Energy transfer: use production and a stated boundary
| English | Français |
|---|---|
| trophic transfer efficiency/ˈtrəʊfɪk ˈtrænsfɜː ɪˈfɪʃənsi/ | trophic transfer efficiency |
| assimilation/əˌsɪmɪˈleɪʃn/ | assimilation |
What would explain this observation?
- Energy available as new biomass usually decreases along a food chain. Energy is conserved overall, but some transferred energy leaves the next-level production pathway.
- Start with a prediction. State the quantities or features you would compare, then decide what evidence could distinguish two explanations.
Build the model
- Producers convert an energy input into chemical energy in organic material. Consumers obtain material by feeding. Trophic transfer efficiency 营养级传递效率 compares production available at one level with production at the preceding level over a common area and time. Energy can enter detrital pathways, remain in uneaten material, leave in egested waste or be transferred as heat through respiration.
- trophic transfer efficiency: Production at one trophic level divided by production at the preceding level over a common interval; assimilation 同化: Uptake of digested material into an organism’s usable internal pool.
Which pair can be used for the stated transfer-efficiency calculation?
Use the same energy units and period in numerator and denominator. Distinguish ingestion, assimilation and production: consumed energy is not all assimilated, and assimilated energy is not all stored as new biomass. An energy pyramid records a flow per area per time; a standing biomass snapshot is a different quantity.
Match each technical term to its precise meaning.
Use the definitions to distinguish related quantities and processes.
Choose evidence that can test it
- Use the same energy units and period in numerator and denominator. Distinguish ingestion, assimilation and production: consumed energy is not all assimilated, and assimilated energy is not all stored as new biomass. An energy pyramid records a flow per area per time; a standing biomass snapshot is a different quantity.
- Analyse attributed or fictional ecosystem budget data. Draw a boundary and arrows for feeding, detritus and heat transfer. Identify which values are measured and which inferred, and check whether the budget includes decomposers. Avoid treating a fixed 10% rule as a universal measurement for every ecosystem.
Which two habits make the investigation or model in this case more defensible?
Analyse attributed or fictional ecosystem budget data. Draw a boundary and arrows for feeding, detritus and heat transfer. Identify which values are measured and which inferred, and check whether the budget includes decomposers. Avoid treating a fixed 10% rule as a universal measurement for every ecosystem.
Work from known quantities
- State the known values and their units. Choose the relation because its assumptions fit this case, then rearrange before substitution.
- Known: producer production is 10,000 kJ/m²/year and primary-consumer production is 1,200 kJ/m²/year. Transfer efficiency is 1,200/10,000×100=12%. Secondary-consumer production of 180 kJ/m²/year gives 180/1,200×100=15% for that step. These different values show why a universal 10% assumption would misrepresent this dataset.
Producer production is 8,000 and primary-consumer production is 800 kJ/m²/year. Calculate transfer efficiency. Use the same sequence: known quantities → model → relation → substitution → unit and interpretation.
Producer production is 8,000 and primary-consumer production is 800 kJ/m²/year. Calculate transfer efficiency.
The result is 10 %. Known: producer production is 10,000 kJ/m²/year and primary-consumer production is 1,200 kJ/m²/year. Transfer efficiency is 1,200/10,000×100=12%. Secondary-consumer production of 180 kJ/m²/year gives 180/1,200×100=15% for that step. These different values show why a universal 10% assumption would misrepresent this dataset.
Check the conclusion and its limits
- Energy is not destroyed when respiration transfers it as heat. Material can cycle through an ecosystem, while usable energy flow depends on continuing input. A count pyramid or biomass snapshot cannot automatically be substituted into an energy-efficiency calculation.
- Return to the original observation. Explain what the result supports, which conditions it assumes, and one way to test a competing explanation.
Respiration destroys energy instead of transferring it to other forms. This claim is false: Energy is not destroyed when respiration transfers it as heat. Material can cycle through an ecosystem, while usable energy flow depends on continuing input. A count pyramid or biomass snapshot cannot automatically be substituted into an energy-efficiency calculation.
Energy transfer: use production and a stated boundary: Use the same energy units and period in numerator and denominator. Distinguish ingestion, assimilation and production: consumed energy is not all assimilated, and assimilated energy is not all stored as new biomass. An energy pyramid records a flow per area per time; a standing biomass snapshot is a different quantity.
Respiration destroys energy instead of transferring it to other forms.
Energy is not destroyed when respiration transfers it as heat. Material can cycle through an ecosystem, while usable energy flow depends on continuing input. A count pyramid or biomass snapshot cannot automatically be substituted into an energy-efficiency calculation.
Production at one trophic level divided by production at the preceding level over a common interval: write the technical term.
trophic transfer efficiency means Production at one trophic level divided by production at the preceding level over a common interval.