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16.25 g of water at 54 C relaeases 402.7 J. What will be its final temp?

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Data:
Q = 402.7 J → releases → Q = - 402.7 J
m = 16.25 g
T initial = 54 ºC
adopting: c = 4.184J/g/°C
ΔT (T final - T initial) = ?

Solving:

Q = m*c*ΔT
-402.7 = 16.25*4.184*ΔT
-402.7 = 67.99*ΔT

\Delta\:T = (-402.7)/(67.99)

\boxed{\Delta\:T \approx -5.92\:^0C}

If: ΔT (T final - T initial) = ?

-5.92^0 = T_(final) - 54^0

T_(final) = 54^0 - 5.92^0

\boxed{\boxed{T_(final) = 48.08\:^0C}}\end{array}}\qquad\quad\checkmark

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