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A solar panel transfers energy at a rate of 1.2 kW to liquid passing through it - AQA - A-Level Physics - Question 7 - 2021 - Paper 2

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A solar panel transfers energy at a rate of 1.2 kW to liquid passing through it. The liquid has a specific heat capacity of 4.0 kJ kg⁻¹ K⁻¹. When the liquid flows t... show full transcript

Worked Solution & Example Answer:A solar panel transfers energy at a rate of 1.2 kW to liquid passing through it - AQA - A-Level Physics - Question 7 - 2021 - Paper 2

Step 1

Calculate the flow rate of the liquid

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Answer

To find the flow rate of the liquid, we can use the formula relating heat transfer, specific heat capacity, mass flow rate, and temperature change:

Q = rac{dm}{dt} imes c imes \Delta T

where:

  • QQ is the power (in W),
  • dmdt\frac{dm}{dt} is the mass flow rate (in kg/s),
  • cc is the specific heat capacity (in kJ/kg·K),
  • ΔT\Delta T is the change in temperature (in K).

Given that:

  • Q=1200Q = 1200 W (1.2 kW),
  • c=4.0c = 4.0 kJ/kg·K = 4000 J/kg·K,
  • ΔT=3.0\Delta T = 3.0 K,

we can rearrange the equation to solve for the mass flow rate:

dmdt=Qc×ΔT\frac{dm}{dt} = \frac{Q}{c \times \Delta T}

Substituting in the values:

dmdt=1200W4000J/kg\cdotpK×3.0K\frac{dm}{dt} = \frac{1200 \, \text{W}}{4000 \, \text{J/kg·K} \times 3.0 \, \text{K}}

Calculating this gives:

dmdt=120012000=0.1kg/s\frac{dm}{dt} = \frac{1200}{12000} = 0.1 \, \text{kg/s}

Thus, the flow rate of the liquid is 0.10 kg s⁻¹, which corresponds to option A.

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