The benefits of very low earth orbit for earth observation missions
Преимущества полярных низких околоземных орбит для миссий наблюдения Земли
2020-08-01
SCID: 54.1/jneraysp
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Earth observationatmosphere-breathing electric propulsionatomic oxygen erosionspatial resolutionvery low Earth orbit
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Abstract (AI)
Very low Earth orbits (VLEO), typically classified as orbits below approximately 450 km in altitude, have the potential to provide significant benefits to spacecraft over those that operate in higher altitude orbits. This paper provides a comprehensive review and analysis of these benefits to spacecraft operations in VLEO, with parametric investigation of those which apply specifically to Earth observation missions. The most significant benefit for optical imaging systems is that a reduction in orbital altitude improves spatial resolution for a similar payload specification. Alternatively mass and volume savings can be made whilst maintaining a given performance. Similarly, for radar and lidar systems, the signal-to-noise ratio can be improved. Additional benefits include improved geospatial position accuracy, improvements in communications link-budgets, and greater launch vehicle insertion capability. The collision risk with orbital debris and radiation environment can be shown to be improved in lower altitude orbits, whilst compliance with IADC guidelines for spacecraft post-mission lifetime and deorbit is also assisted. Finally, VLEO offers opportunities to exploit novel atmosphere-breathing electric propulsion systems and aerodynamic attitude and orbit control methods. However, key challenges associated with our understanding of the lower thermosphere, aerodynamic drag, the requirement to provide a meaningful orbital lifetime whilst minimising spacecraft mass and complexity, and atomic oxygen erosion still require further research. Given the scope for significant commercial, societal, and environmental impact which can be realised with higher performing Earth observation platforms, renewed research efforts to address the challenges associated with VLEO operations are required.
Key Findings
1
Collision risk with orbital debris and radiation exposure are reduced in lower altitude orbits, aiding compliance with post-mission deorbit guidelines.
2
Key challenges for VLEO include limited understanding of the lower thermosphere, higher aerodynamic drag, need to balance orbital lifetime with low mass/complexity, and atomic oxygen erosion, requiring further research.
3
Lower VLEO altitudes enable mass and volume savings while maintaining equivalent Earth observation performance.
4
Operating spacecraft in very low Earth orbit (VLEO, <~450 km) significantly improves optical imaging spatial resolution for similar payload specifications.
5
Radar and lidar systems in VLEO experience improved signal-to-noise ratio compared to higher orbits.
6
VLEO enables novel technologies such as atmosphere-breathing electric propulsion and aerodynamic attitude/orbit control methods.
7
VLEO improves geospatial positioning accuracy and communications link budgets, and increases launch vehicle insertion capability.
Research Object
Very low Earth orbit (VLEO) environment for spacecraft conducting Earth observation missions
Research Subject
Benefits and challenges for spacecraft operations and payload performance in VLEO relevant to Earth observation (including spatial resolution, SNR for radar/lidar, geospatial accuracy, communications link budgets, launch insertion, debris/radiation risk, deorbit compliance, atmosphere-breathing propulsion, aerodynamic control, aerodynamic drag, thermosphere knowledge, and atomic oxygen erosion)
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2020-08-01
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