Spray nozzle using advanced oxidation
10610902 ยท 2020-04-07
Inventors
Cpc classification
B05B7/025
PERFORMING OPERATIONS; TRANSPORTING
B01F23/23
PERFORMING OPERATIONS; TRANSPORTING
B05B7/0483
PERFORMING OPERATIONS; TRANSPORTING
B05B7/0425
PERFORMING OPERATIONS; TRANSPORTING
B05B7/0012
PERFORMING OPERATIONS; TRANSPORTING
B05B1/04
PERFORMING OPERATIONS; TRANSPORTING
B05B1/28
PERFORMING OPERATIONS; TRANSPORTING
B05B5/1608
PERFORMING OPERATIONS; TRANSPORTING
B05B7/2402
PERFORMING OPERATIONS; TRANSPORTING
B08B3/026
PERFORMING OPERATIONS; TRANSPORTING
B01F25/312
PERFORMING OPERATIONS; TRANSPORTING
B05B7/2464
PERFORMING OPERATIONS; TRANSPORTING
B05B5/03
PERFORMING OPERATIONS; TRANSPORTING
International classification
B08B3/02
PERFORMING OPERATIONS; TRANSPORTING
B05B5/16
PERFORMING OPERATIONS; TRANSPORTING
B05B5/03
PERFORMING OPERATIONS; TRANSPORTING
B05B7/24
PERFORMING OPERATIONS; TRANSPORTING
D06F35/00
TEXTILES; PAPER
Abstract
A method for dispensing a sanitizing composition comprising a carrier fluid involves passing a carrier fluid under pressure through a nozzle and a chamber mounted to the nozzle. The chamber receives the carrier fluid from the nozzle and has an opening on an opposite side from the nozzle through which the carrier fluid exits the chamber. Ozone is provided to an interior of the chamber in the presence of the carrier fluid, and is irradiated with ultraviolet radiation as the carrier fluid and the ozone pass through an interior of the chamber.
Claims
1. A method for dispensing a sanitizing composition comprising a carrier fluid, said method comprising: passing the carrier fluid, under pressure, through a spray nozzle and into a chamber mounted to the nozzle, wherein said chamber is positioned to receive the carrier fluid through a first opening of the chamber from an outlet of the nozzle into an interior of the chamber and wherein the chamber comprises a second opening on an opposite side from the first opening; providing ozone to the interior of the chamber so as to cause mixing of the ozone and the carrier fluid in the chamber; and irradiating the carrier fluid and the ozone with ultraviolet radiation as the carrier fluid and the ozone pass through the interior of the chamber to form ozone reaction products before exiting through the second opening.
2. The method of claim 1, wherein the chamber comprises an inner wall and an outer wall and a source of the ultraviolet radiation is located between the outer wall of the chamber and the inner wall of the chamber.
3. A method for dispensing a sanitizing composition comprising a carrier fluid, said method comprising: passing the carrier fluid, under pressure, through a spray nozzle and into a chamber mounted to the nozzle, wherein said chamber is positioned to receive the carrier fluid through a first opening of the chamber from an outlet of the nozzle into an interior of the chamber and wherein the chamber comprises a second opening on an opposite side from the first opening; providing ozone to the interior of the chamber so as to cause mixing of the ozone and the carrier fluid in the chamber; and irradiating the carrier fluid and the ozone with ultraviolet radiation as the carrier fluid and the ozone pass through the interior of the chamber to form ozone reaction products before exiting through the second opening; wherein the chamber comprises an inner wall and an outer wall and a source of the ultraviolet radiation is located between the exterior wall of the chamber and the inner wall of the chamber; and wherein the inner wall of the chamber is configured to direct the ultraviolet radiation into the interior of the chamber.
4. The method of claim 3, wherein a portion of the inner wall of the chamber is selectively transparent to a wavelength of ultraviolet light that decomposes the ozone into ozone reaction products within the chamber.
