An earthen pitcher loses 1 g of water per minute due to evaporation. If the water equivalent of pitcher is 0.5 kg and the pitcher contains 9.5 kg of water, calculate the time required for the water in the pitcher to cool to `28^@C` from its original temperature of `30^@C` Neglect radiation effect. Latent heat of vapourization of water in this range of temperature is 580 cal/g and specific heat of water is `1 kcal//gC^(@)`A. 38.6 minB. 30.5 minC. 34.5 minD. 41.2 min

An earthen pitcher loses 1 g of water per minute due to evaporation. I

1.	An earthen pitcher loses 1 g of water per minute due to evaporation. If the water equivalent of pitcher is 0.5 kg and the pitcher contains 9.5 kg of water, calculate the time required for the water in the pitcher to cool to `28^@C` from its original temperature of `30^@C` Neglect radiation effect. Latent heat of vapourization of water in this range of temperature is 580 cal/g and specific heat of water is `1 kcal//gC^(@)`A. 38.6 minB. 30.5 minC. 34.5 minD. 41.2 min
Answer» Correct Answer - A As water equivalent of pitcher is 0.5 kg i.e.k pitcher is equivalent to 0.5 kg of water, heat to be extracted from the system of water and pitcher for decreasing its temperature from 30 to `28^@C` is `Q_1=(m+M)cDeltaT` `=(9.5+0.5)kg((1kcal)/(kgC^@))(30-28)^@C` And het extractged from the pitcher through evaporation in t minutes `Q_2=mL=[(dm)/(dt)xxt]L=[(1g)/(min)xxt]580 cal//g` According to given problem `Q_2=Q_1`, i.e., `580xxt=20xx10^3` `t=34.5min`

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