Claims
- 1. A method for destruction of or decomposition of contaminants contained in a fluid by irradiation comprising the steps of:
a. exposing said contaminants to an irradiation source whereby it is irradiated to be destroyed or decomposed, and, b. simultaneously flow said fluid containing said contaminants by means of a pressurized force into a path surrounding said irradiation source with a means for causing higher density contaminants to move to outer perimeter of said path whereby contaminants are preferentially exposed to said irradiation so as to minimize depth of penetration required for irradiation source.
- 2. Irradiation source of claim 1 is an electron beam source, x-ray source, or gamma ray source irradiating inwards from outside said flow path lying within said irradiation source.
- 3. Pressurized force of claim 1 is generated by a pump, compressor or static head source that causes said to flow at a desired rate.
- 4. Means for causing higher density contaminants to move to outer perimeter of said path of claim 6 and lower density fluid to move to inner perimeter of said path comprising a curvilinear path in a cylindrical or spiral or similarly formed path that causes centripetal force to act on said fluid and contaminants whereby producing said movement.
- 5. An apparatus for improved ozone production from oxygen or air or for fluid treatment comprising:
a. an irradiation source b. a flow channel shaped in a spiral or otherwise circular pattern surrounding or lying in the center of said irradiation source whereby when oxygen or air or any other fluid flows into said channel it provides the means to:
1) transport oxygen or air or any other fluid past said irradiation source to generate ozone or to otherwise treat said fluid 2) cool said ozone and oxygen or air or any other fluid to reduce decomposition due to heat. 3) create centripetal force to move higher density formed ozone or other fluid to outer perimeter of channel whereby further irradiation leading to decomposition is minimized in the case of ozone, and to move lower density oxygen or air or other fluid or fluids to inner perimeter of channel whereby further irradiation is maximized to increase ozone production or other fluid treatment. Conversely, for fluids of higher density that are to be processed, said irradiation source surrounds said flow channel and preferentially irradiates said fluid. c. a cooling channel to dissipate heat absorbed from flow channel, whereby said flow channel lies between said cooling channel and said irradiating source.
- 6. The apparatus for improved ozone production of claim 5 wherein said irradiation source is a circularly shaped electron beam generator that fits within said flow channel comprising the following:
a. Cathode, with or without control grid located in the center of the generator that radiates electrons outward in a circular pattern toward the anode b. circular anode surface surrounding cathode with a gap separation from cathode and including a thin window for transmission of electrons through it c. evacuated chamber structure which maintains the cylindrical shape of the electron beam generator
- 7. The apparatus for improved ozone production of claim 5 wherein said irradiation source is a hollow circularly shaped electron beam generator that surrounds said flow channel comprising the following:
a. cathode, with or without control grid in a circular pattern that radiates electrons inward toward the center of the generator in a circular pattern toward the anode. b. circular anode surface lying within the cathode circular surface with a gap separation from cathode and including a thin window for transmission of electrons through it c. evacuated annular chamber structure, which maintains the hollow cylindrical shape of the electron beam generator.
- 8. The apparatus for improved ozone production of claim 5 wherein said irradiation source is a circularly shaped X-ray generator that fits within said flow channel comprising the following:
a. cathode, with or without control grid located in the center of the generator that radiates electrons outward in a circular pattern toward the anode b. circular anode surface surrounding cathode with a gap separation from cathode and including an X-ray converting surface to convert electrons to X-rays that penetrate through it into said flow channel. c. evacuated chamber structure which maintains the cylindrical shape of said X-ray generator
- 9. The apparatus for improved ozone production of claim 5 wherein said irradiation source is a hollow circularly shaped X-ray generator that surrounds said flow channel comprising the following:
a. cathode, with or without control grid in a circular pattern that radiates electrons inward toward the center of the generator in a circular pattern toward the anode. b. circular anode surface lying within the cathode circular surface with a gap separation from cathode and including an X-ray converting surface to convert electrons to X-rays that penetrate through it into said flow channel. c. evacuated annular chamber structure, which maintains the hollow cylindrical shape of, said X-ray generator.
- 10. The apparatus for improved ozone production of claim 5 wherein said irradiation source is a circularly shaped gamma generator that fits within said flow channel comprising a radioactive source such as cobalt 60.
- 11. The apparatus for improved ozone production of claim 5 wherein said irradiation source is a hollow circularly shaped gamma generator that surrounds said flow channel comprising a radioactive source such as cobalt 60.
- 12. The apparatus for improved ozone production of claim 5 wherein said flow channel is constructed of a thermally conductive metal such as copper that forms a spiral or otherwise cylindrical path around said irradiation source and is shaped to allow entry of irradiation with minimal irradiation losses to said flow channel.
- 13. The apparatus for improved ozone production of claim 5 wherein said cooling channel is metal or plastic construction with a coolant inlet into a leak tight housing that is adjacent to said flow channel and on opposite side from said irradiation source allowing an annular passage for liquid or gaseous coolant to flow directly past circular wall of said flow channel to dissipate heat from said flow channel.
- 14. The apparatus for improved ozone production of claim 5 wherein said outer cooling channel is metal or plastic construction with a coolant inlet into a leak tight housing that surrounds said flow channel allowing an annular passage for liquid or gaseous coolant to flow directly past exterior of said flow channel to dissipate heat from said flow channel.
CROSS REFERENCE TO OTHER APPLICATIONS
[0001] This application is a continuation application of utility patent application Ser. No. 09/653,059 filed Sep. 1, 2000, which application claims the benefit of U.S. provisional patent application No. 60/173,114, filed Sep. 7, 1999.
Provisional Applications (1)
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Number |
Date |
Country |
|
60173114 |
Dec 1999 |
US |
Divisions (1)
|
Number |
Date |
Country |
Parent |
09653059 |
Sep 2000 |
US |
Child |
10217766 |
Aug 2002 |
US |