Title :
Numerical analysis of wave generation and propagation in a focused surface acoustic wave device for potential microfluidics applications
Author :
Sankaranarayanan, Subramanian K R S ; Bhethanabotla, Venkat R.
Author_Institution :
Dept. of Chem. Eng., Univ. of South Florida, Tampa, FL
fDate :
3/1/2009 12:00:00 AM
Abstract :
We develop a 3-D finite element model of a focused surface acoustic wave (F-SAW) device based on LiNbO/sub 3/to analyze the wave generation and propagation characteristics for devices operating at MHz frequencies with varying applied input voltages. We compare the F-SAW device to a conventional SAW device with similar substrate dimensions and transducer finger periodicity. SAW devices with concentrically shaped focused interdigital transducer fingers (F-IDTs) are found to excite waves with high intensity and high beam-width compression ratio, confined to a small localized area. F-SAW devices are more sensitive to amplitude variations at regions close to the focal point than conventional SAW devices having uniform IDT configuration. We compute F-SAW induced streaming forces and velocity fields by applying a successive approximation technique to the Navier-Stokes equation (Nyborg´s theory). The maximum streaming force obtained at the focal point varies as the square of the applied input voltage. Computed streaming velocities at the focal point in F-SAW devices are at least an order of magnitude higher than those in conventional SAW devices. Simulated frequency response indicates higher insertion losses in F-SAW devices than in conventional devices, reflecting their greater utility as actuators than as sensors. Our simulation findings suggest that F-SAW devices can be utilized effectively for actuation in microfluidic applications involving diffusion limited transport processes.
Keywords :
Navier-Stokes equations; finite element analysis; interdigital transducers; surface acoustic wave devices; wave propagation; 3-D finite element model; Navier-Stokes equation; focused surface acoustic wave device; frequency response; interdigital transducer fingers; wave generation; wave propagation; Acoustic propagation; Acoustic waves; Character generation; Computational modeling; Fingers; Finite element methods; Microfluidics; Numerical analysis; Surface acoustic wave devices; Voltage;
Journal_Title :
Ultrasonics, Ferroelectrics, and Frequency Control, IEEE Transactions on
DOI :
10.1109/TUFFC.2009.1079