US20100078010A1 - Insertable Thermotic Module for Self-Heating Can - Google Patents

Insertable Thermotic Module for Self-Heating Can Download PDF

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US20100078010A1
US20100078010A1 US12/630,599 US63059909A US2010078010A1 US 20100078010 A1 US20100078010 A1 US 20100078010A1 US 63059909 A US63059909 A US 63059909A US 2010078010 A1 US2010078010 A1 US 2010078010A1
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container
ink
container according
label
irreversible
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US12/630,599
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Kenneth W. Kolb
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HOT-CAN PLC
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JDavid Trustees NZ Ltd
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Priority claimed from US12/023,093 external-priority patent/US20080271729A1/en
Application filed by JDavid Trustees NZ Ltd filed Critical JDavid Trustees NZ Ltd
Priority to US12/630,599 priority Critical patent/US20100078010A1/en
Publication of US20100078010A1 publication Critical patent/US20100078010A1/en
Assigned to JDAVID TRUSTEES (NZ) LIMITED reassignment JDAVID TRUSTEES (NZ) LIMITED ASSIGNMENT OF ASSIGNORS INTEREST (SEE DOCUMENT FOR DETAILS). Assignors: KOLB, KENNETH W
Assigned to JDT FIDUCIARY LIMITED reassignment JDT FIDUCIARY LIMITED CHANGE OF NAME (SEE DOCUMENT FOR DETAILS). Assignors: JDAVID TRUSTEES (NZ) LIMITED
Assigned to HOT-CAN PLC reassignment HOT-CAN PLC ASSIGNMENT OF ASSIGNORS INTEREST (SEE DOCUMENT FOR DETAILS). Assignors: JDT FIDUCIARY LIMITED
Assigned to HOT-CAN INTELLECTUAL PROPERTY SDN. BHD. reassignment HOT-CAN INTELLECTUAL PROPERTY SDN. BHD. CORRECTION ON COVERSHEET OF THE ASSIGNEE NAME AND ADDRESS PREVIOUSLY RECORDED ON REEL 028834 FRAME 0226 Assignors: JDT FIDUCIARY LIMITED
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    • BPERFORMING OPERATIONS; TRANSPORTING
    • B65CONVEYING; PACKING; STORING; HANDLING THIN OR FILAMENTARY MATERIAL
    • B65DCONTAINERS FOR STORAGE OR TRANSPORT OF ARTICLES OR MATERIALS, e.g. BAGS, BARRELS, BOTTLES, BOXES, CANS, CARTONS, CRATES, DRUMS, JARS, TANKS, HOPPERS, FORWARDING CONTAINERS; ACCESSORIES, CLOSURES, OR FITTINGS THEREFOR; PACKAGING ELEMENTS; PACKAGES
    • B65D81/00Containers, packaging elements, or packages, for contents presenting particular transport or storage problems, or adapted to be used for non-packaging purposes after removal of contents
    • B65D81/34Containers, packaging elements, or packages, for contents presenting particular transport or storage problems, or adapted to be used for non-packaging purposes after removal of contents for packaging foodstuffs or other articles intended to be cooked or heated within the package
    • B65D81/3484Packages having self-contained heating means, e.g. heating generated by the reaction of two chemicals
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F24HEATING; RANGES; VENTILATING
    • F24VCOLLECTION, PRODUCTION OR USE OF HEAT NOT OTHERWISE PROVIDED FOR
    • F24V30/00Apparatus or devices using heat produced by exothermal chemical reactions other than combustion

Definitions

  • the present invention relates to self-heating (or self-cooling) cans or other containers holding beverages, food, medicine, epoxy resins and other materials that it is desired to heat (or cool) before consuming or using.
  • the present invention relates to an improved thermic module for such self-heating (cooling) containers.
  • Containers may have integral or separate insertable modules for warming materials in the container, such as Japanese sake, coffee, or soup.
  • Examples of such self-heating containers with integral thermic modules are disclosed in U.S. Pat. Nos. 5,461,867 and 5,626,022, issued to Scudder et al and an example of a separately insertable module is disclosed in U.S. Pat. No. 6,134,894 to Searle, et al.
  • Such containers typically include an outer can or body, in which the food or beverage is sealed and an elongated cavity or chamber which extends into the container body from the bottom end. The cavity is sized to accommodate the thermic module.
  • the thermic module normally contains two chemical reactants which are stable when separated from one another, but when mixed in response to actuation of the thermic module by a user, produce an exothermic reaction (or, alternatively, an endothermic reaction) and thereby heat (or cool) the contents of the container.
  • This elongated cavity functions as both a chamber in which to contain the reaction and a heat-exchanger for transferring heat between it and the surrounding contents of the container body.
  • the thermic module usually has two chambers, each of which contains one of the chemical reactants, separated by a breakable barrier such as metal foil.
  • one of the reactants is a liquid, and the other is in a powdered or granular solid form.
  • Calcium oxide (quicklime or CaO) and water are examples of two reactants known to produce an exothermic reaction to heat the container contents.
  • Other combinations of reactants e.g. ammonium nitrate and water
  • the bottom of the thermic module cavity is normally closed off by an end-cap.
  • the outside of the end-cap will serve as an actuator button that a user may depress to initiate the heating or cooling.
  • the end-cap typically has a pushrod or similar prong-like member that extends from the actuator button nearly to the breakable barrier. Depressing the actuator button forces the prong into the barrier, puncturing it and thereby allowing the reactants to mix.
  • the heat produced by the resulting exothermic reaction (or, alternatively, used by a resulting endothermic reaction) is transferred from the reaction chamber of the thermic module to the contents of the container body by conduction.
  • the end of the container body opposite the cavity has a seal or closure, such as conventional beverage container pull-tab or pop-top, which may be opened and through which the user may consume the heated or cooled contents.
  • FIG. 1 is a cut-away view of one embodiment of the self-heating container of the present invention.
  • FIG. 2 is an exploded view of the container seen in FIG. 1 .
