Claims
- 1. A fluidizing reactor comprising:
a column having an interior chamber extending between a first end and a second end of the column; a plenum situated circumferentially about the second end of the column and having a lower end, the plenum being designed to induce a substantially uniform flow pattern from fluid introduced into the plenum; an annulus positioned between the second end of the cylindrical column and the lower end of the plenum through which fluid from the plenum flows upwardly into the interior chamber of the column; and an inlet in communication with the plenum and through which fluid is introduced.
- 2. A fluidizing reactor as set forth in claim 1, wherein the column is substantially cylindrical along its entire length.
- 3. A fluidizing reactor as set forth in claim 1, wherein the plenum is situated circumferentially about an outer surface of the column, and a lower surface extends across the lower end of the plenum.
- 4. A fluidizing reactor as set forth in claim 1, wherein the plenum is situated circumferentially about the interior chamber of the column, and a lower surface extends across the second end of the column.
- 5. A fluidizing reactor as set forth in claim 1, wherein the flow pattern within the plenum is cyclonic throughout the plenum.
- 6. A fluidizing reactor as set forth in claim 1, wherein the annulus includes a flow director for directing fluid flow from the annulus toward a center of the column.
- 7. A fluidizing reactor as set forth in claim 1, wherein fluid flowing through the annulus from the plenum approximates a plug-flow pattern, in which the fluid flows uniformly upward cross-sectionally along the column.
- 8. A fluidizing reactor as set forth in claim 1, wherein fluid exiting through the plenum has a velocity higher than the velocity of fluid within the plenum.
- 9. A fluidizing reactor as set forth in claim 1, wherein the inlet is in tangentially communication with the plenum, so as to impart a cyclonic flow pattern to the fluid introduced through the inlet and into the plenum.
- 10. A fluidizing reactor as set forth in claim 1, further including a deflector positioned in axial alignment within the interior chamber and adjacent the annulus, so as to enhance fluid flow from the annulus upwardly and toward a center of the interior chamber.
- 11. A fluidizing reactor as set forth in claim 10, wherein the deflector is conical having a rising gradient which terminates in an apex at the center of the column.
- 12. A fluidizing reactor as set forth in claim 1, further including a bed of granular material substantially denser than the fluid within the chamber.
- 13. A fluidizing reactor as set forth in claim 12, wherein the bed of granular material is of a sufficient height, such that fluid flowing through the annulus causes a homogenous expansion of the bed, so as to generate a suspension of the granular material with minimal turbulence along an upper surface of the bed.
- 14. A fluidizing reactor as set forth in claim 1, further including an outlet in communication with the interior chamber of the column and through which fluid moving upwardly from within the interior chamber may be removed therefrom.
- 15. A fluidizing reactor as set forth in claim 14, further including an upper enclosure extending across the first end of the column, so as to pressurize the fluid within the reactor to facilitate advancement of fluid through the outlet to a level higher than the level of the outlet.
- 16. A system for treatment of fluid, the system comprising:
a source of fluid to be treated; a first pathway connected to the source for directing fluid therefrom; a fluidizing reactor connected to the first pathway for receiving the fluid from the source, the reactor comprising a column having an interior chamber extending longitudinally along the column, a plenum situated circumferentially about a bottom end of the column, an annulus positioned at a lower end of the plenum for fluid communication between the plenum and the interior chamber of the column, an inlet for introducing fluid from the source into the plenum, and an outlet for removal of fluid from within the interior chamber; a second pathway for directing fluid away from the outlet; and a receptor for receiving fluid from the second pathway.
- 17. A system as set forth in claim 16, further including a first pressurizing mechanism to facilitate fluid flow from the source along the first pathway.
- 18. A system as set forth in claim 17, wherein the first pressurizing mechanism includes a positive pressure pump.
- 19. A system as set forth in claim 16, wherein fluid from the source flows along the first pathway by way of gravity.
- 20. A system as set forth in claim 16, wherein fluid introduced from the first pathway through the inlet flows in a cyclonic pattern along the plenum.
- 21. A system as set forth in claim 16, further including a second pressurizing mechanism for pressurizing the fluid within the interior chamber to facilitate removal of fluid through the outlet, along the second pathway, and into the receptor.
- 22. A system as set forth in claim 21, wherein the second pressurizing mechanism includes an enclosure extending across an upper end of the column.
- 23. A system as set forth in claim 16, wherein the reactor includes a bed of granular material substantially denser than the fluid within the chamber.
- 24. A system as set forth in claim 23, wherein the bed of granular material is of a sufficient height, such that fluid flowing through the annulus causes a homogenous expansion of the bed, so as to generate a suspension of the granular material with minimal turbulence along an upper surface of the bed.
