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Regolith Adaptive Modification Systems (Rams) - Final ReportEstablishing human habitation on the Moon or Mars requires a palette of reaction chemistries for deconstructing extraterrestrial soils to extract structural metals, fuels, and propellants, as well as consolidating the soils into load-bearing forms. This report outlines progress related to the fundamental chemistry of in-situ resource utilization that is the focus of our Regolith Adaptive Modification System (RAMS) NIAC project. The RAMS concept is a breakthrough approach for preparing surfaces for early landing sites–and subsequent settlement operations–on the Lunar and Martian surface, among others. The RAMS concept is aligned with aspirations and capabilities of planned NASA Artemis mission. The approach
is predicated on the sequential delivery of microcapsules onto lunar and Martian surfaces, which upon rupture, release payloads that react with regolith to yield geopolymerized subsurface slabs and surface high-strength steel skin and anchors. Through successively more exothermic reactions, we are seeking to build subsurface geopolymer slabs and use thermite reactions to constitute micro-alloyed advanced high-strength steel (AHSS) and Ti—Al—V pads on surfaces of planetary bodies, thereby circumventing the need for energy-intensive sintering technologies. As a precursor delivery system used to constitute landingpads, RAMS can be scaled for robotic, human-class, and more prominent (i.e., Starship) landers and will be configured within pressurized delivery systems that use radio beacons to outline coordinates for precision landings. Microcapsule delivery systems are designed to impel precursors (nanothermite mixtures and organosilanes), which activate in response to stress, heat, or impact to constitute deep geopolymerized slabs and AHSS skins. Dust mitigation is accomplished by reaction/solidification chemistry that yields a subsurface slab and advanced high-strength steel skin and anchors.
Document ID
20240016180
Acquisition Source
Headquarters
Document Type
Contractor or Grantee Report
Authors
Sarbajit Banerjee
(Texas A&M Univ. College Station, TX, United States)
Anita
(Texas A&M Univ. College Station, TX, United States)
Nicholas I. Cool
(Texas A&M Univ. College Station, TX, United States)
Jingxiang Cheng
(Texas A&M Univ. College Station, TX, United States)
Daniel Bronner
(Texas A&M Univ. College Station, TX, United States)
Elbert Wang
(Texas A&M Univ. College Station, TX, United States)
Christian Kornelis
(Texas A&M Univ. College Station, TX, United States)
Natalia Rivera-Gonzalez
(Texas A&M Univ. College Station, TX, United States)
Saul Perez-Beltran
(Texas A&M Univ. College Station, TX, United States)
Jeffrey W. Bullard
(Texas A&M Univ. College Station, TX, United States)
Bjorn Birgisson
(Texas A&M Univ. College Station, TX, United States)
Kevin Cannon
(Colorado School of Mines Golden, Colorado, United States)
Date Acquired
December 17, 2024
Publication Date
December 20, 2021
Publication Information
Publication: NASA Innovative Advanced Concepts
Publisher: National Aeronautics and Space Administration
URL: https://www.nasa.gov/niac-funded-studies/
Subject Category
Lunar and Planetary Science and Exploration
Report/Patent Number
80NSSC21K0698
Funding Number(s)
CONTRACT_GRANT: 80NSSC21K0698
Distribution Limits
Public
Copyright
Use by or on behalf of the US Gov. Permitted.
Technical Review
NASA Peer Committee
Keywords
2021 NIAC Phase I
In-Situ Resource Utilization
Lunar Landing Site Preparation
Martian Landing Site Preparation
Thermite Chemistry
Metal Recovery from Regolith
Advanced High-Strength Alloy Skins
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