EP4619336A2 - Ingredient containers for use with beverage dispensers - Google Patents
Ingredient containers for use with beverage dispensersInfo
- Publication number
- EP4619336A2 EP4619336A2 EP23821800.2A EP23821800A EP4619336A2 EP 4619336 A2 EP4619336 A2 EP 4619336A2 EP 23821800 A EP23821800 A EP 23821800A EP 4619336 A2 EP4619336 A2 EP 4619336A2
- Authority
- EP
- European Patent Office
- Prior art keywords
- container
- outlet
- inlet
- outlet valve
- cap
- 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.)
- Pending
Links
Classifications
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B67—OPENING, CLOSING OR CLEANING BOTTLES, JARS OR SIMILAR CONTAINERS; LIQUID HANDLING
- B67D—DISPENSING, DELIVERING OR TRANSFERRING LIQUIDS, NOT OTHERWISE PROVIDED FOR
- B67D1/00—Apparatus or devices for dispensing beverages on draught
- B67D1/0042—Details of specific parts of the dispensers
- B67D1/0078—Ingredient cartridges
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B67—OPENING, CLOSING OR CLEANING BOTTLES, JARS OR SIMILAR CONTAINERS; LIQUID HANDLING
- B67D—DISPENSING, DELIVERING OR TRANSFERRING LIQUIDS, NOT OTHERWISE PROVIDED FOR
- B67D1/00—Apparatus or devices for dispensing beverages on draught
- B67D1/0015—Apparatus or devices for dispensing beverages on draught the beverage being prepared by mixing at least two liquid components
- B67D1/0021—Apparatus or devices for dispensing beverages on draught the beverage being prepared by mixing at least two liquid components the components being mixed at the time of dispensing, i.e. post-mix dispensers
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B67—OPENING, CLOSING OR CLEANING BOTTLES, JARS OR SIMILAR CONTAINERS; LIQUID HANDLING
- B67D—DISPENSING, DELIVERING OR TRANSFERRING LIQUIDS, NOT OTHERWISE PROVIDED FOR
- B67D1/00—Apparatus or devices for dispensing beverages on draught
- B67D1/0042—Details of specific parts of the dispensers
- B67D1/0043—Mixing devices for liquids
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B67—OPENING, CLOSING OR CLEANING BOTTLES, JARS OR SIMILAR CONTAINERS; LIQUID HANDLING
- B67D—DISPENSING, DELIVERING OR TRANSFERRING LIQUIDS, NOT OTHERWISE PROVIDED FOR
- B67D1/00—Apparatus or devices for dispensing beverages on draught
- B67D2001/0095—Constructional details
- B67D2001/0096—Means for pressurizing liquid
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B67—OPENING, CLOSING OR CLEANING BOTTLES, JARS OR SIMILAR CONTAINERS; LIQUID HANDLING
- B67D—DISPENSING, DELIVERING OR TRANSFERRING LIQUIDS, NOT OTHERWISE PROVIDED FOR
- B67D1/00—Apparatus or devices for dispensing beverages on draught
- B67D1/08—Details
- B67D1/0801—Details of beverage containers, e.g. casks, kegs
- B67D2001/0812—Bottles, cartridges or similar containers
Definitions
- Still other devices rely on carbonating water within a specialized container to be attached to the device, and from which the resulting beverage is served.
- the container can be pre-filled with water and/or flavoring, and then it can be secured to the devices and pressurized within the container and used to serve the resulting beverage.
- These devices can create excess plastic waste, as specially adapted bottles must be produced to interface with the device.
- a container in one embodiment, can include a container body defining a hollow interior, and a cap having an end wall with a first collar projecting therefrom and a second collar projecting therefrom.
- the first collar can have an inlet valve therein, and the second collar can have an outlet valve therein.
- the first and second collars can be spaced apart from one another.
- the end wall can further have first and second recesses surrounding the first and second collars. The first and second recesses can be formed in a surface of the end wall.
- the container can vary in a number of ways and may include any of the following features, alone or in combination.
- the first and second collars and the first and second recesses together can define a figure-8 shaped feature.
- the container can also include first and second shoulder portions positioned on opposite sides of the end wall and projecting outward from the outward facing surface of the end wall.
- each of the first and second recesses can have first and second curved sidewalls that extend partially around the first and second collars, respectively.
- each of the first and second recesses can have a third curved sidewall positioned opposite the first and second curved sidewalls.
- the first and second recesses can be positioned on opposite sides of the first and second collars.
- the cap can have a minor axis and a major axis, and wherein the cap is substantially symmetrical about the minor axis.
- the first and second collars can be aligned along the minor axis.
- a container in another embodiment, includes a container body defining a hollow interior, and a cap coupled to the container body to close off the hollow interior.
- the cap can include at least one recess having a figure-8 shaped projection with first and second openings therein.
- the first opening can include an inlet valve and the second opening can include an outlet valve, and the figure-8 shaped projection can be at least partially defined by first and second recesses formed in a surface of the cap.
- the container can vary in a number of ways and may include any of the following features, alone or in combination.
- the substantially figure-8 shaped projection can include first and second collars defining the first and second openings and that are spaced a distance apart from one another, having the inlet and outlet valves disposed therein.
- the first and second recesses surrounding the figure-8 shaped projection can each include first, second, and third sidewalls.
- the first and second sidewalls can be substantially convex and the third sidewall can be substantially concave.
- the container body can have a substantially ovular cross-section with major and minor axes.
- the inlet and the outlet can be aligned along the minor axis.
- the cap can be configured to couple to the container body via a snap-fit.
- a container for use in a beverage system includes a container body defining an interior hollow chamber and a cap covering the opening in the container body.
- the container body can have an opening leading to the interior hollow chamber.
- the cap can have an inlet port, an outlet port, and a collar positioned around the inlet port.
- the inlet port can have an inlet valve seated therein and can be movable between a closed configuration for preventing passage of fluid there through, and an open configuration for allowing passage of fluid there through.
- the outlet port can have an outlet valve seated therein and movable between a closed configuration for preventing passage of fluid there through, and an open configuration for allowing passage of fluid there through.
- the collar can be positioned around the inlet port and can have an inner surface with at least a portion configured to circumferentially sealing engage a seal having an outer diameter in a range of about 7 mm to 8 mm.
- the container can vary in a number of ways and may include any of the following features, alone or in combination.
- the body can include an end face having the inlet and outlet ports therein, and a skirt extending around the interface portion and defining a sidewall of the body.
- the skirt can have a substantially triangular shape.
- the collar can project outward from the end face.
- the collar can be substantially cylindrical.
- the inlet valve and the outlet valve each can include a cross-shaped slit configured to enable fluid flow therethrough.
- the cap can include a closure pivotally coupled thereto and movable between an open position and a closed position. The closure can be configured to close off the inlet valve and the outlet valve in the closed position.
