IP Library Granted Patent US 10,556,025
Granted Patent B2
US 10,556,025 · App. 15/869,417 · Granted Feb 11, 2020

Fixed position hybrid germicidal irradiation apparatus, method, and system

Inventor: Philip J. Ufkes (Sullivan's Island, SC)
Assignee: UD Innovations, LLC
A61L2/10A61L2/24A61L2202/11A61L2202/14A61L2202/25
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Quick Facts
Patent No.
US 10,556,025
App. No.
15/869,417
Granted
Feb 11, 2020
Kind
B2
Abstract

A fixed position hybrid germicidal irradiation apparatus, method, and system for ultraviolet germicidal irradiation. A plurality of emitters may be coupled to a substantially rectangular housing configured to be coupled to a standard commercial lighting fitting. A second plurality of emitters may be coupled to the substantially rectangular housing. The first plurality of emitters and the second plurality of emitters are operable to emit UV-C radiation at a wavelength of about 265 nanometers and near-UV radiation at a wavelength of about 405 nanometers respectively. UV-C sensors are configured to measure the amount of UV-C light or near UV-C light from a target surface. A controller may be configured to engage with the UV-C sensors to determine the amount of UV-C radiation collected by the UV-C sensors. The improved apparatus, method, and system reduces exposure time by varying the intensity and wavelength of the UV administered, while concurrently reducing UV overexposure.

Claims (49)

1. A fixed position hybrid germicidal irradiation disinfection apparatus comprising:

a rectangular housing configured to be coupled to a standard commercial lighting fixture fitting and electrical wiring;

a first plurality of emitters coupled to the rectangular housing, the first plurality of emitters operable to emit UV-C radiation at a wavelength of 265 nanometers;

a second plurality of emitters coupled to the rectangular housing, the second plurality of emitters operable to emit near-UV radiation at a wavelength of 405 nanometers;

a controller housed in the rectangular housing, the controller being operably engaged with the first plurality of emitters, the second plurality of emitters, and at least one visible light emitter; and

at least one ranging sensor coupled to the rectangular housing and operably configured to provide a ranging input to the controller, the controller being configured to calculate a virtual air gap adjustment parameter in response to the ranging input and to control an emission from the first plurality of emitters and the second plurality of emitters according to the virtual air gap adjustment parameter, and,

wherein the first plurality of emitters and the second plurality of emitters are configured to pulse emissions of UV-C radiation and near-UV radiation, respectively, in phase and out of phase.

2. The fixed position hybrid germicidal irradiation disinfection apparatus of claim 1 , wherein the controller is configured to dynamically control an emission intensity of the first plurality of emitters, the second plurality of emitters, and the at least one visible light emitter.

3. The fixed position hybrid germicidal irradiation disinfection apparatus of claim 1 , wherein the at least one visible light emitter is coupled to the rectangular housing.

4. The fixed position hybrid germicidal irradiation disinfection apparatus of claim 1 , wherein the first plurality of emitters and the second plurality of emitters are selected from the group consisting of LEDs, electronic gas-discharge lamps, CFL lamps, and halogen lamps.

5. A method for room disinfection using germicidal radiation comprising:

installing, in an interior ceiling grid, the fixed position hybrid germicidal irradiation disinfection apparatus of claim 1 ,

measuring, with the ranging sensor, a distance to an object that is closest to the hybrid germicidal irradiation disinfection apparatus in the room;

calculating, with the controller, an air gap compensation variable in response to the ranging sensor measurement;

delivering, with the first plurality of emitters and the second plurality of emitters, dual band germicidal radiation to a target zone of the room;

receiving, with the at least one ranging sensor, an amount of radiant energy reflected from the target zone of the room; and,

measuring, with a processor, a kill dose threshold based on the amount of radiant energy reflected from the target zone of the room, a distance between the target zone and the at least one ranging sensor, and the air gap compensation variable calculated by the controller in response to the ranging sensor measurement.

6. The method for room disinfection using germicidal radiation of claim 5 , further comprising:

verifying, with an occupant sensor, the target zone is unoccupied.

7. The method for room disinfection using germicidal radiation of claim 5 , further comprising:

storing, in non-volatile memory of the controller, the kill dose threshold related to room disinfection; and,

communicating, with a wireless communication interface, the kill dose threshold to a computer system.

8. The method for room disinfection using germicidal radiation of claim 5 , wherein the first plurality of emitters and the second plurality of emitters are configured to pulse emission in-phase and out of phase.

