Cindy made tea. She started with 300 grams of water at 20 degrees Celsius. She transferred 18,000 calories to the water. What was the final temperature of the water?

T final = 80°C

Explanation:

Q = mCpΔT

∴ Q = 18000 cal

∴ m H2O = 300 g

∴ Cp H2O (15°C) = 0.99795 cal/g. K ≅ 1 cal/g. K

∴ T1 = 20°C = 293 K

∴ T2 = ?

⇒ 18000 cal = (300 g) (1 cal/g. K) (T2 - 293 K)

⇒ (18000 cal) / (300 cal/K) = T2 - 293 K

⇒ T2 = 293 K + 60 K

⇒ T2 = 353 K (80°C)