Peltier distributed temperature sensing; fiber-optics; Raman scattering; atmospheric turbulence; hydrology; calibration; thermoelectric effect; Peltier

Share and Cite

MDPI and ACS Style

Thomas, C.K.; Huss, J.-M.; Abdoli, M.; Huttarsch, T.; Schneider, J. Solid-Phase Reference Baths for Fiber-Optic Distributed Sensing. Sensors 2022, 22, 4244. https://doi.org/10.3390/s22114244

AMA Style

Thomas CK, Huss J-M, Abdoli M, Huttarsch T, Schneider J. Solid-Phase Reference Baths for Fiber-Optic Distributed Sensing. Sensors. 2022; 22(11):4244. https://doi.org/10.3390/s22114244

Chicago/Turabian Style

Thomas, Christoph K., Jannis-Michael Huss, Mohammad Abdoli, Tim Huttarsch, and Johann Schneider. 2022. "Solid-Phase Reference Baths for Fiber-Optic Distributed Sensing" Sensors 22, no. 11: 4244. https://doi.org/10.3390/s22114244

APA Style

Thomas, C. K., Huss, J.-M., Abdoli, M., Huttarsch, T., & Schneider, J. (2022). Solid-Phase Reference Baths for Fiber-Optic Distributed Sensing. Sensors, 22(11), 4244. https://doi.org/10.3390/s22114244

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