AU2011243034A1 - Heat exchange unit for self-cooling containers - Google Patents

Heat exchange unit for self-cooling containers

Info

Publication number
AU2011243034A1
AU2011243034A1 AU2011243034A AU2011243034A AU2011243034A1 AU 2011243034 A1 AU2011243034 A1 AU 2011243034A1 AU 2011243034 A AU2011243034 A AU 2011243034A AU 2011243034 A AU2011243034 A AU 2011243034A AU 2011243034 A1 AU2011243034 A1 AU 2011243034A1
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AU
Australia
Prior art keywords
heat exchange
exchange unit
top section
metal
shell
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.)
Granted
Application number
AU2011243034A
Other versions
AU2011243034B2 (en
Inventor
David Cull
Mark Sillince
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Joseph Company International Inc
Original Assignee
Joseph Company International Inc
Priority date (The priority date 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 date listed.)
Filing date
Publication date
Application filed by Joseph Company International Inc filed Critical Joseph Company International Inc
Priority claimed from PCT/US2011/032715 external-priority patent/WO2011133428A1/en
Publication of AU2011243034A1 publication Critical patent/AU2011243034A1/en
Application granted granted Critical
Publication of AU2011243034B2 publication Critical patent/AU2011243034B2/en
Ceased legal-status Critical Current
Anticipated expiration legal-status Critical

