Geodesy and relativity

被引:0
|
作者
Jürgen Müller
Michael Soffel
Sergei A. Klioner
机构
[1] Leibniz Universität Hannover (University of Hannover),Institut für Erdmessung (IfE)
[2] Dresden Technical University,Institut für Planetare Geodäsie, Lohrmann
来源
Journal of Geodesy | 2008年 / 82卷
关键词
Relativity; Reference systems; Geodesy; Space-geodetic techniques; Modelling; Parameter determination;
D O I
暂无
中图分类号
学科分类号
摘要
Relativity, or gravitational physics, has widely entered geodetic modelling and parameter determination. This concerns, first of all, the fundamental reference systems used. The Barycentric Celestial Reference System (BCRS) has to be distinguished carefully from the Geocentric Celestial Reference System (GCRS), which is the basic theoretical system for geodetic modelling with a direct link to the International Terrestrial Reference System (ITRS), simply given by a rotation matrix. The relation to the International Celestial Reference System (ICRS) is discussed, as well as various properties and relevance of these systems. Then the representation of the gravitational field is discussed when relativity comes into play. Presently, the so-called post-Newtonian approximation to GRT (general relativity theory) including relativistic effects to lowest order is sufficient for practically all geodetic applications. At the present level of accuracy, space-geodetic techniques like VLBI (Very Long Baseline Interferometry), GPS (Global Positioning System) and SLR/LLR (Satellite/Lunar Laser Ranging) have to be modelled and analysed in the context of a post-Newtonian formalism. In fact, all reference and time frames involved, satellite and planetary orbits, signal propagation and the various observables (frequencies, pulse travel times, phase and travel-time differences) are treated within relativity. This paper reviews to what extent the space-geodetic techniques are affected by such a relativistic treatment and where—vice versa—relativistic parameters can be determined by the analysis of geodetic measurements. At the end, we give a brief outlook on how new or improved measurement techniques (e.g., optical clocks, Galileo) may further push relativistic parameter determination and allow for refined geodetic measurements.
引用
收藏
页码:133 / 145
页数:12
相关论文
共 50 条
  • [1] Geodesy and relativity
    Mueller, Juergen
    Soffel, Michael
    Klioner, Sergei A.
    JOURNAL OF GEODESY, 2008, 82 (03) : 133 - 145
  • [2] General relativity and geodesy
    Hackmann, Eva
    Huckfeldt, Moritz
    Laemmerzahl, Claus
    Philipp, Dennis
    Rievers, Benny
    INTERNATIONAL JOURNAL OF MODERN PHYSICS D, 2025,
  • [3] An analysis of the geodesy and relativity experiments of BepiColombo
    Imperi, Luigi
    Iess, Luciano
    Mariani, Mirco J.
    ICARUS, 2018, 301 : 9 - 25
  • [4] Lunar laser ranging contributions to relativity and geodesy
    Mueller, Juergen
    Williams, James G.
    Turyshev, Slava G.
    LASERS, CLOCKS AND DRAG-FREE CONTROL: EXPLORATION OF RELATIVISTIC GRAVITY IN SPACE, 2008, 349 : 457 - +
  • [5] Potential capabilities of Lunar Laser Ranging for geodesy and relativity
    Mueller, Juergen
    Williams, James G.
    Turyshev, Slava G.
    DYNAMIC PLANET: MONITORING AND UNDERSTANDING A DYNAMIC PLANET WITH GEODETIC AND OCEANOGRAPHIC TOOLS, 2007, 130 : 903 - +
  • [7] APPLICATIONS OF DOPPLER MEASUREMENTS TO PROBLEMS IN RELATIVITY, SPACE PROBE TRACKING, AND GEODESY
    NEWTON, RR
    PROCEEDINGS OF THE INSTITUTE OF RADIO ENGINEERS, 1960, 48 (04): : 754 - 758
  • [8] GEODESY INFORMATION IN A MODIFIED RELATIVITY MISSION WITH 2 COUNTER-ORBITING POLAR SATELLITES
    BREAKWELL, JV
    EVERITT, CWF
    SCHAECHTER, DB
    VANPATTEN, PA
    ACTA ASTRONAUTICA, 1982, 9 (02) : 55 - 56
  • [9] GEODESY - INTRODUCTION TO THE REPORT ON GEODESY
    CHOVITZ, BH
    REVIEWS OF GEOPHYSICS, 1983, 21 (03) : 521 - 522
  • [10] VERY LONG BASELINE INTERFEROMETRY TECHNIQUES APPLIED TO PROBLEMS OF GEODESY, GEOPHYSICS, PLANETARY SCIENCE, ASTRONOMY, AND GENERAL RELATIVITY
    COUNSELMAN, CC
    PROCEEDINGS OF THE IEEE, 1973, 61 (09) : 1225 - 1230