The Cibola Flight Experiment

Author:

Quinn Heather1,Roussel-Dupre Diane1,Caffrey Mike1,Graham Paul1,Wirthlin Michael2,Morgan Keith1,Salazar Anthony1,Nelson Tony1,Howes Will3,Johnson Eric4,Johnson Jon5,Pratt Brian6,Rollins Nathan7,Krone Jim1

Affiliation:

1. Los Alamos National Laboratory, Los Alamos, USA

2. Brigham Young University, USA

3. Lawrence Livermore National Laboratory, Livermore, CA

4. Semi Secret Software

5. Centaur Technology, Austin, USA

6. L-3 Communications, Salt Lake City, UT

7. Canadian Department of National Defense, Ottawa, Ontario

Abstract

Over the past 15 years many organizations have researched the use of Static-Random Access Memory (SRAM)-based Field-Programmable Gate Arrays (FPGAs) in space. Although the components can provide a performance improvement over radiation-hardened processing components, random soft errors can occur from the naturally occurring space radiation environment. Many organizations have been developing methods for characterizing, emulating, and simulating radiation-induced events; mitigating and removing radiation-induced computational errors; and designing fault-tolerant reconfigurable spacecraft. Los Alamos National Laboratory has fielded one of the longest space-based FPGAs experiments, called the Cibola Flight Experiment (CFE), using Xilinx Virtex FPGAs. CFE has successfully deployed commercial SRAM FPGAs into a low-Earth orbit with Single-Event Upset (SEU) mitigation and was able to exploit effectively the reconfigurability and customization of FPGAs in a harsh radiation environment. Although older than current state-of-the-art FPGAs, these same concepts are used to deploy newer FPGA-based space systems since the launch of the CFE satellite and will continue to be useful for newer systems. In this article, we present how the system was designed to be fault tolerant, prelaunch predictions of expected on-orbit behaviors, and on-orbit results.

Funder

national science foundation

Department of Energy

Publisher

Association for Computing Machinery (ACM)

Subject

General Computer Science

Reference46 articles.

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2. Comparison of Figure of Merit Calculations to On-Orbit Data;2023 IEEE Radiation Effects Data Workshop (REDW) (in conjunction with 2023 NSREC);2023-07

3. Follow-On Testing of the Xilinx Versal Prime;2023 IEEE Radiation Effects Data Workshop (REDW) (in conjunction with 2023 NSREC);2023-07

4. Exploration of Synthesis Methods from Simulink Models to FPGA for Aerospace Applications;Proceedings of the 20th ACM International Conference on Computing Frontiers;2023-05-09

5. A Neutron Generator Testing Platform for the Radiation Analysis of SRAM-based FPGAs;2021 IEEE International Instrumentation and Measurement Technology Conference (I2MTC);2021-05-17

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