Answer:
f = 3.1 kHz
Explanation:
given,
length of human canal =2.8 cm = 0.028 m
speed of sound = 343 m/s
fundamental frequency = ?
The fundamental frequency of a tube with one open end and one closed end is,
[tex]f = \dfrac{v}{4L}[/tex]
[tex]f = \dfrac{343}{4\times 0.028}[/tex]
[tex]f = \dfrac{343}{0.112}[/tex]
f = 3062.5 Hz
f = 3.1 kHz
hence, the fundamental frequency is equal to f = 3.1 kHz
The fundamental frequency is mathematically given as
f = 3.1 kHz
Question Parameters:
The human ear canal is about 2.8 cm long
Generally, the equation for the fundamental frequency is mathematically given as
f = v/4L
Therefore
[tex]f = \frac{343}{4*0.028}[/tex]
f = 3062.5 Hz
In conclusion, The frequency is
f = 3.1 kHz
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