Claims
- 1. A centrifugal clarifier comprising:
a cylindrical separation chamber that is attachable to a drive motor; an annular lid which attaches to the top of the separation chamber; a sterile, disposable container which fits into said separation chamber; a disposable lid which attaches to the top of the disposable container; a feed port which passes through the disposable lid and is capable of passing a liquid or a liquid-solid mixture from an outside source into the disposable chamber; and an effluent port which passes through the lid and is capable of passing a liquid from the disposable chamber into an outside receptacle; wherein the feed port and effluent port are structured and arranged to allow continuous flow into and out of the disposable chamber; wherein the liquid-solid mixture is fed into the disposable container through the feed port; wherein the separation chamber can spin around the longitudinal axis of the separation chamber so that the liquid-solid mixture fills the disposable container from the radially most outward bottom portion of the disposable container upwards and inwards to the topmost center portion of the disposable container; wherein the solid is separated from the liquid-solid mixture due to the centrifugal force of the rotating separation chamber until the disposable container is almost filled with the separated solid; and wherein the clarified liquid is released from the disposable container through the effluent port.
- 2. The centrifugal clarifier of claim 1,
wherein the feed port is connected to a first tube which runs along the longitudinal axis of the separation chamber and carries liquid or a liquid-solid mixture from the feed port to the bottom of the disposable container; and wherein the effluent port is connected to a second tube which runs along the longitudinal axis of the separation chamber and carries liquid from the disposable container to the effluent port.
- 3. The centrifugal clarifier of claim 2, wherein the first tube connected to the feed port is located concentrically within the second tube connected to the effluent port.
- 4. The centrifugal clarifier of claim 2 or 3, wherein the tube connected to the effluent port has slotted holes positioned so that liquid from the disposable container may pass through the wall of the tube into the interior space of the tube.
- 5. The centrifugal clarifier of claim 4,
wherein the slotted effluent tube is connected to a flat disk, located a short distance below the lid of the separation chamber, which circumferentially encompasses the effluent tube and extends perpendicularly from the tube for a short distance; and wherein an air bubble is trapped below the disk so that it circumferentially encompasses the effluent tube along the entire longitudinal axis between the disk and the bottom of the disposable container so that liquid leaving the disposable container though the effluent port is only able to pass through the wall of the effluent tube for the short distance between the top of the disk and the bottom of the lid of the disposable container.
- 6. The centrifugal clarifier of claim 4, wherein the tubes connected to the feed port and the effluent port are concentrically located within a cylindrical membrane core such that the liquid from the disposable container passes through the membrane core before passing through the slotted wall of the effluent tube.
- 7. The centrifugal clarifier of claim 6, wherein the pores of the membrane core are of a size such that the smallest particle present in a liquid-solid mixture is unable to pass through the membrane core while the liquid is able to pass through the membrane core.
- 8. The centrifugal clarifier of clam 6, wherein the membrane core rotates with the separation chamber around the longitudinal axis of the separation chamber.
- 9. The centrifugal clarifier of claim 8, wherein the membrane core rotates at approximately the same speed as the separation chamber.
- 10. The centrifugal clarifier of clam 6, wherein the membrane core is fixed with respect to the rotating separation chamber.
- 11. The centrifugal clarifier of claim 1, wherein the sterile, disposable container is a flexible plastic bag that balloons out under centrifugal force to conform to the walls of the separation chamber or a semi-rigid material that maintains its shape outside the centrifuge but can deform slightly under the centrifugal force inside the centrifuge to contact the supporting top, bottom, and side surfaces of the rotating chamber.
- 12. The centrifugal clarifier of claim 1, wherein the disposable container has handles at the top for removal of the disposable container from the separation chamber.
- 13. The centrifugal clarifier of claim 2, wherein a backflow cylindrical seal is located between the tube connected to the feed port and the tube connected to the effluent port to prevent air from escaping through the bottom of the effluent tube and ensure that the liquid solid mixture entering the disposable container from the feed port is unable to mix with the clarified liquid exiting through the effluent port.
- 14. The centrifugal clarifier of claim 1, wherein a pressure gauge located in the effluent line monitors the pressure inside the separation chamber.
- 15. The centrifugal clarifier of claim 1, wherein the throughput speed of the liquid-solid mixture is a function of the fill radius of the separation chamber.
- 16. The centrifugal clarifier of claim 1, wherein operation of the device is controlled by a microprocessor.