9. The method for room disinfection using germicidal radiation of claim 5 , wherein the first plurality of emitters and the second plurality of emitters are selected from the group consisting of LEDs, electronic gas-discharge lamps, CFL lamps, and halogen lamps.

10. A system for room disinfection using germicidal irradiation comprising:

one or more hybrid germicidal irradiation disinfection apparatus operating in a communications network, the one or more hybrid germicidal irradiation disinfection apparatus comprising:

a rectangular housing;

a first plurality of emitters coupled to the rectangular housing, the first plurality of emitters operable to emit UV-C radiation at a wavelength of 265 nanometers;

a second plurality of emitters coupled to the rectangular housing, the second plurality of emitters operable to emit near-UV radiation at a wavelength of 405 nanometers;

at least one visible light emitter coupled to the rectangular housing;

at least one UV-C sensor coupled to the rectangular housing, wherein the at least one UV-C sensor is a closed loop sensor configured to measure an amount of UV-C radiation reflected from a target surface back to the at least one UV-C sensor;

at least one near-UV sensor coupled to the rectangular housing, wherein the at least one near-UV sensor is a closed loop sensor configured to measure an amount of near-UV radiation reflected from a target surface back to the at least one near-UV sensor;

at least one ranging sensor coupled to the rectangular housing;

a controller housed in the rectangular housing, the controller being operably engaged with the first plurality of emitters, the second plurality of emitters, the at least one visible light emitter, the at least one UV-C sensor, the at least one near-UV sensor, and the at least one ranging sensor,

wherein the at least one ranging sensor is configured to provide a ranging input to the controller, the controller being configured to calculate a virtual air gap adjustment parameter in response to the ranging input and to control an emission from the first plurality of emitters and the second plurality of emitters according to the virtual air gap adjustment parameter;

a remote interface, the remote interface being communicably engaged with the controller of the one or more hybrid germicidal irradiation disinfection apparatus; and,

a database, the database being communicably engaged with the controller and the remote interface.

11. The system for room disinfection using germicidal irradiation of claim 10 , wherein the first plurality of emitters and the second plurality of emitters are selected from the group consisting of LEDs, electronic gas-discharge lamps, CFL lamps, and halogen lamps.

12. The system for room disinfection using germicidal irradiation of claim 10 , wherein the remote interface is selected from the group consisting of a tablet computer, a smart phone, and a laptop computer.

13. The system for room disinfection using germicidal irradiation of claim 10 , wherein the one or more hybrid germicidal irradiation disinfection apparatus further comprises at least one occupant sensor coupled to the rectangular housing, the at least one occupant sensor being operably engaged with the controller.

14. The system for room disinfection using germicidal irradiation of claim 10 , wherein the controller is operable to dynamically control an emission intensity of the first plurality of emitters, the second plurality of emitters, and the at least one visible light emitter.

15. The system for room disinfection using germicidal irradiation of claim 10 , wherein the database is configured to store a disinfection status and disinfection log associated across a plurality of individually identified rooms.

16. The system for room disinfection using germicidal irradiation of claim 10 , wherein the first plurality of emitters and the second plurality of emitters are configured to pulse emissions of radiation in phase and out of phase.

17. The system for room disinfection using germicidal irradiation of claim 16 , wherein the first plurality of emitters and the second plurality of emitters are configured to independently emit radiation so as to produce a dual wavelength emission.

18. The system for room disinfection using germicidal irradiation of claim 10 , further comprising a lens of a UV-C transmittable material coupled to a perimeter of the rectangular housing.

19. The fixed position hybrid germicidal irradiation disinfection apparatus of claim 1 , further comprising a lens of a UV-C transmittable material coupled to a perimeter of the rectangular housing.

20. The fixed position hybrid germicidal irradiation disinfection apparatus of claim 1 , further comprising:

at least one UV-C sensor coupled to the rectangular housing, wherein the at least one UV-C sensor is a closed loop sensor operable to measure an amount of UV-C radiation reflected from a target surface back to the at least one UV-C sensor; and

at least one near-UV sensor coupled to the rectangular housing, wherein the at least one near-UV sensor is a closed loop sensor operable to measure an amount of near-UV radiation reflected from a target surface back to the at least one near-UV sensor.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 1, 2018
From: UFKES, PHILIP J.
To: UD INNOVATIONS, LLC
Reel/Frame 045074/0730 →
Continuity (2)
Provisional Application 62445415 · Jan 12, 2017
Related Publication 20180193501A1 · Jul 12, 2018
Cited By (2)
US 12,582,733 US 12,673,125