IB Biology HL Ecosystem Stability & Change Paper 1 & 2 ~9 min read

Eutrophication

There is something odd about eutrophication that catches people out every year: it starts with more nutrients, more growth and more life, and ends with a lake that nothing can live in. Getting the marks depends on being able to explain that turn.

📚 What you need to know

Where the nutrients come from

When lakes, rivers, estuaries and coastal waters receive artificially large inputs of nutrients – typically nitrates and phosphates – the result is excess growth of plants and phytoplankton such as algae.

The usual source is the one from the previous page: mineral ions from excess fertilisers leaching from farmland into waterways. The fertiliser was intended to increase plant growth in a field, and that is precisely what it does when it arrives in a lake. The problem is not that it stops working. The problem is that it keeps working, in the wrong place.

The sequence, step by step

Eutrophication questions are almost always asking for this chain in order. Learn it as six steps and you will not lose your place.

Six steps from a fertilised field to a dead lake Follow the numbers. The turn happens between steps 2 and 3. 1 NUTRIENTS ENTER nitrates and phosphates leach from farmland into the water 2 ALGAL BLOOM algae and phytoplankton grow rapidly across the surface 3 LIGHT IS BLOCKED sunlight cannot penetrate below the surface layer 4 PLANTS DIE submerged plants can no longer photosynthesise 5 DECOMPOSERS MULTIPLY bacteria feed on dead matter and respire aerobically 6 DEAD ZONE dissolved oxygen falls, so fish and insects cannot surviveThe oxygen is not used up by the algae. It is used up by the bacteria that eat them. Miss that out and the chain has a hole in the middle of it.
Steps 5 and 6 are where most marks are won and lost. The oxygen loss is a respiration problem, not a photosynthesis problem.

The steps in words

The excess nutrients cause a huge growth of algae, known as an algal bloom. This bloom sits across the water surface and blocks out sunlight, stopping it penetrating below. Aquatic plants below the surface therefore start to die, because they can no longer photosynthesise. The algae themselves also begin to die once competition for nutrients becomes too intense.

As aquatic plants and algae die in increasing numbers, decomposing bacteria feed on the dead organic matter and increase in number as well. Those bacteria respire aerobically, and in doing so they use up the dissolved oxygen in the water.

The term to use The respiring bacteria create an increased biochemical oxygen demand, or BOD – a measure of how much dissolved oxygen the organisms in the water are consuming.

As a result the availability of dissolved oxygen rapidly decreases, and aquatic organisms such as fish and insects may be unable to survive. Where there is not enough oxygen to support aquatic life, the area is called a dead zone. Dead zones occur in both oceans and freshwater.

The oxygen crashes after the algae do, not before There is a lag, and the lag is the decomposers doing their work. oxygen level fish need high low time algal population dissolved oxygen
Once the blue line drops below the dashed one, the fish and insects go. That region is the dead zone.
A question that gives you a graph like this often asks why the oxygen falls after the algal population has already peaked. The answer is the lag: the oxygen is consumed by decomposers respiring on the dead algae, so the crash cannot happen until there is a large mass of dead material to decompose.
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Two deaths, in order

The plants below die first, from lack of light. Then the algae die, from competition for nutrients. Both lots of dead material feed the bacteria, and it is the bacteria that take the oxygen. Three groups, three fates, one chain.

Worked examples

WE 1

Outline the process

Outline how the leaching of fertiliser from farmland can lead to the death of fish in a nearby lake. (5 marks)

Point 1: the input Nitrates and phosphates leach from the farmland into the lake, giving an artificially large input of nutrients. Point 2: the bloom This causes excess growth of algae and phytoplankton – an algal bloom. Point 3: light The bloom blocks sunlight from penetrating below the surface, so submerged plants cannot photosynthesise and die. Point 4: decomposers Decomposing bacteria feed on the dead plants and algae and increase in number, respiring aerobically and using up dissolved oxygen. Point 5: the outcome Dissolved oxygen falls rapidly, so fish are unable to survive. Nutrients, bloom, no light, decay, no oxygen five marks means five distinct steps – do not merge the bloom and the light-blocking into one
WE 2

Explain a term

Explain what is meant by biochemical oxygen demand, and why it increases during eutrophication. (3 marks)

Point 1: the meaning BOD is a measure of the amount of dissolved oxygen consumed by the organisms in a body of water. Point 2: why it rises Large numbers of plants and algae die, providing dead organic matter for decomposing bacteria. Point 3: the mechanism These bacteria increase in number and respire aerobically, so the demand for dissolved oxygen rises sharply. More dead matter means more bacteria means more respiration BOD is about oxygen being used, not about oxygen being present
WE 3

Interpret a graph

A graph shows the algal population in a lake peaking in June, while dissolved oxygen concentration reaches its minimum in August. Explain this time difference. (3 marks)

Point 1: what the peak means The June peak is the maximum algal population, when the bloom is at its largest. Point 2: the delay Oxygen is not consumed by the algae themselves but by decomposing bacteria feeding on the algae and plants after they die. Point 3: the mechanism A large mass of dead material only accumulates after the bloom collapses, so the bacterial population and their aerobic respiration peak later, giving the August minimum. The oxygen crash follows the dead material, not the living algae this is the single most common data-question on eutrophication – learn the lag

💡 Exam tips

⚠ Common mistakes

Up next: The Effects of Pollution – a different way for a pollutant to do damage, in which the substance does not have to be present in large amounts at all.

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