UV ENABLED FINS ENCAPSULATION SYSTEM
20220040620 · 2022-02-10
Inventors
- Ilyas HAMIDZAI (Bethesda, MD, US)
- Gary Steven DAVIDSON (Bethesda, MD, US)
- Nackieb Mohd KAMIN (Annandale, VA, US)
Cpc classification
B01D46/0002
PERFORMING OPERATIONS; TRANSPORTING
B01D46/521
PERFORMING OPERATIONS; TRANSPORTING
B01D2273/26
PERFORMING OPERATIONS; TRANSPORTING
B01D46/0005
PERFORMING OPERATIONS; TRANSPORTING
B01D46/442
PERFORMING OPERATIONS; TRANSPORTING
A61L2209/111
HUMAN NECESSITIES
B01D46/4245
PERFORMING OPERATIONS; TRANSPORTING
B01D46/0091
PERFORMING OPERATIONS; TRANSPORTING
B01D46/10
PERFORMING OPERATIONS; TRANSPORTING
B01D46/4227
PERFORMING OPERATIONS; TRANSPORTING
B01D2273/30
PERFORMING OPERATIONS; TRANSPORTING
B01D46/56
PERFORMING OPERATIONS; TRANSPORTING
B01D2279/65
PERFORMING OPERATIONS; TRANSPORTING
B01D46/0028
PERFORMING OPERATIONS; TRANSPORTING
International classification
B01D46/00
PERFORMING OPERATIONS; TRANSPORTING
B01D46/42
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A general-purpose air sterilizing system destroys activation of air-borne pathogens, designed with different embodiments. The methods used to build the apparatus allows destroying airborne pathogens like bacteria, mold, mildew, allergens and deactivates viruses such as SARS CoV-2. The apparatus supports air circulation system that contains filter which comprising array of Ultraviolet (UV) Light Emitting Diode (LEDs) of 262-nm wavelength, AKA UVC, are used.
Claims
1. An air filter encapsulation system for encapsulating an air filter element having an active portion, the air filter encapsulation system comprising: a slotted air filter holder structured to hold the air filter element; comprised of multiple Fins that have UVC LEDs disposed on the fins, the UVC LED arrays being configured to emit UVC light in the band of 100 to 280 nanometers; the fin angle adjusters that couple the UVC LED arrays to the holder, the angle adjusters directing the LED arrays to encapsulate the air filter element active portion with the emitted UVC light; at least one sensor disposed on the encapsulation structure; and a power supply connected to supply power to the UVC LED arrays.
2. The system of claim 1, further including an air cleaning system that supports air filters of various designs and sizes.
3. The system of claim 1 wherein maximum UV exposure is provided on an air intake side and outlet of a filter element to provide serial exposure synchronized on an output side of the filter element.
4. The system of claim 1, wherein the housing is adjustable to fit: multiple standard sizes for residential air filters, or multiple standard sizes for commercial air filters.
5. The system of claim 1 wherein, wherein the UVC LEDs are integrated to the fins and the system uses directional positioning to maximize exposure to avoid shadowing effects and positioning at closest distance.
6. The system of claim 1 wherein the fins are configurable with placement and/or orientation that can be altered manually or automatically adjusted to the shape of the air filter to maximize irradiance.
7. The system of claim 1 wherein the fin placement, orientation and power design of the UVC enabled fins maximizes air filter surface and intake and outlet with irradiance (radiant power received by surface) of 2000-8000 micro-watt/cm2.
8. The system of claim 1 wherein the UVC array provides Germicidal Disinfection used to eliminate pathogens such as bacteria, mold, mildew allergens, and deactivate viruses such as SARS CoV-2.
9. The system of claim 1 uses fin clips that support and rotate UVC arrays to proper angles.
10. The system of claim 8 wherein rotation of fins are designed specifically for maximum irradiance and exposure of photons received by surface area as UVC LEDs are illuminated.
11. The system of claim 8 wherein rotation of fins are designed specifically for protection of eye or skin of human, and the system further comprises a protection control unit resets power to the UVC LED array.
12. The system of claim 8 wherein rotation of fins are designed specifically for protection of eye or skin of human, and the system further comprises a protection control unit resets angle of illumination to 0°.
