遥远沙漠环境下望远镜时间的鲁棒时标设计与实现

J. Burger, G. Adams, R. Siebrits, R. Garnatham, V. Vantonder, Z. Ramudzuli, M. Welz, F. Kapp, T. Abbott, A. Syce, V. Smith, C. van der Merwe, P. Rogers, N. Mnyandu
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引用次数: 2

摘要

为下一代射电望远镜(MeerKAT)跟踪时间的时钟集合正在建造中,以便能够在MeerKAT相位中心的偏远沙漠环境中长时间(~10年)提供可靠的w.r.t UTC定时-提供给望远镜的主时钟定时边缘称为KTT(卡鲁望远镜时间)。该系统由两个脉射器、两个GPS/Rb时钟、一个高稳定性晶体和两个时间传输系统组成,用于与南非国家计量研究所(NMISA)连接,以及基于硬件的时钟选择设备,以实现每秒主时钟脉冲的信号路由和10MHz频率参考到望远镜。该系统通过利用冗余气候控制、多电源备份和冗余软件记录来实现高可用性。给出了初始时间跟踪能力的数据。如数据所示,在专用基础设施中通过隔振和温度稳定实现了提供合成器的系统的低相位噪声和漂移。系统定时是事后计算的(与实时实现相反),因为脉冲星定时数据(特别是引力波工作)所需的定时不确定性最低。给出了系统的总体结构和初步测试结果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Robust Time Scale Design and Implementation for Telescope Time in a Remote Desert Environment
A clock ensemble for tracking time for a next generation radio telescope (MeerKAT) is being built, to be able provide robust timing w.r.t. UTC over long periods (~10 years) in a remote desert environment at the phase center of the MeerKAT-the master clock timing edge as supplied to the telescope is called the KTT (Karoo Telescope Time). This system consists out of two masers, two GPS/Rb clocks, a high stability crystal, and two time transfer systems to link with the National Metrology Institute of South Africa (NMISA), and hardware based clock selection devices to enable signal routing of the master clock pulse per second and 10MHz frequency reference to the telescope. The system is designed for high availability by making use of redundant climate control, multiple power backup and redundant software logging. Data on the initial time tracking capabilities are presented. Low phase noise and drift of the system for supplying synthesizers has been achieved via vibration isolation, and temperature stabilization in purpose built infrastructure as is shown in data. The system timing is calculated post facto (as opposed to real time realization) due to the lowest timing uncertainty needed on pulsar timing data especially for gravitational wave work. The system architecture and initial measurement on the system is presented.
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