USRE49474E1 - Free radical sterilization system and method - Google Patents

Free radical sterilization system and method Download PDF

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Publication number
USRE49474E1
USRE49474E1 US16/542,205 US201916542205A USRE49474E US RE49474 E1 USRE49474 E1 US RE49474E1 US 201916542205 A US201916542205 A US 201916542205A US RE49474 E USRE49474 E US RE49474E
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output
chamber
blower
effluent
free radical
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US16/542,205
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Czeslaw Golkowski
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Sterifre Medical Inc
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Sterifre Medical Inc
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Priority claimed from US12/510,341 external-priority patent/US8221679B2/en
Priority claimed from US13/524,380 external-priority patent/US8758681B2/en
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Priority to US16/542,205 priority Critical patent/USRE49474E1/en
Assigned to STERIFRE MEDICAL, INC. reassignment STERIFRE MEDICAL, INC. ASSIGNMENT OF ASSIGNORS INTEREST (SEE DOCUMENT FOR DETAILS). Assignors: GOLKOWSKI, CZESLAW
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    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F22STEAM GENERATION
    • F22DPREHEATING, OR ACCUMULATING PREHEATED, FEED-WATER FOR STEAM GENERATION; FEED-WATER SUPPLY FOR STEAM GENERATION; CONTROLLING WATER LEVEL FOR STEAM GENERATION; AUXILIARY DEVICES FOR PROMOTING WATER CIRCULATION WITHIN STEAM BOILERS
    • F22D7/00Auxiliary devices for promoting water circulation
    • AHUMAN NECESSITIES
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    • A01NPRESERVATION OF BODIES OF HUMANS OR ANIMALS OR PLANTS OR PARTS THEREOF; BIOCIDES, e.g. AS DISINFECTANTS, AS PESTICIDES OR AS HERBICIDES; PEST REPELLANTS OR ATTRACTANTS; PLANT GROWTH REGULATORS
    • A01N25/00Biocides, pest repellants or attractants, or plant growth regulators, characterised by their forms, or by their non-active ingredients or by their methods of application, e.g. seed treatment or sequential application; Substances for reducing the noxious effect of the active ingredients to organisms other than pests
    • A01N25/34Shaped forms, e.g. sheets, not provided for in any other sub-group of this main group
    • AHUMAN NECESSITIES
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    • A01N59/00Biocides, pest repellants or attractants, or plant growth regulators containing elements or inorganic compounds
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    • A61L2/00Methods or apparatus for disinfecting or sterilising materials or objects other than foodstuffs or contact lenses; Accessories therefor
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    • A61L2/00Methods or apparatus for disinfecting or sterilising materials or objects other than foodstuffs or contact lenses; Accessories therefor
    • A61L2/02Methods or apparatus for disinfecting or sterilising materials or objects other than foodstuffs or contact lenses; Accessories therefor using physical phenomena
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    • A61M1/90Negative pressure wound therapy devices, i.e. devices for applying suction to a wound to promote healing, e.g. including a vacuum dressing
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    • A61M1/915Constructional details of the pressure distribution manifold
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    • A61M1/94Negative pressure wound therapy devices, i.e. devices for applying suction to a wound to promote healing, e.g. including a vacuum dressing with gas supply means
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    • A61N1/44Applying ionised fluids
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F26DRYING
    • F26BDRYING SOLID MATERIALS OR OBJECTS BY REMOVING LIQUID THEREFROM
    • F26B11/00Machines or apparatus for drying solid materials or objects with movement which is non-progressive
    • F26B11/02Machines or apparatus for drying solid materials or objects with movement which is non-progressive in moving drums or other mainly-closed receptacles
    • F26B11/04Machines or apparatus for drying solid materials or objects with movement which is non-progressive in moving drums or other mainly-closed receptacles rotating about a horizontal or slightly-inclined axis
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F26DRYING
    • F26BDRYING SOLID MATERIALS OR OBJECTS BY REMOVING LIQUID THEREFROM
    • F26B21/00Arrangements or duct systems, e.g. in combination with pallet boxes, for supplying and controlling air or gases for drying solid materials or objects
    • F26B21/003Supply-air or gas filters
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F26DRYING
    • F26BDRYING SOLID MATERIALS OR OBJECTS BY REMOVING LIQUID THEREFROM
    • F26B21/00Arrangements or duct systems, e.g. in combination with pallet boxes, for supplying and controlling air or gases for drying solid materials or objects
    • F26B21/06Controlling, e.g. regulating, parameters of gas supply
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F26DRYING
    • F26BDRYING SOLID MATERIALS OR OBJECTS BY REMOVING LIQUID THEREFROM
    • F26B25/00Details of general application not covered by group F26B21/00 or F26B23/00
    • F26B25/005Treatment of dryer exhaust gases
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F26DRYING
    • F26BDRYING SOLID MATERIALS OR OBJECTS BY REMOVING LIQUID THEREFROM
    • F26B3/00Drying solid materials or objects by processes involving the application of heat
    • F26B3/02Drying solid materials or objects by processes involving the application of heat by convection, i.e. heat being conveyed from a heat source to the materials or objects to be dried by a gas or vapour, e.g. air
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F26DRYING
    • F26BDRYING SOLID MATERIALS OR OBJECTS BY REMOVING LIQUID THEREFROM
    • F26B3/00Drying solid materials or objects by processes involving the application of heat
    • F26B3/02Drying solid materials or objects by processes involving the application of heat by convection, i.e. heat being conveyed from a heat source to the materials or objects to be dried by a gas or vapour, e.g. air
    • F26B3/04Drying solid materials or objects by processes involving the application of heat by convection, i.e. heat being conveyed from a heat source to the materials or objects to be dried by a gas or vapour, e.g. air the gas or vapour circulating over or surrounding the materials or objects to be dried
    • AHUMAN NECESSITIES
    • A01AGRICULTURE; FORESTRY; ANIMAL HUSBANDRY; HUNTING; TRAPPING; FISHING
    • A01NPRESERVATION OF BODIES OF HUMANS OR ANIMALS OR PLANTS OR PARTS THEREOF; BIOCIDES, e.g. AS DISINFECTANTS, AS PESTICIDES OR AS HERBICIDES; PEST REPELLANTS OR ATTRACTANTS; PLANT GROWTH REGULATORS
    • A01N1/00Preservation of bodies of humans or animals, or parts thereof
    • A01N1/02Preservation of living parts
    • A01N1/0278Physical preservation processes
    • A01N1/0294Electromagnetic, i.e. using electromagnetic radiation or electromagnetic fields
    • AHUMAN NECESSITIES
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    • A61L2/00Methods or apparatus for disinfecting or sterilising materials or objects other than foodstuffs or contact lenses; Accessories therefor
    • A61L2/16Methods or apparatus for disinfecting or sterilising materials or objects other than foodstuffs or contact lenses; Accessories therefor using chemical substances
    • A61L2/20Gaseous substances, e.g. vapours
    • A61L2/202Ozone
    • AHUMAN NECESSITIES
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Definitions

