IP Library Granted Patent US 11,382,992
Granted Patent B2
US 11,382,992 · App. 16/298,171 · Granted Jul 12, 2022

Room and area disinfection utilizing pulsed light

Inventors: Mark A. Stibich (Santa Fe, NM); Charles Dale (San Antonio, TX); Edward C. Guerrero, Jr. (San Antonio, TX); Paul P. Froutan (Katy, TX); Sarah E. Simmons (San Antonio, TX); Boris Ciorneiu (Great Falls, VA)
Assignee: Xenex Disinfection Services Inc.
A61L2/10A23L3/28A61L2/24A23V2002/00A61L2202/14
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Quick Facts
Patent No.
US 11,382,992
App. No.
16/298,171
Granted
Jul 12, 2022
Kind
B2
Abstract

Room and/or area disinfection apparatuses are provided which generate pulses of germicidal light at a frequency greater than 3 Hz and project the pulses of light exterior to the disinfection apparatuses. In some cases, the apparatuses include an occupancy sensor for determining presence of an individual in a region extending at least 1.0 meter from the disinfection apparatus and processor executable program instructions for inhibiting and terminating the generation of light from the light source upon the occupancy sensor detecting presence of an individual. In addition or alternatively, the apparatuses may include wheels to affect portability of the apparatus. In some cases, the apparatuses may additionally or alternatively include an actuator for moving the light source relative to a support structure of the disinfection apparatus and processor executable program instructions for activating the actuator while the light source is emitting light.

Claims (42)

1. A disinfection apparatus, comprising:

a germicidal pulsed light source arranged within the disinfection apparatus such that germicidal light generated from the germicidal pulsed light source is projected exterior to the disinfection apparatus;

trigger voltage circuitry for applying a trigger voltage to the germicidal pulsed light source at a set frequency greater than approximately 3 Hz;

power supply circuitry;

one or more electrical charge storage devices coupled to the power supply circuitry and to the germicidal pulsed light source;

pulse duration circuitry coupled between the one or more electrical charge storage devices and the germicidal pulsed light source;

an occupancy sensor for determining presence of an individual in a region extending at least 1.0 meter from the disinfection apparatus;

a processor; and

program instructions executable by the processor for inhibiting and terminating the generation of light from the germicidal pulsed light source upon the occupancy sensor detecting presence of an individual.

2. The disinfection apparatus of claim 1 , wherein the one or more electrical charge storage devices and the pulse duration circuitry are configured to discharge a set amount of stored energy in a set amount of time such that an energy flux of ultraviolet light in the wavelength range between 200 nm and 320 nm generated at the germicidal pulsed light source is between approximately 20 J/m 2 and approximately 1500 J/m 2 .

3. The disinfection apparatus of claim 1 , wherein the one or more electrical charge storage devices and the pulse duration circuitry are configured to discharge a set amount of stored energy in a set amount of time such that a power flux of ultraviolet light in the wavelength range between 200 nm and 320 nm generated at the germicidal pulsed light source is between approximately 0.8 MW/m 2 and approximately 5.0 MW/m 2 .

4. The disinfection apparatus of claim 1 , wherein the set frequency is a frequency between approximately 3 Hz and approximately 60 Hz.

5. The disinfection apparatus of claim 1 , wherein the set frequency is a frequency greater than approximately 60 Hz.

6. The disinfection apparatus of claim 1 , wherein the program instructions are further executable by the processor for receiving data regarding the characteristics of a space in which the disinfection apparatus is to be operated.

7. The disinfection apparatus of claim 1 , wherein the germicidal pulsed light source is a polychromatic germicidal light source.

8. The disinfection apparatus of claim 1 , wherein the germicidal pulsed light source has an exterior surface area between approximately 50 cm 2 and approximately 250 cm 2 .

9. The disinfection apparatus of claim 1 , further comprising a housing surrounding the germicidal pulsed light source, wherein a sidewall of the housing is transparent to ultraviolet light, and wherein the germicidal pulsed light source and the housing are arranged in the disinfection apparatus such that ultraviolet light emitted from the germicidal pulsed light source and transmitted through the housing is projected exterior to the disinfection apparatus.

10. A disinfection apparatus, comprising:

a germicidal pulsed light source arranged within the disinfection apparatus such that germicidal light generated from the germicidal pulsed light source is projected exterior to the disinfection apparatus;

trigger voltage circuitry for applying a trigger voltage to the germicidal pulsed light source at a set frequency greater than approximately 3 Hz;

power supply circuitry;

one or more electrical charge storage devices coupled to the power supply circuitry and to the germicidal pulsed light source;

pulse duration circuitry coupled between the one or more electrical charge storage devices and the germicidal pulsed light source; and

wheels to affect portability of the disinfection apparatus.

