Estimates from closed-ecology research put the intensive crop area required to feed one person at roughly 40 to 60 square metres, assuming high-yield hydroponic or aeroponic culture, controlled atmosphere, and continuous artificial lighting. That is a pressurised, thermally controlled, illuminated volume per person, which sets the scale of the habitat before anyone considers living space.
Lighting is the dominant power load. Martian sunlight is about 43% of Earth's before you account for dust and for the losses through any glazing thick enough to survive there, so serious growing means LEDs, and LEDs mean kilowatts per person continuously. This is one of the main reasons surface fission power keeps returning to Mars architectures.
The loop has to close. Water is recycled through transpiration capture, plant waste is composted back into the growing medium, and the crops themselves become part of the atmosphere management system — consuming the CO2 the crew exhales and returning oxygen. A Martian greenhouse is simultaneously food production, water treatment and air revitalisation, which is what makes failure modes so tightly coupled.
The biology is the least uncertain part. Crops have been grown in Martian regolith simulant after perchlorate removal, the ISS has run continuous plant experiments for years, and terrestrial vertical farming has industrialised the technique. What has never been demonstrated is the whole loop, closed, at low pressure, under partial gravity, with no resupply.
Crops consume the crew's exhaled carbon dioxide and return oxygen, so the greenhouse does food, water treatment and atmosphere management with one system.
Hydroponics, aeroponics and LED vertical farming are mature terrestrial industries. The agronomy is not the unknown here.
Crops have been grown in Martian regolith simulant after perchlorate removal and organic amendment, which turns local dirt into a growing medium rather than a waste product.
Growing calories locally is what turns a 26-month umbilical to Earth from a lifeline into a convenience.
At 43% of Earth's sunlight before glazing losses, serious yields need continuous kilowatt-scale LED lighting per person — one of the largest sustained loads on a base.
Forty to sixty square metres of crop per person means the agricultural volume dwarfs the living volume, and all of it is a pressure vessel that can fail.
Individual pieces work. A fully closed food, water and air loop supporting people without resupply has never been operated successfully anywhere, including on Earth.
With resupply 26 months away, a disease, contamination event or power interruption in the greenhouse is a mission-ending failure, not a bad harvest.
| Crop area | 40–60 m² per person | Intensive, controlled environment |
| Lighting power | kW-scale per person | Continuous LED |
| Growing medium | Treated regolith or hydroponic | Perchlorate removed |
| Redundancy | Multiple isolated modules | Single-point failure is fatal |
Closed-ecology estimates put it at roughly 40 to 60 square metres of intensive crop area per person, in a pressurised and continuously lit environment with recycled water.
Yes, after treatment. Experiments with Martian regolith simulant have produced successful harvests once perchlorate salts are washed out and organic matter is added. Untreated regolith is toxic to most crops.
Mars receives about 43% of Earth's sunlight, and any glazing strong enough to hold pressure and survive dust reduces it further. Achieving useful yields means supplementing with LEDs, which makes lighting one of the largest continuous power loads on a base.