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Aiming at a 1-cm Orbit for Low Earth Orbiters: Reduced-Dynamic and Kinematic Precise Orbit Determination

机译:瞄准低地球轨道器的1厘米轨道:简化的动力学和运动学精确轨道确定

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摘要

The computation of high-accuracy orbits is a prerequisite for the success of Low Earth Orbiter (LEO) missions such as CHAMP, GRACE and GOCE. The mission objectives of these satellites cannot be reached without computing orbits with an accuracy at the few cm level. Such a level of accuracy might be achieved with the techniques of reduced-dynamic and kinematic precise orbit determination (POD) assuming continuous Satellite-to-Satellite Tracking (SST) by the Global Positioning System (GPS). Both techniques have reached a high level of maturity and have been successfully applied to missions in the past, for example to TOPEX/POSEIDON (T/P), leading to (sub-)decimeter orbit accuracy. New LEO gravity missions are (to be) equipped with advanced GPS receivers promising to provide very high quality SST observations thereby opening the possibility for computing cm-level accuracy orbits. The computation of orbits at this accuracy level does not only require high-quality GPS receivers, but also advanced and demanding observation preprocessing and correction algorithms. Moreover, sophisticated parameter estimation schemes need to be adapted and extended to allow the computation of such orbits. Finally, reliable methods need to be employed for assessing the orbit quality and providing feedback to the different processing steps in the orbit computation process.
机译:高精度轨道的计算是诸如CHAMP,GRACE和GOCE之类的低地球轨道(LEO)任务成功的前提。如果不以几厘米的精度计算轨道,就无法实现这些卫星的任务目标。假设通过全球定位系统(GPS)进行连续的卫星到卫星跟踪(SST),则可以通过降低动态和运动学精确轨道确定(POD)技术来达到这样的精度水平。两种技术都已经达到很高的成熟度,并且过去已经成功地应用于任务,例如应用于TOPEX / POSEIDON(T / P),从而实现了(亚)分米的轨道精度。新的LEO重力飞行任务将配备先进的GPS接收器,有望提供非常高质量的SST观测,从而为计算厘米级的精确轨道提供了可能性。在这种精度水平上进行轨道计算不仅需要高质量的GPS接收器,而且还需要先进而苛刻的观测预处理和校正算法。而且,需要修改和扩展复杂的参数估计方案以允许计算这样的轨道。最后,需要采用可靠的方法来评估轨道质量并向轨道计算过程中的不同处理步骤提供反馈。

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