Vortex-enhanced reverse osmosis filtration device and methods
Preferred aspects of the present invention relate to advances in rotating, vortex-enhanced reverse osmosis filtration. More particularly, the filtration device and methods incorporate a rotational drive mechanism adapted to use the flow of pressurized process fluid to cause rotation of a rotor within a housing, thereby creating shear and Taylor vortices in the gap between the rotor and housing. The improvements disclosed herein facilitate continuous use of vortex-enhanced filtration for prolonged periods of time.
1. A device for rotational filtration, comprising:
a stationary housing having a bore with an inner wall, said housing also having an inlet port for directing a flow of pressurized process fluid into the device and a filtrate port for collecting a filtrate;
a freely-supported, self-centering rotor having an outer wall, a rotational drive means for converting the flow of pressurized process fluid into rotational energy, whereby said rotor rotates within said bore and wherein said rotational drive means comprises a plurality of turbine vanes on said rotor, said turbine vanes being positioned at least partially within a flow path of the pressurized process fluid; and
a filtration membrane attached to said inner wall of said bore.
2. The device of claim 1 , further comprising a gap between said rotor and said housing, wherein said gap is configured to facilitate formation of Taylor vortices within the gap when said rotor is turning within said bore.
3. The device of claim 2 , wherein said gap is sized so that the ratio of gap to radius is less than about 0.142.
4. The device of claim 3 , further comprising a layer of porous material located between said filtration membrane and said inner wall.
5. The device of claim 1 , wherein said rotor further comprises surface modifications adapted to create wake turbulence.
6. The device of claim 5 , wherein said surface modifications are longitudinal grooves.
7. The device of claim 1 , wherein said filtration membrane is selected from the group consisting of micro, macro, nano, dialysis and reverse osmosis membranes.
8. The device of claim 1 , further comprising at least two inlet ports arranged at substantially equal circumferential distances from one another, wherein the flow of pressurized process fluid against the turbine vanes on said rotor facilitates self-centering at a lower RPM.
9. The device of claim 1 , wherein said turbine vanes are shaped so as to allow said rotor to axially self-center within the flow path.
10. A method for filtering a solution and/or suspension to separate soluble and/or insoluble materials from a liquid filtrate, comprising the steps of:
providing a device comprising a stationary housing having at least one inlet port and at least one filtrate port, a freely-supported, self-centering rotor comprising a plurality of turbine vanes, and a filtration membrane affixed to the housing, between said at least one inlet port and said at least one filtrate port;
introducing the solution and/or suspension under pressure into said at least one inlet port, such that the solution and/or suspension flows across the turbine vanes causing the rotor to rotate within the housing;
allowing the rotor to rotate at a rate sufficient to self-center and to generate Taylor vortices in a gap between the rotor and the housing, thereby reducing concentration polarization along the filtration membrane; and
collecting the filtrate from the at least one filtrate port.
11. The filtration device of claim 1 , further comprising an outlet port.
12. The filtration device of claim 11 , wherein said outlet port comprises a valve adapted to maintain a constant filtration pressure.
13. The filtration device of claim 2 , wherein a diameter of said rotor varies along a length of said rotor such that said gap varies in width.