IB ESS HL Topic 2 — Ecology Paper 1 & 2 HL only ~9 min read

Measuring Ecological Efficiency

You already know energy transfer is inefficient. This page puts a number on it. One equation, a couple of unit traps, and one honest caveat: the famous 10% figure is a rough guide, not a law.

📘 What you need to know

The equation

Ecological efficiency efficiency (%) = (energy used for new biomass ÷ energy supplied) × 100
How little becomes new biomass The green sliver is what the next level can eat energy supplied to the consumer used for new biomass lost as heat, faeces and urine efficiency = (biomass / supplied) x 100 Efficiency is the share that becomes new biomass Values vary widely – ten per cent is only a rough guide
The bar is drawn to scale for a real example: a toad turning 700 of 11 000 kJ into new tissue. That green sliver is what a predator eating the toad has to live on.

Why so much is lost

When a consumer ingests another organism, only a small share of the chemical energy in its food ends up as consumer biomass. The reasons are the ones you met earlier, now grouped as the four standard losses:

Whatever survives all four is available to fuel life functions and be stored as biomass during growth — and only that stored portion can be passed upwards.

Why chains stay short. Eventually the energy remaining is insufficient to support another trophic level. That is why most terrestrial ecosystems cannot support more than about five levels.

The 10% figure, honestly

Ecological efficiency is defined as the percentage of energy received by one trophic level that is passed on to the next. The number varies a great deal between ecosystems, trophic levels and species — the commonly used 10% is not a fixed amount and not a true average. It is a convenient teaching figure.

Real measured values regularly come out anywhere from around 1% to over 20%. Cold-blooded animals tend to be more efficient than warm-blooded ones, because they do not spend energy maintaining a constant body temperature.

If a question gives you real data, use the data. Quoting “10%” when the numbers in front of you say 6.4% is one of the easiest marks to throw away in this whole topic.
WORKED EXAMPLE

A caterpillar consumes blackberries containing 42 J of energy on its first day. Of this, 5.6 J is used to form new caterpillar biomass. Calculate the ecological efficiency of this step.

Step 1: Check the units match Both figures are in joules, so no conversion is needed Step 2: Substitute into the equation efficiency = (5.6 ÷ 42) × 100 Step 3: Calculate = 0.1333 × 100 13.3%
WORKED EXAMPLE

Toads introduced to control insect pests ingest 11 000 kJ m−2 yr−1. They lose 7 500 as heat from respiration and 2 800 in faeces and urine. Calculate the ecological efficiency of the transfer from insects to toads.

Step 1: Add the losses 7 500 + 2 800 = 10 300 kJ m−² yr−¹ Step 2: Find the energy used for growth 11 000 − 10 300 = 700 kJ m−² yr−¹ Step 3: Substitute into the equation efficiency = (700 ÷ 11 000) × 100 = 6.36 6.4% Well below 10% – always use the data you are given
WORKED EXAMPLE

Producers in a grassland have an NPP of 9 000 kJ m−2 yr−1. The primary consumers store 810 kJ m−2 yr−1. If efficiency stays the same, estimate the energy stored by secondary consumers.

Step 1: Find the efficiency of the first transfer (810 ÷ 9 000) × 100 = 9% Step 2: Apply the same efficiency again 810 × 0.09 = 72.9 About 72.9 kJ m−² yr−¹ Say “estimate” – efficiency rarely stays identical between levels

💡 Exam tip

⚠ Common mix-up

Up next: Nutrient Cycles in Ecosystems — moving from energy to matter, and the stores, sinks and sources that carry it round.

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