Answer: The observer must walk 0.2897m towards either speaker.
Explanation:
Let us make distance between the two speakers to be =D
frequency emitted by the two speakers in phase=f
v= speed of sound, 343 m/s
λ=wavelength
---- solving for λ, wavelength, using the equation λ=v/f. 343/296
= 1.15878m
Also destructive interference is given as
⎮d1-d2⎮=λ/2
Because the observer should be able to walk far enough to make the distance to one speaker differ from the distance to the other speaker by ½ wavelength.
This will give us
d1-d2= 1.15878 /2
d1-d2=0.5794m
For the distance moved on either side, we have D/2
Therefore 0.5794/2=distance to move on either side. Giving us
0.2897m
In conclusion, This means that the observer has to walk so as to be 0.5794m closer to one speaker from another; this means walking 0.2897m towards either speaker.
The distance the observer must walk between the speaker to experience destructive interference is 0.29 m.
The given parameters;
The wavelength between the two loudspeakers is calculated as follows;
[tex]v = f\lambda \\\\\lambda = \frac{v}{f} \\\\\lambda =\frac{343}{296} \\\\\lambda = 1.16[/tex]
For destructive interference, the wavelength between the speakers is calculated as;
[tex]d_1 -d_2= \frac{\lambda}{2} \\\\d_1 -d_2= \frac{1.16}{2} \\\\d_1 -d_2= 0.58 \ m[/tex]
The distance the observer must walk between the speaker to experience destructive interference is calculated as;
[tex]d = \frac{0.58}{2} \\\\d = 0.29 \ m[/tex]
Thus, the distance the observer must walk between the speaker to experience destructive interference is 0.29 m.
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