Design Structure Matrix Approach Applied to Lunar Habitat Design
Abstract
:1. Introduction
- (1)
- Multiple objectives: The initial stage of constructing the lunar habitat involves scientific exploration and resource exploitation across various scientific and engineering objectives (e.g., geological exploration, space environment exploration, in situ resource utilization). The objectives at the advanced stage involve the construction of communities and cities.
- (2)
- Multiple subjects: Experts in aerospace engineering, structural engineering, environmental engineering, human-factor engineering, materials, energy, and other fields and from various professions and institutions must interact across the whole life cycle of the project.
- (3)
- Multiple constraints: At the macro level, aerospace engineering as a whole is constrained by the policy context. At the meso level, technological development supports the construction of the lunar habitat. At the micro level, environmental and human factors of architectural design affect various spatial components of the project. There are contradictory constraints at each level.
- (4)
- Multiple development stages: The lunar habitat design research process includes the stages of demand clarification, scheme design, materialization and manufacturing, testing, and optimization in the decision-making stage. No stage is completely linear.
2. DSM Concept
- (1)
- Product architecture, which refers to the components and their interactions in the physical space and is based on components and/or subsystems and their relationships;
- (2)
- Organization architecture, which refers to people (or teams) and their interactions within the structure;
- (3)
- Process architecture, which refers to individual activities, interactions between activities, information flow, and other dependencies;
- (4)
- Parameter architecture, which refers to less temporal correlations than processes and models low-level relationships between design decisions and parameters, sets of equations, subroutine parameter exchanges, etc.
3. DSM Approach within Lunar Habitat Design
3.1. Initial Activity-Based DSM Establishment
3.2. Dependencies between Determined Elements
3.3. DSM Optimization
4. Discussion
5. Conclusions
Funding
Data Availability Statement
Conflicts of Interest
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Functional Components | Physical Element Composition | ||
---|---|---|---|
SLEEP | Rest Preparing for sleep Sleep Storage | RESIDENTIAL CABIN | Living, working space and facilities Agricultural cultivation Airlock cabin Evacuation space and facilities Structural systems |
HYGIENE | Full and partial body-cleaning Changing clothes Toilet Storage | ||
FOOD | Meal preparation Serving meals Storage Planting | STORAGE FACILITY | Refrigeration materials Hazardous materials General materials Surface equipment Maintenance equipment Temporary protective structures |
WORK | Operation Experiment Communication Training | ||
LEISURE | Exercise Rest Casual conversation | SUPPORT FACILITY | Transportation infrastructure Communication infrastructure Waste management equipment Life support equipment Electric power system Thermal systems Mobile systems Industrial processing facilities Pipelines |
MEDICAL | Emergency treatment Health care Monitoring | ||
AUXILIARY | Energy equipment Environment control equipment Transportation Suit replacement |
Main | Secondary | Optimization Algorithm |
---|---|---|
Static (not time-dependent) | Component-based DSM | Clustering |
Team-based DSM | ||
Dynamic (time-dependent) | Activity-based DSM | Sequencing |
Parameter-based DSM |
Phase | Design Tasks |
---|---|
Pre-planning phase | Task definition, siting analysis, mobility determination, module connection pattern determination |
Overall design phase | Functional definition, functional organization, form design, structural selection, envelope design |
Spatial design phase | Scale determination, form determination, interface design, facility design, equipment design, physical system design, physical environment creation |
Optimization phase | Model building, environmental simulation, construction simulation, performance simulation |
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Li, S. Design Structure Matrix Approach Applied to Lunar Habitat Design. Buildings 2023, 13, 1284. https://doi.org/10.3390/buildings13051284
Li S. Design Structure Matrix Approach Applied to Lunar Habitat Design. Buildings. 2023; 13(5):1284. https://doi.org/10.3390/buildings13051284
Chicago/Turabian StyleLi, Shuqi. 2023. "Design Structure Matrix Approach Applied to Lunar Habitat Design" Buildings 13, no. 5: 1284. https://doi.org/10.3390/buildings13051284
APA StyleLi, S. (2023). Design Structure Matrix Approach Applied to Lunar Habitat Design. Buildings, 13(5), 1284. https://doi.org/10.3390/buildings13051284