MULTI-CHAMBER BEVERAGE CONTAINER
Disclosed are multi-chamber containers and methods of using the same. The multi-chamber container includes a base and a wall extending upwardly from the base. The wall is longitudinally divided into a top section and a bottom section. The multi-chamber container also includes a partition disposed between the top and bottom sections of the wall for separating a first volume from a second volume. The partition includes at least one deformation region, and the partition is configured to deform about the deformation region in response to a trigger.
This application is a Continuation of International Application No.: PCT/US2015/060852, entitled, “MULTI-CHAMBER BEVERAGE CONTAINER,” filed Nov. 16, 2015, which claims the benefit of U.S. Provisional Application No.: 62/079,597, filed Nov. 14, 2014, the contents of both of which are herein incorporated by reference in their entireties.
TECHNICAL FIELDThe present technology pertains to beverage containers, and more specifically to multiple chamber beverage containers.
BACKGROUNDThe vast majority of edible products available on the market are served in one of two ways. The first way to be served is by a non-disposable container, such as seen in a dine-in restaurant or a bar. The second way is by a disposable container as is, for example, in the case of takeaways. Disposable containers, which are known for their short-term convenience, portability, and, sometimes, one-time use, are not only used for serving solid products, but also liquid ones, such as water, liquid medicine, coffee, and even alcoholic beverages.
When consuming liquid products, it is often the case that one liquid is consumed followed by another in succession. For instance, upon consuming an alcoholic beverage in shot form, an alcohol consumer generally follows it up with another beverage, known as a chaser, to tone down the effect of the stronger shot. The chaser could be any milder beverage such as a beer, juice, or even water. It is recommended that the chaser be consumed immediately after consuming the shot. However, current solutions require the use of multiple disposable containers to consecutively consume these beverages, a practice that is both inefficient and wasteful. Thus, there is a need for disposable containers that allow a series of liquids to be sequentially consumed in a more efficient manner.
SUMMARYDisclosed is a partition for separating a first volume from a second volume. The partition can include at least one deformation region, and the partition can be configured to deform about the deformation region in response to a trigger applied to the partition.
In some embodiments, the deformation region can include at least one of a grooved portion or a corrugated portion. The deformation region can include a first grooved portion having a rectangular cross section disposed on a top surface of the partition, and a second grooved portion having a triangular cross section disposed on a bottom surface of the partition, the first grooved portion disposed directly opposite the second grooved portion.
In some embodiments, the partition can be circular, and the length of the first grooved portion and the length of the second grooved portion can be equal to the diameter of the partition. The partition can include a smart material.
In some embodiments, the trigger can include a mechanical force. The trigger can also include at least one of a temperature change, a stress change, a voltage, a current, or electromagnetic radiation.
In some embodiments, the deformation is at least one of a movement, a rotation, a deflection, a rip, a tear, a segment, a shatter, a dissolution, or a break of the partition. The deformation of the partition can be reversible.
Also disclosed is an apparatus including a base and a wall extending upwardly from the base. The wall is longitudinally divided into a top section and a bottom section. The apparatus also includes a partition disposed between the top and bottom sections of the wall for separating a first volume from a second volume. The partition includes at least one deformation region, and the partition is configured to deform about the deformation region in response to a trigger.
In some embodiments, the deformation region can include at least one of a grooved portion or a corrugated portion. The deformation region can include a first grooved portion having a rectangular cross section disposed on a top surface of the partition, and a second grooved portion having a triangular cross section disposed on a bottom surface of the partition, the first grooved portion disposed directly opposite the second grooved portion.
In some embodiments, the trigger can include a mechanical force applied to the container or the partition. The trigger can also include at least one of a temperature change, a stress change, a voltage, a current, or electromagnetic radiation applied to the container or the partition.
In some embodiments, at least a portion of the partition can be fixedly disposed within the container. The partition can include a smart material.
In some embodiments, the top and bottom sections can be separate components.
In some embodiments, at least a portion of the inner surface of the container can include a ridge for abutting the partition.
In some embodiments, the deformation is at least one of a movement, a rotation, a deflection, a rip, a tear, a segment, a shatter, a dissolution, or a break of the partition. The deformation of the partition can be reversible.
In order to describe the manner in which the above-recited and other advantages and features of the disclosure can be obtained, a more particular description of the principles briefly described above will be rendered by reference to specific embodiments thereof which are illustrated in the appended drawings. Understanding that these drawings depict only exemplary embodiments of the disclosure and are not therefore to be considered to be limiting of its scope, the principles herein are described and explained with additional specificity and detail through the use of the accompanying drawings in which:
Various embodiments of the disclosure are discussed in detail below. While specific implementations are discussed, it should be understood that this is done for illustration purposes only. A person skilled in the relevant art will recognize that other components and configurations may be used without parting from the spirit and scope of the disclosure.
Additional features and advantages of the disclosure will be set forth in the description which follows, and in part will be obvious from the description, or can be learned by practice of the herein disclosed principles. The features and advantages of the disclosure can be realized and obtained by means of the instruments and combinations particularly pointed out in the appended claims. These and other features of the disclosure will become more fully apparent from the following description and appended claims, or can be learned by the practice of the principles set forth herein.
