Abstract Near-Earth Objects (NEOs) are asteroids and comets whose orbits approach or cross Earth׳s orbit. NEOs have collided with our planet in the past, sometimes to devastating effect, and continue to do so today. Collisions with NEOs large enough to do significant damage to the ground are fortunately infrequent, but such events can occur at any time and we therefore need to develop and validate the techniques and technologies necessary to prevent the Earth impact of an incoming NEO. In this paper we provide background on the hazard posed to Earth by NEOs and present the results of a recent study performed by the NASA/Goddard Space Flight Center׳s Mission Design Lab (MDL) in collaboration with Iowa State University׳s Asteroid Deflection Research Center (ADRC) to design a flight validation mission for a Hypervelocity Asteroid Intercept Vehicle (HAIV) as part of a Phase 2 NASA Innovative Advanced Concepts (NIAC) research project. The HAIV is a two-body vehicle consisting of a leading kinetic impactor and trailing follower carrying a Nuclear Explosive Device (NED) payload. The HAIV detonates the NED inside the crater in the NEO׳s surface created by the lead kinetic impactor portion of the vehicle, effecting a powerful subsurface detonation to disrupt the NEO. For the flight validation mission, only a simple mass proxy for the NED is carried in the HAIV. Ongoing and future research topics are discussed following the presentation of the detailed flight validation mission design results produced in the MDL.

    Highlights We propose an innovative solution to short-warning time incoming asteroids. Our design approach blends kinetic impactors and nuclear explosives. We develop and present a complete and affordable flight validation mission concept.


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    Title :

    Conceptual design of a flight validation mission for a Hypervelocity Asteroid Intercept Vehicle


    Contributors:

    Published in:

    Acta Astronautica ; 106 ; 139-159


    Publication date :

    2014-10-31


    Size :

    21 pages




    Type of media :

    Article (Journal)


    Type of material :

    Electronic Resource


    Language :

    English