  • FIG. 3 is a cross-sectional view of the lower portion of the container seen in FIG. 1 .
  • FIG. 4 is a perspective view of the liquid reactant cup of one embodiment of the present invention.
  • FIG. 5 is a perspective view of the end ring of one embodiment of the present invention.
  • FIGS. 6A and 6B are cross-section views illustrating a nipple attachment of one embodiment of the present invention.
  • FIG. 7 illustrates a lip protector device employed in one embodiment of the present invention.
  • FIG. 8 illustrates sections of thermographic ink which could be utilized in an embodiment of the present invention.
  • FIG. 9 illustrates one embodiment of a thermographic ink indicator.
  • FIGS. 10A and 10B are charts illustrating temperature change in the contents of the beverage space in the self-heating container.
  • FIG. 1 illustrates one embodiment of a self-heating container 1 of the present invention.
  • Container 1 will generally comprise a container body 2 being formed by body sidewalls 8 , lid 3 , and inner walls 7 .
  • Lid 3 will normally include a conventional pop top opening or pull tab 4 such as found on typical soda cans.
  • inner wall 7 has upwardly extending inner walls 7 a and inner top wall 7 b.
  • FIG. 6A the space between body side walls 8 , inner sidewalls 7 , and lid 3 will form an enclosed volume 6 for receiving a food or beverage substance.
  • An internal cavity 10 will be formed by sidewalls 7 extending up into enclosed volume 6 . While not explicitly shown, the inner walls 7 a could be fluted to provide more surface area to facilitate heat transfer from internal cavity 10 to the contents enclosed within volume 6 .
  • breakable barrier 24 will separate the interior space of liquid reactant cup 15 from the area of internal cavity 10 above cup 15 .
  • breakable barrier 24 will be formed of a metal (such as aluminum) foil material approximately 10 ⁇ m to 60 ⁇ m thick and more preferably 20 ⁇ m to 40 ⁇ m thick. It will be understood that a punch member 23 may be moved upward by a user (as explained in more detail below) in order to puncture breakable barrier 24 and allow the solid and liquid reactants to mix.
  • FIG. 1 also shows a cover or label of shrink wrap material formed on body 2 .
  • the cover will be formed of two layers of material.
  • the inner layer will comprise a polyethylene foam sheet 41 approximately 0.5 mm in thickness such as is available from TOSIN PACKAGING of Selangor, Malaysia.
  • the outer layer will be a polyvinyl-chloride (PVC) shrink film 40 which is approximately 50 um in thickness and has a shrinkage of approximately 58%.
  • PVC polyvinyl-chloride
  • foam sheet 41 will laminated to the PVC film prior to the film being applied to a container.
  • the PVC film 40 is reverse side printed with a solvent based ink.
  • the non shrinking foam sheeting is then laminated to the PVC film using a water soluble adhesive which will not adversely affect the ink on the PVC film. If multiple labels are formed on a single sheet of the foam insulation/PVC film label, then the individual labels are cut from the sheet and rolled into a tube shape. A thin (e.g. 0.5 cm) strip of clear PVC shrink film having a solvent based adhesive applied thereto may be used to glue together the overlapping edges of the tube.
  • the bottom portion of container 1 will accommodate the means for puncturing breakable barrier 24 and allowing the solid and liquid reactants to mix.
  • These elements located in the bottom portion of this embodiment of container 1 generally form the “thermic module” when charged with reactants and are seen individually in the exploded view of FIG. 2 .
  • These elements include liquid reactant cup 15 , absorbent material ring 25 , end ring 27 and end cap 32 .
  • Absorbent material ring 25 may be formed of a paper towel type material and in the embodiment shown, will be about 1 mm to about 4 mm thick and will have a center opening 26 . As better seen in FIG.
  • end ring 27 will have a crimping edge 28 for attachment to container body 2 and the center opening of end ring 27 will be covered with a breakable barrier 29 .
  • end ring 27 will be of the same material as container body 2 (e.g. aluminum) to allow crimping edge 28 to crimp onto the bottom of body 2 .
  • breakable barrier 29 may be formed of a metal foil and will be approximately 10 ⁇ m to 100 ⁇ m but in a preferred embodiment is 40 ⁇ m to 60 ⁇ m thick to better withstand the retort process.
  • Breakable barrier 29 will be attached to the inner rim 31 by an adhesive, spot welding, ultra sonic welding, seaming, or any other suitable means which allows for a hermetic seal that can withstand the pressures and temperatures of a conventional retort process, which will vary depending on the product to be retorted but are generally between 10 and 20 psi, 120 and 145° C. for 20 to 45 minutes, yet which may be easy broken by the cutting projections 36 which are explained in greater detail below.
  • end cap 32 will be formed of a polymer material which in one embodiment is polypropylene. End cap 32 will have a raised side rim 35 and a grated center portion 33 . Center portion 33 is grated in the sense that the material has been removed from certain sections 34 of center portion 33 in order to allow center portion 33 to more easily flex inward when force is applied to it. In the embodiments shown, the sections 34 of removed material are in the form of incomplete concentric rings. In other words, small segments of material are left in place along the otherwise complete ring of removed material.
  • Liquid reactant cup 15 will include side wall 22 , outer shoulder 16 , perimeter flange 18 , and flexible bottom 21 .
  • flexible bottom 21 will have a series of indentions 30 extending radially from the center of flexible bottom 21 toward perimeter flange 18 . Indentions 30 will allow bottom 21 to more easily flex inward without mechanical failure of the material.
  • Liquid reactant cup 15 will also include a series of vent passages 17 which pass through outer shoulder 16 (as best seen in FIG. 3 ). Additionally, a series of vent slots 19 will be formed in perimeter flange 18 .
  • FIG. 4 also illustrates how punch member 23 is formed of a base section 50 , a series of vertical posts 51 , and a ring cutter 52 attached to vertical posts 51 .