- 17. The centrifugal clarifier of claim 1, wherein the throughput speed of the liquid-solid mixture changes from a range of about 0.60 to about 30.00 liters per minute at fill radius of about 4.0 inches to a range of about 0.05 to about 5.00 liters per minute at a fill radius of about 1.0 inches.
- 18. The centrifugal clarifier of claim 1, wherein the maximum capacity of the separation chamber is about 10 liters of solid material.
- 19. The centrifugal clarifier of claim 1, wherein the capacity of the separation chamber is greater than 10 liters of solid material.
- 20. The centrifugal clarifier of claim 1, wherein the rotating and non-rotating parts of the disposable lid are sealed with a rotating face seal.
- 21. The centrifugal clarifier of claim 1, wherein the sterile, disposable container fits into the separation chamber so that all surfaces are substantially in contact with the internal mating surfaces of the separation chamber and annular lid.
- 22. A method for separating a liquid from a solid dispersed therein comprising the steps of:
providing a separation chamber and a sterile, disposable container which fits into said separation chamber; feeding a liquid-solid mixture into a cylindrical separation chamber through a feed port; spinning the separation chamber around the longitudinal axis so that the liquid-solid mixture fills the separation chamber from the radially most outward bottom portion of the separation chamber upwards and inwards to the topmost center portion of the separation chamber; separating the solid from the liquid-solid mixture due to the centrifugal force of the rotating separation chamber until the chamber is almost filled with the separated solid; and releasing the clarified liquid from the separation chamber through the effluent port.
- 23. The method of claim 22, wherein the throughput rate of the liquid-solid mixture entering through the feed port and the clarified liquid exiting through the effluent port is a function of the fill radius of the separation chamber.
- 24. The method of claim 22, wherein the separation chamber further comprises an annular lid that attaches to the separation chamber and holds in place the sterile, disposable container.
- 25. The method of claim 24, wherein the sterile and disposable container is a flexible plastic bag or a semi-rigid container.
- 26. The method of claim 22, wherein the liquid-solid mixture is growth media with cells suspended therein which is continuously fed from a fermentor into the separation chamber.
- 27. The method of claim 26, wherein the cells are separated from the growth media and stored in the sterile disposable container.
- 28. The method of claim 26, wherein
the cells are separated from the growth media; fresh growth media is added through the feed port to resuspend the pelleted cells; and the resuspended cells are fed back through the feed port into the fermentor.
- 29. The method of claim 26, wherein the fermentor has a capacity of about 10 liters of cells.
- 30. The method of claim 26, wherein the ferementor has a capacity of greater than 10 liters of cells.
- 31. The method of claim 22, wherein the steps of feeding a liquid-solid mixture and releasing the clarified liquid from the separation chamber are continuously performed.
- 32. The method of claim 22, wherein the separation chamber further comprises a membrane core, wherein tubes connected to the feed port and the effluent port are concentrically located within the membrane core such that the liquid from the disposable container passes through the membrane core before being released through the effluent port.
- 33. The method of claim 32, further comprising spinning the membrane core around the longitudinal axis of the separation chamber.
- 34. The method of claim 33, wherein the membrane core and the separation chamber are spun around the longitudinal axis of the separation chamber at approximately the same speed.
- 35. The method of claim 33, wherein the membrane core is spun around the longitudinal axis of the separation chamber at a speed that minimizes relative rotational movement between the liquid and the membrane core.
- 36. The method of claim 33, wherein the membrane core is spun around the longitudinal axis of the separation chamber at a speed that minimizes shear forces at the surface of the membrane core.
- 37. A method for separating a liquid from a solid dispersed therein comprising utilizing a centrifugal clarifier unit that comprises a centrifugation mechanism and a filtration mechanism in series, wherein the method comprises the steps of sedimenting heavier solids from the liquid by the centrifugation mechanism and removing lighter solids from the liquid by the filtration mechanism.
- 38. The method of claim 37, wherein the filtration mechanism comprises a membrane core having pores sized such that the smallest particle present in the liquid-solid mixture is unable to pass through the membrane core while the liquid is able to pass through the membrane core.
Parent Case Info
[0001] The present application claims the benefit of U.S. provisional application No. 60/196,193, filed on Apr. 11, 2000, incorporated herein by reference in its entirety.
Provisional Applications (1)
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Number |
Date |
Country |
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60196193 |
Apr 2000 |
US |