Abstract
A dual-layer optimization approach is put forward to meet the relay communication requirements of the fourth-phase mission of the lunar exploration program,with the aim of designing high lunar frozen orbits utilizing concentric-circle phase diagrams of Hamiltonian systems. Within the framework of a high-order lunar gravitational field model raised to the 15th order,the canonical form of Hamiltonian equations is depicted by employing Delaunay variables. By applying the Hori-Lie transformation,perturbation equations with short-period terms removed are formulated,and concentric-circle phase diagrams of Delaunay variables are derived based on the properties of equilibrium points. Moreover,a dual-layer optimization algorithm that combines the iterative search of concentric-circle phase diagrams with particle swarm optimization (PSO) is devised. This algorithm is integrated with long-term evolution data under the ephemeris model and the mean-osculating orbit element interchange method. It is used to screen out the lunar relay mission orbits with the most favorable frozen characteristics. During an 8-year long-term evolution simulation under the ephemeris model,the dual-layer optimization algorithm effectively curtails the drifts of orbital elements and the decline of perilune altitude. As a result,the 24-hour mission orbit with the optimal frozen characteristics is obtained,offering a valuable reference for the orbit design of long-duration lunar relay communication systems.
| Translated title of the contribution | Global Search Design of Eccentricity of Highly Elliptical Frozen Orbit for Lunar Relay Communication |
|---|---|
| Original language | Chinese (Traditional) |
| Pages (from-to) | 884-894 |
| Number of pages | 11 |
| Journal | Yuhang Xuebao/Journal of Astronautics |
| Volume | 46 |
| Issue number | 5 |
| DOIs | |
| State | Published - May 2025 |
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