Method to clean air utilizing a built-in air flow mechanism
11578726 · 2023-02-14
Assignee
Inventors
Cpc classification
F21V29/677
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V9/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V29/83
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/545
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21S8/026
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21Y2115/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21K9/278
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21Y2113/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/005
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21S8/061
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21S10/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V33/0092
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V29/508
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D25/088
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F04D25/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21K9/278
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V33/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21S8/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21S8/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/54
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V29/67
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V29/508
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V9/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V29/83
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
Disclosed embodiments relate to a combination axial fan and LED lighting system configured to fit into the footprint of a standard ceiling tile. Disclosed embodiments further include ceiling tiles with a built-in fan and/or LED lighting. The disclosed systems may include a housing container and an axial fan. The fan has a fan cavity including air diversion mechanism to direct air from the fan cavity toward the lighting and fan components. The inventions include an airflow surface to direct air existing the fan cavity along an LED light fixture. Moreover, disclosed embodiments include one or more UV light sources which irradiate contaminants as air flows through the ceiling tile.
Claims
1. A method for utilizing an air circulation device to clean air in a room, comprising the steps of: mounting an air circulation device in the structure of a building adjacent a room wherein the air circulation device includes a housing, an inlet vent and an outlet vent in the housing, a first fan mounted to the housing adjacent the inlet vent, a baffle mounted in the housing and defining a first airway between the fan and the inlet vent; a UVC kill chamber mounted in the first airway; and the UVC kill chamber including a UVC light source and a UVC shield adapted to block UVC light generated by the UVC light source from exiting the first airway, and an outlet vent positioned adjacent the first airway; circulating air from the room by means of the first fan wherein the air from the room is circulated through the first fan and the baffle into the UVC kill chamber in the first airway; irradiating the air in the UVC kill chamber with the UVC light source; shielding the UVC light emitted from the light source from being emitted into the room through the outlet vent by positioning a UVC shield between the first airway and the UVC light source; and circulating air from the UVC kill chamber through the outlet vent into the room.
2. The method for utilizing an air circulating device to clean air in a room of claim 1 wherein the UVC light source emits UVC light waves having a wavelength between 200 to 280 nanometers.
3. The method for utilizing an air circulating device to clean air in a room of claim 1 further comprising the step of mounting the air circulation device in a ceiling tile.
4. The method for utilizing an air circulating device to clean air in a room of claim 1 further comprising the step of mounting the air circulation device in a light fixture.
5. The method for utilizing an air circulating device to clean air in a room of claim 2 further comprising the step of mounting the air circulation device in a ceiling tile.
6. The method for utilizing an air circulating device to clean air in a room of claim 2 further comprising the step of mounting the air circulation device in a light fixture.
7. The method for utilizing an air circulating device to clean air in a room of claim 1 wherein the step of irradiating the air in the UVC kill chamber kills viruses in the air.
8. The method for utilizing an air circulating device to clean air in a room of claim 1 wherein the step of irradiating the air in the UVC kill chamber kills mold in the air.
9. The method for utilizing an air circulating device to clean air in a room of claim 1 wherein the step of irradiating the air in the UVC kill chamber kills environmental airborne contaminants in the air.
10. The method for utilizing an air circulating device to clean air in a room of claim 2 wherein the step of irradiating the air in the UVC kill chamber kills viruses in the air.
11. The method for utilizing an air circulating device to clean air in a room of claim 2 wherein the step of irradiating the air in the UVC kill chamber kills mold in the air.
12. The method for utilizing an air circulating device to clean air in a room of claim 2 wherein the step of irradiating the air in the UVC kill chamber kills environmental airborne contaminants in the air.
13. The method for utilizing an air circulating device to clean air in a room of claim 1, further comprising the step of lining the UVC kill chamber with a reflective material.
14. The method for utilizing an air circulating device to clean air in a room of claim 2, further comprising the step of lining the UVC kill chamber with a reflective material.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE INVENTION
(22) Embodiments of the present invention may comprise a combination of a fan and LED light fixture.
