DocumentCode :
772536
Title :
Linear and nonlinear equivalent circuit modeling of CMUTs
Author :
Lohfink, Annette ; Eccardt, Peter-Christian
Author_Institution :
Siemens AG, Munich, Germany
Volume :
52
Issue :
12
fYear :
2005
Firstpage :
2163
Lastpage :
2172
Abstract :
Using piston radiator and plate capacitance theory capacitive micromachined ultrasound transducers (CMUT) membrane cells can be described by one-dimensional (1-D) model parameters. This paper describes in detail a new method, which derives a 1-D model for CMUT arrays from finite-element methods (FEM) simulations. A few static and harmonic FEM analyses of a single CMUT membrane cell are sufficient to derive the mechanical and electrical parameters of an equivalent piston as the moving part of the cell area. For an array of parallel-driven cells, the acoustic parameters are derived as a complex mechanical fluid impedance, depending on the membrane shape form. As a main advantage, the nonlinear behavior of the CMUT can be investigated much easier and faster compared to FEM simulations, e.g., for a design of the maximum applicable voltage depending on the input signal. The 1-D parameter model allows an easy description of the CMUT behavior in air and fluids and simplifies the investigation of wave propagation within the connecting fluid represented by FEM or transmission line matrix (TLM) models.
Keywords :
acoustic wave propagation; equivalent circuits; finite element analysis; micromachining; ultrasonic transducers; FEM simulations; TLM models; capacitive micromachined ultrasound transducers membrane cells; complex mechanical fluid impedance; finite-element methods simulations; harmonic FEM analyses; linear equivalent circuit modeling; medical ultrasound diagnostic; nonlinear equivalent circuit modeling; one-dimensional model parameters; piston radiator; plate capacitance theory; static FEM analyses; transmission line matrix models; wave propagation; Biomembranes; Capacitance; Circuit simulation; Equivalent circuits; Finite element methods; Harmonic analysis; Pistons; Transmission line matrix methods; Ultrasonic imaging; Ultrasonic transducers; Computer Simulation; Computer-Aided Design; Electric Capacitance; Electronics, Medical; Equipment Design; Equipment Failure Analysis; Finite Element Analysis; Linear Models; Miniaturization; Nonlinear Dynamics; Transducers; Ultrasonography;
fLanguage :
English
Journal_Title :
Ultrasonics, Ferroelectrics, and Frequency Control, IEEE Transactions on
Publisher :
ieee
ISSN :
0885-3010
Type :
jour
DOI :
10.1109/TUFFC.2005.1563260
Filename :
1563260
Link To Document :
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