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RFI characterisation and mitigation at upgraded GMRT

机译:升级后GMRT的RFI表征和缓解

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A modern radio astronomy observatory needs continuous monitoring of the radio spectrum to detect and characterise the sources of RFI, and ever improving plans for mitigation against such sources. With increasing population densities, accompanied by modernization in transport and communication facilities, the sources of external RFI affecting a radio observatory increase with time. The problem is aggravated by the increase in sensitivity of the observatories, as well as by the increase in the frequency range and bandwidths of observations. An additional threat comes from self-generated RFI produced by the increasingly computer controlled and data intensive operations of a typical radio telescope. These aspects of RFI significantly affect the Giant Metrewave Radio Telescope (GMRT), working at low frequency. The ongoing upgrade of the GMRT, which provides near-seamless frequency coverage from about 120 to 1500 MHz, with improved sensitivity receivers, makes it even more prone to the threat of RFI. We present here an overview of the different kinds of RFI that affect the GMRT, and the schemes used for regular monitoring to detect sources of RFI, their characterization, and the steps taken towards mitigation. The different measures for mitigating the various kinds of RFI are described. These range from coordination with various external agencies to maintain the restrictions in and around the GMRT array and reduce the impact of RFI with better shielding for equipments at the observatory. Significant work has been done for design of shielded enclosures for various kinds of equipment in the observatory, which helps to achieve 40 to 60 dB additional isolation to mitigate leakage of RFI. We present our learning and improvements achieved from these exercises. We also outline our plans for future work in RFI mitigation at the GMRT. A distributed RFI monitoring antenna array along the GMRT antenna array is planned with a dedicated analog fiber optic link for real-time RFI monitoring and software mitigation in future.
机译:现代无线电天文天文台需要持续监控无线电频谱,以检测和表征RFI的来源,并有史以来改善了对这些来源的缓解计划。随着人口密度的增加,伴随着运输和通信设施的现代化,外部RFI的来源影响无线电观测所增加。通过观察者的敏感性的增加,以及观察的频率范围和带宽的增加,因此对问题加剧。额外的威胁来自由典型的无线电望远镜的越来越多的计算机控制和数据密集型操作产生的自我生成的RFI。 RFI的这些方面显着影响了巨大的Metrewave无线电望远镜(GMRT),在低频工作。 GMRT正在进行的升级,它提供从大约120到1500 MHz的近无缝频率覆盖,具有改进的灵敏度接收器,使其更容易出现RFI的威胁。我们在这里概述了影响GMRT的不同类型的RFI,以及用于定期监测以检测RFI的来源,其特征以及对缓解步骤的方案。描述了减轻各种RFI的不同措施。这些范围从各种外部机构协调,以维持GMRT阵列中的限制,并降低RFI对天文台设备的更好屏蔽的影响。为天文台中各种设备的屏蔽外壳设计已经完成了大量工作,有助于实现40至60 dB的额外隔离以减轻RFI的泄漏。我们展示了我们的学习和改进这些练习。我们还概述了我们在GMRT的RFI缓解中的未来工作计划。沿GMRT天线阵列的分布式RFI监控天线阵列有专用模拟光纤链路,以便将来实时RFI监控和软件缓解。

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