IB ESS SL Topic 2 — Ecology Paper 1 & 2 Core idea ~10 min read

What Controls Population Size

No population grows for ever. Something always pushes back: the weather, the soil, a predator, a disease, or simply too many neighbours wanting the same meal. This page is about those pushes — which ones are living, which are not, and how they combine to set the number of individuals an area can hold.

📚 What you need to know

Abiotic factors: the conditions

Abiotic factors decide where a species can live at all. Get below a plant’s minimum temperature or outside a fish’s salinity range and no amount of food will help.

Abiotic factor What it changes How it is measured
Temperature Rate of photosynthesis, growth and reproduction. Most species survive only inside a narrow band. Thermometer or temperature probe
Light More light usually means faster photosynthesis and faster plant growth. Light meter
pH Controls which nutrients dissolve and are available to roots; too far either way and species die out. pH meter or probe
Salinity Decides which aquatic organisms can control their water balance and survive. Conductivity meter
Dissolved oxygen Low oxygen kills fish and invertebrates; a classic sign of polluted water. Oxygen probe
Soil texture and moisture Controls how much water and air the soil holds and how easily roots push through. Sieving, drying and weighing samples
If an exam question asks how you would investigate why a plant grows on one side of a field and not the other, name the abiotic factor and the instrument. “Measure light with a light meter at each quadrat” scores; “check the conditions” does not.

Niche: the job, not the address

A habitat is where a species lives. A niche is everything about how it lives there — what it eats, when it is active, where exactly it feeds and shelters, which conditions it tolerates.

Definition niche = the conditions a species needs + the role it plays in the ecosystem

Here is the important consequence. If two species try to occupy exactly the same niche, they are competing for exactly the same things. One will be slightly better at it, and over time the other is pushed out, forced into a slightly different niche, or lost from the area altogether. That is why, in a healthy ecosystem, species that look like rivals usually turn out to be doing subtly different jobs.

One mudflat, three niches the birds share a habitat but feed at different depths shallow water mud SHORT BILL picks food off the surface MEDIUM BILL probes the middle layer LONG BILL reaches the deepest worms Different niches mean the three species can live side by side. If their bills were identical, one would slowly out-compete the others.
This is niche separation. It looks like sharing, but each species has quietly specialised so that direct competition is avoided.

The six ways populations interact

Interaction What happens Who gains
Herbivory An animal eats a plant. More plants means a higher carrying capacity for the herbivore. Herbivore gains, plant loses
Predation One animal hunts and eats another, lowering the carrying capacity of the prey. Predator gains, prey loses
Parasitism A parasite lives on or in a host, taking food and shelter and often carrying disease. Parasite gains, host loses
Mutualism Both species benefit, so the carrying capacity of both goes up. Bees get nectar, flowers get pollinated. Both gain
Disease Pathogens spread through a population and raise the death rate, lowering carrying capacity. Pathogen gains, host loses
Competition Two individuals or species need the same limited resource, so both get less of it. Both lose out

Competition comes in two flavours

Remember it by the prefix. “Intra” means inside, as in intranet — inside one species. “Inter” means between, as in international — between species.

Predator and prey: linked cycles

In a stable community, predator and prey numbers do not sit still. They cycle, and the two cycles are locked together with a delay. Follow the loop:

🧩 The predator–prey loop

  1. Plenty of prey, so predators find food easily and predator numbers rise.
  2. More predators eating, so prey numbers fall.
  3. Less prey to catch, so predators starve and predator numbers fall.
  4. Fewer predators hunting, so prey numbers recover and the loop starts again.
Predator and prey cycles the two curves rise and fall together, but out of step population time prey peaks first predator peak follows prey predator The predator curve always lags behind the prey curve. Predators can only increase after their food has already increased.
Notice the predator curve is also flatter. It takes many prey animals to support one predator, so predator numbers are always lower.
The lag is the whole answer to most exam questions on this graph. Predators cannot breed on food they have not eaten yet, so their rise comes after the prey rise, never at the same time and never before it.

Introduced species: competition at its most obvious

When a species arrives somewhere new, the local species have not evolved alongside it. Two things often follow. The newcomer may be better at using a shared resource, out-competing the native species until too few are left to breed. It may also carry a pathogen the native species has no resistance to. Grey squirrels in Britain did both to red squirrels; introduced foxes in Australia did the first to small native mammals.

Worked examples

WORKED EXAMPLE

Two beetle species were grown separately and then together. Explain the results.

Grown alone in identical jars of flour, species A reached 480 individuals and species B reached 450. Grown together in one jar, species A reached 390 and species B fell to zero by week 14.

Step 1: name the interaction Interspecific competition — two different species needing the same limited resource (flour and space). Step 2: explain the outcome Their niches overlap almost completely. Species A uses the resource more efficiently, so it takes a larger share. Step 3: explain the zero Species B gets too little food to breed successfully, so its numbers fall until none are left. Species A out-competes species B Note that species A also ends up lower than 480 — competition costs the winner as well.
WORKED EXAMPLE

On a predator–prey graph the prey peak occurs in year 4 and the predator peak in year 6. Explain the two-year gap.

Step 1: start with the cause More prey means more food available to predators. Step 2: give the delay a reason Predators need time to feed well, breed and raise young before their numbers actually rise, so the increase shows up later. Step 3: close the loop By year 6 the extra predators are eating heavily, prey numbers are already falling, and the predator peak then falls too. The predator peak must follow the prey peak Always answer in the order cause, delay, consequence. That is how the marks are written.
WORKED EXAMPLE

State whether each example is intraspecific or interspecific competition.

(a) Two male deer fighting over territory. (b) Ivy and a young oak competing for light. (c) Seedlings of the same wildflower growing so densely that most die.

(a) same species intraspecific (b) different species interspecific (c) same species, and made worse by density intraspecific Part (c) is also a density-dependent factor — the next page picks that idea up.

💡 Exam tip

⚠ Common mix-up

Up next: Patterns of Population Growth — carrying capacity, J-curves, S-curves and the negative feedback that keeps a population near its limit.

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