Rather than just animating evaporation → condensation → precipitation → runoff as a
loop, this lab treats the water cycle as a stock-and-flow system:
each reservoir (ocean, atmosphere, cloud, land surface, groundwater) holds a stock of
water particles, and fluxes move particles between reservoirs. Residence time
τ = S / F — stock divided by flux — falls straight out of that bookkeeping,
and the panel computes it live for the atmosphere as particles move through it.
es(T) = 6.1094 · exp(17.625T / (T + 243.04)) — the same Magnus-form approximation meteorologists use — so warmer water evaporates measurably faster, not linearly faster.Earth's atmosphere holds only about 12,900 km³ of water at any instant, yet roughly 505,000 km³ pass through it every year as evaporation and precipitation — giving a real residence time of about 9 days. The deep ocean, by contrast, turns over on a timescale of millennia, simply because its stock is so much larger relative to its flux.
A 3D stock-and-flow model of the water cycle: water molecules evaporate from the ocean at a rate set by the Clausius-Clapeyron relation, condense into clouds that fill toward a saturation threshold, rain out, then either run off across the land or infiltrate into groundwater before slowly re-emerging.
Residence time τ = stock ÷ flux for each reservoir. Watch how a hotter ocean raises the evaporation flux and shortens the atmosphere's turnover, while a higher saturation threshold lets clouds hold more water before precipitating.
Adjust sea-surface temperature, wind speed, cloud saturation threshold, and soil infiltration fraction. Watch the live reservoir stocks and the computed atmosphere residence time respond in real time.
Earth's real atmosphere holds only about 12,900 km³ of water yet cycles roughly 505,000 km³ through it every year — an average residence time of just 9 days, versus millennia for the deep ocean.