  • the present invention relates generally to the art of sterilization and decontamination, and more particularly to a system for sterilization of heat sensitive devices.
  • the present invention also relates to a gaseous sterilization process carried out at atmospheric pressure.
  • Sterilization methods are used in a broad range of applications, and have used an equally broad range of sterilization agents.
  • sterilization refers to the inactivation of bio-contamination, especially on inanimate objects.
  • disinfection refers to the inactivation of organisms considered pathogenic.
  • Non-thermal plasma processing involves producing plasma in which the majority of the electrical energy goes into the excitation of electrons. These plasmas are characterized by electrons with kinetic energies much higher than those of the ions or molecules. The electrons in these plasmas are short-lived under atmospheric pressure; instead they undergo collisions with the preponderant gas molecules. The electron impact on gas molecules causes dissociation and ionization of these molecules, which creates a mix of reactive species, in the form of free radicals, ions and secondary electrons. These reactive species cause unique and diverse chemical reactions to occur, even at relatively low temperatures. These chemical reactions are utilized in low temperature decontamination and sterilization technologies.
  • VHP vaporized hydrogen peroxide
  • a carrier gas such as air
  • a hydrogen peroxide aqueous solution is introduced into the vaporizer and vaporized.
  • the resulting vapor is then combined with the carrier gas and introduced into a sterilization chamber.
  • a blower exhausts the carrier gas from the sterilization chamber and recirculates the carrier gas to the vaporizer where additional VHP is added.
  • the recirculating carrier gas passes through a catalytic destroyer (where any remaining VHP is eliminated from the carrier gas), a drier, a filter and a heater.
  • Centanni discloses a closed loop sterilization system.
  • the purpose of using the closed loop is the increase of the free radical concentration in the circulating effluent.
  • Centanni teaches that there should be a VHP (vapor hydrogen peroxide) destroyer employed in the loop.
  • VHP vapor hydrogen peroxide
  • Cetanni teaches that the ozone is mixed with the hydrogen peroxide vapor and the vapor is produced by injecting hydrogen peroxide water solution on a hot plate and thus evaporating it.
  • the present invention provides a method and system for sterilization. Free radicals are generated using a plasma electric discharge generator and/or a hydrogen peroxide vaporizer to produce highly bactericidal gaseous effluent.
  • the effluent passes through a chamber, and then is recirculated in a closed loop system.
  • the chamber can be in the form of a tumbler to sterilize items like surgical masks or fabrics or medical waste, or in the form of a stationary chamber for more solid items.
  • a blower may be provided inside the chamber to create turbulence.
  • an input conduit equipped with a valve, heater and filter can supply fresh air to the system and an exhaust blower with an upstream filter and a free radical neutralizer can be used to remove moisture and active radicals from the system.
  • the exhaust blower may be operated at a low speed mode during sterilization to create a negative-pressure condition in the chamber.
  • a novel multi-output blower can be used to apportion flow in the closed loop, and also to provide multiple outlets to sterilize multiple items or to feed multiple chambers.
  • the invention can also be used with a wound chamber to aid healing by providing effluent to a wound.
  • the invention also presents a method of sterilizing items using the above-described apparatus.
  • the method includes placing the items in the chamber, pre-heating and drying them in an open-loop, disinfecting using a closed loop circulating system to supply bactericidal free radicals generated by an electric discharge with free radicals in antimicrobial liquid to the chamber, then flushing and drying the system in an open-loop.
  • FIG. 1 shows a block diagram of a first embodiment of the invention with a tumbler-type chamber.
  • FIG. 2 shows a block diagram of a second embodiment of the invention with a stationary chamber with heating.
  • FIG. 3 shows a flowchart of the method of the invention
  • FIG. 4 shows a block diagram of a variation on the embodiment of FIG. 1 , omitting the preheater, distributor and vaporizer.
  • FIG. 5 shows a block diagram of a variation on the embodiment of FIG. 1 , omitting the distributor and plasma generator.
  • FIG. 6 shows a block diagram of a third embodiment of the invention, using a centrifugal multiple-outlet blower in place of the blower-distributor and adding a bypass heater.
  • FIG. 7 shows a variation on the embodiment of FIG. 6 , using two centrifugal multiple-outlet blowers to provide multiple outlets for recirculation.
  • FIG. 8 shows a centrifugal multiple outlet blower as used in the embodiment of FIGS. 6 and 7 .
  • FIG. 9 shows a cut-away diagram of the blower of FIG. 8 .
  • FIG. 10 shows a fourth embodiment of the invention, showing use of the invention with a wound chamber.
  • FIG. 11 shows a picture of a wound chamber in use.
  • FIG. 12 shows a cut-through side view of a wound chamber.
  • FIG. 13 shows a bar graph of results from a method of wound treatment using the fourth embodiment of the invention.
  • FIGS. 1 and 2 and 4 through 7 show block diagrams of a sterilization system, illustrating five embodiments of the present invention which use a sterilization chamber.
  • FIGS. 10 to 12 show an additional embodiment using a wound chamber.
  • system utilizes a combination of broad mixture of free radicals used in sterilizing and decontamination devices to sterilize items placed in the sterilization chamber, or over which the wound chamber is placed.
  • the chamber 10 is shown as a tumbler-type chamber, which is rotated around a longitudinal axis 54 , for example by motor 51 , in the manner of a conventional home clothes dryer. Items to be sterilized are placed in a chamber 10 .
  • a tumbler-type chamber 10 would be appropriate for fabric items 56 such as towels and cloths, surgical masks and gowns, gloves, etc.
  • the tumbler design could also be used to sterilize shredded medical waste within the teachings of the invention.
  • An effluent generator 46 is used for production of effluent for sterilization or decontamination of the chamber and its contents and for powering the circulation of effluent in the closed loop, to be described later.
  • the effluent generator 46 includes a blower with flow distributor 14 , a plasma electric free radical generator 30 and a vaporizer 32 .
  • the plasma free radical generator 30 can be any kind of dielectric barrier discharge device.
  • a device which can be used within the teachings of the invention is an ozone generator such as, for example, ozone generator cell SY-G20 manufactured by Longma Industrial Zone, Bao'an District, Shenzhen, 518108, P.R.C.
  • the vaporizer 32 contains liquid sterilizing agent such as hydrogen peroxide solution.
  • the vaporizer 32 can be in the form of a “bubbler”, in which the gas passes through a container of liquid, or the vaporizer could use plates or wicks over which the gas passes, as is known in prior-art devices.
  • the vaporizer 32 uses a measured amount of sterilizing agent, preferably in a pre-measured cartridge which can be inserted into the vaporizer, such that the agent is substantially or completely consumed in the course of a sterilizing run.
  • the vaporizer can thus supply a specific small amount of hydrogen peroxide to the evaporator from a cartridge which is empted and dried during the sterilization process. The drying of the cartridge is accomplished by heating it using a small heater and a limited filtered air flow through the cartridge into the system. This way there is no danger that hydrogen peroxide liquid is present in the cartridge at the end of the cycle when a person/operator will insert a new cartridge for next cycle.
  • the blower with the flow distributor 14 takes recirculated effluent from the chamber 10 via conduit 36 , and distributes it proportionally through conduit 40 , which is coupled, optionally through a filter 50 , into the plasma generator 30 , and through conduit 38 , again through optional filter 50 , into vaporizer 32 .
  • the recirculated effluent is preferably distributed in proportions of approximately 30% to conduit 40 , and approximate 70% to conduit 38 , although other proportions could be used within the teaching of the invention.
  • the effluent produced in the effluent generator 46 is then introduced into the chamber 10 , completing the closed loop of the system.
  • an open loop system is also provided for the purpose of pre-heating and drying the chamber 10 before and after the circulation of bactericidal effluent through the closed loop system.
  • the open loop system uses a blower 16 , exhausting to atmosphere 56 , to draw air from an air input 58 through input valve 18 and heater 26 into chamber 10 .
  • the input air may be filtered by filter 20 , which is preferably of the high efficiency particulate air (HEPA) variety.
  • HEPA high efficiency particulate air
  • the heated, preferably filtered, air is introduced into the chamber 10 through conduit 42 .
  • the output of the chamber 10 is drawn out by blower 16 and passes through conduit 44 and a Free Radical Destroyer (FRD) 24 , which destroys any free radicals which might remain before the air is exhausted 56 .
  • a second filter 22 again preferably of the HEPA type, can be provided in conduit 44 to filter out any particles which would otherwise enter the FRD or be exhausted to the atmosphere. The presence of HEPA filters 20 and 22 at the input and exhaust ensures that there is no microorganism transfer between the ambient air and the sterilization system and vice versa.
  • the simplest FRD is an activated carbon filter, for example, the Vent Pure “D” from General Carbon Corp. of Paterson, N.J.
  • valve 18 By opening valve 18 and turning on heater 26 and blower 16 , the chamber 10 , and items 56 within the chamber, can be dried and pre-heated before the closed loop operation is begun. Once the pre-heating and drying step is completed, valve 18 is closed and heater 26 is turned off
  • blower 16 is of a controllable-speed type, so that it may be operated at a reduced speed during closed-loop operation. This will induce a slight negative pressure in the chamber 10 , preventing leakage of effluent from the chamber.
  • the blower could be a single-speed blower, in which case it would be turned off after the pre-heating step.
  • the system After pre-heating, the system is operated in closed-loop mode by starting blower/distributor 14 and plasma generator 30 .
  • the effluent mixture circulates continuously through the loop, from generator 46 through conduit 34 , through chamber 10 and conduit 36 , back to the generator 46 .
