A body cools in a surrounding of constant temperature `30^(@)C`. Its heat capacity is `2J//^(@)C`. Initial temperature of the body is `40^(@)C`. Assume Newton's law of cooling is valid. The body cools to `36^(@)C` in `10` minutes.
In further `10` minutes it will cool from `36^(@)C` to :

A body cools in a surrounding of constant temperature 30^(@)C . Its heat capacity is 2J//^(@)C . Initial temperature of the body is 40^(@)C . Assume Newton's law of cooling is valid. The body cools to 36^(@)C in 10 minutes. When the body temperature has reached 36^(@)C . it is heated again so that it reaches to 40^(@)C in 10 minutes. Assume that the rate of loss of heat at 38^(@)C is the average rate of loss for the given time . The total heat required from a heater by the body is :

A body cools in a surrounding of constant temperature 30^@C Its heat capacity is 2 J//^(@)C . Initial temeprature of cooling is valid. The body cools to 38^@C in 10 min In further 10 min it will cools from 38^@C to _____

A body cools in a surrounding of constant temperature 30^@C Its heat capacity is 2 J//^@C . Initial temeprature of cooling is valid. The body cools to 38^@C in 10 min The temperature of the body In .^@C denoted by theta . The veriation of theta versus time t is best denoted as

A body cools in a surrounding of constant temperature 30^@C Its heat capacity is 2 J//^(@)C . Initial temeprature of cooling is valid. The body cools to 38^@C in 10 min When the body temperature has reached 38^@C , it is heated again so that it reches 40^@C in 10 min. The heat required from a heater by the body is

A body cools from 70^(@)C to 60^(@)C in 8minute The same body cools from 60^(@)C to 50^(@)C in .

A body cools from 80^(@)C to 60^(@)C in 5 minutes. Then its average rate of cooling is

A body cool from 90^@C to 70^@C in 10 minutes if temperature of surrounding is 20^@C find the time taken by body to cool from 60^@C to 30^@C . Assuming Newton’s law of cooling is valid.

A body cools at the rate of 3^(@)C// min when its temperature is 50^(@)C . If the temperature of surroundings is 25^(@)C then the rate of cooling of the body at 40^(@)C is

A liquid takes 10 minutes to cool from 80^(@)C to 50^(@)C . The temperature of the surroudings is 20^(@)C . Assuming that the Newton's law of cooling is obeyed, the cooling constant will be -

A body cools in 7 minutes from 60^(@)C to 40^(@)C . What will be its temperature after the next 7 minutes? The temperature of the surrounding is 10^(@)C . Assume that Newton's law of cooling holds good throughout the process.