WO2017218779A1 - Pressurizing aerosol cans - Google Patents

Pressurizing aerosol cans Download PDF

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Publication number
WO2017218779A1
WO2017218779A1 PCT/US2017/037685 US2017037685W WO2017218779A1 WO 2017218779 A1 WO2017218779 A1 WO 2017218779A1 US 2017037685 W US2017037685 W US 2017037685W WO 2017218779 A1 WO2017218779 A1 WO 2017218779A1
Authority
WO
WIPO (PCT)
Prior art keywords
product
compressed gas
charging
container
atmospheric pressure
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Ceased
Application number
PCT/US2017/037685
Other languages
French (fr)
Inventor
Daniel A. ABRAMOWICZ
Charles Anderson BOLTON
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Crown Packaging Technology Inc
Original Assignee
Crown Packaging Technology Inc
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Crown Packaging Technology Inc filed Critical Crown Packaging Technology Inc
Publication of WO2017218779A1 publication Critical patent/WO2017218779A1/en
Anticipated expiration legal-status Critical
Ceased legal-status Critical Current

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Classifications

    • BPERFORMING OPERATIONS; TRANSPORTING
    • B65CONVEYING; PACKING; STORING; HANDLING THIN OR FILAMENTARY MATERIAL
    • B65BMACHINES, APPARATUS OR DEVICES FOR, OR METHODS OF, PACKAGING ARTICLES OR MATERIALS; UNPACKING
    • B65B31/00Packaging articles or materials under special atmospheric or gaseous conditions; Adding propellants to aerosol containers
    • B65B31/003Adding propellants in fluid form to aerosol containers
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B65CONVEYING; PACKING; STORING; HANDLING THIN OR FILAMENTARY MATERIAL
    • B65BMACHINES, APPARATUS OR DEVICES FOR, OR METHODS OF, PACKAGING ARTICLES OR MATERIALS; UNPACKING
    • B65B31/00Packaging articles or materials under special atmospheric or gaseous conditions; Adding propellants to aerosol containers
    • B65B31/04Evacuating, pressurising or gasifying filled containers or wrappers by means of nozzles through which air or other gas, e.g. an inert gas, is withdrawn or supplied
    • B65B31/044Evacuating, pressurising or gasifying filled containers or wrappers by means of nozzles through which air or other gas, e.g. an inert gas, is withdrawn or supplied the nozzles being combined with a filling device
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B65CONVEYING; PACKING; STORING; HANDLING THIN OR FILAMENTARY MATERIAL
    • B65BMACHINES, APPARATUS OR DEVICES FOR, OR METHODS OF, PACKAGING ARTICLES OR MATERIALS; UNPACKING
    • B65B31/00Packaging articles or materials under special atmospheric or gaseous conditions; Adding propellants to aerosol containers
    • B65B31/04Evacuating, pressurising or gasifying filled containers or wrappers by means of nozzles through which air or other gas, e.g. an inert gas, is withdrawn or supplied
    • B65B31/046Evacuating, pressurising or gasifying filled containers or wrappers by means of nozzles through which air or other gas, e.g. an inert gas, is withdrawn or supplied the nozzles co-operating, or being combined, with a device for opening or closing the container or wrapper
