SINGLE BEVERAGE CONTAINER THERMO ELECTRIC COOLER
Provided are active thermo electric cooling apparatus for self-contained portable cooling or heating of a single beverage container.
This application is related to and claims priority from U.S. Provisional Patent Application No. 62/400,121 filed on Sep. 27, 2016, by Robert D. Battis, et al. titled “Single Beverage Container Thermo Electric Cooler”, which is incorporated herein by reference in its entirety.
FIELD OF THE INVENTIONThis invention relates to a portable thermo electric cooler (“TE cooler”) to cool a person's single beverage when packaged in either a can or bottle or poured into a cup with a lid, designed for the TE cooler.
BACKGROUND OF THE INVENTIONThere is no portable TE cooler device currently on the market that allows a person to cool a single beverage contained within a glass bottle, aluminum can, a plastic bottle or even a cardboard container or plastic pouch.
Existing beverage coolers are sized to accept multiple beverage containers such as a six pack size or larger and either use ice to cool or cool using a thermo electric cooling unit. Ice coolers cool the beverages by imbedding the beverages in the melting ice. coolers that use ice are portable but require logistics to replenish the ice and if ice is not available the cooler does not work. Coolers that use a thermo electric cooling unit cool the beverages by circulating air using a fan inside the closed insulated container. This fan circulates air, past the fins on the thermo electric cooling cold plate thereby eventually cooling all beverages in the closed container. These units typically require 12 volts from an automobile to maintain cooled beverages and as a result are not truly portable.
SUMMARY OF THE INVENTIONCooling a single beverage contained in its can or bottle or the beverage poured into a cup made of stainless steel, aluminum, glass or plastic, can be accomplished by actively cooling the beverage container or cup using a small thermo electric cooler (TE cooler) powered by a self-contained rechargeable or disposable battery. This apparatus is contained within a small insulated cylinder that provides portable immediate cooling. Portable beverage cooling can be maintained until the battery is depleted, likely about 3 hours, at which point a spare battery can be installed or the installed battery is recharged. The single beverage container thermo electric cooler is simply referred to as the single beverage TE cooler.
The single beverage container TE cooler may take on several forms and physical implementations without deviating from the basic intent of this invention.
In the following description, for purposes of explanation, specific numbers, materials and configurations are set forth in order to provide a thorough understanding of the invention. It will be apparent, however, to one having ordinary skill in the art, that the invention may be practiced without these specific details. In some instances, well-known features may be omitted or simplified so as not to obscure the present invention. Furthermore, reference in the specification to “one embodiment” or “an embodiment” means that a particular feature, structure or characteristic described in connection with the embodiment is included in at least one embodiment of the invention. The appearances of the phrase “in an embodiment” in various places in the specification are not necessarily all referring to the same embodiment.
An exemplary embodiment of the present invention single beverage TE cooler, as depicted in
In an exemplary embodiment of the single beverage TE cooler the upper body 10 is permanently attached to a lower body 12 (
In an embodiment of the single beverage TE cooler the lower body 12 (
In one embodiment of the single beverage TE cooler herein described a comparison between a standard 12 oz beverage and this cooler shows the cooler is only about a third larger than the beverage container. This is illustrated in
This embodiment of the invention single beverage TE cooler is illustrated in
On the lower side of the TEC heat sink 24 is located the PCB 30 (printed circuit board) with all electronic parts located on the lower side of the PCB. Included are electronic parts to control battery voltage to the sensitive electronics, TEC drive current, battery charging and safety watchdog circuitry. Also included on the PCB 30 is the control switch 23 and charging receptacle 41 to allow installed battery charging. The PCB 30 is designed with the other side (opposite the parts side) having a non conductive coating or layer to prevent shorting against the metal of the TEC heat sink 24. The PCB 30 has a center hole. The non conductive side of the PCB forms a simple seal with the bottom side of the TEC heat sink 24. On one edge of the PCB is located the control switch 23 which faces outboard. The slide switch or equivalent is designed with a thumb contact or knob that can be inserted from outside the lower body 12 after assembly of all inner parts to the lower body 12. On the opposite side of the control switch 23 on the PCB 30 is located the battery charging receptacle. This receptacle lines up with a hole in the lower body 12 when assembly is complete.
In the center of the PCB is the Fan 35. The fan is located in the centers of both the PCB 30 and TEC heat sink 24. The fan in contact with the PCB 30 and the PCB 30 being in contact with the TEC heat sink 24 forms a simple air seal. This seal is maintained due to the flatness of surfaces or glue may be used if required.
