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8. Summary and conclusions

The fractionation process of suspended particles due to the effect of acoustic standing wave and laminar flow fields has been mathematically modeled through the calculation of particle trajectories and displacement. The particle trajectories move towards the pressure node planes, lying at half wavelength intervals, so that the average distances between the particles are decreased considerably.

Using the mathematical model developed to calculate the trajectories and concentration of the micron size particles suspended in a fluid with acoustic standing waves results in rather accurate qualitative and quantitative results. Because no exact solution exists and there are extremely large parameters in the governing equations, it seemed necessary to supplement standard numerical procedures with somewhat novel approximate asymptotic methods. This approach yields solutions that are in closer qualitative and quantitative agreement with observed results than other methods in the literature. SiC particles were used to capture the individual particle displacements. After using statistical analysis and a data optimization procedure, for input power levels between 3.0 W and 5.0 W, the experimental data matched with the mathematical model prediction.

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