QUESTION IMAGE
Question
- what is the change in internal energy, \\( \delta u \\), for a system that absorbs 127j of heat from the surroundings and does 325j of work on the surroundings?
a. +452 j
b. +198 j
c. -198 j
d. -452 j
e. +213 j
Step1: Determine the sign of heat and work
Heat absorbed by the system, \( q = + 127\,\text{J}\) (positive as heat is added to the system). Work done by the system, \( w=-325\,\text{J}\) (negative as work is done by the system on the surroundings).
Step2: Use the first law of thermodynamics
The first law of thermodynamics is \(\Delta U=q + w\). Substitute \(q = 127\,\text{J}\) and \(w=-325\,\text{J}\) into the formula: \(\Delta U=127+(- 325)\).
Step3: Calculate the value of \(\Delta U\)
\(\Delta U=127 - 325=-198\,\text{J}\)
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C. -198 J