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ANALYSIS METHOD FOR NON-NOMINAL FIRST ACQUISITION

机译:非名义第一采集的分析方法

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First this paper describes a method how the trajectory of the launcher can be modelled for the contingency analysis without having much information about the launch vehicle itself. From a dense sequence of state vectors a velocity profile is derived which is sufficiently accurate to enable the Flight Dynamics Team to integrate parts of the launcher trajectory on its own and to simulate contingency cases by modifying the velocity profile. Then the paper focuses on the thorough visibility analysis which has to follow the contingency case or burn performance simulations. In the ideal case it is possible to identify a ground station which is able to acquire the satellite independent from the burn performance. The correlations between the burn performance and the pointing at subsequent ground stations are derived with the aim of establishing simple guidelines which can be applied quickly and which significantly improve the chance of acquisition at subsequent ground stations. In the paper the method is applied to the Soyuz/Fregat launch with the MetOp satellite. Overall the paper shows that the launcher trajectory modelling with the simulation of contingency cases in connection with a ground station visibility analysis leads to a proper selection of ground stations and acquisition methods. In the MetOp case this ensured successful contact of all ground stations during the first hour after separation without having to rely on any early orbit determination result or state vector update.
机译:首先,本文描述了一种方法如何为应急分析建模发射器的轨迹,而无需了解发射车辆本身的许多信息。从密集的状态向量序列导出速度曲线,其足够准确以使飞行动态团队能够通过修改速度配置文件来集成启动器轨迹的部分并模拟应急情况。然后该文件侧重于彻底的可见性分析,必须遵循应急情况或烧伤性能模拟。在理想情况下,可以识别能够独立于燃烧性能获取卫星的地面站。燃烧性能与后续地站之间的相关性旨在建立可以快速应用的简单准则,并显着提高随后的地面站采集的机会。在本文中,该方法应用于Metop卫星的Soyuz / Fregat发射。 Overall the paper shows that the launcher trajectory modelling with the simulation of contingency cases in connection with a ground station visibility analysis leads to a proper selection of ground stations and acquisition methods.在METOP案例中,在分离后的第一个小时内确保所有地面站的成功接触,而无需依赖任何早期轨道确定结果或状态向量更新。

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