09. Heat Engine, Carnot’s Cycle and Refrigeration (COP)
Thermodynamics

148661 The work done by a Carnot engine operating between $300 \mathrm{~K}$ and $400 \mathrm{~K}$ is $400 \mathrm{~J}$. The energy exhausted by the engine is

1 $800 \mathrm{~J}$
2 $1200 \mathrm{~J}$
3 $400 \mathrm{~J}$
4 $1600 \mathrm{~J}$
Thermodynamics

148662 A Carnot engine operates between heat reservoirs differing in temperature by $80^{\circ} \mathrm{C}$. The efficiency of the Carnot engine is $20 \%$. The temperature of the cold reservoir is

1 $440 \mathrm{~K}$
2 $400 \mathrm{~K}$
3 $250 \mathrm{~K}$
4 $320 \mathrm{~K}$
Thermodynamics

148663 A gas in a closed container undergoes the cycle ABCDA as shown in the figure. The net heat absorbed by the gas after it has completed 20 cycles is

1 $+5.0 \mathrm{~kJ}$
2 $-5.0 \mathrm{~kJ}$
3 $+2.5 \mathrm{~kJ}$
4 $-2.5 \mathrm{~kJ}$
Thermodynamics

148664 A Carnot engine operating between $430 \mathrm{~K}$ and $330 \mathrm{~K}$ does a work $60 \mathrm{~kJ}$. The amount of ice, that can melt from its exhaust is (Latent heat of fusion of ice $=\mathbf{3 3 0 ~} \mathbf{~ g ~ g}^{-\mathbf{1}}$ )

1 $0.6 \mathrm{~kg}$
2 $0.75 \mathrm{~kg}$
3 $1.2 \mathrm{~kg}$
4 $0.4 \mathrm{~kg}$
Thermodynamics

148661 The work done by a Carnot engine operating between $300 \mathrm{~K}$ and $400 \mathrm{~K}$ is $400 \mathrm{~J}$. The energy exhausted by the engine is

1 $800 \mathrm{~J}$
2 $1200 \mathrm{~J}$
3 $400 \mathrm{~J}$
4 $1600 \mathrm{~J}$
Thermodynamics

148662 A Carnot engine operates between heat reservoirs differing in temperature by $80^{\circ} \mathrm{C}$. The efficiency of the Carnot engine is $20 \%$. The temperature of the cold reservoir is

1 $440 \mathrm{~K}$
2 $400 \mathrm{~K}$
3 $250 \mathrm{~K}$
4 $320 \mathrm{~K}$
Thermodynamics

148663 A gas in a closed container undergoes the cycle ABCDA as shown in the figure. The net heat absorbed by the gas after it has completed 20 cycles is

1 $+5.0 \mathrm{~kJ}$
2 $-5.0 \mathrm{~kJ}$
3 $+2.5 \mathrm{~kJ}$
4 $-2.5 \mathrm{~kJ}$
Thermodynamics

148664 A Carnot engine operating between $430 \mathrm{~K}$ and $330 \mathrm{~K}$ does a work $60 \mathrm{~kJ}$. The amount of ice, that can melt from its exhaust is (Latent heat of fusion of ice $=\mathbf{3 3 0 ~} \mathbf{~ g ~ g}^{-\mathbf{1}}$ )

1 $0.6 \mathrm{~kg}$
2 $0.75 \mathrm{~kg}$
3 $1.2 \mathrm{~kg}$
4 $0.4 \mathrm{~kg}$
Thermodynamics

148661 The work done by a Carnot engine operating between $300 \mathrm{~K}$ and $400 \mathrm{~K}$ is $400 \mathrm{~J}$. The energy exhausted by the engine is

1 $800 \mathrm{~J}$
2 $1200 \mathrm{~J}$
3 $400 \mathrm{~J}$
4 $1600 \mathrm{~J}$
Thermodynamics

148662 A Carnot engine operates between heat reservoirs differing in temperature by $80^{\circ} \mathrm{C}$. The efficiency of the Carnot engine is $20 \%$. The temperature of the cold reservoir is

1 $440 \mathrm{~K}$
2 $400 \mathrm{~K}$
3 $250 \mathrm{~K}$
4 $320 \mathrm{~K}$
Thermodynamics

148663 A gas in a closed container undergoes the cycle ABCDA as shown in the figure. The net heat absorbed by the gas after it has completed 20 cycles is

1 $+5.0 \mathrm{~kJ}$
2 $-5.0 \mathrm{~kJ}$
3 $+2.5 \mathrm{~kJ}$
4 $-2.5 \mathrm{~kJ}$
Thermodynamics

148664 A Carnot engine operating between $430 \mathrm{~K}$ and $330 \mathrm{~K}$ does a work $60 \mathrm{~kJ}$. The amount of ice, that can melt from its exhaust is (Latent heat of fusion of ice $=\mathbf{3 3 0 ~} \mathbf{~ g ~ g}^{-\mathbf{1}}$ )

1 $0.6 \mathrm{~kg}$
2 $0.75 \mathrm{~kg}$
3 $1.2 \mathrm{~kg}$
4 $0.4 \mathrm{~kg}$
Thermodynamics

148661 The work done by a Carnot engine operating between $300 \mathrm{~K}$ and $400 \mathrm{~K}$ is $400 \mathrm{~J}$. The energy exhausted by the engine is

1 $800 \mathrm{~J}$
2 $1200 \mathrm{~J}$
3 $400 \mathrm{~J}$
4 $1600 \mathrm{~J}$
Thermodynamics

148662 A Carnot engine operates between heat reservoirs differing in temperature by $80^{\circ} \mathrm{C}$. The efficiency of the Carnot engine is $20 \%$. The temperature of the cold reservoir is

1 $440 \mathrm{~K}$
2 $400 \mathrm{~K}$
3 $250 \mathrm{~K}$
4 $320 \mathrm{~K}$
Thermodynamics

148663 A gas in a closed container undergoes the cycle ABCDA as shown in the figure. The net heat absorbed by the gas after it has completed 20 cycles is

1 $+5.0 \mathrm{~kJ}$
2 $-5.0 \mathrm{~kJ}$
3 $+2.5 \mathrm{~kJ}$
4 $-2.5 \mathrm{~kJ}$
Thermodynamics

148664 A Carnot engine operating between $430 \mathrm{~K}$ and $330 \mathrm{~K}$ does a work $60 \mathrm{~kJ}$. The amount of ice, that can melt from its exhaust is (Latent heat of fusion of ice $=\mathbf{3 3 0 ~} \mathbf{~ g ~ g}^{-\mathbf{1}}$ )

1 $0.6 \mathrm{~kg}$
2 $0.75 \mathrm{~kg}$
3 $1.2 \mathrm{~kg}$
4 $0.4 \mathrm{~kg}$