  • valve 18 is opened, and blower 16 is turned on full speed in order to remove the active free radicals from the effluent using FRD 24 , and to dry the chamber 10 and the sterilized equipment 56 or 62 .
  • the closed loop blower/distributor 14 may remain on, if desired, so as to circulate air through the closed loop to dry the free radical source 46 and vaporizer 32 .
  • Heater 26 may optionally be turned on at this stage, as well, so that heated air is circulated through the vaporizer in order to evaporate residual remains of liquid solution of hydrogen peroxide.
  • blower/distributor 14 may be turned off if it is not desired to circulate air through the closed loop portion of the system during this drying step.
  • a controller 12 is provided in order to control the operation of the various parts of the system.
  • the effluent generator 46 could be made with only one of the sources—either a plasma generator 30 ( FIG. 4 ) or a vaporizer ( FIG. 5 ).
  • the blower/distributor 14 from FIG. 1 is replaced by a blower 4 , since with only one source there is no need for distribution.
  • FIG. 4 the open loop pre-heater system with its heater 26 , filter 20 and valve 18 is omitted as well, to illustrate a variation where there is no pre-heat capability.
  • the sterilizer of the invention operates in the closed-loop mode by recirculating the effluent through the chamber and the effluent generator without passing the effluent through a free-radical destroyer in the closed loop.
  • FIG. 2 illustrates an embodiment appropriate for more rigid items 62 , such as laboratory glassware, surgical implements, dental tools, etc.
  • the items 62 may be put on shelves 60 , the shelves preferably being made of wire or perforated to allow free circulation of effluent around the items 62 .
  • a portion of the sterilant gas can be forced through the instruments 67 , while the outer surfaces of the instruments 67 are sterilized by the effluent in the chamber, as discussed below.
  • one or more additional conduits can be supplied with sterilant gas from the effluent input conduit 34 —this is shown in FIG. 2 as flexible hose 63 .
  • the hose 63 is equipped with one or more appropriate connectors 65 to plug into the handpiece 67 .
  • a circulating blower 28 can be used to increase effluent turbulence in the chamber.
  • the blower 28 can be placed in the chamber 10 , as shown in FIG. 1 , or outside, connected to the chamber by ducts, as shown in FIG. 2 .
  • a heater 64 can be put in the ducts to heat the air circulated by the blower 28 , or, alternatively, the chamber may be directly heated by elements 66 either in the chamber or attached to the walls of the chamber.
  • a temperature sensor 52 is provided in the chamber 10 .
  • the controller 12 can then maintain a selected temperature in the chamber 10 by reading the temperature through sensor 52 and controlling chamber heaters 64 and/or 66 as needed.
  • a carrier gas 53 such as air, oxygen, nitrogen, carbon dioxide, helium, argon, or a combination of carrier gases, can be introduced into the effluent generator 46 to be mixed with the effluent in the closed system. This can be done as an additional input to blower/distributor 14 , as shown in FIG. 2 .
  • FIGS. 8 and 9 show a multiple-output centrifugal blower which is used with the third embodiment of the invention as shown in FIGS. 6 and 7 .
  • the centrifugal blower used in this embodiment is a novel development on the centrifugal blowers and “squirrel-cage”type blowers of the prior art.
  • the blower 90 has a central input 91 for drawing gas to be distributed by the blower 90 into the blower housing 93 .
  • a plurality of tangential outputs 92 are provided, each output providing a stream of gas in approximately equal amounts.
  • the number of outputs 92 can vary within the teachings of the invention, depending on the requirements of the design. As examples, twelve outputs are shown in FIG. 8 and seven in FIG. 9 , while blower 74 in FIGS. 6 and 7 has eight outputs and blower 84 has seven outputs.
  • a central impeller 94 inside the housing 93 is rotated by a conventional motor 100 .
  • the motor can be electric, or powered by hydraulic fluid or compressed air, or any other motive force known to the art.
  • the impeller 94 is here shown as centrifugal impeller” type, which has a plurality of curved blades 95 . As the impeller 94 is rotated at high speed, air from input 91 is flung outward by centrifugal force and the action of the blades 95 , and is expelled through tangential outputs 92 .
  • FIG. 6 shows how a multiple-output blower can be used within the teachings of the invention as the blower-distributor 14 of FIG. 1 .
  • the effluent generator 46 uses multiple-output blower 74 to apportion the effluent returning from chamber 10 through conduit 36 between the plasma generator 30 , the vaporizer 32 , and a bypass heater 68 .
  • the outputs of the plasma generator 30 , vaporizer 32 and bypass heater 68 are combined together at a junction 70 , the combined effluent streams flowing into the chamber 10 through conduit 34 as in previous figures.
  • the outputs 73 a- 73 h of the blower 74 each carry an output flow which is a fraction of the total output flow of the blower approximately equal to the total flow divided by the number of outlets. Therefore a desired portion of the effluent can be chosen by combining an appropriate choice of the number of outputs, with the output of the manifold being approximately equal to the number of blower outputs being combined divided by the total number of outlets available. Multiple outputs can be combined using manifolds, such as manifold 71 to which outputs 73 a- 73 c are input, or manifold 72 which combines the flow from outputs 73 d- 73 g. Output 73 h is connected directly to the bypass heater 68 .
  • blower 74 has eight outputs 73 a- 73 h, so each output carries approximately one eighth or 12.5% of the total output of the blower. Therefore, in the arrangement of this example, manifold 71 receives three eighths (37.5%) of the flow, and the output of the manifold feeds this flow to plasma generator 30 through conduit 75 . Similarly, manifold 72 receives four eighths (or one half) (50%) of the flow through conduit 76 , the output of which is connected to vaporizer 32 . Bypass heater 68 receives one eighth (12.5%) of the flow directly from a single output 73 h, which could be thought of as a manifold with a single input.
  • FIG. 7 shows the third embodiment used with a fixed chamber for sterilizing items such as dental handpieces 67 (or other medical tools having lumens or other interior conduits or spaces which should be sterilized), as in the second embodiment of FIG. 2 .
  • Shelves 60 can be provided to support the tools 67 , as needed.
  • the effluent conduit 34 is used to feed a second multiple-outlet centrifugal blower 84 .
  • the multiple outputs 83 a- 83 g of blower 84 are used individually to feed multiple users of the effluent, rather than being combined to apportion flow as with outputs 73 a- 73 h of blower 74 .
  • the outputs 83 a- 83 f of blower 84 are fitted with shut-off valves or quick-disconnect fittings 85 a- 85 f, of any kind known to the art.
  • Flexible hoses 86 a- 86 f are plugged into fittings 85 a- 85 f to conveys effluent from the fittings 85 a- 85 f to connectors or adaptors 87 a- 87 f, into which the handpieces 67 can be plugged to sterilize the insides of the handpieces.
  • Output 83 g of blower 84 is routed directly to chamber 10 , to supply effluent to the chamber for sterilizing the outside of the handpieces 67 , as well as any other contents of the chamber.
  • FIGS. 10 - 12 show how the invention can be used with an open-sided portable wound chamber 105 to apply effluent to an open wound on a patient. Such application has been shown in experiments to promote healing.
  • FIG. 10 shows how the system of the invention is used in this application.
  • Effluent generator 46 recirculates effluent from conduit 36 to conduit 34 , as described in the preceding embodiments. It will be understood that while the effluent generator 46 is shown in FIG. 10 in the version used in FIGS. 1 and 2 , the effluent generator 46 could also be any of the other versions described herein or in parent patent application Ser. No. 12/510,341, incorporated herein by reference.
  • the wound chamber 105 is shown in FIG. 12 in a sectional view.
  • the chamber 105 has a body 107 with an open bottom 108 .
  • the edges 109 around the open bottom 108 can be simply rounded off, or could be provided with flexible or resilient sealing material 112 to facilitate a tight seal against a surface.
  • Connectors 110 and 111 provide means for connecting input and output hoses, respectively, to route the flow of effluent to and from the chamber.
  • the connectors could be the same size, or, as shown in FIG. 12 , the input connector 110 could be of smaller diameter than the output connector 111 .
  • the output conduit 34 of the effluent generator feeds a wound chamber 105 through a flexible hose 103 which connects to appropriate connectors 101 and 110 at each end.
  • Return effluent from the wound chamber 105 passes through flexible hose 104 with connectors 102 and 111 into return conduit 36 , to be recirculated back through the effluent generator 46 .
  • the chamber 105 is placed upon the body of the patient (here shown as an arm 106 ), over the wound to be treated. The chamber 105 is pressed firmly against the body 106 , and the sterilizer is operated for a selected period of time.
  • FIG. 11 shows a photograph of the wound chamber in use in an experiment on a pig.
  • multiple deep dermal partial thickness burn injuries were induced in Yorkshire pigs weighing 40-45 kilograms.
  • the wounds were inoculated with both Staphylococcus aureus and Pseudomonas aeruginosa to create a polymicrobial wound infection.
  • These microorganisms were chosen as these two organisms are commonly found in infected burn wounds in humans.
  • Burn wounds were exposed to disinfecting effluent produced by the sterilizer of the invention by placing the wound chamber over the wounds and operating the sterilizer for 2, 5 and 10 minutes each day for seven days. The wounds were examined on a daily basis. The results of the seventh day bacterial count compared with the control (not treated) are shown in FIG. 13 , which has a logarithmic scale of bacteria count on the vertical axis, and bars along the horizontal axis showing counts in areas exposed for 2 minutes, 5 minutes and 10 minutes, as well as a bar showing counts in an untreated (control) area. As can be seen in this figure, the bacteria counts are significantly lower in areas treated using the invention—the ten-minute treatment count being more than 100 times smaller than the control.
  • the sterilization process using the embodiments of the invention which have pre-heaters and.or exhaust systems consists of up to three phases:

