Lesson 3.1.1.6
3.1.1.6 Water and carbon cycles: case studies Quiz: AQA Geography, Unit 1
20 questions
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Lesson 3.1.1.6, Water and carbon cycles: case studies: 20 multiple choice questions for the AQA Geography (7037), Unit 1: Physical geography, written with Revision Ninja.
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The 20 questions
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In a tropical rainforest, where is most of the ecosystem's carbon typically stored?
- Mainly in deep ocean sediments beneath the forest, which lie far below the soil surface
- Mainly in atmospheric carbon dioxide above the canopy, which is replenished by the trees each day
- Mainly as dissolved carbonate in the groundwater, which flows through the rock beneath the soils
- In living vegetation biomass, with a large share held in trees
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Which feature of tropical rainforests typically supports rapid nutrient cycling?
- Permafrost that locks nutrients beneath the surface, preventing them from reaching the roots
- Cold temperatures that slow decomposition in the soil and keep nutrients locked in the litter
- Low rainfall that concentrates nutrients in the topsoil, where they accumulate over long periods
- High temperatures and rainfall that speed decomposition and rapid uptake by roots
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Why does clearing tropical rainforest affect the local water cycle?
- It has no effect because rainfall is set only by ocean currents far from the forest itself
- It increases evapotranspiration, which always raises local rainfall by adding moisture to the air
- It reduces evapotranspiration, which can weaken rainfall recycling within the region
- It increases interception, which reduces surface runoff and so removes all flood risk entirely
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For a river catchment case study at a local scale, which measurement best shows how precipitation affects drainage basin stores and transfers?
- A map of soil colour across the whole continent, drawn at a very small scale for the region
- A hydrograph built from paired rainfall and discharge records
- A census count of the catchment population, taken from national statistics for the district
- A record of air pressure at a distant airport, which is far outside the catchment boundary
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Which outcome is most likely if a river catchment loses its woodland cover and soils are compacted?
- Greater overland flow and higher flood peaks
- Greater infiltration and lower flood peaks, because the compacted soil absorbs more of the rain
- Lower runoff and a longer lag time, because the loss of cover slows the water down
- Higher interception and reduced stemflow, because the bare ground holds more water on its surface
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Which consideration is central to sustainable water supply in a river catchment?
- Maximising abstraction regardless of seasonal rainfall, so that supplies are used while they last
- Balancing abstraction against recharge and the natural flow needed to maintain river ecosystems
- Ignoring groundwater because it is not part of the surface system that the catchment study covers
- Removing all vegetation to increase the water yield of the catchment for the longer term
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A catchment case study finds that urban expansion has increased flood peaks. Which explanation is best supported by hydrological principles?
- Urban surfaces increase infiltration so that rivers carry less water during storms
- Urban growth causes evapotranspiration to exceed precipitation across the whole catchment
- Urban areas remove the need for channel storage, which is why flood peaks are reduced
- Impermeable surfaces increase overland flow and drains speed water into channels
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Which term describes the reduction of rainforest carbon storage through clearing, where the cut vegetation is burnt?
- Carbon sequestration in soils, which holds carbon in organic matter for long periods
- Deforestation with burning
- Afforestation with planting, which increases the carbon stored in new woody biomass over time
- Photosynthetic uptake, which removes carbon dioxide from the air and stores it in plant tissue
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A rainforest case study shows that deforestation is linked to reduced regional rainfall. Which relationship best explains this?
- Vegetation recycles moisture to the atmosphere, so less vegetation means less water returned to the air for rainfall
- Rainfall depends only on distance from the ocean, so the forest cover has no effect on it
- Deforestation increases rainfall by reducing evaporation from the canopy and the forest floor
- Vegetation takes water from the air, so less vegetation means more water is available for rainfall
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Which combination best describes a sustainable response to a flood-prone river catchment?
- Draining all wetlands and extending impermeable surfaces so that water is carried away quickly
- Increasing abstraction upstream so that less water reaches the flood zone during storms
- Woodland planting, restored floodplains and sustainable land management that slow runoff
- Removing riparian vegetation to increase channel width, which has been shown to reduce flood risk
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When evaluating a catchment case study, which approach is most rigorous?
