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MESSENGER Onboard Timekeeping Accuracy during the First Year in Orbit at Mercury

机译:Messenger在汞轨道上的第一年内奴役时间准确性

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The NASA MErcury Surface, Space ENvironment, GEochemistry, and Ranging (MESSENGER) mission to Mercury, launched in 2004, utilizes a timekeeping system that consistently provides accurate post-processed time knowledge between the spacecraft and ground operations to within 150 μs. The main constituent of this observed error, when the round-trip light time is computed directly from the geometrical distance traveled, has been attributed to the Shapiro delay. One means that is used to monitor the accuracy of MESSENGER timekeeping is a series of in-flight tests. We typically refer to these as "Latch MET" tests because the primary feature of these tests is the latching of the onboard mission elapsed time (MET) counter value in response to specific "Latch MET" commands transmitted from a Deep Space Network station. In 2011, we increased the nominal in-orbit cadence of Latch MET tests to once per week in order to characterize the relationship between the observed MESSENGER time accuracy and the Shapiro delay. Here we provide details on the collection and analysis of these results and their relevance to operating deep-space clock systems dominated by relativistic effects.
机译:2004年推出的美国宇航局汞表面,空间环境,地球化学和测距(Messenger)使命,利用计时系统,始终如一地在航天器和地面操作之间提供准确的后处理时间知识到150μs。当往返时间从行进的几何距离计算往返光线时,这种观察到的误差的主要组成部分已经归因于Sheairo延迟。一种方法,用于监测信使计时的准确性是一系列飞行中的测试。我们通常将这些视为“锁存符合”测试,因为这些测试的主要特征是响应于从深空网站发送的特定的“锁存时间”命令响应于Onboard任务的锁存时间(满足)计数器值。 2011年,我们将闩锁的名义内轨道节奏增加一次每周一次,以表征观察到的信使时间准确性与Shapiro延迟之间的关系。在这里,我们提供有关这些结果的收集和分析的详细信息及其与由相对论效应主导的深空时钟系统的相关性。

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