  • Liquid reactant cup 15 will be inserted into cavity 10 with perimeter flange 18 resting against the curved bottom portion of inner wall 7 .
  • Absorbent material ring 25 will be positioned below liquid reactant cup 15 .
  • end ring 27 is placed against absorbent material ring 25 and the crimping edge 28 will be crimped around the existing crimp 9 which joins walls 7 and 8 at the bottom of container body 2 .
  • end cap 32 is positioned on the end of container body 2 .
  • end cap 32 will have a snap ring 37 and a stop rim 38 such that when snap ring 37 slides over crimp 9 , crimp 9 will be held firmly in place between snap ring 37 and stop rim 38 .
  • the cover or label 40 / 41 will be a slightly longer than the can to which the label is applied. Thus, when the label is heat shrunk onto the can, this extra length of shrink wrap PVC material will form around sidewalls 35 of end cap 32 and assist in keeping end cap 32 firmly in place.
  • vent passage 17 in outer shoulder 16 forms a path that prevents any substantial pressure differential from building between the area 12 above liquid reactant cup 15 and the area 13 below liquid reactant cup 15 . Any gas pressure building in area 12 may quickly pass to area 13 .
  • breakable barrier 29 on end ring 27 forms a substantially air tight seal (hermetical seal) across the bottom of cavity 10 . This air tight seal will prevent external moisture from entering cavity 10 prior to activation of the thermic module and reducing the reactivity of the solid reactant. This seal is especially important if the container is ultimately subject to a retort process.
  • the side of breakable barrier 29 which faces end cap 32 will be have a distinct coloration (for example red) which will allows breakable barrier 29 to be easily visible through the sections 34 of removed material in center portion 33 . This will allow easy visual inspection of breakable barrier 29 through sections 34 to ensure breakable barrier 29 is still intact prior the initiation of the heating reaction. If breakable barrier 29 is not intact, the user is alerted to the possibility that the self-heating container has been damaged or may not be in working order.
  • a distinct coloration for example red
  • the initiation of the heating reaction can be readily understood.
  • a user will press the center portion 33 of end cap 32 inward (i.e., toward cavity 10 ). Because of the material removed from the incomplete concentric rings, center portion 33 easily flexes inward.
  • Cutting projections 36 on end cap 32 will press against and penetrate breakable barrier 29 on end ring 27 . Further pressing of end cap 32 will bring it into contact with flexible bottom 21 of liquid reactant cup 15 . Flexible bottom 21 will then flex forward driving punch 23 through breakable barrier 24 .
  • ring cutter 52 will push aside the broken area of barrier 24 and liquid reactant in cup 15 will be able to flow into the solid reactant in cavity 10 .
  • the vertical posts 51 connecting to ring cutter 52 will keep the broken edges of barrier 24 separated and allow liquid reactant to flow freely through the “window” spaces 53 formed between vertical posts 51 .
  • cutting projections 36 are positioned very close to (almost contacting or barely contacting) breakable barrier 29 . In addition to breaking through barrier 29 upon activation by a user, this allows cutting projections 36 to act as a safety mechanism should breakable barrier 24 fail and allow the liquid and solid reactants to mix. If a user has not activated the thermic module, barrier 29 will be intact and will contain the pressure buildup within the module due to the mixing reactants. If barrier 29 is not broken while the initial pressure in the module is low, the pressure may increase sufficiently to cause a dangerous explosion of the container. However, because barrier 29 is positioned quite close to cutting projections 36 , even low pressure from the initial stages of the reaction will press barrier 29 against cutting projections 36 and cause them to tear barrier 29 . Thus, pressure is never allowed to reach dangerous levels within the thermic module.
  • the liquid reactant will be water and the solid reactant will be a “quick lime” or CaO based mixture.
  • the solid reactant may be a mixture of CaO and a granular or powdered wax which will act as a reaction inhibitor to slow the reaction rate.
  • the wax will be a palm oil based wax with melting point above 100° C.
  • One illustrative example is a wax designated SW- 10 and supplied by Suka Chemicals, Sdn Bhd of Selangor, Malaysia. More preferably, the wax will have a melting point of ranging from above 100° C. to about 120° C., and still more preferably, ranging from about 105° C. to about 115° C.
  • the wax will be in the form of granules having a size of approximately 0.5 mm.
  • the solid reactant will comprise CaO content ranging from about 80 to 99 percent by weight and a wax content ranging from about 1 to 20 percent by weight, and more preferably a CaO content ranging from about 95 to 98 percent by weight and a wax content ranging from about 2 to 5 percent by weight.
  • the solid reactant could comprise a CaO content ranging from about 90 to 96 percent by weight and a wax content ranging from about 4 to 10 percent by weight.
  • the ratio of water volume to solid reactant weight could be about 0.25 to about 0.5 with one preferred embodiment being about 0.35.
  • the solid reactant in a container where 210 ml of beverage is being heated, the solid reactant could consist of 80 grams of CaO and 3 grams of the above described wax.
  • the above percentages of CaO are only approximate and factors such as impurities in the CaO or different types of waxes may result in mixtures outside of the above stated ranges or wherein the combined weight percentages of CaO and wax are less than 100%.
  • a very low moisture content CaO will be employed with the CaO having been vacuum packed soon after exiting the kiln.
  • FIGS. 10A and 10B illustrate graphs of other similar experiments.
  • FIG. 10A shows results when 80 gm of CaO and 5 gm wax as described above (designated “stabilizer” in FIG. 10A ) were combined with various amounts of water. As suggested, approximately 32 ml or more of water reactant caused the water in the beverage space to increase over 50° C. in temperature.
  • FIG. 10A shows results when 80 gm of CaO and 5 gm wax as described above (designated “stabilizer” in FIG. 10A ) were combined with various amounts of water. As suggested, approximately 32 ml or more of water reactant caused the water in the beverage space to increase over 50° C. in temperature.
