sustainable LUnar Metal, Oxygen and Cement eXtraction methodology development
The project aims to develop a sustainable method for in-situ resource utilization on the Moon by modeling and experimentally validating the extraction of metals, oxygen, and concrete substitutes from lunar regolith.
Projectdetails
Introduction
Raw materials scarcity and the geographical dependency for critical materials is a growing concern within the EU. As demands for materials and minerals keep on increasing, directing our view to space becomes an option to be considered. Humankind has continued to expand its reach beyond Earth, for which establishing a permanent base on the Moon is necessary.
Economic and Ecological Considerations
Launching technology has a large economic and ecological footprint. Producing resources, such as metals, cement-like materials, and oxygen, in situ on other planets is thus required and should happen in a sustainable way. However, testing the processes under the relevant conditions is time-consuming and expensive or, if executed on Earth, impossible. This is currently limiting further developments of these processes.
The Role of Modelling
Modelling can play a pivotal role in this. However, the limited previous research did not focus enough on correct input data or experimental validation.
Proposal Overview
The current proposal will for the first time develop a terrestrial methodology to enable the design of a method to produce metal, oxygen, and concrete- or glass-substitutes from lunar regolith with solar-produced electricity on the Moon. This combination of resources being extracted will enable the development of a waste-free in-situ resource utilisation process on the Moon without the need for extra reactants.
Research Focus
For this, several important aspects are currently unknown and will be investigated in detail:
- Metal and oxygen extraction
- Heating
- Mixing and castability of molten oxide
- Glass formation from molten oxide
Methodological Approach
To take into account the lunar gravitation, which is experimentally practically impossible to do, the combined modelling-experimental approach in the proposed research is essential and will be applied for the first time in this context. The process will first be investigated under terrestrial conditions, both experimentally and with a model, which is validated with the experiments. The validated model will then be adapted to lunar gravity.
Financiële details & Tijdlijn
Financiële details
Subsidiebedrag | € 1.499.875 |
Totale projectbegroting | € 1.499.875 |
Tijdlijn
Startdatum | 1-1-2025 |
Einddatum | 31-12-2029 |
Subsidiejaar | 2025 |
Partners & Locaties
Projectpartners
- UNIVERSITEIT GENTpenvoerder
Land(en)
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C2M
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Batterij recycling techniek
Dit project ontwikkelt een veilige mechanische recyclingtechniek voor batterijen, met als doel 70% hoogwaardige hergebruik van materialen.
LESS
Het project ontwikkelt de LESS-scanner voor real-time analyse van boorkernen uit mijnbouwtailings, om waardevolle grondstoffen te winnen en milieuschade te verminderen.
Multi Material Additive Manufacturing with Electrostatic Cold Spray
MadeCold aims to revolutionize additive manufacturing by developing a novel solid state deposition process that enhances efficiency, scalability, and material versatility for aerospace, energy, and hybrid sectors.
Towards zero emissions in European ferrous foundries using inorganic binder systems
The GREEN CASTING LIFE project aims to implement new inorganic binders in ferrous foundries to reduce emissions and waste, enhancing air quality and sustainability in Europe’s casting industry.