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Investigation into a GPS Time Pulse Radiator for Testing Time-Stamp Accuracy of a Radio Telescope

机译:用于测试射电望远镜时间戳精度的GPS时间脉冲辐射器的研究

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The MeerKAT radio telescope under construction in South Africa is required to tag the arrival time of a signal to within 10 ns of Coordinated Universal Time (UTC). The telescope has a local maser clock ensemble, compared to UTC by dual-band GPS receivers, and transferred to the digitizers of the array by an optical fiber system. In order to verify the accuracy of the end-to-end time tagging of samples, a portable instrument was constructed that transmits a periodic time signal. This GPS time pulse radiator (GTR) is mounted 10 m away from the telescope L-band feed horn, and radiates a broadband signal of -20 dBm. The signal is modulated by turning off at each UTC second, using the 1PPS output of a GPS receiver. The recorded voltage stream of the telescope is searched for the time signal and the corresponding timestamp compared to its expected value. While less accurate than the masers and dual-band GPS, this technique is simple and the instrument is easily characterized. Laboratory tests of the GTR showed its RF pulse to be at 1.65±0.1 μs after the UTC second. Tests on the telescope revealed a 13.0±0.3 μs deviation from the expected timestamp value. This was later found to be due to a buffer in the digitizer FPGA, and confirmed by pulsar timing. The GTR concept allows simple, independent testing of a radio telescope pulsar timing system. Future work is planned to improve the shape of the transmitted signal, to study GPS timing errors and correction techniques, and to process the received data using a more standard pulsar timing pipeline.
机译:在南非建设中的Meerkat射频望远镜必须将信号的到达时间标记为在协调世界时间(UTC)的10个中。望远镜有一个本地Maser时钟集合,与UTC通过双频GPS接收器相比,并通过光纤系统传送到阵列的数字化器。为了验证样本的端到端时间标记的准确性,构造了传输周期性时间信号的便携式仪器。该GPS时间脉冲散热器(GTR)距望远镜L波段馈线10米,并辐射为-20 dBm的宽带信号。使用GPS接收器的1PPS输出,通过在每个UTC中关闭信号来调制信号。与其预期值相比,搜索望远镜的记录电压流和相应的时间戳。虽然比色带和双频GPS更低,但这种技术很简单,仪器很容易表征。 GTR的实验室测试在UTC第二秒后,其RF脉冲显示为1.65±0.1μs。望远镜上的测试揭示了从预期的时间戳值偏差的13.0±0.3μs。后来发现这是由于数字化器FPGA中的缓冲器,并通过脉冲条时序确认。 GTR概念允许对无线电望远镜脉冲定时系统简单,独立的测试。未来的工作计划改善传输信号的形状,以研究GPS定时误差和校正技术,并使用更标准的脉冲星定时管道处理接收的数据。

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