1. Field of the Invention
Embodiments of the invention relate to snap fitment systems and valve systems for pressurized or non-pressurized containers and more particularly to plastic snap fitment systems and valve systems for use with aerosol systems or the like.
2. State of the Art
Pressurized bottles and containers are used in many different industries. One of the most widely known uses of pressurized bottles in commercial markets includes aerosol bottles and containers. Aerosol bottles and containers generally hold pressurized gases, gases and liquids, or liquids.
Conventional aerosol bottles are constructed of one or more metals and are typically found in a cylindrical shape which may assist in supporting the pressure inside the aerosol bottle. Closure fitments, such as pumps, valves, triggers, or other devices may be attached to an aerosol bottle to close the bottle. The closure fitments are typically sealed to the rim or neck of the aerosol bottle such that they cannot be easily removed.
Increasing costs of metal and difficulties in recycling pressurized metal containers have made it desirable to develop other types of containers, such as plastic containers, and closures systems for such containers. However, the mixture of plastic and metal parts in valve systems for such containers may be undesirable. Trends in sustainability of resources have also increased the desire to produce commercial components that are recyclable. Therefore, it would be advantageous to develop closures and valve systems that may be used with plastic bottles or containers and especially with plastic bottles or containers that may be pressurized or used for aerosol delivery systems. It may also be desirable to produce an all plastic closure and/or valve system for such containers.
According to embodiments of the invention, a snap fitment system may be used to connect a valve, pump, spray device, or other device to a container such as a bottle. The snap fitment system may include one or more compression latches incorporated with a valve body. The compression latches may extend or flex to allow the snap fitment system to fit over a container and may snap into place with a corresponding fitment on the container. The compression latches may secure the snap fitment system to the container such that once the compression latches have engaged a portion of the container the snap fitment system is difficult to remove from the container.
According to other embodiments of the invention, a valve system may include a valve body, a valve housing, an upper valve stem and a lower valve stem. The valve body may be connected to the valve housing, forming an interior space between the valve body and valve housing. The upper valve stem may extend through the valve body and partially into the interior space formed by the valve body and the valve housing. The lower stem may be contained within the interior space as well and may be in contact with the upper stem. Compression of the upper stem may move the lower stem in the interior space. One or more ribs or other features in the valve housing may break a seal between the lower stem and an interior surface of the valve housing, allowing product to escape through the valve. According to embodiments of the invention, the valve system may be attached to a container such as an aerosol container.
In still other embodiments of the invention, a valve system may include a valve housing and valve body integrated in a single piece. A top retainer may be assembled with the valve body and may enclose an upper valve stem and a lower valve stem in the valve body. Activation of the upper valve stem may break one or more seals in the valve system, allowing product to pass through the valve.
According to other embodiments of the invention, the valve body may include an interior space for receiving a portion of an upper valve stem and a lower valve stem. The valve system may be connected to a container and pressure in the container may prevent the valve stems from falling out of the valve body. In some embodiments of the invention, pressure from inside the container exerts a force on the lower stem, keeping the lower stem in a sealing position with respect to the valve body until a force acting on the upper valve stem moves the lower valve stem over one or more seal breaking features, allowing product to escape from the container through the valve system. In other embodiments, a tube retainer or other device may be used to close the interior space of the valve body and help to retain the valve stems.
According to other embodiments of the invention, a valve system may be configured such that the valve system may be attached to a container before filling, pressurizing, or both filling and pressurizing the container to which the valve system is attached. In some embodiments of the invention, a valve body and a retainer may be connected, the valve body including a stem at least partially in an interior space of the valve body and the retainer supporting a fill valve. Pressure applied to the stem may act to open the fill valve allowing a container to be filled or pressurized.
In still other embodiments of the invention, snap fitment systems and valve systems according to embodiments of the invention may be formed of plastic and may be used with plastic containers, providing all-plastic alternatives to conventional valve systems.
While the specification concludes with claims particularly pointing out and distinctly claiming particular embodiments of the present invention, various embodiments of the invention can be more readily understood and appreciated by one of ordinary skill in the art from the following descriptions of various embodiments of the invention when read in conjunction with the accompanying drawings in which:
According to embodiments of the invention, a snap fitment system may be used to attach a closure, pump, trigger, or other device to a pressurized bottle. While various embodiments of the invention are described with respect to a closure being attached to a bottle or container, it is understood that a closure may include, but is not limited to, pumps, triggers, distribution means, valves, or other devices.
