Question #26819

1 Answer
Al E.
Jul 15, 2017

119.0 J/(°C), or C.

Explanation:

In a constant-volume calorimeter, we relate the heat capacity of the calorimeter to the temperature change in said calorimeter with the equation:

q_(soln)=-C_(cal)*DeltaT

The mass of the substance in the calorimeter in this case is unnecessary; some professors put these data in problems to confuse students who don't really know their stuff. Oh, test curves...

Anyways,

-250.0=-C_(cal)*2.1°C
C_(cal)=1.2*10^2 J/(°C)

Note, the question says released, thus the sign for the heat (q) is negative, not positive. Moreover, in my actual calculation, C. is the answer; here I have truncated for clarity.

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