Precise Orbit Determination of MEX Flyby Phobos Using Simulated Radiometric and Image Data
Abstract
:1. Introduction
2. Data and Methodology
2.1. Basic Data for Simulation
2.1.1. Phobos Shape Model
2.1.2. MEX Flyby Orbits
2.1.3. Geometric Properties of the SRC Camera
2.2. Image Feature Point Simulation
2.3. Simulation of the Surface Feature Point
2.3.1. Unify Coordinate System
2.3.2. Surface Feature Point Interpolation
2.4. Image Observation Model
2.5. Partial Derivatives of the Image Observation Model
2.6. Simulation of Doppler Data
3. Results and Discussion
4. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Configuration | Description |
---|---|
The initial MEX state (MARS J2000) | Epoch (UTC): 2013-12-29 03:40:00; X(m): 2067685.5850630, Y(m): −6081856.4673221, Z (m):10990534.6587460 Vx(m/s): −1085.32769224, Vy(m/s): −673.97767323, Vz(m/s): 490.54349005 |
Force model | MRO120D (truncated to 95 degrees and order); N-body perturbation (DE421, Phobos ephemeris: NOE-4-2015-b.bsp); Solar radiation (Simple model); Martian Albedo and IR; Post-Newtonian effect (Sun and Planets); Mars solid tidal perturbation (Love number K2 = 0.169); Mars atmospheric drag (atmospheric pressure and density from Mars Climate Data base v5.3) |
Arc | The Flyby in 2013 |
---|---|
Time span | 2013-12-29-07:07:35-07:10:25 |
Sample interval | 5 s |
Number of orbit point | 35 |
Spacecraft altitude | 59–264 km |
Property | Value |
---|---|
Focal length f | 988.5 mm |
(in-flight calibration) | |
Number of pixels | 1024 × 1024 pixels |
Number of active pixels | 1008 × 1018 pixels |
(lines × samples) | |
Pixel size | 9 × 9 µm |
FOV per pixel | 9 µrad |
FOV total | 9 mrad |
Item | Values |
---|---|
Image noise | 0.5 pixel |
Phobos shape error | 1.0 m |
Camera attitude errors | boresight: 1 pixel; twist angle: 1.0 mrad |
Data Type | Data Amount | Position (m) | Velocity (mm/s) | ||||
---|---|---|---|---|---|---|---|
R | T | N | R | T | N | ||
Doppler | 5250 | 0.4715 | 33.5680 | 294.4105 | 3.3327 | 1.4512 | 16.2230 |
Doppler + Image | 10,535 | 0.2497 | 0.6971 | 5.1336 | 0.0869 | 0.0135 | 0.0874 |
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Zhu, X.; Liu, L.; Liu, S.; Xie, P.; Gao, W.; Yan, J. Precise Orbit Determination of MEX Flyby Phobos Using Simulated Radiometric and Image Data. Sensors 2021, 21, 385. https://doi.org/10.3390/s21020385
Zhu X, Liu L, Liu S, Xie P, Gao W, Yan J. Precise Orbit Determination of MEX Flyby Phobos Using Simulated Radiometric and Image Data. Sensors. 2021; 21(2):385. https://doi.org/10.3390/s21020385
Chicago/Turabian StyleZhu, Xinbo, Lu Liu, Suyan Liu, Pan Xie, Wutong Gao, and Jianguo Yan. 2021. "Precise Orbit Determination of MEX Flyby Phobos Using Simulated Radiometric and Image Data" Sensors 21, no. 2: 385. https://doi.org/10.3390/s21020385
APA StyleZhu, X., Liu, L., Liu, S., Xie, P., Gao, W., & Yan, J. (2021). Precise Orbit Determination of MEX Flyby Phobos Using Simulated Radiometric and Image Data. Sensors, 21(2), 385. https://doi.org/10.3390/s21020385