The lower side of the fan 35 is in contact with the base intake frame 40 in order for the fan to direct the air from the lower pressure base intake frame 40 through the higher pressure TEC heat sink 24. No seal is required between the fan 35 and base intake frame 40 since the base intake frame 40 has open channels and the sandwiched stack of base intake frame 40, fan 35 and TEC heat sink 24/PCB 30 forms a closed cavity in which air cannot circulate but only enter through the air inlet ports 21 on the base intake frame 40 and exit though the fan body 35 through the TEC heat sink 24 channels.
The base intake frame 40 may be designed as approximately a ¼ inch section of the lower body 12 part sandwiched between two adjacent lower body 12 pieces, or may be an internal part in the parts stack up and aligned with holes in the lower body 12 during final assembly.
Below the base intake frame 40 and in contact with it is the batteries holder 45. This holder can accommodate 6 lithium ion batteries, or may be redesigned to hold fewer batteries for reduced operating time. The preferred battery is the lithium ferrous phosphate4 (LiFePO4) model 18650 which is rechargeable and has a minimum rating of 1350 mAh. Other rechargeable batteries that are smaller may be used but with reduced cooling time. Also, disposable batteries may be used. The batteries holder 45 has a batteries strap 46 attached to it with the strap nested in the center of the holder and with a length of strap extending out one side of the holder. This strap is used to withdraw all six batteries 50 with a single pull from the batteries holder 45.
Below the installed batteries is a plastic removable battery cover 51 with a latch 60 and two molded-in tabs that act as half hinges which interface with a bottom part of the lower body 12.
In an embodiment of the single beverage TE cooler discussed and illustrated in
Next in the stack-up illustrated in
Next in the stack-up illustrated in
The PCB 30 (
Next in the stack-up illustrated in
In describing one embodiment of the single beverage TE cooler, details common in the industry for aligning parts, attaching parts, wiring and making electrical connections have been omitted as a result of being common practice and widely known.
An embodiment of the single beverage TE cooler illustrated in
An embodiment of the single beverage TE cooler illustrated in
Wherein the existing embodiment of the single beverage TE cooler has focused on cooling beverages it may be used in other ways, for example to cool medicine or baby food.
In a further embodiment of the single beverage TE cooler the cooling function may be reversed and a beverage or food item heated. This is accomplished by adding circuitry to reverse the current in the TEC chip(s) 2 (
The embodiment of the single beverage TE cooler illustrated in
In a further embodiment of the single beverage TE cooler invention an auxiliary stand-off holder may be provided which would allow a particular large size configuration of the single beverage TE cooler invention to be supported in an automobile standard cup holder. This auxiliary stand-off holder may be designed as 2 open frame plastic cylinders with different diameters joined together. The bottom smaller cylinder would fit snugly in an automobile standard cup holder while the larger top cylinder would hold the single beverage TE cooler in its normal upright position. The open frame design of the auxiliary stand-off holder would ensure the air ports on the single beverage TE cooler would not be blocked.
In a further embodiment of the single beverage TE cooler invention an auxiliary beverage cup with tight fitting lid, may be provided. This cup would be designed with an optimum fit for insertion into the upper body 10 and the lid may incorporate a sipping port with a valve to prevent spills. This auxiliary cup may then be used to transfer and cool beverages from non standard or larger beverage containers.
In a further embodiment of the single beverage TE cooler invention the batteries holder 45 (
Separating the lower body 12 into 2 parts (
Providing the capability to separate the batteries from the rest of the TE cooler system affects the electronics controlling the charging receptacle 41 (
In a further embodiment of the single beverage TE cooler invention the premium design with all-encompassing capabilities as exemplified by
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- a) Upper body 10 and lower body 12 replaced with a single body 75. The molded plastic body 75 acts as both a structural support for the single beverage TE cooler and thermal insulation for the TEC cold plate 22. The body 75 part is rigid which means its selected diameter will be a compromise between a larger diameter to fit more beverage containers and a loose fit for some which reduces cooling efficiency. This situation is mitigated by using the auxiliary beverage cup as previously discussed. The one piece body 75 part simplifies single beverage TE cooler assembly.
- b) The thermally conductive insert 19 is eliminated. This results in a slower time to cool a beverage and lowers TEC efficiency due to the small gap between beverage container and inner wall of body 75.
