ΔU ∝ ΔT
As the container is heated up, the gas molecules move faster with higher kinetic energy and therefore higher internal energy
A student suggests that when an ideal gas is heated from 50 °C to 150 °C, the internal energy of the gas is trebled.State and explain whether the student's suggestion is correct.
Step 1: Write down the relationship between internal energy and temperature
ΔU ∝ ΔT
Step 2: Determine whether the change in temperature (in K) increases by three times
50 °C + 273.15 = 323.15 K
150 °C + 273.15 = 423.15 K
Step 3: Write a concluding statement relating the temperature change to the internal energy
If an exam question about an ideal gas asks for the total internal energy, remember that this is equal to the total kinetic energy since an ideal gas has zero potential energy
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