This disclosure relates generally to air purification devices, and more specifically air purification devices utilizing a sanitizing radiation source such as ultra-violet (UV) light.
Improved air purification units are needed more than ever in view of the 2019 novel corona virus disease (COVID-19) pandemic. The transmission of illnesses caused by airborne pathogens can be greatly diminished using air purification devices, particularly if air purification devices are used in indoor and crowded environments where individuals may be less than 6 feet in proximity from one another. Many such illnesses, such as COVID-19, can be effectively combatted using UV light disinfecting techniques. For example, an area of focus has been utilizing UV C light having a wavelength range between 200 and 280 nm to kill airborne pathogens. While UV light has proven to be an effective disinfecting technique, there is a lack of air purification units that effectively utilize UV light disinfecting techniques in close proximity environments.
The following presents a simplified summary of the disclosure in order to provide a basic understanding of some aspects of the various embodiments disclosed herein. This summary is not an extensive overview of every detail of every embodiment. It is intended to neither identify key or critical elements of every embodiment nor delineate the scope of every disclosed embodiment. Its sole purpose is to present some concepts of disclosure in a simplified form as a prelude to the more detailed description that is presented later.
In one embodiment of the disclosure, an air sanitation device may include an internal chamber including an air inlet, an air outlet, and an air flow path defined between the air inlet and the air outlet. The device may also include a sanitizing radiation source provided within the internal chamber and positioned to emit sanitizing radiation onto at least a portion of the air flow path.
The following description and annexed drawings set forth certain illustrative aspects of the disclosure. These aspects are indicative, however, of but a few of the various ways in which the principles disclosed may be employed. Other advantages and novel features disclosed herein will become apparent from the following description when considered in conjunction with the drawings.
The following detailed description and the appended drawings describe and illustrate some embodiments for the purpose of enabling one of ordinary skill in the relevant art to make use the invention. As such, the detailed description and illustration of these embodiments are purely illustrative in nature and are in no way intended to limit the scope of the invention, or its protection, in any manner. It should also be understood that the drawings are not necessarily to scale and in certain instances details may have been omitted, which are not necessary for an understanding of the disclosure, such as details of fabrication and assembly. In the accompanying drawings, like numerals represent like components.
In one embodiment an air sanitation device may include an internal chamber including an air inlet, an air outlet, and an air flow path defined between the air inlet and the air outlet. The device may also include a sanitizing radiation source provided within the internal chamber and positioned to emit sanitizing radiation onto at least a portion of the air flow path.
1. In further embodiments, the device may include a plurality of baffles positioned within the internal chamber, and the air flow path may be defined through the baffles. A plurality of additional sanitizing radiation sources may each be positioned proximate one of the plurality of baffles. A plurality of reflectors may each be positioned proximate one of the plurality of baffles. At least a portion of the air flow may be through a channel having an internal surface formed with, or coated by, reflective material. The internal chamber may be pressurized. The device may include a piston and sleeve along the air flow path, the piston operable to create pressure differentials within sleeve in order to force air along the air flow path. The device may include a vacuum in fluid communication with the air flow path and operable to create a pressure differential in order to force air along the air flow path. The sanitizing radiation source may be a source for emitting UV light. The device may include a filter positioned around the sanitizing radiation source, the filter operable to reduce sanitizing radiation transmitted to at least a portion of the internal chamber outside the filter. The device may include a funnel positioned within the internal chamber proximate the air inlet. The sanitizing radiation source may be aligned with a narrow end of the funnel. At least a portion of the internal chamber may be coated with UV reflective material.
In further embodiments of the disclosure, the device may include a pressure differential device positioned in fluid communication with the airflow path and operable to generate an air flow along the air flow path. The device may also include a channel around at least a portion of the air flow path with an internal surface of the channel coated in UV reflective material. The sanitizing radiation source may emit UV light. The pressure differential device may be a vacuum provided in a sleeve along the air flow path. The device may include a one-way valve at the air inlet. The device may include a pressure valve at the air outlet. The pressure differential device may be adjustable to regulate air flow along the air flow path. The channel may be coiled through the internal chamber
Referring now to
In some embodiments, a sanitizing radiation source may be utilized in addition to, or in lieu of, UV light source 106. Such ionizing radiation sources may include blue/violet visible light, ultraviolet, x-ray, gamma radiation, atomic-decay particles or other ionizing radiation as a source of sanitization. Non-ionizing radiation may be used such as microwave.
In some embodiments, chamber 101 may be formed from, or coated with, a reflective or scattering material to promote expansive coverage of UV light. This may ensure UV light is evenly distributed within chamber 101.
In further embodiments, both light and air may travel through a hollow channel that functions as both an air channel and a light waveguide. This dual purpose channel can be a flexible or rigid tube, hose or channel with interior walls coated with a metallic refractor material or light scattering material such as PTFE. Fans may be mounted directly at the inlet of the channel and a UV light source may be mounted at a point after the fan on the side of the channel either parallel to the channel or slightly angled as may be necessary to optimize the air flow path. Depending on the dwell time needed to adequately sanitize the air, the length of channel can be adjusted. Longer channels may require more UV sources. Multiple channels may be utilized within a single chamber, with each receiving its own fan and UV source, or in some embodiments the fan, UV source, or both being shared between the various channels. In one embodiment, two channels may be provided and eventually joined in a “Y” split to serve multiple inlets but only one outlet.
Various embodiments utilize fans to propagate air flow. It should be appreciated that fans may be strategically placed within, or in fluid connection with, the interior chamber to direct air flow where greater UV light coverage exists. For example, cost restraints may restrict the number of UV light sources that can be utilized, however directed air flow by strategically positioning fans near the air flow path can nevertheless ensure the air has ample exposure to UV light.
To facilitate a compact design, multiple channels can be rolled or wrapped around a core in a spiral form. Similarly, a three-dimensional stack of channels may be utilized to maximize space of the internal chamber. A stacking design may serve to lengthen a channel, which could increase air dwell time within UV light due to the greater area of exposure as well as the larger air pressure drop to the air flow path.
Cross-sectional dimensions shown in the figures are representative examples of possible dimensions. In three dimensions, the device may be circular, square, oval, rectangular, or have other channel or internal chamber dimensions. Additionally, the sizes may be variable such that miniaturized versions of various embodiments may be adapted as wearable air sanitation devices, with the device portable and even mountable on a user's clothing.
The descriptions set forth above are meant to be illustrative and not limiting. Various modifications to the disclosed embodiments, in addition to those described herein, will be apparent to those skilled in the art from the foregoing description. Such modifications are also intended to fall within the scope of the concepts described herein. The disclosures of each patent, patent application, and publication cited or described in this document are hereby incorporated herein by reference, in their entireties.
The foregoing description of possible implementations consistent with the present disclosure does not represent a comprehensive list of all such implementations or all variations of the implementations described. The description of some implementations should not be construed as an intent to exclude other implementations described. For example, artisans will understand how to implement the disclosed embodiments in many other ways, using equivalents and alternatives that do not depart from the scope of the disclosure. Moreover, unless indicated to the contrary in the preceding description, no particular component described in the implementations is essential to the invention. It is thus intended that the embodiments disclosed in the specification be considered illustrative, with a true scope and spirit of invention being indicated by the following claims.
This application claims the benefit of U.S. Provisional Application No. 63/036,861 filed Jun. 9, 2020, the disclosure of which is hereby incorporated herein by reference in its entirety.
Number | Date | Country | |
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63036861 | Jun 2020 | US |