Upgrading of the L-P Band Cryogenic Receiver of the Sardinia Radio Telescope: A Feasibility Study

被引:6
|
作者
Ladu, Adelaide [1 ]
Schirru, Luca [1 ]
Gaudiomonte, Francesco [1 ]
Marongiu, Pasqualino [1 ]
Angius, Gianmarco [1 ]
Perini, Federico [2 ]
Vargiu, Gian Paolo [1 ]
机构
[1] Natl Inst Astrophys INAF, Cagliari Astron Observ, Via Sci 5, I-09047 Cagliari, Italy
[2] Natl Inst Astrophys INAF, Ist Radioastron IRA, Via Fiorentina 3513, I-40059 Medicina, Italy
关键词
Sardinia Radio Telescope; radio astronomy cryogenic receivers; radio frequency interferences; microwave components for radio astronomy applications; ASTRONOMICAL RECEIVERS; FOCUS;
D O I
10.3390/s22114261
中图分类号
O65 [分析化学];
学科分类号
070302 ; 081704 ;
摘要
The Sardinia Radio Telescope is a quasi-Gregorian system with a shaped 64 m diameter primary reflector and a 7.9 m diameter secondary reflector. It was designed to operate with high efficiency across the 0.3-116 GHz frequency range. The telescope is equipped with a cryogenic coaxial dual-frequency L-P band receiver, which covers a portion of the P-band (305-410 MHz) and the L-band (1300-1800 MHz). Although this receiver has been used for years in its original design, with satisfactory results, it presents some parts that could be upgraded in order to improve the performances of the system. With the passing of time and with technology advances, the presence of unwanted human-made signals in the area around the telescope, known as radio frequency interferences, has grown exponentially. In addition, the technology of the receiver electronic control system became obsolete and it could be replaced with next-generation electronic boards, which offer better performances both service reliability and low generation of unwanted radio frequency signals. In this paper, a feasibility study for improving the L-P band receiver is discussed, taking into account the mitigation of the main radio frequency interferences. With this study, it is possible to have a sensitive instrument that can be used for scientific research at low frequencies (P- and L-bands), which are usually populated by signals from civil and military mobile communications, TV broadcasting and remote sensing applications.
引用
收藏
页数:21
相关论文
共 50 条
  • [41] Simulated radiation features of a C-band Phased Array Feed located at the Sardinia Radio Telescope primary focus
    Di Ninni, Paola
    Nesti, Renzo
    Maxia, Paolo
    Navarrini, Alessandro
    Belluso, Massimiliano
    Billotta, Sergio Guido Michele
    Cabras, Alessandro
    Chiarucci, Simone
    Comoretto, Giovanni
    Gaudiomonte, Francesco
    Ladu, Adelaide
    Marongiu, Pasqualino
    Melis, Andrea
    Ortu, Pierluigi
    Pilia, Silvio
    Pisanu, Tonino
    Schirru, Luca
    MILLIMETER, SUBMILLIMETER, AND FAR-INFRARED DETECTORS AND INSTRUMENTATION FOR ASTRONOMY XII, PT 1, 2024, 13102
  • [42] Electromagnetic simulation and beam-pattern optimization of a C-band Phased Array Feed for the Sardinia Radio Telescope
    Navarrini, Alessandro
    Nesti, Renzo
    Schirru, Luca
    2019 IEEE 2ND UKRAINE CONFERENCE ON ELECTRICAL AND COMPUTER ENGINEERING (UKRCON-2019), 2019, : 137 - 143
  • [43] A Compact L-Band Orthomode Transducer for Radio Astronomical Receivers at Cryogenic Temperature
    Valente, Giuseppe
    Montisci, Giorgio
    Pisanu, Tonino
    Navarrini, Alessandro
    Marongiu, Pasqualino
    Casula, Giovanni A.
