Lesson 3.1.1a
3.1.1a Specialised exchange surfaces and mammalian gas exchange Quiz: OCR Biology, Unit 2
20 questions
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Lesson 3.1.1a, Specialised exchange surfaces and mammalian gas exchange: 20 multiple choice questions for the OCR Biology (H020), Unit 2: Exchange and transport, written with Revision Ninja.
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The 20 questions
-
As an organism increases in size, how does its volume change relative to its surface area?
- Increases slower
- Increases equally
- Decreases faster
- Increases faster
-
Which feature of an exchange surface minimises the diffusion distance?
- Good blood supply
- Ventilation system
- Large surface area
- Thin barrier
-
Root hair cells have many projections. This is an example of:
- Increased surface area
- Low metabolic activity
- A thin layer
- A good blood supply
-
How do the thin walls of alveoli speed up gas exchange?
- Increasing surface area
- Maintaining concentration gradient
- Increasing blood pressure
- Shortening diffusion distance
-
Why can single-celled organisms rely on simple diffusion for gas exchange?
- High SA:V ratio
- Thick cell wall
- Active transport
- Low SA:V ratio
-
What effect does a high metabolic rate have on required gas exchange speed?
- Thicker exchange surface
- Faster exchange rate
- Slower exchange rate
- Lower oxygen demand
-
How do you calculate surface area to volume ratio?
- Volume ÷ surface area
- Surface area × volume
- Surface area ÷ volume
- Surface area − volume
-
A cube of side 1 cm has what surface area to volume ratio?
- 6:1
- 3:1
- 1:6
- 1:1
-
A cube has side 3 cm. What is its surface area to volume ratio?
- 1:2
- 6:1
- 2:1
- 3:1
-
If a cell's linear dimensions double, what happens to its surface area to volume ratio?
- Doubles
- Quadruples
- Halves
- Remains unchanged
-
Which structures in bony fish gills provide a large surface area for gas exchange?
- Opercula
- Spiracles
- Lamellae
- Tracheoles
-
What does countercurrent flow maintain along the entire length of the gill lamella?
- Concentration gradient
- High blood pressure
- Constant temperature
- Low water flow
-
How does a good blood supply maintain efficient gas exchange in alveoli?
- Decreases surface area
- Maintains concentration gradient
- Increases diffusion distance
- Prevents cell lysis
-
Which feature of root hair cells increases their efficiency of water absorption?
- Small surface area
- Large surface area
- Thick cell wall
- Impermeable membrane
-
In countercurrent exchange, blood always meets water with what relative oxygen concentration?
- Equal oxygen level
- Lower oxygen level
- Higher oxygen level
- Zero oxygen level
-
Why does simple diffusion through a tracheal system limit maximum insect size?
- Long diffusion distance
- High oxygen demand
- Enzyme denaturation
- Low surface area
-
Why do large multicellular animals require specialised gas exchange systems?
- Short diffusion distance
- High SA:V ratio
- Low SA:V ratio
- Low metabolic rate
-
A cube is scaled from side 1 cm to side 10 cm. By what factor does SA:V change?
- 1/100
- 100
- 1/10
- 10
-
Which feature works with a thin barrier to maintain a concentration gradient in gills?
- Small surface area
- Thick waxy cuticle
- Good blood supply
- Slow water flow
-
According to Fick's Law, diffusion rate is inversely proportional to which factor?
- Diffusion distance
- Temperature
- Concentration gradient
- Surface area
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