- 25. A system as set forth in claim 16, wherein the source of fluid to be treated also acts as the receptor of fluid from the second pathway.
- 26. A system as set forth in claim 16, wherein the source of fluid to be treated and the receptor of fluid from the second pathway are spatially positioned from one another.
- 27. A system as set forth in claim 16, wherein the source of fluid to be treated and the receptor of fluid from the second pathway are fluid treatment devices.
- 28. A method for treatment of fluid, the method comprising:
generating a flow direction for the fluid to be treated which approximates a cyclonic pattern; permitting the flow direction to spiral downward while maintaining the cyclonic pattern; directing the flow direction upwardly and centrally through the cyclonic pattern; and introducing a treating material to the upwardly and centrally flowing fluid for treatment of the fluid.
- 29. A method as set forth in claim 28, wherein the step of generating includes supporting the cyclonic pattern in a substantially tubular profile.
- 30. A method as set forth in claim 29, wherein the step of directing includes permitting the fluid to move in a plug-flow pattern, in which the fluid flows uniformly upward cross-sectionally through the tubular profile.
- 31. A method as set forth in claim 28, wherein in the step of introducing, the treating material includes a bed of granular material substantially denser than the fluid.
- 32. A method as set forth in claim 28, wherein in the step of introducing, the treating material includes a material capable of being uniformly mixed with the fluid.
- 33. A method for treatment of fluid, the method comprising:
providing a fluidizing reactor for receiving fluid to be treated from a source, the reactor comprising a column having an interior chamber extending longitudinally along the column, a plenum situated circumferentially about a bottom end of the column, an annulus positioned at a lower end of the plenum for fluid communication between the plenum and the interior chamber of the column, an inlet for introducing fluid from the source into the plenum, and an outlet for removal of fluid from within the interior chamber; introducing the fluid from the source through the inlet and into the plenum; directing the fluid circumferentially about the plenum toward the annulus; permitting the fluid to exit from the plenum through the annulus and into the interior chamber; subjecting the fluid to an upward flow from a bottom portion of the interior chamber, through a bed of granular treatment material positioned at a bottom portion of the interior chamber, to an upper portion of the interior chamber; and removing the fluid treated from the upper portion of the interior chamber through the outlet.
- 34. A method as set forth in claim 33, wherein the step of introducing includes imparting a tangential flow to the fluid as it enters the plenum.
- 35. A method as set forth in claim 34, wherein the step of imparting includes generating a cyclonic flow as the fluid moves along within the plenum.
- 36. A method as set forth in claim 33, wherein the step of permitting includes deflecting the fluid, so as to enhance fluid flowing from the annulus upwardly and toward a center of the interior chamber.
- 37. A method as set forth in claim 33, wherein the step of subjecting includes allowing the fluid to move upwardly in a plug-flow pattern, in which the fluid flows uniformly upward cross-sectionally through the bed of granular material and the interior chamber.
- 38. A method as set forth in claim 37, wherein the step of allowing includes causing a homogenous expansion of the bed, so as to generate a suspension of the granular material with minimal turbulence along an upper surface of the bed.
- 39. A method as set forth in claim 33, wherein the step of removing includes generating a positive pressure within the interior chamber, so as to facilitate removal of fluid from the outlet.
- 40. A method as set forth in claim 39, wherein the step of generating includes advancing fluid removed from the outlet to a level higher than the level of the outlet.
- 41. A method treatment of fluid, the method comprising:
providing a fluidizing reactor for receiving fluid to be treated from a source, the reactor comprising a column having an interior chamber extending longitudinally along the column, a plenum situated circumferentially about a bottom end of the column, an annulus positioned at a lower end of the plenum for fluid communication between the interior chamber of the column and the plenum, an inlet for introducing fluid from the source into the interior of the chamber, and an outlet for removal of fluid from within the plenum; introducing the fluid from the source through the inlet and into the interior chamber; subjecting the fluid to an downward flow from an upper portion of the interior chamber, through a bed of granular treatment material positioned at a bottom portion of the interior chamber; directing the fluid treated across the bed through the annulus and into the plenum; permitting the treated fluid to flow upward within the plenum; and removing the treated fluid treated from the plenum through the outlet.
RELATED U.S. APPLICATION(S)
[0001] This application claims priority to U.S. Provisional Application Serial No. 60/139,437 filed Jun. 16, 1999, which is hereby incorporated herein by reference.
Provisional Applications (1)
|
Number |
Date |
Country |
|
60139437 |
Jun 1999 |
US |
Continuations (1)
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Number |
Date |
Country |
Parent |
09595704 |
Jun 2000 |
US |
Child |
10281636 |
Oct 2002 |
US |