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New Cable Delay Measurement System for VGOS Stations

This paper presents the new cable delay measurement system (CDMS) designed at Yebes Observatory (IGN, Spain), which is required for the VLBI Global Observing System (VGOS) stations. This system measures the phase difference between the 5 MHz reference signal from the hydrogen maser and the 5 MHz sig...

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Autores principales: García-Carreño, Pablo, González-García, Javier, Patino-Esteban, María, Beltrán-Martínez, Francisco J., Bautista-Durán, Marta, López-Espí, Pablo Luis, López-Pérez, José A.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8952211/
https://www.ncbi.nlm.nih.gov/pubmed/35336479
http://dx.doi.org/10.3390/s22062308
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author García-Carreño, Pablo
González-García, Javier
Patino-Esteban, María
Beltrán-Martínez, Francisco J.
Bautista-Durán, Marta
López-Espí, Pablo Luis
López-Pérez, José A.
author_facet García-Carreño, Pablo
González-García, Javier
Patino-Esteban, María
Beltrán-Martínez, Francisco J.
Bautista-Durán, Marta
López-Espí, Pablo Luis
López-Pérez, José A.
author_sort García-Carreño, Pablo
collection PubMed
description This paper presents the new cable delay measurement system (CDMS) designed at Yebes Observatory (IGN, Spain), which is required for the VLBI Global Observing System (VGOS) stations. This system measures the phase difference between the 5 MHz reference signal from the hydrogen maser and the 5 MHz signal that reaches the broadband receiver through a coaxial cable, for the generation of calibration tones. As a result, the system detects the changes in the length of that coaxial cable due to temperature variations along the cable run and flexures caused by VGOS radio telescope movements. This CDMS outperforms the previous versions: firstly, it does not require a frequency counter for phase/delay measurements; secondly, it largely reduces the use of digital circuits; hence, reducing digital noise; and thirdly, it has a remotely controlled automatic calibration subsystem. The system was tested in the laboratory and in the radio telescope, and the measurements of both set-ups are shown. These measurements include the total noise, accuracy, hysteresis, and stability. The results in the radio telescope can be correlated with the different factors that affect the cable, such as temperature and flexures. The system allows to achieve an RMS noise of less than 0.5 ps, significantly improving the requirements established in VGOS. The system is currently installed in the Red Atlántica de Estaciones Geodinámicas y Espaciales (RAEGE)Yebes VGOS 13.2 m radio telescope, and will be installed in the Norwegian Mapping Authority (NMA) twin VGOS radio telescopes, in the Finnish Geospatial Research Institute (FGI) VGOS station and in the RAEGE Santa María VGOS radio telescope (Açores, Portugal).
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spelling pubmed-89522112022-03-26 New Cable Delay Measurement System for VGOS Stations García-Carreño, Pablo González-García, Javier Patino-Esteban, María Beltrán-Martínez, Francisco J. Bautista-Durán, Marta López-Espí, Pablo Luis López-Pérez, José A. Sensors (Basel) Article This paper presents the new cable delay measurement system (CDMS) designed at Yebes Observatory (IGN, Spain), which is required for the VLBI Global Observing System (VGOS) stations. This system measures the phase difference between the 5 MHz reference signal from the hydrogen maser and the 5 MHz signal that reaches the broadband receiver through a coaxial cable, for the generation of calibration tones. As a result, the system detects the changes in the length of that coaxial cable due to temperature variations along the cable run and flexures caused by VGOS radio telescope movements. This CDMS outperforms the previous versions: firstly, it does not require a frequency counter for phase/delay measurements; secondly, it largely reduces the use of digital circuits; hence, reducing digital noise; and thirdly, it has a remotely controlled automatic calibration subsystem. The system was tested in the laboratory and in the radio telescope, and the measurements of both set-ups are shown. These measurements include the total noise, accuracy, hysteresis, and stability. The results in the radio telescope can be correlated with the different factors that affect the cable, such as temperature and flexures. The system allows to achieve an RMS noise of less than 0.5 ps, significantly improving the requirements established in VGOS. The system is currently installed in the Red Atlántica de Estaciones Geodinámicas y Espaciales (RAEGE)Yebes VGOS 13.2 m radio telescope, and will be installed in the Norwegian Mapping Authority (NMA) twin VGOS radio telescopes, in the Finnish Geospatial Research Institute (FGI) VGOS station and in the RAEGE Santa María VGOS radio telescope (Açores, Portugal). MDPI 2022-03-16 /pmc/articles/PMC8952211/ /pubmed/35336479 http://dx.doi.org/10.3390/s22062308 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
García-Carreño, Pablo
González-García, Javier
Patino-Esteban, María
Beltrán-Martínez, Francisco J.
Bautista-Durán, Marta
López-Espí, Pablo Luis
López-Pérez, José A.
New Cable Delay Measurement System for VGOS Stations
title New Cable Delay Measurement System for VGOS Stations
title_full New Cable Delay Measurement System for VGOS Stations
title_fullStr New Cable Delay Measurement System for VGOS Stations
title_full_unstemmed New Cable Delay Measurement System for VGOS Stations
title_short New Cable Delay Measurement System for VGOS Stations
title_sort new cable delay measurement system for vgos stations
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8952211/
https://www.ncbi.nlm.nih.gov/pubmed/35336479
http://dx.doi.org/10.3390/s22062308
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