In September of 2013, the Asteroid Robotic Redirect Mission (ARRM) Option B team was formed to expand on NASA's previous work on the robotic boulder capture option. While the original Option A concept focuses on capturing an entire smaller Near-Earth Asteroid (NEA) using an inflatable bag capture mechanism, this design seeks to land on a larger NEA and retrieve a boulder off of its surface. The Option B team has developed a detailed and feasible mission concept that preserves many aspects of Option A's vehicle design while employing a fundamentally different technique for returning a significant quantity of asteroidal material to the Earth-Moon system. As part of this effort, a point of departure proximity operations concept was developed complete with a detailed timeline, as well as DeltaV and propellant allocations. Special attention was paid to the development of the approach strategy, terminal descent to the surface, controlled ascent with the captured boulder, and control during the Enhanced Gravity Tractor planetary defense demonstration. The concept of retrieving a boulder from the surface of an asteroid and demonstrating the Enhanced Gravity Tractor planetary defense technique is found to be feasible and within the proposed capabilities of the Asteroid Redirect Vehicle (ARV). While this point of departure concept initially focuses on a mission to Itokawa, the proximity operations design is also shown to be extensible to wide range of asteroids.
Proximity Operations for the Robotic Boulder Capture Option for the Asteroid Redirect Mission
2014
16 pages
Report
No indication
English
Astronomy & Astrophysics , Extraterrestrial Exploration , Photographic Techniques & Equipment , Unmanned Spacecraft , Manned Spacecraft , Robotics , Mission planning , Near earth objects , Asteroid detection , Interplanetary navigation , Space environment simulation , Asteroid missions , Near earth asteroid rendezvous mission , Interplanetary trajectories , Asteroid capture , Spacecraft maneuvers , Tractors , Towing , Defense , Space exploration , Performance tests , Optical radar , High resolution , Pinhole cameras , Digital cameras , Surface navigation , Nasa space programs , Covariance , Descent trajectories , Planetary gravitation