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Abstract

A free radical sterilization system having a chamber defining a region, and a generator for generating free radical reach effluent from a free radical electric generator and/or a vaporizer. A closed loop circulating system without a free-radical destroyer is provided for supplying the mixture of free radicals from the electric generator mixed with the hydrogen peroxide solution in the form of the effluent to the chamber. The free-radical sterilization system is used in sterilizing items in the chamber and, with an open-bottomed wound chamber, in treating wounds on a body.

Description

REFERENCE TO RELATED APPLICATIONS
This application is a reissue of U.S. Pat. No. 8,758,681 and this application is also a continuation reissue application of U.S. application Ser. No. 15/191,384, filed Jun. 23, 2016, which is an application for reissue of U.S. Pat. No. 8,758,681, which issued Jun. 24, 2014 from U.S. patent application Ser. No. 13/524,380, filed Jun. 15, 2012, which is a continuation-in-part of parent patent application Ser. No. 12/510,341, filed Jul. 28, 2009, and entitled “Free Radical Sterilization System and Method”., issued as U.S. Pat. No. 8,221,679, which issued on Jul. 17, 2012; more than one reissue application has been filed for the reissue of U.S. Pat. No. 8,758,681 which includes the present continuation reissue application and U.S. application Ser. No. 15/191,384, filed on Jun. 23, 2016, which is a reissue application of U.S. Pat. No. 8,758,681. The aforementioned application is applications and patents are hereby incorporated herein by reference.
ACKNOWLEDGMENT OF GOVERNMENT SUPPORT
This invention was made with Government support under Grant No. 0750056, awarded by the National Science Foundation, R44DE017831-03 awarded by NIH. The government has certain rights in the invention.
BACKGROUND OF THE INVENTION
1. Field of the Invention
The present invention relates generally to the art of sterilization and decontamination, and more particularly to a system for sterilization of heat sensitive devices. The present invention also relates to a gaseous sterilization process carried out at atmospheric pressure.
2. Description of Related Art
Sterilization methods are used in a broad range of applications, and have used an equally broad range of sterilization agents. As used herein the term “sterilization” refers to the inactivation of bio-contamination, especially on inanimate objects. The term “disinfection” refers to the inactivation of organisms considered pathogenic.
It is known that pulsed or silent electric discharge in air or other gases produces non-thermal plasma. Non-thermal plasma processing involves producing plasma in which the majority of the electrical energy goes into the excitation of electrons. These plasmas are characterized by electrons with kinetic energies much higher than those of the ions or molecules. The electrons in these plasmas are short-lived under atmospheric pressure; instead they undergo collisions with the preponderant gas molecules. The electron impact on gas molecules causes dissociation and ionization of these molecules, which creates a mix of reactive species, in the form of free radicals, ions and secondary electrons. These reactive species cause unique and diverse chemical reactions to occur, even at relatively low temperatures. These chemical reactions are utilized in low temperature decontamination and sterilization technologies.
It is also known to use vaporized hydrogen peroxide (VHP) for sterilization. Known methods of sterilization with VHP include open loop systems, in which the VHP is applied to the items to be sterilized and then exhausted, and closed loop systems, where sterilizing vapors are recirculated.
In a known closed loop system, a carrier gas, such as air, is dried and heated prior to flowing past a vaporizer. A hydrogen peroxide aqueous solution is introduced into the vaporizer and vaporized. The resulting vapor is then combined with the carrier gas and introduced into a sterilization chamber. A blower exhausts the carrier gas from the sterilization chamber and recirculates the carrier gas to the vaporizer where additional VHP is added. Between the sterilization chamber and the vaporizer, the recirculating carrier gas passes through a catalytic destroyer (where any remaining VHP is eliminated from the carrier gas), a drier, a filter and a heater.
United States Patent Application Publication No: US 2005/0129571 A1 by Centanni discloses a closed loop sterilization system. The purpose of using the closed loop is the increase of the free radical concentration in the circulating effluent. Centanni teaches that there should be a VHP (vapor hydrogen peroxide) destroyer employed in the loop. Cetanni teaches that the ozone is mixed with the hydrogen peroxide vapor and the vapor is produced by injecting hydrogen peroxide water solution on a hot plate and thus evaporating it.
SUMMARY OF THE INVENTION
The present invention provides a method and system for sterilization. Free radicals are generated using a plasma electric discharge generator and/or a hydrogen peroxide vaporizer to produce highly bactericidal gaseous effluent. The effluent passes through a chamber, and then is recirculated in a closed loop system. The chamber can be in the form of a tumbler to sterilize items like surgical masks or fabrics or medical waste, or in the form of a stationary chamber for more solid items. A blower may be provided inside the chamber to create turbulence.
For use in pre-heating and drying the items to be sterilized, an input conduit equipped with a valve, heater and filter can supply fresh air to the system and an exhaust blower with an upstream filter and a free radical neutralizer can be used to remove moisture and active radicals from the system. The exhaust blower may be operated at a low speed mode during sterilization to create a negative-pressure condition in the chamber.
A novel multi-output blower can be used to apportion flow in the closed loop, and also to provide multiple outlets to sterilize multiple items or to feed multiple chambers.
The invention can also be used with a wound chamber to aid healing by providing effluent to a wound.
The invention also presents a method of sterilizing items using the above-described apparatus. The method includes placing the items in the chamber, pre-heating and drying them in an open-loop, disinfecting using a closed loop circulating system to supply bactericidal free radicals generated by an electric discharge with free radicals in antimicrobial liquid to the chamber, then flushing and drying the system in an open-loop.
BRIEF DESCRIPTION OF THE DRAWING
FIG. 1 shows a block diagram of a first embodiment of the invention with a tumbler-type chamber.
FIG. 2 shows a block diagram of a second embodiment of the invention with a stationary chamber with heating.
FIG. 3 shows a flowchart of the method of the invention
FIG. 4 shows a block diagram of a variation on the embodiment of FIG. 1 , omitting the preheater, distributor and vaporizer.
FIG. 5 shows a block diagram of a variation on the embodiment of FIG. 1 , omitting the distributor and plasma generator.
FIG. 6 shows a block diagram of a third embodiment of the invention, using a centrifugal multiple-outlet blower in place of the blower-distributor and adding a bypass heater.
FIG. 7 shows a variation on the embodiment of FIG. 6 , using two centrifugal multiple-outlet blowers to provide multiple outlets for recirculation.
FIG. 8 shows a centrifugal multiple outlet blower as used in the embodiment of FIGS. 6 and 7 .
FIG. 9 shows a cut-away diagram of the blower of FIG. 8 .
FIG. 10 shows a fourth embodiment of the invention, showing use of the invention with a wound chamber.
FIG. 11 shows a picture of a wound chamber in use.
FIG. 12 shows a cut-through side view of a wound chamber.
FIG. 13 shows a bar graph of results from a method of wound treatment using the fourth embodiment of the invention.
DETAILED DESCRIPTION OF THE INVENTION
FIGS. 1 and 2 and 4 through 7 show block diagrams of a sterilization system, illustrating five embodiments of the present invention which use a sterilization chamber. FIGS. 10 to 12 show an additional embodiment using a wound chamber.
In the detailed description below, t will be understood that those parts of the invention which are in common between the various figures are given the same reference number in each figure, and will not be separately discussed in the detailed description of each figure.
Broadly stated, system utilizes a combination of broad mixture of free radicals used in sterilizing and decontamination devices to sterilize items placed in the sterilization chamber, or over which the wound chamber is placed.
First Embodiment—Rotating Chamber with both plasma and vapor.
In FIG. 1 , the chamber 10 is shown as a tumbler-type chamber, which is rotated around a longitudinal axis 54, for example by motor 51, in the manner of a conventional home clothes dryer. Items to be sterilized are placed in a chamber 10. Such a tumbler-type chamber 10 would be appropriate for fabric items 56 such as towels and cloths, surgical masks and gowns, gloves, etc. The tumbler design could also be used to sterilize shredded medical waste within the teachings of the invention.
An effluent generator 46 is used for production of effluent for sterilization or decontamination of the chamber and its contents and for powering the circulation of effluent in the closed loop, to be described later. The effluent generator 46 includes a blower with flow distributor 14, a plasma electric free radical generator 30 and a vaporizer 32.
The plasma free radical generator 30 can be any kind of dielectric barrier discharge device. A device which can be used within the teachings of the invention is an ozone generator such as, for example, ozone generator cell SY-G20 manufactured by Longma Industrial Zone, Bao'an District, Shenzhen, 518108, P.R.C.
The vaporizer 32 contains liquid sterilizing agent such as hydrogen peroxide solution. The gas entering the vaporizer, in contact with the solution, produces bactericidal effluent. While the invention is described with particular reference to hydrogen peroxide as the sterilizing agent, it will be appreciated that the system is also applicable to other solutions and pure liquids, such as peracetic acid or formalin solution.
The vaporizer 32 can be in the form of a “bubbler”, in which the gas passes through a container of liquid, or the vaporizer could use plates or wicks over which the gas passes, as is known in prior-art devices. Preferably, the vaporizer 32 uses a measured amount of sterilizing agent, preferably in a pre-measured cartridge which can be inserted into the vaporizer, such that the agent is substantially or completely consumed in the course of a sterilizing run. The vaporizer can thus supply a specific small amount of hydrogen peroxide to the evaporator from a cartridge which is empted and dried during the sterilization process. The drying of the cartridge is accomplished by heating it using a small heater and a limited filtered air flow through the cartridge into the system. This way there is no danger that hydrogen peroxide liquid is present in the cartridge at the end of the cycle when a person/operator will insert a new cartridge for next cycle.
The blower with the flow distributor 14 takes recirculated effluent from the chamber 10 via conduit 36, and distributes it proportionally through conduit 40, which is coupled, optionally through a filter 50, into the plasma generator 30, and through conduit 38, again through optional filter 50, into vaporizer 32. The recirculated effluent is preferably distributed in proportions of approximately 30% to conduit 40, and approximate 70% to conduit 38, although other proportions could be used within the teaching of the invention.
With the proportions noted above, most of the recirculated effluent bypasses the plasma generator 30, passing only through vaporizer 32. The lesser proportion of the effluent passes through plasma generator 30, picking up new free radicals, and is mixed back in the rest of the effluent from the vaporizer 32 at junction 48.
The effluent produced in the effluent generator 46 is then introduced into the chamber 10, completing the closed loop of the system.
In addition to the closed loop system, an open loop system is also provided for the purpose of pre-heating and drying the chamber 10 before and after the circulation of bactericidal effluent through the closed loop system. The open loop system uses a blower 16, exhausting to atmosphere 56, to draw air from an air input 58 through input valve 18 and heater 26 into chamber 10. The input air may be filtered by filter 20, which is preferably of the high efficiency particulate air (HEPA) variety.
The heated, preferably filtered, air is introduced into the chamber 10 through conduit 42.
In the open-loop operation mode, the output of the chamber 10 is drawn out by blower 16 and passes through conduit 44 and a Free Radical Destroyer (FRD) 24, which destroys any free radicals which might remain before the air is exhausted 56. A second filter 22, again preferably of the HEPA type, can be provided in conduit 44 to filter out any particles which would otherwise enter the FRD or be exhausted to the atmosphere. The presence of HEPA filters 20 and 22 at the input and exhaust ensures that there is no microorganism transfer between the ambient air and the sterilization system and vice versa.
The simplest FRD is an activated carbon filter, for example, the Vent Pure “D” from General Carbon Corp. of Paterson, N.J.
By opening valve 18 and turning on heater 26 and blower 16, the chamber 10, and items 56 within the chamber, can be dried and pre-heated before the closed loop operation is begun. Once the pre-heating and drying step is completed, valve 18 is closed and heater 26 is turned off
Preferably, blower 16 is of a controllable-speed type, so that it may be operated at a reduced speed during closed-loop operation. This will induce a slight negative pressure in the chamber 10, preventing leakage of effluent from the chamber. However, the blower could be a single-speed blower, in which case it would be turned off after the pre-heating step.
After pre-heating, the system is operated in closed-loop mode by starting blower/distributor 14 and plasma generator 30. The effluent mixture circulates continuously through the loop, from generator 46 through conduit 34, through chamber 10 and conduit 36, back to the generator 46.
When this cycle is finished plasma generator 30 is turned off, valve 18 is opened, and blower 16 is turned on full speed in order to remove the active free radicals from the effluent using FRD 24, and to dry the chamber 10 and the sterilized equipment 56 or 62.
The closed loop blower/distributor 14 may remain on, if desired, so as to circulate air through the closed loop to dry the free radical source 46 and vaporizer 32. Heater 26 may optionally be turned on at this stage, as well, so that heated air is circulated through the vaporizer in order to evaporate residual remains of liquid solution of hydrogen peroxide. Alternatively, blower/distributor 14 may be turned off if it is not desired to circulate air through the closed loop portion of the system during this drying step.