(23) The troffer shelf 12 may have the same general dimensions as a ceiling tile typically 1 ft.×2 ft., 2 ft.×2 ft. or 2 ft.×4 ft. The LED light fixture 20 is typically positioned along the troffer chamber 16 along the troffer shelf 12 such that light from the fixture 20 is not interrupted by the fan 30. The LED light fixture may include an LED lamp 22. The LED light fixture 20 is preferably in the form of a strip which runs the length of the troffer shelf 12. The LED light fixture 20 is secured to the troffer shelf 12 in such a manner to permit air to flow along a substantial portion of the surface area of the LED lamp 22 and light fixture 20. The LED light fixture 20 may include a magnetic attachment mechanism to secure the light fixture 20 to the troffer shelf 12. The magnetic attachment mechanism serves multiple purposes including the ability to detach the LED light fixture 20 from the troffer shelf 12 in a relatively easy fashion. The magnetic attachment mechanism further serves to provide a space between the LED light fixture 20 and troffer shelf 12 for air to flow through which increases the surface area of the LED light fixture 20 that contacts the air. The greater the surface area of the LED light fixture 20 that comes in contact with the air flow, the faster and more efficient the temperature reduction of the LED light fixture. While LED light fixtures are discussed throughout this disclosure, it is understood that other types of lights may be utilized in the invention and benefit from the features of the invention.
(24) The fan 30 preferably includes at least an axial fan as shown in
(25) As shown in
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(27) In embodiments of the present invention, there may be a vent and lens bracket 80. The bracket 80 is affixed to the troffer shelf 12 in such a manner to permit air to flow from the light chamber 16 through an exit vent 84 formed by a damper 81 in the bracket 80. The vent 84 permits the air heated by LED light fixture 20 to exit the light chamber 16. The bracket 80 also includes a lens bracket 82. The lens bracket 82 corresponds with a fan lens bracket 83 to secure a lens 90 in place within the combination LED light and fan 10. The lens 90 provides a solid surface to assist with containing any air from the fan 30 such that it proceeds along the troffer shelf 12 and the troffer baffle 14 to the LED light fixture 20 and through the vent 84. A lens 90 is not necessary to the invention. However, the lens 90 typically made of a somewhat flexible translucent plastic material. There is a mounting mechanism 100 that is used to affix the combination LED light fixture and fan to an adjacent ceiling tile or bracket.
(28) Some embodiments of the present invention may incorporate the use of color displayed by the lighting system to affect the environment in which the combination LED light and fan fixture 10 may be implemented. Research has shown that different colors appear to affect behavioral traits in humans. For example, the color yellow is believed to influence a person's self-confidence; the color red is believed to influence a person's physical body, the color blue is believed to influence a person's mind and the color green is believed to influence a person's emotional balance. It is believed that, for example, the combination of a yellow color with a blue color will stimulate a person's emotional balance and mind. The different color combinations may be incorporated into the present invention in numerous ways. In one embodiment of the present invention, the colors blue, red, yellow or green may be applied to the internal surface of the troffer shelf 12 and/or the troffer baffle 14 by means of paint, insert or other known technique. Alternatively, the lens 90 may comprise of the colors blue, red, yellow or green. The colored lens 90 operates to transmit light of the lens color in an indoor space. Finally, the LED light fixture 20 itself may be configured to generate light in the blue, red, yellow or green spectrums by means of the LED lamp 22.
(29) The air exiting from the fan cavity 16 is directed along an airflow surface on the troffer shelf 12 and troffer baffles 14 air may alternatively be directed through a cooling chamber, which is not shown but functions to cool the fan components, as well as, the LED lighting components. The internal surface of the troffer shelf 12 and troffer baffles 14 may be coated with a Miro-Micro Matt wet paint produced by Alanod. The paint helps to maintain airflow along the surface, as well as, maintain a clean dust-free surface. The airflow 40 has two general components. The air that exits the fan cavity 13 generally has a laminar flow along the airflow surface of the troffer shelf 12. As the flow of air from the fan 30 extends towards the exterior perimeter of the troffer shelf 12 and troffer baffles 14 through the vent 84, the flow becomes more turbulent and mixes with the surrounding air. The preferred direction of the air-flow is such that the intake 36 of the fan 30 draws air from the lower portion of a space and distributes the air along the upper portion of the space. Air along the lower portion of an area tends to be cooler than air that resides at the upper portion of an area. The cooler air is pulled into the fan 30 and distributed from the cavity is used to cool and clean the LED light fixture 20, and/or the LED light bulb 22.