Links

Description

HEAT EXCHANGE UNIT FOR SELF-COOLING CONTAINERS
RELATED APPLICATION
[0001] This application is based on U .S. Provisional Application No. 61/327,516 filed April 23, 2010 for Heat Exchange Unit for Self-Cooling Containers and claims the benefit of the filing date thereof.
BACKGROUND OF THE INVENTION FIELD OF THE INVENTION
[0002] This invention relates generally to containers housing a pressurized medium such as self-chilling or self -heating food and beverage containers and more particularly to an improved heat exchange unit which is housed within a self-cooling container for cooling a product such as a food or beverage wherein the heat exchange unit is secured within the container and houses the pressurized medium.
DESCRIPTION OF PRIOR ART
[0003] It has long been desirable to provide a simple, effective and safe device which may be housed within a container such as a food or beverage container for the purpose of cooling or heating a product such as food or beverage on demand. With respect to self- cooling containers, various types of devices have been developed to accomplish such desired self-cooling and various types of refrigerants have been disclosed for accomplishing such cooling. The refrigerant devices may be chemical, electrical, and may include gaseous reactions and the like. Typical of such devices are those disclosed in U.S. Patents 2,460,765; 3,373,581; 3,636,726; 3,726,106; 4,584,848; 4,656,838; 4,784,678; 5,214,933; 5,285,812; 5,325,680; 5,331,817; 5,394,703; 5,606,866; 5,692,381; 5,692,391; 5,655,384; 6,102,108; 6,105,384; and 6,125,649.
[0004] Self-cooling devices utilized in the prior art exemplified by the above- identified patents are generally unsatisfactory. Some of the difficulties which have been encountered are that the devices generally rely on toxic or environmentally unfriendly chemicals, require very bulky pneumatic circuits and cannot economically be used in small containers such as beverage cans or food cans, are rather complex, and thus are expensive to manufacture and maintain and are ineffective. In addition, it has been found that if the pressure within the heat exchange unit increases to a predetermined amount, the portion of the heat exchange unit which carries the dispensing valve may be stressed to such a degree that it moves thereby causing the heat exchange unit to rupture and become unusable, or in the worst case, results in a total failure of the container.
[0005] Referring now more particularly to Figures 1, 2 and 3, there are illustrated three different embodiments of prior art containers within which there is disposed a heat exchange unit (HEU) for cooling a beverage contained within an outer container.
[0006] As shown in Figure 1, the container (10) includes a heat exchange unit (24) disposed therein and which is surrounded by a beverage (26) to be cooled. The container includes a lid (18) which includes a conventional pull tab (12), secured to a panel (14) such that when the pull tab (12) is lifted, the panel (14) is bent into the container (10). The operation of tab (12) extending the tear panel (14) into the container (10) is well known in the art. The lid (18) conventionally includes an angular ridge (20) which is clamped to the top end (22) of the container (10). The HEU (24) houses a cooling medium which under various circumstances can increase in pressure and if the pressure becomes high enough the upper portion (28) of the HEU (24) which includes the crimp (30) that secures the valve (32) to the HEU may expand or rupture, thus creating an ineffective apparatus.
[0007] Figure 2 is another prior art container (40) having an HEU (50) disposed internally thereof to be surrounded by a beverage (42) which is to be cooled. The top of the beverage container (44) as shown at (46) has the conventional pull tab (48) as above described. The HEU (50) includes a dispensing valve (52) secured to the cap (54) which is fitted over the top of the HEU (50) and is secured thereto. The valve (52) is carried by the skirt or flange (54) which is held in place by being crimped over the top (56) of the cap (54). The protective cover (58) is placed over the activating stem of the valve (52) to protect it from inadvertent activation. The HEU (50) and the valve (52) are secured to the bottom (62) of the can (44). Again if over pressure within, the pressurized medium contained internally of the HEU (50) occurs, rupture between the cap (54) and the body of the HEU (50) will result rendering the device unusable. [0008] Referring now particularly to Figure 3, there is shown still another embodiment of a prior art beverage cooling container (112) which includes an HEU (120) having internally thereof an adsorbent (138) which in the preferred embodiment is an activated carbon which receives carbon dioxide under pressure which is inserted through the valve mechanism (124) to enter into the internal part of the HEU through the opening (128) to be adsorbed by the carbon. The valve (124) is held in place by flange (122) which is crimped to the necked in top portion (132) of the HEU (120). A protective cover 150 is placed over the activating stem (130) of the valve (124) to protect it from inadvertent activation. When the activating stem (130) is depressed, the carbon dioxide is desorbed from the carbon to cool the beverage (114). The top (116) of the container (112) includes the typical pull tab (not shown) as above described. Again if the pressurized carbon dioxide contained internally of the HEU (120) over pressurizes, the necked in portion (134) of the HEU (120) will move outwardly causing a release of the valve rendering the device unusable.
[0009] What is needed, therefore, is a device which may be seated in a container and function as a HEU for cooling the contents of the container such as a food or beverage which is simple, effective and safe, even under relatively high pressure situations.
SUMMARY OF THE INVENTION
[00010] An improved HEU for use within a self-cooling container, the HEU comprising a metal shell having a closed bottom and an open top, a compacted adsorbent material disposed internally of the shell, a metal top section having a solid curl at an open upper end thereof fitted over the open end of the shell and secured to the outer surface of the shell by a metal to metal adhesive, bonding the top section to the shell.
BRIEF DESCRIPTION OF THE DRAWINGS
[00011] Figures 1, 2 and 3 illustrate prior art;
[00012] Figure 4 is a perspective view of a completed HEU assembly constructed in accordance with the principles of the present invention;
[00013] Figure 5 is a perspective cross-sectional view of the HEU of Figure 4, taken about the lines 5-5 thereof; [00014] Figure 6 is a perspective view in cross-section of the top section of the HEU as shown in Figure 4; and
[00015] Figure 7 is a partial cross-sectional view in perspective illustrating the attachment of the top section of the HEU to the HEU shell.
DETAILED DESCRIPTION
[00016] Referring now more particularly to Figure 4, there is illustrated a HEU (200) which has a metal shell (202) and a metal top section (204) which is secured to the top of the shell (202) as will be described in more detail below.
