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Strong Thermoset Regolith UV-Curable Composite Technology (STRUCT) OverviewFuture lunar surface missions require construction materials that can be manufactured in situ using lo-cal resources while operating under extreme environmental conditions. Many Lunar material demands can be solved solely with regolith by compacting or sintering. And yet past Lunar missions rely on polymeric materials, and sustained Lunar missions must reduce Earth-supplied polymers dependence. Dual-cure (Ultraviolet (UV) and thermal) polymer-regolith composites offer a promising pathway by leveraging solar UV radiation, moderate thermal in-put, and regolith. Mission mass limits, power availability and energy constraints on the lunar surface further motivate low-energy processing and curing strategies for surface construction materials.


The Strong Thermoset Regolith UV-Curable Composite Technology (STRUCT) project has successfully synthesized and demonstrated dual-cure photopolymer resins derivable from in-situ resources [3]. Morphological, thermal, and mechanical characterization show that the newly formulated UV curable resin systems integrates well with lunar regolith simulants. Processing and chemistry changes, and computational analysis advanced the composite design. X-ray CT scanned and computational analysis demonstrate that resin, regolith and additives are well incorporated. The large fraction of regolith, 95% by mass, large char yield (82% mass), low thermal conductivity (0.26 W/m/K), confirm this material as a promising high-performance thermal and structural material.
Document ID
20260003125
Acquisition Source
Ames Research Center
Document Type
Poster
Authors
Tane Boghozian
(Analytical Mechanics Associates, Inc. Mountain View, CA, United States)
Sergio Fraile Izquierdo
(Analytical Mechanics Associates, Inc. Hampton, VA, United States)
Vuong Do
(Analytical Mechanics Associates, Inc. Mountain View, CA, United States)
Daniel J Rasky
(NASA Emeritus Mountain View, California, United States)
Andrew P Santos
(Ames Research Center Mountain View, United States)
Date Acquired
April 15, 2026
Subject Category
Space Sciences (General)
Meeting Information
Meeting: Lunar Surface Innovation Consortium Spring Meeting
Location: Virtual
Country: US
Start Date: April 28, 2026
End Date: April 30, 2026
Sponsors: Lunar Surface Innovation Consortium
Funding Number(s)
WBS: 101300.11B.TSM.02.24
Distribution Limits
Public
Copyright
Portions of document may include copyright protected material.
Technical Review
Single Expert
Keywords
thermal conductivity
segmentation
computed tomography
puma
dem
granular
dual-cure
thermoset
composite
uv
uv-curable
resin
regolith
ISRU
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