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Control of the TSU 2-m automatic telescope

机译:TSU 2-m自动望远镜的控制

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摘要

Tennessee State University is operating a 2-m automatic telescope for high-dispersion spectroscopy. The altazimuth telescope is fiber-coupled to a conventional echelle spectrograph with two resolutions (R=30,000 and 70,000). We control this instrument with four computers running linux and communicating over ethernet through the UDP protocol. A computer physically located on the telescope handles the acquisition and tracking of stars. We avoid the need for real-time programming in this application by periodically latching the positions of the axes in a commercial motion controller and the time in a GPS receiver. A second (spectrograph) computer sets up the spectrograph and runs its CCD, a third (roof) computer controls the roll-off roof and front flap of the telescope enclosure, and the fourth (executive) computer makes decisions about which stars to observe and when to close the observatory for bad weather. The only human intervention in the telescope's operation involves changing the observing program, copying data back to TSU, and running quality-control checks on the data. It has been running reliably in this completely automatic, unattended mode for more than a year with all day-to-day adminsitration carried out over the Internet. To support automatic operation, we have written a number of useful tools to predict and analyze what the telescope does. These include a simulator that predicts roughly how the telescope will operate on a given night, a quality-control program to parse logfiles from the telescope and identify problems, and a rescheduling program that calculates new priorities to keep the frequency of observation for the various stars roughly as desired. We have also set up a database to keep track of the tens of thousands of spectra we expect to get each year.
机译:田纳西州立大学正在使用2米自动望远镜进行高色散光谱分析。仰角望远镜通过光纤耦合到具有两种分辨率(R = 30,000和70,000)的常规echelle光谱仪。我们使用四台运行linux并通过UDP协议通过以太网进行通信的计算机来控制该仪器。实际位于望远镜上的计算机可以处理恒星的采集和跟踪。通过周期性地锁定商用运动控制器中的轴位置和GPS接收器中的时间,我们避免了在此应用中进行实时编程的需要。第二台(光谱仪)计算机设置光谱仪并运行其CCD,第三台(屋顶)计算机控制望远镜外壳的滚降式车顶和前襟翼,第四台(执行)计算机决定要观察哪些恒星,恶劣天气何时关闭天文台。望远镜操作的唯一人工干预包括更改观测程序,将数据复制回TSU以及对数据进行质量控制检查。它已经在这种完全自动化,无人值守的模式下可靠运行了一年多,并且日常日常管理都通过Internet进行。为了支持自动操作,我们编写了许多有用的工具来预测和分析望远镜的工作。其中包括一个模拟器,该模拟器可以粗略地预测望远镜在给定夜晚的运行情况;一个质量控制程序,用于解析望远镜的日志文件并识别问题;以及一个重新计划程序,该程序可以计算新的优先级以保持对各个恒星的观测频率大致根据需要。我们还建立了一个数据库,以跟踪我们希望每年获得的成千上万的光谱。

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