低地轨道巨型星座低冗余设计:快速性能分析和自适应配置分层

Yao Xiao, Shuai Guo, Yazhong Luo
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引用次数: 0

摘要

巨型星座提供便捷的通信和导航服务,是卫星应用发展的前沿。然而,传统星座的统一配置无法满足不同地区的不同需求,从而导致利用率低下。此外,卫星安全也成为巨型星群不可忽视的关键因素。针对上述问题,本研究提出了一种自适应方法,用于在圆形轨道、各平面均匀分布和预先给定高度的假设条件下设计分层巨型星群。为评估覆盖性能和卫星安全性,开发了两种新方法。首先,在覆盖理论的基础上提出了纬度-覆盖率模型,增强了针对特定纬度覆盖需求的星座设计。接着,推导出计算平面间最小角距的快速方法。然后,研究了用于子星座设计技术的模型,以组装多层混合巨型星群。研究设计了多个混合巨型星群,证明该方法适用于非均匀和全局均匀覆盖要求。结果表明,与单个沃克相比,这种方法减少了冗余,降低了卫星数量。实例还表明,当达到足够的覆盖褶皱时,低地轨道混合星座可以实现全球均匀覆盖。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Low-Earth-Orbit Mega-Constellation Low-Redundancy Design: Rapid Performance Analysis and Adaptive Configuration Layering
Megaconstellations, which offer convenient communication and navigation services, are at the forefront of satellite application advancements. However, traditional constellations with a single uniform configuration fail to meet the various demands in different regions, thus leading to low utilization. In addition, satellite safety becomes a key consideration that megaconstellations cannot ignore. To address the aforementioned problems, this study proposes an adaptive method for designing layered megaconstellations under the assumptions of circular orbits, uniform distribution in each plane, and a pregiven altitude. Two novel methods are developed for evaluating the coverage performance and satellite safety. First, the longitude-coverage-ratio model is proposed based on the street of coverage theory, enhancing the constellation design for latitude-specific coverage needs. Next, a rapid method is derived for calculating the minimum angular distance between planes. Then, the study investigates the models to be used in subconstellation design techniques for assembling multilayer hybrid megaconstellations. Several hybrid megaconstellations are designed, demonstrating the applicability of the methodology for both nonuniform and global uniform coverage requirements. The results show that this method offers reduced redundancy and a lower number of satellites compared to a single Walker. The examples also suggest that low-Earth-orbit hybrid constellations can achieve global uniform coverage when reaching sufficient coverage folds.
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