(30) The combination fan of the present invention may utilize the stepped-fan blade design depicted in the pending patent application Ser. No. 14/814,161, 15/043,923 and 15/346,913, each of which is hereby incorporated by reference, in the entirety. The benefits of the stepped-blade design are set-forth in detail in the pending patent applications referenced herein and need not be repeated in this provisional application and are not shown in the drawings. The stepped-fan blade design greatly improves the air flow characteristics of the fan 30.
(31) As shown in
(32) In some embodiments of the inventions, the combination fan and LED light system further includes an air diversion mechanism 50. The air diversion mechanism 50 is positioned within the cavity of the fan chamber 13. The physical configuration of the air diversion mechanism 50 is such that it directs air exiting the fan outlet 38 through the louvered openings 17 or diffuser in the louvered fan holder 18. In some embodiments, the air diversion mechanism 50 is in the shape of a prism as shown in
(33) The air exiting from the fan cavity 13 is directed along an airflow troffer shelf 12 to the troffer baffle 14. Air may alternatively be directed through a cooling chamber, which is not shown, but functions to cool the components located in the ballast housing 51, as well as, the LED lighting components.
(34) As shown in
(35) Turning to
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(37) In
(38) The bracket 80 includes a damper 81 and lens bracket 82. The embodiment includes a lens 90 which acts to diffuse the light emitted from the LED lights 20. There is a mounting mechanism 100 used to affix the combination LED light fixture and fan to an adjacent ceiling tile or bracket.
(39) The interior surface of the troffer shelf 12 and troffer baffle 114 may be coated with a Miro-Micro Matt wet paint produced by Alanod. The paint helps to maintain airflow along the surface, as well as, maintain a clean dust-free surface. The paint can be applied in any of the colors discussed above to affect the environment.
(40) As shown in
(41) The alternative embodiments of the combination LED light fixture and fan 110 utilize an internal baffle 114. The internal baffle 114 serves to direct air within the troffer cavity 116 and provide support for the LED lighting 120. The embodiments depicted in
(42) In
(43) The fan 130 preferably includes an axial fan. The blades 132 of the axial fan force air to move parallel to a shaft 134 about which the blades 132 rotate. The flow of air 140 is axially through the intake of the fan 136 and axially out through the outlet 138 of the fan 130. The flow of air is linear trough the intake 136 and the outlet 138. The design of the fan 130 is a function of the blade configuration 132 that creates a pressure of differential that produces airflow 140 across the fan blade 132. The axial fan 130 may consist of anywhere from 2 to 8 blades. The axial fan 130 is connected to an energy source (not shown) and typically operates at high speeds. The typical speed of the axial fan of the present invention operates between 1800 to 4000 RPM to produce airflow in the range of 85 to 150 cubic feet per minute. The combination fan of the present invention may utilize the stepped-fan blade design depicted in the pending patent applications referenced above.
(44) The fan intake 136 of
(45) One embodiment of the combination fan and LED light system 110 further includes an air diversion mechanism 150. The air diversion mechanism 150 is positioned within the fan chamber 113 of the fan 130. Looking at
(46) The air exiting from the fan cavity 116 is directed along an airflow surface on the troffer baffle 114 air may alternatively be directed through a cooling chamber, which is not shown but functions to cool the fan components, as well as, the LED lighting components. The internal surface of the troffer baffle 114 is preferably coated with a Miro-Micro Matt wet paint produced by Alanod. The paint helps to maintain airflow along the surface, as well as, maintain a clean dust-free surface. The airflow 140 has two general components. The air that exits the fan cavity 113 generally has a laminar flow along the airflow surface of the lower housing portion 114. As the flow of air from the fan 130 extends towards the exterior perimeter of the housing 112 through the vent 184, the flow becomes more turbulent and mixes with the surrounding air. The preferred direction of the air-flow is such that the intake 136 of the fan 130 draws air from the lower portion of a space and distributes the air along the upper portion of the space. Air along the lower portion of an area tends to be cooler than air that resides at the upper portion of an area. The cooler air is pulled into the fan 130 and distributed from the cavity is used to cool and clean the LED light fixture 120, and/or the LED light bulb 122.