  • thermographic ink changes colors upon reaching a predetermined temperature. In this manner, certain areas of the can could change color when the contents of the can have reached a temperature which is considered to be sufficiently hot.
  • FIG. 8 shows two sections of thermographic ink 160 A and 160 B. The thermographic ink could be formulated such that both sections 160 A and 160 B are the same color (e.g. black with some marking or color printed below sections 160 A and 160 B in a different color thermographic ink which reacts at a different temperature than the covering ink) when the can is below a suitable temperature for drinking.
  • section 160 B the black ink will become transparent thus disappearing allowing the second color below to appear (e.g. green) indicating the can contents are at the proper temperature for consumption. If the contents of the can became too hot, section 160 B the green ink will become transparent thus disappearing (i.e., no colors in 160 a ) and at the same time in section 160 A the black ink will become transparent thus disappearing and allowing the second color below to appear (e.g. red), thereby cautioning the consumer about the overly hot beverage.
  • the green ink will become transparent thus disappearing (i.e., no colors in 160 a ) and at the same time in section 160 A the black ink will become transparent thus disappearing and allowing the second color below to appear (e.g. red), thereby cautioning the consumer about the overly hot beverage.
  • thermographic ink will be “reversible” in the sense that as the temperature exceeds a threshold, the ink will change from a first color to a second color, but if the temperature again drops below the threshold, the ink will return to the first color.
  • the indicator became red suggesting the beverage was overly hot, the ink would later return to a green indicator when the beverage returned to correct temperature range for safely drinking.
  • thermographic ink could take on any design and could be formulated to change color over any given range of temperatures.
  • the ink might change color at approximately 40° C. to indicate the beverage is ready to drink as opposed to the approximately 65° C. for an adult beverage.
  • the first color indication could take place at approximately 37° C. to indicate a suitable drinking temperature and a second color indication could take place at approximately 43° C. to indicate the drink was too hot for infants to drink.
  • the first color indication could take place at approximately 60° C. to indicate a suitable drinking temperature and a second color indication could take place at approximately 80° C. to indicate the drink was too hot to drink.
  • the present invention encompasses the first and second indicators not only being true “colors” such as red and green, but also the indicators being different shades of a single color including different shades of gray and even the ink changing from opaque to transparent or some particular color.
  • the term “color” as used herein is intended to encompass all these alternatives.
  • the first thermographic ink indicator 180 a will be opaque below a certain temperature (e.g. 80° C.). Upon reaching that temperature, the thermographic ink will become transparent and reveal or unmask a “too hot to drink” warning symbol 180 b positioned under the ink.
  • thermographic ink which became transparent at a suitably hot drinking temperature (e.g. 60° C.). If the temperature of the beverage reached 80° C., the ink in 181 b would become transparent as the indicator 180 b appears.
  • this concept of employing thermographic ink could be applied to food or drink containers which are not necessarily self-heating.
  • the above described thermographic ink printing could be used on disposable coffee cups or microwavable food products.
  • the thermographic ink could not only be used directly on the container, but also be applied to an adhesive label or “sticker” which would then be applied to the container lid.
  • Thermographic inks for carrying out this embodiment are well known and available under the tradename “Chromazone” and manufactured by Thermographic Measurements Co. Ltd, in the United Kingdom and supplied by Eckart America located in Painesville, Ohio.
  • thermotic module and a label attached to a surface of the container, the label comprising an ink which gives an indicia when said thermotic module has been activated.
  • a label is to indicate whether the thermotic module has been activated in order to assist consumers in identifying containers which may have previously been activated but not otherwise opened.
  • the ink is irreversible so that once the container has been activated, the indicia remains permanently visible even after the container has cooled to ambient temperatures.
  • FIGS. 1 and 11A to 11 C illustrate one such indicator label 75 .
  • indicator label 75 is formed of a body section 76 ( FIGS. 11A to 11C ) with some type of irreversible thermochromatic ink 77 giving an indicia whether the thermotic module has been activated.
  • the body section 76 may be formed of any material to which irreversible thermochromatic ink 77 may adhere in a substantially permanent manner.
  • body section 76 is formed of a conventional paper.
  • body section 76 is formed of a thin film of clear PVC, but could be formed from many different materials such as polyethylene terephthalate or any other polymer those skilled in the art would recognize as suitable.
  • the ink forming the indicator is a type of ink which changes states based upon the occurrence of some condition.
  • ink means any substance, usually a liquid but possibly a gas or solid, which is used to impart color to another material.
  • many embodiments employ a thermochromatic ink which changes color or otherwise becomes visible when a certain temperature range is reached.
  • FIG. 11B illustrates the indicator label with the ink in the unactivated colorless state and
  • FIG. 11C illustrates the ink in an activated visible state.
  • the ink is “irreversible” in the sense that once the ink changes color state (e.g., changes color, ceases being relatively colorless, or becomes relatively colorless) upon reaching a certain temperature range, then the ink generally remains in the changed state (or least in some changed state visible to the user) even after the temperature of the ink moves outside the activation range.
  • this means the ink will be a first color (or colorless) at an initial temperature, but then change color at an activation temperature and substantially remain that color after the ink cools below the activation temperature.
  • other variations would be considered irreversible.
  • an ink that is colorless at an initial temperature, changes to a first color at a second temperature, and then changes to a second color visible to a user when the label returns to the initial temperature would also be considered an irreversible indicator.
  • color includes black, white, and shades of grey.
  • the ink comprises a leuco dye, i.e., a dye whose molecules can acquire two forms, one of which is colorless.
  • a leuco dye i.e., a dye whose molecules can acquire two forms, one of which is colorless.
  • leuco dye based thermochromatic inks are available from New Prismatic Enterprise Co. Ltd of Taipei, Taiwan.
  • the indicator becomes visible when the label reaches about 40 degrees Celsius and more preferably when the label reaches about 60 degrees Celsius.
  • any temperature or range of temperatures at which food or beverages could be consumed e.g., 0 degrees to 100 degrees Celsius or any temperature of range therebetween) could be designed as the activation temperature for the ink.