    • B65B31/047Evacuating, pressurising or gasifying filled containers or wrappers by means of nozzles through which air or other gas, e.g. an inert gas, is withdrawn or supplied the nozzles co-operating, or being combined, with a device for opening or closing the container or wrapper the nozzles co-operating with a check valve in the opening of the container or wrapper
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B65CONVEYING; PACKING; STORING; HANDLING THIN OR FILAMENTARY MATERIAL
    • B65DCONTAINERS FOR STORAGE OR TRANSPORT OF ARTICLES OR MATERIALS, e.g. BAGS, BARRELS, BOTTLES, BOXES, CANS, CARTONS, CRATES, DRUMS, JARS, TANKS, HOPPERS, FORWARDING CONTAINERS; ACCESSORIES, CLOSURES, OR FITTINGS THEREFOR; PACKAGING ELEMENTS; PACKAGES
    • B65D83/00Containers or packages with special means for dispensing contents
    • B65D83/14Containers for dispensing liquid or semi-liquid contents by internal gaseous pressure, i.e. aerosol containers comprising propellant
    • B65D83/38Details of the container body
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B65CONVEYING; PACKING; STORING; HANDLING THIN OR FILAMENTARY MATERIAL
    • B65DCONTAINERS FOR STORAGE OR TRANSPORT OF ARTICLES OR MATERIALS, e.g. BAGS, BARRELS, BOTTLES, BOXES, CANS, CARTONS, CRATES, DRUMS, JARS, TANKS, HOPPERS, FORWARDING CONTAINERS; ACCESSORIES, CLOSURES, OR FITTINGS THEREFOR; PACKAGING ELEMENTS; PACKAGES
    • B65D83/00Containers or packages with special means for dispensing contents
    • B65D83/14Containers for dispensing liquid or semi-liquid contents by internal gaseous pressure, i.e. aerosol containers comprising propellant
    • B65D83/42Filling or charging means
    • B65D83/425Delivery valves permitting filling or charging
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B65CONVEYING; PACKING; STORING; HANDLING THIN OR FILAMENTARY MATERIAL
    • B65DCONTAINERS FOR STORAGE OR TRANSPORT OF ARTICLES OR MATERIALS, e.g. BAGS, BARRELS, BOTTLES, BOXES, CANS, CARTONS, CRATES, DRUMS, JARS, TANKS, HOPPERS, FORWARDING CONTAINERS; ACCESSORIES, CLOSURES, OR FITTINGS THEREFOR; PACKAGING ELEMENTS; PACKAGES
    • B65D83/00Containers or packages with special means for dispensing contents
    • B65D83/14Containers for dispensing liquid or semi-liquid contents by internal gaseous pressure, i.e. aerosol containers comprising propellant
    • B65D83/42Filling or charging means
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B65CONVEYING; PACKING; STORING; HANDLING THIN OR FILAMENTARY MATERIAL
    • B65DCONTAINERS FOR STORAGE OR TRANSPORT OF ARTICLES OR MATERIALS, e.g. BAGS, BARRELS, BOTTLES, BOXES, CANS, CARTONS, CRATES, DRUMS, JARS, TANKS, HOPPERS, FORWARDING CONTAINERS; ACCESSORIES, CLOSURES, OR FITTINGS THEREFOR; PACKAGING ELEMENTS; PACKAGES
    • B65D83/00Containers or packages with special means for dispensing contents
    • B65D83/14Containers for dispensing liquid or semi-liquid contents by internal gaseous pressure, i.e. aerosol containers comprising propellant
    • B65D83/60Containers for dispensing liquid or semi-liquid contents by internal gaseous pressure, i.e. aerosol containers comprising propellant with contents and propellant separated
    • B65D83/62Containers for dispensing liquid or semi-liquid contents by internal gaseous pressure, i.e. aerosol containers comprising propellant with contents and propellant separated by membranes, bags or the like

