Question
On a hot summer day, 4.00×106 J4.00\times 10^{6}\textrm{ J} of heat transfer into a parked car takes place, increasing its temperature from 35.0C35.0^\circ\textrm{C} to 45.0C45.0^\circ\textrm{C} . What is the increase in entropy of the car due to this heat transfer alone?
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Final Answer

1.28×104 J/K1.28\times 10^{4}\textrm{ J/K}

Solution video

OpenStax College Physics for AP® Courses, Chapter 15, Problem 48 (Problems & Exercises)

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Video Transcript
This is College Physics Answers with Shaun Dychko. On a hot summer day, 4.00 times 10 to the 6 joules of heat transfers into a parked car and raises its temperature from 35.0 degrees Celsius to 45.0 degrees Celsius and the question is what is the change of entropy in the car? So change in entropy is the amount of heat transferred into the system divided by its temperature but we don't have a single temperature here so we'll just take its average after converting into Kelvin by adding 273.15. So the temperature in this change in entropy formula is gonna be T 1 plus T 2 divided by 2. And now since we are dividing by this T, I am gonna instead multiply it by the reciprocal of this fraction so ΔS then is gonna be Q times 2 over T 1 plus T 2. So that's 4.00 times 10 to the 6 joules times 2 over 308.15 Kelvin plus 318.15 Kelvin which is 1.28 times 10 to the 4 joules per Kelvin increase in entropy.