[00017] The upper portion of the top section (204) of the HEU terminates in an opening (206) defined by a solid curl (208). The solid curl (208) receives a valve mechanism of the type generally above described in the prior art which is carried by a typical mounting member having a pedestal within which there is sealingly secured the appropriate dispensing valve. The valve includes the typical stem extending through the central opening in the pedestal and on a safety device that will open under excess pressure. The mounting member is inserted into the opening (206) at the top section and the outer periphery thereof and is affixed to the curl (208) by way of a crimping operation as is well known to those skilled in the art. The crimping operation not only secures the valve assembly to the HEU (200) but in addition closes and seals the open upper end of the HEU and the can to which it is affixed typically through the use of a gasket (not shown). A more detailed explanation of the valve and the crimping operation may be found in U.S. Patent No. 6,105,384 which is incorporated herein by this reference and is generally illustrated in Figure 3 hereof and described above.
[00018] The heat exchange unit (200) may contain a refrigerant medium which is any known to the art and which functions to conduct the heat contained within the beverage out of the beverage and into the atmosphere as the refrigerant escapes once the heat exchange unit has been activated. Various types of refrigerants have been disclosed in the prior art patents above referred to. However, the preferred refrigerant medium for the present invention is an adsorbent/desorbent mechanism preferably utilizing materials such as zeolites, cation exchange zeolites, , silica gel, activated carbons and carbon molecular sieves and the like as the adsorbent. These adsorbents are capable of adsorbing under pressure a significant quantity of gas for later release. The gas adsorbed therein can be any suitable gas that is friendly to the atmosphere. Preferably the gas in accordance with the present invention comprises carbon dioxide. The carbon dioxide adsorbed in the adsorbent, preferably activated carbon particles, when released to atmospheric pressure will experience a significant drop in temperature thereby chilling the contents of the beverage which comes into contact with the outer surface of the heat exchange unit (200). A more detailed explanation of the carbon-carbon dioxide adsorbent refrigeration system is contained in U.S. Patent No. 7,185,511 and incorporated herein by reference. Therefore a further and more detailed explanation of the carbon-carbon dioxide refrigerant system will not be provided herein.
[00019] As shown in Figure 5, the metal shell (202) has a closed bottom (203) and an open top (205) which terminates in a rim (207) and is preferably formed from impact extruded aluminum. A carbon member or plug (210) which is a highly compressed body preferably of activated carbon particles and a graphite material with a binder is preformed and is inserted and received internally of the HEU shell and extends substantially upwardly toward and adjacent the upper perimeter (212) of the HEU shell. Through the use of the open ended shell and the preformed plug (210) of carbon material, the maximum amount of adsorbent material can be contained within the HEU. Once the valve, as above described, is secured in place on the top section (204), a pressurized medium such as carbon dioxide is inserted through the valve into the interior of the HEU (200) and is adsorbed by the compressed carbon particles contained within the carbon plug (210). Upon activation of the valve, the carbon dioxide gas is desorbed from the carbon cooling the food or beverage in the container in which the HEU (200) is housed. [00020] As is illustrated in Figure 6, the top section (204) of the HEU (200) is shaped so that a skirt (216) thereof fits over the outer surface (218) of the HEU shell (202). The skirt (216) of the top section (204) includes an inner surface (214) which may define a plurality of grooves such as shown at (220), (222) and (224). The inner surface (214) of the top section (204), receives an appropriate metal to metal adhesive bonding material to permanently secure the top section (204) of the HEU (200) to the HEU shell (202). It should be understood that the top section (204) inner surface may be smooth or may define one or more grooves as desired. Various food grade adhesives may be utilized so long as they permanently bond the top (214) to the shell (202) of the HEU (200) and form a secure seal to retain the pressurized carbon dioxide within the HEU. Examples of such adhesives which may be used are cross-linking adhesives such as epoxies, acrylics and the like.
[00021] The top section (204) may be machined from a blank of appropriate metal such as stainless steel. Preferably, the top section (204) may be die cast from zinc or aluminum. Whether the top section (204) is machined or die cast, or formed by other methods such as eyelet stamping or forming or spinning, it has the required strength to withstand the pressures generated by the pressurized carbon dioxide and even under high temperature conditions will not fail.
[00022] As is shown more clearly in Figure 7, the top section (204) is formed to provide a shoulder or stop (226) which is disposed on the internal surface (214) of the top section (204) and above the grooves (220), (222) and (224) if they are provided. The shoulder (226) is disposed to mate with the rim (207) of the shell (202) of the HEU (200). After the carbon plug (210) has been positioned internally of the shell (202), the top section (204) has the appropriate adhesive applied internally thereof and is then slipped in place over the outer surface (218) of the shell (202) until the rim (207) thereof engages the shoulder (226) whereupon the top section (204) is now in place. Upon setting of the adhesive, the top section (204) is then permanently positioned and held in place and bonded to the shell (202) so that it cannot be removed. It is also contemplated that a seal such as a weld (228) will be formed between the bottom edge (230) of the top section (204) and the outer surface (218) of the shell (202). This seal or weld (228) disposes of an abrupt change in the contour of the container and precludes the possibility of contaminants becoming trapped thereby. [00023] The open upper portion (208) of the top section (204) is formed to provide a solid curl (232) which receives the crimped flange of the outer periphery of the mounting member of the valve as above described. The top section (204) of the HEU (202) is formed, preferably from die cast zinc or aluminum it will be sufficiently strong so as not to crush or move under the pressure which may be generated by the cooling medium such as the carbon dioxide gas, that is adsorbed by the carbon plug (210).
[00024] Through the utilization of a construction such as that illustrated and described above, the maximum amount of highly compressed carbon particles can be received within the HEU shell to maximize the amount of carbon dioxide which can be adsorbed by the HEU. As is well known and described in the prior art, when the valve through which the carbon dioxide is inserted into the carbon plug (210) is activated, the adsorbed carbon dioxide then desorbs from the carbon particles and exits the HEU and in doing so removes heat from the food or beverage surrounding the external surface (218) of the HEU thereby cooling the food or beverage to the desired amount to make it more palatable. As is described in U.S. Patent No. 6,105,384, which is incorporated by reference, a protective food grade coating may be applied to the entire external surface of the HEU to preclude any contamination of the food or beverage surrounding the HEU or the possible alteration of the taste thereof. The coating may be a food grade epoxy lacquer having a thickness of between 4 and 10 microns.
[00025] There has thus been disclosed a HEU which is constructed of materials having sufficient strength and configured to be effective and safe even under relatively high pressure situations.

