Probing Dust and Water in Martian Atmosphere with Far-Infrared Frequency Spacecraft Occultation
Abstract
:1. Introduction
2. Materials and Methods
2.1. Retrieval of Temperature Profile
2.2. Atmospheric Losses
2.2.1. Gas Absorption
2.2.2. Dust and Water Ice clouds
2.3. Retrieval of Dust
3. Results
3.1. Instrument Sensitivity and Phase Noise Uncertainty
3.2. Atmospheric Absorption
3.3. Dust and Cloud Losses
4. Discussion and Caveats
5. Conclusions
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
Abbreviations
MGS | Mars Global Surveyor |
MRO | Mars Reconnaissance Orbiter |
TES | Thermal Emission Spectrometer |
THEMIS | Thermal Emission Imaging System |
MCS | Mars Climate Sounder |
CRISM | Compact Reconnaissance Imaging Spectrometer for Mars |
OMEGA | Observatoire pour la Mineralogie, l’Eau, les Glaces et l’Activité |
DSN | Deep Space Network |
TRL | Technology Readiness Level |
HITRAN | High-resolution transmission and molecular absorption database |
PBL | Planetary Boundary Layer |
DOW | Dual One-Way approach |
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Dust Activity Scenario | (cm) | B | FH (km) | FL (km) | PH (km) | PT (km) |
---|---|---|---|---|---|---|
MY25 | 17 | 0.86 | 76 | 12 | 48 | 18 |
MY28 | 12 | 0.86 | 76 | 12 | 48 | 18 |
Regional storm | 6 | 0.33 | 45 | 9 | 32 | 4 |
No storm | 1.2 | 0.75 | 42 | 12 | 25 | 6 |
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Bhattacharya, A.; Li, C.; Renno, N.O.; Atreya, S.K.; Sweeney, D. Probing Dust and Water in Martian Atmosphere with Far-Infrared Frequency Spacecraft Occultation. Remote Sens. 2023, 15, 4574. https://doi.org/10.3390/rs15184574
Bhattacharya A, Li C, Renno NO, Atreya SK, Sweeney D. Probing Dust and Water in Martian Atmosphere with Far-Infrared Frequency Spacecraft Occultation. Remote Sensing. 2023; 15(18):4574. https://doi.org/10.3390/rs15184574
Chicago/Turabian StyleBhattacharya, Ananyo, Cheng Li, Nilton O. Renno, Sushil K. Atreya, and David Sweeney. 2023. "Probing Dust and Water in Martian Atmosphere with Far-Infrared Frequency Spacecraft Occultation" Remote Sensing 15, no. 18: 4574. https://doi.org/10.3390/rs15184574
APA StyleBhattacharya, A., Li, C., Renno, N. O., Atreya, S. K., & Sweeney, D. (2023). Probing Dust and Water in Martian Atmosphere with Far-Infrared Frequency Spacecraft Occultation. Remote Sensing, 15(18), 4574. https://doi.org/10.3390/rs15184574