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Relativistic theory for time and frequency transfer through flowing media with an application to the atmosphere of Earth

The result's identifiers

  • Result code in IS VaVaI

    <a href="https://www.isvavai.cz/riv?ss=detail&h=RIV%2F00177016%3A_____%2F23%3AN0000054" target="_blank" >RIV/00177016:_____/23:N0000054 - isvavai.cz</a>

  • Result on the web

    <a href="https://www.aanda.org/articles/aa/pdf/2023/05/aa45994-23.pdf" target="_blank" >https://www.aanda.org/articles/aa/pdf/2023/05/aa45994-23.pdf</a>

  • DOI - Digital Object Identifier

    <a href="http://dx.doi.org/10.1051/0004-6361/202345994" target="_blank" >10.1051/0004-6361/202345994</a>

Alternative languages

  • Result language

    angličtina

  • Original language name

    Relativistic theory for time and frequency transfer through flowing media with an application to the atmosphere of Earth

  • Original language description

    Context. Several space missions that will use atomic clocks on board of an Earth-orbiting satellite are planned for the near future, such as the Atomic Clock Ensemble in Space (ACES) or the Space Optical Clock on the International Space Station (I-SOC). The increasing accuracies of the developed clocks and of the links connecting them with ground stations impose corresponding accuracy requirements for theoretical models of electromagnetic signal propagation through the atmosphere of Earth and for the related time and frequency transfer corrections. For example, the fractional frequency accuracy of the optical lattice clock for the I-SOC project is about 10(-17). Aims. We develop a relativistic model of one-and two-way time and frequency transfer. In addition to the gravitational effects, it also includes the effects of atmospheric refractivity and atmospheric flows within the relativistic framework.Methods. The model is based on an analytical solution of the equation of motion of a light ray in spacetime filled with a medium: the null geodesic equation of Gordon's optical metric. Results. Explicit formulas for one-and two-way time and frequency transfer corrections are given using realistic fields of the gravitational potential, the refractive index, and the wind speed, taking nonstationarity and deviations from spherical symmetry into account. Numerical examples are provided that focus on two-way ground-to-satellite transfer, with satellite parameters similar to those of the International Space Station. The effect of the atmospheric refractive index increases as the satellite position moves from zenith to horizon, and it is shown that the effect ranges from 0 ps to 5 ps for two-way time transfer and from 10(-17) to 10(-13) for two-way frequency transfer, with a steep increase as the satellite approaches the horizon. The effect of the wind contribution is well below 1 ps for the two-way time transfer for normal atmospheric conditions, but for the two-way frequency transfer, the effect can be significant: A contribution of 10(-17) is possible for a horizontal wind field with a velocity magnitude of about 11 m s-1. Conclusions. The atmospheric effects including the effect of wind should be considered in the forthcoming clock-on-satellite experiments such as ACES or I-SOC.

  • Czech name

  • Czech description

Classification

  • Type

    J<sub>imp</sub> - Article in a specialist periodical, which is included in the Web of Science database

  • CEP classification

  • OECD FORD branch

    10306 - Optics (including laser optics and quantum optics)

Result continuities

  • Project

  • Continuities

    I - Institucionalni podpora na dlouhodoby koncepcni rozvoj vyzkumne organizace

Others

  • Publication year

    2023

  • Confidentiality

    S - Úplné a pravdivé údaje o projektu nepodléhají ochraně podle zvláštních právních předpisů

Data specific for result type

  • Name of the periodical

    Astronomy & Astrophysics

  • ISSN

    0004-6361

  • e-ISSN

    1432-0746

  • Volume of the periodical

    673

  • Issue of the periodical within the volume

    A144

  • Country of publishing house

    FR - FRANCE

  • Number of pages

    25

  • Pages from-to

    A144

  • UT code for WoS article

    000996517500005

  • EID of the result in the Scopus database

    2-s2.0-85161008574