FLUID PROCESSING
20220265890 · 2022-08-25
Inventors
Cpc classification
B64D2013/0651
PERFORMING OPERATIONS; TRANSPORTING
A61L2209/134
HUMAN NECESSITIES
International classification
Abstract
A method and apparatus are disclosed for at least partially purifying a fluid via a germicidal irradiation. In various aspects, the apparatus comprises at least one fluid-moving element, located in a housing, for moving a fluid through at least one fluid inlet in the housing towards at least one fluid outlet in the housing, wherein the housing comprises a dividing wall that includes at least one fluid-flow aperture in a fluid-flow pathway between the inlet and the outlet, at least one fluid-flow expansion region, and a plurality of chamber regions; at least one radiation source that provides ultraviolet radiation for irradiating the fluid in at least one of the chamber regions; and at least one full height fluid-flow blocking element, each located between two adjacent chamber regions, for at least partially blocking a fluid-flow of fluid flowing between the two adjacent chamber regions and producing a major region of turbulent fluid-flow in at least one of the two adjacent chamber regions.
Claims
1. Apparatus for at least partially purifying a fluid via germicidal irradiation of the fluid, comprising: at least one fluid-moving element, located in a housing, for moving a fluid through at least one fluid inlet in the housing towards at least one fluid outlet in the housing, wherein the housing comprises a dividing wall that includes at least one fluid-flow aperture in a fluid-flow pathway between the inlet and the outlet, at least one fluid-flow expansion region, and a plurality of chamber regions; at least one radiation source that provides ultraviolet radiation for irradiating the fluid in at least one of the chamber regions; and at least one full height fluid-flow blocking element, each located between two adjacent chamber regions, for at least partially blocking a fluid-flow of fluid flowing between the two adjacent chamber regions and producing a major region of turbulent fluid-flow in at least one of the two adjacent chamber regions.
2. The apparatus as claimed in claim 1, further comprising: at least one shallow fluid-flow blocking element, each located within a respective one of the chamber regions, for at least partially blocking a fluid-flow of fluid flowing within a respective chamber region and producing a minor region of turbulent fluid-flow within a respective chamber region.
3. The apparatus as claimed in any preceding claim, wherein: the first fluid-moving element is located proximate to the fluid inlet or the fluid outlet and a further fluid-moving element is located proximate to a remainder of the fluid inlet or the fluid outlet for moving the fluid through the fluid outlet.
4. The apparatus as claimed in any preceding claim, wherein at least one radiation source comprises at least one radiation emitting element that emits ultraviolet radiation.
5. The apparatus as claimed in claim 4, wherein a light guide is disposed proximate to at least one radiation emitting element for diffusing emitted ultraviolet radiation.
6. The apparatus as claimed in any preceding claim, wherein at least one radiation source comprises: a radiation filter that filters out and effectively removes ultraviolet radiation of a wavelength below 260 nanometres from the provided ultraviolet radiation.
7. The apparatus as claimed in any preceding claim, further comprising: a controller unit, comprising a controller interface, connected to the at least one fluid-moving element and the at least one radiation providing device, for providing respective control signals to each fluid-moving element and radiation providing device.
8. The apparatus as claimed in any preceding claim, further comprising: a power unit, comprising a power connection interface, connected to the at least one fluid-moving element and the at least one radiation providing device, for providing respective power signals to each fluid-moving element and radiation providing device.
9. The apparatus as claimed in claim 8, wherein: the controller unit comprises the power unit.
10. The apparatus as claimed in claim 8 or claim 9, wherein: the respective power signals comprise the respective control signals.
11. The apparatus as claimed in any one of claims 7 to 10, wherein: the controller unit can include a Controlled Area Network (CAN) bus unit.
12. The apparatus as claimed in any preceding claim, further comprising: the housing comprises a base member and an upstanding sidewall member extending around a perimeter of the base member, and a cover member that covers the housing.
13. The apparatus as claimed in claim 12 wherein each fluid inlet and each fluid outlet comprises a through hole in the cover member.