(47) An embodiment of the combination LED light fixture and fan 200 in which the LED light fixtures 220 are directed toward the ceiling is depicted in
(48) The combination LED light fixture and fan 210 has a domed shell 292. While a domed-shaped shell 292 is shown in some embodiments, any shaped shell may be utilized and still practice the invention. The shell 292 serves as a troffer. The shell 292 is configured to direct air from the troffer cavity 216 along the LED light fixtures 220 and through the exit vent 284. A lens 290 is positioned on top of the shell 292. The LED light fixtures 220 may be configured to direct light upward toward the ceiling or downward toward the shell 292. The shell 292 may be made of a solid material or alternatively a translucent material to permit light to penetrate the shell 292 into the room. The combination LED light fixture and fan 220 is supported from the ceiling by one or more mounting cables 294. The mounting cables 294 may be configured to accommodate power cables to supply power to the fan 230 and LED light fixtures 220.
(49) The combination LED light fixture and fan as shown in all the embodiments of the present invention may use a hard-wired control mechanism to control both the light 20 and fan 30. The invention may use an ethernet connection and remote control to activate the fan 30 and LED light fixture 20. Alternatively, a wi-fi (wireless) connection may be used in connection with a remote control to control the LED light 20 and fan 30. The remote control feature is configured to adjust the intensity (or color) of the LED light fixture 20 and the speed of the fan 30.
(50) The embodiments of the inventions shown in
(51) As shown in
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(53) Various aspects of this disclosure may include components which are implemented directly into a ceiling grid, or ceiling tile, as seen for example in
(54) In embodiments of the inventions, ceiling tile 1501 may have one or more fans 1502 and vents 1503 cut into the ceiling tile 1501, sometimes referred to herein as a ceiling panel. Panel cuts may be made or manufactured using waterjet cutting, die cutting, laser cutting, CNC routing, CNC knife cutting, reciprocated knife cutting, or any other known techniques for cutting through tiles. Vents 1503 may take the form of elongated slot(s) extending near the edge of ceiling tile 1501, although other shapes are also contemplated. For example,
(55) As seen in
(56) Embodiments of the invention further include the functionality of irradiating germs out of the air using UV light. Such embodiments provide the advantage of not only circulating air in an environment, but also killing viral, bacterial, and fungal species which may be living in the environment's air. It is known the UV light degrades organic materials, but inorganic materials (including metals or glass) are not affected by UV light. Therefore, UV light is effective for reducing organic matter which may be airborne in the air. Reducing airborne contaminants may be important in any environment, but especially in hospitals or schools, which may be particularly susceptible to disease. Regardless of the environment, disinfecting the air of contaminants is helpful to reduce the spread of disease.
(57) It is preferable to reduce or eliminate contact with UV lighting because UV light can be harmful to humans and/or animals (particularly over prolonged durations). Embodiments of the invention therefore provide the advantage of positioning a UV light source in the ceiling tile, where the UV rays may be contained in the ceiling tiles. For example,
(58) In some embodiments, light source(s) 1640 may emit UVC light, which has a wavelength of approximately 200 to 280 nanometers. A person of skill in the art would recognize the UVC light is optimal for irradiating airborne contaminants (such as viruses, superbugs, mold, and the like) in most environments. In embodiments of the invention, the upper baffle 1610 and/or the lower baffle 1620/1621 may be made of, or coated with, a UV-reflective material. A person of skill in the art would recognize that a UV-reflective material could include a metal, such as stainless steel, or a specialty coating. Lining the airway with a reflective material and/or reflective coating provides the advantage of creating a “kill chamber,” or “kill zone” inside the airways 1630, 1631, where UV rays may bounce to increase their exposure to air passing through the airways 1630, 1631, and by extension, increase the irradiation of organic matter contained in the air.
(59) Furthermore, some embodiments of the inventions may include a UV-screen in the form of flange 1650 which is attached to the end of airways 1630 and/or 1631 to shield UV rays from exiting the airways and entering an environment (such as a room or commercial space). In this way, including UV-screen(s) 1650 at the end of an airway Although
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(61) While specific combinations of elements are disclosed in specific embodiments, it should be understood that any combination of the different features may be utilized in the combined fan.
(62) The foregoing disclosure and description of the invention are illustrating and explanatory thereof, and various changes in the size, shape and materials as well as in the details of illustrated construction may be changed without departing from the spirit of the invention.
(63) It is understood that the invention is not limited to the specific embodiments disclosed and that modifications and other embodiments are intended to be included within the scope of the appended claims. Although specific terms are employed herein, they are used in a generic and descriptive sense only and not for purposes of limitation.