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Read the following passage and answer the accompanying questions - Leaving Cert Physics - Question 11 - 2009

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Read the following passage and answer the accompanying questions. The sun is a major source of 'green' energy. In Ireland solar heating systems and geothermal syste... show full transcript

Worked Solution & Example Answer:Read the following passage and answer the accompanying questions - Leaving Cert Physics - Question 11 - 2009

Step 1

What is the maximum energy that can fall on an area of 8 m² in one hour if the solar constant is 1350 W m⁻²?

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Answer

To find the maximum energy, we can use the formula:
Emax=PimesAimestE_{max} = P imes A imes t
where:

  • EmaxE_{max} is the maximum energy,
  • PP is the solar constant (1350 W m⁻²),
  • AA is the area in m² (8 m²),
  • tt is the time in seconds (1 hour = 3600 seconds).

Substituting the values:
Emax=1350imes8imes3600E_{max} = 1350 imes 8 imes 3600
We find:
Emax=3.91imes107JE_{max} = 3.91 imes 10^7 J

Step 2

Why is the bottom of a flat-plate collector blackened?

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Answer

The bottom of a flat-plate collector is blackened to enhance its ability to absorb heat. A black surface is a good absorber of heat and radiation, increasing the efficiency of heat capture.

Step 3

How much energy is required to raise the temperature of 500 litres of water from 20 °C to 50 °C?

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Answer

To calculate the energy required, we use the formula:
Q=mcriangleTQ = mc riangle T
where:

  • QQ is the heat energy in joules,
  • mm is the mass of water (in kg),
  • cc is the specific heat capacity of water (4200 J kg⁻¹ K⁻¹),
  • ΔT\Delta T is the change in temperature (50 °C - 20 °C = 30 °C).

First, convert 500 litres to kg (since 1 litre of water = 1 kg):
m=500extkgm = 500 ext{ kg}
Then, substituting the values:
Q=(500)(4200)(30)Q = (500)(4200)(30)
Calculating gives:
Q=63000000JQ = 63000000 J or 63 MJ.

Step 4

The liquid in a vacuum-tube solar collector has a large specific latent heat of vaporisation. Explain why.

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Answer

The liquid has a large specific latent heat of vaporisation because it allows for a significant amount of energy to be absorbed without a temperature change. This enables efficient heat transfer in the heat exchanger as the liquid transitions from liquid to vapor during the solar heating process.

Step 5

Name the three ways that heat could be lost from a vacuum-tube solar collector.

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Answer

The three ways heat could be lost are:

  1. Conduction
  2. Convection
  3. Radiation

Step 6

How is the sun’s energy trapped in a vacuum-tube solar collector?

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Answer

In a vacuum-tube solar collector, the silvered walls prevent radiation from escaping and keep the heat inside. The evacuated walls also minimize conduction and convection, enhancing heat retention.

Step 7

Describe, in terms of heat transfer, the operation of a heat pump.

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Answer

A heat pump operates by transferring energy taken from one body to another. It extracts heat from a cooler area (making it colder) and moves that energy to a hotter area (making it hotter), usually involving a refrigerant that absorbs and releases heat during phase changes.

Step 8

Give an advantage of a geothermal heating system over a solar heating system.

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Answer

A geothermal heating system functions all the time, providing consistent energy regardless of the time of day or weather conditions, while a solar heating system only works during daylight hours and can be variable based on atmospheric conditions.

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