According to embodiments of the invention, a snap fitment system may include a valve body 500 attached to a bottle 100. In some embodiments of the invention, a valve body 500 may include one or more compression latches 510 incorporated with the valve body 500 as illustrated in
As illustrated in
The valve body 500 illustrated in
A side cross-sectional view of a compression latch 510 according to various embodiments of the invention is illustrated in
A valve body 500 according to various embodiments of the invention may be fitted to a container 100 by snapping one or more compression latches 510 over one or more container flanges 110. For example, as illustrated in
Once the finger 516 of a compression latch 510 is positioned under a container flange 110 the valve body 500 may be difficult to remove from the container 100. The application of force to the bottom of the exterior skirt 504 of the valve body 500 in a direction away from the top of the container 100 may cause the container flange 110 to exert a force on the fingers 516 of the compression latch 510 which may flex the compression latch 510 and prevent the valve body 500 from being removed from the container 100. Similarly, when pressure inside the container 100 exerts a force against the interior cup 502 of the valve body 500, movement of the interior cup 502 causes flexion of a compression latch 510 creating a force between the finger 516 and the container flange 110 which force helps to retain the valve body 500 on the container 100. Thus, as pressure inside a container 100 increases, the fingers 516 of the compression latch 510 will lock to the container flange 110 with more force.
The compression latches 510 of the valve body 500 according to various embodiments of the invention may allow a plastic valve body 500 to be connected to a plastic container 100 for use with aerosol valves or pressurized containment and delivery systems. The compression latches 510 of the valve body 500 may also be used as an attachment system for non-pressurized containers 100.
According to some embodiments of the invention, the valve body 500 may include a single component as illustrated in
According to embodiments of the invention, a snap-fitment system may be used to attach a closure, pump, trigger, valve or other device to a pressurized bottle. For example, in some embodiments of the invention, a valve system may be attached to a container 100 using a snap fitment system. The valve system incorporated with the snap fitment system may be a traditional valve system or may be made completely of plastic or non-metal parts.
As illustrated in
The valve system 200 illustrated in
The upper stem 230 of the valve system 200 may be positioned partially in an interior space of the valve housing 210 and partially projecting through the valve body 500 as illustrated in
The lower stem 220 may include one or more lower stem skirt seals 222 which seal against the interior wall of the valve housing 210 as illustrated in
According to various embodiments of the invention, the lower stem 220 may be pushed down over the ribs 250 of the valve housing 210 by movement of the upper stem 230. Pressure applied to the top of the upper stem 230 pushes the lower stem 220 downward toward the ribs 250 of the valve housing 210. As the lower stem skirt seal 222 meets the ribs 250, the ribs break the seal between the lower stem skirt seal 222 and the interior wall of the valve housing 210. Contents in the container 100 may escape from the container 100 through the break in the seal between the lower stem 220 and the valve housing 210 and into the interior space between the lower stem 220 and upper stem 230. The contents in this interior space may pass through the one or more openings 236 in the upper stem 230 and through the upper stem channel 238. When pressure on the upper stem 230 is released, pressure inside the container 100 may force the lower stem 220 off of the ribs 250, thereby re-sealing the valve system 200 and stopping the flow of contents from the container 100 through the upper stem 230. In a pressurized system, such as an aerosol system, the pressure of the contents of the container 100 may be sufficient to hold the valve system 200 in a closed position as illustrated in
According to various embodiments of the invention, the valve housing 210, the lower stem 220, and the upper stem 230 may be made of plastic, metal, glass, a composite material, or any combination thereof.
According to other embodiments of the invention, the valve housing may be incorporated into the valve body 500 as illustrated in
According to embodiments of the invention, the valve system 200 illustrated in
According to various embodiments of the invention, the ribs 250 in the valve housings 210 or valve bodies 500 may be substituted with channels such that the channels form depressions in the valve housing 210 or valve body 500. The use of channels in the place of the ribs 250 allows contents of the container to pass through the channels into an interior space between the lower stem 220 and upper stem 230 when the lower stem skirt seal 222 passes over the channels. The use of channels rather than ribs 250 prevents repeated deformation of the lower stem skirt seal 222 over the use of the valve system 200 such that the lower stem skirt seal 222 may better retain its shape and seal the contents of the container 100 within the container when the lower stem 220 and upper stem 230 are not activated.
