IB ESS SL Topic 2 — Zonation, Succession & Change Paper 1 & 2 Practical skill ~10 min read

Zonation Along Environmental Gradients

Walk from the top of a rocky beach down to the water and the life changes in bands you can actually see: lichen, then barnacles, then seaweed, then anemones. Nothing organised those bands on purpose. They appear because the conditions change gradually as you walk, and each species can only tolerate part of that range.

📚 What you need to know

What zonation actually is

Zonation is the gradual change in the mix of species you find as you move across a landscape, driven by a gradient in one or more environmental factors. Because the change in conditions is continuous, but each species has limits it cannot cross, what you end up seeing is a series of bands.

One sentence definition zonation = the change in species composition across space, along a gradient of environmental factors

Gradients that produce visible zonation include:

Both halves matter. Abiotic factors set the outer limits of where a species could live. Biotic factors such as competition and predation then decide where it actually lives. That is why the boundaries between zones are often sharper than the change in conditions.

The rocky shore: zonation you can see

On a rocky shore the master factor is how long each patch of rock spends out of the water. That single gradient runs from the high tide mark to the low tide mark and produces bands you can pick out from a distance.

ZONATION ON A ROCKY SHORE One gradient: time spent out of the water. Four bands of life. SPRAY HIGH TIDE MIDDLE TIDE LOW TIDE high water mark low water mark lichens and rock lice dry, exposed to air and sun nearly all day barnacles, mussels, limpets, chitons grip the rock and shut tight at low tide sea lettuce, rock weed, hermit crabs covered and uncovered twice a day sea stars, anemones, sea urchins need to stay wet, so rarely exposed Drying out at the top, competition for space at the bottom.
The top of the shore is limited by physical stress — drying out. The bottom is limited by biology — competition and predation. That is why the upper limit of a species is usually set by abiotic factors and the lower limit by biotic ones.
If you can only remember one shore fact, remember that one: top of the shore, the sun kills you; bottom of the shore, your neighbours do.

Zonation is not succession

These two get mixed up in almost every class. The difference is simple once you see it written down.

QuestionZonationSuccession
Change over what?Space — distance across a landscapeTime — years or centuries in one place
What causes it?An existing environmental gradientThe community changing its own environment
What you seeBands existing side by side, all at onceOne community replacing another, one after the other
Typical exampleBands up a rocky shore or a mountainBare rock becoming forest
How you study itA transect across the gradientRepeat surveys, or comparing sites of different ages

Measuring zonation: transects and quadrats

A transect is a line laid across the gradient. You sample along it so that your data follow the change in conditions instead of ignoring it.

🧩 Method: investigating a species along a gradient

  1. Lay the transect along the gradient, not across it — for example a 30 m tape running straight up a hillside from the path.
  2. Place a quadrat at equal intervals, say every 5 m, so the sampling is systematic rather than random. Zonation questions need systematic sampling, because you want the pattern, not an unbiased average.
  3. Record the biotic data in each quadrat: the number of individuals, or percentage cover if the species is hard to count.
  4. Record an abiotic factor at the same points — altitude, soil moisture, pH, light. Without this you can describe a pattern but not explain it.
  5. Repeat with several transects across the site, so your result is not a fluke of one line.
  6. Plot and describe. Abiotic factor on the x-axis (independent), species count on the y-axis (dependent).
RESULTS FROM A HILLSIDE BELT TRANSECT Seven quadrats, 5 m apart, counting one plant species. 0 20 40 60 80 plants counted per quadrat 0 4 8 12 16 20 24 altitude above the path (m) best fit slopes down: a negative relationship
Describing this in an exam: as altitude increases, the number of plants decreases. Then explain it — higher up is colder, windier and the soil is thinner, so fewer individuals can survive.

Kite diagrams

A scatter graph handles one species at a time. A kite diagram shows several species along the same transect at once, so you can see how their zones overlap.

A KITE DIAGRAM ACROSS A SAND DUNE SYSTEM The wider the kite, the more cover that species has at that point. Three species, one transect, zones that overlap at the edges. marram grass sea couch brambles 0 10 20 30 40 distance from the high water mark (m)
Read it as three zones with fuzzy edges: marram holds the bare, salty sand nearest the sea, sea couch takes the middle, and brambles dominate the sheltered end where soil has built up.

Worked examples

EXAM Q1

Explain why distinct zones of organisms are found on a rocky shore. [4]

Point 1: name the gradient Moving up the shore, the time spent out of the water increases. Point 2: abiotic effect Higher up means more drying out, bigger temperature swings and more exposure to sun and air. Point 3: tolerance ranges Each species survives only part of that range, so it is limited to a band. Point 4: biotic effect Lower down, competition for space and predation set the limit instead. A gradient plus different tolerance ranges gives visible bands “explain” means say why the band exists, not just list what lives in it
EXAM Q2

Describe the relationship shown in the hillside transect graph above. [2]

Step 1: state the direction As altitude increases, the number of plants per quadrat decreases. Step 2: quote data as support The count falls from about 78 at 3 m to about 11 at 21 m. A negative relationship, supported with figures from the graph “describe” wants the pattern plus data; save the reasons for “explain”
EXAM Q3

Outline how you would investigate whether soil moisture affects the distribution of a plant near a pond. [3]

Step 1: set up the transect Run a tape from the water’s edge outwards, along the moisture gradient. Step 2: sample systematically Place a quadrat every 2 m; record percentage cover of the plant and soil moisture at each point. Step 3: repeat and plot Repeat along several transects, then plot moisture against cover and describe the relationship. Transect along the gradient, quadrats at set intervals, both variables recorded together measuring the abiotic factor is the mark most people drop

💡 Exam tip

⚠ Common mix-up

Up next: Succession and How Communities Change — the same idea, but with time as the gradient instead of distance.

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