Steam at `100^(@)C` is passed into 22 grams of water at `20^(@)C`. When resultant temperature is `90^(@)C`, then weight of the water present is

Steam at 100^(@)C is passed into 20 g of water at 10^(@)C . When water axquires a temperature of 80^(@)C , the mass of water present will be [Take specific heat of water 1"cal"g^(-1)c^(-1) latent heat of steam = 540 cal//g^(-1) ]

10 grams of steam at 100^(@)C is mixed with 50 gm of ice at 0^(@)C then final temperature is

20g of steam at 100^(@) C is passed into 100g of ice at 0^(0) C. Find the resultant temperature if specific latent heat of steam is 540 callg., specific latent heat of ice is 80 cal/g and specific heat of water is 1 cal/ g^(0) C .

At 100^(@)C, the P^(H) of pure water is

10 litres of hot water at 70^(@) C is mixed with an equal volume of cold water at 20^(@) C. Find the resultant temperature of the water. (Specific heat of water = 4200 j/kg K )