The Ultimate Recycling Challenge
Sustaining human life in deep space is a monumental challenge. Unlike the International Space Station (ISS) which orbits relatively close to Earth, future Artemis habitats on the Moon and missions to Mars cannot rely on frequent resupply missions. Every
kilogram of mass launched from Earth costs a fortune, and water is one of the heaviest and most critical resources. Each astronaut needs about a gallon per day for drinking, hygiene, and rehydrating food. The only viable solution for a long-term presence on the Moon or a journey to Mars is to create a 'closed-loop' system—one that recycles nearly every drop of water, mimicking the way Earth naturally recycles its resources.
From the ISS to Artemis
The technology powering Artemis's future is an evolution of the Environmental Control and Life Support System (ECLSS) that has been continuously refined on the International Space Station. The ECLSS is a suite of hardware that manages the entire habitat environment, from air quality to waste. Its Water Recovery System is a marvel of engineering, currently capable of recycling up to 98% of all water on the ISS. The lessons learned and technologies proven in low-Earth orbit are now being adapted and enhanced for the harsher, more isolated environments of the Moon and Mars, where reliability is a matter of life and death.
Collecting Every Available Drop
In a closed-loop system, nothing is wasted. The process begins by collecting water from every possible source within the habitat. Advanced dehumidifiers capture moisture from the air, which includes water vapor from astronauts' breath and sweat. Condensation from cabin surfaces is also collected. The most significant source, however, is wastewater, which is divided into two main streams: 'greywater' from activities like hand washing, and urine. While the idea of drinking recycled urine might seem unsettling, the technology is so effective that the final product is often purer than tap water on Earth.
The Purification Process Explained
Once collected, the wastewater begins a multi-stage purification journey. First, the Urine Processor Assembly (UPA) uses a process called vacuum distillation. It essentially boils the urine at a low pressure to separate pure water vapor from the leftover contaminants, which form a concentrated 'brine'. This water vapor, along with the collected greywater and humidity condensate, is then sent to the Water Processor Assembly (WPA). The WPA uses a series of specialized filters to remove solid materials and dissolved contaminants. A high-temperature catalytic reactor then breaks down any remaining organic compounds. The result is clean, drinkable water.
Closing the Loop with the Brine Processor
For years, the ISS systems recovered about 93-94% of water, with the remaining water trapped in the urine brine. To reach the 98% target needed for deep space missions, NASA developed the Brine Processor Assembly (BPA). This newer device takes the concentrated brine from the UPA and runs it through a special membrane. Warm, dry air is blown across the brine to evaporate the last bits of trapped water, which is then captured by the station's dehumidifiers. This final step was the key to achieving near-total water recovery, a critical milestone for making long-duration missions to Mars feasible.
Beyond Drinking: Water's Other Vital Role
Recycled water isn't just for drinking. It's a cornerstone of the entire life support system. A key piece of equipment, the Oxygen Generation System, uses a process called electrolysis to split the reclaimed water (H₂O) into its component parts: hydrogen and breathable oxygen. This provides a continuous supply of air for the crew, further reducing the need for heavy, stored oxygen tanks. This integration of water and air systems is what makes the ECLSS a truly regenerative system, essential for enabling humanity's future on the Moon and beyond.














