ANTIMICROBIAL LIGHT SYSTEMS FOR HIGH-TOUCH SURFACES, APPARATUSES, AND EQUIPMENT
20220062478 · 2022-03-03
Inventors
Cpc classification
A61L2202/14
HUMAN NECESSITIES
A61L2202/11
HUMAN NECESSITIES
International classification
Abstract
A light-based sterilization source directs an antimicrobial light at a touched or contacted surface for eliminating harmful viral or bacterial contaminants. The antimicrobial light is outside the range of harmful UV light while delivering an effective decontaminating light source for eradication of pathogenic microorganisms.
An acrylic or other transparent medium conducts the antimicrobial light from a source to an irradiated target surface for continual decontamination, and may define a backlighting arrangement.
Claims
1. An irradiation device, comprising: a light source disposed for irradiating a high touch surface for sterilization.
2. The device of claim 1 further comprising a light conduction medium adapted for transporting irradiated light from the light source to the high touch surface.
3. The device of claim 2 wherein the light source is appurtenant to the light conduction medium and the light conduction medium includes the high touch surface.
4. The device of claim 2 wherein the light conduction medium includes a transparent structure, the transparent structure molded to define the high touch surface.
5. The device of claim 4 wherein the transparent structure is defined by a crystalline material, the crystalline material providing non-linear pathways for irradiation of the light between the light source and the high touch surface.
6. The device of claim 1 further comprising a power supply and illumination logic, the illumination logic powered by the power supply and configured to activate the light for a duration and intensity based on a sterilization need.
7. The device of claim 6 wherein the control logic is further configured to compute the duration and intensity based on a type of material defining the high touch surface.
8. A system for sterilization of contaminated surfaces, comprising: an antimicrobial light source having a wavelength outside a harmful spectrum; and a light conduction medium configured to conduct light from the antimicrobial light source to a target surface for sterilization, the antimicrobial light source having an intensity based on a duration of exposure on the target surface and a power for achieving sterilization over the duration of exposure.
9. The system of claim 8 further comprising control logic, the antimicrobial light source responsive to the control logic for: identifying the target surface for sterilization; determining a material of which the target surface is formed; and computing the duration of exposure and the intensity for achieving sterilization of the target surface.
10. The system of claim 8 wherein the light conduction medium is a transparent structure appurtenant to a high touch surface associated with touch based manual control.
11. The system of claim 10 wherein the light conduction medium irradiates the target surface from a distance via an atmospheric medium.
12. The system of claim 10 wherein the light conduction medium irradiates the target surface via refraction through the transparent structure.
13. The system of claim 8 further comprising a power source for providing power to the antimicrobial light source including at least one of a DC-powered battery and an AC power source.
14. A system for sterilization of contaminated surfaces, comprising a light conduction medium formed from a material selected from the group of light-transmissive materials consisting of polymethyl methacrylate (PMMA), silica/quartz, thermoplastic polyurethane (TPU), flexible acrylic, transparent polyvinyl chloride (PVC), UV-inhibitor-free transparent PVC and solar cell material.
15. A method for forming a high touch surface, comprising: deploying a light conduction medium having a high touch surface and adapted for transporting light from an antimicrobial light source to a high touch surface.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0007] The foregoing and other objects, features and advantages of the invention will be apparent from the following description of particular embodiments of the invention, as illustrated in the accompanying drawings in which like reference characters refer to the same parts throughout the different views. The drawings are not necessarily to scale, emphasis instead being placed upon illustrating the principles of the invention.
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DETAILED DESCRIPTION
[0017] Depicted below is an example of various configurations of the antimicrobial light generation device. Several views and arrangements are shown; other embodiments may be apparent to those of skill in the art by slight variations to the form factor and electrical circuit as shown.
[0018]
[0019]
[0020] In
[0021] A high touch surface 210 may be defined by any suitable surface prone for human (typically hand) contact by gripping, touching, pulling or otherwise manipulated in the normal course of usage. The high touch surface 210 may be formed from a light conduction medium 212 adapted for transporting irradiated light from the light source 150 to the high touch surface 210. In the example of
[0022] In the example of
[0023]
[0024] In contrast to conventional approaches, employing UV light around 200-300 nm, the blue light is in the visible spectrum that exhibits only nominal, non-harmful radiation. While UV light may remain an effective sterilization medium, it typically requires shielding for protection from the UV radiation. The disclosed blue light source 150 may be freely transmitted and passed through a light conduction medium such as a transparent acrylic structure appurtenant to a manual contact surface. This allows effective usage in conjunction with human activity, such as for illuminating buttons, cellphones, door handles and other applications for decontamination of surfaces prone to high contact traffic.
