Rivers pour into the sea every day, non-stop. So why doesn't the sea overflow?
― More than a metre of water leaves the sea's surface every year
Rivers all over the world pour water into the sea, day and night, without a break. Yet the sea never overflows. The reason: an invisible amount of water, far more than all the rivers combined, is leaving the sea's surface all the time. And the water in rivers is simply water that left the sea, coming back.
Imagine running a bath and forgetting to turn off the tap. Before long, the water spills over the rim and floods the floor.
The sea has plenty of "taps" of its own. Stand at the mouth of a big river and you'll see brown water pouring endlessly into the sea. It never stops.
If a child asked you, "So why doesn't the sea overflow?", what would you say? "Because the sea is huge" is only half the answer.
Two facts together explain why the sea never overflows
Warmed by the sun, water at the sea's surface turns into vapour and rises into the sky. The amount is more than ten times what all the rivers deliver. The sea has an invisible "drain" that opens straight up into the atmosphere.
Some of the water vapour that rises is carried by wind over land, where it falls as rain or snow. That gathers into rivers and flows back to the sea. Rivers aren't adding new water — they're simply repaying water the sea lent out.
In other words, the sea is a huge container where water in and water out balance exactly. It's like a bath with the tap left running, but the plug is also out, draining water at exactly the same rate. So how much water are we actually talking about?
Over a metre of water leaves the sea's surface every year
Hearing that seawater evaporates might not feel intuitive. Watching the shoreline, the water level never seems to drop.
Researchers have used ship and satellite observations to estimate the movement of water across the whole planet. By their estimates, around 410,000 cubic kilometres of water evaporate from the ocean every year.
Spread that volume evenly over the entire ocean surface, and it comes to a layer about 1.1 metres thick. Every year, the sea sends up into the sky a depth of water taller than an adult's waist. That's about 3 millimetres a day — too slow to notice with the naked eye.
Most of that vapour simply falls back as rain over the ocean itself. Only about a tenth is carried by wind over land. Look at Figure 1: the number for water leaving the sea (upward arrow) exactly matches the numbers for water returning (downward arrow plus the river at bottom right).
What if only river water kept pouring in?
Every year, the world's rivers carry roughly 40,000 cubic kilometres of water into the sea. On its own, that's a huge number. But spread across the whole ocean surface, it amounts to a layer only about 11 centimetres thick.
So what would happen if evaporation stopped dead and only river water kept coming in? In reality the rain would stop too, so the rivers would eventually dry up — but let's run it as a thought experiment. Try moving the slider in Figure 2 to change the number of years.
Eleven metres in 100 years. Most coastal towns would be underwater. The reason that doesn't actually happen is that the 1.1 metres of evaporation each year cancels out both the rivers and the rain. It isn't that the river water is "too little" to matter — it's that exactly as much leaves as comes back.
This balanced ledger also tells us how long it takes for the sea's water to turn over. Evaporating all the water in the ocean would take roughly 3,000-odd years at this rate. The seawater in front of you right now has, on average, made this round trip through the sky and across the land only once every few thousand years.
The Dead Sea in the Middle East is a lake with no outlet. Its water level used to hold steady because the rivers flowing in balanced evaporation. But as people began using up the river water that feeds it, its surface has reportedly been dropping by around a metre a year. The Mediterranean, too, is a sea where evaporation exceeds rainfall and river inflow combined; the shortfall is made up by Atlantic water flowing in through the Strait of Gibraltar. When this strait closed about 6 million years ago, the Mediterranean is thought to have nearly dried up completely.
In recent years, sea level has been rising by roughly 3 to 4 millimetres a year. This isn't because river water has increased. The main causes are meltwater returning to the sea from glaciers and ice sheets stored on land, and seawater expanding slightly as it warms. In ledger terms, water that had been "deposited" on land for a long time is now being withdrawn.
