Composite Structure Enabling an Efficient Lunar Surface Habitat
The establishment of sustainable habitats on the lunar surface is paramount for advancing human exploration and scientific endeavors beyond Earth and enables NASA's Sustained Lunar Evolution in the Moon to Mars Architecture. Such habitats require structural solutions that minimiz
Selection note: Curated for composite structural concepts for lunar habitation, including manufacturing, packaging, assembly, loads, durability, and integration with shielding or local materials.
Evidence boundary: NTRS metadata and abstract describe a design study; curation did not validate structural margins, fire behavior, repairability, radiation performance, or lifecycle testing. It is habitat precursor context, not certified design evidence.
Stable record
ntrs-20250009434
Topic
structures-shielding
Type
Conference Paper
Publisher
Marshall Space Flight Center
Authors
Matthew Ziglar
Year
2026
Editorial state
metadata curated editorial draft
Reviewer
GShips Project editorial synthesis
Official link checked
2026-07-25
Source-supplied abstract
The establishment of sustainable habitats on the lunar surface is paramount for advancing human exploration and scientific endeavors beyond Earth and enables NASA's Sustained Lunar Evolution in the Moon to Mars Architecture. Such habitats require structural solutions that minimize delivered mass while maximizing volumetric efficiency, long term integrity, and mission operability. This paper delves into the innovative design of an all composite Lunar Surface Habitat (LSH), replicating Boeing’s proven composite design, analysis, and build capability but extending it into a novel system level application: a continuous, joint minimized carbon fiber reinforced polymer (CFRP) pressure shell layup that constitutes the primary structure for a crewed habitat. The innovation is both material and architectural — an integrated, all composite habitat concept that has not previously been implemented for habitable space modules.
The study was conducted under NASA’s NextSTEP-2 Appendix A. One of the key focuses of this study was the composite primary structure of the LSH, which constitutes only 17% of the total mission mass compared to typical module’s structure comprising 25%-50% of the total mass. This remarkable weight reduction is achieved using carbon fiber reinforced polymer laminate, which offer a high strength-to-weight ratio essential for space applications. The lightweight nature of the composite structure not only facilitates the launch, landing, and transportation of the habitat but also enhances the module’s overall performance by redeploying structural mass allocation to other functions, thereby increasing mission capability or reducing risks.
A significant advantage of utilizing composite structures is the expanded design space it affords. The reduced mass and flexible manufacturing of the composite primary structure enables the development of an innovative two-story module. This design not only maximizes the use of internal volume but also strategically locates hatches low to the lunar surface, facilitating easier ingress and egress for crew members during extravehicular activities (EVAs) and the mating of pressurized vehicles to its port. The two-story layout allows for a clear separation of functional areas, enhancing operational efficiency and crew comfort.
The paper details how all the defined Ground Rules and Assumptions (GRAs) were met or exceeded for a four crew, 30 day mission. Chief among the Ground Rules was the mass target, which was met by implementing very efficient structure and by a deferred items approach where equipment is brought up and installed on the first mission via a pressured logistics carrier.
The findings underscore the potential of composite technology to revolutionize habitat construction for deep space applications. The successful implementation of a lightweight composite primary structure not only enhances the feasibility of lunar habitation but also sets a precedent for future missions to Mars and beyond. The study demonstrates that the strategic use of composite materials in the LSH design significantly contributes to the mission's success by optimizing mass, enhancing structural performance, and enabling innovative configurations that improve crew operations.
Abstract text has not been adopted as a GShips conclusion.
What would change this record?
A newer or corrected version, a retraction, a verified duplicate, a material topic mismatch, a changed access state, or claim-level review would trigger a dated editorial update.
NTRS metadata and abstract describe a design study; curation did not validate structural margins, fire behavior, repairability, radiation performance, or lifecycle testing. It is habitat precursor context, not certified design evidence.
Source-supplied titles, abstracts, authors, and dates may require correction against the canonical full text.
What would change this page?
A newer or corrected version, retraction, verified duplicate, material topic mismatch, changed access state, or claim-level assessment would change this record.
People, review, and conflicts
Prepared by
GShips Project
Editorial status
metadata-curated-editorial-draft
Editorial reviewer
GShips Project editorial synthesis
Last editorial review
No editorial-review date recorded
Independent review
pending
Independent reviewer
No independent reviewer assigned
Last independent review
No independent-review date exists
Last content edit
Not recorded separately
Official source or link verified
2026-07-25
Declared conflicts
The maintainer intends to explore a commercial venture based on some GShips work. No entity, outside funding, customer, sponsor, or indexed-organization relationship currently exists.