An ideal gas is taken through the cycle A arrow B arrow C → A, as shown in the figure. If the net heat supplied to the gas in the cycle is 5 J, the work done by the gas in the process C arrow A is

Question

An ideal gas is taken through the cycle A arrow B arrow C → A, as shown in the figure. If the net heat supplied to the gas in the cycle is 5 J, the work done by the gas in the process C arrow A is (A) -5 J (B) -10 J (C) -15 J (D) -20 J

Tardigrade Admin · Accepted Answer

Δ WAB=pΔ V =(10)(2-1)=10 J Δ WBC=0 (as V = constant) From first law of thermodynamics Δ Q =Δ W +Δ U Δ U =0 (process ABCA is cyclic) ∴ Δ Q=Δ WAB + Δ WBC + Δ WCA ∴ Δ WCA=Δ Q - Δ WAB - Δ WBC =5-10-0=-5 J

Q. An ideal gas is taken through the cycle A $\to$ B $\to$ C $\to$ A, as shown in the figure. If the net heat supplied to the gas in the cycle is 5 J, the work done by the gas in the process C $\to$ A is

-5 J

-10 J

-15 J

-20 J

$Δ W_{A B} = p Δ V = (10) (2 - 1) = 10 J$
$Δ W_{BC} = 0$ (as V = constant)
From first law of thermodynamics
$Δ Q = Δ W + Δ U$
$Δ U = 0$ (process ABCA is cyclic)
$∴ Δ Q = Δ W_{A B} + Δ W_{BC} + Δ W_{C A}$
$∴ Δ W_{C A} = Δ Q - Δ W_{A B} - Δ W_{BC}$
$= 5 - 10 - 0 = - 5 J$

Q. An ideal gas is taken through the cycle A → B → C → A, as shown in the figure. If the net heat supplied to the gas in the cycle is 5 J, the work done by the gas in the process C → A is