A controller 12 is provided in order to control the operation of the various parts of the system.
Variations on the First Embodiment plasma or vaporizer only and no pre-heater
As shown in FIGS. 4 and 5 , in two variations on the first embodiment of the invention, the effluent generator 46 could be made with only one of the sources—either a plasma generator 30 (FIG. 4 ) or a vaporizer (FIG. 5 ). In these variations, the blower/distributor 14 from FIG. 1 is replaced by a blower 4, since with only one source there is no need for distribution.
In FIG. 4 , the open loop pre-heater system with its heater 26, filter 20 and valve 18 is omitted as well, to illustrate a variation where there is no pre-heat capability.
It will be understood that these variations could also be applied to the second embodiment, although this is not explicitly illustrated in a figure.
In either of the variations, and in all of the embodiments, the sterilizer of the invention operates in the closed-loop mode by recirculating the effluent through the chamber and the effluent generator without passing the effluent through a free-radical destroyer in the closed loop.
Second Embodiment—Fixed Chamber with both plasma and vapor.
FIG. 2 illustrates an embodiment appropriate for more rigid items 62, such as laboratory glassware, surgical implements, dental tools, etc. The items 62 may be put on shelves 60, the shelves preferably being made of wire or perforated to allow free circulation of effluent around the items 62.
For the sterilization of instruments with internal conduits or lumens such as endoscopes or dental handpieces 67, a portion of the sterilant gas can be forced through the instruments 67, while the outer surfaces of the instruments 67 are sterilized by the effluent in the chamber, as discussed below. To do this, one or more additional conduits can be supplied with sterilant gas from the effluent input conduit 34—this is shown in FIG. 2 as flexible hose 63. The hose 63 is equipped with one or more appropriate connectors 65 to plug into the handpiece 67.
Additionally a circulating blower 28 can be used to increase effluent turbulence in the chamber. The blower 28 can be placed in the chamber 10, as shown in FIG. 1 , or outside, connected to the chamber by ducts, as shown in FIG. 2 . A heater 64 can be put in the ducts to heat the air circulated by the blower 28, or, alternatively, the chamber may be directly heated by elements 66 either in the chamber or attached to the walls of the chamber.
In the embodiment of FIG. 2 , a temperature sensor 52 is provided in the chamber 10. The controller 12 can then maintain a selected temperature in the chamber 10 by reading the temperature through sensor 52 and controlling chamber heaters 64 and/or 66 as needed.
Optionally, a carrier gas 53, such as air, oxygen, nitrogen, carbon dioxide, helium, argon, or a combination of carrier gases, can be introduced into the effluent generator 46 to be mixed with the effluent in the closed system. This can be done as an additional input to blower/distributor 14, as shown in FIG. 2 .
Third Embodiment Using centrifugal multiple-outlet blower
FIGS. 8 and 9 show a multiple-output centrifugal blower which is used with the third embodiment of the invention as shown in FIGS. 6 and 7 . The centrifugal blower used in this embodiment is a novel development on the centrifugal blowers and “squirrel-cage”type blowers of the prior art.
As can be seen in FIGS. 8 and 9 , the blower 90 has a central input 91 for drawing gas to be distributed by the blower 90 into the blower housing 93. A plurality of tangential outputs 92 are provided, each output providing a stream of gas in approximately equal amounts. The number of outputs 92 can vary within the teachings of the invention, depending on the requirements of the design. As examples, twelve outputs are shown in FIG. 8 and seven in FIG. 9 , while blower 74 in FIGS. 6 and 7 has eight outputs and blower 84 has seven outputs.
A central impeller 94 inside the housing 93 is rotated by a conventional motor 100. The motor can be electric, or powered by hydraulic fluid or compressed air, or any other motive force known to the art. The impeller 94 is here shown as centrifugal impeller” type, which has a plurality of curved blades 95. As the impeller 94 is rotated at high speed, air from input 91 is flung outward by centrifugal force and the action of the blades 95, and is expelled through tangential outputs 92.
FIG. 6 shows how a multiple-output blower can be used within the teachings of the invention as the blower-distributor 14 of FIG. 1 .
In this embodiment, the effluent generator 46 uses multiple-output blower 74 to apportion the effluent returning from chamber 10 through conduit 36 between the plasma generator 30, the vaporizer 32, and a bypass heater 68. The outputs of the plasma generator 30, vaporizer 32 and bypass heater 68 are combined together at a junction 70, the combined effluent streams flowing into the chamber 10 through conduit 34 as in previous figures.
Because the outputs 73a-73h of the blower 74 each carry an output flow which is a fraction of the total output flow of the blower approximately equal to the total flow divided by the number of outlets. Therefore a desired portion of the effluent can be chosen by combining an appropriate choice of the number of outputs, with the output of the manifold being approximately equal to the number of blower outputs being combined divided by the total number of outlets available. Multiple outputs can be combined using manifolds, such as manifold 71 to which outputs 73a-73c are input, or manifold 72 which combines the flow from outputs 73d-73g. Output 73h is connected directly to the bypass heater 68.
In the example of FIG. 6 , blower 74 has eight outputs 73a-73h, so each output carries approximately one eighth or 12.5% of the total output of the blower. Therefore, in the arrangement of this example, manifold 71 receives three eighths (37.5%) of the flow, and the output of the manifold feeds this flow to plasma generator 30 through conduit 75. Similarly, manifold 72 receives four eighths (or one half) (50%) of the flow through conduit 76, the output of which is connected to vaporizer 32. Bypass heater 68 receives one eighth (12.5%) of the flow directly from a single output 73h, which could be thought of as a manifold with a single input.
FIG. 7 shows the third embodiment used with a fixed chamber for sterilizing items such as dental handpieces 67 (or other medical tools having lumens or other interior conduits or spaces which should be sterilized), as in the second embodiment of FIG. 2 . Shelves 60 can be provided to support the tools 67, as needed.
In FIG. 7 , rather than feeding the chamber 10 directly, the effluent conduit 34 is used to feed a second multiple-outlet centrifugal blower 84. In this variation, the multiple outputs 83a-83g of blower 84 are used individually to feed multiple users of the effluent, rather than being combined to apportion flow as with outputs 73a-73h of blower 74.
The outputs 83a-83f of blower 84 are fitted with shut-off valves or quick-disconnect fittings 85a-85f, of any kind known to the art. Flexible hoses 86a-86f are plugged into fittings 85a-85f to conveys effluent from the fittings 85a-85f to connectors or adaptors 87a-87f, into which the handpieces 67 can be plugged to sterilize the insides of the handpieces. Output 83g of blower 84 is routed directly to chamber 10, to supply effluent to the chamber for sterilizing the outside of the handpieces 67, as well as any other contents of the chamber.
Fourth Embodiment The Wound Chamber
FIGS. 10-12 show how the invention can be used with an open-sided portable wound chamber 105 to apply effluent to an open wound on a patient. Such application has been shown in experiments to promote healing.
FIG. 10 shows how the system of the invention is used in this application. Effluent generator 46 recirculates effluent from conduit 36 to conduit 34, as described in the preceding embodiments. It will be understood that while the effluent generator 46 is shown in FIG. 10 in the version used in FIGS. 1 and 2 , the effluent generator 46 could also be any of the other versions described herein or in parent patent application Ser. No. 12/510,341, incorporated herein by reference.
The wound chamber 105 is shown in FIG. 12 in a sectional view. The chamber 105 has a body 107 with an open bottom 108. The edges 109 around the open bottom 108 can be simply rounded off, or could be provided with flexible or resilient sealing material 112 to facilitate a tight seal against a surface. Connectors 110 and 111 provide means for connecting input and output hoses, respectively, to route the flow of effluent to and from the chamber. The connectors could be the same size, or, as shown in FIG. 12 , the input connector 110 could be of smaller diameter than the output connector 111.
In this embodiment, the output conduit 34 of the effluent generator feeds a wound chamber 105 through a flexible hose 103 which connects to appropriate connectors 101 and 110 at each end. Return effluent from the wound chamber 105 passes through flexible hose 104 with connectors 102 and 111 into return conduit 36, to be recirculated back through the effluent generator 46. In use, the chamber 105 is placed upon the body of the patient (here shown as an arm 106), over the wound to be treated. The chamber 105 is pressed firmly against the body 106, and the sterilizer is operated for a selected period of time.
EXAMPLE Use of the Sterilizer and Wound Chamber
FIG. 11 shows a photograph of the wound chamber in use in an experiment on a pig. In the example, multiple deep dermal partial thickness burn injuries were induced in Yorkshire pigs weighing 40-45 kilograms. After the burn wounds were produced, the wounds were inoculated with both Staphylococcus aureus and Pseudomonas aeruginosa to create a polymicrobial wound infection. These microorganisms were chosen as these two organisms are commonly found in infected burn wounds in humans.
Burn wounds were exposed to disinfecting effluent produced by the sterilizer of the invention by placing the wound chamber over the wounds and operating the sterilizer for 2, 5 and 10 minutes each day for seven days. The wounds were examined on a daily basis. The results of the seventh day bacterial count compared with the control (not treated) are shown in FIG. 13 , which has a logarithmic scale of bacteria count on the vertical axis, and bars along the horizontal axis showing counts in areas exposed for 2 minutes, 5 minutes and 10 minutes, as well as a bar showing counts in an untreated (control) area. As can be seen in this figure, the bacteria counts are significantly lower in areas treated using the invention—the ten-minute treatment count being more than 100 times smaller than the control.
Method of Operation
As shown in FIG. 3 , the sterilization process using the embodiments of the invention which have pre-heaters and.or exhaust systems, consists of up to three phases:
  • 80—Start the method
  • 70—Phase I—Pre-sterilization drying and heating (Open Loop)
    • 81—During this phase the exhaust blower 16 is turned on, the valve 18 is opened (if closed) and the heater 26 is turned on. This causes fresh air from the inlet 58 to flow through valve 18, optional HEPA filter 20, and heater 26 into chamber 10 via conduit 42. The heated air dries and heats the sterilized items and is expelled through conduit 42 via optional filter 22, free radical destroyer 24 and exhaust blower 16.
    • 82—The drying and heating is continued for a sufficient time, for example approximately 5 minutes. If desired, a heat sensor or humidity sensor (not shown) could be provided at the exhaust 56 or in conduit 44, coupled to the controller 12, so that the duration of the pre-heating could be controlled based on empirical data rather than an arbitrary elapsed time. Optionally, if a chamber temperature sensor 52 is provided, the controller 12 may operate heater 26 and, if provided, chamber heaters 64 and/or 66 to maintain a desired pre-heat temperature in the chamber.
    • 83—After the chamber and the sterilized items are dried and heated the input valve 18 is closed.
    • 84—The exhaust blower 16 is turned off (or reduced to minimum speed, if this ability is available)
  • 71 Phase II—Sterilization (Closed Loop)
    • 85—The plasma generator 30 and the closed loop blower/distributor 14 are turned on. This causes the air to circulate in the closed loop through the free radical generator 46 and the chamber 10, as described in the description of the apparatus, above.
    • 86—The closed loop system produces continuously free radical rich effluent that sterilizes items in the chamber 10. The closed loop operation continues for a time sufficient for sterilization. As an example, a duration of approximately 20-30 minutes should be sufficient for adequate sterilization of most items. If provided, the controller 12 will activate chamber heaters 64 and/or 66 to maintain a desired temperature in chamber 10, as measured by sensor 52.
    • 87—At the end of the sterilization period, the plasma generator 30 is turned off
  • 72—Phase III—Post-sterilization drying and clearing (Open Loop)
    • 88Input valve 18 is opened, heater 26 is turned on and the exhaust blower 16 is turned on. The closed loop blower/distributor 14 may remain on during this Phase III in order to dry free radical source 46, or, if desired, blower/distributor may be turned off in step 87. The air flows from the input 58 via conduit 42 into the chamber 10 drying the items and, if blower 14 remains on, the free radical source 46. The moist air is expelled into the atmosphere via filter 22 and free radical destroyer 24.
    • 89—The open loop operation is maintained for a time sufficient to dry and clear the chamber 10. A period of, for example, five minutes should suffice.
    • 90Heater 26 is turned off, with blower 16 (and blower 14, if desired) remaining on.
    • 91—Fresh air is passed through the system for a sufficient time to cool down to the ambient temperature. For example, a few minutes operation would suffice for cooling. Optionally, if sensor 52 is provided in the chamber, the controller 12 could be programmed to continue this cooling until a desired temperature is reached.
    • 92Blower 16 is turned off, as well as blower 14 if it is still on. Valve 18 may be closed at this time, or left open for the next run.
  • 93—The method ends. The chamber 10 may now be opened and the items 56/62 removed. New items may be put in the chamber, if desired, and the process repeated again from 80.
Accordingly, it is to be understood that the embodiments of the invention herein described are merely illustrative of the application of the principles of the invention. Reference herein to details of the illustrated embodiments is not intended to limit the scope of the claims, which themselves recite those features regarded as essential to the invention. The drawings are for the purpose of illustrating embodiments of the invention only, and not for the purpose of limiting it.

