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First NASA/ESA Conference on Adaptive Hardware and Systems (AHS'06)
Self-Adaptive System Based on Field Programmable Gate Array for Extreme Temperature Electronics
Istanbul, Turkey
June 15-June 18
ISBN: 0-7695-2614-4
Didier Keymeulen, NASA Jet Propulsion Laboratory, USA
Ricardo Zebulum, NASA Jet Propulsion Laboratory, USA
Ramesham Rajeshuni, NASA Jet Propulsion Laboratory, USA
Adrian Stoica, NASA Jet Propulsion Laboratory, USA
Srinivas Katkoori, University of South Florida, USA
Sharon Graves, NASA LaRC, USA
Frank Novak, NASA LaRC, USA
Charles Antill, NASA LaRC, USA
Space missions often require radiation and extremetemperature hardened electronics to survive the harsh environments beyond earth?s atmosphere. Traditional approaches to preserve electronics incorporate radiation shielding, insulation and redundancy at the expense of power and weight. In this work, we report the implementation of a self-adaptive system using a field programmable gate array (FPGA) and data converters. The self-adaptive system can autonomously recover the lost functionality of a reconfigurable analog array (RAA) integrated circuit (IC) [3]. Both the RAA IC and the self-adaptive system are operating in extreme temperatures (from 120?C down to -180?C). The RAA IC consists of reconfigurable analog blocks interconnected by several switches and programmable by bias voltages. It implements filters/amplifiers with bandwidth up to 20 MHz. The self-adaptive system controls the RAA IC and is realized on Commercial- Off-The-Shelf (COTS) parts. It implements a basic compensation algorithm that corrects a RAA IC in less than a few milliseconds. Experimental results for the cold temperature environment (down to -180?C) demonstrate the feasibility of this approach.
Citation:
Didier Keymeulen, Ricardo Zebulum, Ramesham Rajeshuni, Adrian Stoica, Srinivas Katkoori, Sharon Graves, Frank Novak, Charles Antill, "Self-Adaptive System Based on Field Programmable Gate Array for Extreme Temperature Electronics," ahs, pp.296-300, First NASA/ESA Conference on Adaptive Hardware and Systems (AHS'06), 2006
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