Overview on Space-Based Optical Orbit Determination Method Employed for Space Situational Awareness: From Theory to Application
Abstract
:1. Introduction
2. The Evolution of Space Situational Awareness Policies
3. Typical Space-Based Situational Awareness Facilities
4. Orbit Association Methods
Developers | Characteristics | Inputs | Outputs | Main Equations |
---|---|---|---|---|
Tommei et al. [45] | Regard the gravity as a constraint on the motion of targets and utilized the orbital altitudes as a constraint to construct the feasible domain | Arc of observations and the corresponding optical attributable | Admissible region of the orbit of target | |
Maruskin et al. [46] | Simplified the association process and further limited the size of admissible region in the range range-rate plane | Arc of observations and the corresponding optical attribute | Admissible region of the orbit of target | |
Fujimoto et al. [47,48,49] | Mapped the feasible domain where the target might exist to a 6D Poincaré space | Multiple observations and the sensor position | Correction of observations | |
Siminski et al. [51,52] | Reframed the association problem into an optimization process | Range and range-rate hypothesis | Improved range and range-rate hypothesis | ; |
5. Initial Orbit Determination Methods
Methods | Characteristics | Inputs | Outputs | Main Equations |
---|---|---|---|---|
Gauss method | The most classic method for initial orbit determination | The direction of three observations | Geocentric distance of the target | |
Laplace method | Straightforward and practical | The direction of three observations | Geocentric distance of the target | |
Proposed by Schmidt et al. [64] | Proposed method for determining the shape of orbit | relative angle measurements | values of several of the relative orbit elements | / |
Proposed by Geller et al. [68,69] | Developed novel orbit determination method by setting the camera offset from the vehicle | three line-of-sight observations for relative motion coasting trajectory to the center of mass of an object | initial position and velocity of target | |
Proposed by Gong et al. [70] | Effectively addressed the nonlinear challenges in orbit determination by using machine learning methods | three sets of bearing angle and the absolute orbit state of the observer | the initial relative orbit state of the target | (Loss Function) |
6. Precise Orbit Determination Methods
Developers | Characteristics | Inputs | Outputs | Main Equations |
---|---|---|---|---|
Kozai [80] | Established the first analytical precise orbit determination method | Initial states of a close earth satellite | Prediction of satellite orbit | |
Wang et al. [88] | Proposed a dual-satellite optical orbit determination method for GEO satellites | Initial state of the target, priori of estimate and related covariance matrix | Optimal estimation of the orbits of space targets | |
Li Bin [94] | Proposed an analytical method for solving the orbit propagation to determine orbit fast and accurately | Initial states of a close earth satellite | Prediction of satellite orbit | |
Zhang et al. [95] | Presented a method for orbit prediction in large-scale space debris clusters | Initial states of nominal space debris | Predicted orbits of space debris cluster |
7. Challenges and Development Trends in Orbit Determination Methods for Space-Based Optical Platforms
7.1. High-Precision Orbit Prediction Methods for Space Targets at Long-Distance
7.2. High-Performance Orbit Determination Methods for Large-Scale Satellite Cluster Targets
7.3. Orbit Prediction Methods for Large-Scale Space Debris
7.4. Orbit Design for Space-Based Situational Awareness Systems
8. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Data Availability Statement
Conflicts of Interest
References
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Satellite | Optical Aperture | Pixel Size | Pixel Number | Field of View |
---|---|---|---|---|
MSX | 15 cm | Unknown | Unknown | |
SBSS | 30 cm | Unknown | 2.4 million | |
STARE | 8.5 cm | 6.7 m | 1280 × 1024 | |
MOST | 15 cm | Unknown | 1024 × 1024 | |
Sapphire | 15 cm | Unknown | Unknown | |
SBO | 20 cm | 18 m | Unknown | |
Asteroid | 25 cm | 13 m | 2k × 2k |
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Zhang, Z.; Zhang, G.; Cao, J.; Li, C.; Chen, W.; Ning, X.; Wang, Z. Overview on Space-Based Optical Orbit Determination Method Employed for Space Situational Awareness: From Theory to Application. Photonics 2024, 11, 610. https://doi.org/10.3390/photonics11070610
Zhang Z, Zhang G, Cao J, Li C, Chen W, Ning X, Wang Z. Overview on Space-Based Optical Orbit Determination Method Employed for Space Situational Awareness: From Theory to Application. Photonics. 2024; 11(7):610. https://doi.org/10.3390/photonics11070610
Chicago/Turabian StyleZhang, Zhe, Gaopeng Zhang, Jianzhong Cao, Cheng Li, Weining Chen, Xin Ning, and Zheng Wang. 2024. "Overview on Space-Based Optical Orbit Determination Method Employed for Space Situational Awareness: From Theory to Application" Photonics 11, no. 7: 610. https://doi.org/10.3390/photonics11070610
APA StyleZhang, Z., Zhang, G., Cao, J., Li, C., Chen, W., Ning, X., & Wang, Z. (2024). Overview on Space-Based Optical Orbit Determination Method Employed for Space Situational Awareness: From Theory to Application. Photonics, 11(7), 610. https://doi.org/10.3390/photonics11070610