- the cap can include at least one closure retention feature on an external surface thereof, and the at least one closure retention feature can be configured to couple to the closure to retain the closure in the open position.
- a container for use in a beverage system can include a container body defining an interior hollow chamber and a cap coupled to the opening of the container body.
- the cap can have an inlet valve that is sealed to retain the fluid additive within the interior hollow chamber and that is configured to open to allow gas to be injected into the interior hollow chamber, and an outlet valve that is sealed to retain the fluid additive within the interior hollow chamber and that is configured to open when a pressure within the interior hollow chamber exceeds a threshold pressure to allow fluid additive within the container body to flow through the outlet valve.
- the inlet valve can have a generally cylindrical shape and the outlet valve can have a generally cylindrical shape.
- a diameter of the outlet valve can be in a range from about 7 mm to 13 mm.
- the container can vary in a number of ways and may include any of the following features, alone or in combination.
- the cap can include a closure pivotally coupled thereto and movable between an open position and a closed position.
- the closure can be configured to close off the inlet valve and the outlet valve in the closed position.
- the container body can have a substantially ovular cross-section including a major axis about a first width and a minor axis about a second width.
- the inlet port and the outlet port can align with the minor axis of the container body.
- the cap can include at least one orientation element configured to orient the cap relative to the container body.
- the inlet valve and the outlet valve each can include a cross-shaped slit configured to enable fluid flow therethrough.
- a flow control assembly can include a cap having a flow control system with an inlet port having an inlet valve and an outlet port having an outlet valve.
- the flow control system can achieve a Dosing Accuracy (DA) of about 100 or less according to the following formula:
- Po is a pressure to open the outlet valve (mmFFO)
- Pc is a pressure to close the outlet valve (mmPFO)
- Vd is a diameter of the outlet valve (mm)
- Ls is a length of the valve opening (mm).
- the flow control assembly can vary in a number of ways and may include any of the following features, alone or in combination.
- the flow control system can achieve a DA of between about 40 and 70.
- the flow control system can achieve a DA of about 55.
- the pressure to open the inlet valve (Po) can be greater than about 100 mmPFO.
- the pressure to open the inlet valve (Po) can be greater than about 400 mmlLO
- the diameter of the outlet valve (Vd) can be between about 5 mm and 15 mm, and in certain embodiments can be about 9.5 mm.
- the length of the valve opening (Ls) can be between about 1 mm and 5 mm, and in certain embodiments can be about 3.7 mm.
- the cap can include a sidewall defining a cavity configured to receive a neck of a container.
- the cap can include an end wall having the inlet port and an outlet port formed therein.
- the inlet port and the outlet port each can include a cylindrical collar having the inlet valve and the outlet valve disposed therein, respectively.
- the flow control assembly can include a container body defining an interior hollow chamber. The container body can have an opening leading to the interior hollow chamber, and the cap can be configured to couple to the opening of the container body to seal fluid within the interior hollow chamber.
- the inlet valve can be configured to allow a gas to be injected into the interior hollow chamber
- the outlet valve can be configured to open to allow fluid to flow out of the interior hollow chamber when a pressure within the interior hollow chamber exceeds the pressure to open the outlet valve (Po).
- an ingredient container for use in a beverage carbonation system can include a container body defining an interior hollow chamber and an opening leading to the interior hollow chamber, and a cap coupled to the opening.
- the container body can have a cross-section with a major axis defining a width that is greater than a minor axis defining a depth.
- the cap can have an inlet that can be sealed to retain fluid within the container and that can be configured to open to allow gas to be injected into the interior hollow chamber.
- the cap can have an outlet that can be sealed to retain fluid within the container and that can be configured to open to allow fluid within the container to flow out through the outlet valve.
- the inlet and the outlet can be aligned along a first axis that extends parallel to the minor axis of the container body.
- the container can vary in a number of ways and may include any of the following features, alone or in combination.
- the first axis can extend substantially perpendicular to the major axis of the container body.
- the cap can have an irregular shape.
- the cap can have a substantially triangular outer perimeter.
- the cap can have a major axis and a minor axis, and the first axis can extend along the minor axis of the cap.
- the cross-section of the container body can be ovular.
- an ingredient container in another embodiment, can include a container body defining an interior hollow chamber and having an opening leading to the interior hollow chamber, and a cap positioned over the opening in the container body.
- the cap can have an irregular shape with a major axis and a minor axis, and the cap can include an inlet port and an outlet port positioned along the minor axis.
- an ingredient container in another embodiment, can include a container body having an opening leading into a hollow interior, and a cap covering the opening.
- the cap can include a base having an inlet port and an outlet port formed therein, and a sidewall extending around the base and defining an outer perimeter of the cap body.
- the sidewall can include first and second shoulders extending upward from the base on opposed sides of the inlet and outlet ports.
- the first shoulder can have a first inner surface and the second shoulder can have a second inner surface.
- the first and second inner surfaces each can have a detent therein configured to receive a corresponding protrusion in a carriage assembly of a beverage carbonation system.
- the closure can vary in a number of ways.
- the container can vary in a number of ways.
- a difference between the cracking pressure and the closing pressure can be in a range of about 300 mmkbO to 400 mmkbO.
- a difference between the cracking pressure and the closing pressure can be about 340 mmFhO.
- the cracking pressure can be greater than about 600 mmFFO or less than about 400 mmFhO.
- the inlet valve and the outlet valve each can include a cross-shaped slit configured to enable fluid flow therethrough.
- a container in another embodiment, can include a container body having an opening extending into a hollow interior, and a cap extending across the opening.
- the cap can have an inlet port with an inlet valve configured to couple to a fluid source such that fluid can be delivered through the inlet valve to pressurized the hollow interior of the container body, and an outlet port with an outlet valve.
- the outlet valve can have a closed configuration to prevent fluid flow from the hollow interior, and can be movable to an open configuration to dispense fluid from the hollow interior in response to a pressure increase within the hollow interior increase of between about 300 and 380 mmFhO.
- the container can vary in a number of ways.
- the pressure increase can be about 340 mrnFFO.
- the outlet valve can have a cracking pressure greater than about 600 mmFhO.
- the outlet valve can have a closing pressure less than about 400 mmFhO.
- the inlet valve and the outlet valve can each have a cross-shaped slit configured to enable fluid flow therethrough.
- a container in another embodiment, can include a container body defining a hollow interior, and a cap.
- the cap can have an inlet port with an inlet valve seated therein and movable between a closed configuration for preventing passage of fluid there through, and an open configuration for allowing passage of fluid there through.
- the cap can also have an outlet port having an outlet valve seated therein and movable between a closed configuration for preventing passage of fluid there through, and an open configuration for allowing passage of fluid there through.
- the outlet valve can have a configuration that will dispense a predetermined amount of fluid in a range of 1.6 mL to 2.0 mL in response to a dose of gas being pumped into the container for a period of 140 ms.
- the container can vary in a number of ways.
