Aeolian Anti-Viral Ultra-Violet System for Fluidic Purification
20220074615 ยท 2022-03-10
Inventors
Cpc classification
F24F13/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24F8/22
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
A61L2209/15
HUMAN NECESSITIES
F24F1/0071
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
A fluid purification system for purifying a fluid, such as air, within a fluid flow system, such as a heating, ventilation, and air conditioning system. The fluid purification system has a housing with a specular interior surface. An aerodynamic ultra-violet light module is retained by a framework within the housing to be surrounded by the specular interior surface. The light module has an aerodynamic intake nose cone adjacent to the first end of the housing and an aerodynamic exhaust tail cone adjacent to the second end of the housing. The nose and tail cones are eye-shaped, taper distally, and cooperate to retain a plurality of ultra-violet bulbs in an eye-shaped array that communicates longitudinally within the housing. The housing can be rectangular in cross section with upper and lower walls and opposed sidewalls. Each wall can have a concave inwardly-facing surface operative to focus ultra-violet light within the housing.
Claims
1. A fluid purification system for purifying a fluid within a fluid flow system, the fluid purification system comprising: a housing with a first end open to fluid entering the housing, a second end open to fluid exhausted from the housing, and a specular interior surface; a framework fixed to the housing; and an aerodynamic ultra-violet light module retained by the framework within the housing and surrounded by the specular interior surface.
2. The fluid purification system of claim 1, wherein the ultra-violet light module has a first aerodynamic end cone comprising an intake nose cone disposed adjacent to the first end of the housing and a second aerodynamic end cone comprising an exhaust tail cone disposed adjacent to the second end of the housing and wherein the intake nose cone and the exhaust tail cone cooperate to retain a plurality of ultra-violet bulbs in an array to communicate longitudinally within the housing and wherein fluid entering the fluid purification system into the first end of the housing will pass over the intake nose cone prior to passing over the ultra-violet light bulbs and then over the exhaust tail cone before being exhausted through the second end of the housing.
3. The fluid purification system of claim 2, wherein the first and second aerodynamic end cones of the ultra-violet light module have tapered distal portions whereby the intake nose cone tapers toward the first end of the housing and whereby the exhaust tail cone tapers toward the second end of the housing.
4. The fluid purification system of claim 3, wherein the ultra-violet light module has a symmetrical eye-shaped cross section.
5. The fluid purification system of claim 4, wherein the array of ultra-violet light bulbs has an upper array of bulbs disposed along an upper arcuate path and a lower array of bulbs disposed along a lower arcuate path.
6. The fluid purification system of claim 1, wherein the specular interior surface comprises a reflective polyester film.
7. The fluid purification system of claim 1, wherein the ultra-violet light module has an intake nose cone disposed adjacent to the first end of the housing and an exhaust tail cone disposed adjacent to the second end of the housing, wherein the intake nose cone and the exhaust tail cone cooperate to retain a plurality of ultra-violet bulbs in an array to communicate longitudinally and concentrically within the housing, and wherein fluid entering the fluid purification system into the first end of the housing will pass over the intake nose cone prior to passing over the ultra-violet light bulbs and then over the exhaust tail cone before being exhausted through the second end of the housing.
8. The fluid purification system of claim 7, wherein the housing is rectangular in lateral cross section with an upper wall, a lower wall, and opposed sidewalls and wherein each of the upper, lower, and sidewalls of the housing has a specular interior surface.
9. The fluid purification system of claim 8, wherein the first and second ends of the housing are adapted for being secured in place between spaced first and second duct sections.
10. The fluid purification system of claim 8, wherein the framework comprises a first support structure disposed adjacent to the first end of the housing and a second support structure disposed adjacent to the second end of the housing, wherein each support structure comprises a peripheral frame and plural support legs that project inwardly from the peripheral frame to meet at a central retaining hub, wherein the intake nose cone is supported by the central retaining hub of the first support structure, and wherein the exhaust tail cone is supported by the central retaining hub of the second support structure.
