• DocumentCode
    711449
  • Title

    Combining Solar Electric Propulsion and chemical propulsion for crewed missions to Mars

  • Author

    Percy, Tom ; McGuire, Melissa ; Polsgrove, Tara

  • Author_Institution
    Jacobs ESSSA Group/SAIC, Huntsville, AL, USA
  • fYear
    2015
  • fDate
    7-14 March 2015
  • Firstpage
    1
  • Lastpage
    10
  • Abstract
    This paper documents the results of an investigation of human Mars mission architectures that leverage near-term technology investments and infrastructures resulting from the planned Asteroid Redirect Robotic Mission (ARRM), including high-power Solar Electric Propulsion (SEP) and a human presence in Lunar Distant Retrograde Orbit (LDRO). The architectures investigated use a combination of SEP and chemical propulsion elements. Through this combination of propulsion technologies, these architectures take advantage of the high efficiency SEP propulsion system to deliver cargo, while maintaining the faster trip times afforded by chemical propulsion for crew transport. Evolved configurations of the Asteroid Redirect Vehicle (ARV) are considered for cargo delivery. Sensitivities to SEP system design parameters, including power level and propellant quantity, are presented. For the crew delivery, liquid oxygen and methane stages were designed using engines common to future human Mars landers. Impacts of various Earth departure orbits, Mars loiter orbits, and Earth return strategies are presented. The use of the Space Launch System for delivery of the various architecture elements was also investigated and launch vehicle manifesting, launch scheduling and mission timelines are also discussed. The study results show that viable Mars architecture can be constructed using LDRO and SEP in order to take advantage of investments made in the ARRM mission.
  • Keywords
    Mars; aerospace engines; aerospace propulsion; electric propulsion; planetary landers; planetary satellites; ARRM; ARV; Asteroid Redirect Robotic Mission; Earth departure orbit; Earth return strategy; LDRO; Lunar Distant Retrograde Orbit; Mars loiter orbits; SEP system design parameters; asteroid redirect vehicle; chemical propulsion; crew delivery; crew transport; crewed mission; engines; human Mars landers; human Mars mission architecture; liquid oxygen; methane stages; solar electric propulsion; Biographies; Chemicals; Jacobian matrices; Mars; NASA; Propulsion; Robots;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Aerospace Conference, 2015 IEEE
  • Conference_Location
    Big Sky, MT
  • Print_ISBN
    978-1-4799-5379-0
  • Type

    conf

  • DOI
    10.1109/AERO.2015.7119289
  • Filename
    7119289