11. The disinfection apparatus of claim 10 , wherein the one or more electrical charge storage devices and the pulse duration circuitry are configured to discharge a set amount of stored energy in a set amount of time such that an energy flux of ultraviolet light in the wavelength range between 200 nm and 320 nm generated at the germicidal pulsed light source is between approximately 20 J/m 2 and approximately 1500 J/m 2 .

12. The disinfection apparatus of claim 10 , wherein the one or more electrical charge storage devices and the pulse duration circuitry are configured to discharge a set amount of stored energy in a set amount of time such that a power flux of ultraviolet light in the wavelength range between 200 nm and 320 nm generated at the germicidal pulsed light source is between approximately 0.8 MW/m 2 and approximately 5.0 MW/m 2 .

13. The disinfection apparatus of claim 10 , wherein the set frequency is a frequency between approximately 3 Hz and approximately 60 Hz.

14. The disinfection apparatus of claim 10 , wherein the set frequency is a frequency greater than approximately 60 Hz.

15. The disinfection apparatus of claim 10 , wherein the germicidal pulsed light source has an exterior surface area between approximately 50 cm 2 and approximately 250 cm 2 .

16. A disinfection apparatus, comprising:

a germicidal pulsed light source arranged within the disinfection apparatus such that germicidal light generated from the germicidal pulsed light source is projected exterior to the disinfection apparatus;

trigger voltage circuitry for applying a trigger voltage to the germicidal pulsed light source at a set frequency greater than approximately 3 Hz;

power supply circuitry;

one or more electrical charge storage devices coupled to the power supply circuitry and to the germicidal pulsed light source;

pulse duration circuitry coupled between the one or more electrical charge storage devices and the germicidal pulsed light source;

an actuator for moving the germicidal pulsed light source relative to a support structure of the disinfection apparatus;

a processor; and

program instructions executable by the processor for activating the actuator while the germicidal pulsed light source is emitting light.

17. The disinfection apparatus of claim 16 , wherein the one or more electrical charge storage devices and the pulse duration circuitry are configured to discharge a set amount of stored energy in a set amount of time such that an energy flux of ultraviolet light in the wavelength range between 200 nm and 320 nm generated at the germicidal pulsed light source is between approximately 20 J/m 2 and approximately 1500 J/m 2 .

18. The disinfection apparatus of claim 16 , wherein the one or more electrical charge storage devices and the pulse duration circuitry are configured to discharge a set amount of stored energy in a set amount of time such that a power flux of ultraviolet light in the wavelength range between 200 nm and 320 nm generated at the germicidal pulsed light source is between approximately 0.8 MW/m 2 and approximately 5.0 MW/m 2 .

19. The disinfection apparatus of claim 16 , wherein the set frequency is a frequency between approximately 3 Hz and approximately 50 Hz.

20. The disinfection apparatus of claim 16 , wherein the set frequency is a frequency greater than approximately 60 Hz.

Assignments (5)
ASSIGNMENT AND ASSUMPTION OF SECURITY AGREEMENT, IP SECURITY AGREEMENT AND COLLATERAL AGENT AGREEMENT Recorded May 26, 2026
From: MALIN LIFE SCIENCES HOLDINGS LIMITED
To: XDS COLLATERAL, LLC
Reel/Frame 075626/0146 →
ASSIGNMENT AND ASSUMPTION OF SECURITY AGREEMENT, IP SECURITY AGREEMENT AND COLLATERAL AGENT AGREEMENT Recorded Mar 2, 2026
From: MALIN LIFE SCIENCES (US), INC.
To: MALIN LIFE SCIENCES HOLDINGS LIMITED
Reel/Frame 075060/0415 →
SECURITY INTEREST Recorded Feb 13, 2025
From: XENEX DISINFECTION SERVICES INC.
To: MALIN LIFE SCIENCES (US), INC.
Reel/Frame 070629/0867 →
CHANGE OF NAME Recorded Oct 18, 2019
From: XENEX DISINFECTION SERVICES LLC.
To: XENEX DISINFECTION SERVICES INC.
Reel/Frame 050767/0431 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 11, 2019
From: STIBICH, MARK A.; DALE, CHARLES; GUERRERO, EDWARD C., JR.; FROUTAN, PAUL P.; SIMMONS, SARAH E.; CIORNEIU, BORIS
To: XENEX DISINFECTION SERVICES, LLC.
Reel/Frame 048560/0724 →
Continuity (5)
Continuation 15989394 · May 25, 2018
Division 15454158 · Mar 9, 2017
Continuation PCTUS2015051010 · Sep 18, 2015
Provisional Application 62052036 · Sep 18, 2014
Related Publication 20190209722A1 · Jul 11, 2019
Cited By (1)
US 12,582,733