14. The apparatus as claimed in claim 13, further comprising: the fluid inlet and/or the fluid outlet comprises a slit or a row of discrete holes in the cover member and optionally the row of discrete holes or the slit is arcuate.
15. The apparatus as claimed in any one of claims 12 to 14, further comprising: each full height fluid-flow blocking element comprises a wall member upstanding from the base member or extending from the cover member and that extends between 75% and 100% of a depth of a space between an inner surface of the base member and an inner surface of the cover member.
16. The apparatus as claimed in claim 15, further comprising: each full height fluid-flow blocking element has a length that is between 90% and 50% of a width between the side wall on opposed sides of the housing.
17. The apparatus as claimed in claim 2, further comprising: each shallow fluid-flow blocking element comprises a bar member that extends across a whole or a portion of a width of the housing between a side wall on opposed sides of the housing and each bar member is proximate to a base member or to a cover member of the housing and has a depth between 2% and 30% of a depth of a space between an inner surface of a base member of the housing and an inner surface of a cover member of the housing.
18. The apparatus as claimed in claim 2, further comprising: each shallow fluid-flow blocking element comprises one of a plurality of projections that extend from an inner surface of a cover member of the housing and/or of a base member of the housing.
19. The apparatus as claimed in claim 18, further comprising: each projection is a boss-like or cone-like or pin-like or dome-like element.
20. The apparatus as claimed in any preceding claim wherein the apparatus includes at least one full height fluid-flow blocking element and/or at least one shallow fluid-flow blocking element and each blocking element comprises at least one vortex shedding site.
21. The apparatus as claimed in any preceding claim, further comprising: the housing comprises an antechamber between the fluid inlet and a first of the chamber regions and the housing includes mutually inclined walls that face an interior of the antechamber proximate to the fluid-flow aperture thereby providing a narrowing of the antechamber proximate to the fluid-flow aperture wherein the narrowing antechamber is narrower proximate to the fluid-flow aperture than distal to the fluid-flow aperture.
22. The apparatus as claimed in any preceding claim, further comprising: the housing comprises an exit chamber between a final chamber region of the chamber regions and the fluid outlet and the housing includes mutually inclined walls that face an interior of the exit chamber proximate to an exit aperture in a dividing wall between the final chamber region and the exit chamber thereby providing a broadening out of the exit chamber proximate to the exit aperture, the broadening out of the exit chamber being narrower proximate to the exit aperture and extending in a flared out arrangement towards a central region of the exit chamber.
23. A vehicle comprising the apparatus as claimed in any preceding claim.
24. A method for at least partially purifying a fluid via germicidal irradiation of the fluid, comprising: via at least one fluid-moving element, moving a fluid through an inlet of a housing; within the housing, slowing speed of a fluid flow of the fluid in at least one fluid flow expansion region; via at least one fluid-flow blocking element, located within at least one of a plurality of chamber regions within the housing, producing a major region of turbulent fluid-flow in at least one of the chamber regions; and via at least one radiation source that provides ultraviolet radiation, irradiating the fluid in at least one of the chamber regions thereby at least partially purifying the fluid.
25. The method as claimed in claim 24, further comprising: providing at least one minor region of turbulent fluid flow within a respective chamber region of the housing via at least one shallow fluid flow blocking element in said a respective chamber region.
26. The method as claimed in claim 24 or claim 25, further comprising: providing ultraviolet radiation via at least one ultraviolet light emitting diode (LED) in the housing or connected to the housing via a light guide.
27. The method as claimed in claim 26, further comprising: diffusing radiation emitted from the LED via a lens element proximate to an emittance surface of the LED thereby flooding at least a portion of at least one chamber with UV radiation.
28. The method as claimed in any one of claims 23 to 27, further comprising: via a filter element filtering out UV radiation of a wavelength below 260 nm thereby only providing UV radiation in the housing with a wavelength of 260 nm or greater.
