Liquid dispenser for a cooler
09725296 · 2017-08-08
Assignee
Inventors
Cpc classification
B67D1/0801
PERFORMING OPERATIONS; TRANSPORTING
Y10T29/49718
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
F04D13/086
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B67D1/0004
PERFORMING OPERATIONS; TRANSPORTING
F04D13/068
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
B65D88/54
PERFORMING OPERATIONS; TRANSPORTING
B67D1/00
PERFORMING OPERATIONS; TRANSPORTING
F04D13/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A cooler having a fountain type dispenser that includes a cooler body, a cooler lid and a liquid pump mechanism that is designed to dispense liquid from the cavity of the cooler body. The cooler lid includes at least one pump opening through a body of the cooler lid, the liquid pump mechanism includes a top portion and a bottom portion, an electric pump and a power supply designed to power said electric pump. The electric pump is designed to draw liquid into the bottom portion and to the top portion when the electric pump is activated.
Claims
1. A cooler having a fountain type dispenser comprising: a. a cooler body having a cavity that is configured to contain a liquid, said cavity having a volume of at least one gallon; b. a cooler lid, said cooler lid including a lid bottom portion that is removably connected to a body top portion of said cooler body, a lid top portion of said cooler lid including a recessed portion and at least one pump opening positioned in said recess portion, said at least one pump opening positioned through a body of said cooler lid, said recess portion forming only a portion of said lid top portion, a rotational limit arrangement that limits a rotation distance said liquid pump mechanism can rotate on said lid top portion of said cooler lid; and, c. a liquid pump mechanism for dispensing liquid from said cavity of said cooler body, said liquid pump mechanism including a pump top portion and a pump bottom portion, an electric pump and a power supply to power said electric pump; said electric pump drawing liquid into said pump bottom portion and to said pump top portion when said electric pump is activated, said pump bottom portion fluidly connected or interconnected to said pump top portion, said pump top portion including a dispenser tab and a dispenser head, said dispenser tab causing activation and deactivation of said electric pump when moved between an activation position and non-activation position respectively, said dispenser head enabling liquid that flows to said pump top portion to exit said pump top portion through a dispenser opening in said dispenser head, said pump bottom portion configured to be inserted through said pump opening in said cooler lid when said pump top portion is connected to said recess portion of said lid top portion of said cooler lid, said pump top portion is rotatable on said lid top portion of said cooler lid.
2. The cooler as defined in claim 1, including an electrical connection between said power supply and said electric pump, said pump bottom portion at least partially includes said electric pump and said pump top portion at least partially includes said power supply, said electrical connection including at least one electric wire.
3. The cooler as defined in claim 2, wherein said pump bottom portion fully contains said electric pump and said pump top portion fully contains said power supply.
4. The cooler as defined in claim 1, wherein said dispenser tab is movable forwardly and rearwardly along a longitudinal axis of said dispenser head, at least a portion of the dispenser tab is positioned below and above said dispenser opening in said dispenser head, said dispenser tab biased in a non-activation position.
5. The cooler as defined in claim 1, wherein said liquid pump mechanism is removably connected to said cooler lid.
6. The cooler as defined in claim 1, wherein said lid top portion of said cooler lid including a recessed portion and at least one pump opening positioned in said recess portion, said at least one pump opening positioned through a body of said cooler lid, said recess portion forming only a portion of said lid top portion, said recess portion of said lid top portion includes a top lid and configured such that a majority of said pump top portion of said liquid pump mechanism is positioned below said top lid of said recess portion.
7. The cooler as defined in claim 1, wherein at least a portion of said rotational limit arrangement is configured such that said pump top portion of said liquid pump mechanism rotates less than 360° when connected to said lid top portion.
8. The cooler as defined in claim 1, wherein said cooler lid includes a dispenser tab cavity, said dispenser tab cavity configured to inhibit movement of said dispenser tab and to maintain said dispenser tab in said non-activation position when said pump top portion is moved in said recess portion of said lid top portion such that said dispenser tab is positioned in said dispenser tab cavity.
