DocumentCode
1184122
Title
Precompensated excitation waveforms to suppress harmonic generation in MEMS electrostatic transducers
Author
Zhou, Shiwei ; Reynolds, Paul ; Hossack, John
Author_Institution
Dept. of Biomed. Eng., Virginia Univ., Charlottesville, VA, USA
Volume
51
Issue
11
fYear
2004
Firstpage
1564
Lastpage
1574
Abstract
Microelectromechanical systems (MEMS) electrostatic-based transducers inherently produce harmonics as the electrostatic force generated in the transmit mode is approximately proportional to the square of the applied voltage signal. This characteristic precludes them from being effectively used for harmonic imaging (either with or without the addition of microbubble-based contrast agents). The harmonic signal that is nonlinearly generated by tissue (or contrast agent) cannot be distinguished from the inherent transmitted harmonic signal. We investigated two precompensation methods to cancel this inherent harmonic generation in electrostatic transducers. A combination of finite element analysis (FEA) and experimental results are presented. The first approach relies on a calculation, or measurement, of the transducer´s linear transfer function, which is valid for small signal levels. Using this transfer function and a measurement of the undesired harmonic signal, a predistorted transmit signal was calculated to cancel the harmonic inherently generated by the transducer. Due to the lack of perfect linearity, the approach does not work completely in a single iteration. However, with subsequent iterations, the problem becomes more linear and converges toward a very satisfactory result (a 18.6 dB harmonic reduction was achieved in FEA simulations and a 20.7 dB reduction was measured in a prototype experiment). The second approach tested involves defining a desired function [including a direct current (DC) offset], then taking the square root of this function to determine the shape of the required input function. A 5.5 dB reduction of transmitted harmonic was obtained in both FEA simulation and experimental prototypes test.
Keywords
electrostatic devices; finite element analysis; harmonic generation; iterative methods; micromechanical devices; transfer functions; ultrasonic transducers; MEMS electrostatic transducers; electrostatic force; finite element analysis; harmonic imaging; harmonic reduction; harmonic signal; inherent harmonic generation; iterations; microbubble based contrast agent; precompensated excitation waveforms; prototypes; tissue; transducer linear transfer function; transmit mode; transmitted signal distortion; Electrostatic measurements; Frequency conversion; Microelectromechanical systems; Micromechanical devices; Signal generators; Testing; Transducers; Transfer functions; Virtual prototyping; Voltage;
fLanguage
English
Journal_Title
Ultrasonics, Ferroelectrics, and Frequency Control, IEEE Transactions on
Publisher
ieee
ISSN
0885-3010
Type
jour
DOI
10.1109/TUFFC.2004.1367498
Filename
1367498
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