Dispensing system
12420992 ยท 2025-09-23
Assignee
Inventors
- Ian Darby (Leicestershire, GB)
- Paul N. Georgelos (Naperville, IL, US)
- Matthew Ruschmeier (Glencoe, MN, US)
Cpc classification
B65D41/02
PERFORMING OPERATIONS; TRANSPORTING
B65D47/06
PERFORMING OPERATIONS; TRANSPORTING
B65D77/067
PERFORMING OPERATIONS; TRANSPORTING
International classification
B65D47/06
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A dispensing system for a liquid container including a cap configured to be mounted to a spout connected to a liquid container. The system includes a flexible valve positioned in the cap to be in contact with the liquid contents of the liquid container and a retaining ring connected to the cap to secure the flexible valve to the cap. The cap includes at least one channel defined by a projection configured to receive the tab of a connecting member and secure the connecting member to the cap by securing the tab in the channel under the projection.
Claims
1. A system, comprising: a dispensing system, comprising: a cap configured to be mounted to a spout connected to a container, the cap including a bore and a plurality of channels, wherein each of the plurality of channels is defined by a projection and a retaining projection on a free end of a stem of the projection, a first valve positioned in the cap to be in contact with liquid contents of the container, wherein the first valve is made of a first flexible material, and a retaining ring connected to the cap beneath the valve to secure the first valve to the cap; and a connecting member, comprising: an inlet member defining an inlet, wherein the inlet member comprises a plurality of tabs configured to connect to the cap, and an outlet member defining an outlet, wherein the outlet member is configured to connect to a system supply line, and a plurality of tabs, each of which includes a chamfer extending around an upper surface; wherein each of the plurality of channels of the cap is configured to receive one of the plurality of tabs of the connecting member; and wherein the connecting member is securable to the cap by inserting the connecting member into the bore of the cap and then rotating the connecting member with respect to the cap such that each of the plurality of tabs is secured in one of the plurality of channels under the projection of the one of the of the plurality of channels, wherein the chamfer of each of the plurality of tabs aids in allowing the each of the plurality of tabs to rotate past the retaining projection of the one of the plurality of channels.
2. The system of claim 1, wherein, when the connecting member is secured to the cap, the projecting member sealingly engages the bore and urges an opening in the first valve to permit liquid in the container to pass into the inlet of the connecting member and subsequently out through the outlet.
3. The system of claim 2, wherein the connecting member includes a seal, and the cap includes an inwardly extending flange, wherein, when the connecting member is secured to the cap, the seal engages the flange to create a seal therebetween.
4. The system of claim 1, wherein one of the bore and the connecting member includes a bead that is configured to form a seal between the bore and the connecting member when the connecting member is secured to the cap.
5. The system of claim 1, wherein the at least one channel is located below a top surface of the cap.
6. The system of claim 1, wherein the bore and the first valve are integral and made of the first flexible material and are secured between the retaining ring and an inner collar of the cap.
7. The system of claim 1 further comprising a cover that covers at least a portion of the cap.
8. The system of claim 1, wherein the first valve is secured below an inwardly extending flange of the cap.
9. The system of claim 1, wherein the bore is defined by an inner collar of the cap.
10. The system of claim 1, wherein the retaining ring is snapably connected to the cap to secure the valve to the cap.
11. The system of claim 1, wherein the connecting member further includes: a second valve positioned between the inlet and outlet such that: the second valve allows fluid to flow from the inlet to the outlet; and the second valve prevents fluid from flowing from the outlet to the inlet; wherein the second valve is made of a flexible material.
12. The system of claim 11, wherein the second valve is located within the inlet member of the connecting member.
13. The system of claim 12, wherein the connecting member further comprises: an outwardly extending connector flange that includes at least one tab; wherein the second valve is located below the connector flange.
14. The system of claim 11, wherein the inlet member includes a main body and a valve retention piece, wherein the second valve further comprises a valve flange and the valve flange is compressed between the main body and the valve retention piece.
15. The system of claim 14, wherein: the valve retention piece has an outer diameter at an adjacent surface to the main body; the main body has an outer diameter at an adjacent surface to the valve retention piece; and the valve retention piece outer diameter and the main body outer diameter are generally the same.
