• Title/Summary/Keyword: round trip system, H-maser

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Round-trip system dedicated to the Korea VLBI system for geodesy (KVG) (한국 측지 VLBI 시스템을 위한 라운드 Trip 시스템)

  • O, Hong-Jong;Kondo, Tetsuro;Kim, Du-Hwan;Lee, Jin-U;Kim, Myeong-Ho;Kim, Su-Cheol;Park, Jin-Sik;Ju, Hyeon-Hui
    • Proceedings of the Korean Society of Surveying, Geodesy, Photogrammetry, and Cartography Conference
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    • 2010.04a
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    • pp.201-206
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    • 2010
  • A project for construction of Korea Geodetic VLBI has officially started in Oct. 2008. The construction of all system will be completed by the end of 2011. The project was named Korea VLBI system for Geodesy (KVG), and its main purpose is to maintain the Korea Geodetic Datum. In case of the KVG system, an observation room where an H-maser frequency standard is located is in a building separated from an antenna by several tens of meters. Therefore KVG system will adopt a so-called round-trip system to transmit reference signals to the antenna with diminishing the effect of path length variations. KVG's round-trip system is designed not only available to use either metal or optical fiber cables, but also available to measure path length variations directly by using K5/VSSP32 sampler. We will present principle of round-trip system and the new type of round trip system for KVG.

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STABILIZATION OF REFERENCE SIGNAL TRANSMISSION SYSTEM IN RADIO TELESCOPE FOR VLBI (VLBI 전파망원경 기준 신호 전송시스템 안정화)

  • Je, Do-Heung;Lee, Won-Kyu;Kim, Soo-Yeon;Chung, Moon-Hee;Song, Min-Kyu;Jung, Taehyun;Byun, Do-Young;Kim, Seung-Rae;Sohn, Bong-Won;Wi, Seog-Oh;Han, Seog-Tae;Kang, Yong-Woo
    • Publications of The Korean Astronomical Society
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    • v.28 no.3
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    • pp.95-100
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    • 2013
  • A fiber-optic reference signal transmission system, which transmits the 1.4 GHz reference signal from H-maser to receiver cabin in radio telescopes, was adopted for compensating the phase changes due to temperature variation and antenna movement. At the first experiment, the remote signal's phase changed more than 15 degrees at 1.4 GHz. We found unstable components in sub-system experiments and replaced them. The main cause of unstable phase stability was the unaligned polarization axis between Laser Diode and Mach-Zehnder Modulator (MZM). The improved system stability showed $1{\times}10^{-16}$ allan standard deviation at 1,000 sec integration time with the antenna fixed. When the antenna moves in the azimuth axis, the 1.4 GHz remote signal showed the phase change smaller than 0.2 degrees.