论文标题
Irbene射电望远镜RT-32和RT-16的4.58-8.8 GHz射电观测的宽带接收系统
Broadband receiving systems for 4.58-8.8 GHz radio astronomical observations at Irbene radio telescopes RT-32 and RT-16
论文作者
论文摘要
自2011年以来,Ventspils国际射电天文学中心参与了大规模的基础设施项目,该项目允许与电视望远镜RT-32和RT-16相关的升级活动进行大量加速,从而使其与适当的VLBI接收和录音设备合适。射电望远镜的频率范围为4.5-8.8 GHz的新最先进的宽带低温接收器,由Tecnologias de Telecomunicaciones e Informacion开发和安装。在本文中,描述了接收系统的架构以及关键子系统的重要性和工作原理。接收器由冷却的RF子系统和室温(如果子系统)形成。 RF和子系统旨在并行处理两个C和X带信号(LCP和RCP)。通常,在观察过程中,接收器中测得的真空水平为10e-6至10e-8 mbar,dewar内部的温度在第二阶段的水平为14 K,在偏光层为20 k,在第一阶段为46 K。自2015年10月以来,带有新接收器系统的射电望远镜RT-32参加了几次成功的国际VLBI会议。在准备VLBI观测的初步孔径效率期间,进行了系统温度和梁模式测量,以评估电台翻新后的RT-32性能,除了接收器外,还包括维修主反射器。借助开关噪声二极管和校准观察结果,对具有各种高度的已知磁通密度的校准源进行了开关观察,得出了性能参数。该手稿总结了以4836 MHz测量的第一个结果。
Since 2011 Ventspils International Radio Astronomy Centre has been involved in the large scale infrastructure project which allowed significant speeding-up of the upgrading activities related to radio telescopes RT-32 and RT-16 as to its fitting with appropriate VLBI receiving and recording equipment. Radio telescopes were instrumented with new state-of-art broadband cryogenic receivers for frequency range of 4.5 - 8.8 GHz developed and installed by company Tecnologias de Telecomunicaciones e Informacion. In this paper architecture of receiving system as well as significance and working principles of key subsystems are described. The receiver is formed by a cooled RF subsystem and a room temperature IF subsystem. The RF and IF subsystems are designed to process two C and X band signals (LCP and RCP) in parallel. Normally, during observations, the measured vacuum level in the receivers dewar is from 10e-6 to 10e-8 mbar and the temperature inside dewar is at level of 14 K at second stage, 20 K at polarizer and 46 K at the first stage. Since October 2015 radio telescope RT-32 with new receiver system took part in several successful international VLBI sessions. During preparation for VLBI observations preliminary aperture efficiency, system temperature and beam pattern measurements were carried out to evaluate RT-32 performance after the stations renovation that besides the receiver also included repairing of the main reflector. Performance parameters were derived with the help of switching noise diode and on-off observations of calibration sources with known flux density at various elevations. First results measured at 4836 MHz are summarized in this manuscript.