IB ESS HL Topic 2 — Ecology Paper 1 & 2 HL only ~10 min read

Life Cycles and Survivorship Curves

Species solve the problem of staying alive in two very different ways. Some flood the world with offspring and abandon them. Others have one at a time and look after it for years. Neither is better — each suits a different kind of environment, and each produces a recognisable shape on a survivorship graph.

📚 What you need to know

Two strategies, two environments

The logic is simple once you see it. In an unpredictable place — a puddle, a fresh landslide, a ploughed field — the winning move is to breed fast and get lots of offspring out before conditions change. In a crowded, stable place, offspring have to compete from birth, so it pays to produce a few well-prepared ones instead.

Two ways to stay in the game the strategy matches the environment, not the size of the animal r-STRATEGIST • many offspring at once • little or no parental care • short life, fast breeding • numbers swing wildly flies, dandelions, bacteria K-STRATEGIST • few offspring at a time • a lot of parental care • long life, slow breeding • numbers stay near K elephants, oaks, whales r is for rapid growth. K is for the carrying capacity they live close to. Most species sit somewhere between the two extremes.
Treat this as a sliding scale rather than two boxes. A rabbit is more r than an elephant but far more K than a housefly.
Featurer-strategistK-strategist
Number of offspringVery manyFew
Parental careLittle or noneHigh, often for years
LifespanShortLong
Population patternFluctuates rapidly; often a J-curveStable near carrying capacity; an S-curve
Best suited toUnstable, unpredictable habitatsStable, mature habitats
Role in successionEarly colonisers of bare groundDominant in the later, mature stages
Succession link worth remembering: after a fire or a landslide, r-strategists arrive first because they get there fast and breed fast. As conditions become stable and competition increases, K-strategists take over.

Survivorship curves

A survivorship curve answers one question: out of a group born at the same time, how many are still alive at each age? The y-axis is usually a log scale, which is what makes the three shapes so easy to tell apart.

The three survivorship curves survivors from a starting group of 1000, on a log scale 1000 100 10 1 SURVIVORS PERCENTAGE OF MAXIMUM LIFESPAN TYPE I TYPE II TYPE III Type I is K-strategist shaped. Type III is r-strategist shaped. A straight line on a log scale means the same proportion dies at every age.
Read the steep part of each curve. Where the line falls fastest is the stage of life at which most individuals are dying.
CurveShapeWhat it meansExamples
Type IFlat, then a sharp fall at the endVery low death rate when young; most individuals reach old ageHumans, elephants, large mammals
Type IIStraight diagonal lineThe same proportion dies in every age bandMany small birds, some lizards, hydra
Type IIISteep drop, then almost flatEnormous losses among the young; the few that survive live a long timeOysters, most fish, oak trees

How humans disrupt life cycles

Life cycles are usually timed to the seasons. Anything that shifts the timing, or removes the place a species needs at one stage of its life, causes trouble — even if the species itself is untouched.

Human impactEffect on the life cycleExample
Climate changeWarmer springs shift flowering, hatching and migration, so events that used to line up no longer match.Caterpillars hatch earlier, so migrating birds arrive after the food peak has passed and raise fewer chicks.
Habitat destructionRemoves the specific site a species needs for one stage of its life.Developed beaches leave sea turtles nowhere to nest; drained wetlands leave frogs nowhere to breed.
PollutionDamages health directly or removes the food supply.Pesticides reduce insect numbers, cutting food for birds and bats and harming bee foraging and reproduction.
The idea examiners look for: many life cycles are synchronised with the seasons. Climate change shifts different species by different amounts, which breaks the synchrony — and that mismatch, not the temperature itself, is what causes the population to fall.

Worked examples

WORKED EXAMPLE

Reading a survivorship curve

A survivorship curve for a fish species starts at 10 000 eggs. Only 40 individuals are alive at 10% of maximum lifespan, but 25 are still alive at 80%. Identify the curve type and explain what it tells you about the species’ strategy. [4]

Step 1: describe the shape 10 000 down to 40 is a huge early loss, then almost flat to 25 Step 2: name the type Type III Step 3: link to strategy huge numbers of offspring with no parental care, so most die as eggs or young an r-strategist: survival depends on numbers, not on care quote the numbers from the question — that is where the description marks are
WORKED EXAMPLE

Explaining a timing mismatch

Explain how warmer springs could reduce the breeding success of a migratory bird, even though the birds themselves are not harmed by the warmth. [4]

Step 1: what the bird depends on it times its migration to arrive when caterpillar numbers peak Step 2: what warming changes warmer springs make caterpillars hatch earlier than usual Step 3: why the bird cannot follow migration is triggered by day length, which does not change with temperature Step 4: the consequence the chicks hatch after the food peak, so fewer survive and breeding success falls the mark is for the mismatch in timing, not for “it gets too hot”

💡 Exam tip

⚠ Common mix-up

Up next: Energy and Biomass in Ecosystems — having covered who lives where and how many there are, the next topic follows the energy that keeps them all going.

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