  • the label is a small circular section of material approximately 10 mm in diameter.
  • the indicia placed on the label could vary greatly.
  • the indicia 77 is a dot with the letting “ACTIVATED,” but obviously any type of letter, symbol, or even solid coloring of the entire label could be employed.
  • the indicia could also be constructed by applying the ink in the negative pattern of the desired indicia. For example in FIG. 11C , the ink could be applied over the entire label except for the area forming the dot and the lettering.
  • the uninked background portion of body section 76 Upon activation of the ink, the uninked background portion of body section 76 would form the dot and lettering.
  • the indicia formed of thermochromatic ink is printed on the reverse side (i.e., the side attached to a container) of a label formed of a clear PVC film.
  • the adhesive is also applied to the reverse side after the ink has been printed onto the film.
  • FIG. 11A illustrates the opposite side of indicator label 75 and suggests how an adhesive 78 , such as B Gum adhesive available from Jet Many Enterprises Corp. of Taipei, Taiwan, is coated onto the back surface of body section 76 .
  • FIG. 1 illustrates indicator label 75 positioned on the metal top of container 1 and in certain embodiments it may be preferred to place the label on a metal surface of the container to most directly conduct the internal heat of the container to the label. However, other embodiments could conceivably place indicator label 75 on any other surface, including container cover 40 or on container sidewall 8 after an aperture has been cut in cover/label 40 / 41 to accommodate the label.
  • the irreversible thermochromatic ink be printed on a separate section of material in order to form the label.
  • the irreversible ink could be printed directly on the container (for example the container lid as suggested in FIG. 1 ).
  • the ink could be applied to the metal of the container or to another label surface of the container.
  • the ink could be applied by any conventional or future developed process, including by way of example, silk screening, stamp printing, laser jet printing, or sublimation printing.
  • FIGS. 6A and 6B illustrate one embodiment of the present invention having a flexible nipple attachment 45 as described in U.S. Pat. No. 6,708,833 which is incorporated by reference herein in its entirety.
  • Flexible nipple attachment 45 will further include nipple head 46 , nipple neck 47 , and nipple shoulder 48 .
  • Nipple attachment 45 may be formed of any suitable rubber-like material, such as latex, rubberized plastic, or silicone.
  • Nipple head 45 will have a nursing aperture 49 formed therein. However, it is generally more hygienic and more aesthetically pleasing to close off nursing aperture 49 prior to use in order to prevent the contents of container 1 from escaping through nursing aperture 49 .
  • a removable plug is formed over nursing aperture 45 .
  • the removable plug consists of a pull tab 55 integrally formed with attachable nipple 45 .
  • a v-shaped cut is produced through nipple head 46 such that only a thin section of material holds tab 55 to nipple head 46 .
  • tab 55 When tab 55 is pulled, it readily tears away or twists off and leaves aperture 49 open to fluid flow induced by an infant's suckling.
  • All the features of nipple attachment 45 including v-shaped cuts and pull tabs 55 , may be integrally formed by any conventional technique such as pour molding or injection molding of silicon.
  • a second aperture, air aperture 53 is also formed in the shoulder portion 48 of nipple attachment 45 .
  • Air aperture 53 is closed with a removable plug 54 in the same manner as nursing aperture 49 .
  • the purpose of air aperture 53 is to allow air into container 1 to displace fluid removed through the infant's nursing and prevent a vacuum from forming in container 1 .
  • Naturally an air aperture could be positioned anywhere on the container which would allow air to replace the fluid removed.
  • Nipple attachment 45 Connecting nipple attachment 45 to container 1 may be accomplished as follows. Nipple attachment 45 will have an attachment perimeter which is sufficiently large in diameter in order to stretch across the container rim. The lid rim will then be placed over the attachment perimeter and the container rim and the lid rim will be crimped into place. It will be understood that when the rubber-like material is tightly crimped between the container rim and the lid rim, it will form an air-tight seal for retaining and sealing in the contents of container 1 .
  • a plastic rim cap or protective ring 5 may be positioned on top of the metal lid rim to ensure that overly warm metal does not come into contact with the infant suckling from contain 1 .
  • container 1 will include some type of easy-opening lid 3 , such as a conventional lid having a rim, a peel-back top, and a finger ring as suggested in FIG. 1 .
  • the lid will be opened by first lifting the finger ring to cause a punch portion to break the seal between the peel-back top and the lid rim. Then the finger ring will be pulled backwards, pulling the peel-back top away from the rest of the lid rim.
  • FIG. 6B shows nipple attachment 45 in an extended position, ready for use after the plug 55 is removed.
  • nipple attachment 45 will be placed in a folded or semi-inverted position within container 1 as seen in FIG. 6A .
  • the material between nipple neck 47 and nipple shoulder 48 will be semi-inverted such that nipple head 46 will be just below the container lid.
  • the side walls along the portion of nipple attachment 42 which semi-inverts will be somewhat thinner than the remaining sections of nipple attachment 45 .
  • the inverting portion of the sidewall may be approximately 0.6 mm thick while the remaining sections of the nipple attachment 45 are approximately 2 to 3 mm thick.
  • nipple attachment 45 placed in the folded position within container 1 allows it to be sealed therein by the lid as suggested by FIG. 1 . This will ensure that nipple attachment 45 remains in a clean and sterile condition up until the moment it is placed in use. To place container 1 into use, it is only necessary to remove the peel-back the top of the lid, pull nipple attachment 45 into the extended position, and twist off removable plugs 55 .
  • the present invention will further include a novel lip protector 60 as seen in FIG. 7 .
  • Lip protector 60 will generally comprise a ring portion 62 substantially conforming to the rim of the container lid 3 .
  • Positioned in front of the collapsible tab 58 will be front portion 63 of lip protector 60 .
  • Positioned to the rear of collapsible tab 58 will be a middle section 61 which connects at each end to ring portion 62 . It will be understood that a user can lift the rear of opening tab 64 which will pivot downward beneath middle section 61 and depress collapsible tab 58 and create an opening in lid 3 .
