Claims
- 1. An apparatus for high flux photocatalytic pollution control comprising:
a longitudinal light source having a first end and a last end; a first stage photocatalytic reactor having a first length about the first end of the light source, for converting a first portion of a target pollutant to a predetermined level of destruction and removal efficiency (DRE) by passing the target pollutant through the first stage photocatalytic reactor, and a last stage photocatalytic reactor having a last length about the last end of the light source for converting a last portion of the target pollutant passing through the last stage photocatalytic reactor to a selected final DRE level.
- 2. The apparatus for high flux photocatalytic pollution control of claim 1, wherein the longitudinal light source includes:
a single low-pressure mercury vapor lamp.
- 3. The apparatus for high flux photocatalytic pollution control of claim 1, wherein the longitudinal light source includes:
a cluster of approximately two to approximately seven low-pressure mercury vapor lamps.
- 4. The apparatus for high flux photocatalytic pollution control of claim 1, wherein the longitudinal light source includes:
a single medium to high-pressure mercury vapor lamp.
- 5. The apparatus for high flux photocatalytic pollution control of claim 1, wherein the first stage reactor and the last stage reactor each comprise:
an identical catalytic material.
- 6. The apparatus for high flux photocatalytic pollution control of claim 1, wherein the first stage reactor and the last stage reactor each comprise:
a different catalytic material.
- 7. The apparatus for high flux photocatalytic pollution control of claim 5, wherein the photocatalytic material includes:
an elemental composition of Silicon, Oxygen, and Titanium.
- 8. The apparatus for high flux photocatalytic pollution control of claim 7, wherein the composition includes:
approximately 0% to approximately 50% by weight Silicon; approximately 25% to approximately 75% by weight Oxygen; and approximately 5% to approximately 75% by weight Titanium.
- 9. The apparatus for high flux photocatalytic pollution control of claim 8, wherein the composition includes:
approximately 0% to approximately 35% by weight Silicon; approximately 30% to approximately 60% by weight Oxygen; and approximately 10% to approximately 60% by weight Titanium.
- 10. The apparatus for high flux photocatalytic pollution control of claim 5, wherein the photocatalytic material includes:
an elemental composition of Silicon, Oxygen, Cadmium and Sulfur.
- 11. The apparatus for high flux photocatalytic pollution control of claim 10, wherein the composition includes:
approximately 25% to approximately 55% by weight Silicon; approximately 30% to approximately 60% by weight Oxygen; approximately 5% to approximately 35% by weight Cadmium; and approximately 1% to approximately 10% by weight Sulfur.
- 12. The apparatus for high flux photocatalytic pollution control of claim 1, wherein the first stage reactor and the last stage reactor each contain:
a fluidized bed of photocatalytic material.
- 13. The apparatus for high flux photocatalytic pollution control of claim 1, wherein the first stage reactor includes:
an outer impermeable plenum that rotates about a central longitudinal axis with a first end about the first end of the light source and connected to an outer edge of a rotating impermeable annular inlet plate, and a last end before the second end of the light source and connected to an outer edge of a rotating impermeable annular outlet plate, wherein, an inner edge of the rotating impermeable annular inlet plate connects to an inlet flange supported by an inlet bearing and inlet gears and the inner edge of the rotating impermeable annular outlet plate connects to an outlet flange supported by an outlet bearing, a first permeable grid inside and rotating together with the outer impermeable plenum, and having a first rim connected to an outer edge of a first impermeable annular plate and a second rim connected to a first annular baffle adjacent the outer edge, wherein, an inner edge of the first impermeable annular plate is connected to a first location on the light source and outer edge of the first annular baffle is connected to the outer impermeable rotating plenum, and wherein the last stage reactor includes:
a last permeable grid inside and rotating together with the outer impermeable plenum, and having a first rim connected to an outer edge of a last impermeable annular plate and a second rim connected to a rotating impermeable annular outlet plate adjacent an outer edge, wherein an inner edge of the last impermeable annular plate is connected adjacent the second end of the light source, wherein fluid flows into the first reaction stage through an inlet port into a space between the first permeable grid and the outer impermeable plenum and through a fluidized shell of a photocatalytic particle bed and into a space between the first fluidized bed and first end of the light source and then outward through a space between the first annular baffle and the last impermeable annular plate into a space between the last grid and the outer plenum and through a last fluidized shell of photocatalytic particle bed, into an interior of a last reactor stage into a space between the last grid and the second end of the light source and outward through an outlet port adjacent to the second end of the light source.
