A need has been identified for a small, light‐weight, reliable power source using a radioisotope heat source, to power the next generation of NASA’s small surface rovers and exploration probes. Unit performance, development costs, and technical risk are key criteria to be used to select the best design approach. Because safety can be a major program cost and schedule driver, RTG designs should utilize the DOE radioisotope safety program’s data base to the maximum extent possible. Other aspects important to the conceptual design include: 1) a multi‐mission capable design for atmospheric and vacuum environments, 2) a module size based on one GPHS Step 2 module, 3) use of flight proven thermoelectric converter technologies, 4) a long service lifetime of up to 14 years, 5) maximize unit specific power consistent with all other requirements, and 6) be ready by 2013. Another critical aspect of the design is the thermal integration of the RTG with the rover or probe’s heat rejection subsystem and the descent vehicle’s heat rejection subsystem. This paper describes two multi‐watt RTG design concepts and their integration with a MER‐class rover.
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30 January 2007
SPACE TECHNOLOGY AND APPLICATIONS INTERNATIONAL FORUM-STAIF 2007: 11th Conf Thermophys.Applic.in Micrograv.; 24th Symp Space Nucl.Pwr.Propulsion; 5th Conf Hum/Robotic Techn & Vision Space Explor.; 5th Symp Space Coloniz.; 4th Symp New Frontrs & Future Con
11-15 February 2007
Albuquerque, New Mexico (USA)
Research Article|
January 30 2007
Multi‐Watt Small Radioisotope Thermoelectric Generator Conceptual Design Study
William R. Determan;
William R. Determan
1Hamilton Sundstrand Rocketdyne, Space Land and Sea, 6633 Canoga Ave., Canoga Park, CA 91309‐7922
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William Otting;
William Otting
1Hamilton Sundstrand Rocketdyne, Space Land and Sea, 6633 Canoga Ave., Canoga Park, CA 91309‐7922
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Patrick Frye;
Patrick Frye
1Hamilton Sundstrand Rocketdyne, Space Land and Sea, 6633 Canoga Ave., Canoga Park, CA 91309‐7922
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Robert Abelson;
Robert Abelson
2Jet Propulsion Laboratory, California Institute of Technology, 4800 Oak Grove Dr., Pasadena, CA 91109
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Richard Ewell;
Richard Ewell
2Jet Propulsion Laboratory, California Institute of Technology, 4800 Oak Grove Dr., Pasadena, CA 91109
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Bob Miyake;
Bob Miyake
2Jet Propulsion Laboratory, California Institute of Technology, 4800 Oak Grove Dr., Pasadena, CA 91109
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Jeff Synder
Jeff Synder
2Jet Propulsion Laboratory, California Institute of Technology, 4800 Oak Grove Dr., Pasadena, CA 91109
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William R. Determan
1
William Otting
1
Patrick Frye
1
Robert Abelson
2
Richard Ewell
2
Bob Miyake
2
Jeff Synder
2
1Hamilton Sundstrand Rocketdyne, Space Land and Sea, 6633 Canoga Ave., Canoga Park, CA 91309‐7922
2Jet Propulsion Laboratory, California Institute of Technology, 4800 Oak Grove Dr., Pasadena, CA 91109
AIP Conf. Proc. 880, 624–630 (2007)
Citation
William R. Determan, William Otting, Patrick Frye, Robert Abelson, Richard Ewell, Bob Miyake, Jeff Synder; Multi‐Watt Small Radioisotope Thermoelectric Generator Conceptual Design Study. AIP Conf. Proc. 30 January 2007; 880 (1): 624–630. https://doi.org/10.1063/1.2437501
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