  • lip protector 60 will be formed in a manner which leaves at least half of the lid 3 uncovered by lip protector 60 .
  • ring portion 62 will be fixed against rotation on the rim (e.g., by crimping or by an adhesive) such that lip protector 60 cannot rotate out of position at any time or at any temperature normal temperature range of container 1 , either prior to activation of the themic module or at the highest temperature the container reaches after activation.
  • the present invention also includes a method of retorting a self-heating container.
  • “Retorting” is a conventional process of sterilizing the contents of a canned goods and the like. Retorting typically comprises subjecting the contents of a sealed can to elevated temperatures (about 120° C.) and pressures (about 10 psi).
  • the method begins with the step of providing a metal container 1 (see FIGS. 2 and 6 a ) having an open top end 11 , a beverage space 6 , and a cavity 10 for heat changing reactants formed in a bottom end of the container 1 .
  • a beverage is placed in the beverage space 6 and a lid 3 is hermetically secured onto open top end 11 .
  • Cavity 10 of container 1 is then charged with at least two reactants separated by a breakable barrier which in one embodiment is the process and structure described in the above Figures. Thereafter, the metal end ring 27 is crimped onto the bottom end of container 1 to form a substantially moisture tight seal between the interior of cavity 10 and an environment outside container 1 .
  • the crimp of end ring 27 is “substantially moisture tight” in the sense that it will prevent moisture (e.g. steam or water) from entering cavity 10 when container 1 is subject a retorting process at temperatures of at least 100° C. and pressures of at least 5 psi. More preferably, the end ring crimp prevents the entry of moisture at temperatures of at least about 120° C. and pressures of at least about 15 psi.

Abstract

A self-heating container having a container body with an internal beverage section and a thermic cavity. A liquid reactant is positioned in a first section of the thermic cavity and a solid reactant is positioned in a second section of the thermic cavity. The solid reactant may be an amount of CaO ranging from about 80 to 99 percent by weight combined with a wax based inhibitor ranging from about 1 to 20 percent by weight. The wax based inhibitor has a melting point ranging from above 100° C. to about 120° C.

Description

  • This application claims the benefit under 35 USC § 119(e) of U.S. Provisional Application No. 61/119,549, filed Dec. 3, 2008. This application also is a continuation-in-part of U.S. Ser. No. 12/023,093 filed Jan. 31, 2008, which is a continuation of PCT application number US2006/29577, filed on Jul. 28, 2006, which claims priority to U.S. Provisional Application Ser. No. 60/704,471, filed on Aug. 1, 2005, which further claims the benefit of U.S. Provisional Application Ser. No. 60/915,848, filed on May 3, 2007. All of the above applications are incorporated by reference herein in their entirety.
  • FIELD OF INVENTION
  • The present invention relates to self-heating (or self-cooling) cans or other containers holding beverages, food, medicine, epoxy resins and other materials that it is desired to heat (or cool) before consuming or using. In particular, the present invention relates to an improved thermic module for such self-heating (cooling) containers.
  • BACKGROUND OF INVENTION
  • Containers may have integral or separate insertable modules for warming materials in the container, such as Japanese sake, coffee, or soup. Examples of such self-heating containers with integral thermic modules are disclosed in U.S. Pat. Nos. 5,461,867 and 5,626,022, issued to Scudder et al and an example of a separately insertable module is disclosed in U.S. Pat. No. 6,134,894 to Searle, et al. Such containers typically include an outer can or body, in which the food or beverage is sealed and an elongated cavity or chamber which extends into the container body from the bottom end. The cavity is sized to accommodate the thermic module. The thermic module normally contains two chemical reactants which are stable when separated from one another, but when mixed in response to actuation of the thermic module by a user, produce an exothermic reaction (or, alternatively, an endothermic reaction) and thereby heat (or cool) the contents of the container. This elongated cavity functions as both a chamber in which to contain the reaction and a heat-exchanger for transferring heat between it and the surrounding contents of the container body.
  • The thermic module usually has two chambers, each of which contains one of the chemical reactants, separated by a breakable barrier such as metal foil. Typically, one of the reactants is a liquid, and the other is in a powdered or granular solid form. Calcium oxide (quicklime or CaO) and water are examples of two reactants known to produce an exothermic reaction to heat the container contents. Other combinations of reactants (e.g. ammonium nitrate and water) produce endothermic reactions to cool the container contents. The bottom of the thermic module cavity is normally closed off by an end-cap. The outside of the end-cap will serve as an actuator button that a user may depress to initiate the heating or cooling. The end-cap typically has a pushrod or similar prong-like member that extends from the actuator button nearly to the breakable barrier. Depressing the actuator button forces the prong into the barrier, puncturing it and thereby allowing the reactants to mix.
  • The heat produced by the resulting exothermic reaction (or, alternatively, used by a resulting endothermic reaction) is transferred from the reaction chamber of the thermic module to the contents of the container body by conduction. The end of the container body opposite the cavity has a seal or closure, such as conventional beverage container pull-tab or pop-top, which may be opened and through which the user may consume the heated or cooled contents.
  • BRIEF DESCRIPTION OF DRAWINGS
  • FIG. 1 is a cut-away view of one embodiment of the self-heating container of the present invention.
  • FIG. 2 is an exploded view of the container seen in FIG. 1.
  • FIG. 3 is a cross-sectional view of the lower portion of the container seen in FIG. 1.
  • FIG. 4 is a perspective view of the liquid reactant cup of one embodiment of the present invention.
  • FIG. 5 is a perspective view of the end ring of one embodiment of the present invention.
  • FIGS. 6A and 6B are cross-section views illustrating a nipple attachment of one embodiment of the present invention.
  • FIG. 7 illustrates a lip protector device employed in one embodiment of the present invention.
