IB ESS SL Topic 4 — Water Systems Paper 1 & 2 Core skill ~11 min read

How Humans Change the Water Cycle

We cannot add water to the planet or take any away. What we can do is change the route it takes — and we do, constantly. Nearly every human impact in this sub-topic comes down to shifting the balance between two flows: how much water soaks into the ground, and how much runs across the top of it.

📚 What you need to know

Irrigation and agriculture

Irrigation is the artificial supply of water to crops. It directly changes where water is and how much is available in a region, which is the point — but it has knock-on effects.

Deforestation

Forests behave like sponges. They intercept rain on leaves and branches, slow it down, and give it time to soak in. Remove them and that whole buffer disappears.

Deforestation gives you the worst of both worlds: too much water all at once when it rains, and too little in the dry season, because nothing was stored underground in between.

Urbanisation

Urbanisation converts natural landscapes into buildings, roads and drains. Concrete and asphalt are impermeable: water simply cannot get through them.

SAME RAIN, TWO DIFFERENT ROUTES Arrow thickness shows how much water takes each path. NATURAL FOREST BUILT-UP CITY high evapotranspiration less evapotranspiration little run-off fast, heavy run-off rain soaks in and recharges groundwater almost no infiltration, so no recharge The rainfall is identical. Only the route has changed.
The thin red arrow on the left is why a wooded valley rarely floods after a storm. The thick one on the right is why a city with the same rainfall does.
ActivityInfiltrationSurface run-offOther effects
IrrigationFalls if water is applied faster than the soil absorbs itRises when soil is oversaturatedHigher evapotranspiration, more rain downwind, fertiliser and pesticide carried into rivers
DeforestationFalls — no canopy to slow the rainRises sharplyLess evapotranspiration, more erosion, less groundwater recharge, altered stream flow
UrbanisationFalls close to zero on paved areasRises, and arrives much fasterFlooding, drains overloading rivers, urban heat island raising evaporation

Steady state: inputs versus outputs

To work out whether a lake, river or aquifer is in trouble, you do not need anything clever — you add up what goes in and what comes out.

The rule for every water body inputs = outputs → steady state  •  outputs > inputs → water deficit, the store shrinks

Typical inputs are precipitation falling straight onto the water body, surface run-off flowing in over the land, river inflow, and groundwater inflow from underground. Typical outputs are evaporation, river outflow, groundwater outflow into aquifers, and water extracted by people for irrigation, industry or homes.

A LAKE IN STEADY STATE Water is moving constantly, but the total stays the same. river inflow 70 precipitation 25 groundwater inflow 35 surface run-off 20 river outflow 75 evaporation 35 groundwater outflow 25 taken for irrigation 15 LAKE steady state level stays the same INPUTS = 150 units OUTPUTS = 150 units
The 15 units taken for irrigation are sustainable here, because the total still balances. Push that figure much higher without anything else changing and the lake starts to shrink.
AN AQUIFER BEING OVER-EXTRACTED More is leaving than arriving, so the store is shrinking every year. rainfall infiltration 60 seepage from rivers 30 spring discharge 20 flow out to the sea 25 pumped out for towns and farms 95 AQUIFER deficit of 50 units water table falls INPUTS = 90 units OUTPUTS = 140 units
Aquifers make this easy to miss, because nothing looks different from the surface. The only visible sign is that wells have to be drilled deeper each year.

Sustainable water harvesting

Sustainable harvesting means taking water from a store at a rate that does not exceed the rate of natural replenishment. Adding up all the inputs and outputs is how you work out what that safe rate actually is, so that extraction does not break the steady state.

For groundwater in particular, extraction has to be balanced against the recharge rate. Recharge is slow — water has to infiltrate and percolate down through soil and rock — which is exactly why deforestation and urbanisation make over-extraction worse. They cut off the recharge at the same time as demand is rising.

Link the two halves of this page. Concrete reduces infiltration, which reduces recharge, which reduces the sustainable extraction rate. The city then pumps more, not less. That connection is worth a mark in almost any extended answer here.

Worked examples

EXAM Q1

A reservoir receives 45 units from rainfall, 60 from river inflow and 15 from run-off. It loses 40 to evaporation, 50 to river outflow and 40 to extraction. Is it in steady state? [3]

Step 1: total the inputs 45 + 60 + 15 = 120 units Step 2: total the outputs 40 + 50 + 40 = 130 units Step 3: compare Outputs exceed inputs by 10 units, so the reservoir is losing water. Not in steady state — a deficit of 10 units, so the level will fall show both totals; the marks are for the working, not just the verdict
EXAM Q2

Explain why flooding is more likely in an urban area than in a forested one with the same rainfall. [4]

Point 1: impermeable surfaces Concrete and asphalt prevent infiltration, so rain cannot soak away. Point 2: run-off increases Almost all the rainfall becomes surface run-off instead. Point 3: it arrives faster Drains are built to remove water quickly, so a large volume reaches rivers in a short time. Point 4: contrast with the forest A canopy intercepts and slows rainfall, and soil absorbs it, so water reaches the river slowly and over a longer period. Less infiltration plus faster run-off means rivers are overwhelmed the comparison marks need you to actually describe the forest, not just the city
EXAM Q3

Suggest two ways a city could reduce its impact on the hydrological cycle. [2]

Idea 1: restore infiltration Use permeable paving, green roofs and parks so rain can soak in and recharge groundwater. Idea 2: slow the water down Build retention ponds or wetlands that hold storm water and release it gradually. Both work by putting back what the concrete removed: infiltration and delay “suggest” wants sensible applied ideas — justify each one briefly

💡 Exam tip

⚠ Common mix-up

Up next: What Decides Who Gets Water — why two places with the same rainfall can have completely different water situations.

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