Development of a Dew/Frost Point Temperature Sensor Based on Tunable Diode Laser Absorption Spectroscopy and Its Application in a Cryogenic Wind Tunnel
Abstract
:1. Introduction
2. Principles of optical spectroscopy method
3. Absorption line selection
4. Experimental setup and data retrieve method
4.1. Experimental setup
4.2. The optical pathlength of multipass absorption cell
4.3. Data processing and evaluation
4.4. Uncertainty of the sensor
5. Results and discussion
5.1. TDLAS dew/frost point temperature sensor detection limits analysis
5.2. Measurement result
5.3. Deviation analysis
6. Conclusion and outlook
Author Contributions
Funding
Conflicts of Interest
References
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Brand | Sensor type | Measurement range | Accuracy | Response time b | Operation environment |
---|---|---|---|---|---|
GE (MMY30) | Aluminum oxide sensor | −90 ~ +10 °C | ± 2 °C (25 °C) | - | −40 ~ +50 °C |
PhyMetrix (DewPatrol) | Nanopore sensor | −110 °C ~ +20 °C | ± 2 °C | 3 min | −20 ~ +60 °C Non-corrosive |
Michell (Easidew) | Ceramic moisture sensor | −100 °C ~ +20 °C | ≤ ± 2 °C | 5 min (dry to wet) | −40 ~ +60 °C Non-corrosive |
Vaisala (DMT340) | Capacitive thin-film polymer sensor | −70 °C ~ +80 °C | < ± 3 °C | 10 min (wet to dry) | −40 ~ +80 °C Non-corrosive |
SIDPH (FM860) | Dual ceramic nano thin-film sensor | −110 °C ~ +20 °C | ± 2 °C | 1 min (dry to wet) | −40 ~ +65 °C Non-corrosive |
MBW (373LX) | Chilled mirror hygrometry sensor | −95 °C ~ +20 °C | ± 0.1 °C | ~ 1 min | 15 ~ +35 °C Non-corrosive |
Frequency (cm−1) | Lower state energy (cm−1) | Line intensity @296 K (cm−1/ (molecule·cm−2)) | Uncertainty of intensity | ||
---|---|---|---|---|---|
HITRAN 2012 | Our work | HITRAN 2012 | Our work | ||
7242.37075 | 42.3717 | 1.19 × 10−20 | 1.188 × 10−20 | ≥ 5% and ≤ 10% | 1.023% |
7243.07526 | 134.9016 | 1.61 × 10−20 | 1.626 × 10−20 | ≥ 5% and ≤ 10% | 1.312% |
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Nie, W.; Xu, Z.; Kan, R.; Ruan, J.; Yao, L.; Wang, B.; He, Y. Development of a Dew/Frost Point Temperature Sensor Based on Tunable Diode Laser Absorption Spectroscopy and Its Application in a Cryogenic Wind Tunnel. Sensors 2018, 18, 2704. https://doi.org/10.3390/s18082704
Nie W, Xu Z, Kan R, Ruan J, Yao L, Wang B, He Y. Development of a Dew/Frost Point Temperature Sensor Based on Tunable Diode Laser Absorption Spectroscopy and Its Application in a Cryogenic Wind Tunnel. Sensors. 2018; 18(8):2704. https://doi.org/10.3390/s18082704
Chicago/Turabian StyleNie, Wei, Zhenyu Xu, Ruifeng Kan, Jun Ruan, Lu Yao, Bin Wang, and Yabai He. 2018. "Development of a Dew/Frost Point Temperature Sensor Based on Tunable Diode Laser Absorption Spectroscopy and Its Application in a Cryogenic Wind Tunnel" Sensors 18, no. 8: 2704. https://doi.org/10.3390/s18082704
APA StyleNie, W., Xu, Z., Kan, R., Ruan, J., Yao, L., Wang, B., & He, Y. (2018). Development of a Dew/Frost Point Temperature Sensor Based on Tunable Diode Laser Absorption Spectroscopy and Its Application in a Cryogenic Wind Tunnel. Sensors, 18(8), 2704. https://doi.org/10.3390/s18082704