Title :
P3R-6 A Lumped Circuit Model for the Mutual Radiation Impedance of Acoustic Array Elements
Author :
Bozkurt, Ayhan ; Yamaner, F. Yalcin
Author_Institution :
Acoust. Group, Sabanci Univ., Istanbul
Abstract :
Closely spaced transducer elements used in ultrasonic imaging suffer from cross-coupling via the fluid medium. Circuit models for transducer elements in ultrasonic arrays have to account for the coupling effect for an accurate representation of their radiation impedance. In this paper, we present a circuit model for the cross-coupling effects among capacitive micromachined ultrasonic transducer (cMUT) elements. Using the finite element method (FEM) we first show that the mutual radiation impedance of cMUT cells with a physical distance much smaller that the acoustic wavelength obey the analytic results derived for plane piston transducers. Then, we show that this mutual impedance can be modeled by an electrical RLC tank circuit suitable to be used in general circuit simulators. The circuit shows 80% percent accuracy in between 5 to 15 MHz for a cMUT resonant frequency of 11.8 MHz. Found element values for R, L and, C components are 0.268 mOmega, 4.156 pH and, 49.946 muF respectively. We then combine this circuit with a previously proposed model for the self radiation impedance of a cMUT cell to yield an equivalent circuit representation that accounts for the cross-coupling effect. The proposed equivalent circuit proves itself to be useful in the analysis of transceiver front-end integrated circuits where an accurate transducer model is compulsory for optimizing circuit performance
Keywords :
RLC circuits; acoustic emission; acoustic impedance; coupled circuits; equivalent circuits; finite element analysis; network analysis; ultrasonic transducer arrays; ultrasonic waves; 0.268 muohm; 49.946 muF; 5 to 15 MHz; FEM; acoustic array elements; acoustic wavelength; cMUT cell self radiation impedance; cMUT cells; cMUT resonant frequency; capacitive micromachined ultrasonic transducer cells; circuit performance optimization; cross-coupling effect; electrical RLC tank circuit; equivalent circuit; finite element method; lumped circuit model; mutual radiation impedance; transceiver front-end integrated circuit analysis; transducer element circuit models; transducer model; ultrasonic arrays; ultrasonic imaging; Acoustic arrays; Acoustic transducers; Coupling circuits; Equivalent circuits; Impedance; Integrated circuit modeling; RLC circuits; Ultrasonic imaging; Ultrasonic transducer arrays; Ultrasonic transducers;
Conference_Titel :
Ultrasonics Symposium, 2006. IEEE
Conference_Location :
Vancouver, BC
Print_ISBN :
1-4244-0201-8
Electronic_ISBN :
1051-0117
DOI :
10.1109/ULTSYM.2006.295