Definitions

  • the invention relates to systems and methods for filling and pressurizing a container for dispensing a product, and to the corresponding containers, and more particularly to containers that can be pressurized, such as by a consumer.
  • Conventional aerosol containers are usually pressurized by a volatile liquid propellant, which provides an adequate pressure for dispensing even after a portion of the product has been dispensed from the container.
  • Conventional aerosol containers may be configured such that, for example, the product and propellant are in contact, or the product is housed in a bag within the can while the propellant is housed outside the bag, or a piston separates the product from the propellant.
  • An example of the latter is EarthSafe Dispensing Technology, marketed by Crown Cork and Seal.
  • Aerosol cans are moving towards non-hydrocarbon propellants using compressed gas for many reasons, such as regulatory hurdles, consumer pressure for environmental reasons, etc.
  • compressed gas aerosols suffer from several disadvantages, including:
  • An aerosol recharging system can pressurize the container with air or other gas to provide internal pressure at the desired level, both initially upon first receiving the unpressurized container and then again after initial use.
  • the can is capable of being re-charged as many times as required to provide adequate internal pressure for effective dispensing until empty.
  • a user such as a post-purchase end-user, places the container on a charger and initiates a process in which an air pump or compressed gas canister pushes gas into the container to the designed pressure.
  • the container may have a more durable grommet (compared to conventional grommets) or a valve to interface with the pressurization system and to allow initial
  • the system may be employed for any product that is suitable for discharge by compressed gas propellants (creams, gels, fragrances, etc.).
  • compressed gas such as air, nitrogen, carbon dioxide, and the like, can be conventional.
  • the aerosol container can be filled on an unpressurized filling line (at atmospheric pressure) much like a beverage filling line, and preferably is shipped at an atmospheric or near atmospheric internal pressure.
  • atmospheric pressure at atmospheric pressure
  • near atmospheric pressure used herein refers to internal pressure that is insufficient for dispensing the product.
  • a system for pressurizing and handling a can includes the capability for an end-user to charge the can with a compressed gas.
  • the system includes: a base that is adapted for receiving a can that (i) houses a product and (ii) includes a means for injecting gas; and a compressed gas source, such as a pre-charged canister of compressed air, an air compressor, and/or an automatic or manual air pump, such that the can and (preferably) the compressed gas source are adapted for an end user to repeatedly charge the can with the compressed gas source.
  • a method includes the steps of (a) receiving a product in a can at approximately atmospheric pressure; (b) charging the can with a compressed gas after the receiving step (a); and (c) charging the can with a compressed gas again after the charging step (b), and preferably includes the steps of filling the product into the can at atmospheric pressure and shipping the can after the filling step and before the receiving step (a) while the can contains approximately atmospheric pressure. Further, the method can include the step of an end user dispensing at least a portion of the product after the charging step (b) such that the charging step (c) recharges the can.
  • the can preferably includes a bottom, a sidewall, a top, and a dispensing valve affixed to the top, and the means for injecting gas includes at least one of a grommet and a valve on the bottom of the container.
  • the can may be of any type, such as any one of a drawn and ironed metal can, an impact extruded metal can, a metal can having a longitudinal welded seam and a seamed-on bottom, and a plastic container, and preferably includes or is formed of a conventional aluminum alloy or steel product, such as tinplate.
  • the can is pressurized to less than 6 bar, more preferably to between 2 and 5 bar, and in one embodiment to approximately 3 bar. Accordingly, the can may such that DOT shipping regulations for pressurized containers, such as those relating to DOT-2P and DOT-2Q, do not apply.
  • Figure 1 shows a cross section view of an example of an aerosol container having a grommet in its bottom.
  • Figure 2 is a schematic of a charging station.
  • An aerosol container includes a grommet or valve through which a compressed gas can be inserted.
  • an aerosol container 1 includes a body 30, a cone 40, a valve cup 70, and a valve 5.
  • Body 30 includes a sidewall and a base 20.
  • the base 20 defines a charging port or aperture 25, through which propellant is inserted into the aerosol container 1.
  • the propellant (not shown in the figures) is a compressed gas, preferably compressed air.
  • Base 20 defines a charging port or aperture 25, through which compressed gas is inserted into the aerosol container 1.
  • the internal pressure is used to drive the product in the aerosol container 1 out of the valve 5, when it is opened for use by a consumer.