- the predetermined amount of fluid can be 1.8 mL.
- the inlet valve and the outlet valve each can include a cross-shaped slit configured to enable fluid flow therethrough.
- the outlet valve can have a cracking pressure at which the outlet valve is configured to move from a closed configuration to an open configuration to dispense fluid from the hollow interior, and can have a closing pressure at which the outlet valve is configured to move from the open configuration to the closed configuration to prevent fluid from passing therethrough.
- the cracking pressure can be greater than the closing pressure.
- the predetermined amount of fluid is proportional to a difference between the cracking pressure and the closing pressure.
- FIG. l is a front view of one embodiment of a beverage dispensing system
- FIG. 2 is a rear perspective view of the beverage dispensing system of FIG. 1 with various housing components removed;
- FIG. 3 is a front perspective view of one embodiment of a housing portion and carriage assembly for use with a beverage dispensing system;
- FIG. 4 is a perspective view of a carriage assembly of FIG. 3 having the housing portion removed;
- FIG. 5 A is a top view of a carriage used with the carriage assembly of FIG. 3;
- FIG. 5B is a cross-sectional view of the carriage of FIG. 5 A;
- FIG. 6 is a bottom view of the carriage of FIG. 5 A;
- FIG. 7 is a perspective view of an ingredient container according to an embodiment
- FIG. 8A is a cross-sectional view of the ingredient container of FIG. 7;
- FIG. 8B is a partial cross-sectional view of the ingredient container of FIG. 7;
- FIG. 9 is an exploded view of the ingredient container of FIG. 7;
- FIG. 10A is a perspective view off a container body of the ingredient container of FIG. 7;
- FIG. 11 A is a perspective view of a lid of the ingredient container of FIG. 7;
- FIG. 1 IB is a top view of the lid of FIG. 11 A;
- FIG. 12A is a perspective view of an outlet valve of the ingredient container of FIG. 7;
- FIG. 12B is a cross-sectional view of the outlet valve of FIG. 12A during a dispensing process
- FIG. 12C is a cross-sectional view of the outlet valve of FIG. 12A during a dispensing process
- FIG. 12D is a cross-sectional view of the outlet valve of FIG. 12A during a dispensing process
- FIG. 12E is a cross-sectional view of the outlet valve of FIG. 12A during a dispensing process
- FIG. 12F is a cross-sectional view of the outlet valve of FIG. 12A during a dispensing process
- FIG. 13 is a rear perspective view of the lid of FIG. 11 A;
- FIG. 14 is a perspective cross-sectional view of the lid of FIG. 11 A;
- FIG. 15 is a partial perspective rear view of the lid of FIG. 11 A having a lid cover in a closed position;
- FIG. 16 is a perspective bottom view of the lid of FIG. 11 A;
- FIG 17 is a perspective view of the carriage assembly of FIG. 3 having the ingredient container of FIG. 7 loaded therein;
- FIG. 18 is a perspective view of the carriage assembly and ingredient container of FIG. 17 having a housing removed;
- FIG. 19 is a perspective view of the carriage of FIG. 5 A having the ingredient container of FIG. 7 loaded therein;
- FIG. 20 a cross-sectional view of the carriage and ingredient container of FIG. 19;
- FIG. 21 is a partial cross-sectional perspective view of the container and ingredient container of FIG. 19.
- FIG. 22 is a bottom view of a carriage assembly according to some embodiments showing a relative position of ingredient container outlets and a fluid outlet in relation to variously-sized drinkware.
- like-named components of the embodiments generally have similar features, and thus within a particular embodiment each feature of each like-named component is not necessarily fully elaborated upon.
- linear or circular dimensions are used in the description of the disclosed systems, devices, and methods, such dimensions are not intended to limit the types of shapes that can be used in conjunction with such systems, devices, and methods. A person skilled in the art will recognize that an equivalent to such linear and circular dimensions can easily be determined for any geometric shape.
- an ingredient container for use with beverage dispensers and carriages for receiving ingredient containers.
- an ingredient container can contain an additive for use in a beverage dispensing process.
- the ingredient container can have a hollow container body with an opening and a lid coupled to the container body.
- the lid can include a lid base configured to couple to the container body over the opening, and the lid base can have an inlet and an outlet therein.
- the lid can further include a lid cover configured to selectively close the inlet and the outlet, thereby sealing a hollow interior of the container body.
- the inlet and the outlet can each have a seal disposed therein that is configured to open in the presence of a pressure differential between an interior and an exterior of the ingredient container in an attempt to eliminate the pressure differential.
- the ingredient container can be shaped and designed to correspond to a carriage located on a beverage dispensing device.
- the carriage can have complimentary features to receive and retain the ingredient container, and when retained, the ingredient container can be employed by a beverage dispensing device for use in the creation of customized beverages.
- Methods of dispensing the additive stored within the ingredient container can vary.
- the ingredient container is pressurized with a gas, such as air, to cause the outlet to open and dispense the stored additive.
- a gas line fluidly coupled to a pump can receive the inlet of the ingredient container in order to seal around the inlet in preparation for the introduction of gas into the ingredient container during a dispensing procedure.
- Gas can be pumped by the pump, though the gas line, through the inlet seal, and into the hollow interior of the ingredient container. The resulting increase in internal pressure can cause the outlet seal to open and dispense an amount of the additive proportional to the amount of gas introduced through the inlet.
- FIGS. 1-2 illustrate a beverage dispensing system 10 according to one embodiment.
- the beverage dispensing system 10 can be used to create and dispense customized beverages for a user, based on desired characteristics of the beverage.
- the illustrated beverage dispensing system 10 generally includes a housing 12 having a fluid reservoir 14 and a carbonation assembly 16.
- a carriage assembly 18 can be included on and/or coupled to the beverage dispensing system 10, and it can receive one or more ingredient containers 20 to be used in the creation of beverages.
- the ingredient containers 20 can include one or more additives (e.g., a flavorant, a vitamin, a food dye, etc.) to be included in a created beverage as desired.
- additives e.g., a flavorant, a vitamin, a food dye, etc.
- a user can actuate inputs located at a user interface 22 in order to select specific characteristics of the desired beverage, such as volume, carbonation level, specific additives, and additive amount. If the user selects inputs to indicate that the beverage is carbonated, water can be fed from the fluid reservoir 14 and into the carbonation assembly 16, and carbon-di oxide can be fed from a canister 24 and into the carbonation assembly 16 to produce carbonated water. If the user selects inputs to indicate that one or more additives should be added to the beverage, the beverage dispensing system 10 can dispense the additive from the one or more ingredient containers 20 coupled to the system. The beverage can be dispensed into a container, such as a drinking glass 26.
- a container such as a drinking glass 26.
- FIGS. 3-6 illustrate one embodiment of a carriage assembly 100 which can be coupled to and/or retained with or within a beverage dispensing device, such as beverage dispensing device 10.