13. The system of claim 1 wherein the UVC enabled fins are oriented: in vertical and horizontal directions facing towards side-1 of primary filter (inward air flow), or vertical and horizontal directions facing opposite of side-1 of primary filter (outward air flow), or vertical and horizontal directions facing towards side-2 of primary filter (inward air flow), or vertical and horizontal directions facing opposite of side-2 of primary filter (outward air flow).
14. The system of claim 8 wherein rotation of fins is designed alter direction of airflow to optimize the pathogen exposure time to UVC radiation.
15. A germicidal filter comprising: a structure defining an active filtering space having an ingress side and an egress side; an ultraviolet light array disposed on at least one of the ingress side and the egress side, the ultraviolet light array comprising plural longitudinal strips having ultraviolet light emitting elements spaced there-along, wherein the ultraviolet light emitting elements provide ultraviolet light intensities of 6000 Joules/m.sup.2 for eliminating colonies of 6000-10,000 RNA viruses to allows logarithmic reduction of 1,000-10,000 colony forming units (CFUs).
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF EXAMPLE NON-LIMITING EMBODIMENTS
[0019] An example non-limiting system provides sterilization to deactivate airborne pathogens, on the surface of a conventional air filter and in the air intake and outlet.
[0020] An example design includes an air filter frame, fins uniquely designed with ultraviolet (UV) light emitting diode (LEDs) disinfection irradiance and a power module that provides power to each fin. The air sterilizing system uses a novel frame design that encapsulates any size air filter and the novel frame integration with adjustable fins with UVC LEDs. The system provides utility of air cleaning chamber, adapted to support HVAC filters. The system employs a unique array of UVC light radiation in an intake chamber and return Air Duct (filter side 1) and on an outlet side of chamber (filter side 2).
[0021] Each air cleaning apparatus includes sterilization UV light exposing intake air, outlet and air filter surface area where air is drawn through a filter that is irradiated with a UVC light energy comprised of a UV germicidal air disinfection system. The mechanism eliminates pathogens such as bacteria, mold, mildew allergens, and deactivates viruses such as SARS CoV-2,
[0022] The system also keeps a user up to date on air quality, functionality and effectiveness of the system.
[0023] The technology herein further provides an effective method to eliminate activation of airborne pathogens prior to entering the air circulation system.
[0024] In more detail, one embodiment provides an air filter encapsulation with integrated sensors using UVC LEDs emitting at wavelength of 200-280-nanometers range to sterilize and deactivate airborne pathogens, on the surfaces of a conventional filter and in an air intake and outlet. Each design includes an air filter frame, fins that have uniquely designed ultraviolet (UV) light emitting diode (LEDs) disinfection arrays and a power module. The air sterilizing system uses novel frame design that encapsulates any size air filter and the novel frame integration design of arrayed UVC LEDs. The claims are based on utility of air cleaning encapsulation, adapted to support HVAC filters. The system employs a unique array of UVC lamps in intake chamber and return Air Duct (filter side 1) and on an outlet side of chamber (filter side 2).
[0025] A power control module provides controlled energy to UVC fins to illuminate UV light at a given power; each UVC enabled fin is powered independently and has integrated controller for power management.
[0026] A
[0027] Example Air Filter Encapsulation System
[0028]
[0029] In the example embodiment, a UV-C germicidal LED illumination system is provided on a frame or housing that holds, surrounds and/or encapsulates the conventional air filter element. The illumination system is configured to irradiate one or both sides of the undulating surfaces of the conventional air filter element and/or inflow air into the filter element and/or outflow air out of the filter element. The illumination system provides sufficient intensity of germicidal ultraviolet light to kill pathogens such as bacteria and viruses.
[0030]
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[0032] In more detail,
[0033]
[0034] As air moves through an HVAC system, air filters trap and collect large and small particles such as dust, allergens and microorganisms. According to the American Society of Heating, Refrigerating and Air-Conditioning Engineers (ASHRAE), this filtration helps provide healthier indoor air quality. A MERV rating of ≥13 (or ISO equivalent) is efficient at capturing airborne viruses, and MERV 14 (or ISO equivalent) filters are preferred. High efficiency particulate air (HEPA) filters are more efficient than MERV 16 filters. Generally, particles with an aerodynamic diameter around 0.3 μm are most penetrating; and efficiency increases above and below this particle size. Overall effectiveness of reducing particle concentrations depends on several factors such as:
[0035] Filter Efficiency
[0036] Airflow Rate Through the Filter
[0037] Size of the Particles
[0038] Location of the filter in the HVAC system or room air cleaner.