According to other embodiments of the invention, a valve system 300 may be configured as illustrated in
According to embodiments of the invention, a valve system 300 may include an upper stem 330, a lower stem 320 and a tube retainer 400 as illustrated in
The lower stem 320 may be positioned on an interior portion of the valve body 500. The lower stem 320 may include a lower stem skirt seal 322. The lower stem skirt seal 322 may provide a seal between the lower stem 320 and an interior wall of the valve body 500. The interior valve body 500 space defined between the lower stem skirt seal 322 and the upper stem skirt seal 332 may form a chamber through which product may pass.
A tube retainer 400 may be positioned in a tube retainer opening 590 in the valve body 500 as illustrated in
A dip tube (not shown) may be assembled into the tube retainer channel 440 if desired and in accordance with conventional dip tube assembly practices.
According to some embodiments of the invention, the valve body 500 and valve system 300 may be attached to a container 100 containing pressurized contents. The pressure in the container 100 is exerted on the lower stem 320 closest to the tube retainer 440. The pressure on the lower stem 320 pushes the lower stem 320 upwards against the upper stem legs 334 of the upper stem 330, which in turn pushes the upper stem 330 against the valve body 500. When sufficient force is applied to the upper stem 330 to overcome the pressure from the pressurized contents in the container 100, the upper stem 330 pushes the lower stem 320 downwards such that the lower stem skirt seal 322 passes the one or more channels 450. Pressurized contents of the container 100 may pass through the one or more channels 450 past the lower stem skirt seal 322, through the openings 336 in the upper stem 330 and out the upper stem channel 338. Release of the force on the upper stem 330 removes the barrier to upward movement of the lower stem 320, allowing the lower stem 320 to be moved upwards until the lower stem skirt seal 322 is above the one or more channels 450, stopping the flow of the contents of the container through the valve system 300.
According to embodiments of the invention, a valve system 300 and valve body 500 may be assembled in a single unit for assembly to a container 100 in later processes. For example, a valve body 500 and valve system 200 as illustrated in
The embodiments of the invention illustrated in
According to various embodiments of the invention, the valve systems 200 and 300 may be made of all plastic parts. The parts of the valve systems 200 and 300 may be produced using molding techniques as known. Various plastics and/or resins may be used to produce the components of the valve systems 200 and 300.
In other embodiments of the invention, the valve system parts may be made of plastic, metal, composite, or other materials, or combinations thereof. In addition, one or more metal or plastic springs may be used in conjunction with the valve systems 200 and 300. For example, in the valve system 300, a spring may be positioned over the stop 430 between the tuber retainer 440 and the lower stem 320. The spring (not shown) may be compressed when the lower stem 320 is forced downward by a force applied to the upper stem 330 such that when the force on the upper stem 330 is released, the spring applies a force against the lower stem 320 to return the lower stem 320 into a position that prevents the transport of contents of the container past the lower stem seal 322. In this manner, a spring may assist with the closing of the valve system 300 and/or increase the amount of force required to activate or open the valve system 300.
According to other embodiments of the invention, a valve system may include a valve body 810, a stem 820, a retainer 830, and a fill valve 840 as illustrated in the valve system 800 of
According to some embodiments of the invention, the valve body 810 may be the same as or similar to the valve bodies illustrated in
A valve body 810 may include a stem opening through which a stem 820 may extend from an interior portion of the valve body 810 outside the valve body 810. The valve body 810 may also include a stem seat portion 812. A portion of a stem 820 may fit within the stem seat portion 812 of the valve body 810 to form a valve in the valve system 800. In some embodiments of the invention, the stem seat portion 812 of the valve body 810 may be positioned at an end of the valve body 810 opposite that of the stem opening. The stem seat portion 812 may also include one or more passageways 814 or grooves.
A valve body 810 according to various embodiments of the invention may include a collar 811. The collar 811 may extend away from an opening in the valve body 810 into which a stem 820 may fit or be assembled. According to some embodiments of the invention, the collar 811 may circumscribe or surround a portion of the stem 820 assembled with the valve body 810. The collar 811 may prevent the stem 820 from being activated beyond a certain position by a user.
According to certain embodiments of the invention, the stem 820 may include one or more stem seals 825. In some embodiments of the invention a stem seal 825 may be a bi-injected stem seal 825 formed integrally with the stem 820 during a bi-injection molding process. In other embodiments of the invention, a stem seal 825 may be an additional component of the valve system 800 which is assembled to the stem 820 in any known manner. According to various embodiments of the invention, two or more stem seals 825 may also be used.
A stem 820 may also include one or more stem windows 821 providing a conduit from an interior portion of the stem 820 to an exterior portion of the stem 820. The stem 820 may also include a stem valve portion 822 seated in the stem seat portion 812. In some embodiments of the invention, a stem seal 825 may be bi-injected with the stem valve portion 822 of the stem 820.