- 14. The apparatus for high flux photocatalytic pollution control of claim 1, wherein the first photocatalytic reactor and the last photocatalytic reactor each include:
a catalytic media having an operating temperature of at least 150° C.
- 15. The apparatus for high flux photocatalytic pollution control of claim 1, wherein the first photocatalytic reactor and the last photocatalytic reactor each include:
a catalytic media at least partially translucent to UV light, wherein high flux pollution control is achieved without any rotation of the first photocatalytic reactor and the last photocatalytic reactor.
- 16. The apparatus for high flux photocatalytic pollution control of claim 1, further comprising:
a second stage photocatalytic reactor between the first stage photocatalytic reactor and the last stage photocatalytic reactor.
- 17. A method of high flux photocatalytic pollution control comprising the steps of:
passing a target pollutant into a first photocatalytic reactor, a first catalytic media and a second catalytic media, and at least one high flux light source; and converting the target pollutant that passes through the first catalytic media and the second catalytic media at a selected level of destruction and removal efficiency (DRE).
- 18. The method of high flux photocatalytic pollution control of claim 17, wherein the passing step further comprises the step of:
orienting the first catalytic media and the second catalytic media in series to one another.
- 19. The method of high flux photocatalytic pollution control of claim 17, wherein the passing step further comprises the step of:
orienting the first catalytic media and the second catalytic media in parallel to one another.
- 20. The method of high flux photocatalytic pollution control of claim 17, wherein the at least one light source further includes:
a single high flux lamp for both the first catalytic media and the second catalytic media.
- 21. The method of high flux photocatalytic pollution control of claim 17, wherein the at least one light source further includes:
a first high flux lamp for the first catalytic media and a second high flux lamp for the second catalytic media.
- 22. The method of high flux photocatalytic pollution control of claim 17, further comprising the steps of:
passing the target pollutant into a second photocatalytic reactor having at least one catalytic media, and at least one high flux light source; and converting the target pollutant that passes through the second photocatalytic reactor to a second selected level of destruction and removal efficiency (DRE).
- 23. The method of high flux photocatalytic pollution control of claim 22, further comprising the step of:
orientating the first photocatalytic reactor in series with the second photocatalytic reactor.
- 24. The method of high flux photocatalytic pollution control of claim 22, further comprising the step of:
orientating the first photocatalytic reactor in parallel with the second photocatalytic reactor.
- 25. The method of high flux photocatalytic pollution control of claim 17, wherein the first catalytic media and the second catalytic media have different lengths.
- 26. The method of high flux photocatalytic pollution control of claim 17, wherein the first catalytic media and the second catalytic media have identical length.
- 27. The method of high flux photocatalytic pollution control of claim 22, wherein the first reactor and the second reactor have different lengths.
- 28. The method of high flux photocatalytic pollution control of claim 22, wherein the first reactor and the second reactor have identical lengths.
- 29. The method of high flux photocatalytic pollution control of claim 17, further comprising the step of:
rotating the first catalytic media and the second catalytic media together with the first reactor.
- 30. The method of high flux photocatalytic pollution control of claim 22, further comprising the step of:
rotating the first reactor and the second reactor together.
- 31. A method of high flux photocatalytic pollution control, comprising the steps of:
passing a target pollutant into a photocatalytic reactor having at least one catalytic media, and at least one high flux light source; and converting the target pollutant that passes through the catalytic media to a selected level of destruction and removal efficiency (DRE).
- 32. The method of high flux photocatalytic pollution control of claim 31, further comprising the step of:
rotating the photocatalytic reactor.
Parent Case Info
[0001] This invention relates to processes and apparatus for photocatalytic, thermocatalytic or combined photo- and thermocatalytic treatment of fluids containing undesirable compounds for pollution control and energy production applications and was made with the financial support of the U.S. Department of Defense, Naval Surface Warfare Center, Indian Head Division under contract number N00174-91-C 0161. Office of Naval Research under Augmentation Awards for Science and Engineering Research Training Program, contract number N00041-93-1-0907, and Army Research Office under Defense University Research Instrumentation Program, contract number DAAH04-96-0295, and is a Continuation-In-Part of Provisional Application No. 60/107,236 filed Nov. 15, 1998, which is a Continuation-In-Part of Provisional Application No. 60/081,324 filed Apr. 10, 1998.
Provisional Applications (2)
|
Number |
Date |
Country |
|
60081324 |
Apr 1998 |
US |
|
60107236 |
Nov 1998 |
US |
Divisions (1)
|
Number |
Date |
Country |
Parent |
09288188 |
Apr 1999 |
US |
Child |
09775099 |
Feb 2001 |
US |