[0039] In example embodiments herein, the frame 102, 104a, 104b supports one or more ultraviolet (UV) light emitting arrays 108, 110. In one embodiment, such UV light emitting arrays 108, 110 are evenly or unevenly distributed across the surface of the filter element to provide sufficient UV illumination on the surface(s) of the filter and in ingress and egress air flows. In many embodiments, the filter element is corrugated or undulating to increase filter surface area, creating a meandering or undulating filter surface topography. The UV illumination arrays 108, 110 are in one embodiment disposed and spaced above and across the filter element in such a way as to illuminate every part of such meandering/undulating filter surfaces as well as air flowing toward, away and/or through the filter element.
[0040] In some embodiments, UV arrays 108, 110 are respectively disposed on each side (both ingress and egress) of the filter element. In some embodiments, UV arrays 110 may be disposed only on the ingress side of the filter element or UV arrays 108 may be disposed only on an egress side of the filter element. In some embodiments, the UV arrays 108, 110 are structured to illuminate the filter surface(s) as well as ingress or egress air flow. In other embodiments, the UV arrays 108 on one side of the filter element may be used to illuminate the filter surfaces and/or the ingress/egress air flow in a first manner and the UV arrays 110 on other side of the filter element may be used to illuminate the filter surfaces and/or the ingress/egress air flow in a second manner different from the first manner. For example, the UV illumination on one side of the filter element may illuminate the filter surfaces but not the air flow, and the UV illumination on the other side of the filter element may illuminate the air flow but not the filter surfaces. In some embodiments, the UV arrays 108, 110 may contact or be integrated directly into the filter element instead of being spaced apart and above the filter element.
[0041] In the example shown, each UV array 108, 110 may comprise a longitudinal strip of plastic or other material that bears a plurality of light emitting diode illuminators 114 and associated electrical and/or data conductors. The number of UV illuminators 114 and their arrangements and spacings may depend on a number of factors including the filter element size, the type of filter element, the air flow rate, the degree of germicidal protection needed, the power and field of view of illuminators 114, and other factors. Similarly, the number of arrays 108, 110 on the respective sides of the filter element may depend on various factors including the size and shape of the filter element, the air flow rate, the degree of germicidal protection, the power and field of view of illuminators 114, and other factors. Ingress and egress sides of the structure can have different numbers of arrays 108, 110, or there may be an array 108 on one side of the filter element for each array 110 on the other side of the filter element. The arrays 108, 110 may be in registry to one another, offset from one another, or have no positional correspondence with respect to one another. In the embodiment shown the arrays 108, 110 are parallel to one another, but in other embodiments the arrays 108 can be oriented at right angles to the arrays 110, or may be oriented at any desired orientation relative to the arrays 110. The arrays 108, 110 in the embodiment shown are at right angles to side arms 104 and parallel to front face 102, but in other embodiments the arrays may be oriented parallel to the side arms and at right angles to the front face, or the arrays may be oriented at any angle relative to the side arms and front face. In the embodiment shown all arrays 108 are parallel to one another and all arrays 110 are parallel to one another, but in some embodiments arrays 108 can have different orientations relative to one another and arrays 110 can have different orientations relative to one another. In the embodiment shown arrays 108 are coplanar and arrays 110 are coplanar so they are equidistant from the filter surface(s), but in other embodiments arrays 108 may lie in different planes and/or arrays 110 may lie in different planes to provide different distances between the filter element and the arrays and/or to accommodate non-planar filter elements.
[0042] As can be seen in
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[0046] Our system allows exposure of 6000 Joules/m2 for eliminating colonies of 6000-10,000 RNA viruses. As such, UVC LEDs are exposed at range of a few seconds to 60 an hour with closely spaced UVC LED arrays in vertical and horizontal direction. Our system allows logarithmic reduction of 1,000-10,000 colony forming units (CFUs).