- c) Lower body 12 eliminated which means air exhaust ports 20 are not directed up but radially outward just above air inlet ports 21, but rotated so as not to line up vertically. This means that under the condition of no ambient breeze there will be some mixing of ambient air intake with the hot exhaust air. This will have the effect of lowering unit cooling efficiency.
- d) Possible reduction in size and/or number of TEC chips 2 in order to be compatible with reduced battery capability. This will improve battery life but slow the cooling of a beverage. Adjusting the size and/or number of TEC chips is an engineering trade-off between battery life and beverage cooling time.
- e) Modify control switch 23 to provide only one level of cooling. This simplifies the electronics and reduces the complexity of the PCB 30.
- f) Further reduce complexity of PCB 30 by eliminating micro controller approach and avoid its programming. Eliminate beverage heating function. Eliminate the safety watchdog circuitry which can modify operating performance and replace with simple on-off control to eliminate overheating.
- g) Substitute the preferred replaceable LiFePO4 model 18650 battery for a smaller rechargeable battery with less mAh capacity and design these batteries as non-replaceable. Making the batteries non replaceable eliminates the battery cover 51, latch 60, batteries holder 45, battery strap 46 and simplifies the body 75 part as well as single beverage TE cooler assembly.
- h) Making the batteries 50 non replaceable reduces final assembly cost of the single beverage TE cooler by allowing the assemblies to be glued or ultrasonically welded thus eliminating fasteners.
- i) Eliminate top-small 15 insulated cap.
An embodiment of the simplest and lowest cost single beverage TE cooler illustrated in
The embodiment of the premium single beverage TE cooler illustrated in
The embodiment of the single beverage TE cooler illustrated in
Although the invention herein has been described with reference to particular embodiments, it is to be understood that these embodiments are merely illustrative of the principles and applications of the present invention. It is therefore to be understood that numerous modifications may be made to the illustrative embodiments and that other arrangements may be devised without departing from the spirit and scope of the present invention as defined by the appended claims.
Claims
1. A thermal electric cooling (“TEC”) system for cooling a single beverage, comprising:
- one or more TEC chips with a cold side in thermally conductive communication with a beverage container envelope and a TEC hot side in thermally conductive communication with a hot side radiator, with the hot side radiator heat removed/controlled by a fan expelling ambient air, the TEC chips further controlled by a controller unit operatively attached to a battery, the controller unit further comprising a fixed or variable temperature setting for modulating the current flow from the battery to the TEC chips.
2. The thermal electric cooling (“TEC”) system for cooling a single beverage of claim 1, wherein the beverage container may be any shape container.
3. The thermal electric cooling (“TEC”) system for cooling a single beverage of claim 2, further comprising a removable top, lid, made of any material.
4. The thermal electric cooling (“TEC”) system for cooling a single beverage of claim 1, wherein the beverage container is separated from the battery pack and the beverage container is powered by an external battery
5. The thermal electric cooling (“TEC”) system for cooling a single beverage of claim 1, wherein the beverage container is powered by a dc power source.
6. The thermal electric cooling (“TEC”) system for cooling a single beverage of claim 1, wherein the controller unit is a simple electric circuit.
7. The thermal electric cooling (“TEC”) system for cooling a single beverage of claim 1, wherein the beverage being cooled is medicine,
8. A thermal electric cooling (“TEC”) system for cooling a single beverage, comprising:
- one or more TEC chips with a cold side in thermally conductive communication with a beverage container envelope and a TEC hot side in thermally conductive communication with a hot side radiator, the TEC chips further controlled by a controller unit operatively attached to a battery, the controller unit further comprising a fixed or variable temperature setting for modulating the current flow from the battery to the TEC chips.
9. A thermal electric heating (“TEC”) system for heating a single beverage, comprising:
- one or more TEC chips with a hot side in thermally conductive communication with a beverage container envelope and a TEC cold side in thermally conductive communication with a cold side radiator, with the cold side radiator controlled by a fan expelling ambient air, the TEC chips further controlled by a controller unit operatively attached to a battery, the controller unit further comprising a fixed or variable temperature setting for modulating the current flow from the battery to the TEC chips.
Type: Application
Filed: Sep 27, 2017
Publication Date: Mar 29, 2018
Applicant: Extreme Laser Technologies, Inc. (Princeton, NJ)
Inventors: Wayne T. Armstrong (Placitas, NM), Robert D. Battis (Skilman, NJ)
Application Number: 15/717,032