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An Autonomous Satellite Time Synchronization System Using Remotely Disciplined VC-OCXOs

机译:使用远程纪律VC-OCXO的自主卫星时间同步系统

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摘要

An autonomous remote clock control system is proposed to provide time synchronization and frequency syntonization for satellite to satellite or ground to satellite time transfer, with the system comprising on-board voltage controlled oven controlled crystal oscillators (VC-OCXOs) that are disciplined to a remote master atomic clock or oscillator. The synchronization loop aims to provide autonomous operation over extended periods, be widely applicable to a variety of scenarios and robust. A new architecture comprising the use of frequency division duplex (FDD), synchronous time division (STDD) duplex and code division multiple access (CDMA) with a centralized topology is employed. This new design utilizes dual one-way ranging methods to precisely measure the clock error, adopts least square (LS) methods to predict the clock error and employs a third-order phase lock loop (PLL) to generate the voltage control signal. A general functional model for this system is proposed and the error sources and delays that affect the time synchronization are discussed. Related algorithms for estimating and correcting these errors are also proposed. The performance of the proposed system is simulated and guidance for selecting the clock is provided.
机译:提出了一种自主的远程时钟控制系统,以提供时间同步和频率同步,以实现卫星到卫星或地面到卫星的时间转换,该系统包括机载压控炉控晶体振荡器(VC-OCXO),这些振荡器受远程控制主原子时钟或振荡器。同步环旨在提供扩展的自治运行时间,广泛适用于各种情况,并且功能强大。采用了一种新架构,该架构包括使用频分双工(FDD),同步时分(STDD)双工和具有集中式拓扑的码分多址(CDMA)。这项新设计利用双重单向测距方法来精确测量时钟误差,采用最小二乘(LS)方法来预测时钟误差,并采用三阶锁相环(PLL)来生成电压控制信号。提出了该系统的通用功能模型,并讨论了影响时间同步的错误源和延迟。还提出了用于估计和纠正这些误差的相关算法。仿真了所提出系统的性能,并提供了选择时钟的指南。

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