Why plan farms on the Moon?
Monthly colonies require autonomous food supply. Aquaponics, aeroponics, and regolith substrates demand precise resource balancing. This page will help engineers, biologists, and logisticians evaluate key parameters.
Tools account for energy limitations, lighting cycles, crew needs, and dust risks.
1. Planning the bio dome
2. Assessing nutrient resources
3. Logistics of delivery
📚 Article: Architecture of monthly agrocomplexes
Biocapsules and radiation protection
Monthly radiation requires multi-layered envelopes: inflatable structure, regolith layer, internal screen. Bio-domes provide stable atmospheric pressure (55–70 kPa) and controlled humidity.
It is recommended to locate farms below the surface or cover them with regolith blocks. This reduces the need for massive energy shields.
Closed bioregenerative systems
Water circulates between plants, people, and regeneration systems. The presence of aquaponics allows for obtaining proteins and micronutrients. The key task is to maintain the balance of nitrogen and microbiota.
Combine speed plants (lettuce, spinach) with cultivated trees (dwarf tomatoes, potatoes) for stable nutrition.
Energy and lighting
The month has long day and night cycles (14/14). Energy accumulators, nuclear sources, or mirror farms redirecting light are needed. LED lighting with adjustable spectrum saves energy and does not overheat the dome.
Optimize lighting schedule: 16 hours of light / 8 hours of darkness or adaptive cycles for specific crops.
Dust and cleanliness.
Monthly dust is abrasive. Create airlocks, robotic cleaners, and electrostatic repulsion systems. Control dust in greenhouses, otherwise it will enter the ventilation systems.
Regularly maintain filters and use materials that do not accumulate charge.
Economics of Missions
On-site food production reduces cargo mass. Payback depends on mission duration and crew size. Important partnerships between states and private sector for shared infrastructure.
- Develop digital twins of the farm for process optimization.
- Use robots for sowing & harvesting to minimize human time.
- Plan organic waste recycling into fuel.
❓ FAQ about monthly excavation
📖 Guide with examples
Example 1: Dome for an 8-person crew
Calorie content 2600 kcal, yield 4.8 kg/m².
Required area ≈ 120 m², power 90 kW.
Example 2: Water Recirculation
Area 250 m², coefficient 94%, nitrogen regeneration 72%.
Need for fresh water = 250 × 12 L × (1 - 0.94) ≈ 180 L/day
Example 3: Logistic Buffer
Mass 5 t, cost 90 mln $, reserve 60 days.
Result = (Final product - Initial) / (Substrate consumed).
Example 4: Pilosa Threat
EVA after dust increased by 35%.
SOLUTION:Implement electrostatic barriers and autonomous vacuums.
Example 5: Biodiversity
Microalgae added for oxygen production.
Effect: reduction in oxygen supply demand by 12%.