Answer:
Vs = 4.20%×V
Step-by-step explanation:
let fs be the frequecy of the bird flying emits toward the stationary bird, fo be the frequecy that the stationary bird hears, Vs be the speed of the flying bird and Vo be the speed of the stationary bird and V be the speed of sound.
From doppler effect we know that for an observer at rest(stationary bird), when the source(flying bird) is moving towards the observer, then the observer will hear an increasing frequency by:
fo = [(V + Vo)/(V - Vs)]×fs
fo= [(V)/(V - Vs)]×fs , since Vo = 0m/s.
1190 =[V/(V - Vs)]×1140
1190/1140 = V/(V - Vs)
(1190/1140)×(V - Vs) = V
V - Vs = (1140/1190)V
1 - Vs/V = 1140/1190
Vs/V = 1 - 1140/1190
Vs/V = 5/119
Vs = (5/119)×V
Therefore, the speed of the bird is Vs = 4.20%×V