9. The cooler as defined in claim 8, wherein said dispenser tab cavity is positioned adjacent to said recess portion of said lid top portion.
10. The cooler as defined in claim 1, wherein said lid top portion of said cooler lid includes at least one structure selected from the group consisting of a handle portion positioned on an outer peripheral region of said cooler lid and a cup cavity.
11. The cooler as defined in claim 1, wherein said dispenser head includes a fluid channel that is angled upwardly at about 1-10°.
12. A method for converting a cooler into a cooler having an electric dispenser comprising: a. providing a cooler, said cooler having a cooler body and a cooler lid, said cooler body having a cavity that is configured to contain a liquid, said cavity having a volume of at least one gallon, said cooler lid including a lid bottom portion that is removably connected to a body top portion of said cooler body, a lid top portion of said cooler lid including at least one pump opening, said at least one pump opening positioned through a body of said cooler lid; b. providing a liquid pump mechanism to dispense liquid from said cavity of said cooler body, said liquid pump mechanism including a pump top portion and a pump bottom portion, an electric pump and a power supply to power said electric pump; said electric pump drawing liquid into said pump bottom portion and to said pump top portion when said electric pump is activated, said pump bottom portion fluidly connected or interconnected to said pump top portion, said pump top portion including a dispenser tab and a dispenser head, said dispenser tab causing activation and deactivation of said electric pump when moved between an activation position and non-activation position respectively, said dispenser head enabling liquid that flows to said pump top portion to exit said pump top portion through a dispenser opening in said dispenser head, said pump top portion is rotatable on said lid top portion of said cooler lid, said lid top portion of said cooler lid includes a rotational limit arrangement that limits a rotation distance said pump top portion can rotate on said lid top portion, said liquid pump mechanism is removably connected to said lid top portion; and, c. connecting said liquid pump mechanism to said cooler lid by inserting said pump bottom portion through said pump opening in said cooler lid, then connecting said pump top portion to said lid top portion, and then connecting said lid top portion to said cooler lid, said pump top portion moveable relative to said lid top portion.
13. The method as defined in claim 12, wherein said rotational limit arrangement includes at least one rotational slot in said recess portion of said lid top portion, said pump top portion of said liquid pump mechanism including at least one positioning tab that is configured to engage said at least one rotational slot when said liquid pump mechanism is connected to said recess portion of said lip top portion of said cooler lid, at least a portion of said rotational limit arrangement is configured such that said pump top portion of said liquid pump mechanism rotates less than 360° when connected in said recess portion of said lid top portion.
14. The method as defined in claim 13, wherein said recess portion of said lid top portion includes a top lid and the recess portion is configured such that a majority of said pump top portion of said liquid pump mechanism is positioned below said top lid of said recess portion.
15. The method as defined in claim 13, wherein said cooler lid includes a dispenser tab cavity, said dispenser tab cavity configured to inhibit movement of said dispenser tab and to maintain said dispenser tab in said non-activation position when said pump top portion is moved in said recess portion of said lid top portion such that said dispenser tab is positioned in said dispenser tab cavity, said dispenser tab cavity is positioned adjacent to said recess portion of said lid top portion.
16. The method as defined in claim 12, wherein said lid top portion of said cooler lid includes at least one structure selected from the group consisting of a handle portion positioned on an outer peripheral region of said cooler lid and a cup cavity.
17. The method as defined in claim 12, wherein said pump bottom portion fully contains said electric pump and said pump top portion fully contains a power supply, an electrical connection that is used to provide current to said electric pump that is located between said pump top portion and said pump bottom portion is fully positioned inside an elongated body that is positioned between and fluidly connected to said pump top and bottom portions, said electrical connection isolated from fluid flowing through said elongated body as fluid flows from said pump bottom portion through said elongated body portion and to said pump top portion.
18. The method as defined in claim 12, wherein said pump bottom portion includes a bottom opening and a plurality of base ribs extending downwardly from a bottom surface of said pump bottom portion, said base ribs preventing sealing of said bottom opening with a bottom surface of said cavity of said cooler when said pump bottom portion is placed in said cavity of said cooler.
