Since both the trains move in same direction with same acceleration, therefore, their relative acceleration is zero. Initial velocity of train A is zero while that of train B is 40 m/s. Therefore, train A of observer is behind the train B or source when whistle is heard by passenger of A. Let this sound be produced at time t. Considering motion of train B (sound source) up to this instant,
`u=40(m)/(s)`,`a=2(m)/(s^2)`,`time=t`
`v=v_b=?` `s=s_B=?` ..(i)
We have `v=u+at`,
`v_B=40+2t`
`s=ut+(1)/(2)at^2`
`s_B=40t+t^2`
But this sound is heard by the observer at `t=20`s. Considering his motion (motion of train A) up to this instant,
`u=0`,`a=2(m)/(s^2)`,`t=20s`
`v=v_B=?`,`s=s_B=?`
We have,
`v=u+at`
`v_A=40(m)/(s)`
`s=ut+(1)/(2)at^2`
`s_A=400m`
When sound was produced, train B (source) was at a distance `s_B` from initial point while observer receives this sound at `t=20s` and at a distance `s_A` from initial point. It means that sound waves travel a distance `(s_B-s_A)` in air and take time `(20-t)` to travel it.
`s_B-s_A=(20-t)v` ..(iii)
Where `v=322(m)/(s)` (speed of sound). Substituting values of `s_A` and `s_B` in Eq.(iii),
`t=18s`
When sound was produced source was moving with velocity
`v_B=(40+2t)=76(m)/(s)`
(away from observer) while observer receive these sound waves at `t=20s`, when he was moving with velocity `v_A=40(m)/(s)` (towards the source). Hence, the observed frequency is
`n=n_0(v+v_A)/(v+v_B)`
Where `n_0=1194Hz` (natural frequency of source) and so `n=1086Hz`.