DocumentCode :
20347
Title :
Fast time-domain modeling of fluid-coupled cMUT cells: from the single cell to the 1-D linear array element
Author :
Senegond, N. ; Boulme, Audren ; Plag, C. ; Teston, F. ; Certon, Dominique
Author_Institution :
INSERM U930, Francois-Rabelais Univ., Tours, France
Volume :
60
Issue :
7
fYear :
2013
fDate :
Jul-13
Firstpage :
1505
Lastpage :
1518
Abstract :
We report a fast time-domain model of fluid-coupled cMUTs developed to predict the transient response-i.e., the impulse pressure response-of an element of a linear 1-D array. Mechanical equations of the cMUT diaphragm are solved with 2-D finite-difference schemes. The time-domain solving method is a fourth-order Runge-Kutta algorithm. The model takes into account the electrostatic nonlinearity and the contact with the bottom electrode when the membrane is collapsed. Mutual acoustic coupling between cells is introduced through the numerical implementation of analytical solutions of the impulse diffraction theory established in the case of acoustic sources with rectangular geometry. Processing times are very short: they vary from a few minutes for a single cell to a maximum of 30 min for one element of an array. After a description of the model, the impact of the nonlinearity and the pull-in/pull-out phenomena on the dynamic behavior of the cMUT diaphragm is discussed. Experimental results of mechanical displacements obtained by interferometric measurements and the acoustic pressure field are compared with simulations. Different excitation signals-high-frequency bandwidth pulses and toneburst excitations of varying central frequency-were chosen to compare theory with experimental results.
Keywords :
Runge-Kutta methods; acoustic wave interferometry; electrostatics; finite difference methods; time-domain analysis; ultrasonic transducers; 1D linear array element; 2D finite-difference schemes; acoustic coupling; acoustic pressure field; acoustic sources; cMUT diaphragm; dynamic behavior; electrostatic nonlinearity; excitation signals; fluid-coupled cMUT cells; fourth-order Runge-Kutta algorithm; high-frequency bandwidth pulses; impulse diffraction theory; impulse pressure response; interferometric measurements; linear 1D array; mechanical displacements; mechanical equations; numerical implementation; processing times; pull-in phenomena; pull-out phenomena; rectangular geometry; time-domain modeling; time-domain solving method; toneburst excitations; transient response; varying central frequency;
fLanguage :
English
Journal_Title :
Ultrasonics, Ferroelectrics, and Frequency Control, IEEE Transactions on
Publisher :
ieee
ISSN :
0885-3010
Type :
jour
DOI :
10.1109/TUFFC.2013.2723
Filename :
6552401
Link To Document :
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