DocumentCode
61176
Title
Multi-frequency time-reversal-based imaging for ultrasonic nondestructive evaluation using full matrix capture
Author
Chengguang Fan ; Mengchun Pan ; Feilu Luo ; Drinkwater, Bruce
Author_Institution
Coll. of Mechatron. Eng. & Autom., Nat. Univ. of Defense Technol., Changsha, China
Volume
61
Issue
12
fYear
2014
fDate
Dec. 2014
Firstpage
2067
Lastpage
2074
Abstract
In this paper, two multi-frequency time-reversal (TR)-based imaging algorithms are explored for application to the nondestructive evaluation (NDE) imaging of defects in solids: time reversal with multiple signal classification (TRMUSIC) and a related phase-coherent form (PC-MUSIC). These algorithms are tested with simulated and experimental ultrasonic array data acquired using the full matrix capture (FMC) process. The performance of these algorithms is quantified in terms of their spatial resolution and robustness to noise. The effect of frequency bandwidth is investigated and the results are compared with the single-frequency versions of these algorithms. It is shown that both TR-MUSIC and PCMUSIC are capable of resolving lateral targets spaced closer than the Rayleigh limit, achieving super-resolution imaging. TR-MUSIC can locate the positions of scatterers correctly, whereas the results from PC-MUSIC are less clear because of the presence of multiple peaks in the vicinity of target. However, an advantage of PC-MUSIC is that it can overcome the elongated point spread function that appears in TR-MUSIC images, and hence provide enhanced axial resolution. For high noise levels, TR-MUSIC and PC-MUSIC are shown to provide stable images and suppress the presence of artifacts seen in their single-frequency equivalents.
Keywords
image classification; matrix algebra; nondestructive testing; signal resolution; ultrasonic arrays; ultrasonic imaging; FMC process; NDE imaging; PC-MUSIC; Rayleigh limit; TR-based imaging algorithms; TRMUSIC; elongated point spread function; enhanced axial resolution; frequency bandwidth effect; full matrix capture process; high noise levels; multifrequency time-reversal-based imaging; related phase-coherent form; scatterer position; solid defect imaging; spatial resolution; super-resolution imaging; time reversal with multiple signal classification; ultrasonic array data; ultrasonic nondestructive evaluation; Arrays; Imaging; Noise; Spatial resolution; Symmetric matrices; Vectors;
fLanguage
English
Journal_Title
Ultrasonics, Ferroelectrics, and Frequency Control, IEEE Transactions on
Publisher
ieee
ISSN
0885-3010
Type
jour
DOI
10.1109/TUFFC.2014.006574
Filename
6968700
Link To Document