If an organ pipe is sounded with a tuning fork of frequency 256 Hz, the resonance occured at 35 cm and 105 cm, then the velocity of sound is?
1 Answer
It is an organ pipe with one closed end.
For a close ended organ pipe: The fundamental (first harmonic) needs to have an node at the close end since the air cannot move and an antinode at the open end.
#λ/4 = L_1 + e# …... (1)
where#e# is the end correction.
Another resonance occurs at
For a closed end organ pipe this is the 3rd harmonic resonating as there is no 2nd harmonic for closed ended pipes.
We get
#(3λ)/4 = L_2 + e # …... (2)
Subtracting equations (1) from (2) we get
#λ/2 = (L_2 – L_1) # …... (3)
Using the expression
#v=flambda#
where#v# is velocity of sound,#f# is frequency and#lambda# is the wavelength.
we get
#v = 2f (L_2 - L_1) #
Inserting given values we get
#v=2xx256(105-35)#
#=>v=2xx256(105-35)#
#=>v=35840cms^-1#