29. The method as claims in any one of claims 24 to 28 wherein the fluid comprises air or oxygen.
30. The method as claimed in any one of claims 24 to 29, further comprising: moving the fluid through the housing via at least one fan or blower or pump.
31. The method as claimed in any one of claims 24 to 30, further comprising: narrowing a cross section of a fluid flow path through the housing in an anti-chamber of the housing prior to fluid flow from the anti-chamber to a first of the chamber regions and/or broadening a cross section of the flow path in an exit chamber of the housing subsequent to fluid flow from a final one of the chamber regions to the exit chamber.
32. The method as claimed in any one of claims 24 to 31, further comprising continually recirculating fluid through the inlet and out of the outlet via the chamber regions thereby constantly purifying fluid in a vehicle that includes the housing.
Description
[0065] In the drawings like reference numerals refer to like parts.
[0066]
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[0074] In the drawings like reference numerals refer to like parts.
[0075]
[0076] It will be understood that certain embodiments of the present invention may be utilised in alternative environments. For example, the aeroplane 100 may instead be an alternative aircraft, such as a helicopter; a motor vehicle, such as a car/automobile or coach; a watercraft, such as a yacht or cruise ship; a train carriage; a hotel room; an office space; or a hospital ward. Similarly, the section of seating may instead be a bed, cabin, or suite within the aeroplane 100 or any of the aforementioned alternatives. The passenger 140 may alternatively be considered a user.
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[0080] Within the first chamber region 455, there is a fluid-flow expansion region 470 as well as further inclined walls 415 that taper from the side wall 240. The fluid-flow expansion region 470 is an example region wherein the fluid flow of the air may undergo a reverse Venturi effect. A baffle provides a full height fluid-flow blocking element 450 that separates the first chamber region 455 from a final chamber region 465 and at least partially blocks a fluid-flow between any two adjacent chamber regions, producing a major region of turbulent air in at least one of the two adjacent chamber region. The full height fluid-flow blocking element extends between 75% and 100% of a depth of a space between the base 250 and the cover 200 and has a length that is between 50% and 95% of a width between the side wall 240 on opposite sides of the housing 200. A bar provides a shallow fluid-flow blocking element 445 that is located within the first chamber region 455. A shallow fluid-flow blocking element 445 is also located within the final chamber region 465. The shallow fluid-flow blocking element 445 at least partially blocks the fluid-flow within the respective chamber regions and produces a minor region of turbulent fluid-flow within the respective chamber regions. The shallow fluid-flow blocking element 445 has a depth between 2% and 30% of a depth between the base 250 of the housing 200 and the cover 200. The shallow fluid-flow blocking element 445 may comprise a plurality of projections, such as boss-like, cone-like, pin-like, or dome-like protrusion. Within the final chamber region 465, there are inclined walls 425 that taper from the side wall 240.
[0081] The dividing wall portions 430 effectively provide a dividing wall proximate to the final chamber region 465 separate the final chamber region 465 from an exit chamber 406. These dividing walls 430 also provide a fluid flow exit aperture 436. Proximate to the exit chamber 406, the inclined walls 420 taper from the side wall 240. Within the fluid flow aperture 436, there is a fan 441 for moving air in the housing 200 out of the housing via fluid outlet 220.
[0082] The reverse Venturi effect and minor and major turbulent flow regions increase the amount of time taken for air to travel from the fluid-flow inlet 210 to the fluid-flow outlet 220 through the housing 200. Thus, a greater portion of the air flowing through the housing will be exposed to a sufficient dose of ultraviolent radiation to kill microorganisms suspended in the air flowing through the housing.
[0083] Two LEDs or two arrays of LEDs 460 are shown in the housing. These are each in a respective chamber region. They are provided by power and control signals via a remote or local controller.
[0084]
[0085]
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[0088] UV-C LEDs
[0089] ‘Doped’ lens for filtering unwanted high frequency UV radiation.
