Claims
- 1. A gas purification system for the effective sterilization of microorganisms within a waste effluent stream, the system comprising at least one light source connected by at least one optical connection positioned to provide a focused, controllable light output to a gas purifier, and a control mechanism, wherein the gas purifier is connected to a channel housing the waste effluent stream and the focused, controllable light output emitted thereby is projected into the waste effluent stream for producing at least one UV dose zone within the waste effluent stream for the effective sterilization of microorganisms in a gas.
- 2. The gas purification system according to claim 1, wherein the light source is an illuminator including at least one lamp, at least one optic, a housing, and a power supply.
- 3. The gas purification system according to claim 1, wherein the light source is at least one UV lamp.
- 4. The gas purification system according to claim 3, wherein the UV lamp is a high-intensity lamp.
- 5. The gas purification system according to claim 4, wherein the UV lamp is selected from the group consisting of an electrodeless lamp, a mercury halide lamp, a spectral calibration lamp, light emitting diodes (LEDs), lasers, and light emitting polymers.
- 6. The gas purification system according to claim 3, wherein the UV lamp emits light in the UVV and UVC wavelengths.
- 7. The gas purification system according to claim 3, wherein the light source includes at least one light source optical component positioned to provide a focused, controllable light output to a gas purifier.
- 8. The gas purification system according to claim 7, wherein the light source optical component is UV transmissive.
- 9. The gas purification system according to claim 7, wherein the light source optical component is UV reflective.
- 10. The gas purification system according to claim 10, wherein the at least one light source optical component is selected from the group consisting of reflectors, shutters, lenses, splitters, focalizers, mirrors, rigid and flexible light guides, homogenizer, mixing rods, manifolds and other couplers, filters, gratings, diffracters, gradient lenses, color wheels, off-axis reflectors, cascading reflectors, splitting reflectors, and combinations thereof.
- 11. The gas purification system according to claim 1, wherein the at least one optical connection is a fiber optic transmission line.
- 12. The gas purification system according to claim 1, wherein the fiber optic transmission line is removably connectable to the light source and the gas purifier.
- 13. The gas purification system according to claim 1, wherein the fiber optic transmission line is selected from the group of fiber optic transmission lines including acrylic lines, glass lines, liquid core lines, quartz lines, hollow core lines, core-sheath lines, dielectric coaxial lines, and combination thereof.
- 14. The gas purification system according to claim 1, wherein the gas purifier includes a dose zone that projects into the waste stream effluent.
- 15. The gas purification system according to claim 14, wherein the waste stream effluent channel housing is UV reflective.
- 16. The gas purification system according to claim 14, wherein the dose zone includes a portal for removable connection to a fiber optic transmission line.
- 17. The gas purification system according to claim 16, further including at least one portal optical component positioned between the portal opening and the interior of the gas purifier.
- 18. The gas purification system according to claim 17, wherein the at least one portal optical component is UV transmissive.
- 19. The gas purification system according to claim 17, wherein the at least one portal optical component is UV reflective.
- 20. The gas purification system according to claim 17, wherein the at least one portal optical component is selected from the group consisting of reflectors, shutters, lenses, splitters, focalizers, mirrors, rigid and flexible light guides, homogenizer, mixing rods, manifolds and other couplers, filters, gratings, diffracters, gradient lenses, color wheels, off-axis reflectors, cascading reflectors, splitting reflectors, and combinations thereof.
- 21. The gas purification system according to claim 14, wherein the dose zone uses enhanced two-dimensional design to improve the gas purification.
- 22. The gas purification system according to claim 14, wherein the dose zone uses enhanced three-dimensional design to improve the gas purification.
- 23. The gas purification system according to claim 14, wherein the dose zone includes a delivery device positioned within the waste effluent channel housing.
- 24. The gas purification system according to claim 23, wherein the delivery device includes at least one light emitter selected from the group consisting of side-emitting fiber optic transmission lines, end-emitting fiber optic transmission line, and combinations thereof.
- 25. The gas purification system according to claim 23, wherein the delivery device further includes at least one particle arrestor.
- 26. The gas purification system according to claim 25, wherein the at least one particle arrestor is a surface area enhancer.
- 27. The gas purification system according to claim 26, wherein the surface area enhancer includes fibers selected from the group consisting of glass fibers, acrylic fibers, quartz fibers, paper fibers, cellulose fibers, cotton fibers, plastic fibers, and combinations thereof.
- 28. The gas purification system according to claim 26, wherein the fiber filter is manufactured in a method selected from the group consisting of non-woven, woven, and knitted methods, including multi-layer structure.
- 29. The gas purification system according to claim 26, wherein the fiber filter is disposable.
- 30. The gas purification system according to claim 23, wherein the delivery device further includes at least two particle arrestors in series.
- 31. The gas purification system according to claim 23, wherein the delivery device includes catalytic surfaces.
- 32. The gas purification system according to claim 31, wherein the catalytic surfaces are self-cleaning.
- 33. The gas purification system according to claim 31, wherein the catalytic surfaces are photocatalytic surfaces containing at least one photocatalyst.
- 34. The gas purification system according to claim 33, wherein the at least one photocatalyst is a light-activated, dielectric semiconductor.
