Generation and reception of ultrasonic guided waves in composite plates using conformable piezoelectric transmitters and optical-fiber detectors

A condition monitoring nondestructive evaluation (NDE) system, combining the generation of ultrasonic Lamb waves in thin composite plates and their subsequent detection using an embedded optical fiber system is described. The acoustic source is of low profile with respect to the composite plate thickness, surface conformable, and able to efficiently launch a known Lamb wave mode, at operating frequencies between 100 and 500 kHz, over typical propagation distances of 100 to 500 mm. It incorporates both piezocomposite technology and interdigital design techniques to generate the fundamental symmetrical Lamb wave mode in both metallic and carbon-fiber composite plates. Linear systems and finite element modeling techniques have been used to evaluate the operation of the transducer structure, and this is supplemented by experimental verification of the simulated data. An optical fiber, either bonded to the surface or embedded across the length of the composite plate samples, is used to detect the propagating ultrasonic Lamb waves. Single mode silica fiber has been used in conjunction with a portable 633 nm Mach-Zehnder interferometer for signal demodulation and subsequent data acquisition. This hybrid system is shown to generate and detect the fundamental symmetrical Lamb wave (s/sub 0/) in both carbon-fiber and glass-fiber reinforced composite plates. Importantly, the system signal-to-noise ratio (SNR) associated with the acoustic source compares favorably with s/sub 0/ Lamb wave generation using a conventional transducer and angled perspex wedge arrangement.

[1]  B Culshaw,et al.  Surface-bonded and embedded optical fibers as ultrasonic sensors. , 1996, Applied optics.

[2]  J. Hossack,et al.  Finite-element analysis of 1-3 composite transducers , 1991, IEEE Transactions on Ultrasonics, Ferroelectrics and Frequency Control.

[3]  P. Cawley,et al.  The interaction of Lamb waves with defects , 1992, IEEE Transactions on Ultrasonics, Ferroelectrics and Frequency Control.

[4]  G. Tomlinson,et al.  Wavelet signal processing for enhanced Lamb-wave defect detection in composite plates using optical fiber detection , 1997 .

[5]  I. A. Viktorov Rayleigh and Lamb Waves , 1967 .

[6]  D.J. Powell,et al.  Flexible ultrasonic transducer arrays for nondestructive evaluation applications. I. The theoretical modeling approach , 1996, IEEE Transactions on Ultrasonics, Ferroelectrics and Frequency Control.

[7]  B. J. Darby,et al.  Surface Wave Filters , 1978 .

[8]  Butrus T. Khuri-Yakub,et al.  Hertzian contact transducers for nondestructive evaluation , 1996 .

[9]  C. Delebarre,et al.  Lamb waves generation using a flat multi-element array device , 1995, 1995 IEEE Ultrasonics Symposium. Proceedings. An International Symposium.

[10]  P. Cawley,et al.  The interaction of Lamb waves with delaminations in composite laminates , 1993 .

[11]  Paul D. Wilcox,et al.  Flexible Interdigital PVDF Lamb Wave Transducers for the Development of Smart Structures , 1997 .

[12]  M. Prudenziati,et al.  Elastic surface wave devices based on piezoelectric thick-films , 1996, IEEE Transactions on Ultrasonics, Ferroelectrics and Frequency Control.

[13]  A. J. Rogovsky,et al.  Development and application of ultrasonic dry-contact and air-contact C-scan systems for nondestructive evaluation of aerospace composites , 1991 .

[14]  G. Hayward,et al.  Applications of through-air ultrasound for rapid NDE scanning in the aerospace industry , 1996, IEEE Transactions on Ultrasonics, Ferroelectrics and Frequency Control.

[15]  I. A. Viktorov Rayleigh and Lamb Waves: Physical Theory and Applications , 1967 .

[16]  G. Hayward,et al.  Detection of ultrasonic Lamb waves in composite plates using optical-fibres , 1995, 1995 IEEE Ultrasonics Symposium. Proceedings. An International Symposium.

[17]  John A. Hossack,et al.  Unidimensional modeling of 1‐3 composite transducers , 1990 .

[18]  D. Jackson Monomode optical fibre interferometers for precision measurement , 1985 .

[19]  Gordon Hayward,et al.  Ultrasonic inspection of CFRP plates using surface-bonded optical fiber sensors , 1996, Smart Structures and Materials + Nondestructive Evaluation and Health Monitoring.

[20]  H. Kaczmarek,et al.  Ultrasonic Detection of Damage in CFRPs , 1995 .