The Construction of ICRF2 and Its Impact on the Terrestrial Reference Frame

被引:0
|
作者
Gordon, D. [1 ,2 ]
Le Bail, K. [1 ,2 ]
Ma, C. [2 ]
MacMillan, D. [1 ,2 ]
Bolotin, S. [1 ,2 ]
Gipson, J. [1 ,2 ]
机构
[1] NVI Inc, Greenbelt, MD 20770 USA
[2] NASA GSFC, Huntsville, AL USA
来源
EARTH ON THE EDGE: SCIENCE FOR A SUSTAINABLE PLANET | 2014年 / 139卷
关键词
ICRF2; VLBI; Terrestrial reference frame; Earth orientation parameters; Celestial reference frame; Quasars; VLBA CALIBRATOR SURVEY; CELESTIAL REFERENCE FRAME;
D O I
10.1007/978-3-642-37222-3_23
中图分类号
P3 [地球物理学]; P59 [地球化学];
学科分类号
0708 ; 070902 ;
摘要
The construction of the second realization of the International Celestial Reference Frame by VLBI (ICRF2) was undertaken to take advantage of the many improvements in geodetic and astrometric VLBI and the vast increase in data since the first ICRF. The impact the switch to ICRF2 has had on the terrestrial reference frame and EOP solutions generated by VLBI is very small, at about the mm level, and should be transparent to most users of VLBI products.
引用
收藏
页码:185 / 188
页数:4
相关论文
共 50 条
  • [31] Development of a terrestrial reference frame in the Russian Federation
    Elena Mazurova
    Sergei Kopeikin
    Aleksandr Karpik
    Studia Geophysica et Geodaetica, 2017, 61 : 616 - 638
  • [32] Refined approaches for terrestrial reference frame computations
    Meisel, B
    Angermann, D
    Krügel, M
    Drewes, H
    Gerstl, M
    Kelm, R
    Müller, H
    Seemüller, W
    Tesmer, V
    SATELLITE DYNAMICS IN THE ERA OF INTERDISCIPLINARY SPACE GEODESY, 2005, 36 (03): : 350 - 357
  • [33] Toward the ICRF3: Astrometric Comparison of the USNO 2016A VLBI Solution with ICRF2 and Gaia DR1
    Frouard, Julien
    Johnson, Megan C.
    Fey, Alan
    Makarov, Valeri V.
    Dorlan, Bryan N.
    ASTRONOMICAL JOURNAL, 2018, 155 (06):
  • [34] Impact of network constraining on the terrestrial reference frame realization based on SLR observations to LAGEOS
    R. Zajdel
    K. Sośnica
    M. Drożdżewski
    G. Bury
    D. Strugarek
    Journal of Geodesy, 2019, 93 : 2293 - 2313
  • [35] Impact of network constraining on the terrestrial reference frame realization based on SLR observations to LAGEOS
    Zajdel, R.
    Sosnica, K.
    Drozdzewski, M.
    Bury, G.
    Strugarek, D.
    JOURNAL OF GEODESY, 2019, 93 (11) : 2293 - 2313
  • [36] The influence of radio-extended structures on offsets between the optical and VLBI positions of sources in the ICRF2
    Camargo, J. I. B.
    Andrei, A. H.
    Assafin, M.
    Vieira-Martins, R.
    da Silva Neto, D. N.
    ASTRONOMY & ASTROPHYSICS, 2011, 532
  • [37] THE EXTRAGALACTIC REFERENCE FRAME AND ITS LINK TO THE HIPPARCOS REFERENCE FRAME
    WHITE, GL
    LESTRADE, JF
    PHYSICS AND ASTROPHYSICS IN THE SPACE STATION ERA, 1989, 17 : 405 - 416
  • [38] Quality assessment of GPS reprocessed terrestrial reference frame
    Collilieux, Xavier
    Metivier, Laurent
    Altamimi, Zuheir
    van Dam, Tonie
    Ray, Jim
    GPS SOLUTIONS, 2011, 15 (03) : 219 - 231
  • [39] The International Terrestrial Reference Frame (ITRF2005)
    Altamimi, Z.
    GEODETIC REFERENCE FRAMES, 2009, 134 : 81 - 82
  • [40] The second extension of the International Celestial Reference Frame: ICRF-EXT.1
    Fey, AL
    Ma, C
    Arias, EF
    Charlot, P
    Feissel-Vernier, M
    Gontier, AM
    Jacobs, CS
    Li, J
    MacMillan, DS
    ASTRONOMICAL JOURNAL, 2004, 127 (06): : 3587 - 3608