A retainer 830, according to some embodiments of the invention, may be positioned in an opening of the container 100 as illustrated. The retainer 830 may include one or more product openings 832. The retainer 830 may also include one or more holes 834. According to some embodiments of the invention the retainer 830 may be configured to snuggly fit within a neck or other portion of the container 100. According to other embodiments of the invention, the retainer 830 may be assembled with or fitted to the valve body 810 and positioned in an interior portion of a container 100 to which the valve system 800 is attached. For example, the retainer 830 illustrated in
According to certain embodiments of the invention, a fill valve 840 may be positioned between the valve body 810 and the retainer 830 as illustrated in
In some embodiments of the invention, the fill valve 840 may include a flexible material, such as GLS Versaflex OM9-801N, and the seal between the fill valve 840 and the valve body 810 may be broken, allowing a liquid or gas being introduced into a container 100 through the stem 820 to pass outside of the fill valve 840 into a compartment between the interior of the retainer 830 and the outside of the fill valve 840 and through the one or more holes 834 into the container 100.
According to various embodiments of the invention, the valve system 800 may be used as a valve for aerosol devices or other pump mechanisms. Further, the valve system 800 may be used to fill containers 100 with a product and a propellant in addition to being used to distribute or disperse the product using the propellant. For example,
The valve system illustrated in
During filling processes, product may be introduced from outside the valve system 800 into the interior of the stem 820 while the stem 820 is partially depressed as illustrated in
Similarly, during evacuation of product from the container 100 to the environment, the stem 820 may be partially depressed as illustrated in
In the open position, the fill valve 840 may maintain a seal with the valve body 810. The seal between the fill valve 840 and the valve body 810 may prevent product from flowing into an interior portion of the retainer 830.
According to various embodiments of the invention, the pressurization position illustrated in
In some embodiments of the invention a user may be allowed to depress the stem 820 past the top portion of the collar 811, releasing product from within the container 100 using the path shown in
According to various embodiments of the invention, a valve system 800 may be attached to a container 100 and the container 100 may be filled through the valve system 800. For example, a valve system 800 may be attached to a container 100 as illustrated in
In some embodiments of the invention, a product bag may be attached to the retainer such that the product opening 832 communicates with the product bag. Product filled through the valve system 800 fills the bag. A pressurizing agent filled through the valve system 800 may fill in space between the product bag and the container 100 walls, pressurizing the bag such that product may be dispensed through the valve system 800 when the stem 820 is depressed as illustrated in
According to various embodiments of the invention, the valve system 800 may be made of any desirable material or combination of materials. In some embodiments the valve system 800 may include all plastic materials. In other embodiments, plastic materials may be mixed with glass, metal, composites, or other products and molded or otherwise shaped to create the valve system 800. While plastic materials are desirable as materials for constructing the valve system 800, other materials may be used as desired.
The snap fitment systems and valve systems according to various embodiments of the invention may be attached to an aerosol container to provide an aerosol disbursement system. The aerosol disbursement system may be used to distribute any aerosol, including, air care formulas, hair care formulas, fragrances, or other formulas.
While particular embodiments of the invention have been described with respect to aerosol bottles and containers, it is understood that various embodiments of the invention may be adapted and used with other bottles and containers. For example, embodiments of the invention may be used to attach closures, pumps, triggers, or other devices to other pressurized containers. In addition, embodiments of the invention may be use to attach closures, pumps, triggers, or other devices to non-pressurized containers and bottles as well.
Having thus described certain particular embodiments of the invention, it is understood that the invention defined by the appended claims is not to be limited by particular details set forth in the above description, as many apparent variations thereof are contemplated. Rather, the invention is limited only be the appended claims, which include within their scope all equivalent devices or methods which operate according to the principles of the invention as described.
This application claims the benefit of U.S. Provisional Application No. 60/968,365, entitled “BOTTLE AND CAP FITMENT AND METHODS OF USING THE SAME,” filed Aug. 28, 2007, and U.S. Provisional Application No. 60/980,270, entitled “PLASTIC VALVES AND METHODS OF USING THE SAME,” filed Oct. 16, 2007, and U.S. Provisional Application No. 61/041,491, entitled “PLASTIC VALVES AND METHODS OF USING THE SAME,” filed Apr. 1, 2008, and International Application Number PCT/US08/74650, entitled “PLASTIC VALVES AND METHODS OF USING THE SAME,” filed Aug. 28, 2008, and incorporates each herein by reference in their entirety.
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