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Sound localization in an anisotropic plate using electret microphones.

S Amir Hoseini Sabzevari1, Majid Moavenian1

  • 1Mech. Eng., Ferdowsi University of Mashhad, Iran.

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Summary

This study introduces a novel acoustic source localization method using only four low-sampling sensors in anisotropic plates. The technique enhances accuracy by analyzing signal attenuation in specific frequency bands, improving practical applications.

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Acoustic source localizationLamb waveLow sampling ratePassive monitoring

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Area of Science:

  • Materials Science
  • Acoustics
  • Engineering

Background:

  • Acoustic source localization in anisotropic plates without velocity profile knowledge is challenging.
  • Existing time-of-flight methods require numerous high-sampling sensors, limiting practical efficiency.
  • Non-time-of-flight methods offer lower sensor counts but sacrifice accuracy.

Purpose of the Study:

  • To propose a novel, efficient acoustic source localization technique for anisotropic plates.
  • To reduce sensor requirements and data handling complexity compared to existing methods.
  • To enhance localization accuracy using fewer, lower-sampling rate sensors.

Main Methods:

  • Utilized four low-sampling rate electret sensors arranged in two clusters.
  • Employed attenuation analysis within a specific frequency band for localization.
  • Incorporated a stethoscope as a physical filter to delineate the dominant frequency band.

Main Results:

  • Successfully localized acoustic sources in an anisotropic plate with only four sensors.
  • Demonstrated that accuracy is dependent on the distinction of the dominant frequency band.
  • Experimental validation on an airplane composite nose confirmed the method's viability.

Conclusions:

  • The proposed method offers a more efficient and accurate approach to acoustic source localization in anisotropic plates.
  • Reduced sensor count and sampling rate make the technique more practical for real-world applications.
  • Frequency band delineation is crucial for optimizing the accuracy of this novel localization technique.