Calculating Frequency of Train Whistle for Approaching Passenger

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merlos
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A train is traveling at 30.0 m/s relative to the ground in still air. The frequency of the note emitted by the train whistle is 262 Hz.
a. What frequency (fapproach) is heard by a passenger on a train moving at a speed of 18.0 m/s relative to the ground in a direction opposite to the first train and approaching it?



a. fapproach = (v-vL)/(v+vs) * fs



f= [(345m/s-18m/s)/(345m/s+30m/s)]*(262 Hz)
= 228.46 Hz

Wrong
 
on Phys.org
merlos said:
A train is traveling at 30.0 m/s relative to the ground in still air. The frequency of the note emitted by the train whistle is 262 Hz.
a. What frequency (fapproach) is heard by a passenger on a train moving at a speed of 18.0 m/s relative to the ground in a direction opposite to the first train and approaching it?
a. fapproach = (v-vL)/(v+vs) * fs
f= [(345m/s-18m/s)/(345m/s+30m/s)]*(262 Hz)
= 228.46 Hz

Wrong


Careful. There are two sets of relative motion here. The source relative to the air and the observer relative to the air. You need to do a doppler calculation for each. As Halls pointed out, the observed frequency should be higher.

AM