DocumentCode :
87435
Title :
Automatic optimal input command for linearization of cMUT output by a temporal target
Author :
Menigot, Sebastien ; Certon, Dominique ; Gross, Dominic ; Girault, Jean-Marc
Author_Institution :
IUT Ville d´Avray, Univ. Paris Ouest Nantere La Defense, Paris, France
Volume :
61
Issue :
10
fYear :
2014
fDate :
Oct. 2014
Firstpage :
1742
Lastpage :
1753
Abstract :
Capacitive micromachined ultrasonic transducers (cMUTs) are a promising alternative to the piezoelectric transducer. However, their native nonlinear behavior is a limitation for their use in medical ultrasound applications. Several methods based on the pre-compensation of a preselected input voltage have been proposed to cancel out the harmonic components generated. Unfortunately, these existing pre-compensation methods have two major flaws. The first is that the pre-compensation procedure is not generally automatic, and the second is that they can only reduce the second harmonic component. This can, therefore, limit their use for some imaging methods, which require a broader bandwidth, e.g., to receive the third harmonic component. In this study, we generalized the presetting methods to reduce all nonlinearities in the cMUT output. Our automatic pre-compensation method can work whatever the excitation waveform. The precompensation method is based on the nonlinear modeling of harmonic components from a Volterra decomposition in which the parameters are evaluated by using a Nelder-Mead algorithm. To validate the feasibility of this approach, the method was applied to an element of a linear array with several types of excitation often encountered in encoded ultrasound imaging. The results showed that the nonlinear components were reduced by up to 21.2 dB.
Keywords :
Volterra equations; capacitive sensors; ultrasonic transducers; Nelder-Mead algorithm; Volterra decomposition; automatic optimal input command; automatic precompensation method; capacitive micromachined ultrasonic transducer output linearization; encoded ultrasound imaging; excitation waveform; harmonic components; imaging methods; linear array element; medical ultrasound applications; native nonlinear behavior; nonlinear components; nonlinear modeling; preselected input voltage precompensation; temporal target; Acoustics; Bandwidth; Harmonic analysis; Imaging; Optimization; Probes; Transducers;
fLanguage :
English
Journal_Title :
Ultrasonics, Ferroelectrics, and Frequency Control, IEEE Transactions on
Publisher :
ieee
ISSN :
0885-3010
Type :
jour
DOI :
10.1109/TUFFC.2013.006330
Filename :
6910384
Link To Document :
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