SYSTEM TO HOLD MULTIPLE BEVERAGE CONTAINERS
20250236450 ยท 2025-07-24
Inventors
Cpc classification
F25D21/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B65D25/2864
PERFORMING OPERATIONS; TRANSPORTING
F25D3/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25D2331/801
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B65D25/24
PERFORMING OPERATIONS; TRANSPORTING
F25D2331/809
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25D2331/803
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B65D25/38
PERFORMING OPERATIONS; TRANSPORTING
B65D81/3897
PERFORMING OPERATIONS; TRANSPORTING
F25D2331/805
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
B65D25/24
PERFORMING OPERATIONS; TRANSPORTING
B65D25/38
PERFORMING OPERATIONS; TRANSPORTING
F25D3/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A system for holding multiple beverage containers may include a cooler or carrier with toting handles, closing tabs, and base. The base may be formed from a molded plastic, rubber or synthetic rubber material. The base may also include feet that hold the base a sufficient height from the ground. The base may have a generally conic tapering drain floor that makes up its top surface. The tapering drain floor may make draining the carrier easier by directing water toward a drain hole located in the base. Extending up from the base may be a multi-layer soft-sided wall where different layers perform different desired functions. For example, an inside layer closest to the internal cavity may be a waterproof layer, a middle layer may be an insulating layer, and an external layer may be a decorative layer.
Claims
1. A system to access a beverage, comprising: a hard-sided cooler having a base, a top, a front wall, a back wall, and a first and second side wall, wherein the front wall, the back wall, and the first and second side wall at least partially define an interior portion of the hard-sided cooler; a formation within the interior portion configured to releasably maintain a rigid beverage container within the interior portion; a port hole formed through at least one wall of the hard-sided cooler; a dispensing port located at an exterior surface of the hard-sided cooler; the rigid beverage container having an opening that may be releasably connected to the dispensing port when the rigid beverage container is releasably maintained within the interior portion; and a dispensing control mechanism associated with the dispensing port, wherein an activation of the dispensing control mechanism allows a user to dispense a beverage contained within the rigid beverage container through the dispensing port.
2. The system of claim 1, wherein the formation comprises a beverage sleeve formed from a four way stretch material.
3. The system of claim 1, wherein the formation comprises a molded plastic component within the interior portion.
4. The system of claim 1, wherein the top can be in an opened position and a closed position, further wherein the rigid beverage container may be removed from the interior portion when the top is in the opened position.
5. The system of claim 1, wherein the port hole is formed through the front wall and the base is generally rectangular in shape.
6. The system of claim 1, further comprising: at least two feet molded as part of the base and extending downward from a bottom surface of the base; and at least one closing mechanism attached to the top.
7. A system to access a beverage, comprising: a cooler having a base, a top, a perimeter wall extending up from the base, wherein the base and the perimeter wall at least partially define an interior portion of the cooler; a region within the interior portion configured to releasably maintain a removable beverage container in place within the interior portion; a port hole formed through the perimeter wall of the cooler; the removable beverage container comprising a circular opening that may be releasably connected to a dispensing port; the dispensing port configured: (1) to extend through the port hole, (2) to releasably connect to the circular opening of the removable beverage container at a first end of the dispensing port, and (3) to dispense a beverage contained within the removable beverage container from a dispensing end of the dispensing port located outside the interior portion of the cooler; and a push button dispensing control mechanism for the dispensing port, wherein an activation of the push button dispensing control mechanism allows a user to dispense a beverage contained within the removable beverage container through the dispensing end of the dispensing port.
8. The system of claim 7, further comprising: a second region within the interior portion that is configured to maintain ice; and a drain located within the second region.
9. The system of claim 7, wherein the cooler is a molded plastic, hard-sided cooler.
10. The system of claim 7, further comprising a four way stretch fabric sleeve located within the region and configured to facilitate releasably maintaining the removable beverage container in place.
11. The system of claim 7, wherein the port hole is formed through the perimeter wall near the bottom of the region such that releasably connecting the first end of the dispensing port to the circular opening of the removable beverage container facilitates using gravity to dispense the beverage contained within the removable beverage container.
12. The system of claim 7, wherein the base is generally rectangular.
13. The system of claim 7, wherein the top may be placed in an open position to facilitate removing the removable beverage container.