Claims (12)

WHAT IS CLAIMED IS:
1. A heat exchange unit for housing a pressurized medium for use in cooling a food or beverage disposed within a container and surrounding the heat exchange unit comprising:
a metal shell having an outer surface, a closed bottom and an open upper end terminating in a rim;
a metal top section having an opening defined by a solid curl and a skirt fitted over the open upper end of said metal shell and extending downwardly along the outer surface of said shell; and
a metal to metal adhesive disposed between said top section and said shell to permanently secure said metal top section to said metal shell.
2. A heat exchange unit as defined in claim 1 which further includes compressed carbon particles received within said metal shell.
3. A heat exchange unit as defined in claim 1 wherein said skirt of said top section includes an inner surface, said adhesive being disposed on said inner surface.
4. A heat exchange unit as defined in claim 3 wherein said inner surface of said skirt includes a continuous shoulder disposed intermediate said opening therein and a terminus of said skirt, said rim of said metal shell abutting said shoulder when said top section is placed on said metal shell.
5. A heat exchange unit as defined in claim 2 which further includes a valve secured to said solid curl for injecting a pressurized medium into said heat exchange unit to be adsorbed by said carbon and for desorbing said pressurized medium to cool said food or beverage.
6. A heat exchange unit as defined in claim 1 wherein said metal top section is substantially thicker than said metal shell.
7. A heat exchange unit as defined in claim 6 wherein said metal top section is die cast.
8. A heat exchange unit as defined in claim 6 wherein said metal top section is machined.
9. A heat exchange unit as defined in claim 6 wherein said metal shell and said metal top section are constructed from aluminum and said shell is impact extruded.
10. A heat exchange unit as defined in claim 6 wherein the inner diameter of said skirt is substantially the same as the outer diameter of said metal shell but dimensioned to allow said skirt to slip fit over said metal shell during assembly.
11. A heat exchange unit as defined in claim 2 wherein said pressurized medium is carbon dioxide.
12. A heat exchange unit as defined in claim 3 wherein said inner surface of said top section defines at least one groove and said adhesive indisposed at least within said groove.
AU2011243034A 2010-04-23 2011-04-15 Heat exchange unit for self-cooling containers Ceased AU2011243034B2 (en)

Applications Claiming Priority (3)

Application Number Priority Date Filing Date Title
US32751610P 2010-04-23 2010-04-23
US61/327,516 2010-04-23
PCT/US2011/032715 WO2011133428A1 (en) 2010-04-23 2011-04-15 Heat exchange unit for self-cooling containers

Publications (2)

Publication Number Publication Date
AU2011243034A1 true AU2011243034A1 (en) 2012-11-22
AU2011243034B2 AU2011243034B2 (en) 2014-11-06

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Family Applications (1)

Application Number Title Priority Date Filing Date
AU2011243034A Ceased AU2011243034B2 (en) 2010-04-23 2011-04-15 Heat exchange unit for self-cooling containers

Country Status (9)

Country Link
US (1) US8931302B2 (en)
EP (1) EP2561290A4 (en)
JP (1) JP5846612B2 (en)
CN (1) CN102947654B (en)
AU (1) AU2011243034B2 (en)
BR (1) BR112012027009A2 (en)
MY (1) MY163047A (en)
SG (1) SG184914A1 (en)
WO (1) WO2011133428A1 (en)

