DocumentCode :
1764411
Title :
Simulation of ultrasonic array imaging of composite materials with defects
Author :
Humeida, Yousif ; Pinfield, Valerie J. ; Challis, Richard E. ; Wilcox, Paul ; Chuan Li
Author_Institution :
Electr. Syst. & Opt. Div., Univ. of Nottingham, Nottingham, UK
Volume :
60
Issue :
9
fYear :
2013
fDate :
Sep. 2013
Firstpage :
1935
Lastpage :
1948
Abstract :
Ultrasonic transducer arrays are extensively used for the nondestructive evaluation of materials for aerospace and other applications. However, their use with composites requires some technique development because of reflections at the layer boundaries and the effects of attenuation. When used in full matrix capture mode, algorithms such as the total focusing method (TFM) must be applied to obtain the image. In composite materials, improvement to the algorithm is required to include the effects of material anisotropy (affecting wave speed) and optimum aperture limits to optimize the signal-to-noise ratio and location detection for a defect in the material. This paper presents simulations of the ultrasonic array signals in multilayer anisotropic materials with and without a simulated defect. A kernel model for plane wave propagation in the material is combined with an angular spectrum decomposition (for finite transducer elements) and transducer frequency response, to model the full array signals. Inclusion of the defect is through its far-field scattering response. The model facilitates the study of imaging algorithm development by identification of the effects of anisotropy, signal-to-noise ratio, and aperture limit. An analytical method for the calculation of the effective group velocity in the composite at low frequency is demonstrated, permitting rapid calculation of time delay laws in practice.
Keywords :
acoustic signal processing; composite materials; delays; frequency response; multilayers; ultrasonic focusing; ultrasonic imaging; ultrasonic materials testing; ultrasonic propagation; ultrasonic reflection; ultrasonic scattering; ultrasonic transducer arrays; ultrasonic velocity; TFM; aerospace applications; angular spectrum decomposition; attenuation; defect detection; defective composite materials; effective group velocity; far-field scattering; finite transducer elements; full array signals; full matrix capture mode; kernel model; layer boundaries; location detection; multilayer anisotropic materials; nondestructive evaluation; optimization; optimum aperture limits; plane wave propagation; reflections; signal-to-noise ratio; simulated defect; time delay laws; total focusing method; transducer frequency response; ultrasonic array imaging; ultrasonic array signals; ultrasonic transducer arrays; wave speed; Acoustics; Arrays; Finite element analysis; Mathematical model; Nonhomogeneous media; Stress; Transducers;
fLanguage :
English
Journal_Title :
Ultrasonics, Ferroelectrics, and Frequency Control, IEEE Transactions on
Publisher :
ieee
ISSN :
0885-3010
Type :
jour
DOI :
10.1109/TUFFC.2013.2778
Filename :
6587402
Link To Document :
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