Shape Analysis and Deployment of the ExaVolt Antenna

Author:

Baginski Frank1,Zhao Kaiyu1,Furer Joshua1,Landay Justin1,Bailoor Shantanu1,Gorham Peter2,Varner Gary2,Miki Christian2,Hill Brian2,Schoorlemmer Harm2,Nguyen Liem2,Romero-Wolf Andrew3,Liewer Kurt3,Sauder Jonathan3,Brakke Kenneth4,Beatty Jim5,Connolly Amy5,Allison Patrick5,Pfendner Carl5,Dailey Brian5,Fairbrother Debra6,Said Magdi6,Lang Steven6,Young Leyland6

Affiliation:

1. Department of Mathematics, George Washington University, Washington, DC 20052, USA

2. Department of Physics, University of Hawaii at Manoa, Honolulu, HI 96822, USA

3. Jet Propulsion Laboratory, California Institute of Technology, Pasadena, CA 91109, USA

4. Department of Mathematical Sciences, Susquehanna University, Selinsgrove, PA 17870, USA

5. Department of Physics, Ohio State University, Columbus, OH 43210, USA

6. NASA Balloon Program Office, NASA Wallops Flight Facility, Wallops Island, VA 20337, USA

Abstract

The ExaVolt Antenna (EVA) is the next generation balloon-borne ultra-high energy (UHE) particle observatory under development for NASA’s suborbital super-pressure balloon program in Antarctica. Unlike a typical mission where the balloon lifts a gondola that carries the primary scientific instrument, the EVA mission is a first-of-its-kind in that the balloon itself is part of the science instrument. Specifically, a toroidal RF reflector is mounted onto the outside surface of a superpressure balloon (SPB) and a feed antenna is suspended inside the balloon, creating a high-gain antenna system with a synoptic view of the Antarctic ice sheet. The EVA mission presents a number of technical challenges. For example, can a stowed feed antenna be inserted through an opening in the top-plate? Can the feed antenna be deployed during the ascent? Once float altitude is achieved, how might small shape changes in the balloon shape affect the antenna performance over the life of the EVA mission? The EVA team utilized a combination of testing with a 1/20-scale physical model, mathematical modeling and numerical simulations to probe these and related questions. While the problems are challenging, they are solvable with current technology and expertise. Experiments with a 1/20-scale EVA physical model outline a pathway for inserting a stowed feed into a SPB. Analysis indicates the EVA system will ascend, deploy and assume a stable configuration at float altitude. Nominal shape changes in an Antarctic SPB are sufficiently small to allow the use of the surface of the balloon as a high-gain reflector.

Funder

Goddard Space Flight Center

Publisher

World Scientific Pub Co Pte Lt

Subject

Astronomy and Astrophysics,Instrumentation

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