Summary
The sea doesn't overflow because more than a metre of water evaporates from its surface and rises into the sky every year. River water is nothing more than a portion of that vapour, having fallen as rain on land and made its way back. The sea, sky, and land are all tied together by one single water ledger.
Rivers aren't adding water to the sea.
They're just repaying what the sea lent to the sky.
For why the sea is salty, see "Why is seawater salty?", the story of the salt rivers carry. For a sense of how much water Earth has in total, try "If you gathered all of Earth's water into one ball, how big would it be?" too.
- Pour water into a flat plate or shallow container, and mark the water level with a permanent marker. Measure the depth with a ruler too.
- On a sunny day, set it somewhere sunlit, like a balcony, and measure the depth again exactly 24 hours later.
- Multiply the drop in depth by 365 to convert it to a yearly thickness. Compare it with the ocean's figure: about 1.1 metres a year (about 3 mm a day).
Weather, wind, and temperature will change the result a lot. Try measuring on a cloudy day or indoors too, to see how much sunlight and wind speed up evaporation. Keep the container somewhere kids or pets won't knock it over.
Want to know more? ― Terms, formulas, and textbook linksFrom middle-school science to university-level courses — each section states its level clearly
- Middle schoolCovered in middle-school science
- High schoolCovered in high-school Earth Science Basics
- High school+Advanced high-school content, or textbook sidebar material
- UniversityNot covered in high school — university-level content (hydrology, climatology)
- ResearchNot yet settled even at university level — an active research question
Middle schoolTerms: this phenomenon has a name
- Water cycle: the system by which water in the sea and on land keeps circulating, changing form through evaporation, rain, and rivers.
- Evaporation: water turning from liquid to gas (water vapour) at a liquid's surface. It happens constantly, even without boiling.
- Water budget: a ledger-style comparison of the water entering and leaving a given place. If what comes in equals what goes out, the amount stays the same.
Middle schoolHigh schoolCheck with a formula: does the sea's water ledger balance?
Treat the whole ocean as a single container and compare the water entering and leaving it over one year. The figures are approximations based on estimates by Trenberth et al. (Reference 1). Units are cubic kilometres (km³); the symbols are explained in the table below.
| In symbols | ΔV = P + R − E |
| In words | Yearly change in ocean water = rain falling on the ocean + water entering from rivers − water evaporating from the ocean |
| Where it comes from | Water is neither created nor destroyed (conservation of mass). Only the difference between "in" and "out" of the ocean container determines how much accumulates |
| ΔV | Yearly change in ocean water volume (km³) |
| P | Rain and snow falling directly on the ocean per year (km³) |
| R | Water entering from land via rivers and groundwater per year (km³) |
| E | Water evaporating from the sea surface per year (km³) |
| Evaporation from ocean, E | Roughly 413,000 km³ (per year) |
| Rain falling on ocean, P | Roughly 373,000 km³ (per year) |
| Water entering via rivers, R | Roughly 40,000 km³ (per year) |
| Ocean surface area | Roughly 361,000,000 km² |
| Total volume of ocean water | Roughly 1,340,000,000 km³ |
| Water entering ocean (P + R) | 373,000 + 40,000 = 413,000 |
| Yearly change ΔV (inflow − E) | 413,000 − 413,000 = 0 |
| Convert evaporation to surface depth (km) | 413,000 ÷ 361,000,000 ≒ 0.00114 |
| Convert to metres | 0.00114 × 1000 = 1.14 |
| Convert river water alone to depth (km) | 40,000 ÷ 361,000,000 ≒ 0.000111 |
| Convert to metres | 0.000111 × 1000 = 0.111 |
| Years for ocean water to turn over (total ÷ E) | 1,340,000,000 ÷ 413,000 ≒ 3245 |
The difference between inflow and outflow, ΔV, is zero — the amount of ocean water doesn't change. Evaporation amounts to about 1.14 metres a year, river water to about 0.111 metres (11 cm). Evaporation is more than ten times the river total.
| Daily evaporation (mm) | 1140 ÷ 365 ≒ 3.1 |
| If only rivers flowed in for 100 years (m) | 0.111 × 100 = 11.1 |
About 3 mm a day — roughly the same rate of drop you'd measure in the plate-of-water experiment. If only rivers kept flowing in, sea level would work out to rise by about 11 metres over 100 years (matching the right-hand end of Figure 2).
