The correct option is A 980 J
We know that efficiency(η) of a cyclic process is given by
η=work done (W)Heat absorbed per cycle ...(1)
Here, heat absorbed,
Qab=Q1+Q3=1915+125
⇒Qab=2040 J .......(2)
From first law of thermodynamics, work done (W) for a cyclic process is given by
W=total heat absorbed−total heat rejected
⇒W=(Q1+Q3)−(Q2+Q4)
⇒W=(1915+125)−(40+Q)
⇒W=2000−Q .......(3)
From Eqs. (1), (2) and (3),
η=2000−Q2040
⇒0.5=2000−Q2040
⇒Q=980 J
So, (d) is the correct answer.