- 35. The gas purification system according to claim 33, wherein the at least one photocatalyst is selected from the group consisting of TiO2, WO2, ZnO, ZnS, SnO2, PtTiO2, other compounds known to be photocatalytic, including organic polymers, and combinations thereof.
- 36. The gas purification system according to claim 1, wherein at least one interior surface of the gas purifier and the waste effluent stream channel housing has a UV reflective surface.
- 37. The gas purification system according to claim 36, wherein the at least one UV reflective surface is selected from the group consisting of stainless steel, aluminum, and combinations thereof.
- 38. The gas purification system according to claim 1, wherein the interior of the gas purifier includes at least one interior optical component that is attached to the interior surfaces.
- 39. The gas purification System according to claim 38, wherein the at least one interior optical component is UV transmissive or UV reflective.
- 40. The gas purification system according to claim 38, wherein the at least one interior optical component is selected from the group consisting of reflectors, shutters, lenses, splitters, focalizers, mirrors, rigid and flexible light guides, homogenizer, mixing rods, manifolds and other couplers, filters, gratings, diffracters, gradient lenses, color wheels, off-axis reflectors, cascading reflectors, splitting reflectors, and combinations thereof.
- 41. The system of claim 23, further providing UV irradiation countercurrent to the gas flow.
- 42. The system of claim 41, wherein the delivery device is protected from the gas flow.
- 43. The system of claim 41, wherein the protection is a shield.
- 44. The system of claim 41, wherein the delivery device is outside the gas flow.
- 45. The system of claim 44, wherein the delivery device is in a blind duct configuration.
- 46. A gas purifier for the effective sterilization of microorganisms in a gas, the gas purifier including a dose zone positioned within a waste effluent stream, thereby producing at least one dose region for the effective sterilization of microorganisms in the waste effluent stream.
- 47. The gas purifier system according to claim 46, wherein the waste effluent stream is contained by a channel housing that is UV reflective.
- 48. The gas purifier according to claim 46, further including at least one particle arrestor positioned within the waste effluent stream.
- 49. The gas purifier according to claim 48, wherein the at least one particle arrestor is a fiber filter.
- 50. The gas purifier according to claim 48, wherein the fiber filter is composed of fibers selected from the group consisting of glass fibers, acrylic fibers, quartz fibers, paper fibers, cellulose fibers, cotton fibers, plastic fibers, and combinations thereof.
- 51. The gas purifier according to claim 48, wherein the fiber filter is manufactured in a method selected from the group consisting of non-woven, woven, and knitted methods, including multi-layer structure.
- 52. The gas purifier according to claim 48, wherein the fiber filter is disposable.
- 53. The gas purification system according to claim 48, further including at least two particle arrestors in series.
- 54. The gas purifier according to claim 48, further including catalytic surfaces on the particle arrestor.
- 55. The gas purifier according to claim 54, wherein the catalytic surfaces are self-cleaning.
- 56. The gas purifier according to claim 54, wherein the catalytic surfaces are photocatalytic surfaces containing at least one photocatalyst.
- 57. The gas purifier according to claim 56, wherein the at least one photocatalyst is a light-activated, dielectric semiconductor.
- 58. The gas purifier according to claim 56, wherein the at least one photocatalyst is selected from the group consisting of TiO2, WO2, ZnO, ZnS, SnO2, PtTiO2, and combinations thereof.
- 59. The gas purifier according to claim 46, wherein at least one interior surface of the gas purifier is a UV reflective surface.
- 60. The gas purifier according to claim 59, wherein the at least one UV reflective surface is selected from the group consisting of stainless steel, aluminum, and combinations thereof.
- 61. The gas purifier according to claim 46, wherein an interior of the gas purifier includes at least one interior optical component that are attached to the interior surfaces.
- 62. The gas purifier according to claim 61, wherein the at least one interior optical component is UV transmissive.
- 63. The gas purifier according to claim 61, wherein the at least one interior optical component is UV reflective.
- 64. The gas purifier according to claim 61, wherein the at least one interior optical component is selected from the group consisting of reflectors, shutters, lenses, splitters, focalizers, mirrors, rigid and flexible light guides, homogenizer, mixing rods, manifolds and other couplers, filters, gratings, diffracters, gradient lenses, color wheels, off-axis reflectors, cascading reflectors, splitting reflectors, and combinations thereof.
- 65. The gas purifier according to claim 46, wherein the effluent stream is produced by industrial or mechanical combustion.
- 66. A method for the purification of an effluent stream, comprising the steps of:
providing a gas purifier comprising at least one light source connected by at least one optical connection positioned to provide a focused, controllable light output to a gas purifier, and a control mechanism, thereby producing at least one UV dose zone for the effective sterilization of microorganisms in a gas, activating the UV light source, passing the gas through the gas purifier, thereby providing a sterilized gas stream.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This non-provisional utility patent application claims the benefit of one or more prior filed co-pending non-provisional applications; a reference to each such prior application is identified as the relationship of the applications and application number (series code/serial number): the present application is a Continuation-In-Part of application Ser. No. 10/016,217 filed Nov. 2, 2001, which is incorporated herein by reference in its entirety.
Continuation in Parts (1)
|
Number |
Date |
Country |
Parent |
10016217 |
Nov 2001 |
US |
Child |
10805085 |
Mar 2004 |
US |