The temperature of 600 g of cold water rises by 15o C when 300 g of hot water at 50o C is added to it. What was the initial temperature of the cold water? - Noon Academy

The temperature of 600 g of cold water rises by 15^oC when 300 g of hot water at 50^oC is added to it. What was the initial temperature of the cold water?

Calorimetry | Class 10 | ICSE | Physics | Selina

The temperature of 600 g of cold water rises by 15^oC when 300 g of hot water at 50^oC is added to it. What was the initial temperature of the cold water?

Solution:

According to the question, Mass of hot water (m₁) is 300 g

Temperature (T₁) is 50⁰ C

Mass of cold water (m₂) is 600 g

Change in the temperature of cold water (T – T₂) is 15⁰ C

Let the final temperature be T⁰ C

The specific heat capacity of water is c for both the cases.

Expression for heat energy is Q = mc(change in temperature)

Using the above relation, we can write the expression for hot and cold water

Heat lost by hot water = m₁c (T₁ – T)

Heat gained by cold water = m₂c (T – T₂)

We know that when no heat is lost to surroundings, the heat gained is equal to the heat lost

m₁c (T₁ – T) = m₂c (T – T₂)

Putting values, we get => 300 (50 – T) = 600 (15)

T = 6000 / 300

Therefore, final temperature = 20⁰ C

Change in temperature is 15⁰ C

Then, the initial temperature of cold water becomes 20⁰ C – 15⁰ C

= 5⁰ C

i

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