14. The system of claim 7, wherein the removable beverage container is formed from a rigid material.
15. The system of claim 7, wherein the removable beverage container is a glass bottle.
16. A method to access a beverage, comprising: placing a rigid, removable beverage container within an interior portion of a cooler; inserting a first end of a beverage dispensing port, the beverage dispensing port having a push button dispensing control mechanism at a second end, through a port hole formed through a side wall of the cooler such that the second end of the beverage dispensing port remains outside the cooler; and removably attaching the first end of the beverage dispensing port to a circular hole formed in the rigid, removable beverage container.
17. The method of claim 16, wherein removably attaching the first end of the beverage dispensing port to the circular hole formed in the rigid, removable beverage container utilizes an interference fit attachment.
18. The method of claim 16, further comprising: removing the first end of the beverage dispensing port from the circular hole formed in the rigid, removable beverage container; and removing the rigid, removable beverage container from the cooler.
19. The method of claim 16, further comprising: adding a beverage to the rigid, removable beverage container; closing a lid of the cooler; and pressing the push button dispensing control mechanism to dispense the beverage outside the cooler.
20. The method of claim 19, further comprising opening the lid of the cooler before placing the rigid, removable beverage container within an interior portion of the cooler.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0004] A more complete understanding of the present embodiments and advantages thereof may be acquired by referring to the following description taken in conjunction with the accompanying drawings, in which like reference numbers indicate like features, and wherein:
[0005]
[0006]
[0007]
[0008]
[0009]
[0010]
[0011]
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[0014]
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[0016]
DETAILED DESCRIPTION
[0017] The following discussion is intended to provide one skilled in the art with various teachings that can be combined and/or separated to create useful and/or desirable products. The teachings can be employed in a variety of settings. For example, a designer could use these teachings to create an automobile-oriented, boat-oriented, and/or other vehicle-oriented product. Additionally, a designer may want to employ many of these teachings to produce an attractive picnic or beach going type product.
[0018] While there are many opportunities for designers to use the teachings disclosed herein, the majority of this detailed description section will focus on embodiments designed for a soft-sided cooler that typically utilizes ice cubes or other frozen objects to facilitate keeping various beverage containers at a desired and chilled temperature. The decision to focus on this implementation is not intended to limit the scope of the teachings, but rather to facilitate a clear presentation of the teachings.
[0019] Devices that maintain multiple beverage containers at or near some desired temperature tend to be of two types: hard-sided insulated containers or soft-sided insulated containers. Hard-sided portable insulated containers tend to be made of molded plastic, with an inner layer, or wall, and an outer layer or wall, with an insulation space between. Hard-sided containers are rigid and frequently very heavy. They also tend to be bulky and difficult to carry. A soft-sided cooler, by contrast, can rely on external wall structure that is not substantially rigid. The wall structure may incorporate a multi-layer design that includes an outside layer of webbing or fabric, an inside layer of waterproof webbing or fabric, and a flexible insulation layer positioned between the inner and outer layers. A designer will recognize that layers may be added or removed to meet certain objectives. In some embodiments, a soft-sided cooler may include a rigid or semi-rigid element to give the cooler some stability and to help the cooler maintain a given shape or protect items inside the cooler.
[0020] Throughout this description, containers may be referred to as coolers. Similarly, the portion of the container that opens and closes to facilitate accessing multiple beverage containers stored within the container will typically be referred to as the top of the container. As such, the base panel will typically be referred to as the bottom. The multiple layers that may make up the side walls may be a sandwich of various components. For example, a middle insulating layer may include a flexible or resilient layer of a relatively soft and flexible foam. As noted above, sidewall elements of the cooler may have insulating properties such that heat transfer across the panel is limited. An example of a potential panel construction is an internal core of foam such as closed cell polyurethane foam. The insulating foam is in turn received between a protective, potentially waterproof layer provided on the interior of the container and a potentially decorative layer of polymer sheeting, such as nylon sheeting. As explained in more detail below, a cooler incorporating teachings disclosed herein may include a convertible feature wherein a user can change an exterior panel of the cooler to give it a different look on different occasions or simply to replace a stained or dated exterior shell. In order to maintain the soft-sided characteristics of some embodiments, at least the sidewalls may be formed to be pliable.