High schoolHigh school+What drives the water cycle: energy from the sun
High schoolIn Earth Science Basics, the water cycle is taught as a flow between "ocean, atmosphere, and land." Water is lifted from the ocean into the sky because energy from the sun warms the sea surface. Water that falls on land returns to the sea as rivers because gravity pulls it downhill.
High school+Evaporating water requires a large amount of heat, called latent heat of evaporation. Roughly half of the solar energy absorbed at Earth's surface is thought to go into this evaporation. The ocean carries heat into the sky riding on water vapour, then releases that heat when the vapour turns back to water inside clouds. The water cycle is also a mechanism for transporting Earth's heat.
UniversityWater budgets and mean residence time
In hydrology, the equation expressing the change in storage for a given region as "precipitation + inflow − evapotranspiration − outflow" is called the water budget equation. Dividing storage by the inflow/outflow rate gives the mean residence time. Seawater's mean residence time is roughly 3,000-odd years, while atmospheric water vapour is said to turn over in just about 9 days. Even within the same water cycle, the timescale varies enormously depending on where the water is stored. The commonly cited figures for the global water budget come from estimates by Trenberth and colleagues, combining observations with reanalysis data.
📖 For the derivation of the formula and further reading: Water cycle (Japanese Wikipedia) / Trenberth et al.'s estimate of the global water budget (2007)
ResearchWhat's still not fully understood
- How accurate are ocean evaporation estimates? Direct observations over the open ocean are scarce, and estimates are said to vary by around 10% between studies. Efforts continue to improve precision using satellite observations.
- Is the water cycle speeding up with global warming? Warmer air can hold more water vapour. Changes in the distribution of ocean salinity have been cited as evidence the cycle is intensifying, but the size of the effect is still debated.
- Did the Mediterranean really dry up? The "Messinian salinity crisis," about 6 million years ago, left a thick layer of salt on the Mediterranean seabed. Whether it dried up completely or left a shallow salt lake behind is still being researched.
In other words, this article too reflects only "what's understood so far." The figures are estimates, and may shift a little as research progresses.
Links to textbooks (by level)
| Level | Subject/Unit | Where in this article |
|---|---|---|
| Middle school | Science, Year 2, "Weather and its changes" (water cycle) | The cycle of evaporation, rain, and rivers (Figure 1) |
| High school | Earth Science Basics, "Atmosphere and ocean" | Solar energy lifting water into the sky |
| High school+ | Earth science/Physics (latent heat and heat transport) | The water cycle as a heat-transport mechanism |
| University | Hydrology/Climatology | Water budget equation and mean residence time |
| Research | Global water cycle observation, paleoceanography | Precision of evaporation estimates, intensifying cycle, Mediterranean drying |
| ― | Everyday connections | Laundry drying, puddles disappearing — the same evaporation |
- Trenberth, K. E. et al. (2007) Estimates of the Global Water Budget and Its Annual Cycle Using Observational and Model Data. Journal of Hydrometeorology 8
- Wikipedia, "水循環" (Water cycle)
- Wikipedia, "メッシニアン塩分危機" (Messinian salinity crisis)
- IPCC (2021) Sixth Assessment Report, Working Group I, Chapter 9, "Ocean, Cryosphere and Sea Level Change"
- National Astronomical Observatory of Japan (ed.), Rika Nenpyō (Chronological Scientific Tables), Maruzen Publishing (figures for Earth's total water volume)
※This article is a general-audience science explainer. The figures given are approximations meant to illustrate the mechanism. Estimates of global water exchange vary somewhat between sources.