wiz-icon
MyQuestionIcon
MyQuestionIcon
1
You visited us 1 times! Enjoying our articles? Unlock Full Access!
Question

A sound wave of frequency 100Hz is travelling in air. The speed of sound in air is 350ms-1.

(a) By how much is the phase changed at a given point in 2.5ms?

(b) What is the phase difference at a given instant between two points separated by a distance of 10.0cm along the direction of propagation?


Open in App
Solution

Step 1: Given data

Frequency, f=100Hz

Speed of sound in air v=350ms-1

Phase difference =φ

The distance travelled by the particle =x

Wavelength =λ

Time ,t=2.5ms

Step 2: (a) Find phase change

The velocity is given by

v=fλλ=v/fλ=350/100λ=3.5m

In 2.5ms, the distance travelled by the particle,

Δx=v×t

Δx=(350x2.5x10-3)m

Now, phase difference

φ=(2π/λ)Δxφ=[2πx350x2.5×10-3]/[3.5]φ=π/2

Hence, the phase changed at a given point is φ=π/2

Step 3: (b) Phase difference between two point

Distance between two points travelling along the direction of propagation is

Δx=10cmΔx=0.1m

The phase difference is calculated by,

φ=(2π/λ)Δx

On substituting the values,

φ=2π(0.1)/3.5φ=2π/35

Hence, Phase difference between two point is φ=2π/35.


flag
Suggest Corrections
thumbs-up
0
Join BYJU'S Learning Program
similar_icon
Related Videos
thumbnail
lock
Frequency tackle
PHYSICS
Watch in App
Join BYJU'S Learning Program
CrossIcon