The Deep Space Atomic Clock (DSAC) mission will demonstrate the space flight performance of a small, low-mass, high-stability mercury-ion atomic clock with long term stability and accuracy on par with that of the Deep Space Network. The timing stability introduced by DSAC allows for a 1-Way radiometric tracking paradigm for deep space navigation, with benefits including increased tracking via utilization of the DSN's Multiple Spacecraft Per Aperture (MSPA) capability and full ground station-spacecraft view periods, more accurate radio occultation signals, decreased single-frequency measurement noise, and the possibility for fully autonomous on-board navigation. Specific examples of navigation and radio science benefits to deep space missions are highlighted through simulations of Mars orbiter and Europa flyby missions. Additionally, this paper provides an overview of the mercury-ion trap technology behind DSAC, details of and options for the upcoming 2015/2016 space demonstration, and expected on-orbit clock performance.


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    Title :

    The Deep Space Atomic Clock Mission


    Contributors:
    Ely, Todd A. (author) / Koch, Timothy (author) / Kuang, Da (author) / Lee, Karen (author) / Murphy, David (author) / Prestage, John (author) / Tjoelker, Robert (author) / Seubert, Jill (author)

    Conference:

    International Symposium on Space Flight Dynamics ; 2012 ; Pasadena, CA, United States


    Publication date :

    2012-10-29


    Type of media :

    Conference paper


    Type of material :

    No indication


    Language :

    English




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