Hybrid lunar ISRU plant: A comparative analysis with carbothermal reduction and water extraction

IF 3.4 2区 物理与天体物理 Q1 ENGINEERING, AEROSPACE Acta Astronautica Pub Date : 2025-05-01 Epub Date: 2025-02-12 DOI:10.1016/j.actaastro.2025.02.004
Kosuke Ikeya , Francisco J. Guerrero-Gonzalez , Luca Kiewiet , Michel-Alexandre Cardin , Jan Cilliers , Stanley Starr , Kathryn Hadler
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Abstract

To establish a self-sustained human presence in space and to explore deeper into the solar system, extensive research has been conducted on In-Situ Resource Utilization (ISRU) systems. Past studies have proposed and researched many technologies to produce oxygen from regolith, such as carbothermal reduction and water extraction from icy regolith, to utilize it for astronauts’ life support and as the propellant of space systems. However, determining the most promising technology remains challenging due to uncertainties in the lunar environment and processing methods. To better understand the lunar environment and ISRU operations, it is crucial to gather more information. Motivated by this need for information gathering, this paper proposes a new ISRU plant architecture integrating carbothermal reduction of dry regolith and water extraction from icy regolith. Two different hybrid plant architectures integrating both technologies (1) in parallel and (2) in series are examined. The former involves mining and processing in both a Permanently Shadowed Region (PSR) and a peak of eternal light in parallel, while the latter solely mines in a PSR. In this series hybrid architecture, the dry regolith tailings from water extraction are further processed by carbothermal reduction. This paper conducts a comparative analysis of the landed mass and required power of each plant architecture utilizing subsystem-level models. Furthermore, based on uncertain parameters such as resource content in regolith, the potential performance range of each plant was discovered through Monte Carlo simulations. The result indicates the benefit of the series hybrid architecture in terms of regolith excavation rate and power consumption, while its mass cost seems the highest among the studied architectures.
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月球ISRU杂交植物:碳热还原和水萃取的比较分析
为了在太空中建立自给自足的人类存在并深入探索太阳系,对原位资源利用(ISRU)系统进行了广泛的研究。过去的研究提出并研究了许多从风化层制取氧气的技术,如碳热还原和从冰冷的风化层中提取水等,将其用于宇航员的生命维持和空间系统的推进剂。然而,由于月球环境和处理方法的不确定性,确定最有前途的技术仍然具有挑战性。为了更好地了解月球环境和ISRU的运作,收集更多的信息至关重要。基于这一信息收集的需要,本文提出了一种集干风化层碳热还原和冰风化层取水为一体的新型ISRU工厂结构。两种不同的混合工厂架构集成这两种技术(1)并联和(2)串联进行了研究。前者涉及在永久阴影区(PSR)和永恒光峰并行采矿和加工,而后者仅在PSR中采矿。在该系列混合结构中,对水提后的干土尾矿进行碳热还原进一步处理。本文利用子系统级模型对各电站结构的着陆质量和所需功率进行了比较分析。此外,基于不确定的风化层资源含量等参数,通过蒙特卡罗模拟发现了各植物的潜在性能范围。结果表明,串联混合结构在挖土速度和功耗方面具有优势,但其质量成本在所研究的结构中最高。
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来源期刊
Acta Astronautica
Acta Astronautica 工程技术-工程:宇航
CiteScore
7.20
自引率
22.90%
发文量
599
审稿时长
53 days
期刊介绍: Acta Astronautica is sponsored by the International Academy of Astronautics. Content is based on original contributions in all fields of basic, engineering, life and social space sciences and of space technology related to: The peaceful scientific exploration of space, Its exploitation for human welfare and progress, Conception, design, development and operation of space-borne and Earth-based systems, In addition to regular issues, the journal publishes selected proceedings of the annual International Astronautical Congress (IAC), transactions of the IAA and special issues on topics of current interest, such as microgravity, space station technology, geostationary orbits, and space economics. Other subject areas include satellite technology, space transportation and communications, space energy, power and propulsion, astrodynamics, extraterrestrial intelligence and Earth observations.
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