Answer with Explanation:
We are given that
Fundamental frequency,f=88.4 Hz
Speed of sound,v=343 m/s
We have to find the first three overtones.
Tube is closed
The overtone of closed pipe is equal to odd number of fundamental frequency.
Therefore, the overtone of tuba
[tex]f'=nf[/tex]
Where n=3,5,7,..
Substitute n=3
[tex]f'=3\times 88.4=265.2Hz[/tex]
For second overtone
[tex]f'=5\times 88.4=442Hz[/tex]
For third overtone
[tex]f'=7\times 88.4=618.8Hz[/tex]
