Ice with mass m(1)=600g and at temperatu...

Ice with mass `m_(1)=600g` and at temperature `t_(1)=-10^(@)C` is placed into a copper vessel heated to `t_(2)=350^(@)C`. As a result, the vessel now contains `m_(2)=550g` of ice mixed with water. Find the mass of the vessel. The specific heat of copper `=0.1"cal"//C^(@)g` and sp. heat of ice `=0.5"cal"//gC^(@)`. Latent heat of ice `=80"cal"//g`.

Similar Questions

Explore conceptually related problems

Ice of mass 600 kg and at a temperature of -10^@C is placed in a copper vessel heated to 350^@C . The resultant mixture is 550 g of ice and water. Find the mass of the vessel. The specific heat capacity of copper (c)=100 cal//kg-K

2kg ice at -20"^(@)C is mixed with 5kg water at 20"^(@)C . Then final amount of water in the mixture will be: [specific heat of ice =0.5 cal//gm "^(@)C , Specific heat of water =1 cal//gm"^(@)C , Latent heat of fusion of ice = 80 cal//gm]

10 gm of ice at – 20^(@)C is added to 10 gm of water at 50^(@)C . Specific heat of water = 1 cal//g–.^(@)C , specific heat of ice = 0.5 cal//gm-.^(@)C . Latent heat of ice = 80 cal/gm. Then resulting temperature is -

Find the heat required to convert 20 g of iceat 0^(@)C into water at the same temperature. ( Specific latent heat of fusion of ice =80 cal//g )

Find the heat required to convert 20 g of ice at 0⁰C into water at the same temperature . (Specific latent heat of fusion of ice = 80 cal/g)

5g of water at 30^@C and 5 g of ice at -29^@C are mixed together in a calorimeter. Find the final temperature of mixture. Water equivalent of calorimeter is negligible, specific heat of ice = 0.5 cal//g-^@C and latent heat of ice =80 cal//g .

Similar Questions

Recommended Questions