A Multiphase Operational and Environmental Assessment of Lunar Surface Habitation, Lunar Gateway Transit Systems, and Acceleration Pathways for Sustained Human Habitation of the Martian Surface
试验速览
- 阶段
- 不适用
- 状态
- Enrolling By Invitation
- 发起方
- 入组人数
- 30
- 试验地点
- 1
- 主要终点
- Habitat System Resilience Index (HSRI)
研究概览
简要总结
This study evaluates the operational, environmental, and habitation-system requirements for sustained human presence on the lunar surface, the performance of the Lunar Gateway as a transit and staging architecture, and the pathways required to accelerate readiness for Martian surface habitation. The protocol examines habitat resilience, radiation exposure modeling, life-support continuity, EVA logistics, behavioral health in isolated environments, and systems-engineering workflows across lunar, transit, and Mars-analog environments. Special emphasis is placed on the identification, extraction, processing, and utilization of lunar water-ice deposits as a critical resource for life-support, radiation shielding, and in-situ propellant production. Findings will inform future mission design, habitation module development, and interplanetary operational frameworks.
详细描述
This multiphase observational and operational protocol investigates the habitation lifecycle across three mission environments: (1) lunar surface habitation systems, (2) Lunar Gateway transit architecture, and (3) Martian surface analog habitats. The study integrates engineering, environmental, behavioral, and operational assessments to characterize requirements for long-duration human habitation beyond Earth orbit, with a specific focus on the role of water-ice resources in sustaining habitation and enabling interplanetary logistics.
The lunar surface phase evaluates habitat stability, environmental control and life-support system (ECLSS) resilience, radiation shielding performance, EVA logistics, mobility constraints, and dust mitigation strategies. A central component of this phase is the assessment of lunar water-ice availability, extraction feasibility, thermal stability, and processing pathways. Water-ice is evaluated as a source for potable water, oxygen generation, hydrogen production, and in-situ propellant manufacturing. Operational workflows, redundancy models, and failure-mode responses are analyzed to determine the feasibility of sustained lunar habitation supported by local resource utilization.
The Lunar Gateway phase examines transit-architecture performance, including docking operations, crew systems behavior, resource transfer workflows, and the continuity of life-support and environmental systems during transit. The study evaluates how water-ice-derived consumables from the lunar surface could be staged, processed, or transferred through the Gateway to support outbound missions. Behavioral health observations and operational stressors are assessed to understand crew performance in confined transit environments.
The Martian surface analog phase focuses on long-duration isolation, dust intrusion mitigation, power redundancy, habitat resilience, and environmental stability under Mars-analog conditions. This phase evaluates the translational pathways required to accelerate readiness for Martian habitation, including the potential use of Martian subsurface ice deposits for life-support, radiation shielding, and fuel production. Comparisons between lunar and Martian ice-resource utilization inform cross-environment operational strategies.
Across all phases, the protocol collects operational, environmental, and systems-engineering data to inform future mission architectures, habitation module design, and interplanetary habitation strategies. The study does not involve FDA-regulated products, biomedical interventions, or human subjects research as defined by federal regulations. All activities occur within controlled operational and engineering environments.
研究设计
- 研究类型
- Observational
- 观察模型
- Cohort
- 时间视角
- Prospective
入排标准
- 年龄范围
- 18 Years 至 65 Years(Adult, Older Adult)
- 性别
- All
- 接受健康志愿者
- 是
入选标准
- •Adults aged 18-65
- •Able to participate in isolated, confined, or controlled operational environments
- •Prior experience in engineering, environmental systems, analog missions, or mission operations
- •Ability to perform EVA-analog tasks and operational workflows
- •Willingness to participate in multi-phase lunar, transit, and Mars-analog simulations
排除标准
- •Medical or physical limitations that prevent participation in isolated or operational environments
- •Conditions that limit safe participation in EVA-analog tasks
- •Inability to comply with operational protocols or safety requirements
- •Participation in conflicting operational studies
研究组 & 干预措施
Lunar Surface Habitation Cohort
Participants assigned to evaluate lunar surface habitation systems, including habitat stability, ECLSS performance, radiation shielding, EVA logistics, and water-ice extraction workflows.
干预措施: Habitat Systems Evaluation (Other)
Lunar Gateway Transit Cohort
Participants assigned to assess Lunar Gateway transit operations, including docking workflows, resource transfer, life-support continuity, and staging of water-ice-derived consumables.
干预措施: Habitat Systems Evaluation (Other)
Lunar Gateway Transit Cohort
Participants assigned to assess Lunar Gateway transit operations, including docking workflows, resource transfer, life-support continuity, and staging of water-ice-derived consumables.
干预措施: Water-Ice Resource Utilization Assessment (Other)
Martian Surface Analog Cohort
Participants assigned to operate within Mars-analog habitats to evaluate long-duration isolation, dust mitigation, power redundancy, and utilization pathways for Martian subsurface ice.
干预措施: Habitat Systems Evaluation (Other)
Martian Surface Analog Cohort
Participants assigned to operate within Mars-analog habitats to evaluate long-duration isolation, dust mitigation, power redundancy, and utilization pathways for Martian subsurface ice.
干预措施: Water-Ice Resource Utilization Assessment (Other)
Martian Surface Analog Cohort
Participants assigned to operate within Mars-analog habitats to evaluate long-duration isolation, dust mitigation, power redundancy, and utilization pathways for Martian subsurface ice.
干预措施: EVA and Mobility Operations (Other)
Lunar Surface Habitation Cohort
Participants assigned to evaluate lunar surface habitation systems, including habitat stability, ECLSS performance, radiation shielding, EVA logistics, and water-ice extraction workflows.
干预措施: Water-Ice Resource Utilization Assessment (Other)
Lunar Surface Habitation Cohort
Participants assigned to evaluate lunar surface habitation systems, including habitat stability, ECLSS performance, radiation shielding, EVA logistics, and water-ice extraction workflows.
干预措施: EVA and Mobility Operations (Other)
结局指标
主要结局
Habitat System Resilience Index (HSRI)
时间窗: 36 months
HSRI is a composite scale (0-100) assessing environmental stability, ECLSS uptime (%), redundancy activation success rate (%), and mean time to recovery (hours). Higher scores indicate better habitat resilience.
Water-Ice Utilization Efficiency Ratio
时间窗: 36 months
Efficiency ratio (%) measured using the Water-Ice Processing Performance Scale (WIPPS; 0-100%), quantifying the proportion of extracted ice converted into usable water, oxygen, hydrogen, and propellant. Higher values indicate greater efficiency.
Radiation Modeling Accuracy Score
时间窗: 36 months
Accuracy score (%) comparing predicted radiation dose (mSv) to measured dose using the Habitat Radiation Monitoring System (HRMS). Higher scores indicate greater predictive accuracy.
次要结局
- EVA Task Completion Time(36 months)
- EVA Mobility Constraint Score(36 months)
- Dust Intrusion Index(36 months)
- Life-Support Continuity Score (LSCS)(36 months)
- Behavioral Health Stability Index (BHSI)(36 months)
- Power System Uptime Percentage(36 months)
- Redundancy Activation Success Rate(36 months)
- Power Recovery Time(36 months)
- Particulate Intrusion Reduction Score(36 months)
- Abrasion Resistance Index(36 months)
- Operational Degradation Rate(36 months)
- Transit-to-Surface Operational Continuity Score (TSOCS)(36 months)
