在AHU/APL时间和频率实验室进行时间标度改进的时钟漂移的自主表征

M. Miranian, G. Weaver, M. Reinhart
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引用次数: 2

摘要

我们已经报告了我们的时间和频率实验室能力的持续改进。我们在能力方面的很大一部分进步,是通过采用新的时钟硬件、改进GPS时间恢复和在TAI计算中协调我们的时钟而取得的。我们已经讨论了将氢脉泽和铯束原子钟集成到一个时间刻度中,使UTC (APL)能够在UTC每月±30纳秒的范围内进行调整。APL时间尺度的传播基于Percival方法的改进版本,需要对每个时钟的频率和漂移进行定期表征。在这里,我们讨论了对APL时间标度中的单个时钟进行自主表征的结果。这种操作上的改进减少了对常规操作员时间刻度维护的需求,并实现了J.A. Barnes和D.W. Allan(1985)所描述的使用频率进行时钟估计的优势。我们讨论了我们在表征我们的氢脉泽中观察到的非线性漂移的方法如何帮助我们尝试在空间环境中训练石英超稳定振荡器的长期频率漂移行为。与之前的报告一样,我们以UTC-UTC(APL)的形式提供最新的实验室性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Autonomous characterization of clock drift for timescale improvement at the AHU/APL time and frequency laboratory
We have reported on continuous improvements in the capability of our time and frequency laboratory. A substantial portion of our progress in capability was achieved through the incorporation of new clock hardware, improvement in GPS time recovery and coordination of our clocks into the computation of TAI. We have discussed our ensemble of hydrogen maser and cesium beam atomic clocks into a timescale that enables UTC (APL) to be steered within plusmn 30 nanoseconds per month of UTC. The propagation of the APL timescale is based on a modified version of the Percival method, requiring regular characterization of each clock's frequency rate and drift. Here, we discuss our results in an autonomous characterization of the individual clocks contributing to the APL timescale. This improvement in our operation has minimized the need for routine operator timescale maintenance and realizes the advantages in clock estimation using frequency, described by J.A. Barnes and D.W. Allan (1985). We discuss how our approach at characterizing the nonlinear drift observed in our hydrogen masers has aided our attempt to discipline the long term frequency drift behavior of quartz ultra-stable oscillators in the space environment. As in previous reports, we present updated laboratory performance in the form of UTC-UTC(APL)
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