QUESTION IMAGE
Question
what is the change in internal energy in joules for a system that releases 154 j of heat and does 125 j of work on its surroundings?
Step1: Recall the first law of thermodynamics formula
The first law of thermodynamics is $\Delta U = Q - W$, where $\Delta U$ is the change in internal energy, $Q$ is the heat transfer, and $W$ is the work done by the system.
Step2: Determine the signs of $Q$ and $W$
Since the system releases heat, $Q=- 154\ J$ (negative because heat is leaving the system). The system does work on its surroundings, so $W = 125\ J$ (positive because work is done by the system).
Step3: Substitute values into the formula
$\Delta U=-154 - 125$.
Step4: Calculate the result
$\Delta U=-279\ J$.
Snap & solve any problem in the app
Get step-by-step solutions on Sovi AI
Photo-based solutions with guided steps
Explore more problems and detailed explanations
-279 J