  • Aerosol container 1 in the embodiment shown includes a bag 50 inside body 30.
  • Exemplary bag 50 has a sidewall 53 that includes ribs 55 around the circumference of the bag 50.
  • the inside of the bag 50 defines a product compartment and the space outside bag 50, between the bag 50 and the body 30, defines a compartment in which compressed gas resides, after it is introduced via the charging port 25.
  • the product which is not shown in Figure 1, can be any product suitable for dispensing in an aerosol container, such as creams, gels, fragrances, etc.
  • the compressed air compartment is sealed by bottom 20 and a grommet 26.
  • the present invention is not limited to a container having a bag, nor to the grommet or the location of the grommet shown Figure 1.
  • the present invention encompasses any container or valve structure that is consistent with or defined in the claims, including without limitation structures in which the compressed gas is in contact with the product and any configuration (such as a piston, bag, and the like) in which the compressed gas is separated from the product. Further, the present invention encompasses any means for charging a container with compressed gas by a consumer.
  • the top of container 1 includes a valve 5, which preferably is conventional, that is mounted in valve cup 70 and is in fluid communication with the product.
  • Valve cup 70 is attached to cone 40 by conventional means.
  • Cone 40 is seamed to a neck 57 of body 30.
  • FIG. 2 shows a schematic of a charging/recharging device 1 10.
  • Device 1 10 includes a cup 120 and a compressed gas delivery system 140.
  • Cup 120 includes a base 122 and a sidewall 124 that forms a recess 126 for receiving the lower portion of can body 30.
  • Delivery system 140 includes a compressed gas source 142, a communication channel 144, and an interface 146, preferably male, such as a needle that can engage the grommet of valve of the container.
  • Delivery system 140 encompasses any source of compressed gas, including without limitation an air pump or compressor, a canister of compressed air or other compressed gas, and the like.
  • the compressed gas canister can be replaceable, or the delivery system or recharging device can be single-use and disposable.
  • device 1 10 may be matched to the container or container requirements, such that delivery system 140 pressurizes container 1 to a desired or predetermined pressure, which can be chosen to optimize the delivery and spray performance, and/or to minimize the material used in the container.
  • aerosol can 1 has a maximum internal pressure that is lower than that of a conventional aerosol can, which lower pressure enables lightweighting compared with conventional aerosol cans.
  • the predetermined pressure at which aerosol can is pressurized by compressed gas system 140 may be chosen according to both spray performance and can lightweighting according to factors that will be understood by persons familiar with aerosol can technology.
  • device 110 and can 1 work together, device
  • connection or interlocks can be key and key way slots that align only when device 1 10 is matched with the appropriate container 1.
  • an electronic or other non-physical lock out may be used. In this way, sufficient pressure can be safely achieved without undue overfilling.
  • a consumer engages container 1 with device 110 by inserting the can into recess 126, according to mechanical or electronic interlocks that may be provided.
  • delivery system 140 releases gas from compressed gas source 142.
  • System 140 may be matched to a particular container, such that system 140 is capable of only pressurizing a container to a single predetermined and designed pressure.
  • system 140 may be interlocked and controlled to recognize one or more particular containers, and in this way provide a
  • compressed gas source can include an overpressure release valve to prevent overfilling.
  • a manufacturer can fill a product into a can on a conventional filling line at atmospheric or near atmospheric pressure and then (preferably) seal the container such that it is for pressurizing.
  • the filled container can then be shipped with only atmospheric or near atmospheric pressure inside.
  • Embodiments of aerosol containers according to the present invention can be smaller and deliver the same amount of product, as today approximately 40% of the container volume is used for the compressed air propellant.
  • DOT and other testing requirements for cans would be substantially simplified, allowing lightweighting of containers, as non-pressurized containers or containers having near atmospheric pressure would be used in shipment.
  • the containers would not be subject to DOT shipping regulations, such as those pertaining to DOT-2Q and DOT-2P regulations.
  • Containers in use would be pressurized to lower pressures reducing container structural requirements as well. This is because only the pressure required for one use is needed (perhaps 3 bar vs. 7-8 bar that is sometimes used to assure adequate pressure at the point at which most of the product has already been dispensed).
  • body 30 cold be formed by a conventional plastic.

