With the passage of the 2010 NASA Authorization Act, NASA was directed to begin the development of the Space Launch System (SLS) as a follow-on to the Space Shuttle Program. The SLS is envisioned as a heavy lift launch vehicle that will provide the foundation for future large-scale, beyond low Earth orbit (LEO) missions. Supporting the Mission Concept Review (MCR) milestone, several teams were formed to conduct an initial Requirements Analysis Cycle (RAC). These teams identified several vehicle concept candidates capable of meeting the preliminary system requirements. One such team, dubbed RAC Team 2, was tasked with identifying launch vehicles that are based on large stage diameters (up to the Saturn V S-IC and S-II stage diameters of 33 ft) and utilize high-thrust liquid oxygen (LOX)/RP engines as a First Stage propulsion system. While the trade space for this class of LOX/RP vehicles is relatively large, recent NASA activities (namely the Heavy Lift Launch Vehicle Study in late 2009 and the Heavy Lift Propulsion Technology Study of 2010) examined specific families within this trade space. Although the findings from these studies were incorporated in the Team 2 activity, additional branches of the trade space were examined and alternative approaches to vehicle development were considered. Furthermore, Team 2 set out to define a highly functional, flexible, and cost-effective launch vehicle concept. Utilizing this approach, a versatile two-stage launch vehicle concept was chosen as a preferred option. The preferred vehicle option has the capability to fly in several different configurations (e.g. engine arrangements) that gives this concept an inherent operational flexibility which allows the vehicle to meet a wide range of performance requirements without the need for costly block upgrades. Even still, this concept preserves the option for evolvability should the need arise in future mission scenarios. The foundation of this conceptual design is a focus on low cost and effectiveness rather than efficiency or cutting-edge technology. This paper details the approach and process, as well as the trade space analysis, leading to the preferred vehicle concept.


    Access

    Access via TIB

    Check availability in my library


    Export, share and cite



    Title :

    Next Generation Heavy-Lift Launch Vehicle: Large Diameter, Hydrocarbon-Fueled Concepts


    Contributors:

    Conference:

    2012 IEEE Aerospace Conference ; 2012 ; Big Sky, MT, United States


    Publication date :

    2012-03-03


    Type of media :

    Conference paper


    Type of material :

    No indication


    Language :

    English





    Next generation Heavy Lift Launch Vehicle: Large diameter, hydrocarbon-fueled concepts

    Holladay, Jon / Adams, Charles / Monk, Timothy S. et al. | IEEE | 2012


    Heavy Lift Launch Capability with a New Hydrocarbon Engine

    Threet, Grady E., Jr. / Holt, James B. / Philips, Alan D. et al. | NTRS | 2011


    Heavy Lift Launch Capability with a New Hydrocarbon Engine

    G. E. Threet / J. B. Holt / A. D. Philips et al. | NTIS | 2011


    Heavy Lift Launch Capability with a New Hydrocarbon Engine

    Threet, G. / Holt, J. / Philips, A. et al. | British Library Conference Proceedings | 2011