[0090] This is what inactivates the pathogens, The UV-C LED is factory tuned to the required wavelength by the LED manufacturer, The UV-C LED allows for an efficient chamber design that then makes it possible to install within the designed environments. There may be one or more UV-C LEDs depending on the chamber dimensions which is a function of the volume of air that has to be cleansed through the chamber. UV-C LEDs are used to allow accurate intensity control.
[0091] The choice of LED is based on the LENS having a wide radiance angle so that the UV light is diffused over the full area of the chamber.
[0092] Venturi Chamber
[0093] The Venturi chamber slows a volume of air of at least 133 cm{circumflex over ( )}3/second, such that when exposed to the UV-C LEDS, provide 8000μW.Math.s/cm2 of UV exposure.
[0094] Piping
[0095] Piping in locations will provide air inlet/air outlet extension.
[0096] Baffles
[0097] Baffles within the Venturi chamber aid the exposure of air to the required 8000 μW.Math.s/cm2 by causing Turbulence within the chamber and recirculating the air over the UV-C LEDs.
[0098] Pump(s)
[0099] The FAN(s) pump a controlled measurable consistent volume of air from the air inlet, through the Venturi chamber that incorporates the baffles out to the air inlet. Size of fan and numbers of fans depend on the chamber size, which is dependent on the final installed location.
[0100] Internal Hardware/Microelectronics, CANbus Interface, and Other Circuitry
[0101] A control bus such as CANbus or other bus interface provides remote control of the UV-C air purification system.
[0102] Control circuitry controls intensity of the UV-C LED vs airflow (FAN control) in the chamber, with airflow measurement being the control factor for setting the UV-C intensity and airflow volume.
[0103] The controller is located within the product housing, with the only external interfaces being power and control input, Control would be by a BUS system and provides control of FAN speed, which controls the volume of air being moved through the chamber. The Intensity of the UV-C Led source is controlled by the volume of air being sensed in the chamber. See the control diagram show in
[0104] Certain embodiments of the present invention thus provide a compact UV air purification unit which utilises an internal luminated UV-C chamber that slows air entering the chamber to be less than 8 litres per minute (approximately the breathing rate of humans). This allows time for the UV-C at a required intensity to actively remove airborne pathogens and microorganisms thereafter returning clean air into a localised environment such as an aircraft cabin. UV-C can be utilised as an antimicrobial treatment and helps kill viruses, yeasts and moulds in the air. Aptly, short wavelengths of about 254 nm can be utilised. Aptly, short wavelengths of about 254 nm and upwards can be utilised. Aptly, short wavelengths of about 254 nm and greater can be utilised. At this wavelength ultraviolet light may be considered as germicidal and works by penetrating thin-wall germs like viruses and bacteria and fatally altering there genetic structure. A backlight can be included in a single colour or RGBWW and this can optionally be controlled via a CANbus or other controller interface if desired.
[0105] Throughout the description and claims of this specification, the words “comprise” and “contain” and variations of them mean “including but not limited to” and they are not intended to (and do not) exclude other moieties, additives, components, integers or steps. Throughout the description and claims of this specification, the singular encompasses the plural unless the context otherwise requires. In particular, where the indefinite article is used, the specification is to be understood as contemplating plurality as well as singularity, unless the context requires otherwise.
[0106] Features, integers, characteristics or groups described in conjunction with a particular aspect, embodiment or example of the invention are to be understood to be applicable to any other aspect, embodiment or example described herein unless incompatible therewith. All of the features disclosed in this specification (including any accompanying claims, abstract and drawings), and/or all of the steps of any method or process so disclosed, may be combined in any combination, except combinations where at least some of the features and/or steps are mutually exclusive. The invention is not restricted to any details of any foregoing embodiments. The invention extends to any novel one, or novel combination, of the features disclosed in this specification (including any accompanying claims, abstract and drawings), or to any novel one, or any novel combination, of the steps of any method or process so disclosed.
[0107] The reader's attention is directed to all papers and documents which are filed concurrently with or previous to this specification in connection with this application and which are open to public inspection with this specification, and the contents of all such papers and documents are incorporated herein by reference.