5. The method of claim 3, wherein said providing ozone to an interior of the chamber comprises creating the ozone between the inner wall of the chamber and an outer wall of the chamber using an ultraviolet light emitter located between the inner wall of the chamber and the outer wall of the chamber.
6. The method of claim 5, and further comprising providing the ozone created between the inner wall of the chamber and the outer wall of the chamber to the nozzle, the nozzle providing the ozone to the chamber.
7. The method of claim 5, and further comprising providing the ozone created between the interior wall of the chamber and the outer wall of the chamber to the interior of the chamber.
8. The method of claim 1, wherein said carrier fluid comprises water.
9. The method of claim 8, wherein said carrier fluid further comprises a substance in the water that reacts with the ozone to form sterilizing compounds.
10. The method of claim 9, wherein the-substance is selected from the group consisting of hydrogen peroxide, hydrogen, oxygen, hydrogen ions, sodium chloride, sodium hydroxide, and any combination of these.
11. A method for dispensing a sanitizing composition comprising a carrier fluid, said method comprising: passing the carrier fluid, under pressure, through a spray nozzle and into a chamber mounted to the nozzle, wherein said chamber is positioned to receive the carrier fluid through a first opening of the chamber from an outlet of the nozzle into an interior of the chamber and wherein the chamber comprises a second opening on an opposite side from the first opening; providing ozone to the interior of the chamber so as to cause mixing of the ozone and the carrier fluid in the chamber; and irradiating the carrier fluid and the ozone with ultraviolet radiation as the carrier fluid and the ozone pass through the interior of the chamber to form ozone reaction products before exiting through the second opening; wherein the chamber comprises an inner wall and an outer wall and a source of the ultraviolet radiation is located between the exterior wall of the chamber and the inner wall of the chamber; and wherein said providing ozone to an interior of the chamber comprises providing the ozone via a passage communicating between the chamber and a space between the outer wall of the chamber and the inner wall of the chamber.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE DRAWINGS
(8) A cleaning system including at least ozone and a cleaning solution or solvent is disclosed. A spray head is provided that can be configured or fabricated to fit many cleaning implements, such as pressure washers, hand held, manually operated pumps, or spray heads can be built into cleaning machines such as dishwashers. In some embodiments, the ozone generator that creates ozone for the spray head may be used in conjunction with a halogen salt generator that also mixes a halogen, such as chlorine, bromine or even iodine, to the solution from the spray head. In other embodiments, reaction products from the chlorine generation process, such as NaOH, hydroxyl radicals, peroxides, a halogen salt, oxygen, and others, may also be mixed into the cleaning solution by the spray head, or mixed into the cleaning solution prior to being sprayed by the spray head. In yet other embodiments, ozone, chlorine and reaction products may be combined with a conventional cleaning soap or other cleaning compounds. In some embodiments, a spray nozzle may be configured to dispense steam, as from a steam cleaner, with any or all of ozone, a halogen such as chlorine and reaction products from generating chlorine from a chlorine generator inserted into the steam from the spray nozzle.
(9) Referring to
(10) Ozone generator 28 may be an ultraviolet ozone producing lamp, a corona discharge device or any other ozone-producing device. For example, one ozone generator might be an ozone generator as described in Applicant's PCT application no. PCT/US2013/043485, filed 30 May 2013, which is incorporated in its entirety herein by reference, and which may also be configured to provide a flow of irradiated and sterilized water as water supply 12. In any case, ozone generator 28 provides ozone via tube 26 to a point within plenum 20 immediately adjacent stream 18 where Venturi suction is strongest. Typically, anti-backflow valves (not shown) are provided in tube 26 so that water cannot flow back into the ozone generator. As noted, in some embodiments, an air compressor 30 may be provided to actively pump oxygen or air through ozone generator 28, while in other embodiments oxygen or air may be drawn through ozone generator 28 by Venturi action developed by the end of tube 26 being in or closely proximate to stream 18. In yet other embodiments, air or oxygen may be provided to the ozone generator and subsequently to tube 26 from a pressurized container, a pressure swing oxygen concentrator or other similar device. As noted, spray head 20 may be any spray head, such as a pressure washer, spray heads in dishwashers, a manually operated spray bottle, or any other application where ozone is needed in a stream or spray of water 18. As such, a stream of water containing ozone may be used as an effective rinsing and sanitizing solution, such as on a cruse ship or in a rinse procedure during cleaning of a butcher shop or the like.