  • FIG. 8 illustrates sections of thermographic ink which could be utilized in an embodiment of the present invention.
  • FIG. 9 illustrates one embodiment of a thermographic ink indicator.
  • FIGS. 10A and 10B are charts illustrating temperature change in the contents of the beverage space in the self-heating container.
  • DETAILED DESCRIPTION OF INVENTION
  • FIG. 1 illustrates one embodiment of a self-heating container 1 of the present invention. Container 1 will generally comprise a container body 2 being formed by body sidewalls 8, lid 3, and inner walls 7. Lid 3 will normally include a conventional pop top opening or pull tab 4 such as found on typical soda cans. It can also be seen how inner wall 7 has upwardly extending inner walls 7 a and inner top wall 7 b. As better seen in FIG. 6A, the space between body side walls 8, inner sidewalls 7, and lid 3 will form an enclosed volume 6 for receiving a food or beverage substance. An internal cavity 10 will be formed by sidewalls 7 extending up into enclosed volume 6. While not explicitly shown, the inner walls 7 a could be fluted to provide more surface area to facilitate heat transfer from internal cavity 10 to the contents enclosed within volume 6.
  • In the embodiment shown, the area of internal cavity 10 above cup 15 will house a solid reactant and a cup 15 will serve as a liquid reactant cup. A breakable barrier 24 will separate the interior space of liquid reactant cup 15 from the area of internal cavity 10 above cup 15. In the embodiment shown, breakable barrier 24 will be formed of a metal (such as aluminum) foil material approximately 10 μm to 60 μm thick and more preferably 20 μm to 40 μm thick. It will be understood that a punch member 23 may be moved upward by a user (as explained in more detail below) in order to puncture breakable barrier 24 and allow the solid and liquid reactants to mix.
  • FIG. 1 also shows a cover or label of shrink wrap material formed on body 2. In the embodiment shown, the cover will be formed of two layers of material. The inner layer will comprise a polyethylene foam sheet 41 approximately 0.5 mm in thickness such as is available from TOSIN PACKAGING of Selangor, Malaysia. The outer layer will be a polyvinyl-chloride (PVC) shrink film 40 which is approximately 50 um in thickness and has a shrinkage of approximately 58%. Such film is available from manufacturers such as KOMAK General Labels of Balakong, Malaysia. In a preferred embodiment, foam sheet 41 will laminated to the PVC film prior to the film being applied to a container. Generally, the PVC film 40 is reverse side printed with a solvent based ink. This allows for high quality 5-8 color printing with full color separation that cannot be achieved on heat shrink foam material used on PET or glass bottles. The non shrinking foam sheeting is then laminated to the PVC film using a water soluble adhesive which will not adversely affect the ink on the PVC film. If multiple labels are formed on a single sheet of the foam insulation/PVC film label, then the individual labels are cut from the sheet and rolled into a tube shape. A thin (e.g. 0.5 cm) strip of clear PVC shrink film having a solvent based adhesive applied thereto may be used to glue together the overlapping edges of the tube.
  • The bottom portion of container 1 will accommodate the means for puncturing breakable barrier 24 and allowing the solid and liquid reactants to mix. These elements located in the bottom portion of this embodiment of container 1 generally form the “thermic module” when charged with reactants and are seen individually in the exploded view of FIG. 2. These elements include liquid reactant cup 15, absorbent material ring 25, end ring 27 and end cap 32. Absorbent material ring 25 may be formed of a paper towel type material and in the embodiment shown, will be about 1 mm to about 4 mm thick and will have a center opening 26. As better seen in FIG. 5, end ring 27 will have a crimping edge 28 for attachment to container body 2 and the center opening of end ring 27 will be covered with a breakable barrier 29. Typically end ring 27 will be of the same material as container body 2 (e.g. aluminum) to allow crimping edge 28 to crimp onto the bottom of body 2. Similar to the breakable barrier 24, breakable barrier 29 may be formed of a metal foil and will be approximately 10 μm to 100 μm but in a preferred embodiment is 40 μm to 60 μm thick to better withstand the retort process. Breakable barrier 29 will be attached to the inner rim 31 by an adhesive, spot welding, ultra sonic welding, seaming, or any other suitable means which allows for a hermetic seal that can withstand the pressures and temperatures of a conventional retort process, which will vary depending on the product to be retorted but are generally between 10 and 20 psi, 120 and 145° C. for 20 to 45 minutes, yet which may be easy broken by the cutting projections 36 which are explained in greater detail below.
  • Viewing FIGS. 1 and 2, end cap 32 will be formed of a polymer material which in one embodiment is polypropylene. End cap 32 will have a raised side rim 35 and a grated center portion 33. Center portion 33 is grated in the sense that the material has been removed from certain sections 34 of center portion 33 in order to allow center portion 33 to more easily flex inward when force is applied to it. In the embodiments shown, the sections 34 of removed material are in the form of incomplete concentric rings. In other words, small segments of material are left in place along the otherwise complete ring of removed material.
  • The external features of liquid reactant cup 15 are best seen in FIG. 4. Liquid reactant cup 15 will include side wall 22, outer shoulder 16, perimeter flange 18, and flexible bottom 21. In the embodiment shown, flexible bottom 21 will have a series of indentions 30 extending radially from the center of flexible bottom 21 toward perimeter flange 18. Indentions 30 will allow bottom 21 to more easily flex inward without mechanical failure of the material. Liquid reactant cup 15 will also include a series of vent passages 17 which pass through outer shoulder 16 (as best seen in FIG. 3). Additionally, a series of vent slots 19 will be formed in perimeter flange 18. FIG. 4 also illustrates how punch member 23 is formed of a base section 50, a series of vertical posts 51, and a ring cutter 52 attached to vertical posts 51.