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  • Chemical & Material Sciences (AREA)
  • Dispersion Chemistry (AREA)
  • Engineering & Computer Science (AREA)
  • Mechanical Engineering (AREA)
  • Containers And Packaging Bodies Having A Special Means To Remove Contents (AREA)

Abstract

A system and corresponding method for charging an aerosol can (1) with a compressed gas charge includes a base (110) that is adapted for receiving a can (1) that (i) houses a product and (ii) includes a means for injecting gas, such as a grommet or valve (25) on the bottom of the container (1), and includes a compressed gas source (142), such as a pre-charged canister of compressed air, and air compressor, and/or an automatic or manual air pump. The can (1) may be filled with at atmospheric pressure and then shipped while the can (1) contains approximately atmospheric pressure. Upon receipt of the can (1), a user may charge the can (1) with a compressed gas and repeat charging if needed after some of the product has been dispensed.

Description

PRESSURIZING AEROSOL CANS
CROSS REFERENCE TO RELATED APPLICATIONS
[0001] This application claims priority to United States Application No. 62/351,413, filed June 17, 2016, the contents of which are incorporated herein by reference in their entirety.
BACKGROUND
[0002] The invention relates to systems and methods for filling and pressurizing a container for dispensing a product, and to the corresponding containers, and more particularly to containers that can be pressurized, such as by a consumer.
[0003] Many household products are dispensed from pressurized containers through a dispensing valve, which containers are generally referred to as "aerosol containers."
Conventional aerosol containers are usually pressurized by a volatile liquid propellant, which provides an adequate pressure for dispensing even after a portion of the product has been dispensed from the container.
[0004] When filling conventional aerosol products, a manufacturer fills a can with the product and promptly charges it with the volatile propellant. The filled can, in a ready-to-use form, is then shipped according to U.S. Department of Transportation rules. For example, container designs given a DOT-2Q designation must be rated to withstand 270 psi and container designs given a DOT-2P designation must be rated to withstand 240 psi.
[0005] Conventional aerosol containers may be configured such that, for example, the product and propellant are in contact, or the product is housed in a bag within the can while the propellant is housed outside the bag, or a piston separates the product from the propellant. An example of the latter is EarthSafe Dispensing Technology, marketed by Crown Cork and Seal.
[0006] Aerosol cans are moving towards non-hydrocarbon propellants using compressed gas for many reasons, such as regulatory hurdles, consumer pressure for environmental reasons, etc. But compressed gas aerosols suffer from several disadvantages, including:
- Internal can pressure decreases over time as the compressed air is depleted with use.
- A significant volume of the container is required for the non-hydrocarbon propellant (roughly 40% in typical aerosol applications).
- Unlike hydrocarbons which re-pressurize the container each time, the spray and/or delivery performance of compressed gas propellant based aerosols changes over time. SUMMARY
[0007] An aerosol recharging system can pressurize the container with air or other gas to provide internal pressure at the desired level, both initially upon first receiving the unpressurized container and then again after initial use. The can is capable of being re-charged as many times as required to provide adequate internal pressure for effective dispensing until empty. A user, such as a post-purchase end-user, places the container on a charger and initiates a process in which an air pump or compressed gas canister pushes gas into the container to the designed pressure. The container may have a more durable grommet (compared to conventional grommets) or a valve to interface with the pressurization system and to allow initial
pressurization and subsequent re-pressurization, as needed. The system may be employed for any product that is suitable for discharge by compressed gas propellants (creams, gels, fragrances, etc.). The compressed gas, such as air, nitrogen, carbon dioxide, and the like, can be conventional.
[0008] The aerosol container can be filled on an unpressurized filling line (at atmospheric pressure) much like a beverage filling line, and preferably is shipped at an atmospheric or near atmospheric internal pressure. For example, it may be advantageous for thin walled containers to provide some pressurization merely for stiffening the container structure during shipping. In this regard, "near atmospheric pressure" used herein refers to internal pressure that is insufficient for dispensing the product.