- the carriage assembly 100 is contained within a carriage housing 100 A.
- the carriage assembly 100 can include one or more carriages 101, which can each seat and retain one or more ingredient containers (not shown) for use in a beverage dispensing process.
- the carriage assembly 100 is shown having two separately movable carriages 120, a different number of carriages 120 are contemplated herein as well.
- the carriage assembly can be in the form of a single movable carriage having multiple cavities with each cavity configured to receive an ingredient container. Ingredient containers and their retention within the carriage assembly 100 will be described in greater detail below.
- FIG. 4 illustrates the carriage assembly 100 separated from the carriage housing 100A.
- the illustrated carriage assembly 100 generally includes a left carriage 120L and a right carriage 120R (collectively carriages 120) coupled to a carriage base 110.
- the carriage base 110 can have a variety of forms, which may depend upon the form of the carriage housing 100 A containing the carriage base 110. As illustrated, the carriage housing 100A and the carriage base 110 have a substantially cylindrical form.
- the carriage base 110 can include cutouts and/or slots for seating and receiving various components including, for example, the carriages 120 and a fluid outlet 114.
- the lift assists 116 can include a biasing feature such as a spring, such that each of the coupled carriages are biased to the upward position.
- a micro-switch 112 (also referred to as left microswitch 112L and right micro-switch 112R) can be located above each of the carriages 110, which will be discussed in more detail below.
- FIGS. 5 and 6 depict a single carriage 120 in more detail.
- the carriage 120 has a generally rectangular carriage body 122 with a rounded front face 124 that can be shaped to conform with an overall contour of the carriage housing 110A.
- a handle 128 can extend from the front face 124 to provide a grasping surface to enable the carriage 120 to be easily pivoted, such as when an ingredient container is placed into or removed from the carriage assembly 120. While the handle 128 is shown in the form of a protruding lip or ledge, the handle 128 can take on various forms and can include protrusions of other shapes as well as recesses within the carriage body 122 itself.
- the carriage 120 can further include a pivot axis 126 located near a rear of the carriage body 122, as introduced above, for allowing the carriage 120 to pivot relative to the carriage body 122.
- An upper portion of the carriage body 122 can include a carriage face 130, as best shown in FIGS. 5A and 5B.
- the carriage face 130 is shaped to receive and retain a complimentary ingredient container for use during a beverage dispensing process.
- the carriage face 130 can include a variety of indentations, protrusions, flat areas, and rounded areas to fully receive ingredient containers of any shape or size, as well as to ensure that an ingredient container is properly seated and coupled to the system.
- the carriage face 130 is in the form of a generally triangular recess with rounded comers, e.g., a rounded triangle.
- One side can include a rectangular cutout 131 extending therefrom.
- the cutout 131 can be formed in the longed side of the triangle, and it can be located closest to a mid-portion of the carriage assembly 100.
- the central region 132 of the carriage face 130 can include a raised platform having a variety of features thereon. As shown, the central region 132 is raised such that a peripheral channel 133 is defined within the carriage face 130.
- the central region 132 can include a carriage inlet 134 and an carriage outlet 136, which can be configured to align with and couple to an inlet and an outlet of an ingredient container, respectively.
- the illustrated carriage inlet 134 and the carriage outlet 136 have a substantially round form defining a central opening 134A, 136A.
- the central openings 134A, 136A can pass entirely through the carriage 120.
- flanking protrusions 138 are shaped to extend into complimentary recesses on an ingredient container to assist in the retention thereof.
- the carriage face 130 includes a pair of similar flanking protrusions 138, which take the form of “bat wings” that follow the “figure-8” contour of the central recess 137.
- the illustrated flanking protrusions 138 have an outer sidewall that is convexly curved along its length and two inner sidewalls that are each convexly curved to follow the contours of the inlet and outlet receivers 134, 136.
- the sidewalls of the flanking protrusions 138 can taper in a direction leading away from the carriage face 130, as shown, such that the tip portion is generally smaller in size than the base portion of each protrusion 138. In other embodiments, the protrusions 138 may not flare at all.
- FIG. 6 depicts an underside of the carriage 120, according to some embodiments.
- the underside of the carriage 120 is positioned on the opposite side of the carriage inlet 134 and the carriage outlet 136, and it includes central holes 134A, 136A, which, as introduced above, can pass through the carriage 120.
- the central hole 134A of the carriage outlet 136 can be coupled to a gas line 140.
- the gas line 140 can be coupled at an opposite end to an air pump (not shown), which can be used to introduce air or another gas into a seated ingredient container. The resulting increase in pressure can cause the seated ingredient container to dispense a stored additive through the central hole 136A of the carriage outlet 136.
- one or more pumps can be used to introduce gas to a seated ingredient container.
- each carriage can have its own pump fluidly coupled thereto via a gas line or similar setup.
- the gas line 140 can be coupled to the carbonation source, which can be used to supply gas to the container for ejecting additive.
- FIGS. 7-16 illustrate an exemplary embodiment of an ingredient container 200.
- the ingredient container 200 can generally include a lid 210 coupled to a container body 250 which can be configured to contain an additive (e.g., a flavorant, a supplement, a vitamin, a coloring agent, etc.) to be used in the creation of beverages.
- the additive can be in the form of a fluid, a solid, a powder, a gel, a syrup, or any other form.
- the ingredient container 200 can come in a variety of sizes.
- the ingredient container 200 can have an overall height between about 55 mm and 60 mm, and in some embodiments can be about 56.9 mm.
- the ingredient container 200 can have a maximum width between about 55 mm and 65 mm, and in some embodiments, the maximum width can be about 59.5 mm.
- the lid 210 can have a depth between about 38 mm and 42 mm, and in some embodiments can be about 39.6 mm.
- the container body 250 can have a depth between about 38 mm and 42 mm, and in some embodiments can be about 39.5 mm.
- the ingredient container 200 can have a volume between about 50-90 mL, and in some variations can have a volume of about 70 mL.
- the ingredient container 200 can store the additive inside, and, as part of a beverage creation process, receive a measured volume of gas (e.g., air, carbon-dioxide, etc.) through an inlet 224 resulting in an increased internal pressure.
- a measured volume of gas e.g., air, carbon-dioxide, etc.
- the increase in internal pressure within the container 200 can result in an outlet 226 emitting a tailored amount of the additive as a consequence of eliminating or reducing the newly-created pressure differential across the outlet.
- the illustrated container body 250 has a generally oblong, ovular form similar to a racetrack configuration, as seen in FIGS. 10A and 10B. While the container body 250 is shown as having a specific form, the container body 250 can take on a variety of forms. This oblong ovular form can include a minor width W 1 about a shorter dimension of the container body 250 and a major width W2 about a longer dimension of the container body 250. Similarly, the oblong, ovular form can have a minor axis Al extending centrally along the minor width Wl, and the oblong, ovular form can have a major axis A2 extending centrally along the major width W2. As will be discussed in more detail below, the shape of the container body can aid in allowing multiple containers to be positioned closer to one another within the beverage system, thus allowing the outlets 226 to be positioned closer for dispensing an additive.