It will be appreciated that for simplicity and clarity of illustration, where appropriate, reference numerals have been repeated among the different figures to indicate corresponding or analogous elements. In addition, numerous specific details are set forth in order to provide a thorough understanding of the embodiments described herein. However, it will be understood by those of ordinary skill in the art that the embodiments described herein can be practiced without these specific details. In other instances, methods, procedures and components have not been described in detail so as not to obscure the related relevant feature being described. The drawings are not necessarily to scale and the proportions of certain parts may be exaggerated to better illustrate details and features. The description is not to be considered as limiting the scope of the embodiments described herein.
As illustrated in
On the other hand, a discontinuity in at least a portion of the inner surface of wall 18 can be formed at the division of top and bottom sections 20 and 22. Such a discontinuity can be created by an inward or outward projection of at least a portion of the inner surface of wall 18. For example, as shown in
The discontinuity in the inner surface of wall 18 can create an abutting surface for positioning and securely fitting partition 14 within container 12. As illustrated in
Referring to
The partition 14 can be configured to deform about the one or more deformation regions 30 in response to a trigger applied to the container 12 and/or the partition 14. As illustrated in
As illustrated in
The deformation of partition 14 can be controlled such that partition 14 deforms into a specific configuration in response to a trigger. For example, characteristics such as shape, size, location, and the like of the one or more deformation regions 30 can be selected to force the partition 14 to deform in a specific direction and/or into a specific configuration. In some cases, the partition 14 can be pre-stressed, pre-strained, or the like to force partition 14 to preferentially deform into a specific configuration. The deformation region 30 can also contain structures, such as a hinged structure, that control the movement of partition 14 during deformation. The deformation of partition 14 can also be controlled by one or more stoppers 28 disposed internally within container 12, or by one or more embedded electromagnetic coils included within the container 12, the partition 14, and/or the wall 18.
A smart material included in the partition 14 can also be used to control the deformation of the partition 14. For example, a partition 14 having a shape-memory smart material can be preconfigured to have a memory of the desired deformed shape. The partition 14 can then respond to a trigger by deforming into the remembered shape. Subsequent removal of the trigger, or application of another trigger, can cause the partition 14 to revert back to it un-deformed shape. Since smart materials have a known response to certain triggers, the trigger applied to the partition 14 having a smart material can also be tailored to control the deformation of partition 14. For example, a specific voltage can be applied to a partition 14 having a piezoelectric smart material to produce a known deformation of the partition 14.
Moreover, the deformation of partition 14 can be reversible. In some cases, the reversal of the deformation of partition 14 can be achieved by reapplying the same trigger to the deformed partition 14, or by applying a different trigger to the deformed partition 14. In other cases, the partition 14 can be configured to revert to its un-deformed state in the absence of a trigger. The reversal of the deformation of partition 14 can re-seal the separate volumes in container 12 and can prevent fluid, solid, or gas communication across the partition 14.
Although the discussion above references a particular configuration of partition 14, it should be understood that various properties of partition 14 can be modified without departing from the spirit of the present disclosure. For example, partition 14 can be made in any shape or size, and can have any number of deformation regions. As previously discussed, the deformation regions of partition 14 can include grooves and/or corrugated lines. However, any other score, mark, notch, indent, scrape, or slit can be used to form the deformation region so long as it does not allow fluid, solid, or gas communication while partition 14 is in its un-deformed state. The deformation regions can be created using any process known in the art, such as by etching, laser etching, stamping, crimping, and the like. In some cases, the partition 14 can have no deformation regions and can instead deform in a random or uncontrollable manner.
In some cases, one or more deformation regions of the partition 14 may be configured not to deform. Moreover, one or more deformation regions may be configured to deform only in response to a specific trigger type, trigger direction, trigger magnitude, or the like. For example,
Although a specific configuration of a multi-chamber container 10 was used as reference to describe various aspects of the present disclosure, it should be understood that the present disclosure is not limited to the specific embodiments illustrated in the figures. The multi-chamber container can have any shape or size and is not limited to the cylindrical shape illustrated in some embodiments. For example,
Having disclosed the basic components and concepts of the multi-chamber container, the disclosure now turns to an example method of using the multi-chamber container. For the sake of clarity, the method is described in terms of multi-chamber container 10, such as shown in
A first fluid, solid, or gas can be added to a first volume comprising the bottom section 22 of the container 12. Once added, the partition 14 can be inserted and secured within the container 12 to prevent the first volume in the bottom section 22 from entering the top section 20. In some cases, the partition 14 can be fixedly attached within container 12. After securing the partition 14, a second fluid, solid, or gas can be added to a second volume comprising the top section 20 of the container 12. In some cases, additional partitions 14 can be inserted and secured within the container 12 to create additional volumes to which a fluid, solid, or gas can be added. A cap 17 can optionally be secured on the open end of container 12 to seal the contents of the second or uppermost volume therein.