16. The system of claim 15, wherein: the valve retention piece has an inner diameter at an adjacent surface to the second valve; the second valve has an inner diameter at an adjacent surface to the valve retention piece; and the valve retention piece inner diameter and the second valve inner diameter are generally the same.
17. The system of claim 1, wherein, after the connecting member is secured to the cap, the first valve resistibly or reactively urges the connecting member outwardly such that each of the plurality of tabs will be held in one of the plurality of channels by the retaining projections.
18. The system of claim 1, wherein the plurality of tabs are equally spaced around the connecting member.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) Embodiments of the present technology will now be described by way of example only and with reference to the accompanying drawings, in which:
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(20) The foregoing summary, as well as the following detailed description of embodiments of the present technology, will be better understood when read in conjunction with the appended drawings. For the purpose of illustrating the technology, certain embodiments are shown in the drawings. It should be understood, however, that the present technology is not limited to the arrangements and instrumentalities shown in the attached drawings.
DETAILED DESCRIPTION
(21) The figures show a dispensing arrangement for a liquid container such as a bag in a box arrangement for holding a liquid such as milk.
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(23) With reference to
(24) With reference to
(25) The valve 20 is flexible and may be a duckbill valve. The valve 20 may be made of, for example, silicone, TPE, or some other flexible material. The valve 20 includes an upper outer flange 76 that includes inwardly extending top bead 80 and bottom bead 81 that define a gap 84 therebetween. The valve 20 has lips 86 that extend down from the flange 76 and that may have an opening or a partially scored area between the lips 86 that allows for a dispensing probe to be inserted through the valve 20 between the lips 86. The valve 20 is configured such that the lips 86 form a seal around the probe when it is inserted and is configured to be in a rest position when the probe is not inserted in which the opening configuration will remain closed and thereby provide a seal for the assembly 10. The retaining ring 24 has a gap 88 (
(26) The cap assembly 10 can be assembled by inserting the valve 20 into the bottom end of the cap 16 such that the top bead 80 of the flange 76 compresses and slides over the outwardly facing bead 100 of the third collar 60 and slides into the gap 72 of the collar 60 such that the flange 76 is secured in the cavity 74 between the second and third collars 40 and 60. The retaining ring 24 is then inserted into the bottom end of the cap 16 such that the lips 86 of the valve 20 extends through the gap 88 and the flange 92 of the ring 24 snapably slides over the inwardly extending bead 96 of the second collar 40. In this way, the ring 24 holds the valve 20 in place in the cap 16. The assembly 10 can be disassembled by pulling the retaining ring 24 out of the cap 16 (by sliding the flange 92 downward past the bead 96) and pulling the valve 20 out of the cap 16 (by pulling the flange 76 out of the cavity 74).
(27) With respect to
(28) When in the fully closed position after filling, the cover 28 may be added or connected to the cap assembly 10. The cover 28 could be, for example, a plug, a flip cap or dust cap, a seal, or a membrane. The cover 28 is placed on the cap 16 over and/or in the cavity 104 and can be connected to the cap 16 by adhesive, a heat seal, sonic welding, being press fitted into the cavity 104, being snapably connected to the cap 16, engaging one or more bayonet fittings 108, or any number of other ways. The cover 28 covers the cavity 104 of the cap 16 to prevent contaminants from getting into the cap assembly 10. The cover 28 may be configured to be reattached to the cap 16 after being detached from the cap 16. The cover 28 may include a tether that connects to the cap 16 such that the cover 28 is connected to the cap 16 even when removed from its position over or in the cavity 104. By way of example only, the cover 28 can be a tear off membrane that can be provided on the cap 16 over the cavity 104 after the bag 14 is filled through the spout 12. The ridge 42 provides a uniform surface for a membrane cover 28 to be either thermally or sonically welded to the cap 16 to ensure an aseptic seal is formed between the cover 28 and the cap 16. The filled bag 14 will be supplied to an end user with the membrane in place, but the membrane can be torn off when it is required to first access the contents of the bag 14.
