Mars In Situ Resource Utilization (ISRU) with Focus on Atmospheric Processing for Near-Term Application—A Historical Review and Appraisal

Author:

Rapp Donald1,Inglezakis Vassilis J.2ORCID

Affiliation:

1. Independent Researcher, 1445 Indiana Avenue, South Pasadena, CA 91030, USA

2. Department of Chemical & Process Engineering, University of Strathclyde, 75 Montrose Street, Glasgow G1 1XJ, UK

Abstract

The inspirational paper by Ash, Dowler, and Varsi in 1978, proposing to utilize in situ resources on Mars (ISRU) rather than bringing them from Earth, originated the field of Mars ISRU that has been the subject of research ever since. In this paper, we reviewed significant research reported on Mars ISRU since 1978 and reported briefly on accomplishments. We found that prior to 2014, progress on small tasks was sporadic and intermittent, always at low Technology Readiness Level (TRL). In 2014, the National Aeronautics and Space Administration (NASA) took a bold, imaginative, unprecedented step to fund a major project in Mars ISRU: the so-called “MOXIE” (Mars Oxygen In Situ Experiment), in which an oxygen production plant based on solid oxide electrolysis (SOEC) was developed, and finally demonstrated on Mars in 2022 and 2023. While MOXIE leaves behind it a wealth of accomplishments, there remains the need to close remaining gaps with additional laboratory and field work. Solid-oxide electrochemical cell (SOEC) technology has become a major area of worldwide investment for terrestrial energy and CO2 control. There is a very strong overlap between this terrestrial technology and Mars ISRU. NASA has already leveraged the terrestrial development work via MOXIE. NASA can leverage further advances with a comparatively small investment beyond 2023. Because NASA is engaged in a major program to return humans to the Moon, NASA’s focus is on lunar ISRU. Unfortunately, the mission impact and return on investment for lunar ISRU does not compare to that for Mars ISRU. NASA’s concept for Mars ISRU is futuristic, involving autonomous mining, transporting, and processing large amounts of Mars regolith. This might well occur long after initial human landings which could better profit in the near-term from MOXIE technology. By continuing further development of SOEC technology beyond MOXIE, while leveraging large investments in terrestrial applications, NASA can develop the Mars ISRU appropriate to nearer term human missions at modest investment. The goal of this paper is to place the relatively mature MOXIE technology advance and solid oxide electrolysis in general in perspective to the historical evolution of low TRL Mars ISRU technology.

Publisher

MDPI AG

Subject

Fluid Flow and Transfer Processes,Computer Science Applications,Process Chemistry and Technology,General Engineering,Instrumentation,General Materials Science

Reference68 articles.

1. Rapp, D. (2023). Human Missions to Mars, Springer. [3rd ed.]. Springer-Praxis Books.

2. Portree, D.S.F. (2001). Humans to Mars: Fifty Years of Mission Planning, 1950–2000, NASA Headquarters.

3. Platoff, A. (2023, November 29). Eyes on the Red Planet: Human Mars Mission Planning, 1952–1970, NASA Report, NASA/CR-2001-208928, July 2001. Available online: https://escholarship.org/content/qt0dx7866r/qt0dx7866r_noSplash_0311d690a533bc3c9c94d74fb41c8f3a.pdf?t=nwvlqw.

4. Feasibility of Rocket Propellant Production on Mars;Ash;Acta Astronaut.,1978

5. Drake, B.G. (2023, November 29). Human Exploration of Mars Design Reference Architecture 5.0. NASA Report, Available online: https://ntrs.nasa.gov/api/citations/20090012109/downloads/20090012109.pdf.

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