Precise continuous time and frequency transfer using GPS carrier phase

R. Dach, U. Hugentobler, T. Schildknecht, L. Bernier, G. Dudle
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引用次数: 29

Abstract

The Astronomical Institute of the University of Bern (AIUB) and the Swiss Federal Office of Metrology and Accreditation (METAS) have been collaborating to investigate and apply the use of the GPS carrier phase measurements (GPS CP) for time and frequency transfer. At METAS a dedicated hardware has been developed: the so-called geodetic time transfer terminal (GeTT-terminal) which was already presented to the community [Dudle, 1998]. In parallel the AIUB has implemented the capability for time and frequency transfer into the Bernese GPS software package [Hugentobler, 2001]. Within the last years several improvements of the analysis software for the time and frequency transfer have been implemented. The developments have been focused on overcoming the day boundary discontinuities. These occur in the resulting time series if the data are analyzed independently for each day. The magnitude of these artificial "clock jumps" depends on the mean noise behavior of the code observations and may typically reach a magnitude of up to one nanosecond. An important result of the software developments is the possibility to reconnect the phase ambiguity parameters at the day boundaries which allows to generate a continuous geodetic time and frequency transfer solution for a time interval that is only limited by a loss of lock to all satellites. This allows, in addition, to generate a geodetic frequency transfer solution without using the code measurements at all. Consequences for the geodetic time transfer learned from applying the geodetic phase-only frequency transfer method in several international campaigns are discussed in this paper
使用GPS载波相位进行精确的连续时间和频率传输
伯尔尼大学天文研究所(AIUB)和瑞士联邦计量和认证办公室(METAS)一直在合作研究和应用GPS载波相位测量(GPS CP)进行时间和频率传输。METAS已经开发了专用硬件:所谓的大地时间传输终端(GeTT-terminal),该终端已经向社区展示[Dudle, 1998]。同时,AIUB已经实现了将时间和频率传输到伯尔尼GPS软件包中的能力[Hugentobler, 2001]。在过去的几年中,对时间和频率传输的分析软件进行了一些改进。发展的重点是克服日边界不连续。如果对每一天的数据进行独立分析,就会在结果时间序列中出现这种情况。这些人为“时钟跳变”的幅度取决于代码观测的平均噪声行为,通常可以达到1纳秒的幅度。软件开发的一个重要结果是可以在日边界重新连接相位模糊参数,从而可以在一段时间间隔内生成连续的大地测量时间和频率传输解决方案,该解决方案仅受所有卫星失去锁定的限制。此外,这允许在不使用代码测量的情况下生成大地频率传输解决方案。本文讨论了在几次国际运动中应用大地相位频率传递方法所获得的大地时间传递结果
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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