[0009] Accordingly, a system for pressurizing and handling a can includes the capability for an end-user to charge the can with a compressed gas. The system includes: a base that is adapted for receiving a can that (i) houses a product and (ii) includes a means for injecting gas; and a compressed gas source, such as a pre-charged canister of compressed air, an air compressor, and/or an automatic or manual air pump, such that the can and (preferably) the compressed gas source are adapted for an end user to repeatedly charge the can with the compressed gas source.
[0010] A method includes the steps of (a) receiving a product in a can at approximately atmospheric pressure; (b) charging the can with a compressed gas after the receiving step (a); and (c) charging the can with a compressed gas again after the charging step (b), and preferably includes the steps of filling the product into the can at atmospheric pressure and shipping the can after the filling step and before the receiving step (a) while the can contains approximately atmospheric pressure. Further, the method can include the step of an end user dispensing at least a portion of the product after the charging step (b) such that the charging step (c) recharges the can. [0011] For the system and the method, the can preferably includes a bottom, a sidewall, a top, and a dispensing valve affixed to the top, and the means for injecting gas includes at least one of a grommet and a valve on the bottom of the container. The can may be of any type, such as any one of a drawn and ironed metal can, an impact extruded metal can, a metal can having a longitudinal welded seam and a seamed-on bottom, and a plastic container, and preferably includes or is formed of a conventional aluminum alloy or steel product, such as tinplate.
[0012] Preferably the can is pressurized to less than 6 bar, more preferably to between 2 and 5 bar, and in one embodiment to approximately 3 bar. Accordingly, the can may such that DOT shipping regulations for pressurized containers, such as those relating to DOT-2P and DOT-2Q, do not apply.
BRIEF DESCRIPTION OF THE DRAWINGS
[0013] Different embodiments of the present invention will now be described, by way of example only, with reference to the accompanying drawings, in which:
[0014] Figure 1 shows a cross section view of an example of an aerosol container having a grommet in its bottom.
[0015] Figure 2 is a schematic of a charging station.
DETAILED DESCRIPTION OF ILLUSTRATIVE EMBODIMENTS
[0016] An aerosol container includes a grommet or valve through which a compressed gas can be inserted. As illustrated in Figure 1, an aerosol container 1 includes a body 30, a cone 40, a valve cup 70, and a valve 5. Body 30 includes a sidewall and a base 20.
[0017] The base 20 defines a charging port or aperture 25, through which propellant is inserted into the aerosol container 1. The propellant (not shown in the figures) is a compressed gas, preferably compressed air. Base 20 defines a charging port or aperture 25, through which compressed gas is inserted into the aerosol container 1. The internal pressure is used to drive the product in the aerosol container 1 out of the valve 5, when it is opened for use by a consumer.
[0018] Aerosol container 1 in the embodiment shown includes a bag 50 inside body 30. Exemplary bag 50 has a sidewall 53 that includes ribs 55 around the circumference of the bag 50. The inside of the bag 50 defines a product compartment and the space outside bag 50, between the bag 50 and the body 30, defines a compartment in which compressed gas resides, after it is introduced via the charging port 25. The product, which is not shown in Figure 1, can be any product suitable for dispensing in an aerosol container, such as creams, gels, fragrances, etc. [0019] The compressed air compartment is sealed by bottom 20 and a grommet 26. The present invention is not limited to a container having a bag, nor to the grommet or the location of the grommet shown Figure 1. Rather, the present invention encompasses any container or valve structure that is consistent with or defined in the claims, including without limitation structures in which the compressed gas is in contact with the product and any configuration (such as a piston, bag, and the like) in which the compressed gas is separated from the product. Further, the present invention encompasses any means for charging a container with compressed gas by a consumer.
[0020] The top of container 1 includes a valve 5, which preferably is conventional, that is mounted in valve cup 70 and is in fluid communication with the product. Valve cup 70 is attached to cone 40 by conventional means. Cone 40 is seamed to a neck 57 of body 30.