(29) With respect to
(30) On the opposite side of the base 128, a radially extending tube 144 is provided with one or more barbs 148. The tube 144 may be perpendicular, or generally perpendicular, to member 136. A smaller plate 152 is provided above the tube 144 with a rotation tab 156 extending in a diametrically opposite direction to the tube 144, with the plate 152 and rotation tab 156 facilitating manual movement and rotation of the connecting member 124.
(31) In operation, the bag 14 is filled through the spout 12 with liquid, such as milk. After the bag 14 is filled, the cap assembly 10 is mounted and secured to the spout 12 as described above. The valve 20 is in contact with the liquid and prevents liquid from exiting the bag 14. When it is required to access the contents of the bag 14, the cover 28 can be removed from the cap 16 (such as by being peeled off the cap). As shown in
(32) With reference to
(33) An appropriate tube, pipe, or line is connected to the tube 144 and connects to the machine for which the liquid in the bag 12 is used, such as a coffee machine or smoothie machine. The barb 148 helps retain the tube, pipe, or line to the tube 144. Thus, when the connecting member 124 is connected to the cap assembly 10, liquid is free to flow from the bag 12 through the connecting member 124 and the line to the machine. The connecting member 124 may be referred to as a line side connector since it connects the bag to a machine. In other embodiments, the barb 148 may be omitted and a push-to-connect or similar type fitting may be used to connect the associated machine tubing.
(34) When it is required to disconnect the connecting member 124 from the cap assembly 10, the connecting member 124 is pushed against the reactive force from the resilient valve 20, and the tabs 132 contact the retaining projections 120, deflecting the extending projections 112 and/or retaining projections 120 to allow the tabs 132 to move past the retaining projections 120 and out of the channels 116. The connecting member 124 can then be moved away from the cap assembly 10. As the projecting member 136 moves away from the valve 20, the lips 86 reseal to close the valve 20. The connecting member 124 and any connected tubing, line, or pipework can then be cleaned prior to subsequent reuse.
(35) With respect to
(36) The inlet member 236 includes main body portion 260, a flexible valve 270, and a valve retention piece 280. The main body portion 260 includes a retention ledge 262, a retention groove 264, and a bottom surface 266. The valve retention piece 280 also includes a retention ledge 282, a retention groove 284, and a compression surface 286. The flexible valve 270 includes a retention flange 272, a cylindrical portion 274, a tapered portion 276, and an opening 278.
(37) In the assembled condition, the main body retention ledge 262 is inserted into the valve retention piece retention groove 284 while the valve retention piece retention ledge 282 is inserted into the main body retention groove 264 forming a snap fit connection 290 between the main body portion 260 and the valve retention piece 280. The outer diameter of the main body 260 and the outer diameter of the retention piece 280 are the same or generally the same at the connection point 290 to create a smooth transition between the retention piece 280 and the main body portion 260. Above the connection point 290, the outer surface of the main body portion 260 has a smooth surface and may have a slight taper to help create a seal against both the valve lips 86 and the beads 64 of the third collar 60 of the cap 16. The valve retention piece 280 has a tapered end 289 to help rupture the cap valve lips 86.
(38) The flexible valve 270 may be made of, for example, silicone, TPE, or some other flexible material. The valve retention flange 272 is held between the main body bottom surface 266 and the retention piece compression surface 286, preventing movement of the lower portion of the flexible valve 270. The outer surface of the valve cylindrical portion 274 fits within the inner surface of the main body portion 260. The valve tapered portion 276 extends above the cylindrical portion 274 further into the connector main body portion 260 and ends with the opening 278.