Claims (47)

What is claimed is:
1. A free radical sterilization system comprising:
a) a chamber for containing items to be sterilized;
b) an effluent generator having an input coupled to the chamber and an output coupled to the chamber for closed-loop circulation, comprising:
i) a blower/distributor comprising a blower having an input coupled to the input of the effluent generator and at least one output, and a flow distributor for distributing blower flow from the at least one output of the blower to at least a first output and a second output in selected portions;
ii) a plasma electric free radical generator having an input coupled to the first output of the blower/distributor and an output coupled to the output of the effluent generator; and
iii) a vaporizer having an input coupled to the second output of the blower, and an output coupled to the output of the effluent generator, the vaporizer contacting a liquid sterilizing agent with the output of the blower/distributor to produce bactericidal effluent at the output of the vaporizer;
such that bactericidal effluent from the effluent generator flows through the chamber and back through the effluent generator in a closed loop without an intervening free-radical destroyer.
2. The free radical sterilization system of claim 1, further comprising:
c) an open loop pre-heater and dryer comprising:
i) an input valve having an input open to atmosphere and an output;
ii) a heater having an input coupled to the input valve and an output coupled to the chamber; and
iii) an exhaust blower having an input coupled to the chamber and an output exhausting to atmosphere;
such that air is taken in through the input valve, heated by the heater, passes through the chamber and is exhausted to atmosphere in an open loop.
3. The free radical sterilization system of claim 1, in which the chamber comprises a tumbler.
4. The free radical sterilization system of claim 1, in which the chamber comprises a wound chamber having an open bottom surface.
5. The free radical sterilization system of claim 1, in which the liquid sterilizing agent is hydrogen peroxide.
6. The free radical sterilization system of claim 1, in which the vaporizer contains a determined amount of liquid sterilizing agent at a beginning of a sterilization run.
7. The free radical sterilization system of claim 1, in which the flow distributor of the blower/distributor distributes 30% of the flow to the first output and 70% to the second output.
8. The free radical sterilization system of claim 1, in which the blower/distributor comprises:
a) a multiple-output centrifugal blower having an input coupled to the input of the effluent generator and a plurality of outputs, each of the plurality of outputs of the multiple-output centrifugal blower having an output flow which is a fraction of a total output flow of the multiple-output centrifugal blower approximately equal to the total flow divided by the number of outputs in the plurality of outputs; and
b) a flow distributor comprising at least:
i) a first manifold having a plurality of inputs coupled to a first selected number of the plurality of outputs of the multiple-output centrifugal blower and an output comprising the first output of the blower/distributor; and
ii) a second manifold having a plurality of inputs coupled to a second selected number of the plurality of outputs of the multiple-output centrifugal blower and an output comprising the second output of the blower/distributor;
such that the portion of the total flow at the first output of the blower/distributor is equal to the sum of the fractions of the total output flow multiplied by the first selected number; and the portion of the total flow at the first output of the blower/distributor is equal to the sum of the fractions of the total output flow multiplied by the second selected number.
9. The free radical sterilization system of claim 8, in which at least one output of the multiple-output centrifugal blower is coupled to the chamber through a heater.
10. The free radical sterilization system of claim 1, further comprising a multiple-output centrifugal blower having an input coupled to the output of the effluent generator and a plurality of outputs, at least one of the plurality of outputs being coupled to the chamber.
11. The free radical sterilization system of claim 10, in which a plurality of the outputs from the multiple-output centrifugal blower further comprise fittings for coupling hoses for connection to objects in the chamber, such that effluent from the plurality of outputs passes through the fittings and the hoses and an inside of the objects to the chamber.
12. The free radical sterilization system of claim 1, further comprising a circulating blower for inducing turbulent flow within the chamber.
13. The free radical sterilization system of claim 1, further comprising a chamber heater, directly heating the chamber.
14. The free radical sterilization system of claim 1, further comprising a controller coupled to the blower/distributor of the effluent generator and the plasma electric free radical generator.
15. The free radical sterilization system of claim 1, further comprising a source of carrier gas coupled to the closed loop.
16. The free radical sterilization system of claim 1, further comprising a conduit for sterilizing interior passages in an instrument, having a first end coupled to the output of the effluent generator and a second end in the chamber having a connector for coupling with the instrument, so that a portion of the effluent passes through the internal passages in the instrument plugged into the connector.
17. A free radical sterilization system comprising:
a) a chamber for containing items to be sterilized;
b) an effluent generator having an input coupled to the chamber and an output coupled to the chamber for closed-loop circulation, comprising:
i) a blower having an input coupled to the input of the effluent generator and an output; and
ii) a source of effluent having an input coupled to the output of the blower and an output coupled to the output of the effluent generator, comprising one of a plasma electric free radical generator or a vaporizer having a liquid sterilizing agent;
such that bactericidal effluent from the effluent generator flows through the chamber and back through the effluent generator in a closed loop without an intervening free-radical destroyer.
18. The free radical sterilization system of claim 17, in which the chamber comprises a tumbler.
19. The free radical sterilization system of claim 17, in which the chamber comprises a wound chamber having an open bottom surface.
20. The free radical sterilization system of claim 17, in which the liquid sterilizing agent is hydrogen peroxide.
21. The free radical sterilization system of claim 17, in which the vaporizer contains a determined amount of liquid sterilizing agent at a beginning of a sterilization run.
22. The free radical sterilization system of claim 17, further comprising a multiple-output centrifugal blower having an input coupled to the output of the effluent generator and a plurality of outputs, at least one of the plurality of outputs being coupled to the chamber.
23. The free radical sterilization system of claim 22, in which a plurality of the outputs from the multiple-output centrifugal blower further comprise fittings for coupling hoses for connection to objects in the chamber, such that effluent from the plurality of outputs passes through the fittings and the hoses and an inside of the objects to the chamber.
24. A method of sterilization of items in a sterilization chamber using free radicals, comprising:
a) drying and heating the items in the chamber by drawing heated air through the chamber and exhausting the air from the chamber in an open loop;
b) circulating free radical rich effluent comprising a mixture of free radicals and a sterilizing agent, in a closed loop from an effluent generator, through the chamber, then back through the effluent generator, the effluent generator having an input coupled to the chamber and an output coupled to the chamber for closed-loop circulation, the effluent generator comprising a blower/distributor comprising a blower having an input coupled to the input of the effluent generator at least one output, and a flow distributor for distributing blower flow from the at least one output of the blower to at least a first output and a second output in selected portions; a plasma electric free radical generator having an input coupled to the first output of the blower/distributor and an output coupled to the output of the effluent generator; a vaporizer having an input coupled to the second output of the blower, and an output coupled to the output of the effluent generator, the vaporizer contacting a liquid sterilizing agent with the output of the blower/distributor to produce bactericidal effluent at the output of the vaporizer;
c) turning off the effluent generator at the end of a determined sterilization period;
d) drying and heating the items in the chamber by drawing heated air through the chamber and exhausting the air from the chamber in an open loop; and
e) cooling the items in the chamber by drawing ambient air through the chamber and exhausting the air from the chamber in an open loop.
25. The method of claim 24, in which air is exhausted during step b, creating a negative pressure in the chamber.
26. The method of claim 24, in which steps d and e further comprise destroying free radicals before exhausting the air using a free radical destroyer.
27. The method of claim 24, in which step a is maintained for a determined period of time.
28. The method of claim 24, in which step a is maintained until a determined temperature or humidity is measured in the exhaust.
29. The method of claim 24, further comprising circulating the air in the chamber with a circulating blower at least during step b.
30. The method of claim 24, further comprising maintaining a determined temperature in the chamber during step b.
31. A method of treating a wound on a body, using a stream of a free radical rich effluent comprising a mixture of free radicals and a sterilizing agent from an effluent generator having an input and an output for closed-loop circulation, the effluent generator comprising a blower/distributor comprising a blower having an input coupled to the input of the effluent generator at least one output, and a flow distributor for distributing blower flow from the at least one output of the blower to at least a first output and a second output in selected portions; a plasma electric free radical generator having an input coupled to the first output of the blower/distributor and an output coupled to the output of the effluent generator; a vaporizer having an input coupled to the second output of the blower, and an output coupled to the output of the effluent generator, the vaporizer contacting a liquid sterilizing agent with the output of the blower/distributor to produce bactericidal effluent at the output of the vaporizer, using a wound chamber having an open bottom, an input coupled to the output of the effluent generator and an output coupled to the input of the effluent generator, the method comprising:
a) placing the open bottom of the wound chamber on the body around the wound and applying pressure to seal the wound chamber against the body;
b) turning on the effluent generator;
c) for a determined treatment period, circulating the stream of effluent from the output of the effluent generator through the wound chamber and back to the input of the effluent generator in a closed loop;
d) turning off the effluent generator at the end of a determined sterilization period;
e) removing the wound chamber from the body; and
f) repeating the method at a determined interval for a determined treatment duration.
32. The method of claim 31, in which the treatment period is at least two minutes.
33. The method of claim 31, in which the treatment period is at least ten minutes.
34. The method of claim 31, in which the determined interval is a day.
35. The method of claim 31, in which the determined treatment duration is one week.
36. A sterilizing device comprising:
a chamber for containing items to be sterilized, the chamber comprising a bactericidal effluent input and a bactericidal effluent output;
a blower/distributor comprising an input and at least a first output and a second output,
wherein the blower generates blower flow,
wherein the distributor distributes blower flow to the first and the second output of the blower in selected portions;
a free radical generator having an input coupled to the first output of the blower/distributor and a free radical output,
wherein the free radical generator generates free radicals; and
a vaporizer having an input coupled to the second output of the blower/distributor and a vaporizer output,
wherein the vaporizer contacts a liquid sterilizing agent to produce vaporized sterilant;
wherein flow distributed to the free radical generator and vaporizer causes free radicals to flow through the free radical output and vaporized sterilant to flow through the vaporizer output,
wherein the free radical output and vaporizer output are coupled, such that the free radicals and vaporized sterilant are combined to form bactericidal effluent,
wherein the bactericidal effluent flows through the bactericidal effluent input and into the chamber and out the bactericidal effluent output and back through the blower/distributor input.
37. The sterilizing device of claim 36, further comprising a pre-heater and dryer comprising:
i) a pre-heater input valve having an input open to atmosphere and an output;
ii) a heater having an input coupled to the pre-heater input valve and an output coupled to the chamber; and
iii) an exhaust blower having an input coupled to the chamber and an output exhausting to atmosphere;
such that air is taken in through the pre-heater input valve, heated by the heater, passes through the chamber and is exhausted to atmosphere in an open loop.
38. The sterilizing device of claim 36, wherein the vaporizer comprises a bubbler.
39. The sterilizing device of claim 36, wherein the vaporizer comprises a wick in contact with the liquid sterilizing agent and over which blower flow passes to generate the vaporized sterilant.
40. The sterilizing device of claim 36, wherein the liquid sterilizing agent is hydrogen peroxide.
41. The sterilizing device of claim 36, wherein the vaporizer contains a determined amount of liquid sterilizing agent at a beginning of a sterilization run.
42. The sterilizing device of claim 36, further comprising a circulating blower for inducing turbulent flow within the chamber.
43. The sterilizing device of claim 36, further comprising a chamber heater, directly heating the chamber.
44. The sterilizing device of claim 36, further comprising a controller coupled to the blower/distributor.
45. The sterilizing device of claim 36, further comprising a conduit for sterilizing interior passages in an instrument, the conduit having a first end configured to receive the bactericidal effluent and a second end in the chamber having a connector for coupling with the instrument, so that a portion of the bactericidal effluent passes through the internal passages in the instrument plugged into the connector.
46. The sterilizing device of claim 36, wherein the chamber comprises a tumbler.
47. A method for sterilizing items, comprising:
generating a bactericidal effluent comprising a mixture of free radicals and a sterilizing agent,
wherein the free radicals are generated by a free radical generator and a vaporized sterilant is generated by a vaporizer,
wherein an output of the free radical generator and an output of the vaporizer are coupled, and
wherein a blower/distributor distributes blower flow to the free radical generator and the vaporizer, respectively, via a first and second output of the blower in selected portions;
circulating, via the blower/distributor, the bactericidal effluent through a chamber containing items to be sterilized.
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Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US12011512B2 (en) 2017-10-25 2024-06-18 Sterifre Medical, Inc. Devices, systems, and methods for sterilization, disinfection, sanitization and decontamination

Families Citing this family (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
USRE47582E1 (en) 2009-07-28 2019-08-27 Sterifre Medical, Inc. Free radical sterilization system and method
BR112018076219B1 (en) 2016-06-17 2022-11-01 Sterifre Medical Inc. SYSTEM TO TREAT AT LEAST ONE ITEM AND AUTOMATED METHOD TO STERILIZE OR DISINFECT AT LEAST ONE ITEM