19. The method as defined in claim 12, wherein said dispenser head includes a fluid channel that is angled upwardly at about 1-10°.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) Reference may now be made to the drawings, which illustrate several non-limiting embodiments that the invention may take in physical form and in certain parts and arrangements of parts wherein;
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DETAILED DESCRIPTION OF NON-LIMITING EMBODIMENTS
(20) Referring now to the drawings wherein the showings are for the purpose of illustrating non-limiting embodiments of the invention only and not for the purpose of limiting same,
(21) The cooler body is not limited in shape, size, material or color. Generally, the cooler body is formed of a durable material such as a plastic material; however, other or additional materials can be used. The cooler body generally is formed of multiple layers to facilitate in the insulation of a liquid in the interior of the cooler body; however, this is not required. The cooler body includes an internal cavity 202 that is designed to hold a liquid. The capacity of the internal cavity is non-limiting. Generally the internal cavity is designed to hold 1-60 gallons of liquid; however, other sizes can be used. The general shape of the internal cavity is generally cylindrical as illustrated in
(22) The top portion 210 of the cooler body generally includes a threaded region 212 that is designed to engage a corresponding threaded region on the cooler lid 300 so that the cooler lid can be connected and disconnected from the top portion of the cooler body; however, this is not required. The threaded region can fully or partially encircle the top portion of the cooler body. As illustrated in
(23) The top portion of the cooler body can optionally include one or more handles 214, 216. The number of handles, and the size and shape of the one or more handles are non-limiting. Generally the one or more handles are integrally formed with and non-detachable from the cooler body; however, it can be appreciated that the handles can be designed to be detachable from the body of cooler body.
(24) The cooler body can optionally include one or more outer surface structures that can be used to facilitate in the carrying of the cool body, movement of the cooler body and/or the securing of the cooler body to a fixture. The number, shape and size of the outer surface structures are non-limiting. As illustrated in
(25) The cooler lid 300 is designed to be removable connected to the cooler body; however, this is not required. The cooler lid is not limited in shape, size, material or color. Generally, the cooler body is formed of a durable material such as a plastic material; however, other or additional materials can be used. The cooler lid can be formed of multiple layers to facilitate in the insulation of a liquid in the interior of the cooler body; however, this is not required. The materials used to form the cooler lid can be the same or different from the materials used to form the cooler body. The bottom of the cooler lid includes one or more threads that are designed to engage with the threaded region 212 on the cooler body to facilitate in the connection and detachment of the cooler lid from the cooler body. As can be appreciated, the cooler lid can include other or additional structures to enable the cooler lid to be connected to the cooler body in other ways.
(26) The cooler lid is generally shaped such that when connected to the top portion of the cooler body, one or more corresponding structures on the cooler body and cooler lid are aligned; however, this is not required. For example, the cooler lid includes two handle portions 310, 312. The handles are generally positioned on the outer peripheral regions of the cooler lid; however, this is not required. These handle portions can be used to facilitate in the insertion and/or removal of the cooler lid form the cooler body. As illustrated in
(27) As illustrated in
(28) The top portion of the cooler lid can include a recessed pump cavity 330. As illustrated in
(29) The bottom surface of the recessed pump cavity includes a pump opening 340. The pump opening passes fully through the cooler lid as illustrated in
(30) Positioned about the pump opening is one or more rotational slots 350, 352. The one or more slots may or may not fully through the cooler lid. The one or more rotational slots can fully or partially encircle the pump opening. As illustrated in
(31) The cooler lid can optionally include a dispenser tab cavity 360. The dispenser tab cavity, when used, can be positioned on one or more sides of the recessed pump cavity. As illustrated in
(32) Referring now to
(33) The liquid pump mechanism 400 includes a top portion 410, an elongated body 440 and a bottom portion 460. The materials and/or colors of the components of the liquid pump mechanism are non-limiting.
