wave_mechanics organ_pipe_vibration_of_air_column Question 21

Question: An open pipe resonates with a tuning fork of frequency 500 Hz. it is observed that two successive nodes are formed at distances 16 and 46 cm from the open end. The speed of sound in air in the pipe is

[Orissa JEE 2003]

Options:

A) 230 m/s

B) 300 m/s

C) 320 m/s

D) 360 m/s

Show Answer

Answer:

Correct Answer: B

Solution:

Distance between two consecutive nodes $ =\frac{\lambda }{2}=46-16=30 $

$ \Rightarrow \lambda =60 $ cm = 0.6m $ \therefore $ $ v=n\lambda =500\times 0.6=300 $

$ m/s $ .

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