Abstract Analysis of orbit determination from Earth-based tracking for relay satellites in a perturbed areostationary orbit
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Analysis of orbit determination from Earth-based tracking for relay satellites in a perturbed areostationary orbit

机译:基于地球跟踪的扰动同定轨道中中继卫星的轨道确定分析

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摘要

Abstract Areostationary satellites are considered a high interest group of satellites to satisfy the telecommunications needs of the foreseen missions to Mars. An areostationary satellite, in an areoequatorial circular orbit with a period of 1 Martian sidereal day, would orbit Mars remaining at a fixed location over the Martian surface, analogous to a geostationary satellite around the Earth. This work addresses an analysis of the perturbed orbital motion of an areostationary satellite as well as a preliminary analysis of the aerostationary orbit estimation accuracy based on Earth tracking observations. First, the models for the perturbations due to the Mars gravitational field, the gravitational attraction of the Sun and the Martian moons, Phobos and Deimos, and solar radiation pressure are described. Then, the observability from Earth including possible occultations by Mars of an areostationary satellite in a perturbed areosynchronous motion is analyzed. The results show that continuous Earth-based tracking is achievable using observations from the three NASA Deep Space Network Complexes in Madrid, Goldstone and Canberra in an occultation-free scenario. Finally, an analysis of the orbit determination accuracy is addressed considering several scenarios including discontinuous tracking schedules for different epochs and different areoestationary satellites. Simulations also allow to quantify the aerostationary orbit estimation accuracy for various tracking series durations and observed orbit arc-lengths. Highlights Areostationary satellite observability analysis in perturbed areosynchronous motion. Areostationary satellite orbit determination from Earth-based tracking. Analysis of accuracy sensitivity to tracking arc-lengths and observation epochs.
机译: 摘要 对地静止卫星被认为是对卫星有很高兴趣的卫星,可以满足预见到火星飞行任务的电信需求。一颗等静卫星处于一个以火星恒星日为周期的赤道圆轨道上,它将使火星绕火星表面的固定位置运行,这类似于地球周围的对地静止卫星。这项工作着重于对等平稳卫星的扰动轨道运动进行分析,以及对基于地球跟踪观测的对对空平稳轨道的估计精度进行初步分析。首先,描述了火星引力场,太阳和火星卫星,火卫一和地摩斯的引力吸引力以及太阳辐射压力引起的摄动的模型。然后,分析了来自地球的可观测性,包括火星可能在静止的同步同步运动中对静止卫星的掩星。结果表明,在无掩星的情况下,使用马德里,戈德斯通和堪培拉的三个NASA深空网络综合体的观测结果,可以实现连续的基于地球的跟踪。最后,考虑了几种情况,包括对不同时期和不同等卫星的不连续跟踪时间表,对轨道确定精度进行了分析。通过模拟,还可以量化各种跟踪序列持续时间和观测到的轨道弧长的航空平稳轨道估计精度。 突出显示 处于扰动的同步运动中的静止卫星可观察性分析。 静止状态 分析对跟踪弧长和观测历元的准确性敏感性。

著录项

  • 来源
    《Acta astronautica》 |2017年第7期|434-442|共9页
  • 作者单位

    Instituto de Matemática Interdisciplinar (IMI). Dep. Astronomía y Geodesia, Facultad de Matemáticas, Universidad Complutense de Madrid;

    Instituto de Matemática Interdisciplinar (IMI). Dep. Astronomía y Geodesia, Facultad de Matemáticas, Universidad Complutense de Madrid;

    Instituto de Matemática Interdisciplinar (IMI). Dep. Astronomía y Geodesia, Facultad de Matemáticas, Universidad Complutense de Madrid;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Mars; Orbits; Telecommunications; Payloads; Space vehicles; Stationary Satellites; Areostationary Telecommunication Orbiters; Orbit Determination;

    机译:火星;轨道;电信;有效载荷;航天器;固定卫星;对地静止电信轨道器;轨道确定;
  • 入库时间 2022-08-18 02:27:50

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