IB ESS SL Topic 7 — Natural Resources Paper 1 & 2 Core skill ~13 min read

Using Resources Sustainably

Whether a resource is renewable has almost nothing to do with what it is made of. It depends on a race between two speeds: how fast we take it, and how fast nature puts it back. Win that race and a forest lasts forever. Lose it and the same forest behaves exactly like a lump of coal.

📘 What you need to know

The definition is about speed, not substance

The test that decides everything Renewable: rate of replacement rate of use
Non-renewable: rate of replacement < rate of use

This is why you cannot just memorise a list. A tuna population is renewable when boats take a small share of it each year, and effectively non-renewable when the fleet takes more than the fish can breed back. The label follows the behaviour.

How long nature takes to replace what we take Each step along the line is ten times longer than the one before it. fish stock plantation timber 1 cm of new soil deep groundwater coal and oil metal ores 1 yr 10 100 1 000 10 000 100 000 1 m 10 m 100 m 1 bn back within a human lifetime back on geological time only Soil and groundwater sit in the awkward middle. They do come back, but slowly enough that careless use turns them non-renewable.
Reading a log scale: the gap between coal and a fish stock is not a few times bigger. It is roughly a hundred million times.

Renewable natural capital

Living systems

Forests, wetlands, coral reefs and grasslands regenerate themselves, because they capture solar energy and use photosynthesis to turn it into new biomass. That is the engine that refills the stock.

Non-living systems

The ozone layer is a lovely example to keep in your pocket, because it shows renewable capital recovering in real life once humans stopped overloading it. It answers “can damage be reversed?” with a yes, and a condition attached.

Non-renewable natural capital

These resources are either irreplaceable, or replaced only over geological timescales — periods so long that, for planning purposes, the stock is simply fixed.

ResourceWhy it counts as non-renewable
Fossil fuels (coal, oil, natural gas)Formed over millions of years from the remains of living things. Once extracted and burned, they cannot be replaced within human timescales
UraniumNot a fossil fuel, but reserves are finite and are not replenished on any useful timescale
Minerals and metalsElements dug out of the crust. Rare earths and lithium have finite reserves; once gold and silver reserves are gone, supply has to come from recycling and existing stockpiles
Degraded soilRenewable in principle, but non-renewable in practice once it is lost faster than it forms
Soil deserves its own sentence in your notes. Soil is renewable to a degree, because new soil forms from weathered rock and decaying material. But excessive tilling and deforestation strip it away far faster than that, and urbanisation buries it under concrete, which removes its ability to regenerate at all. Soil is the clearest case of a renewable resource being pushed into the non-renewable box by the way we treat it.

Sustainable yield: how much can you take?

If a stock regrows, there is a harvest you can take year after year without shrinking it. That harvest is the sustainable yield, and it is just the amount the stock grows by.

Sustainable yield sustainable yield = growth of the stock in a year
= (stock at the end of the year) − (stock at the start)

Everything about resource management follows from comparing your harvest with that number. Take less and the stock grows. Take exactly it and the stock holds steady. Take more and you are into the capital, and each year there is less left to grow.

One fish stock, three catch limits Stock in thousands of tonnes. All three fleets start with the same sea. 2 000 t: recovers 3 000 t: balanced 4 000 t: collapse 0 5 10 15 20 0 5 10 15 20 years of fishing at a fixed catch The growth of this stock peaks at about 3 000 tonnes a year.
The difference between the green line and the red line is one extra tonne caught for every two that were safe. Small overshoots are not small.
Look at how quickly the red line falls once it starts. Overexploitation is not a gentle slope, because a smaller stock also breeds more slowly — you lose the harvest and the ability to regrow it at the same time. That feedback is the reason collapsed fisheries so often fail to bounce back even after fishing stops.

Sustainable use in practice

🧩 Three worked examples of sustainable management

  1. Forest management — selective logging rather than clear felling, replanting after harvest, and protecting biodiversity so the ecosystem keeps functioning. The forest keeps supplying timber, other forest products, and its ecosystem services.
  2. Fisheries management — setting catch limits, closing the season while fish are breeding, and creating marine protected areas where no fishing happens at all, so stocks can rebuild and spill over into fished areas.
  3. Renewable energy — using solar, wind and hydroelectric power reduces reliance on fossil fuels, so the energy supply draws on a flow rather than a fixed stock.

And what unsustainable use looks like

Unsustainable useWhat is happeningConsequences
DeforestationLogging and clearance for farmland or infrastructure remove trees faster than they regrowHabitat loss, soil erosion and desertification, and climate change as stored carbon is released
OverfishingCatches exceed the rate at which fish reproduceDepleted stocks, disrupted marine ecosystems, and lost livelihoods in fishing communities
Over-extraction of waterGroundwater is pumped out faster than rainfall recharges the aquiferFreshwater depletion, saltwater intrusion into coastal aquifers, and long-term water scarcity
Notice the pattern. All three follow the same sentence: the rate of use is greater than the rate of replacement. If you can write that line and then explain the specific consequences, you can answer almost any question in this section.

Worked examples

WE 1

Calculate a sustainable yield

An unharvested woodland holds 12 000 tonnes of timber. One year later it holds 12 900 tonnes. Calculate the sustainable yield, and state what happens if 1 200 tonnes are harvested each year. (3 marks)

Step 1: find the yearly growth 12 900 − 12 000 = 900 tonnes per year Step 2: that growth is the sustainable yield Harvesting 900 tonnes a year leaves the stock unchanged at 12 000 tonnes. Step 3: compare with the proposed harvest 1 200 − 900 = 300 tonnes taken from the capital each year, so the woodland shrinks and next year’s growth will be smaller still. Sustainable yield = 900 t per year; 1 200 t per year is unsustainable always show the subtraction, and always give the unit — tonnes per year, not tonnes
WE 2

Explain why soil can be either renewable or non-renewable

Explain why soil may be classified as renewable natural capital in one location and non-renewable in another. (3 marks)

Point 1: the rule being applied A resource is renewable if it is replaced at least as fast as it is used, so the classification depends on rates, not on the material. Point 2: when soil is renewable Under careful farming, new soil forms from weathering and decomposition fast enough to replace what is lost, so fertility is maintained. Point 3: when it is not Excessive tilling and deforestation cause erosion far faster than soil forms, and urbanisation buries it permanently, removing its ability to regenerate. Same resource, two classifications, decided by how it is managed this “it depends on the rate” idea is the single most useful sentence in the whole topic
WE 3

Suggest strategies for a declining fishery

A coastal fishery has seen catches fall for ten years. Suggest three strategies to make the fishery sustainable, and explain how each works. (3 marks)

Strategy 1: catch limits Cap the annual catch below the stock’s growth rate, so the population can rebuild. Strategy 2: closed seasons Ban fishing during the breeding season so adults can spawn before they are caught. Strategy 3: marine protected areas Close part of the sea to fishing entirely; the protected population grows and young fish spread into the fished areas. Bring the rate of use back below the rate of replacement “suggest” wants a strategy plus a mechanism — a bare list of three names is one mark, not three

💡 Exam tips

⚠ Common mix-ups

Up next: Resource Security and the Choices Behind It. Sustainability tells you what a society should do. The last page in this section deals with why different societies, facing the same facts, choose completely different things.

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