[0025] In specialized arrangements, the light conduction medium may be configured to refract the conducted light to the manual control surface, for passing light in a non-linear path through curved or bent acrylic structures to transparently reach the intended contact surface. This is particularly beneficial in high traffic surfaces such as handles and buttons in which the manual contact surface receives greater exposure to human epidermal regions than adjacent surfaces.
[0026] The description below illustrates that the wavelength of the light is based on an expected contamination on the target surface, and variations in exposure time and light power may be adjusted based on the time between contact occurrences with potentially contaminated fingers or hands. While SARS CoV-2 remains one of the intended contaminants for sterilization and eradication, other contaminants are also responsive to the light delivery approach as disclosed herein. The antimicrobial blue light may be at or near the 405 nm wavelength, delivered at a sufficient duration and intensity to kill the target microorganisms.
[0027] Table 1 depicts a percentage of SARS CoV-2 viral load reduction on a plastic petri dish surface post exposure to the light source 150 compared to the virus exposed to the control ambient light at each time increment.
TABLE-US-00001 TABLE I Triplicate samples Exposure time # 1 # 2 # 3 Mean Std 1 min 11.63 9.30 9.30 10.08 1.3427 2 min 18.85 16.39 6.56 13.93 6.5059 3 min 16.81 16.81 6.72 13.45 5.8220 4 min 35.90 20.51 28.21 28.21 7.6923 5 min 82.79 85.25 84.51 84.18 1.2619 10 min 86.70 85.65 83.83 85.39 1.4525 30 min 92.57 96.97 95.87 95.14 2.2917 1 hr 99.94 99.94 99.94 99.94 0.0038 3 hr 100 100 100 100 0
[0028]
[0029] Based on
[0030] An advantage of the claimed approach includes the adaptability to fabricate the light source 150 and light conduction medium 212 in a variety of forms to install or retroactively apply anti-pathogen capability to any suitable high-touch surface. Various molding and formation techniques, such as injection molding, sheet fabrication or other suitable plastic or polymer based approach may be employed to form a suitably shaped light conduction medium 212 in conjunction with the light source 150 to implement an anti-pathogen, anti-microbial high touch surface. A system for sterilization of contaminated surfaces using the irradiation device 120 therefore includes an antimicrobial light source 150 having a wavelength outside a harmful spectrum, and a light conduction medium 212 configured to conduct light from the blue light source to a target surface for sterilization. The blue light source has an intensity based on a duration of exposure on the target surface and a power for achieving sterilization over the duration of exposure. Several non-limiting examples are shown in
[0031]
[0032] The light conduction medium 212 is generally a transparent structure appurtenant to a high touch surface associated with touch based manual control. The light conduction medium 212 irradiates the target surface via refraction through the transparent structure. Alternatively, the light conduction medium irradiates the target surface from a distance via an atmospheric medium. In other words, from an external location directed towards the high touch surface but sufficiently close to achieve the expected intensity.
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[0034]
[0035] For either the light conduction medium 212 or external (atmospheric) radiation, illumination logic 124 further comprising control logic, such that the blue light source (light source) 150 is responsive to the control logic for identifying the target surface for sterilization, determining a material of which the target surface is formed, and computing the duration of exposure and the intensity for achieving sterilization of the target surface. The control logic may compute the duration and intensity based on a type of material defining the high touch surface. A mapping of material types to an irradiation time and intensity for the mapped surface may be employed. Generally, more porous surfaces require greater exposure to the blue light, but this may be moderated based on the material type, and also the intensity achievable with the available power supply 126.
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[0038] A myriad of high-touch Surfaces, Apparatuses, and Equipment (SAE) are used in the manufacture and deployment of various goods. Components molded from plastics and polymers are often employed and are amenable to molding from a substance functional as the light conduction medium for use as disclosed above. Some examples of such usages include but are not limited to: a lid and interior of a storage box; a lid and interior of a porch delivery box; an infant appliance drying rack; infant pacifiers, bottle nipples, or teething toys; elevator buttons; personal device and smartphone device cases; personal device and smartphone screens; touchscreens; IV pole user interface; light(s) from smartphone; keyboards; computer mouse; ATM (Automated Teller Machine) facilities and controls; numeric and telephone keypads; gas pump handles; door handles and knobs; push buttons; faucets; hand and bed railing; delivery boxes; cat litter boxes; cat and dog food and water dishes; utility lights on personal devices; housing backs for personal devices; toilet seats; toilet paper dispensers; toilet stall handles and railings; transport (airplane, automobile, bus, train, boat, subway) lighting; toothbrushes; table, countertop, chair surfaces; garbage cans; and water fountains.
[0039]
[0040] While the system and methods defined herein have been particularly shown and described with references to embodiments thereof, it will be understood by those skilled in the art that various changes in form and details may be made therein without departing from the scope of the invention encompassed by the appended claims.