11. The fluid purification system of claim 10, wherein the intake nose cone is supported by the central retaining hub of the first support structure by a support pin and wherein the exhaust tail cone is supported by the central retaining hub of the second support structure by a support pin.
12. The fluid purification system of claim 1, wherein the housing has a plurality of walls and wherein each wall has a concave inwardly-facing surface.
13. The fluid purification system of claim 12, wherein the housing is rectangular in lateral cross section with an upper wall, a lower wall, and opposed sidewalls and wherein each of the upper, lower, and sidewalls of the housing has a specular interior surface.
14. A fluid purification system for purifying a fluid within a fluid flow system, the fluid purification system comprising: a housing with a first end open to fluid entering the housing, a second end open to fluid exhausted from the housing, and a specular interior surface; a framework fixed to the housing; and an aerodynamic ultra-violet light module retained by the framework within the housing and surrounded by the specular interior surface, wherein the ultra-violet light module has a first aerodynamic end cone comprising an intake nose cone disposed adjacent to the first end of the housing and a second aerodynamic end cone comprising an exhaust tail cone disposed adjacent to the second end of the housing, wherein the intake nose cone and the exhaust tail cone cooperate to retain a plurality of ultra-violet bulbs in an array to communicate longitudinally within the housing, wherein fluid entering the fluid purification system into the first end of the housing will pass over the intake nose cone prior to passing over the ultra-violet light bulbs and then over the exhaust tail cone before being exhausted through the second end of the housing, and wherein the first and second aerodynamic end cones have tapered distal portions whereby the intake nose cone tapers toward the first end of the housing and whereby the exhaust tail cone tapers toward the second end of the housing.
15. The fluid purification system of claim 14, wherein the ultra-violet light module has a symmetrical eye-shaped cross section.
16. The fluid purification system of claim 15, wherein the array of ultra-violet light bulbs has an upper array of bulbs disposed along an upper arcuate path and a lower array of bulbs disposed along a lower arcuate path.
17. The fluid purification system of claim 14, wherein the housing has a plurality of walls and wherein each wall has a concave inwardly-facing surface.
18. The fluid purification system of claim 17, wherein the housing is rectangular in lateral cross section with an upper wall, a lower wall, and opposed sidewalls and wherein each of the upper, lower, and sidewalls of the housing has a specular interior surface.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0022] In the accompanying drawing figures:
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DETAILED DESCRIPTION OF PREFERRED EMBODIMENTS
[0034] The Aeolian fluid purification system disclosed herein is subject to a wide variety of embodiments. However, to ensure that one skilled in the art will be able to understand and, in appropriate cases, practice the present invention, certain preferred embodiments of the broader invention revealed herein are described below and shown in the accompanying drawing figures.
[0035] Embodiments of the Aeolian fluid purification system disclosed herein are indicated generally at 10 in
[0036] As can be perceived by combined reference to
[0037] Looking particularly to
[0038] The walls 34, 36, 28, and 40 of the housing 16 have highly specular interior surfaces that operate to reflect and re-reflect light emitted by the ultra-violet light module 12 within the housing 16. The reflective or specular interior surfaces can be created in any effective manner, including by surface finishing, by the application of a specular coating or material, or in some other manner. For instance, the specular interior surface could be created by the application of a reflective polyester film, by polishing, by glass mirror, or by any other method for creating a specular surface.
[0039] The ultra-violet light module 12 is configured to minimize disruption to the natural flow of air through the HVAC system. As such, the ultra-violet light module 12 has first and second aerodynamic end cones 18 and 20, which may alternatively be referred to as an intake nose cone 24 and an exhaust tail cone 26. The first and second end cones 18 and 20 cooperate to retain an array of tubular ultra-violet light bulbs 22. With respect to the light module 12, air traveling through the Aeolian fluid purification system 10 will pass from the first duct section 100 and into the system 10, initially passing through the end structure 24, then over the intake nose cone 24, then past the ultra-violet light bulbs 22, and then over the exhaust tail cone 26 before being exhausted through the end structure 26 to the second duct section 102.
