In December 2024
Answer to Question #272102 in Chemistry for Ann
A certain calorimeter absorbs 65 J/o
C. If 55.0 g of 67o
C water is mixed with the
calorimeter’s original 50.0 g of 23o
C water. Calculate for the final temperature of the
mixture?
Q = C x m x deltaT
Cwater = 4.186 J/g°C
Q1 = 4.186 x 55 x 67 = 15 425 J
Q2 = 4.186 x 50 x 23 = 4 814 J
Q3 = 15 425 + 4 814 = 20 239 J
t = 20 239 / ((50 + 55) x 4.186) = 46.1°C
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