Relative Orbit Determination Algorithm of Space Targets with Passive Observation

IF 1.9 3区 计算机科学 Q3 AUTOMATION & CONTROL SYSTEMS Journal of Systems Engineering and Electronics Pub Date : 2024-07-04 DOI:10.23919/jsee.2024.000051
Chenchao Dai, Hongfu Qiang, Degang Zhang, Shaolei Hu, Baichun Gong
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Abstract

Angles-only relative orbit determination for space non-cooperative targets based on passive sensor is subject to weakly observable problem of the relative state between two spacecraft. Previously, the evidence for angles-only observability was found by using cylindrical dynamics, however, the solution of orbit determination is still not provided. This study develops a relative orbit determination algorithm with the cylindrical dynamics based on differential evolution. Firstly, the relative motion dynamics and line-of-sight measurement model for near-circular orbit are established in cylindrical coordinate system. Secondly, the observability is qualitatively analyzed by using the dynamics and measurement model where the unobservable geometry is found. Then, the angles-only relative orbit determination problem is modeled into an optimal searching frame and an improved differential evolution algorithm is introduced to solve the problem. Finally, the proposed algorithm is verified and tested by a set of numerical simulations in the context of high-Earth and low-Earth cases. The results show that initial relative orbit determination (IROD) solution with an appropriate accuracy in a relative short span is achieved, which can be used to initialize the navigation filter.
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利用被动观测确定空间目标相对轨道的算法
基于被动传感器的空间非合作目标的仅角度相对轨道确定受制于两个航天器之间相对状态的弱可观测问题。此前,利用圆柱动力学找到了仅角度可观测性的证据,但仍未提供轨道确定的解决方案。本研究开发了一种基于微分演化的圆柱动力学相对轨道确定算法。首先,在圆柱坐标系下建立了近圆轨道的相对运动动力学和视线测量模型。其次,利用动力学和测量模型对可观测性进行定性分析,发现了不可观测的几何形状。然后,将纯角相对轨道确定问题建模为最优搜索框架,并引入改进的微分进化算法来解决该问题。最后,在高地和低地情况下,通过一组数值模拟对所提出的算法进行了验证和测试。结果表明,在相对较短的时间跨度内实现了具有适当精度的初始相对轨道确定(IROD)解,可用于初始化导航滤波器。
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来源期刊
Journal of Systems Engineering and Electronics
Journal of Systems Engineering and Electronics 工程技术-工程:电子与电气
CiteScore
4.10
自引率
14.30%
发文量
131
审稿时长
7.5 months
期刊介绍: Information not localized
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