How Astronauts Sleep, Shower, and Use the Toilet Aboard the ISS in Microgravity
Aishwarya Kapoor | Times Life Bureau | Jul 31, 2026, 07:57 IST
How Astronauts Sleep, Shower, and Use the Toilet Aboard the ISS in Microgravity
Image credit : Times Life Bureau
Aboard the ISS, astronauts can't pour water, can't flush a toilet, and can't lie down to sleep, because microgravity makes none of those things work. NASA and its partners have spent decades engineering workarounds for every basic human need. What they built is stranger, and more ingenious, than most people expect.
Sleep : Strapped In, Floating Upright
The bags hold the body in place, but the arms are the problem. In microgravity, a relaxed human body assumes what NASA calls the neutral body posture: knees slightly bent, arms floating forward at chest height, like a person perpetually bracing for a fall. Astronauts often wake to find their arms drifting in front of their faces. Some tuck their arms inside the sleeping bag. Some don't bother.
The ISS orbits Earth every 90 minutes, which means astronauts experience 16 sunrises and 16 sunsets every single day. Without intervention, this destroys circadian rhythms. The station's lighting system adjusts colour temperature across the day to simulate a normal cycle, and astronauts follow a strict schedule. Sleep quality in space is still a documented problem: a 2014 study published in The Lancet Neurology found that astronauts on long missions sleep an average of six hours per night despite being scheduled for eight, and many rely on sleep aids like zolpidem or melatonin.
Showering: No Running Water, No Drains
Instead, astronauts use rinseless shampoo and no-rinse body wash, the same products originally developed for hospital patients who cannot bathe conventionally. Water is dispensed from a bag through a nozzle in small controlled amounts. An astronaut squirts water onto a washcloth and wipes down. The washcloth itself must be wrung out carefully, because water squeezed from fabric forms those same floating spheres. Oral hygiene works the same way: astronauts use a toothbrush and toothpaste, but they swallow the toothpaste rather than spit it, or they spit into a towel. There is no sink to spit into.
Hair washing is a small production. Canadian astronaut Karen Nyberg posted a video from the ISS showing exactly how it's done: a pouch of warm water squeezed onto the scalp, rinseless shampoo worked in with fingers, then the water absorbed with a towel. The whole process takes about ten minutes and uses roughly 200 millilitres of water. On Earth, a standard shower uses anywhere from 40 to 80 litres.
The Toilet : Engineering's Most Unglamorous Problem
Urine is handled differently, and this is where the engineering gets genuinely remarkable. The ISS carries the Urine Processor Assembly, part of the Environmental Control and Life Support System. Urine is collected through a separate funnel-and-hose attachment, processed through a series of filtration and distillation stages, and converted into potable water. NASA estimates the system recovers about 93 percent of water from urine. Astronaut Sunita Williams, who has spent more than 300 days in space across two missions, described the recycled water as tasting cleaner than most tap water on Earth. The agency's own summary of the system puts it plainly: today's coffee becomes tomorrow's coffee.
Gaganyaan, India's first crewed spaceflight program being developed by ISRO, will require its own life support and waste management systems for the crew. The specific configurations have not been publicly detailed at the level of the ISS documentation, but the engineering challenge is identical: in microgravity, every bodily function that humans take for granted on the ground requires a purpose-built mechanical solution.
Why All of This Matters Beyond the Station
Water recycling is the clearest example of why this matters for missions beyond low Earth orbit. A crewed mission to Mars would take roughly seven months in transit each way, with no resupply possible. Every kilogram of water that must be launched from Earth costs approximately $22,000 in fuel alone, by NASA's historical estimates. A system that recovers 93 percent of water from waste and exhaled breath is not a curiosity, it is the difference between a Mars mission that is financially possible and one that is not.
The unglamorous details of sleep, hygiene, and sanitation turn out to be the load-bearing problems of long-duration spaceflight. Propulsion gets the spacecraft there. Life support keeps the crew alive long enough to arrive.