(39) The flexible valve 270 is molded to act as a check valve such that the opening 278 prevents fluid from flowing from the connector body outlet member 244 past the valve 270 towards the connector body inlet member 236 as shown in
(40) On the opposite side of the base 228, the connector outlet 244 extends radially. In the present embodiment, the connector outlet 244 includes a tapered end 248 to aid in connecting the tube, pipe or line of the connected machine. In other embodiments, a barb similar to the barb 148 of the connecting member 124 of
(41) Similar to the connecting member 124 of
(42) In operation, the system may use a vacuum pump to draw suction from the container. The resulting lower pressure on the upper surface of the flexible valve 270 results in the deformation of the valve tapered portion 276 and causes valve opening 278 to spread thus allowing fluid to flow from the inlet member 236 past the valve 270 to the outlet member 244 as shown in
(43) In some embodiments, the snap fit connection 290 of the inlet member 236 may be reversible to allow for the removal of the valve 270 for cleaning purposes. In other embodiments, the main body and retention piece could use corresponding threaded surfaces to removably connect the main body and retention piece. In yet other embodiments, the dimensions of the main body and retention piece retention ledges 262 and 282 respectively may be adjusted to prevent the separation of the snap fit connection 290 and, thereby, prevent the removal of the valve retention piece 280 and flexible valve 270 after assembly. Alternatively, the main body and retention piece could be permanently attached with a sonic weld, a thermal weld, or an adhesive either with or without the use of a snap fit connection.
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(46) The retaining ring 24 can be secured within the gap 74 of the cap 16 between the second and third collars 40 and 60 or between the second collar 40 and the flange 440 of the single component 420 to secure the single component 420 between the retaining ring 24 and the third collar 60. By way of example, the retaining ring 24 may be snapably inserted and secured in the gap 74 by the interaction of a bead and a groove or may be press fitted in the gap 74. By further example, the outer flange 92 of the retaining ring 24 may snapably slide over one or more beads extending internally from the second collar 40. The cap 16 and the retaining ring 24 may be made of the same material and, in particular, may be made of a more rigid plastic material than the single component 420, such as a thermoplastic. The bore 410 is made of the same flexible material as the valve 20 and, thus, forms a flexible seal with the connecting member when the connecting member is inserted into the bore 410 and engages the beads 64 and/or gap 68 of the bore 410. In an alternative embodiment, the valve 20 and bore 410 can be separate pieces made of the same or similar flexible material and can be secured between the retaining ring 24 and the third collar 60 together.
(47) The cap assembly 400 can be formed by a twin shot molding process by which two different plastic resins are molded together in a single machining cycle. In a first phase of such a process, a shot of resin is injected into a mold and cooled to form a first solid part, and, in a second phase, the molded part may be transferred to a second mold and receive second shot of resin in, through, and/or around all or parts of the first molded part. The two plastic resins form a molecular bond, and the multi-resin molded part is cooled and ejected. With respect to cap assembly 400, the cap 16 can be formed in a mold with a shot of a first resin, which, by way of example, may be a thermoplastic that forms a rigid or hard plastic suitable for packaging. The single component 420 then can be formed in the cap 16 as shown in
(48) The above described arrangement(s) can be used in a bag in box container for milk or other liquids. The connecting member can readily be disconnected from the cap assembly to permit regular cleaning while the valve automatically closes. Use of a container such as a bag in box container allows for using the milk in aseptic conditions. The provision of bayonet fittings allows for the connecting member to be easily and readily fitted irrespective of the alignment of the cap on the container.
(49) The twin shot method of forming the cap assembly simplifies the assembly process of the cap assembly by making the entire component in the molding process (so as to avoid separately assembling the valve and/or bore with the cap) and provides a chemical bond and hermetic seal between the separately formed components.
(50) Various other modifications may be made without departing from the scope of the present technology. For instance different mounting arrangements may be provided other than bayonet fittings, and more than two sets may perhaps be provided. Rather than a snap fit the ring member could threadingly engage with the ring part. The connecting member may take a different form. The arrangement could be used other than with bag in box containers for liquid such as milk.
(51) While endeavoring in the foregoing specification to draw attention to those features of the present technology believed to be of particular importance it should be understood that the Applicant claims protection in respect of any patentable feature or combination of features hereinbefore referred to and/or shown in the drawings whether or not particular emphasis has been placed thereon. In addition, while particular elements, embodiments and applications of the present technology have been shown and described, it will be understood that the technology is not limited thereto since modifications can be made by those skilled in the art without departing from the scope of the present disclosure, particularly in light of the foregoing teachings.