- the container body 250 can include a base 252, a sidewall 254 extending upwardly from the base 252, and a top 256, which together can define an interior space to store the additive.
- the base 252 can include an ovular recess 253 as shown in FIG. 8B.
- the ovular recess 253 can provide increased structural integrity to the container body 250 during storage, transit, operations, etc., and it can also provide an area for increased engagement, such as by a user and/or by a beverage dispensing device (e.g., beverage dispensing system 10).
- the sidewall 254 can extend upward from the base 252 to maintain a substantially constant cross-section.
- the sidewall 254 can include first and second side faces 254A, 254B, which can be substantially planar, and first and second convexly curved faces 254C, 254D extending between the first and second side faces 254A, 254B.
- a series of channels 255 can run vertically on the first and second side faces 254A, 254B, substantially parallel to each other.
- the channels 255 can operate similarly to the ovular recess 253, in that they may provide for increased structural integrity, and/or they may provide an area of increased engagement between the container body 250 and a beverage dispensing device (e.g., beverage dispensing system 10). They can also aid in gripping the container.
- a carriage assembly e.g., carriage assembly 100
- the top 256 sits upon the sidewall 254, and it can include a shoulder 258 and a neck 260.
- the shoulder 258 can have a gradual slope upward toward the neck 260, which can be centrally disposed on the top 256 and can be a round, substantially vertical portion of the container body 250.
- the neck 260 can define the opening 262 leading to the interior of the container body 250.
- a circumferential flange 264 can extend around the neck 260 and can provide a coupling point for the lid 210, such as with a snap-fit. In some embodiments, the circumferential flange 264 can be replaced by threads to provide threaded connection with the lid 210.
- a pair of orientation protrusions 266 can be disposed on opposite sides of the neck 260. These protrusions 266 can vary in shape or number, and they can function to align with complimentary features on the lid 210 to ensure that the lid 210 is properly oriented on the container body 250.
- FIGS. 11 A- 16 depict the lid 210 and elements thereof, separated from the container body 250.
- the illustrated lid 210 has a substantially rounded triangular shape and includes a lid base 220 and a lid cover 240 coupled to the lid base 220.
- the lid cover 240 can be used to close the inlet and outlet, and in turn the container body 250.
- the triangular shape can be defined by a perimeter having first, second, and third sides, with the first side being longer than each of the second and third sides.
- the lid base 220 can include a skirt 222 located at a lower perimeter thereof and having a curved shaped to conform with the shoulder 258 of the container body 250.
- the skirt 222 can include a front recess 223, which can be shaped to allow a portion of the lid cover 240 to extend outward beyond the skirt 222 when the lid 210 is in the closed position to enable grasping of the lid cover 240 to ease opening and closing of the lid cover 240 relative to the lid base 220.
- the lid base 220 can include an inlet 224 and an outlet 226, which lead respectively to and from the interior of the container body 250.
- the inlet 224 can include an inlet collar 224A flanking an inlet orifice 224B, while the outlet 226 can include an outlet collar 224A flanking an outlet orifice 224B.
- the inlet collar 224 has a height that is greater than a height of the outlet collar 226. The greater height of the inlet collar 224 can aid in allowing a seal to be formed between the container inlet 224 and the outlet 136 on the carriage 120.
- the container inlet 224 and the outlet 226 can be positioned on the lid base 220 in line with a minor axis B-B of the lid 210 extending along a plane defined by an upper face of the lid base 220, as shown in FIG. 11 A,.
- the minor axis B-B can extend parallel to the minor axis Al of the container body 250, and therefore can extend perpendicular to the major axis A2.
- the entire lid 210 can be substantially symmetrically mirrored about the minor axis B-B.
- the lid 210 can also have a major axis A-A, as seen at least in FIGS. 11 A-l IB, which can extend perpendicular to the minor axis B-B.
- the inlet 224 and outlet 226 can each have a central longitudinal axis (also called a central axis) with a distance D there between.
- the central longitudinal axis of each of the inlet 224 and the outlet 226 is coming out of the page in FIG. 1 IB, but it is shown from a side view in FIG. 21.
- the distance D between each central longitudinal axis can vary. In certain embodiments, the distance D can depend at least partially on the overall dimensions of the lid 210 and/or the sizes of the valves, as discussed further below.
- the distance D between the central axes can be between about 9 mm and 15 mm, and more preferably between about 11 mm and 13 mm, and in certain exemplary embodiments the distance D can be about 13 mm.
- the inlet 224 can have a diameter XI
- the outlet 226 can have a diameter X2.
- the inlet diameter XI can be between about 6.6 mm and 7.2 mm, and in some embodiments can be about 6.90 mm.
- the outlet diameter X2 can be between about 6.5 mm and 7.1 mm, and in some embodiments can be about 6.84 mm.
- Recesses 228 can flank each side of the inlet 224 and the outlet 226, and the recesses 228 can each be shaped to correspond to protrusions in a carriage (e.g., flanking protrusions 138 on carriage 120).
- the recesses 228 can be shaped to follow an outer contour of the collars 224A, 226A and can take a “bat wing” form.
- the recesses 228 can have a radially outward sidewall that is concavely curved along its length and two inner sidewalls that are concavely curved to follow the contours of the inlet and outlet 224, 266.
- the recesses 228 can take on various other forms as well, and their form may be at least partially dependent upon the placement and form of other components on the lid 210.
- the recesses 228 can be placed a slight distance apart from the inlet 224 and the outlet 226, thus defining a central pattern 230 located in the space between the collars 224A, 226 A and the recesses 228.
- the central pattern 230 can take the form of a “figure-8,” however other forms may be present.
- the illustrated central pattern 230 is shown being flush with the upper surface of the base 220, however the central pattern 230 can protrude above the upper surface or can be recessed below the upper surface.
- the central pattern 230 can be a protrusion, a recession, or a combination thereof with a portion of the central pattern 230 protruding from the lid 210 and a portion of the central pattern 230 receding into the lid 210.
- the inlet and outlet collars 224A, 226A can contribute to the central pattern 230.
- the lid base 220 can further include a pair of shoulders 231 formed on opposed sides of the skirt 222 and that extend upward from the lid base 220.
- Each shoulder 231 can have a shape, such as a rounded triangular shape, that complements a shape of the peripheral channel 133.
- Each shoulder 231 can also include one or more retention features, which can further assist in retention of the ingredient container 200 within the carriage 120.
- These features can be in the form of receivers 232 which can receive a complimentary element of the carriage 120, as will be described in more detail below.
- the receivers 232 are each in the form of a substantially square or rectangular recess or cut-out formed in an inward facing sidewall of each shoulder 231.
- a rear portion of the lid base 220 can include a rear wall 233 which can extend between the shoulders 231.
