IP Library › Granted Patent US 12,304,811
Granted Patent B2
US 12,304,811 · App. 17/328,212 · Granted May 20, 2025

Ozone-based contaminant eradication system and method

Inventors: Housh Khoshbin (Lake Zurich, IL); Harley J. Pattee (Ocala, FL)
C01B13/10A61L9/20A61L2209/11A61L2209/212
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Quick Facts
Patent No.
US 12,304,811
App. No.
17/328,212
Granted
May 20, 2025
Kind
B2
Abstract

A device and method is provided for converting oxygen within air into ozone. The device has a portable housing with an air inlet and an enhanced ozone air outlet. A lamp housing is positioned within the portable housing and has a plurality of UV lamps for emitting UV radiation, the plurality of UV lamps extending from one end of the lamp housing to the other in a generally parallel configuration. The device also has a blower positioned within the portable housing for moving the air into contact with UV radiation from the plurality of UV lamps. The device further includes a plurality of baffles positioned within the lamp housing for dispersing the air as the air moves through the lamp housing. The device can be used to eliminate odors and contaminants found in the air, as well as to eliminate oils and contaminants found in water and to kill insects.

Claims (30)

1. An ozone generator comprising:

a portable housing including a first air inlet and a first ozone outlet;

a UV lamp section comprising UV lamps that are configured to emit UV radiation for generating ozone by applying UV radiation to air as the air moves through the UV lamp section;

a blower contained within the portable housing to move the air into contact with the radiation of the UV lamps;

a temperature sensor proximate to UV lamps to collect a temperature measurement of the air proximate to the UV lamps;

a first output device configured to adjust an intensity of the UV lamps;

a controller including a control application for execution within the controller, the controller and the application are configured to receive the temperature measurement from the temperature sensor and utilize a predetermined algorithm to control the first output device for adjusting the intensity of the UV lamps based on the temperature measurement;

an ozone sensor proximate to the first ozone outlet to collect an ozone concentration measurement of the ozone exiting the first ozone outlet of the portable housing; and,

a second output device configured to adjust at least one of an inlet size of the first air inlet and an outlet size of the first ozone outlet; wherein the controller and the application are configured to receive the ozone concentration measurement from the ozone sensor and utilize a predetermined algorithm to control the second output device for adjusting at least one of the inlet size and the outlet size based on the ozone concentration measurement.

2. The ozone generator of claim 1 , wherein the controller and the application are configured to receive the ozone measurement from the ozone sensor and control the first output device further based on the ozone measurement.

3. The ozone generator of claim 1 , further comprising an air sensor proximate to at least one of the first air inlet and the first ozone outlet to collect an air measurement of the air proximate to the at least one of the first air inlet and the first ozone outlet, wherein the controller and the application are configured to receive the air measurement from the air sensor and control the first output device further based on the air measurement.

4. The ozone generator of claim 1 , wherein the first ozone outlet is an enhanced ozone air outlet, the first air inlet having a first diameter and the enhanced ozone air outlet having a second diameter, wherein the first diameter is greater than the second diameter.

5. The ozone generator of claim 1 , wherein the plurality of UV lamps extend from a first end of the lamp section to a second end of the lamp section in a generally parallel configuration, the plurality of UV lamps comprising a first UV lamp and a second UV lamp, the first UV lamp being positioned adjacent a first side of the lamp section and the second UV lamp being positioned adjacent a second side of the lamp section, wherein the air enters the lamp section closer to the first side than the first UV lamp is positioned relative to the first side;

wherein the blower has an operating speed; and

a control unit for operating the generator.

6. The ozone generator of claim 5 further comprising a plurality of baffles positioned within the lamp section for dispersing the air as the air moves through the lamp section.

7. The ozone generator of claim 6 , wherein the air exits the lamp section closer to the second side than where the second UV lamp is positioned relative to the second side.

8. The ozone generator of claim 4 wherein the first and second diameters are determined based on the number of operating UV lamps within the lamp section, the intensity of the UV lamps, and/or the blower speed.

9. The ozone generator of claim 5 wherein the plurality of UV lamps are maintained at a temperature range of 20-25° C. during operation.

10. The ozone generator of claim 5 wherein the air enters the lamp section closer to the first side than where the first UV lamp is positioned relative to the first side.

11. The ozone generator of claim 1 wherein there is a space between each UV lamp of said UV lamps that is at least 2.0 inches.

12. The ozone generator of claim 1 , wherein the controller further comprises a switch for turning power on and off, a plurality of UV lamp switches for turning each UV lamp on and off and a timing control unit for automatically turning on power and turning off power to the UV lamps at predetermined times.

13. The ozone generator of claim 1 , wherein the ozone generator is configured to produce ozone at a concentration of at least 75 ppm.

14. The ozone generator of claim 1 wherein the controller comprises a timer for controlling when power is supplied to the UV lamps and when power is shut off to the UV lamps.

15. The ozone generator of claim 1 , wherein the controller and the application are configured to receive the temperature measurement from the temperature sensor and control the second output device further based on the temperature measurement.

16. The ozone generator of claim 3 further comprising:

a third output device configured to adjust a fan speed of the blower, wherein the controller and application are configured to receive the air measurement from the air sensor and utilize a predetermined algorithm to control the third output device for adjusting the fan speed of the blower based on the air measurement.

17. The ozone generator of claim 16 , wherein the air sensor is an air speed sensor and the air measurement is a speed measurement of the air flowing through the UV lamp section.

18. The ozone generator of claim 16 , wherein the air sensor is an air volume sensor and the air measurement is a volume measurement of the air flowing through the UV lamp section.

19. The ozone generator of claim 1 , wherein the second output device is at least one of an inlet valve and an outlet valve.

Continuity (7)
Division 16017722 · Jun 25, 2018
Division 13747232 · Jan 22, 2013
Continuation In Part 13632944 · Oct 1, 2012
Continuation In Part 12014033 · Jan 14, 2008
Continuation In Part 11437968 · May 19, 2006
Provisional Application 60683258 · May 20, 2005
Related Publication 20210275985A1 · Sep 9, 2021
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