(34) As illustrated in
(35) As best illustrated in
(36) Positioned in the interior 472 of the body 462 of the bottom portion 460 is an electric pump 480. The electric pump is designed to rotate a blade 482 which causes liquid in the cooler body to be drawn through opening 470 and into the interior 472 of bottom portion 460 as illustrated by the arrows in
(37) A top opening 490 is positioned at or near the upper tapered end 464 of the bottom portion. As illustrated in
(38) Generally, the lower end of the elongated body 440 is irremovably connected to the bottom portion 460; however this is not required. The elongated body is illustrated as having a generally cylindrical shape; however, the elongated body can have other or additional shapes. The cross-section shape and size of the elongated body is illustrated as being generally uniform along most of the longitudinal length of the elongated body; however, it can be appreciated that the cross-section shape and/or size of the elongated body can vary along the longitudinal length of the elongated body. The length of the elongated body is non-limiting. In one non-limiting design, the elongated body has a length of about 2-50 inches, and typically about 5-30 inches. The cross-section size of the elongated body is also non-limiting. In one non-limiting design, when the elongated body has a circular cross-section shape, the diameter is about 0.25-3 inches, and typically about 0.5-2 inches. One or more portions of the elongated body can be designed to be flexible and/or be formed of a flexible material; however, this is not required. When the elongated body is designed to be partially or fully flexible, such a design allows the elongated body to be more conveniently positioned in different shaped and sized containers. In one non-limiting design, the elongated body is formed of a flexible tubular material. The tubular material can be clear, partially clear, or colored or coated to partially or fully prevent viewing of the interior of the elongated body. Generally the elongated body is a single, flexible piece of material; however, this is not required.
(39) As mentioned above, the interior of the elongated body includes one or more passageways 444 to enable liquid to flow from the lower end of the elongated body to the upper end 446 of the elongated body 440. The lower end 442 is illustrated as being stretched about connection flange 492 on the bottom portion. An adhesive can also be used to secure the elongated body to the bottom portion; however, this is not required. The outer surface of the connection flange 492 can include one or more connection ribs 493 to facilitate in maintaining the connection between the elongated body and the bottom portion; however, this is not required. As can be appreciated, other or additional arrangements can be used to form a connection between the bottom portion and the elongated portion. Generally, the connection between the bottom portion and the elongated body forms a liquid proof seal; however, this is not required.
(40) The elongated body can include one or more inner passageways. The inner passageway 444 of the elongated body can include one or more electric wires 500, 502; however, this is not required. The electric wires can be coated with an insulating and/or protective material 504, 506; however, this is not required. When the power supply for the electric pump is partially or fully positioned in the top portion 410 and/or elongated body 440, one or more electric wires are typically positioned in one or more portions of the inner passageway of the elongated body so as to electrically connect the electric pump to the power supply. When one or more electric wires are positioned in the inner passageway of the elongated body, the one or more electric wires can be isolated from the liquid in the inner passageways; however, this is not required. The isolation of the one or more electric wires has one or more advantages, namely 1) the one or more electric wires are not damaged by the liquid, and/or 2) the liquid is not contaminated by the one or more electric wires. The isolation of the one or more wires, when used, can be achieved in several ways such as, but not limited to, 1) creating a separate passageway in the interior of the elongated body for the one or more electric wires which separate passageway is not in fluid communication with the one or more passageways for the liquid, 2) encasing the one or more electric wires in a tubing or other type of material, which tubing or material, and/or 3) coating the one or more electric wires with a coating (e.g., plastic coating, etc.). As illustrated in
(41) Referring now to
(42) As illustrated in
(43) The body 412 of the top portion 410 of the liquid pump mechanism 400 has a generally oval or circular cross-sectional shape; however, it will be appreciated that the body can have many different shapes and/or sizes. The maximum cross-sectional size of the body is generally selected so that the body properly fits in the recessed pump cavity of the cooler lid and larger than in the pump opening in the recessed pump cavity. Such a design can be used to prevent the top portion from inadvertently falling inside the cooler. However, with respect to the bottom portion and the elongated body, the maximum cross sectional size is generally selected so that the bottom portion and the elongated portion can fit through the pump opening in the recessed pump cavity.
