DocumentCode :
1062638
Title :
Disbond Thickness Evaluation Employing Multiple-Frequency Near-Field Microwave Measurements
Author :
Abou-Khousa, Mohamed ; Zoughi, R.
Author_Institution :
Univ. of Missouri-Rolla, Rolla
Volume :
56
Issue :
4
fYear :
2007
Firstpage :
1107
Lastpage :
1113
Abstract :
Near-field microwave nondestructive evaluation (NDE) techniques have shown great potential for disbond detection in multilayer dielectric composite structures. The high detection capability associated with these techniques stems from the fact that near-field microwave signals are sensitive to minute variations in the dielectric properties and geometry of the medium in which they propagate. In the past, the sensitivity of the near-field microwave NDE techniques to the presence and properties of disbonds in multilayer dielectric composites has been investigated extensively. However, a quantitative disbond thickness estimation method has yet to be introduced. In this paper, we propose a maximum-likelihood (ML) disbond thickness evaluation method utilizing multiple independent measurements obtained at different frequencies. We also introduce a statistical lower limit on the thickness resolution based on the mean-squared error in thickness estimation and a given confidence interval. The effectiveness of the proposed ML method is also verified by comparing simulation results with actual measurements.
Keywords :
composite materials; flaw detection; maximum likelihood estimation; mean square error methods; microwave measurement; thickness measurement; disbond detection; maximum-likelihood disbond thickness evaluation method; mean-squared error; multilayer dielectric composite structures; multiple-frequency near-field microwave measurements; near-field microwave nondestructive evaluation techniques; quantitative disbond thickness estimation method; Dielectric measurements; Frequency measurement; Geometry; Maximum likelihood detection; Maximum likelihood estimation; Microwave measurements; Microwave propagation; Microwave theory and techniques; Nonhomogeneous media; Thickness measurement; Maximum likelihood (ML); multiple frequency measurements; nondestructive evaluation (NDE); thickness estimation;
fLanguage :
English
Journal_Title :
Instrumentation and Measurement, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9456
Type :
jour
DOI :
10.1109/TIM.2007.899848
Filename :
4276997
Link To Document :
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