IB ESS SL Topic 2 — Ecology Paper 1 & 2 Practical skill ~10 min read

Biomass and Productivity

Biomass is how much living material is there. Productivity is how fast new material is made. Confuse the two and half this topic stops making sense — including why a pond full of almost invisible algae can feed far more fish than it looks capable of feeding.

📚 What you need to know

Gross and net productivity

The one equation to know net productivity = gross productivity − respiratory losses

Think of it as a wage. Gross productivity is what an organism earns; respiration is the tax it cannot avoid; net productivity is what it takes home and can actually spend on growth.

Gross productivity, minus the tax a plant that captures 2 400 kJ and respires 900 kJ GROSS PRODUCTIVITY = 2 400 kJ RESPIRATION = 900 kJ lost as heat, leaves the system NET PRODUCTIVITY = 1 500 kJ stored as biomass, available to consumersHere 1 500 of 2 400 kJ survives, which is 62.5% of GP. In an active animal the red block would be much larger than this.
Only the amber block can ever appear at the next trophic level. Everything in the red block has already left as heat.
Why consumers lose more: a plant stands still. A herbivore walks, chews, digests, escapes predators and, if it is a mammal or bird, holds its body temperature steady. All of that costs respiration, so a bigger share of GP disappears before anything is stored.

Net productivity and sustainable yield

Net productivity is also the answer to a very practical question: how much can we take? If a fish population adds 400 tonnes of new biomass in a year, harvesting 400 tonnes leaves the population exactly where it started. Harvest more and you are eating into the stock itself.

Sustainable harvesting maximum sustainable yield = net productivity of the population

Go beyond it and the population shrinks, next year’s productivity is lower, and the safe harvest falls again. That downward spiral is exactly what happened to several major fisheries in the twentieth century, and it damages livelihoods as well as ecosystems.

Measuring biomass

You cannot weigh a living organism and call it biomass, because most of what you are weighing is water. Biomass means the organic material, so the water has to go first.

🧩 Measuring dry mass

  1. Collect a sample of organisms from one trophic level.
  2. Heat them in an oven at a low temperature, so the sample dries without burning.
  3. Weigh, dry again, weigh again, and repeat until the mass stops changing. That is constant mass, and it means all the water has gone.
  4. Record the dry mass per unit area, for example g m-2.
  5. Scale up to the whole area to estimate total biomass.

Controlled combustion

The second method burns a dried sample and measures the heat it gives off, which tells you how much chemical energy the biomass contained. The equipment is a calorimeter: the burning sample heats a known volume of water, and the temperature rise is the measurement.

A simple calorimeter burn a known dry mass, measure the temperature rise of the water THERMOMETER records the temperature rise WATER volume must be known BURNING DRIED SAMPLE of known dry mass LID cuts heat lost to the air INSULATED CASE keeps the heat insideA bomb calorimeter transfers nearly all the heat to the water, so it is far more accurate.
Every labelled part exists for one reason: to stop heat escaping anywhere except into the water being measured.

Extrapolation from samples

The third method is the one you will meet most in exam questions. Measure the dry mass of a small, manageable sample, then scale it up to the whole area or population. It is the only realistic option for a forest or a large field.

Why these methods have limits

If a question asks how to improve accuracy, two answers nearly always work: dry the sample to constant mass rather than for a fixed time, and reduce heat loss from the calorimeter with a lid, insulation and a draught excluder.

Worked examples

WORKED EXAMPLE

A crop captures 3 600 kJ m² per year and loses 1 450 kJ m² per year to respiration. Calculate its net productivity.

Step 1: write the equation NP = GP − R Step 2: substitute NP = 3 600 − 1 450 NP = 2 150 kJ per m² per year Step 3: say what it means This is the energy stored as new plant biomass, and the maximum that could be harvested each year without reducing the crop. Carry the units through to the answer. Productivity is always per area per time.
WORKED EXAMPLE

A 1 m² sample of meadow grass has a dry mass of 0.35 kg. Estimate the biomass of a 250 m² meadow.

Step 1: state the dry mass per unit area 0.35 kg per m² Step 2: scale up biomass = 0.35 × 250 about 87.5 kg Step 3: note the assumption This assumes the grass grows evenly across the meadow. Taking several samples and using the mean would make the estimate more reliable. Naming the assumption is often worth the final mark on a scaling question.
WORKED EXAMPLE

A fishery has a net productivity of 400 tonnes per year. Explain what happens if 550 tonnes are caught each year.

Step 1: compare with the sustainable yield The maximum sustainable yield equals the net productivity, so 400 tonnes is the safe limit. Step 2: what taking 550 does 550 − 400 = 150 tonnes taken from the existing stock Step 3: the consequence The population falls, so next year fewer fish are left to reproduce, net productivity drops and the sustainable yield falls further. Overexploitation, and a stock that declines year after year Say that the safe limit itself falls. That feedback is what makes overfishing so hard to reverse.

💡 Exam tip

⚠ Common mix-up

Up next: Drawing Ecological Pyramids — pyramids of numbers, biomass and energy, when they turn upside down, and how to draw one that scores full marks.

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