Cargando…

Metrological Characterization of a High-Temperature Hybrid Sensor Using Thermal Radiation and Calibrated Sapphire Fiber Bragg Grating for Process Monitoring in Harsh Environments

Fiber Bragg gratings inscribed in single crystalline multimode sapphire fibers (S-FBG) are suitable for monitoring applications in harsh environments up to 1900 °C. Despite many approaches to optimize the S-FBG sensor, a metrological investigation of the achievable temperature uncertainties is still...

Descripción completa

Detalles Bibliográficos
Autores principales: Eisermann, René, Krenek, Stephan, Habisreuther, Tobias, Ederer, Petra, Simonsen, Sigurd, Mathisen, Helge, Elsmann, Tino, Edler, Frank, Schmid, Daniel, Lorenz, Adrian, Olsen, Åge Andreas Falnes
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8838938/
https://www.ncbi.nlm.nih.gov/pubmed/35161780
http://dx.doi.org/10.3390/s22031034
_version_ 1784650244947968000
author Eisermann, René
Krenek, Stephan
Habisreuther, Tobias
Ederer, Petra
Simonsen, Sigurd
Mathisen, Helge
Elsmann, Tino
Edler, Frank
Schmid, Daniel
Lorenz, Adrian
Olsen, Åge Andreas Falnes
author_facet Eisermann, René
Krenek, Stephan
Habisreuther, Tobias
Ederer, Petra
Simonsen, Sigurd
Mathisen, Helge
Elsmann, Tino
Edler, Frank
Schmid, Daniel
Lorenz, Adrian
Olsen, Åge Andreas Falnes
author_sort Eisermann, René
collection PubMed
description Fiber Bragg gratings inscribed in single crystalline multimode sapphire fibers (S-FBG) are suitable for monitoring applications in harsh environments up to 1900 °C. Despite many approaches to optimize the S-FBG sensor, a metrological investigation of the achievable temperature uncertainties is still missing. In this paper, we developed a hybrid optical temperature sensor using S-FBG and thermal radiation signals. In addition, the sensor also includes a thermocouple for reference and process control during a field test. We analyzed the influence of the thermal gradient and hotspot position along the sensor for all three detection methods using an industrial draw tower and fixed point cells. Moreover, the signal processing of the reflected S-FBG spectrum was investigated and enhanced to determine the reachable measurement repeatability and uncertainty. For that purpose, we developed an analytical expression for the long-wavelength edge of the peak. Our findings show a higher stability against mechanical-caused mode variations for this method to measure the wavelength shift compared to established methods. Additionally, our approach offers a high robustness against aging effects caused by high-temperature processes (above 1700 °C) or harsh environments. Using temperature-fixed points, directly traceable to the International System of Units, we calibrated the S-FBG and thermocouple of the hybrid sensor, including the corresponding uncertainty budgets. Within the scope of an over 3-weeks-long field trial, 25 production cycles of an industrial silicon manufacturing process with temperatures up to 1600 °C were monitored with over 100,000 single measurements. The absolute calibrated thermocouple ([Formula: see text]) and S-FBG ([Formula: see text]) measurements agreed within their combined uncertainty. We also discuss possible strategies to significantly reduce the uncertainty of the S-FBG calibration. A follow-up measurement of the sensor after the long-term operation at high temperatures and the transport of the measuring system together with the sensor resulted in a change of less than 0.5 K. Thus, both the presented hybrid sensor and the measuring principle are very robust for applications in harsh environments.
format Online
Article
Text
id pubmed-8838938
institution National Center for Biotechnology Information
language English
publishDate 2022
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-88389382022-02-13 Metrological Characterization of a High-Temperature Hybrid Sensor Using Thermal Radiation and Calibrated Sapphire Fiber Bragg Grating for Process Monitoring in Harsh Environments Eisermann, René Krenek, Stephan Habisreuther, Tobias Ederer, Petra Simonsen, Sigurd Mathisen, Helge Elsmann, Tino Edler, Frank Schmid, Daniel Lorenz, Adrian Olsen, Åge Andreas Falnes Sensors (Basel) Article Fiber Bragg gratings inscribed in single crystalline multimode sapphire fibers (S-FBG) are suitable for monitoring applications in harsh environments up to 1900 °C. Despite many approaches to optimize the S-FBG sensor, a metrological investigation of the achievable temperature uncertainties is still missing. In this paper, we developed a hybrid optical temperature sensor using S-FBG and thermal radiation signals. In addition, the sensor also includes a thermocouple for reference and process control during a field test. We analyzed the influence of the thermal gradient and hotspot position along the sensor for all three detection methods using an industrial draw tower and fixed point cells. Moreover, the signal processing of the reflected S-FBG spectrum was investigated and enhanced to determine the reachable measurement repeatability and uncertainty. For that purpose, we