A Cryogenic Propellant Depot (CPD) operating in Low Earth Orbit (LEO) could provide many near term benefits to NASA's space exploration efforts. These benefits include elongation/extension of spacecraft missions and requirement reduction of launch vehicle up-mass. Some of the challenges include controlling cryogenic propellant evaporation and managing the high costs and long schedules associated with the new development of spacecraft hardware. This paper describes a conceptual CPD design that is thermally optimized to achieve extremely low propellant boil-off rates. The CPD design is based on existing launch vehicle architecture, and its thermal optimization is achieved using current passive thermal control technology. Results from an integrated thermal model are presented showing that this conceptual CPD design can achieve propellant boil-off rates well under 0.05% per day, even when subjected to the LEO thermal environment.


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    Title :

    Thermal Optimization of an On-Orbit Long Duration Cryogenic Propellant Depot


    Contributors:
    R. Honour (author) / R. Kwas (author) / G. O'Neil (author) / G. Kutter (author)

    Publication date :

    2012


    Size :

    10 pages


    Type of media :

    Report


    Type of material :

    No indication


    Language :

    English




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