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Prototype Demonstration of an Integrated Solar Concentrator System and Carbothermal Reactor Using Solar Energy to Extract Oxygen from RegolithThe Carbothermal Reduction Demonstration (CaRD) project was an effort to develop a prototype system to demonstrate the extraction of oxygen from simulated lunar regolith using concentrated solar energy and a carbothermal reaction. The prototype consisted of a deployable solar concentrator capable of tracking the sun, carbothermal reactor, fluid system, gas analysis, and a solar concentrator control system consisting of avionics and software. These subsystems were developed by multiple NASA centers and a private industry partner, Sierra Space. The various teams worked together to define requirements and interfaces to successfully assemble the complex system and demonstrate an integrated solar carbothermal process.

The solar concentrator developed at Glenn Research Center (GRC) was designed to be stowed for a launch environment then deployed on the lunar surface. It utilized a crossed dragone configuration of composite mirrors to direct horizontal sunlight onto a target 90° from the incoming sunlight. The key performance parameters for the solar concentrator were efficiency and power density. The carbothermal reactor was developed by Sierra Space through a separate project called the Carbothermal Oxygen Production Reactor (COPR) where it successfully demonstrated a fully automated process in a thermal vacuum environment. The fluid system needed for the carbothermal reaction was also developed by Sierra Space and successfully demonstrated in the same thermal vacuum test. The gas analysis system was developed at Kennedy Space Center (KSC) and was required to determine the amount of oxygen extracted during each test. The gas analysis system was based on the Mass Spectrometer Observing Lunar Operations (MSOLO) instrument. Avionics and software for the CaRD prototype were also developed at KSC and based on experience with MSOLO avionics and software. The control system was designed to stow, deploy, track the sun, and perform beam alignment of the concentrated light.

The prototype subsystems were integrated and tested at Johnson Space Center’s (JSC) Energy Systems Test Area. A heliostat was used to direct sunlight toward the prototype in a way that is representative of the sunlight conditions at the south pole of the Moon. When concentrated sunlight was focused on simulated lunar regolith within the reactor, the gas analysis team confirmed the presence of carbon monoxide gas, which confirmed that a solar carbothermal reaction took place. The key performance parameter for the integrated prototype was grams of oxygen extracted per kilowatt hour of energy arriving at the concentrator primary mirror. The prototype design successfully demonstrated end-to-end capability and further steps to achieve a flight capable system have been defined. With lunar data, engineers would be able to design a scaled-up system capable of extracting oxygen from regolith at useful quantities for crew life support and rocket propellant. On the long term, this method of In-Situ Resource Utilization could be used to drastically reduce the cost and risk of a sustained human presence on the Moon by reducing the amount of oxygen that would have to be delivered.
Document ID
20260004723
Acquisition Source
Johnson Space Center
Document Type
Presentation
Authors
Brant White
(Sierra Space Louisville, Colorado, United States)
Aaron Paz ORCID
(Johnson Space Center Houston, United States)
Desmond O'Connor
(Johnson Space Center Houston, United States)
Anthony Colozza
(HX5 (United States) Fort Walton Beach, Florida, United States)
Nilab Azim
(Kennedy Space Center Merritt Island, United States)
Date Acquired
May 26, 2026
Publication Date
June 2, 2026
Publication Information
Publication: Space Resources Roundtable
Publisher: Colorado School of Mines
Issue Publication Date: June 2, 2026
URL: https://ces.mines.edu/conferences/srr/
Subject Category
Energy Production and Conversion
Space Processing
Meeting Information
Meeting: Space Resources Roundtable
Location: Golden, CO
Country: US
Start Date: June 2, 2026
End Date: June 5, 2026
Sponsors: American Institute of Aeronautics and Astronautics
Funding Number(s)
WBS: 763401.07.01.04.72
CONTRACT_GRANT: 80GRC020D0003
Distribution Limits
Public
Copyright
Use by or on behalf of the US Gov. Permitted.
Keywords
Oxygen from Regolith
ISRU
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