- the lid cover 240 can be coupled to the rear wall 233, as will be discussed in more detail below.
- the inlet 224 can include an upwardly extending inlet collar 224A flanking an inlet orifice 224B
- the outlet 226 can include an upwardly extending outlet collar 226 A flanking an outlet orifice 226B.
- the inlet collar 224A and the outlet collar 226A are shown in a circular form, the inlet and outlet collars 224A, 226A can take on a number of shapes, including various geometric shapes, e.g., a triangle, a star, etc., as well as fanciful and/or irregular shapes, e.g., a letter, a logo, etc.
- the form of the inlet and outlet collars 224A, 226A can be the same or different.
- the inlet 224 can include an inlet valve frame 224C and an inlet valve 224D
- the outlet 226 can include an outlet valve frame 226C and an outlet valve 226D.
- each of the inlet valve 224D and the outlet valve 224D can be respectively seated within the inlet valve frame 226C and the outlet valve frame 226C.
- the inlet valve frame 224C and the outlet valve frame 226C can be affixed to the underside of the lid 210 beneath the inlet 224 and the outlet 226 respectively.
- the inlet valve frame 224C and the outlet valve frame 226C can be formed from a single frame component.
- FIG. 12A depicts one embodiment of an outlet valve 226D in more detail. While description is made with respect to the outlet valve 226D, similar features are applicable to the inlet valve 224D. Additionally, where options are provided for aspects of the outlet valve 226D, actual aspects may not always be the same between the inlet valve 224D and the outlet valve 226D.
- the illustrated outlet valve 226D is configured to open to dispense an additive therefrom during a beverage dispensing process. While the outlet valve 226D is depicted as being round or substantially circular, the outlet valve 226D can vary in form to have any number of regular or irregular shapes.
- the outlet valve 226D can include a flange 226E configured to hold an outlet valve head 226F within the outlet valve frame 226C.
- the flange 226E can be connected to the outlet valve head 226F via a roll sleeve 226G.
- the outlet valve 226D can also vary in size, and the size can depend at least in part on the diameter of the outlet 226 itself.
- the outlet valve diameter Vd of the outlet valve 226D on the container body 250, z.e., not including the flange 226E can be between about 8 mm to 12 mm. In some embodiments, the outlet valve diameter Vd can be between about 9 mm and 10 mm.
- the outlet valve 226D can be in the form of a slit valve having a slit 226H configured to open and allow for the transfer of a material, such as a fluid, therethrough.
- the slit 226H can have a variety of forms and sizes. For example, as shown in FIG. 12 A, the slit 226H has a cross or X shape.
- the slit 226H can vary in size, but in an exemplary embodiment it can have a slit length Ls between about 1.5 mm and 5.5 mm. Note the slit length as used herein refers to the length of the longest slit where two or more slits are provided.
- the slit length Ls can be between about 1.5 mm and 2 mm, and the outlet valve 226D can open at the cross-shaped slit 226H when subjected to enough pressure, either internally or externally.
- An opening pressure Po also called a cracking pressure
- the opening pressure Po can be about 300 mmFFO or greater, and more preferably about 600 mmkbO or greater.
- a closing pressure Pc of the outlet valve 226D can vary as well, and can be dependent upon various details of the outlet valve 226D. In some embodiments, the closing pressure Pc can be about 400 mmkbO or less. In other embodiments, the closing pressure Pc can be about 300 to 400 mmkbO less than the cracking pressure.
- FIGS. 12B-12F the outlet valve head 226F begins to move downward, subject to some pressure, rolling about the outlet valve sleeve 226G.
- FIG. 12C the outlet valve sleeve 226G is fully unrolled.
- FIG. 12D the outlet valve head 226F begins to flatten, and then at FIG.
- the opening pressure Po is achieved, forcing the slit 226H open and dispensing an additive.
- the pressure differential across the valve 226D quickly dissipates, and the valve head 226F can return to its typical position.
- the slit 226H can open inwardly, as shown in FIG. 12F, before finally reaching a rest state and returning to the position depicted in FIG. 12A.
- an internal pressure on the outlet valve 226D can cause the outlet valve 226D, after opening, to return to the state depicted in FIG. 12B, and the outlet valve 226D may never fully return to the state shown in FIG. 12 A.
- the inlet valve 224D can be positioned in the same orientation as the outlet valve 226D.
- fluid flows through the inlet valve 224D in the opposite direction as the fluid flowing through the outlet valve 226D, z.e., fluid flows into the ingredient container 200 through the inlet valve 224D but flows out of the ingredient container 200 through the outlet valve 226D, all while the inlet and the outlet valves 224D, 226D are positioned in the exact same orientation.
- the inlet valve 224D does not undergo the same series of steps shown in FIGS. 12A-12F when fluid flows therethrough. Instead, the inlet valve begins in the state shown in FIG.
- the inlet valve 224D merely opens in a manner similar to the state shown in FIG. 12F, but facing the direction shown in Figure 12 A, thus allowing fluid to flow through the opening. Because fluid is flowing through the inlet valve 224D in a direction that is opposite a direction of fluid flowing through the outlet valve 226D, the inlet valve 224D does not undergo the series of steps involving rolling to an expanded state and then opening, as depicted in FIGS. 12B-12E.
- the lid 210 can also include a lid cover 240, shown in FIGS. 11 and 13, which can be connected to the rear wall 233 by various means, including by a hinge 234 (e.g., a living hinge).
- the lid cover 240 can include an inlet cover 242 and an outlet cover 244, which are sized to respectively close the inlet 224 and the outlet 226 on the lid base 220.
- Each of the inlet cover 242 and the outlet cover 244 can include respective inlet and outlet cover collars 242A, 244A that are sized to be internally received by the inlet collar 224B and the outlet collar 226B, as seen in the cross-section of FIG. 14.
- the outlet cover 244 can also include a central plug 244B that is sized to be internally received by the outlet 226 itself.
- the central plug 244B can operate to prevent premature opening of the outlet valve 226A.
- the central plug 244B can protrude out from the lid cover 240 beyond the protrusion distance of the outlet cover collar 244A in order to facilitate closure of the outlet 242 when the lid cover 240 is in the closed position.
- the lid can include features to hold the cover 240 in an open position.
- the lid base 220 can include a back side 235 having a substantially flat central face 236 with a width that is substantially equal to a width of the lid cover 240.
- One or more lid cover retention features 236 can be located at an upper end of the back side 235 near the hinge 234. These features 236, which can be in the form of cut-outs or recesses, can secure the lid cover 240 when the lid cover 240 is in an open position.
- the lid cover 240 can include cover tabs 246 extending from at least one side of the lid cover 240.
- the cover tabs 246 can extend into the cover retention features 236 to assist in retention of the lid cover 240 in the open position.
- the inlet and outlet cover collars 242A, 244A can extend into and frictionally engage the inlet 224 and the outlet 226. This frictional engagement can assist in retention of the lid cover 240 in the closed position.