    IEEE TRANSACTIONS ON MICROWAVE THEORY AND TECHNIQUES, 2015, 63 (10) : 3218 - 3227
  • [44] Origin of major L-band interference received by the HALCA space radio telescope
    Lioubtchenko, SY
    Popov, MV
    Hirabayashi, H
    Kobayashi, H
    PRESERVING THE ASTRONOMICAL SKY, 2001, (196): : 335 - 340
  • [45] Study of the thermal and nonthermal emission components in M 31: the Sardinia Radio Telescope view at 6.6 GHz
    Fatigoni, S.
    Radiconi, F.
    Battistelli, E. S.
    Murgia, M.
    Carretti, E.
    Castangia, P.
    Concu, R.
    de Bernardis, P.
    Fritz, J.
    Genova-Santos, R.
    Govoni, F.
    Guidi, F.
    Lamagna, L.
    Masi, S.
    Melis, A.
    Paladini, R.
    Perez-Toledo, F. M.
    Piacentini, F.
    Poppi, S.
    Rebolo, R.
    Rubino-Martin, J. A.
    Surcis, G.
    Tarchi, A.
    Vacca, V.
    ASTRONOMY & ASTROPHYSICS, 2021, 651 (651)
  • [46] Feasibility Study of Angular Super-Resolution with the Active Surface of a Radio Telescope
    Olmi, Luca
    Bolli, Pietro
    2020 XXXIIIRD GENERAL ASSEMBLY AND SCIENTIFIC SYMPOSIUM OF THE INTERNATIONAL UNION OF RADIO SCIENCE, 2020,
  • [47] A 3 mm band dual polarization MMIC receiver for the 30-m Pico Veleta Radio Telescope
    Serres, Patrice
    Garnier, Olivier
    Bortolotti, Yves
    Navarro, Santiago
    John, Dave
    Pissard, Bruno
    Navarrini, Alessandro
    Schuster, Karl-F
    MILLIMETER, SUBMILLIMETER, AND FAR-INFRARED DETECTORS AND INSTRUMENTATION FOR ASTRONOMY VI, 2012, 8452
  • [48] Sardinia Radio Telescope wide-band spectral-polarimetric observations of the galaxy cluster 3C 129
    Murgia, M.
    Govoni, F.
    Carretti, E.
    Melis, A.
    Concu, R.
    Trois, A.
    Loi, F.
    Vacca, V.
    Tarchi, A.
    Castangia, P.
    Possenti, A.
    Bocchinu, A.
    Burgay, M.
    Casu, S.
    Pellizzoni, A.
    Pisanu, T.
    Poddighe, A.
    Poppi, S.
    D'Amico, N.
    Bachetti, M.
    Corongiu, A.
    Egron, E.
    Iacolina, N.
    Ladu, A.
    Marongiu, P.
    Migoni, C.
    Perrodin, D.
    Pilia, M.
    Valente, G.
    Vargiu, G.
    MONTHLY NOTICES OF THE ROYAL ASTRONOMICAL SOCIETY, 2016, 461 (04) : 3516 - 3532
  • [49] A new 60-cm radio survey telescope with the sideband-separating SIS receiver for the 200 GHz band
    Nakajima, Taku
    Kaiden, Masahiro
    Korogi, Jun
    Kimura, Kimihiro
    Yonekura, Yoshinori
    Ogawa, Hideo
    Nishiura, Shingo
    Dobashi, Kazuhito
    Handa, Toshihiro
    Kohno, Kotaro
    Morino, Jun-Ichi
    Asayama, Shin'ichiro
    Noguchi, Takashi
    PUBLICATIONS OF THE ASTRONOMICAL SOCIETY OF JAPAN, 2007, 59 (05) : 1005 - 1016
  • [50] HIGH LINEARITY, LOW NOISE, L-BAND CRYOGENIC AMPLIFIER FOR RADIO ASTRONOMICAL RECEIVERS
    Liu, Hongfei
    Jin, Chengjin
    Cao, Yang
    Gan, Hengqian
    MICROWAVE AND OPTICAL TECHNOLOGY LETTERS, 2017, 59 (03) : 500 - 505