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Phase Compensation Sensor for Ranging Consistency in Inter-Satellite Links of Navigation Constellation

机译:导航星座卫星间链路测距一致性的相位补偿传感器

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Theperformanceoftheglobalnavigationsatellitesystem(GNSS)canbeenhancedsigni?cantly by introducing the inter-satellite links (ISL) of a navigation constellation. In particular, the improvement of the position, velocity, and time accuracy, and the realization of autonomous functions require the ISL distance measurement data as the original input. For building a high-performance ISL, the ranging consistency between navigation satellites becomes a crucial problem to be addressed. Considering the frequency aging drift and the relativistic effect of the navigation satellite, the frequency and phase adjustment (FPA) instructions for the 10.23 MHz must be injected from the ground station to ensure the time synchronization of the navigation constellation. Moreover, the uncertainty of the initial phase each time the onboard clock equipment boots also results in a pseudo-range offset. In this Ref., we focus on the in?uence of the frequency and phase characteristics of the onboard clock equipment on the ranging consistency of the ISL and propose a phase compensation sensor design method for the phase offset. The simulation and experimental results show that the proposed method not only realized a phase compensation for the pseudo-range jitter, but, when the 1 PPS (1 pulse per second) falls in the 10.23 MHz skip area, also overcomes the problem of compensating the ambiguous phase by directly tracking the 10.23 MHz to ensure consistency in the ranging.
机译:通过引入导航星座的星际链接(ISL),可以显着增强全球导航卫星系统(GNSS)的性能。特别是,位置,速度和时间精度的提高以及自主功能的实现需要将ISL测距数据作为原始输入。为了构建高性能的ISL,导航卫星之间的测距一致性成为需要解决的关键问题。考虑到频率老化漂移和导航卫星的相对论效应,必须从地面站注入10.23 MHz的频率和相位调整(FPA)指令,以确保导航星座图的时间同步。此外,每次车载时钟设备启动时初始阶段的不确定性也会导致伪距偏移。在本参考文献中,我们着眼于车载时钟设备的频率和相位特性对ISL测距一致性的影响,并提出了一种用于相位偏移的相位补偿传感器设计方法。仿真和实验结果表明,该方法不仅实现了对伪距抖动的相位补偿,而且当1 PPS(每秒1个脉冲)落在10.23 MHz跳跃区域时,也克服了补偿抖动的问题。通过直接跟踪10.23 MHz来确保模糊相位,以确保测距的一致性。

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