Particles held in a fluid suspension and within an acoustic standing wave experience an acoustic radiation force. The force causes particles to move to the pressure nodes of the acoustic field creating a concentrate, contributing to the sensing of particles or cells. To predict the performance of devices relying on acoustic radiation forces and to assist with design, a simulation approach is used which combines several modelling techniques. Particle trajectories through the acoustic field and the resulting concentration profile are determined by resolving the forces experienced by particles numerically. This particle simulation model is further supported by more detailed analysis of the acoustic and fluid flow fields using finite element analysis and computational fluid dynamics, applicable to the microfluidic flow. These modelling techniques are applied to the simulation of a microfluidic ultrasonic particle separator, driven using a printed PZT transducer and relying on silicon and Pyrex etch fabrication. The device issues particle concentrated and clarified flow through two outlets, respectively. Test data taken from a fabricated device is used to evaluate the simulation approach which correlate well with eachother. The simulation approach is used successfully to redesign the acoustic and fluid geometry and to predict the influence of operating conditions.
[1]
Neil M. White,et al.
Performance of a micro-engineered ultrasonic particle manipulator
,
2005
.
[2]
M Hill,et al.
A dual frequency, ultrasonic, microengineered particle manipulator.
,
2004,
Ultrasonics.
[3]
Neil M. White,et al.
Fluid modelling of microfluidic separator channels
,
2005
.
[4]
Jeremy J. Hawkes,et al.
Force field particle filter, combining ultrasound standing waves and laminar flow
,
2001
.
[5]
Jeremy J Hawkes,et al.
Ultrasonic deposition of cells on a surface.
,
2004,
Biosensors & bioelectronics.
[6]
Donald L. Feke,et al.
Methodology for fractionating suspended particles using ultrasonic standing wave and divided flow fields
,
1995
.
[7]
R. J. Townsend,et al.
Modelling of particle paths passing through an ultrasonic standing wave.
,
2004,
Ultrasonics.
[8]
Martyn Hill,et al.
Modelling of layered resonators for ultrasonic separation.
,
2002,
Ultrasonics.