[0021] Figure 2 shows a schematic of a charging/recharging device 1 10. Device 1 10 includes a cup 120 and a compressed gas delivery system 140. Cup 120 includes a base 122 and a sidewall 124 that forms a recess 126 for receiving the lower portion of can body 30. Delivery system 140 includes a compressed gas source 142, a communication channel 144, and an interface 146, preferably male, such as a needle that can engage the grommet of valve of the container.
[0022] Delivery system 140 encompasses any source of compressed gas, including without limitation an air pump or compressor, a canister of compressed air or other compressed gas, and the like. The compressed gas canister can be replaceable, or the delivery system or recharging device can be single-use and disposable. Optionally, device 1 10 may be matched to the container or container requirements, such that delivery system 140 pressurizes container 1 to a desired or predetermined pressure, which can be chosen to optimize the delivery and spray performance, and/or to minimize the material used in the container. Because the can is pressurized as described, aerosol can 1 has a maximum internal pressure that is lower than that of a conventional aerosol can, which lower pressure enables lightweighting compared with conventional aerosol cans. The predetermined pressure at which aerosol can is pressurized by compressed gas system 140 may be chosen according to both spray performance and can lightweighting according to factors that will be understood by persons familiar with aerosol can technology. For an example of means for making device 110 and can 1 work together, device
1 10 and container 1 can be physically designed to connect or interlock together, and male interface 146 can be physically designed to connect or interlock together with grommet 36 of the corresponding valve. The connections or interlocks, for example, can be key and key way slots that align only when device 1 10 is matched with the appropriate container 1. Alternatively, an electronic or other non-physical lock out may be used. In this way, sufficient pressure can be safely achieved without undue overfilling.
[0023] Preferably, a consumer engages container 1 with device 110 by inserting the can into recess 126, according to mechanical or electronic interlocks that may be provided. Upon interface 146 engaging the grommet or vale and satisfying any interlocks and safety conditions, delivery system 140 releases gas from compressed gas source 142. System 140 may be matched to a particular container, such that system 140 is capable of only pressurizing a container to a single predetermined and designed pressure. Alternatively, system 140 may be interlocked and controlled to recognize one or more particular containers, and in this way provide a
predetermined and designed pressure that matches the particular container. Alternatively, compressed gas source can include an overpressure release valve to prevent overfilling.
[0024] To manufacture the package, a manufacturer can fill a product into a can on a conventional filling line at atmospheric or near atmospheric pressure and then (preferably) seal the container such that it is for pressurizing. The filled container can then be shipped with only atmospheric or near atmospheric pressure inside. The inventors believe that the above configurations and processes would reduce the cost and complexity of aerosol can filling operations, as they could resemble beverage filling operations, as well as the following advantages:
- Embodiments of aerosol containers according to the present invention can be smaller and deliver the same amount of product, as today approximately 40% of the container volume is used for the compressed air propellant.
- DOT and other testing requirements for cans would be substantially simplified, allowing lightweighting of containers, as non-pressurized containers or containers having near atmospheric pressure would be used in shipment. In preferred embodiments, the containers would not be subject to DOT shipping regulations, such as those pertaining to DOT-2Q and DOT-2P regulations.
- Containers in use would be pressurized to lower pressures reducing container structural requirements as well. This is because only the pressure required for one use is needed (perhaps 3 bar vs. 7-8 bar that is sometimes used to assure adequate pressure at the point at which most of the product has already been dispensed).
- The present invention could enable more widespread use of less expensive plastic aerosols which do not have the barrier performance to retain pressure of long time periods. In that regard, body 30 cold be formed by a conventional plastic. - Indoor are quality is improved because compressed gas is used in place of a conventional propellant, such as a volatile hydrocarbon compounds including propane, butane, isobutene, DME, and methyl ethyl ether.

