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Question
200 g of hot water at 80°C is added to 300 g of cold water at 10 °C. Calculate the final temperature of the mixture of water. Consider the heat taken by the container to be negligible. [specific heat capacity of water is 4200 J kg-1 °C-1]
Solution
Given Hot water m = 200 g, temperature = 80°C
Cold water m = 300 g, temperature = 10°C
Let final temperature of mixture = θ
By the principle of calorimeter
Heat given = Heat taken
200 × c × (80 - θ) = 300 × c × (θ - 10)
200 × 80 - 200θ = 300 θ - 300 × 10
16000 - 200 θ = 300 θ - 3000
19000 = 500 θ
θ = 38°C
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