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Nonlinear modulation technique for NDE with air-coupled ultrasound
E M Ballad1, S Yu Vezirov, K Pfleiderer
1Department of Physics, Moscow State University, Moscow 119899, Russia.
Ultrasonics
|March 30, 2004
Summary
This study introduces an air-coupled nonlinear acoustic modulation (NAM) technique for noncontact defect detection. The advanced method efficiently identifies cracks by analyzing unique nonlinear acoustic emissions, enabling remote imaging.
Area of Science:
- Nonlinear Acoustics
- Non-Destructive Testing
- Ultrasonic Wave Propagation
Background:
- Traditional nonlinear acoustic modulation (NAM) techniques offer high sensitivity for defect detection.
- Existing methods often require direct contact, limiting application flexibility.
- Noncontact ultrasound excitation provides remote defect localization and imaging capabilities.
Purpose of the Study:
- To enhance the flexibility and application scope of NAM by developing an air-coupled version.
- To combine noncontact ultrasound excitation with nonlinear methods for improved defect characterization.
- To investigate the nonlinear acoustic response of cracks and material inhomogeneities using air-coupled transducers.
Main Methods:
- Utilized a pair of focused air-coupled transducers for generating and receiving high-frequency waves (longitudinal or flexural) in plate-like samples.
- Excited low-frequency (LF) vibrations using a shaker or loudspeaker.
- Performed temporal and spectral analysis of the received signals to identify nonlinear modulation and frequency side-bands.
Main Results:
- Demonstrated highly efficient nonlinear amplitude modulation and multiple frequency side-bands for sound transmission and flexural wave propagation through cracked defects.
- Observed negligible nonlinear modulation for large/medium inclusions and material inhomogeneities, distinguishing them from cracks.
- Observed a new subharmonic NAM mode at high excitation levels and the radiation of very high-order harmonics (>>100) from crack vibrations.
Conclusions:
- The developed air-coupled NAM technique effectively detects and images cracks remotely through their unique nonlinear acoustic emissions.
- This noncontact approach significantly expands the applicability of NAM for defect detection in various materials.
- The high-order harmonic radiation from cracks provides a distinct signature for sensitive and specific crack imaging.