developed an analytical expression for the long-wavelength edge of the peak. Our findings show a higher stability against mechanical-caused mode variations for this method to measure the wavelength shift compared to established methods. Additionally, our approach offers a high robustness against aging effects caused by high-temperature processes (above 1700 °C) or harsh environments. Using temperature-fixed points, directly traceable to the International System of Units, we calibrated the S-FBG and thermocouple of the hybrid sensor, including the corresponding uncertainty budgets. Within the scope of an over 3-weeks-long field trial, 25 production cycles of an industrial silicon manufacturing process with temperatures up to 1600 °C were monitored with over 100,000 single measurements. The absolute calibrated thermocouple ([Formula: see text]) and S-FBG ([Formula: see text]) measurements agreed within their combined uncertainty. We also discuss possible strategies to significantly reduce the uncertainty of the S-FBG calibration. A follow-up measurement of the sensor after the long-term operation at high temperatures and the transport of the measuring system together with the sensor resulted in a change of less than 0.5 K. Thus, both the presented hybrid sensor and the measuring principle are very robust for applications in harsh environments. MDPI 2022-01-28 /pmc/articles/PMC8838938/ /pubmed/35161780 http://dx.doi.org/10.3390/s22031034 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Eisermann, René
Krenek, Stephan
Habisreuther, Tobias
Ederer, Petra
Simonsen, Sigurd
Mathisen, Helge
Elsmann, Tino
Edler, Frank
Schmid, Daniel
Lorenz, Adrian
Olsen, Åge Andreas Falnes
Metrological Characterization of a High-Temperature Hybrid Sensor Using Thermal Radiation and Calibrated Sapphire Fiber Bragg Grating for Process Monitoring in Harsh Environments
title Metrological Characterization of a High-Temperature Hybrid Sensor Using Thermal Radiation and Calibrated Sapphire Fiber Bragg Grating for Process Monitoring in Harsh Environments
title_full Metrological Characterization of a High-Temperature Hybrid Sensor Using Thermal Radiation and Calibrated Sapphire Fiber Bragg Grating for Process Monitoring in Harsh Environments
title_fullStr Metrological Characterization of a High-Temperature Hybrid Sensor Using Thermal Radiation and Calibrated Sapphire Fiber Bragg Grating for Process Monitoring in Harsh Environments
title_full_unstemmed Metrological Characterization of a High-Temperature Hybrid Sensor Using Thermal Radiation and Calibrated Sapphire Fiber Bragg Grating for Process Monitoring in Harsh Environments
title_short Metrological Characterization of a High-Temperature Hybrid Sensor Using Thermal Radiation and Calibrated Sapphire Fiber Bragg Grating for Process Monitoring in Harsh Environments
title_sort metrological characterization of a high-temperature hybrid sensor using thermal radiation and calibrated sapphire fiber bragg grating for process monitoring in harsh environments
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8838938/
https://www.ncbi.nlm.nih.gov/pubmed/35161780
http://dx.doi.org/10.3390/s22031034
work_keys_str_mv AT eisermannrene metrologicalcharacterizationofahightemperaturehybridsensorusingthermalradiationandcalibratedsapphirefiberbragggratingforprocessmonitoringinharshenvironments
AT krenekstephan metrologicalcharacterizationofahightemperaturehybridsensorusingthermalradiationandcalibratedsapphirefiberbragggratingforprocessmonitoringinharshenvironments
AT habisreuthertobias metrologicalcharacterizationofahightemperaturehybridsensorusingthermalradiationandcalibratedsapphirefiberbragggratingforprocessmonitoringinharshenvironments
AT edererpetra metrologicalcharacterizationofahightemperaturehybridsensorusingthermalradiationandcalibratedsapphirefiberbragggratingforprocessmonitoringinharshenvironments
AT simonsensigurd metrologicalcharacterizationofahightemperaturehybridsensorusingthermalradiationandcalibratedsapphirefiberbragggratingforprocessmonitoringinharshenvironments
AT mathisenhelge metrologicalcharacterizationofahightemperaturehybridsensorusingthermalradiationandcalibratedsapphirefiberbragggratingforprocessmonitoringinharshenvironments
AT elsmanntino metrologicalcharacterizationofahightemperaturehybridsensorusingthermalradiationandcalibratedsapphirefiberbragggratingforprocessmonitoringinharshenvironments
AT edlerfrank metrologicalcharacterizationofahightemperaturehybridsensorusingthermalradiationandcalibratedsapphirefiberbragggratingforprocessmonitoringinharshenvironments
AT schmiddaniel metrologicalcharacterizationofahightemperaturehybridsensorusingthermalradiationandcalibratedsapphirefiberbragggratingforprocessmonitoringinharshenvironments
AT lorenzadrian metrologicalcharacterizationofahightemperaturehybridsensorusingthermalradiationandcalibratedsapphirefiberbragggratingforprocessmonitoringinharshenvironments
AT olsenageandreasfalnes metrologicalcharacterizationofahightemperaturehybridsensorusingthermalradiationandcalibratedsapphirefiberbragggratingforprocessmonitoringinharshenvironments