Title :
Simulation of short LSAW transducers including electrode massloading and finite finger resistance
Author :
Gamble, K.J. ; Malocha, D.C.
Author_Institution :
Sch. of Electr. Eng. & Comput. Sci., Central Florida Univ., Orlando, FL, USA
fDate :
10/1/2000 12:00:00 AM
Abstract :
The theory for a 2-D numerical analysis of acoustic wave generation from finite length LSAW transducer structures is presented. The massloading of the electrodes is incorporated through the use of the Finite Element Method (FEM). The substrate is modeled using both analytical and numerical means. The simulation is capable of extracting the individual bulk wave conductances from the overall conductance of a given device. Once the bulk wave conductances are calculated, the angular distribution of power radiated relative to the substrate surface can then be found. The simulation also includes the effect of finite electrode resistance through the use of a series equivalent resistance for each electrode in the structure. The paper will conclude by presenting simulation results for two separate freestanding transducers and a short transducer combined with a grating. The substrate materials used are 420 LiTaO3 and 640 LiNbO3 . The agreement between theory and experiment is shown
Keywords :
electrodes; finite element analysis; surface acoustic wave transducers; 2D numerical simulation; LSAW transducer; LiNbO3; LiTaO3; acoustic wave generation; angular distribution; bulk wave conductance; electrode mass loading; finger resistance; finite element method; grating; power radiation; series equivalent resistance; substrate surface; Acoustic transducers; Admittance; Circuit simulation; Electric resistance; Electrodes; Equivalent circuits; Fingers; Gratings; Surface resistance; Surface waves;
Conference_Titel :
Ultrasonics Symposium, 2000 IEEE
Print_ISBN :
0-7803-6365-5
DOI :
10.1109/ULTSYM.2000.922535