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[0048] Further shown in a power and safety module 116 comprising an automatic shutoff mechanism, a detector to monitor airflow/rate and turn control system ON/OFF, maximum exposure on air intake side and outlet of the air filter. The safety module 116 uses sensors 118 in order to prevent exposure of UV rays to eyes or skin; and to avoid risk of skin burn. An electro-mechanical sensor automatically shuts off power to the UVC LED arrays when cover is opened. Sensors detects ambient temperature, smoke air flow, and carbon monoxide.
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[0050] A WiFi enabled system is controlled with a smart device 312 and an app running on that same device to control settings and receive output signals. The WiFi-enabled control allows users to control the system remotely and notifies users of any functionality issues associated with the unit (
[0051] In one embodiment, the processor 304 varies the illumination the UV arrays 108, 110 produce (
[0052] Further Use Case
[0053]
Example 1
[0054] One embodiment of air filter encapsulation system is comprised of uniquely designed:
[0055] Air filter slot encapsulation system
[0056] UVC LED arrays
[0057] UVC array angle adjusters
[0058] Senor Module
[0059] Power Module.
[0060] The air cleaning system that support air filters of various designs using various embodiments, may each be comprised of.
[0061] WiFi-enabled: WiFi enabled system is controlled with a smart device and an app to control settings and receive output signals
[0062] Safety module: In order to prevent exposure of UV rays to eyes or skin; and avoid risk of skin burn, an electro-mechanical sensor automatically shuts off power to the UVC LED arrays when cover is opened.
[0063] UVC LED Lifetime: In order to prevent overheating of power supply caused by over-aging UVC LEDs, two sensors provide user with approximated large signal resistance and small signal impedance, as indication of excess power dissipation due to degraded LEDs in each array.
[0064] Maintenance: A set of timers forewarn the user to change air filter at appropriated time.
[0065] The air filter encapsulation system may be comprised a Power control module designed to regulate power to sensors and each LED element on each UVC array comprising:
[0066] Safety shutoff feature
[0067] Detector to monitor airflow/rate and turn control system ON/OFF
[0068] Sensors monitor humidity
[0069] Regulate power level depending on airflow
[0070] Maximum exposure on air intake side and outlet of filter
[0071] Serial exposure synchronized on output side of filter
[0072] The air filter encapsulation system may be comprised a safety module, comprising output of:
[0073] Sensor that detects ambient temperature
[0074] Sensor that detects smoke in the air.
[0075] Sensor that detects carbon monoxide in the air.
[0076] Sensor that detects smoke
[0077] Sensor that detects Carbon monoxide
[0078] The air cleaner unit may comprise a housing that is adjustable, such that:
[0079] Adjustable to fit multiple standard sizes for residential air filters.
[0080] Adjustable to fit multiple standard sizes for commercial air filters.
[0081] Each embodiment encapsulates an air filter.
[0082] The embodiment integrates UVC LEDs and uses directional positioning to maximum exposure to avoid shadowing effects and positioning at closest distance.
[0083] The array is configurable wherein the placement and orientation can be altered manually or automatically adjusted to the shape of the air filter, the air flow rate (e.g., CFM) as measured by an air flow sensor, and/or in accordance with other air flow parameters. In one embodiment, the system automatically configures the array by rotating the fins so that the UV LEDS are aimed cross-wise at the air as it flows through the filter and/or so the restriction to flow the fins themselves cause is reduced or minimized.
[0084] Array placement, orientation and power design of UVC array maximize air filter surface and intake and outlet with irradiance (radiant power received by surface) of 2000-8000 micro-watt/cm2 with fluence (UV exposure dose rate of 10-80 Joules/m2/Sec. An array of UVC Germicidal Disinfection LED is used to eliminate pathogens such as bacteria, mold, mildew allergens, and deactivate viruses such as SARS CoV-2.
[0085] Fin clips support and rotates UVC arrays to proper angles.
[0086] Rotation of fins are designed specifically for maximum irradiance and exposure of photons received by surface area as UVC LEDs are illuminated.
[0087] Rotation of fins are designed specifically for protection of eye or skin of human. Protection control unit resets power to the UVC LED array.
[0088] Rotation of fins are designed specifically for protection of eye or skin of human. Protection control unit resets angle of illumination to 0°.