- Ignoring measurements that do not fit the chosen explanation so the argument stays clear
- Accepting one measurement as proof of a general pattern across all of the catchment's land
- Using only secondary sources without checking their dates, origin or method of collection
- Comparing field measurements with an explicit account of the limitations of the data
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Which change in a catchment would most likely reduce the lag time of a flood hydrograph?
- Restoration of wetlands on the valley floor, which holds water in storage before it reaches the river
- Extensive clearance of vegetation on steep slopes
- Greater infiltration on permeable heathland, which absorbs water and delays its arrival at the channel
- Increased woodland cover across the upper catchment, which intercepts rain and slows the water
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Which description of a tropical rainforest carbon cycle is most accurate?
- Carbon remains stored in rocks beneath the forest and is unaffected by the vegetation above
- Carbon is released mainly through groundwater flow into the ocean, which removes it from the basin
- Carbon is locked permanently in the soil and never returns to the atmosphere once it has been stored
- Carbon is taken up rapidly by photosynthesis and stored in biomass, with much released again by decomposition and respiration
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Which factor best explains why tropical rainforest soils can have low nutrient stores despite high biological activity?
- Nutrients are removed by melting permafrost at the surface, which carries them out of the soil
- Cold temperatures prevent microbes from breaking down litter, so nutrients remain locked away
- Low rainfall prevents nutrients from being dissolved in water, so they stay in the rock
- Nutrients are rapidly taken up and recycled within the vegetation rather than accumulating in the soil
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Which statement about water balance is correct for a catchment with high evapotranspiration?
- Less of the precipitation becomes runoff, so the runoff ratio is lower
- Runoff always equals precipitation regardless of how much water is lost through evapotranspiration
- More of the precipitation becomes runoff, so the runoff ratio rises as evapotranspiration increases
- Evapotranspiration has no effect on the water balance because it does not reach the channel
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A river catchment study records a sharp rise in discharge within two hours of heavy rain. Which hydrological characteristic is most likely dominant?
- Stemflow from a dense forest canopy, which is the main route for water into the river
- Rapid overland flow and channel flow from impermeable or saturated ground
- Dominant infiltration into a deep aquifer, which delays the arrival of water at the channel
- Slow base flow from deep groundwater alone, which takes many months to respond to rainfall
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In a case study, a researcher argues that managing water in the catchment will have long-term benefits. Which evidence would most strongly support this claim?
- A map of the catchment with no hydrological data that would test the claim against the river
- A single exceptionally wet season with no follow-up data to show whether the benefit persisted
- A personal opinion of local residents who believe the river looks cleaner than it did before
- Long-term records showing that stored water and flood peaks are maintained within sustainable limits
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Which statement describes a key contrast between the carbon cycle of a tropical rainforest and that of an ocean?
- Both store carbon for the same period regardless of location or the type of store involved
- Ocean carbon is held in living biomass, while rainforest carbon is dissolved in the water
- Rainforest carbon cycles mostly through biomass and soils over years, whereas ocean carbon is stored much longer in water and sediments
- Rainforest carbon is stored only in sediments, while ocean carbon cycles within a few days
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A catchment study concludes that deforestation increased storm runoff. Which additional evidence would best strengthen this conclusion?
- A chemical analysis of rainwater at the catchment outlet, taken on a single day in the study
- A list of local farmers' opinions on how the river appearance has changed over the decades
- A satellite image of the catchment taken in winter only, when the cover looks much the same
- Paired measurements of runoff before and after the clearance, with rainfall controlled for
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Which method is most useful for showing the spatial extent of land-use change in a river catchment over time?
- Comparing dated maps or satellite images of the catchment
- A table of total annual rainfall for the whole country, which does not cover the catchment
- A description of the catchment written from memory, with no dates or locations recorded
- A single photograph of the river taken at one point in time from a bridge over the channel
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