- the inlet and outlet cover collars 242A can prevent the inlet and outlet valves 224D, 226D from opening prematurely, such as during transportation.
- the outlet valve 226D can be prevented from rolling about the roll sleeve 226G as illustrated in FIGS. 12B-12D.
- FIG. 16 depicts an underside of the lid 210.
- the lid base 220 can have a divided, arcuate rim 229 that is sized to couple with the neck 260 (not shown) of the container body 250.
- the arcuate rim 229 can couple to the neck 260 (not shown) of the container body 250 (not shown) via a snap-fit, threads, and the like.
- the arcuate rim 229 can include an internal lip 229A that is configured to interface with the flange 264 located on the neck 260. This engagement can be seen especially in FIG. 8C.
- the arcuate rim 229 includes a ridge that engages a corresponding feature on the neck 260 to form a snap-fit connection.
- the physical structure of the arcuate rim 229 may change accordingly. While not shown, a seal such as an O-ring can be disposed within the rim 229 to aid in coupling the lid 210 to the container body 250.
- the recesses 228 can occupy the entirety of the space found between the inlet and outlet valve frames 224C, 226C, and the arcuate rim 229.
- the recesses 228 can change in form depending upon other features located on the lid 210, such as the inlet collar 224 A, the outlet collar 226 A, the inlet valve frame 224C, the outlet valve frame 226C, the arcuate rim 229, the retention pattern 230, and more.
- the recesses 228 can occupy only a portion of this space.
- FIGS. 17-22 depict the ingredient container 200 retained within the carriage assembly 100.
- FIG. 18 depicts the carriage assembly 100 with the carriage housing 110A (not shown) and the right carriage 120R (not shown) removed. With the right carriage 120R removed, the fluid outlet 114 is more visible.
- FIGS. 19-22 depict the ingredient container 200 seated within a carriage 120 in greater detail and from various angles to illustrate components on the ingredient container 200 and the carriage 120 coupling together.
- the lid cover 240 can be retained in the open position, as explained above.
- the carriage 120 can be lowered to expose the carriage face 130, and the ingredient container 200 can be aligned with the carriage face 130 and pressed down so that the carriage inlet 134 engages the inlet 224 and the carriage outlet 136 engages the outlet 226.
- the flanking protrusions 138 can extend into the recesses 228, as best shown in FIG. 20.
- Both the carriage inlet 134 and the carriage outlet 136 can extend respectively into the inlet 224 and the outlet 226, and the inlet collar 224A and the outlet collar 226 A can extend circumferentially around the carriage inlet 134 and the carriage outlet 136, as best shown in FIGS. 21 and 22.
- the retainer 139 can also snap into the receivers 232, which may provide an audible signal for a user to know that engagement is successful, such as an audible click when the retainer 139 is engaged and no longer under tension.
- the rectangular cutout 131 in the carriage face 130 can receive the lid cover 240 when the lid cover 240 is in the fully-opened position, as seen in FIG. 19.
- the carriage 120 can be returned to an elevated position. In some embodiments, such movement of the carriage 120 can actuate the corresponding micro-switch 112 and signal to the dispensing system 10 that the container 200 is seated within the carriage assembly 100.
- FIG. 21 depicts cross-sectional views of the container 200 seated within the carriage 120.
- Several distances and dimensions are highlighted relating to the carriage inlet 134, the carriage outlet 136, the inlet 224, and the outlet 226. These distances and dimensions include a distance D between the central longitudinal axis of the inlet 224 and the central longitudinal axis of the outlet 226 and an outlet valve diameter Vd. Also illustrated are a diameter Y1 of the carriage inlet 134, a diameter Y2 of the carriage outlet 136, and an allowable misalignment 291 between the carriage outlet 136 and the outlet 226.
- the allowable misalignment 291 can define the effective difference in distances between the respective components of the carriage 120 and the container 200, while still enabling a beverage dispensing process to take place.
- the carriage outlet 136 can include an outlet receiver rim 136A (also known as a seal) that is sized to fit within the outlet 226.
- the outlet receiver rim 136A and the outlet 226 can together form a sealing surface such that an additive can be dispensed from the outlet 226 during a beverage dispensing process without concern for leaks or inaccurate dosages.
- the rim 136A (or seal) can be between about 7 mm to 8mm in diameter.
- the distance D between the inlet and outlet can be between about 11 mm and 15 mm, and in some embodiments it can be about 13 mm.
- Vd can be between about 8 and 11 mm, and in some it embodiments can be about 9.5 mm.
- Y1 can be between about 7.7 mm and 8.1 mm, and in some embodiments it can be about 7.91 mm.
- Y2 can be between about 7.5 mm and 7.9 mm, and in some embodiments it can be about 7.70 mm.
- the allowable misalignment 291 can be between about 0.3 mm and 0.6 mm, and in some embodiments it can be about 0.5 mm.
- a beverage dispensing process can occur using the stored additive.
- a user can select their beverage preferences, specifying details including volume, carbonation level, additive type, additive amount, and more.
- a beverage can be dispensed with the selected characteristics.
- air or another gas including carbon dioxide, nitrogen, oxygen, and the like, can be pumped through the gas line 116 and into the interior of the container body 250 through the inlet port 142 in the carriage 120 and through the inlet valve 244D in the container 200.
- the resulting increase in pressure within the ingredient container 200 can cause the outlet valve 226D to open and additive to dispense through the outlet 226 and the outlet port 244, into a drink container, such as the drinking glass 26 depicted in FIG. 1.
- the additive can be dispensed at a certain dispensing flowrate F under a certain pressure.
- the dispensing flow rate F can be between about 1 mL/sec and 4 mL/sec. In other embodiments, the dispensing flow rate F can be about 2 mL/sec.
- a base liquid such as carbonated water, can also be dispensed from the fluid outlet 114 such that the base liquid and the additive combine in the drinking glass 26.
- the carriage assembly 100 and two ingredient containers 200 can be arranged to minimize a distance between the fluid outlet 114 of the carriage assembly 100 and the outlets 226 of the ingredient containers 200. A bottom perspective of this arrangement is illustrated in FIG. 22.
- each outlet 226 and the fluid outlet 114 can be distinct, the distance between each outlet 226 (and the outlet port 244, in turn) and the fluid outlet 114 can be minimized as a result of the overall carriage assembly 100 configuration.
- the minimization of distance can arise as a result of the position of each outlet 226 on the respective ingredient containers 200, located on a minor axis B-B (not shown).
- the containers 200 can be positioned such that each outlet 226 is centrally located and close to the fluid outlet 114, which can extend between the two carriages 120, as shown above, for example, in FIG. 18.
- the opening pressure Po is the pressure required to open the outlet valve 226D and permit fluid to flow therethrough. Once the outlet valve 226D is open and fluid is dispensed, the built-up pressure will taper off and decrease over time. Eventually, the pressure will reach a value that is too low to keep the outlet valve 226D open. This lower limit is the closing pressure Pc.