Alternatively, the partition 14 can first be inserted and secured within the container 12. In some cases, the partition 14 can be fixedly attached within container 12. A trigger can be applied to the container 12 and/or the partition 14 to enable communication to the bottom section 22, and a first fluid, solid, or gas can be added to a first volume comprising the bottom section 22 of the container 12. The deformation of partition 14 can then be reversed, such as by applying a trigger or by ceasing to apply the trigger. A second fluid, solid, or gas can then be added to a second volume comprising the top section 20 of the container 12. In some cases, additional partitions 14 can be inserted and secured within the container 12 to create additional volumes to which a fluid, solid, or gas can be added. A cap 17 can optionally be secured on the open end of container 12 to seal the contents of the second or uppermost volume therein. In some cases, a detachable base 16 can be used to access the bottom section 22 instead of applying a trigger to deform the partition 14.
When accessing the contents of the multi-chamber container 10, the optional cap 17 can be removed and the contents in the second volume comprising the top section 20 can be accessed. A trigger can be applied to the container 12 and/or the partition 14, and the partition 14 can deform in response to the trigger. From here, communication between the first volume in the bottom section 22 and the second volume in the top section 20 can be enabled, and the contents of the first volume can be accessed. Alternatively, the contents of the first and second volumes can be accessed simultaneously by applying the trigger to the container 12 and/or partition 14 prior to accessing the contents of the second volume. Similar processes as those described above can be used for accessing the contents of a multi-chamber container having multiple partitions 14 forming more than two volumes.
Although a variety of information was used to explain aspects within the scope of the appended claims, no limitation of the claims should be implied based on particular features or arrangements, as one of ordinary skill would be able to derive a wide variety of implementations. Further and although some subject matter may have been described in language specific to structural features and/or method steps, it is to be understood that the subject matter defined in the appended claims is not necessarily limited to these described features or acts. Such functionality can be distributed differently or performed in components other than those identified herein. Rather, the described features and steps are disclosed as possible components of systems and methods within the scope of the appended claims. Moreover, claim language reciting “at least one of” a set indicates that one member of the set or multiple members of the set satisfy the claim.
Claims
1. A device, comprising:
- a partition for separating a first volume from a second volume, the partition comprising at least one deformation region, and the partition adapted to deform about the deformation region in response to a trigger applied to the partition.
2. The device of claim 1, wherein the deformation region includes at least one of a grooved portion or a corrugated portion.
3. The device of claim 1, wherein the deformation region includes a first grooved portion having a rectangular cross section disposed on a top surface of the partition, and a second grooved portion having a triangular cross section disposed on a bottom surface of the partition, the first grooved portion disposed directly opposite the second grooved portion.
4. The device of claim 3, wherein the partition is circular, and wherein the length of the first grooved portion and the length of the second grooved portion are equal to the diameter of the partition.
5. The device of claim 1, wherein the trigger comprises a mechanical force.
6. The device of claim 1, wherein the partition comprises a smart material.
7. The device of claim 6, wherein the trigger comprises at least one of a temperature change, a stress change, a voltage, a current, or electromagnetic radiation.
8. The device of claim 1, wherein the deformation of the partition is reversible.
9. The device of claim 1, wherein the deformation is at least one of a movement, a rotation, a deflection, a rip, a tear, a segment, a shatter, a dissolution, or a break of the partition.
10. An apparatus, comprising:
- a container comprising a base and a wall extending upwardly from the base, the wall longitudinally divided into a top section and a bottom section; and
- a partition disposed between the top and bottom sections of the wall for separating a first volume from a second volume, the partition comprising at least one deformation region, and the partition adapted to deform about the deformation region in response to a trigger.
11. The apparatus of claim 10, wherein the trigger comprises a mechanical force applied to at least one of the container or the partition.
12. The apparatus of claim 10, wherein the partition comprises a smart material.
13. The apparatus of claim 12, wherein the trigger comprises at least one of a temperature change, a stress change, a voltage, a current, or electromagnetic radiation applied to the container or the partition.
14. The apparatus of claim 10, wherein the top and bottom sections are separate components.
15. The apparatus of claim 10, wherein at least a portion of the inner surface of the container comprises a ridge for abutting the partition.
16. The apparatus of claim 10, wherein the deformation region includes at least one of a grooved portion or a corrugated portion.
17. The apparatus of claim 10, wherein the top surface of the partition includes a first grooved portion having a rectangular cross section, and the bottom surface of the partition includes a second grooved portion having a triangular cross section, the second grooved portion disposed directly opposite the first grooved portion.
18. The apparatus of claim 10, wherein the deformation of the partition is reversible.
19. The apparatus of claim 10, wherein the deformation is at least one of a movement, rotation, a deflection, a rip, a tear, a segment, a shatter, a dissolution, and a break of the partition.
20. The apparatus of claim 10, wherein at least a portion of the partition is fixedly disposed within the container.
Type: Application
Filed: May 12, 2017
Publication Date: Nov 30, 2017
Inventors: Justin Grant ALTUS (West Palm Beach, FL), Andrew Gregory LEVIN (Palm Beach, FL)
Application Number: 15/593,514