[0040] The nose cone 18 and the tail cone 20 and the framework 14 could be constructed from any suitable material or materials. In certain embodiments, the first and second end cones 18 and 20 can, by way of example and not limitation, by constructed from fiberglass, from carbon fiber, from plastic, or from any other suitable material or combination of materials. Either or both end cones 18 and 20 could be coated, treated, and/or surface finished for still lower resistance to air flow. By way of example and not limitation, surface texturing may be incorporated to promote laminar flow and to reduce resistance. Additionally or alternatively, a low-friction coating, such as polytetrafluoroethylene (PTFE) or another material, or a pebbling, contouring, or other surface finish or application might be applied or formed to promote laminar flow still further.
[0041] In the present, non-limiting embodiment, the ultra-violet light module 12 has what can be characterized as a symmetrical aerofoil-shaped or eye-shaped lateral cross section. Each aerodynamic end cone 18 and 20 has a proximal portion bounded by upper and lower arcuate edges. The aerodynamic end cones 18 and 20 smoothly taper from the proximal portion to aerodynamic distal tip portions that in this embodiment are also eye-shaped in lateral cross section such that they are bounded by upper and lower arcuate edges. The distal tip portions of the end cones 18 and 20, and thus the light module 12 in general, are supported by the retaining hubs 32 of the end structures 24 and 26 respectively. For instance, as shown in
[0042] The array of ultra-violet light bulbs 22 is retained by the proximal portions of the aerodynamic end cones 18 and 20 to span therebetween. The array of ultra-violet light bulbs 22 can be considered to have an upper array of bulbs 22 disposed along an upper arcuate path and a lower array of bulbs 22 disposed along a lower arcuate path. The upper and lower arrays of bulbs 22 share their terminal bulbs 22 as is shown perhaps most clearly in
[0043] Electrical power is provided to the ultra-violet light module 12 and the fluid purification system 10 in general by any viable source of electrical power, including building power, battery power, generator power, or any other source of combination of sources. The ultra-violet light bulbs 22 and the ultra-violet light module 12 can be electrically powered and can be actuated in any appropriate manner. By way of example and not limitation, the ultra-violet light module 12 can be continuously powered, powered only during active fluid flow through the system 10, selectively powered by manual actuation, or automatically powered intermittently or in response to a detected pathogen. To that end, as
[0044] Furthermore, as can be perceived by combined reference to
[0045] Air flowing through the ducted system from the first duct section 100 to the second duct section through the Aeolian fluid purification system 10 can thus be purified of pathogens, such as but not limited to virus pathogens, with minimized disruption and impedance to the flow of air through the ducted system. Newly-constructed HVAC systems can incorporate Aeolian fluid purification systems 10 as taught herein, and Aeolian fluid purification system 10 according to the invention can be readily applied to pre-existing HVAC systems to purify the air flowing therethrough and to enhance the safety of building occupants.
[0046] With certain details and embodiments of the present invention for an Aeolian fluid purification system 10 disclosed, it will be appreciated by one skilled in the art that numerous changes and additions could be made thereto without deviating from the spirit or scope of the present invention. This is particularly true when one bears in mind that the presented preferred embodiments merely exemplify the broader invention revealed herein. Accordingly, it will be clear that those with major features in mind could craft embodiments that incorporate those major features while not incorporating all of the features included in the preferred embodiments. Moreover, features, relationships, and dimensions shown in the drawings are intended merely to be illustrative and not limiting.
[0047] Therefore, the following claims shall define the scope of protection to be afforded to the invention. Those claims shall be deemed to include equivalent constructions insofar as they do not depart from the spirit and scope of the invention. It must be further noted that a plurality of the following claims may express, or be interpreted to express, certain elements as means for performing a specific function, at times without the recital of structure or material. As the law demands, any such claims shall be construed to cover not only the corresponding structure and material expressly described in this specification but also all legally-cognizable equivalents thereof