In microgravity, water never falls — there is no buoyant separation of liquid from air, so a released droplet just floats. Surface tension γ minimises its surface area, which is why it settles into a sphere (Young–Laplace pressure Δp = 2γ/r) and why two droplets that touch merge into one bigger sphere instead of splitting apart:
Δp = 2γ / r (excess pressure inside a spherical droplet)
merge: r_new = (r1³ + r2³)^(1/3) (volume-conserving radius)
Real spacecraft hygiene and waste systems (ISS Waste and Hygiene Compartment, the water recovery system) solve this with directional airflow instead of gravity: a fan pulls cabin air — and anything suspended in it — through a vent. Each droplet feels a Stokes-drag force pulling its velocity toward the local air velocity:
F_drag = 6πμr (v_air − v_drop)
Because drag scales with radius while inertia scales with r³, small droplets are dragged into the airflow almost instantly while larger ones lag — which is exactly why real systems keep droplets small (sponges, wipes, absorbent pads) rather than letting free water pool.
- Suction strength — the air velocity magnitude at the vent; it falls off with distance, so a droplet only gets pulled in once it drifts close enough.
- Surface tension — how eagerly nearby droplets coalesce into one bigger sphere before capture (higher = merges from farther apart, mimicking a lower-viscosity, cleaner water surface).
- Gravity toggle — switches on a constant downward pull to show the naive Earth-style fix: droplets sink and stick to the floor, forming a pool that is never collected, because the vent only reclaims what airflow carries to it.