Families Citing this family (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN104704305A (en) * 2012-10-15 2015-06-10 约瑟夫国际股份有限公司 Heat exchange unit for self-cooling beverage container
CN105121982B (en) * 2013-01-29 2017-09-29 约瑟夫国际股份有限公司 Carbon dioxide filling device and method for heat exchange unit
JP6786510B2 (en) * 2015-03-20 2020-11-18 ジョセフ カンパニー インターナショナル,インコーポレイテッド A self-cooling food or beverage container with a heat exchange unit that uses liquid carbon dioxide and a dual function valve.
WO2017040925A1 (en) * 2015-09-03 2017-03-09 Joseph Company International, Inc. Beverage filling machine for filling cans having a heat exchange unit secured internally thereof with a liquid beverage
USD997721S1 (en) * 2019-03-08 2023-09-05 Lara Vu Container handle

Family Cites Families (31)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3385078A (en) * 1966-10-28 1968-05-28 Orville J. Teters Evaporation cooler
US3605421A (en) * 1970-02-16 1971-09-20 Earnest H Patrick Cooler
JPS5533827A (en) * 1978-08-31 1980-03-10 Nippon Light Metal Co Ltd Production of shell bonded type vessel
US4417667A (en) * 1980-09-26 1983-11-29 The Continental Group, Inc. Lightweight container
ZA816677B (en) * 1980-09-26 1982-12-29 Continental Group Lightweight container
JPS5852039A (en) * 1981-09-08 1983-03-28 東洋製罐株式会社 Drawn and squeezed metallic vessel with circumferential side surface joint
JPS5978234A (en) * 1982-10-28 1984-05-07 Toyo Seikan Kaisha Ltd Hot-melt adhesive
JPS5984741A (en) * 1982-11-08 1984-05-16 東洋製罐株式会社 Adhesive can made of aluminum
JPS59206731A (en) * 1983-05-10 1984-11-22 Matsushita Electric Ind Co Ltd Pressure sensor
JPS61232151A (en) * 1985-04-04 1986-10-16 東洋製罐株式会社 Bonding can made of aluminum
EP0199279A3 (en) * 1985-04-22 1987-09-23 Karl Huber Verpackungswerke GmbH + Co. Manufacturing process of a folded edge
US5394703A (en) * 1993-05-28 1995-03-07 Microcold Technologies, Inc. Self-chilling food or beverage container
US5427268A (en) * 1993-06-16 1995-06-27 Battelle Memorial Institute Ceramic pressure housing with metal endcaps
JP2585530Y2 (en) * 1993-10-07 1998-11-18 鐘紡株式会社 Binary mixing container
GB2327117B (en) * 1994-11-08 1999-06-02 Joseph Co Heat exchange unit for self-cooling beverage containers
US5655384A (en) * 1995-05-24 1997-08-12 The Joseph Company Self-cooling container including liner member
US5609038A (en) * 1995-08-22 1997-03-11 Halimi; Edward M. Self-chilling beverage container and parts therefor
US6167718B1 (en) * 1997-04-20 2001-01-02 Edward M. Halimi Self-carbonating self-cooling beverage container
US20060201178A1 (en) * 1997-09-19 2006-09-14 Smolko Daniel D Cooling garment
US6253440B1 (en) * 1999-01-13 2001-07-03 Chill-Can International, Inc. Method of manufacturing self cooling beverage container
US6105384A (en) * 1999-01-19 2000-08-22 Chill-Can International, Inc. Self-cooling or self-heating food or beverage container having heat exchange unit with external protective coating
US6102108A (en) * 1999-01-27 2000-08-15 Chill-Can International, Inc. Heat exchange unit having thermally conductive discs having preferential flow paths
US6487766B2 (en) * 1999-02-10 2002-12-03 Chill-Can International, Inc. Manufacturing process for container including a heat exchange unit as an integral part thereof
US6125649A (en) 1999-02-10 2000-10-03 Chill-Can International, Inc. Heat exchanger unit with conductive discs
CA2407018A1 (en) * 2000-04-22 2001-11-29 Jung Min Lee Self-cooling liquid container
US6786062B1 (en) * 2001-11-20 2004-09-07 Harry R. Greenberg Beverage cooling device
US6581401B1 (en) * 2002-03-01 2003-06-24 Michael M. Anthony Self-cooling container with phase locked refrigerant and process of manufacturing the same
JP4686114B2 (en) * 2003-03-18 2011-05-18 ヤマトプロテック株式会社 How to dismantle a fire extinguisher
JP4740420B2 (en) * 2005-02-24 2011-08-03 日本特殊陶業株式会社 Adsorption cylinder for oxygen concentrator and oxygen concentrator
US20070175233A1 (en) * 2006-01-27 2007-08-02 St James David M Self-chilling beverage container and method
US8297072B2 (en) * 2007-10-16 2012-10-30 Millercoors, Llc Container incorporating integral cooling element

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