[0021] To be clear, potential insulated coolers incorporating the teachings of this disclosure may be used to carry cold items such as soda, beer, sandwiches, ice cream, meat, and so on. Alternatively, the insulated coolers can be used to transport hot items such as casseroles, lasagna, vegetables, etc.
[0022] With that said and as mentioned above,
[0023] As depicted in
[0024] As shown, beverage sleeves 114 are shown as being inside container 100. Depending on design concerns, beverage sleeves 114 may be formed from a stretch fabric, which may be a synthetic fabric that stretches. The stretch fabric may be a multi-way stretch fabric such as 2-way stretch or 4-way stretch. An exemplary 2-way stretch fabric may stretch in one direction, such as from selvedge to selvedge (but can be in other directions depending on the knit). An exemplary 4-way stretch fabric, such as spandex, may stretch in both directions, crosswise and lengthwise. A given stretch fabric may include fibers of neoprene. Example stretch fabrics could include elastomerics like spandex or Lycra. With that said, a designer could choose whichever stretch fabric he or she wanted to accomplish a given deign goal. A deeper understanding of the potential benefits of beverage sleeves 114 may be understood by referencing the next figure.
[0025] As mentioned above,
[0026] As depicted, sleeve 202 is located inside and connected to inside wall surface 212. Also on the inside is plug 206 and tube 208. In practice, a user may remove the lid from bottled beverage 204 and insert plug 206 into the bottle's open end. The beverage inside may then be able to pass through the open end, through a hole within insert plug 206 and into tube 208, which is connected to plug 206. Tube 208 may be routed to and/or through port 210, which may allow the beverage inside the bottle to makes its way from the inside of a container to a dispensing port 216, which may located on or near an outside wall surface 214. Depending upon designer concerns, dispensing port 216 may be controlled by any number of devices. As shown, dispensing port 216 includes a lever-operated stopcock 218. One of skill in the art may choose other mechanisms such as a push button, etc. As shown, a container like container 100 that incorporates the elements of system 200 may allow a user to open a bottle of wine, connect the bottle to a dispensing mechanism (the one depicted uses gravity, but various pressuring mechanisms and/or other methods could be used), place the bottle inside the cooler, close the cooler, and enjoy the wine without having to reopen the cooler.
[0027]
[0028] As mentioned above,
[0029] As shown, base 400 has a generally elliptical shape. In practice, the size, shape, and weight of base 400 may be chosen to facilitate a container's ability to maintain itself in an upright position. Base 400 is also depicted as having multiple feet 408 and a couple ridge 406. In practice, base 400 may be formed of a material that is different that the multi-layer sidewalls of a cooler utilizing base 400. Moreover, base 400 may be formed in separately and in a different location. It may be brought together with the sidewalls during a manufacturing process. As such, ridge 406 may facilitate a mating of base 400 with a sidewall of a designer's choosing.
[0030]
[0031] As mentioned above,
[0032] In such a system, the designer may want to offer users an interchangeable exterior layer that could be, for example, more decorative. In such a system, the designer may want the exterior layer to couple to the base at ridge 510. For example, an exterior layer may utilize a zipper to connect to base 500. The exterior could also use other connection techniques. For example, the exterior layer may include straps that connect underneath base 500. However connected, an interchangeable exterior layer may allow users a great deal of flexibility in changing the appearance and/or replacing an existing worn or tattered exterior shell. As shown, tabs 502 may be located between an interior multi-layer bag and an exterior layer.
[0033]
[0034]
[0035] As shown with carrier 702, magnetic tabs 710 are in an open position. The tabs are in a closed position 712 in connection with carrier 704 and
[0036]
[0037] As mentioned above,
[0038] As mentioned above,
[0039] Ingredients that may be included with drink mix 916 could be, for example, one or more of granulated honey, citric acid, malic acid, lemon oil, lemon juice, sugar, lime oil, lime juice, ascorbic acid, dried cane syrup, crystalized lime, crystalized lemon, cranberry powder, tomato powder, worcestershire sauce powder, distilled vinegar, molasses powder, spices, tamarind, sulfiting agents, maltodextrin, silicon dioxide, celery salt, sea salt, celery seed, cayenne pepper, orange powder, bitters powder, tangerine juice, almond flavor powder, crystalized grapefruit, grapefruit oil, grapefruit juice, licorice powder, etc.