Citations (67)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO1988004939A1 (en) 1986-12-31 1988-07-14 American Sterilizer Company Method of decontaminating surfaces on or near living cells with vapor phase hydrogen peroxide
EP0298694A2 (en) 1987-07-06 1989-01-11 American Sterilizer Company Vapour flow-through systems
US4992247A (en) 1989-05-11 1991-02-12 Elopak Systems, A.G. Container sterilization system
WO1991005573A1 (en) 1989-10-11 1991-05-02 American Sterilizer Company Recirculation, vapor and humidity control in a sealable enclosure
US5087418A (en) 1987-02-25 1992-02-11 Adir Jacob Process for dry sterilization of medical devices and materials
US5209411A (en) 1990-09-27 1993-05-11 Cox Sterile Products, Inc. Decontamination of medical waste
US5445792A (en) 1992-03-13 1995-08-29 American Sterilizer Company Optimum hydrogen peroxide vapor sterlization method
US5534221A (en) 1992-03-13 1996-07-09 American Sterilizer Company Device and system for sterilizing objects
US5578280A (en) 1995-04-28 1996-11-26 Americal Environmental Technologies, Inc. Ozone generator with a generally spherical corona chamber
EP0774263A1 (en) 1995-11-20 1997-05-21 Mdh Limited Method and apparatus for hydrogen peroxide vapor sterilization
WO1997047331A1 (en) 1996-06-14 1997-12-18 American Sterilizer Company Continuous-operation, closed-loop decontamination system and method
US5779973A (en) 1997-04-01 1998-07-14 Steris Corporation Vapor phase interstitial microbial decontamination of overwrapped IV bags
US5792435A (en) 1997-04-08 1998-08-11 Steris Corporation Vapor phase decontaminant isolator apparatus with integral vapor phase decontaminant generator system
US6073627A (en) 1998-07-30 2000-06-13 Medizone International, Inc. Apparatus for the application of ozone/oxygen for the treatment of external pathogenic conditions
US6077480A (en) 1997-06-19 2000-06-20 Steris Corporation Multiple flashpoint vaporization system
US6113851A (en) 1996-03-01 2000-09-05 Phygen Apparatus and process for dry sterilization of medical and dental devices and materials
US6156267A (en) 1996-02-16 2000-12-05 Steris Corporation Apparatus and method for real-time monitoring and control of anti-microbial processing
US6187266B1 (en) 1997-12-17 2001-02-13 Johnson & Johnson Medical, Inc. Integrated cleaning/sterilization process with lumen devices
US6329628B1 (en) 1998-12-10 2001-12-11 Polytechnic University Methods and apparatus for generating a plasma torch
US20020044883A1 (en) 1998-12-30 2002-04-18 Jacobs Paul T. Sterilization process using small amount of sterilant to determine the load
US20020068028A1 (en) 2000-10-31 2002-06-06 Hight H. Thomas Apparatus and method for ventilating endoscope soaking basins
GB2371986A (en) 2001-02-09 2002-08-14 Jacques Protic Sterilisation process
JP2002360672A (en) 2001-06-07 2002-12-17 Ishikawajima Harima Heavy Ind Co Ltd Hydrogen peroxide sterilizer
US20050063882A1 (en) 2003-09-16 2005-03-24 Steris Inc. Sensor for determining concentration of fluid sterilant
US20050129571A1 (en) 2003-12-10 2005-06-16 Steris Inc. Ozone enhanced vaporized hydrogen peroxide decontamination method and system
EP1557181A1 (en) 1994-04-28 2005-07-27 JOHNSON & JOHNSON MEDICAL, INC. Vapor sterilization using a non-aqueous source of hydrogen peroxide
US20050260097A1 (en) 2004-05-18 2005-11-24 Steris Inc. Sterilization device for sterilization of lumen devices
US20060027539A1 (en) 2003-05-02 2006-02-09 Czeslaw Golkowski Non-thermal plasma generator device
JP2006205085A (en) 2005-01-28 2006-08-10 Ngk Insulators Ltd Plasma processing apparatus
US7091441B1 (en) 2004-03-19 2006-08-15 Polytechnic University Portable arc-seeded microwave plasma torch
US7186374B2 (en) 2001-02-16 2007-03-06 Steris Inc. Vapor phase decontamination of containers
US20070221582A1 (en) 2004-11-30 2007-09-27 THE ADMINISTRATORS OF THE TULANE EDUCATIONAL FUND (a Louisiana non-profit corporation) Nebulizing treatment method
US20070274858A1 (en) 2006-02-25 2007-11-29 Childers James A Method and system for conducting vapor phase decontamination of sealable entities and their contents
KR100782040B1 (en) 2007-06-29 2007-12-04 주식회사 리노셈 Methods of sterilization by hydrogen peroxide and ozone, and apparatus using the methods
US20080267819A1 (en) 2007-03-06 2008-10-30 Bacik Michael A Transportable decontamination unit and decontamination process
US7621985B1 (en) 2008-05-24 2009-11-24 Adventix Technologies Inc. Plasma torch implemented air purifier
US7777151B2 (en) 2008-02-14 2010-08-17 Adventix Technologies Inc. Portable plasma sterilizer
US7803315B2 (en) 2001-10-05 2010-09-28 American Sterilizer Company Decontamination of surfaces contaminated with prion-infected material with gaseous oxidizing agents
US20100272603A1 (en) 2007-07-10 2010-10-28 Goncalves Helder Da Costa Hydrogen peroxide sterilization process and device
CA2735739A1 (en) 2009-07-06 2011-01-13 Medizone International Inc. Healthcare facility disinfecting process and system with oxygen/ozone mixture
US7880887B2 (en) 2008-08-29 2011-02-01 Phygen, Inc. Apparatus and method for measuring the concentration of gases in a sterilization chamber
US20110027125A1 (en) 2009-07-28 2011-02-03 Czeslaw Golkowski Free Radical Sterilization System and Method
CA2767726A1 (en) 2009-09-30 2011-04-07 Tso3 Inc. Sterilization method and apparatus
WO2011085466A1 (en) 2010-01-18 2011-07-21 Medizone International Inc. Bio-terrorism counteraction using ozone and hydrogen peroxide
WO2011149188A2 (en) 2010-05-24 2011-12-01 Agency For Defense Development Apparatus and method for decontaminating and sterilizing chemical and biological agent
US8115135B2 (en) 2008-02-14 2012-02-14 Adventix Technologies Inc. Plasma assisted oxygen decontaminant generator and sprayer
USD656622S1 (en) 2009-06-01 2012-03-27 Saban Ventures Pty Limited Bottle
US20120277662A1 (en) 2009-07-28 2012-11-01 Czeslaw Golkowski Free Radical Sterilization System and Method
US8444919B2 (en) 2005-08-04 2013-05-21 Saban Ventures Pty Limited Space disinfection
JP2014023596A (en) 2012-07-25 2014-02-06 Ihi Corp Sterilizer
US8668882B2 (en) 2008-08-15 2014-03-11 Saban Ventures Pty Limited Nebulizer manifold
US20140105783A1 (en) 2012-10-17 2014-04-17 Hantover, Inc. Deodorizing and sanitizing container
WO2014123280A1 (en) 2013-02-07 2014-08-14 한국 기초 과학 지원연구원 Microwave plasma sterilization device
US8927896B2 (en) 2013-10-15 2015-01-06 Adventix Technologies, Inc. Battery powered handheld air plasma spray
US8977115B2 (en) 2013-03-08 2015-03-10 Steris Inc. Vaporizer with secondary flow path
US8992829B2 (en) 2010-09-08 2015-03-31 Medizone International Inc. Sports equipment and facility disinfection
US9010574B2 (en) 2008-06-30 2015-04-21 Saban Ventures Pty Limited Container with a frangible sealed access and a vapour permeable vent
US9027385B2 (en) 2008-06-30 2015-05-12 Saban Ventures Pty Limited Aerosol sensor
US9050385B2 (en) 2007-02-02 2015-06-09 Saban Ventures Pty Limited Methods of disinfection or sterilization
US9226495B2 (en) 2009-05-22 2016-01-05 Saban Ventures Pty Limited Disinfection aerosol, method of use and manufacture
WO2016064288A1 (en) 2014-10-22 2016-04-28 Gonçalves Helder Da Costa Sterilization device using hydrogen peroxide and ozone vaporized and combined through multiple capillary tubes
US20170304476A1 (en) 2016-01-13 2017-10-26 Ceramatec, Inc. Sterilization device and methods
WO2017218832A1 (en) 2016-06-17 2017-12-21 Sterifre Medical Inc. Sterilization, disinfection, sanitization, decontamination, and therapeutic devices, systems, and methods
US9849204B2 (en) 2016-01-13 2017-12-26 Sterio3, Llc Sterilization device and methods
WO2019084203A1 (en) 2017-10-25 2019-05-02 Sterifre Medical Inc. Devices, systems, and methods for sterilization, disinfection, sanitization and decontamination
USRE47582E1 (en) 2009-07-28 2019-08-27 Sterifre Medical, Inc. Free radical sterilization system and method
US20210232250A1 (en) 2015-09-24 2021-07-29 Lg Display Co., Ltd. Display device including touch screen function