Claims

What is Claimed:
1. A method for filling and using a product in an aerosol can, comprising the steps of: a. filling a product into a can at atmospheric pressure;
b. shipping the can after the filling step (a) while the can contains approximately atmospheric pressure;
c. charging the can with a compressed gas after the shipping step (b); and
d. charging the can after a portion of the product has been dispensed after the charging step (c).
2. A method for delivering product in an aerosol can, comprising the steps of:
a. filling a product into a can at atmospheric pressure;
b. shipping the can after the filling step (a) while the can contains approximately atmospheric pressure; wherein the can is adapted for being charged with a compressed gas after the shipping step (b); and the can is adapted for being recharged after a portion of the product has been dispensed after a first charge.
3. A method for pressurizing a can having a product, comprising the steps of:
a. receiving a product in a can at approximately atmospheric pressure;
b. charging the can with a compressed gas after the receiving step (a); and
d. charging the can again after the charging step (b).
4. The method of any one of claims 1 through 3 further comprising the step of an end user dispensing at least a portion of the product after the charging step (b) such that the charging step (c) recharges the can.
5. A system for charging an aerosol can with a compressed gas charge, the system comprising:
a base that is adapted for receiving a can that (i) houses a product and (ii) includes a means for injecting gas, such as a grommet or valve on the bottom of the container;
a compressed gas source, such as a pre-charged canister of compressed air, and air compressor, and/or an automatic or manual air pump;
whereby the can is adapted for an end user to repeatedly charge the can with the compressed gas source.
6. The method or system of any of the preceding claims wherein the can includes a bottom, a sidewall, a top, and a dispensing valve affixed to the top.
7. The method or system of any of the preceding claims wherein the bottom includes a reusable grommet or a filling valve.
8. The method or system of any of the preceding claims wherein the can is any one of a drawn and ironed metal can, an impact extruded metal can, a metal can having a longitudinal welded seam and a seamed-on bottom, and a plastic container.
9. The method or system of any of the preceding claims wherein the metal can comprises aluminum or steel.
10. The method or system of any of the preceding claims wherein the can is pressurized to less than 6 bar.
1 1. The method or system of any of the preceding claims wherein the can is pressurized to between 2 and 5 bar.
12. The method or system of any of the preceding claims wherein the can is pressurized to approximately 3 bar.
13. The method or system of any of the preceding claims wherein shipping is such that DOT shipping regulations for pressurized containers, such as those relating to DOT-2P and DOT-2Q, do not apply.
PCT/US2017/037685 2016-06-17 2017-06-15 Pressurizing aerosol cans Ceased WO2017218779A1 (en)

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US12291390B2 (en) 2019-12-19 2025-05-06 Thomas M. Risch System and method for a reusable dispensing container
US11447326B2 (en) 2019-12-19 2022-09-20 Thomas M. Risch System and method for a reusable dispensing container
DE102021114340A1 (en) * 2021-06-02 2022-12-08 Adolf Würth GmbH & Co. KG Refillable dispenser can with refill valve and outlet valve as well as pouch for absorbing the active ingredient

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US5462099A (en) * 1994-01-28 1995-10-31 S. C. Johnson & Son, Inc. System and method for pressurizing dispensing containers
US20010013379A1 (en) * 1999-12-22 2001-08-16 Jean-Pierre Yquel System comprising both a receptacle and apparatus enabling it to be filled with compressed air
US20050016622A1 (en) * 2003-07-22 2005-01-27 Thomas M. Risch Pressurizing system for a dispensing container

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US4197884A (en) * 1975-12-08 1980-04-15 Dispenser Corporation Airless sprayer and pressurizing system
WO1991001257A1 (en) * 1989-07-25 1991-02-07 Plum Technology Pty. Ltd. Pressurizable product dispenser
US5462099A (en) * 1994-01-28 1995-10-31 S. C. Johnson & Son, Inc. System and method for pressurizing dispensing containers
US20010013379A1 (en) * 1999-12-22 2001-08-16 Jean-Pierre Yquel System comprising both a receptacle and apparatus enabling it to be filled with compressed air
US20050016622A1 (en) * 2003-07-22 2005-01-27 Thomas M. Risch Pressurizing system for a dispensing container

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