(11) In other embodiments, and referring to
(12) As shown in
(13) In another embodiment the water is heated to provide hot water, steam or hot vapor. An acid and redox controller can be added for electrolysis chamber 34 (
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(15) Referring to
(16) An exterior 68 of hood 62 is typically a material that blocks at least ultraviolet light from being transmitted for safety reasons, but may contain fluorescent compounds that glow in the presence of ultraviolet light. For aesthetic, artistic or other reasons, the solution sprayed or misted may be a phosphorescent material that glows for a period of time when excited by ultraviolet light, which would create a spray or mist of glowing droplets. For the same reasons, the solution may be a material that hardens by ultraviolet exposure during spraying or misting in order to create a solid or semi-solid mist or spray.
(17) An interior 70 of hood 62 may be generally hollow, and sealed at least along its interior from the spray or mist emitted by nozzle 60. Within interior 70 are ultraviolet emitter/emitters 72 that emit at least the aforementioned 254 nm band of ultraviolet light. Such emitters may be at least one mercury plasma lamp, such as a spiral mercury plasma lamp that spirals longitudinally around interior 70 of hood 62, or one or more mercury plasma lamps that are mounted lengthwise in interior 70. Such mercury plasma lamps emit ultraviolet radiation at both the 185 nm band and 254 nm band Other ultraviolet emitters may be ultraviolet LEDs, which may be configured to emit ultraviolet radiation only at the 255 wavelength, such as are available from ROITHNER LASER TECHNEK in Vienna, Austria, which commercially produces LEDs in the deep ultraviolet range down to 235 nm. Such LEDs would destroy ozone. Advances in LED technology should also see reasonably priced LEDs with wavelengths down to a 185 nm wavelength that produces ozone. Other techniques, such as frequency doubling or other optical techniques may be used to create wavelengths that create and destroy ozone. Fiber optic waveguides may be used where ultraviolet light is generated remotely from nozzle 60, the waveguides connected to transmit light into enclosure 62. In these instances, the LEDs or waveguides may be potted into or otherwise constructed integrally with hood 62 so that hood 62 is solid without being hollow, with interior wall 66, or one or more windows therein, passing the ultraviolet light. Where a mercury lamp is used, ultraviolet transparent inner surface 66 may be configured with a filter to filter out the 185 nm wavelength band and pass the 254 nm wavelength band in order to pass ultraviolet light that destroys ozone. In some embodiments, and as noted, both wavelengths may be passed by interior surface 66 in order to both create ozone and destroy the created ozone simultaneously in the spray or mist from nozzle 60. Such a spray or mist should be particularly effective for sanitization using ozone reaction products where outgassing or damage to a surface by ozone is not an issue. In other embodiments, ultraviolet transparent light guides that may have transparent optically modifying surfaces thereon may extend from the inner surface 66 or directly from ultraviolet emitters into or near mist or spray 64 in order to convey ultraviolet radiation into the spray or mist or closer to the spray or mist than inner surface 66.
(18) Ozone to be put in water or a solution to be sprayed or misted by nozzle 60 may be created by a remote ozone generator, as shown in
(19) It is noted that while the shape of hood 62 is shown to be a truncated cone, such a shape is by way of example only. Hood 62 may be cylindrical, rounded with a slit exit for the spray or mist as shown in
(20) It should be apparent that the components of my invention may be combined or assembled in any useful way, and that any of the mentioned compounds may be used separately or together, in any combination deemed to be useful for cleaning and sterilizing purposes.