Title :
Computational method to determine reflected ultrasonic signals from arbitrary-geometry targets
Author :
Buiochi, F. ; Buiochi, Elaine ; Formigoni, Paulo ; Adamowski, J.
Author_Institution :
Mechatron. Eng. Dept., Univ. of Sao Paulo, Sao Paulo, Brazil
fDate :
4/1/2010 12:00:00 AM
Abstract :
A computational method based on the impulse response and on the discrete representation computational concept is proposed for the determination of the echo responses from arbitrary-geometry targets. It is supposed that each point of the transducer aperture can be considered as a source radiating hemispherical waves to the reflector. The local interaction with each of the hemispherical waves at the reflector surface can be modeled as a plane wave impinging on a planar surface, using the respective reflection coefficient. The method is valid for all field regions and can be performed for any excitation waveform radiated from an arbitrary acoustic aperture. The effects of target geometry, position, and material on both the amplitude and the shape of the echo response are studied. The model is compared with experimental results obtained using broadband transducers together with plane and cylindrical concave rectangular reflectors (aluminum, brass, and acrylic), as well as a circular cavity placed on a plane surface, in a water medium. The method can predict the measured echoes accurately. This paper shows an improved approach of the method, considering the reflection coefficient for all incident hemispherical waves arriving at each point of the target surface.
Keywords :
aluminium; brass; echo; organic compounds; transient response; ultrasonic reflection; ultrasonic transducers; Al; arbitrary geometry target; circular cavity; discrete representation computational concept; echo response; hemispherical waves; impulse response; reflection coefficient; transducer aperture; ultrasonic signal reflection; Acoustic reflection; Acoustic transducers; Acoustic waves; Aluminum; Apertures; Geometry; Shape; Surface acoustic waves; Surface waves; Ultrasonic transducers;
Journal_Title :
Ultrasonics, Ferroelectrics, and Frequency Control, IEEE Transactions on
DOI :
10.1109/TUFFC.2010.1504