- the difference AP between the opening pressure Po and the closing pressure Pc can be optimized so as to not be either too great or too small, as this can affect the overall dosing accuracy during flavoring.
- the overall structure of the outlet valve including its size, shape, and material, can alter the value of the opening pressure Po and closing pressure Pc, which can affect performance of the ingredient container 200.
- opening pressure Po If the opening pressure Po is too high, the dispensing of fluid can become explosive, unmeasured, and/or unpredictable during dispensing, which can result in an overall loss of dosing accuracy. If opening pressure Po is too low, minor fluctuations or disturbances could lead to leaking and accidental discharge of an additive, which could also result in an overall loss of dosing accuracy. If the closing pressure Pc is too high, especially relative to the opening pressure Po (which would result in a small difference AP), then the window at which the outlet valve 226D is open would shrink drastically, which can result in a temperamental valve that is only able to open at a small pressure window.
- outlet valve diameter Vd and the slit length Ls values affecting the dimensions of the outlet 226 and the outlet valve 226D — can effect dosing accuracy if they are too large or small. Forcing an additive out of a too-small or too-large slit 226H or outlet 226 can affect process timing and overall dosing, thereby affecting the accuracy of the dispensing process.
- the DA value can be expressed by the following formula:
- the DA factor in some embodiments can be less than 100 according to the above formula, and it could fall more specifically between about 40 and 70. In further embodiments, the DA factor can be about 55. In systems with a DA factor that is less than 100, beverage making processes can accurately dose an additive to within fractions of a mL.
- an amount of additive such as a fluid
- dispensed during a process can be between about 1.6 mL and 2.0 mL, and in some embodiments can be about 1.8 mL.
- This volume of fluid can be dispensed after gas is pumped into the container for a predetermined time period, such as about 140 ms.
- the amount of fluid dispensed by a container can be proportional to a difference between the opening and closing pressures of a given valve.
- the valve has an opening pressure Po that is about 300 mmlLO or greater, and more preferably is about 400 mmlLO or greater, or even 600 mmlLO or greater; a closing pressure Pc that is less than the opening pressure Po but that is about 100 mmlLO or greater, and more preferably is about 300 mmlLO or greater, or even, in some embodiments, 400 mmlLO or greater; a pressure differential (delta P) that is in range of about 200 mmFLO to 500 mmFLO, and more preferably is about 300 mmlLO to 400 mmFLO, and even more preferably is about 340 mrnFLO; and an outlet valve diameter Vd in a range of about 5 mm to 15 mm.
- Vd can be about 7 mm to 13 mm, and more preferably about 9.5 mm; a slit length Ls in a range of about 1 mm to 5 mm, and
Landscapes
- Devices For Dispensing Beverages (AREA)
- Closures For Containers (AREA)
Abstract
Description
Claims
Applications Claiming Priority (7)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| US17/989,640 US11745996B1 (en) | 2022-11-17 | 2022-11-17 | Ingredient containers for use with beverage dispensers |
| US17/989,642 US11634314B1 (en) | 2022-11-17 | 2022-11-17 | Dosing accuracy |
| US17/989,610 US12084334B2 (en) | 2022-11-17 | 2022-11-17 | Ingredient container |
| US17/989,636 US12103840B2 (en) | 2022-11-17 | 2022-11-17 | Ingredient container with sealing valve |
| US17/989,657 US11738988B1 (en) | 2022-11-17 | 2022-11-17 | Ingredient container valve control |
| US17/989,648 US20240166489A1 (en) | 2022-11-17 | 2022-11-17 | Ingredient Container With Retention Features |
| PCT/US2023/078826 WO2024107563A2 (en) | 2022-11-17 | 2023-11-06 | Ingredient containers for use with beverage dispensers |
Publications (1)
| Publication Number | Publication Date |
|---|---|
| EP4619336A2 true EP4619336A2 (en) | 2025-09-24 |
Family
ID=88833713
Family Applications (2)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| EP23821800.2A Pending EP4619336A2 (en) | 2022-11-17 | 2023-11-06 | Ingredient containers for use with beverage dispensers |
| EP23209898.8A Pending EP4371927A1 (en) | 2022-11-17 | 2023-11-14 | Ingredient containers for use with beverage dispensers |
Family Applications After (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| EP23209898.8A Pending EP4371927A1 (en) | 2022-11-17 | 2023-11-14 | Ingredient containers for use with beverage dispensers |
Country Status (4)
| Country | Link |
|---|---|
| EP (2) | EP4619336A2 (en) |
| CN (1) | CN222109854U (en) |
| AU (1) | AU2023382397A1 (en) |
| WO (1) | WO2024107563A2 (en) |
Family Cites Families (8)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US4706847A (en) * | 1986-05-05 | 1987-11-17 | Senmar Corporation | Dispenser for wine |
| FR2623488A1 (en) * | 1987-11-20 | 1989-05-26 | Gehant Denis | Methods, devices, stoppers and cabinets for dispensing fluid products contained in containers |
| AU2003900129A0 (en) * | 2003-01-10 | 2003-01-23 | Ecokeg Pty Ltd | Storing and dispensing liquids |
| JP4118785B2 (en) * | 2003-10-31 | 2008-07-16 | サーパス工業株式会社 | Connector for liquid delivery from the tank |
| WO2008101275A1 (en) * | 2007-02-19 | 2008-08-28 | Sunbeam Corporation Limited | A composite vessel for storing and dispensing a liquid |
| US8397956B2 (en) * | 2007-03-27 | 2013-03-19 | Aptargroup, Inc. | Dispensing valve with improved dispensing |
| US11027960B2 (en) * | 2015-08-13 | 2021-06-08 | David G. Kraenzle | Apparatus, systems, and methods relating to transfer of liquids to/from containers and/or storage of liquids in containers |
| FR3048171B1 (en) * | 2016-02-25 | 2018-03-30 | Kuantom | APPARATUS FOR MAKING A BEVERAGE |
-
2023
- 2023-11-06 EP EP23821800.2A patent/EP4619336A2/en active Pending
- 2023-11-06 AU AU2023382397A patent/AU2023382397A1/en active Pending
- 2023-11-06 WO PCT/US2023/078826 patent/WO2024107563A2/en not_active Ceased
- 2023-11-14 EP EP23209898.8A patent/EP4371927A1/en active Pending
- 2023-11-17 CN CN202323126052.7U patent/CN222109854U/en active Active
Also Published As
| Publication number | Publication date |
|---|---|
| EP4371927A1 (en) | 2024-05-22 |
| WO2024107563A2 (en) | 2024-05-23 |
| AU2023382397A1 (en) | 2025-05-29 |
| WO2024107563A3 (en) | 2024-08-02 |
| CN222109854U (en) | 2024-12-06 |
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