[0089] A UVC Germicidal embodiment is arrayed UVC in:
[0090] vertical and horizontal directions facing towards side-1 of primary filter (inward air flow) [#]
[0091] vertical and horizontal directions facing opposite of side-1 of primary filter (outward air flow) [#]
[0092] vertical and horizontal directions facing towards side-2 of primary filter (inward air flow) [#]
[0093] vertical and horizontal directions facing opposite of side-2 of primary filter (outward air flow)
[0094] The UVC Germicidal embodiment is arrayed UVC in:
[0095] vertical or horizontal directions facing towards side-1 of primary filter (inward air flow) [#]
[0096] vertical or horizontal directions facing opposite of side-1 of primary filter (outward air flow) [#]
[0097] vertical or horizontal directions facing towards side-2 of primary filter (inward air flow) [#]
[0098] vertical or horizontal directions facing opposite of side-2 of primary filter (outward air flow).
[0099] WiFi-enabled control allows users to control the system remotely:
[0100] Notifies users of any functionality issues associated with the unit.
[0101] Notifies users of outputs of:
[0102] Sensor that detect poor quality of air
[0103] Sensor that detects aged air filter
[0104] Sensor that detects humidity of air.
[0105] Sensor that detects temperature of air.
[0106] Sensor that detects smoke in the air.
[0107] Sensor that detects carbon monoxide in the air.
[0108] Sensor that detects rate of airflow/pressure.
[0109] Notifies users of any current and past activities
[0110] System notifies UVC system users running conditions. The system alerts the user of poor system performance, such as, detection of significant reduction in airflow and alarms a possible system maintenance or aged air filter.
[0111] Provides daily, monthly and yearly reports of:
[0112] Activity
[0113] LED usage and lifetime
[0114] Airflow/Pressure
[0115] Notifications of any smoke detected
[0116] Notification of any carbon monoxide.
Example 2
[0117] Alternative Design: Only have the Fins and array on one side of the filter
[0118] An alternative embodiments design comprised of arrays of UVC LEDs, rotating fins supporting each array in optimal orientation for maximum illumination and angles that encapsulates an air filter with the UVC LEDs only on the inward air flow side. This further comprises a power control module designed to regulate power to sensors and each LED element on each UVC array.
[0119] An alternative embodiments design comprised of arrays of UVC LEDs, rotating fins supporting each array in optimal orientation for maximum illumination and angles that encapsulates an air filter with the UVC LEDs only on the outward air flow side. This further comprises a power control module designed to regulate power to sensors and each LED element on each UVC array.
Example 3: Non-Rotating Fins
[0120] An alternative embodiments design comprised of arrays of UVC LEDs, stationary fins supporting each array in optimal orientation for maximum illumination and angles that encapsulates an air filter with the UVC LEDs on both sides of the filter, only on the inward air flow side, or only on the outward air flow side. This further comprises a power control module designed to regulate power to sensors and each LED element on each UVC array.
Example 4: Filter Integrated UVC LEDs
[0121] An alternative embodiments design comprised of arrays of UVC LEDs integrated with the filter with chip board, attached with adhesive, or another mechanism of directly connecting the UVC LEDs to the filter to create an integrate system. The UVC LEDs have an optimal orientation for maximum illumination and angles that encapsulates an air filter with the UVC LEDs on both sides of the filter, only on the inward air flow side, or only on the outward air flow side. This further comprises a power control module designed to regulate power to each LED element each UVC LED.
Example 5: UVC LEDs are not Connected to any Array and Optimally Distributed
[0122] An alternative embodiments design comprised of optimally placing UVC LEDs attached to rotating fins, stationary fins, or integrated with an air filter that are optimally placed to provide maximum illumination and angles that encapsulates an air filter with the UVC LEDs on both sides of the filter, only on the inward air flow side, or only on the outward air flow side. This further comprises a power control module designed to regulate power to each LED element each UVC LED.
Example 6: Power Module that has No Sensor
[0123] An alternative design of the power module only powers and regulates each LED element.
Example 7: An Alternative Design of the Power Module that Regulate Power to Each LED Element on Each UVC Array
[0124] While the invention has been described in connection with what is presently considered to be the most practical and preferred embodiment, it is to be understood that the invention is not to be limited to the disclosed embodiment, but on the contrary, is intended to cover various modifications and equivalent arrangements included within the spirit and scope of the appended claims.