K325 / 2027

Lesson 2 of 9 / Organisms and their environment

Why less energy reaches the next level

Why can a food chain not recycle its energy?

In this lesson: Explain one-way energy flow and calculate the efficiency of transfer between trophic levels.

About 5 min

The key ideaEnergy enters mainly as sunlight and leaves as dispersed heat. Only part of the chemical energy at one trophic level becomes biomass at the next.

Biomass is the mass of living biological material. Chemical energy in new biomass is the portion potentially available to the next consumer.

Explore the idea

Account for 1,000 kJ

Energy budget: 12 percent in new consumer biomassThe 1,000 kJ budget is divided into 120 kJ new consumer biomass, 480 kJ respiration: heat dispersed, 250 kJ uneaten material, 150 kJ egested material. All parts add to 1,000 kJ.Energy available at the lower level
  • 120 kJ: New consumer biomass
  • 480 kJ: Respiration: heat dispersed
  • 250 kJ: Uneaten material
  • 150 kJ: Egested material

120 / 1,000 x 100% = 12%. Uneaten and egested material can supply decomposers. Respiration ultimately disperses energy as heat; it is not returned to producers as usable sunlight.

Original alternative budgets for the same area and time. Changing this control compares examples, not a biological prediction. No universal transfer percentage is assumed.

Explanation

Producers capture a fraction of incoming light energy in photosynthesis and store energy in organic molecules. When consumers feed, some of this chemical energy passes along the chain. Producers, consumers and decomposers all respire, ultimately transferring energy to their surroundings as heat.

Not every part of an organism is eaten. Some eaten material cannot be digested and is egested; some absorbed material is used in respiration rather than becoming new biomass. These routes mean that less energy is available as new biomass at each successive trophic level.

Uneaten and egested material can transfer chemical energy into a decomposer food chain. It has not all vanished instantly as heat. Nevertheless, respiration throughout the ecosystem ultimately disperses energy as heat, which cannot be recycled by producers into the same biological pathway.

Calculate transfer efficiency from comparable energy values, using the same area and time period. Divide the energy transferred into new biomass at the next level by the energy available at the previous level, then multiply by 100%. A fixed ten-percent rule is not a universal law; use the supplied data.

Less energy is available for production at each successive trophic level. This limits the length of food chains. It does not mean that counts or standing biomass must decrease at every level: organism size and the rate at which biomass is replaced also affect those measurements.

Step by step
  1. 1

    Identify the two levels

    Use the energy in the lower level as the denominator and the next level as the numerator.

  2. 2

    Calculate a percentage

    Divide next-level energy by previous-level energy, then multiply by 100%.

  3. 3

    Explain the missing transfer

    Distinguish respiration and heat from uneaten, undigested or egested material that may enter decomposer pathways.

Worked example

An original grassland energy budget

Over the same area and year, producers form biomass containing 20,000 kJ and herbivores form biomass containing 2,400 kJ. Calculate transfer efficiency.

One way to explain it

Efficiency = 2,400 / 20,000 x 100% = 12%. The remaining energy does not all become herbivore biomass: some producer material is not eaten, some food is not assimilated, and energy is used in respiration and dispersed as heat.

Why this answer works
  • Use comparable area and time units.
  • Keep the direction of division correct.
  • Explain several routes, rather than assuming all lost transfer is one process.
Is this true? "Decomposers recycle energy back to plants."

Decomposers help recycle matter such as carbon and mineral nutrients. They also respire and transfer energy as heat. Plants require a continuing light energy input.

Try a question

A lower level contains 8,000 kJ and the next level contains 600 kJ of new biomass energy over the same period. What is the transfer efficiency?
You can return to this lesson any time.