Patent Citations (91)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO1988004939A1 (en) 1986-12-31 1988-07-14 American Sterilizer Company Method of decontaminating surfaces on or near living cells with vapor phase hydrogen peroxide
US4863688A (en) 1986-12-31 1989-09-05 American Sterilizer Company Method of decontaminating surfaces on or near living cells with vapor hydrogen peroxide
US5087418A (en) 1987-02-25 1992-02-11 Adir Jacob Process for dry sterilization of medical devices and materials
EP0298694A2 (en) 1987-07-06 1989-01-11 American Sterilizer Company Vapour flow-through systems
US4992247A (en) 1989-05-11 1991-02-12 Elopak Systems, A.G. Container sterilization system
WO1991005573A1 (en) 1989-10-11 1991-05-02 American Sterilizer Company Recirculation, vapor and humidity control in a sealable enclosure
US5173258A (en) 1989-10-11 1992-12-22 American Sterilizer Company Recirculation, vapor and humidity control in a sealable enclosure
US5209411A (en) 1990-09-27 1993-05-11 Cox Sterile Products, Inc. Decontamination of medical waste
US5445792A (en) 1992-03-13 1995-08-29 American Sterilizer Company Optimum hydrogen peroxide vapor sterlization method
US5508009A (en) 1992-03-13 1996-04-16 American Sterilizer Company Optimum hydrogen peroxide vapor sterilization system
US5534221A (en) 1992-03-13 1996-07-09 American Sterilizer Company Device and system for sterilizing objects
EP1557181A1 (en) 1994-04-28 2005-07-27 JOHNSON & JOHNSON MEDICAL, INC. Vapor sterilization using a non-aqueous source of hydrogen peroxide
US5578280A (en) 1995-04-28 1996-11-26 Americal Environmental Technologies, Inc. Ozone generator with a generally spherical corona chamber
EP0774263A1 (en) 1995-11-20 1997-05-21 Mdh Limited Method and apparatus for hydrogen peroxide vapor sterilization
US6156267A (en) 1996-02-16 2000-12-05 Steris Corporation Apparatus and method for real-time monitoring and control of anti-microbial processing
US6113851A (en) 1996-03-01 2000-09-05 Phygen Apparatus and process for dry sterilization of medical and dental devices and materials
WO1997047331A1 (en) 1996-06-14 1997-12-18 American Sterilizer Company Continuous-operation, closed-loop decontamination system and method
JP4088347B2 (en) 1996-06-14 2008-05-21 アメリカン ステリライザー カンパニー Continuously operating closed loop decontamination system and method
EP0906125A1 (en) 1996-06-14 1999-04-07 American Sterilizer Company Continuous-operation, closed-loop decontamination system and method
US5779973A (en) 1997-04-01 1998-07-14 Steris Corporation Vapor phase interstitial microbial decontamination of overwrapped IV bags
US5792435A (en) 1997-04-08 1998-08-11 Steris Corporation Vapor phase decontaminant isolator apparatus with integral vapor phase decontaminant generator system
US6077480A (en) 1997-06-19 2000-06-20 Steris Corporation Multiple flashpoint vaporization system
US6187266B1 (en) 1997-12-17 2001-02-13 Johnson & Johnson Medical, Inc. Integrated cleaning/sterilization process with lumen devices
US6073627A (en) 1998-07-30 2000-06-13 Medizone International, Inc. Apparatus for the application of ozone/oxygen for the treatment of external pathogenic conditions
US6329628B1 (en) 1998-12-10 2001-12-11 Polytechnic University Methods and apparatus for generating a plasma torch
US20020044883A1 (en) 1998-12-30 2002-04-18 Jacobs Paul T. Sterilization process using small amount of sterilant to determine the load
US20020068028A1 (en) 2000-10-31 2002-06-06 Hight H. Thomas Apparatus and method for ventilating endoscope soaking basins
GB2371986A (en) 2001-02-09 2002-08-14 Jacques Protic Sterilisation process
US7186374B2 (en) 2001-02-16 2007-03-06 Steris Inc. Vapor phase decontamination of containers
JP2002360672A (en) 2001-06-07 2002-12-17 Ishikawajima Harima Heavy Ind Co Ltd Hydrogen peroxide sterilizer
US7803315B2 (en) 2001-10-05 2010-09-28 American Sterilizer Company Decontamination of surfaces contaminated with prion-infected material with gaseous oxidizing agents
US20060027539A1 (en) 2003-05-02 2006-02-09 Czeslaw Golkowski Non-thermal plasma generator device
US20050063882A1 (en) 2003-09-16 2005-03-24 Steris Inc. Sensor for determining concentration of fluid sterilant
US20080014113A1 (en) * 2003-12-10 2008-01-17 Steris Inc. Ozone enhanced vaporized hydrogen peroxide decontamination method and system
US20050129571A1 (en) 2003-12-10 2005-06-16 Steris Inc. Ozone enhanced vaporized hydrogen peroxide decontamination method and system
US7091441B1 (en) 2004-03-19 2006-08-15 Polytechnic University Portable arc-seeded microwave plasma torch
US20050260097A1 (en) 2004-05-18 2005-11-24 Steris Inc. Sterilization device for sterilization of lumen devices
US20070221582A1 (en) 2004-11-30 2007-09-27 THE ADMINISTRATORS OF THE TULANE EDUCATIONAL FUND (a Louisiana non-profit corporation) Nebulizing treatment method
JP2006205085A (en) 2005-01-28 2006-08-10 Ngk Insulators Ltd Plasma processing apparatus
US8444919B2 (en) 2005-08-04 2013-05-21 Saban Ventures Pty Limited Space disinfection
US8658089B2 (en) 2005-08-04 2014-02-25 Saban Ventures Pty Limited Membrane concentrator
US8591807B2 (en) 2005-08-04 2013-11-26 Saban Ventures Pty Limited Membrane sterilization
US9241491B2 (en) 2005-08-04 2016-01-26 Saban Ventures Pty Limited Aerosol
US9192164B2 (en) 2005-08-04 2015-11-24 Saban Ventures Pty Ltd Membrane sterilization
US8591808B2 (en) 2005-08-04 2013-11-26 Saban Ventures Pty Limited Aerosol
US9138005B2 (en) 2005-08-04 2015-09-22 Saban Ventures Pty Limited Membrane concentrator
US8974737B2 (en) 2005-08-04 2015-03-10 Saban Ventures Pty Limited Space Disinfection
US20070274858A1 (en) 2006-02-25 2007-11-29 Childers James A Method and system for conducting vapor phase decontamination of sealable entities and their contents
US9050385B2 (en) 2007-02-02 2015-06-09 Saban Ventures Pty Limited Methods of disinfection or sterilization
US20080267819A1 (en) 2007-03-06 2008-10-30 Bacik Michael A Transportable decontamination unit and decontamination process
US8153078B2 (en) 2007-03-06 2012-04-10 Steris Inc. Transportable decontamination unit and decontamination process
WO2009005252A2 (en) 2007-06-29 2009-01-08 Renosem Co., Ltd. Methods of sterilization by hydrogen peroxide and ozone, and apparatus using the methods
KR100782040B1 (en) 2007-06-29 2007-12-04 주식회사 리노셈 Methods of sterilization by hydrogen peroxide and ozone, and apparatus using the methods
US20100272603A1 (en) 2007-07-10 2010-10-28 Goncalves Helder Da Costa Hydrogen peroxide sterilization process and device
US8115135B2 (en) 2008-02-14 2012-02-14 Adventix Technologies Inc. Plasma assisted oxygen decontaminant generator and sprayer
US7777151B2 (en) 2008-02-14 2010-08-17 Adventix Technologies Inc. Portable plasma sterilizer
US7621985B1 (en) 2008-05-24 2009-11-24 Adventix Technologies Inc. Plasma torch implemented air purifier
US9027385B2 (en) 2008-06-30 2015-05-12 Saban Ventures Pty Limited Aerosol sensor
US9010574B2 (en) 2008-06-30 2015-04-21 Saban Ventures Pty Limited Container with a frangible sealed access and a vapour permeable vent
US8668882B2 (en) 2008-08-15 2014-03-11 Saban Ventures Pty Limited Nebulizer manifold
US9333275B2 (en) 2008-08-15 2016-05-10 Saban Ventures Pty Limited Nebulizer manifold
US7880887B2 (en) 2008-08-29 2011-02-01 Phygen, Inc. Apparatus and method for measuring the concentration of gases in a sterilization chamber
US9226495B2 (en) 2009-05-22 2016-01-05 Saban Ventures Pty Limited Disinfection aerosol, method of use and manufacture
USD656622S1 (en) 2009-06-01 2012-03-27 Saban Ventures Pty Limited Bottle
US8551399B2 (en) 2009-07-06 2013-10-08 Medizone International, Inc. Healthcare facility disinfecting system
CA2735739A1 (en) 2009-07-06 2011-01-13 Medizone International Inc. Healthcare facility disinfecting process and system with oxygen/ozone mixture
WO2011003179A1 (en) 2009-07-06 2011-01-13 Medizone International Inc. Healthcare facility disinfecting process and system with oxygen/ozone mixture
US8758681B2 (en) 2009-07-28 2014-06-24 Czeslaw Golkowski Free radical sterilization system and method
US20110027125A1 (en) 2009-07-28 2011-02-03 Czeslaw Golkowski Free Radical Sterilization System and Method
US8221679B2 (en) 2009-07-28 2012-07-17 Czeslaw Golkowski Free radical sterilization system and method
USRE47582E1 (en) 2009-07-28 2019-08-27 Sterifre Medical, Inc. Free radical sterilization system and method
US20120277662A1 (en) 2009-07-28 2012-11-01 Czeslaw Golkowski Free Radical Sterilization System and Method
CA2767726A1 (en) 2009-09-30 2011-04-07 Tso3 Inc. Sterilization method and apparatus
US8636951B2 (en) 2010-01-18 2014-01-28 Medizone International, Inc. Bio-terrorism counteraction using ozone and hydrogen peroxide
WO2011085466A1 (en) 2010-01-18 2011-07-21 Medizone International Inc. Bio-terrorism counteraction using ozone and hydrogen peroxide
EP2525838A1 (en) 2010-01-18 2012-11-28 Medizone International Inc. Bio-terrorism counteraction using ozone and hydrogen peroxide
WO2011149188A2 (en) 2010-05-24 2011-12-01 Agency For Defense Development Apparatus and method for decontaminating and sterilizing chemical and biological agent
US8992829B2 (en) 2010-09-08 2015-03-31 Medizone International Inc. Sports equipment and facility disinfection
JP2014023596A (en) 2012-07-25 2014-02-06 Ihi Corp Sterilizer
US20140105783A1 (en) 2012-10-17 2014-04-17 Hantover, Inc. Deodorizing and sanitizing container
WO2014123280A1 (en) 2013-02-07 2014-08-14 한국 기초 과학 지원연구원 Microwave plasma sterilization device
US8977115B2 (en) 2013-03-08 2015-03-10 Steris Inc. Vaporizer with secondary flow path
US8927896B2 (en) 2013-10-15 2015-01-06 Adventix Technologies, Inc. Battery powered handheld air plasma spray
WO2016064288A1 (en) 2014-10-22 2016-04-28 Gonçalves Helder Da Costa Sterilization device using hydrogen peroxide and ozone vaporized and combined through multiple capillary tubes
US20210232250A1 (en) 2015-09-24 2021-07-29 Lg Display Co., Ltd. Display device including touch screen function
US20170304476A1 (en) 2016-01-13 2017-10-26 Ceramatec, Inc. Sterilization device and methods
US9849204B2 (en) 2016-01-13 2017-12-26 Sterio3, Llc Sterilization device and methods
WO2017218832A1 (en) 2016-06-17 2017-12-21 Sterifre Medical Inc. Sterilization, disinfection, sanitization, decontamination, and therapeutic devices, systems, and methods
US20190314535A1 (en) 2016-06-17 2019-10-17 Sterifre Medical Inc. Sterilization, disinfection, sanitization, decontamination, and therapeutic devices, systems, and methods
US11253620B2 (en) 2016-06-17 2022-02-22 Sterifre Medical, Inc. Sterilization, disinfection, sanitization, decontamination, and therapeutic devices, systems, and methods
WO2019084203A1 (en) 2017-10-25 2019-05-02 Sterifre Medical Inc. Devices, systems, and methods for sterilization, disinfection, sanitization and decontamination

Non-Patent Citations (14)

* Cited by examiner, † Cited by third party
Title
Advance Sterilization Products, Amendment Sterrad ® 50 Sterilizer K981625, dated Jan. 5, 1999 in 6 pages.
Attri et al. "Generation mechanism of hydroxyl radical species and its lifetime prediction during the plasma-initiated ultraviolet (UV) photolysis." Scientific Reports 5, Article No. 9332 (2015).
Ellie. The first ever digital UV sterlizing pod available at https://www.indiegogo.com/projects/ellie-the-first-ever-digital-uv-sterlizing-pod-baby-technology—2, retrieved from internet Apr. 6, 2017.
Golkowski, et al. "Hydrogen-peroxide-enhanced nonthermal plasma effluent for biomedical applications." IEEE Transactions on Plasma Science 40.8 (2012): 1984-1991.
Golkowski, et al. "In vitro and in vivo analysis of hydrogen peroxide-enhanced plasma-induced effluent for infection and contamination mitigation at research and medical facilities." Plasma Medicine 5 (2-4); 109-123 (2015).
Golkowski, et al. "Robust hydrogen peroxide enhanced plasma effluent for the clinical setting." International Conference on Plasma Science. vol. 26. 2011.
International Search Report and Written For PCT Application No. PCT/US18/57404, dated Jan. 11, 2019 in 13 pages.
International Search Report and Written Opinion for PCT Application No. PCT/US2017/037762, dated Nov. 20, 2017 in 21 pages.
Morrison, et al. "Rapid sterilization of cell phones using a novel portable non-thermal plasma device." Plasma Medicine 5.1, 57-70 (2015).
Plasmapp, Fast Low-Temerature Sterilization, downloaded from www.plasmapp.co.kr on Jul. 4, 2019 in 14 pages.
Plimpton, S. Reed, et al. "Chemical dosimetry of an indirect exposure non-thermal plasma device." IEEE, 2013.
Plimpton, S. Reed, et al. "Remote delivery of hydroxyl radicals via secondary chemistry of a nonthermal plasma effluent." Biotechnology and bioengineering 110.7 (2013): 1936-1944.
Sadowitz, Benjamin et al., A Novel Non-Thermal Plasma/Free radical Sterilization System for Burn Wound Disinfection, Burn Poster EAST 2013 Compatibility Mode, University of Colorado Denver, Anschutz Medical Campus, College of Engineering and Applied Science in 1 page.
Watts, Ashlee E., et al. "In vitro analysis of nonthermal plasma as a disinfecting agent." American journal of veterinary research, vol. 67, No. 12 (Dec. 2006): 2030-2035.

Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US12011512B2 (en) 2017-10-25 2024-06-18 Sterifre Medical, Inc. Devices, systems, and methods for sterilization, disinfection, sanitization and decontamination

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