Liquid ammonia is used in ice factory for making ice from water. If water at 20°C is to be converted into 2 kg ice at 0°C, how many gram of ammonia are to be evaporated?
(Given : The latent heat of vaporisation of ammonia = 341 cal/g)
Answers
Answer:
Given: Latent heat of vapourisation of Ammonia =341 cal/g
Mass of ammonia be= MMass of water =2000gTemperature change, ΔT=20oC-0oC=20oC
latent heat is the heat required by the ammonia for the liquid ammonia to ammonia vapours.
Amount of heat energy released in colling 2 Kg water from 20oC to 0oC
QW=MCΔT
WhereM is the mass of waterC is specific at constant volumeΔT is the temperature differencePutting the values in the above formula, we get Qw=2000×1×20=40000 cal
Amount of heat energy released during the conversion of 2kg of water at 0oC to ice at 0oC
Qi =M×L
WhereM is the mass of the waterL is the latent heat of conversion of water to icePutting the values in the above equation, we getQi=2000×80=160000 cal
The heat gained by ice due presence of ammonia will be:
Q = m× L=Qi +Qw
Where m is the mass of the ammonia L is the latent heat of the ammonia On solving, we getm× L=160000+40000=200000 cal
Thus, the process of conversion of 2kg of water to ice will require evaporation of 586.5 g of ammonia
Explanation:
Here is your answer..
Liquid ammonia is used in an ice factory for making ice from water. If the water at 20oC is to be converted into 2 kg ice at 0oC, how many grams of ammonia is to be evaporated?
(Given: The latent heat of vaporization of ammonia= 341 cal/g)
MHB - Science and Technology Part-1
5. Heat
Answer
Given: Latent heat of vapourisation of Ammonia =341 cal/g
Mass of ammonia be= MMass of water =2000gTemperature change, ΔT=20oC-0oC=20oC
latent heat is the heat required by the ammonia for the liquid ammonia to ammonia vapours.
Amount of heat energy released in colling 2 Kg water from 20oC to 0oC
QW=MCΔT
WhereM is the mass of waterC is specific at constant volumeΔT is the temperature differencePutting the values in the above formula, we get Qw=2000×1×20=40000 cal
Amount of heat energy released during the conversion of 2kg of water at 0oC to ice at 0oC
Qi =M×L
WhereM is the mass of the waterL is the latent heat of conversion of water to icePutting the values in the above equation, we getQi=2000×80=160000 cal
The heat gained by ice due presence of ammonia will be:
Q = m× L=Qi +Qw
Where m is the mass of the ammonia L is the latent heat of the ammonia On solving, we getm× L=160000+40000=200000 cal
Thus, the process of conversion of 2kg of water to ice will require evaporation of 586.5 g of ammonia