(44) The dispenser head 414 is illustrated as being positioned on the top surface of body 412; however, it will be appreciated that the dispenser head can be positioned on other or additional regions of the body of the top portion. Likewise, dispenser tab 420 is illustrated as being positioned on the dispenser head; however, it will be appreciated that the dispenser tab 420 can be positioned on other or additional regions of the top portion 410. As can further be appreciated, the size and/or shape of the dispenser head and the dispenser tab is non-limiting. The dispenser tab, body of the top portion, and/or the dispenser head can include a safety feature (e.g., tab lock, deactivation switch, dispenser head lock and unlock position, etc.) to prevent inadvertent actuation of the electric pump by a user; however this is not required.
(45) The dispenser head includes a fluid channel 417 that is positioned between and fluidly connected to the dispenser opening 416 and central channel 419. The shape and size of fluid channel 417, dispenser opening 416 and central channel 419 is non-limiting. Fluid channel 417 is generally angled upwardly between the point of connection to the central channel and the fluid channel. The upward angle of the fluid channel can be at a constant slope; however, this is not required. The upward angle is generally at about 1-10°, typically 2-7°, and more typically about 2-5°; however, other angles can be used. As illustrated in
(46) As illustrated in
(47) As illustrated in
(48) The top portion 410 of the liquid pump mechanism is designed to be rotatably connected to the cooler lid; however, this is not required. As illustrated in
(49) The bottom surface 435 of the top portion can also include one or more positioning tabs 441. As illustrated in
(50) As can be appreciated, the cooler lid can be designed for use with two or more liquid pump mechanism; however, this is not required. In such an arrangement, the cooler lid would include a plurality of the structures discussed above to enable two or more liquid pump mechanism to be simultaneously used on the cooler as described above with regard to the single liquid pump mechanism.
(51) The cooler of the present invention has the advantage over the standard dispensers on cooler in that 1) the dispensing arrangement of the present invention can dispense liquids in the cooler even when the liquid level in the cooler is low without having to tip the cooler, 2) the dispensing arrangement provides for more convenient dispensing of liquid from the cooler to a user, and/or 3) the dispensing arrangement can reduce damage to the dispenser during the transport and/or storage of the cooler. As can be appreciated, the cooler lid and/or liquid pump mechanism can be offered or sold separately from and standard cooler. In such a situation, the cooler lid to the standard cooler is merely substituted for the cooler lid and/or liquid pump mechanism. As can be appreciated, the cooler lid and liquid pump mechanism of the present invention can be used on other coolers that can be used with a similar sized top portion or lid. As such, the liquid pump mechanism arrangement can be designed to be used with different coolers that can accommodate the lid that includes the liquid pump mechanism.
(52) As mention above, the ability to swivel the top portion of the liquid pump mechanism has the advantage of moving at least a portion of the dispenser head into the interior region of the cooler lid so as to reduce or prevent damage to the dispenser head when the cooler is being transported or not in use. The swiveling of the top portion can also be used to activate/deactivate the liquid pump mechanism; however, this is not required. The swiveling of the top portion can also be used to stop or limit flow of flow through the liquid pump mechanism; however, this is not required.
(53) It will thus be seen that the objects set forth above, among those made apparent from the preceding description, are efficiently attained, and since certain changes may be made in the constructions set forth without departing from the spirit and scope of the invention, it is intended that all matter contained in the above description and shown in the accompanying drawings shall be interpreted as illustrative and not in a limiting sense. The invention has been described with reference to preferred and alternate embodiments. Modifications and alterations will become apparent to those skilled in the art upon reading and understanding the detailed discussion of the invention provided herein. This invention is intended to include all such modifications and alterations insofar as they come within the scope of the present invention. It is also to be understood that the following claims are intended to cover all of the generic and specific features of the invention herein described and all statements of the scope of the invention, which, as a matter of language, might be said to fall therebetween.