[0040] In some cases, dried combinations of these and other ingredients could allow a designer to offer a cocktail bag option. For example, a designer could offer a margarita bag that includes a drink mix including sugar, citric acid, lime oil, lime juice, ascorbic acid, and dried cane syrup. In practice, a user could add water and tequila to the bag (perhaps one part water and two parts tequila), replace a removable dispensing mechanism, shake, and ultimately mount the bag inside a cooler sleeve as described more fully in
[0041] Cocktail options could include margaritas, cosmos, bloody mary's, old fashioneds, mai tais, daiquiris, palomas, bee's knees, etc. And, liquids to be added could include water, gin, tequila, rum, whiskey, bourbon, vodka, etc. A user may not necessarily want an alcoholic cocktail. As such, non-alcoholic cocktails could be used. Similarly, red wines, white wines, roses, sparkling wines, orange juice, water, etc. could be placed in a bag like bag 914. In some cases, a designer may choose to provide a backpack cooler with a collection of different drink bags. A user may be able to join a club and request different drink mixes on some periodic schedule.
[0042] As mentioned above,
[0043] As shown, the refillable container 1004 has two potential locations for adding a liquid, openings 1010 and 1012. Container 1004 is also depicted with a cutaway view 1014 to reveal an internal, multi-chamber structure. In practice chambers 1016 may be interconnected and open to one another in a manner to allow liquid to flow between them. The structures may also be attached to both a top and bottom surface of container 1004 in a manner that helps container 1004 maintain a generally rectangular cuboid shape. Of course, a designer may choose other shapes and/or techniques to facilitate a container's ability to maintain a shape as liquid is added and/or removed from the container. For example, a user may use a rigid or semi-rigid material. Regarding materials, a designer may elect a flexible foil material, a rigid plastic material, a flexible plastic material, a leather material, a rubber material, a metal material, a composite material, etc.
[0044] In some cases, a designer might choose a rectangular cuboid shape with approximate dimensions of 9 inches by 10 inches by 1 inch. Some designers might also choose dimensions like 8 inches by 10 inches by 1% inches. A designer might choose dimensions like these based upon a desired volumetric capacity such as around 1500 ml. As such, a designer might also choose dimensions like 7 inches by 5 inches by 1 inches in an effort to provide a user with a 750 ml capacity.
[0045] Referring back to
[0046] Other techniques of location container 1004 may be utilized. For example, notch 1020 may allow for hanging container 1004 from a hook or other mechanism located with cooler 1002. In another embodiment, a designer could make use of a hook and loop type attachment mechanism for attaching container 1004 in place.
[0047] As shown, cooler 1002 has a base 1026 that includes feet. Cooler 1002 also includes toting straps 1028 and a hinge type lid 1030 for accessing an interior portion of cooler 1002. As mentioned above,
[0048] Depending upon design concerns, a designer might choose to form hole 1106 approximately 7-10 inches above a surface the cooler is resting on. In such a system, a user might find it easier to place a glass or cup under dispensing system 1016. As such, DH might be 7-10 inches. Similarly, H might be over 20 inches, W might be over 16 inches, and D might be over 9 inches. Other sizes could also be used. For example, H, W, and D could be adjusted to accommodate a given container size a designer wants to use recognizing that a backpack cooler might include an insulation layer that is inch thick or thinner to 1 inches thick or thicker. As such, if a designer wants to create a 1500 ml container with a dispensing port that is 8 inches off the ground, the designer may choose to create a backpack cooler with an internal height dimension of over 18 inches, an internal depth dimension of over 9 inches, and an internal width dimension of 16 inches. Assuming a 1 inch insulation layer and a 2 inch tall base, the designer may produce a backpack cooler with an H of over 20 inches, a W of over 18 inches, and a D of over 11 inches. The overall size and appearance may depend on designer preferences.
[0049] The benefits, advantages, solutions to problems, and any element(s) that may cause any benefit, advantage, or solution to occur or become more pronounced are not to be construed as a critical, required, or essential feature or element of the present invention. Accordingly, the present invention is not intended to be limited to the specific form set forth herein, but on the contrary, it is intended to cover such alternatives, modifications, and equivalents, as can be reasonably included within the spirit and scope of the invention as provided by the claims below.
[0050] While the present invention has been described with respect to a limited number of embodiments, those skilled in the art will appreciate numerous modifications and variations therefrom. It is intended that the appended claims should cover any such modifications and variations as fall within their true spirit and scope.