DocumentCode
2471309
Title
A design approach for radiation-hard digital electronics
Author
Garg, Rajesh ; Jayakumar, Nikhil ; Khatri, Sunil P. ; Choi, Gwan
Author_Institution
Dept. of Electr. & Comput. Eng., Texas A&M Univ.
fYear
0
fDate
0-0 0
Firstpage
773
Lastpage
778
Abstract
In this paper, we present a novel circuit design approach for radiation hardened digital electronics. Our approach is based on the use of shadow gates, whose task it is to protect the primary gate in case it is struck by a heavy cosmic ion. We locally duplicate the gate to be protected, and connect a pair of transistors (or diodes) between the outputs of the original and shadow gates. These transistors turn on when the voltages of the two gates deviate during a radiation strike. Our experiments show that at the level of a single gate, our circuit structure has a delay overhead of about 4% on average, and an area overhead of over 100%. At the circuit level, however, we do not need to protect all gates. We present a methodology to selectively protect specific gates of the circuit in a manner that guarantees radiation tolerance for the entire circuit. With this methodology, we demonstrate that at the circuit level, the delay overhead is about 4% and the placed-and-routed area overhead is 30%, compared to an unprotected circuit (for delay mapped designs)
Keywords
circuit reliability; logic design; logic gates; radiation hardening (electronics); circuit design approach; cosmic ion; delay mapped designs; radiation strike; radiation tolerance; radiation-hard digital electronics; Circuit synthesis; Delay; Diodes; Logic; Neutrons; Protection; Radiation hardening; Single event transient; Single event upset; Voltage; Design; Radiation-hard; Reliability; SEU;
fLanguage
English
Publisher
ieee
Conference_Titel
Design Automation Conference, 2006 43rd ACM/IEEE
Conference_Location
San Francisco, CA
ISSN
0738-100X
Print_ISBN
1-59593-381-6
Type
conf
DOI
10.1109/DAC.2006.229230
Filename
1688900
Link To Document