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Appendices

371

An acoustic pressurep(t) is transformed into the frequency domain for the calculation of the A-weighted sound pressure level [dBA]:

pðtÞ ¼ 3 cos ð2π ∙ 500 tÞ þ 7 sin ð2π ∙ 1000 tÞ½Pa&

Given:

(a) The number of discretized time domain data is N ¼ 16.

(b) The time increment of time domain data is t ¼ 0.000125 [s].

(c) The time domain pressure (N data) that is the input data for MATLAB fft:

Time domain pressure [Pa]

3

2.77

2.12

1.15

0

1.15

2.12

2.77

3

2.77

2.12

1.15

0

1.15

2.12

2.77

(d)The frequency domain (N data) which is the output from the MATLAB fft function:

Real number part coefcients [Pa] of Pk ¼ fft( pi, N)/N

0

 

1.5

 

0

0

0

 

0

 

0

 

0

 

0

 

0

 

0

 

0

 

0

 

0

 

0

0

1.5

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

Imaginary number part coefcients [Pa] of Pk ¼ fft( pi, N)/N

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

0

 

0

-3.5

 

0

 

0

 

0

 

0

 

0

 

0

 

0

 

0

0

 

0

 

0

3.5

 

0

Calculate:

The A-weighted sound pressure level (Answers): 108.2 [dBA]

References

1.Blackstock, D. T. (2000). Fundamentals of physical acoustics. Wiley. ISBN:0-471-31979-1.

2.Harold, W., Lord, S., William, G., & Evensen Harold, A. (1987). Noise control for engineers. Krieger Publishing Company. ISBN:0-89464-255-3.

3.Harris, C. M. (1966). Absorption of sound in air. Journal of the Acoustical Society of America, 40, 148159.

4.Irwin, J. D., & Graf, E. R. (1979). Industrial noise and vibration control. Prentice-Hall Inc.. ISBN:0-13-461574-3.

5.Kinsler, L. E., Frey Austin, R., Coppens Alan, B., & Sanders James, V. (1982). Fundamentals of acoustics. Wiley. ISBN:0-471-02933-5.

6.Magrab, E. B. (1975). Environmental noise control. Wiley. ISBN:0-471-56344-7.