The UVSQ-SAT/INSPIRESat-5 CubeSat Mission: First In-Orbit Measurements of the Earth’s Outgoing Radiation
Abstract
:1. Introduction
2. Scientific Objectives and Requirements
2.1. Scientific Objectives
2.2. Scientific Requirements and Uncertainties on EEI Measurements
3. UVSQ-SAT Data Method and Map Reconstruction of the Variables (Observations and Model)
3.1. UVSQ-SAT Data Processing to Obtain Observation Time Series
3.1.1. Instrumental Equations of the Earth’s Radiative Sensors
3.1.2. Instrumental Equations of the Optical Sensors Based on Photodiodes
3.1.3. Methodology for Obtaining UVSQ-SAT Attitude and Position Time Series
3.2. Map Reconstruction Method from UVSQ-SAT Observation Time Series
3.3. Reconstruction Method of the ERA 5 Maps to Compare with the UVSQ-SAT Maps
4. UVSQ-SAT First Observations
4.1. UVSQ-SAT Time Series
4.2. UVSQ-SAT Maps Reconstruction
5. Perspectives—Toward a Satellites Constellation for Climate Studies
6. Conclusions
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
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Contributor/Imbalance | Acronym | Flux |
---|---|---|
Incoming solar radiation | TSI/4 | 340.2 ± 0.1 Wm |
Outgoing shortwave radiation | OSR | 100.0 ± 2.0 Wm |
Outgoing longwave radiation | OLR | 239.7 ± 3.3 Wm |
TOA Earth energy imbalance | EEI at TOA | +0.6 ± 0.4 Wm |
Surface Earth energy imbalance | EEI at surface | +0.6 ± 17.0 Wm |
Requirements | Scientific Relevance | |||
– | Absolute uncertainty | Stability per decade | Spatial resolution | Time resolution |
TSI | ±0.54 Wm at 1 | ±0.14 Wm at 1 | – | 24 h |
OSR | ±1.00 Wm at 1 | ±0.10 Wm at 1 | 10–100 km | Diurnal cycle |
OLR | ±1.00 Wm at 1 | ±0.10 Wm at 1 | 10–100 km | Diurnal cycle |
Requirements | UVSQ-SAT Performances | |||
– | Absolute uncertainty | Stability per year | Spatial resolution | Time resolution |
TSI | – | – | – | – |
OSR | ±10 Wm at 1 | ±5 Wm at 1 | 1000 km | 15 days |
OLR | ±10 Wm at 1 | ±1 Wm at 1 | 1000 km | 15 days |
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Meftah, M.; Boutéraon, T.; Dufour, C.; Hauchecorne, A.; Keckhut, P.; Finance, A.; Bekki, S.; Abbaki, S.; Bertran, E.; Damé, L.; et al. The UVSQ-SAT/INSPIRESat-5 CubeSat Mission: First In-Orbit Measurements of the Earth’s Outgoing Radiation. Remote Sens. 2021, 13, 1449. https://doi.org/10.3390/rs13081449
Meftah M, Boutéraon T, Dufour C, Hauchecorne A, Keckhut P, Finance A, Bekki S, Abbaki S, Bertran E, Damé L, et al. The UVSQ-SAT/INSPIRESat-5 CubeSat Mission: First In-Orbit Measurements of the Earth’s Outgoing Radiation. Remote Sensing. 2021; 13(8):1449. https://doi.org/10.3390/rs13081449
Chicago/Turabian StyleMeftah, Mustapha, Thomas Boutéraon, Christophe Dufour, Alain Hauchecorne, Philippe Keckhut, Adrien Finance, Slimane Bekki, Sadok Abbaki, Emmanuel Bertran, Luc Damé, and et al. 2021. "The UVSQ-SAT/INSPIRESat-5 CubeSat Mission: First In-Orbit Measurements of the Earth’s Outgoing Radiation" Remote Sensing 13, no. 8: 1449. https://doi.org/10.3390/rs13081449
APA StyleMeftah, M., Boutéraon, T., Dufour, C., Hauchecorne, A., Keckhut, P., Finance, A., Bekki, S., Abbaki, S., Bertran, E., Damé, L., Engler, J. -L., Galopeau, P., Gilbert, P., Lapauw, L., Sarkissian, A., Vieau, A. -J., Lacroix, P., Caignard, N., Arrateig, X., ... Mercier, C. (2021). The UVSQ-SAT/INSPIRESat-5 CubeSat Mission: First In-Orbit Measurements of the Earth’s Outgoing Radiation. Remote Sensing, 13(8), 1449. https://doi.org/10.3390/rs13081449