Abstract
Efficient separation technologies for multi-component liquid streams that eliminate waste and reduce energy consumption are needed. Current technologies suffer from high cost of energy, use of consumables, fouling, and limited separation efficiency of micron-sized particles. We propose a novel platform technology consisting of a large volume flow rate acoustophoretic phase separator based on ultrasonic standing waves. The acoustic resonator is designed to create a high intensity tree dimensional ultrasonic standing wave resulting in an acoustic radiation force that is larger tan the combined effects of fluid drag and buoyancy, and is therefore able to trap, i.e., hold stationary, the suspended phase. The action of the acoustic forces on the trapped particles results in concentration, agglomeration and/or coalescence of particles and droplets. Heavier than water particles are separated trough enhanced gravitational settling, and lighter particles through enhanced buoyancy. A first prototype consists of a 2 "by 1" flow chamber driven by a single 1" by 1" transducer at 2 MHz, with flow rates of 30 L/hr, and measured oil separation efficiencies in excess of 95%. A second prototype is designed to furter scale the system to flow rates of 150 L/hr. © 2013 Acoustical Society of America.
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CITATION STYLE
Dionne, J., McCarthy, B., Ross-Johnsrud, B., Masi, L., & Lipkens, B. (2013). Large volume flow rate acoustophoretic phase separator for oil water emulsion splitting. In Proceedings of Meetings on Acoustics (Vol. 19). https://doi.org/10.1121/1.4799373
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