  • The assembly of the various components in the lower portion of body 2 is best seen in FIG. 3. Liquid reactant cup 15 will be inserted into cavity 10 with perimeter flange 18 resting against the curved bottom portion of inner wall 7. Absorbent material ring 25 will be positioned below liquid reactant cup 15. Thereafter, end ring 27 is placed against absorbent material ring 25 and the crimping edge 28 will be crimped around the existing crimp 9 which joins walls 7 and 8 at the bottom of container body 2. Thereafter, end cap 32 is positioned on the end of container body 2. In the embodiment shown, end cap 32 will have a snap ring 37 and a stop rim 38 such that when snap ring 37 slides over crimp 9, crimp 9 will be held firmly in place between snap ring 37 and stop rim 38. As suggested in FIG. 3, the cover or label 40/41 will be a slightly longer than the can to which the label is applied. Thus, when the label is heat shrunk onto the can, this extra length of shrink wrap PVC material will form around sidewalls 35 of end cap 32 and assist in keeping end cap 32 firmly in place.
  • When the components of container 1 are assembled as illustrated in FIG. 3, it can be seen how vent passage 17 in outer shoulder 16 forms a path that prevents any substantial pressure differential from building between the area 12 above liquid reactant cup 15 and the area 13 below liquid reactant cup 15. Any gas pressure building in area 12 may quickly pass to area 13. It will also be understood that breakable barrier 29 on end ring 27 forms a substantially air tight seal (hermetical seal) across the bottom of cavity 10. This air tight seal will prevent external moisture from entering cavity 10 prior to activation of the thermic module and reducing the reactivity of the solid reactant. This seal is especially important if the container is ultimately subject to a retort process.
  • In a preferred embodiment, the side of breakable barrier 29 which faces end cap 32 will be have a distinct coloration (for example red) which will allows breakable barrier 29 to be easily visible through the sections 34 of removed material in center portion 33. This will allow easy visual inspection of breakable barrier 29 through sections 34 to ensure breakable barrier 29 is still intact prior the initiation of the heating reaction. If breakable barrier 29 is not intact, the user is alerted to the possibility that the self-heating container has been damaged or may not be in working order.
  • Viewing FIG. 3, the initiation of the heating reaction can be readily understood. A user will press the center portion 33 of end cap 32 inward (i.e., toward cavity 10). Because of the material removed from the incomplete concentric rings, center portion 33 easily flexes inward. Cutting projections 36 on end cap 32 will press against and penetrate breakable barrier 29 on end ring 27. Further pressing of end cap 32 will bring it into contact with flexible bottom 21 of liquid reactant cup 15. Flexible bottom 21 will then flex forward driving punch 23 through breakable barrier 24. It will be understood that ring cutter 52 will push aside the broken area of barrier 24 and liquid reactant in cup 15 will be able to flow into the solid reactant in cavity 10. The vertical posts 51 connecting to ring cutter 52 will keep the broken edges of barrier 24 separated and allow liquid reactant to flow freely through the “window” spaces 53 formed between vertical posts 51.
  • It will be understood that when the heating module is in its assembled state, cutting projections 36 are positioned very close to (almost contacting or barely contacting) breakable barrier 29. In addition to breaking through barrier 29 upon activation by a user, this allows cutting projections 36 to act as a safety mechanism should breakable barrier 24 fail and allow the liquid and solid reactants to mix. If a user has not activated the thermic module, barrier 29 will be intact and will contain the pressure buildup within the module due to the mixing reactants. If barrier 29 is not broken while the initial pressure in the module is low, the pressure may increase sufficiently to cause a dangerous explosion of the container. However, because barrier 29 is positioned quite close to cutting projections 36, even low pressure from the initial stages of the reaction will press barrier 29 against cutting projections 36 and cause them to tear barrier 29. Thus, pressure is never allowed to reach dangerous levels within the thermic module.
  • In one embodiment of the present invention, the liquid reactant will be water and the solid reactant will be a “quick lime” or CaO based mixture. The solid reactant may be a mixture of CaO and a granular or powdered wax which will act as a reaction inhibitor to slow the reaction rate. In a more preferred embodiment, the wax will be a palm oil based wax with melting point above 100° C. One illustrative example is a wax designated SW-10 and supplied by Suka Chemicals, Sdn Bhd of Selangor, Malaysia. More preferably, the wax will have a melting point of ranging from above 100° C. to about 120° C., and still more preferably, ranging from about 105° C. to about 115° C. Also in a preferred embodiment, the wax will be in the form of granules having a size of approximately 0.5 mm. In one preferred embodiment, the solid reactant will comprise CaO content ranging from about 80 to 99 percent by weight and a wax content ranging from about 1 to 20 percent by weight, and more preferably a CaO content ranging from about 95 to 98 percent by weight and a wax content ranging from about 2 to 5 percent by weight. Alternatively, the solid reactant could comprise a CaO content ranging from about 90 to 96 percent by weight and a wax content ranging from about 4 to 10 percent by weight. In certain embodiments, for example where the liquid reactant is water, the ratio of water volume to solid reactant weight could be about 0.25 to about 0.5 with one preferred embodiment being about 0.35.
  • As one example, in a container where 210 ml of beverage is being heated, the solid reactant could consist of 80 grams of CaO and 3 grams of the above described wax. Naturally, the above percentages of CaO are only approximate and factors such as impurities in the CaO or different types of waxes may result in mixtures outside of the above stated ranges or wherein the combined weight percentages of CaO and wax are less than 100%. In one preferred embodiment, a very low moisture content CaO will be employed with the CaO having been vacuum packed soon after exiting the kiln.
  • One experiment found that the above reactant combination of 80 grams of CaO and 3 grams of wax when combined with 27 ml of water in the above described thermic module will cause an increase in the temperature (delta T) of 210 ml of a water based beverage (located in beverage space 6) to at least above 50° C. and more commonly to about 55° C. FIGS. 10A and 10B illustrate graphs of other similar experiments. FIG. 10A shows results when 80 gm of CaO and 5 gm wax as described above (designated “stabilizer” in FIG. 10A) were combined with various amounts of water. As suggested, approximately 32 ml or more of water reactant caused the water in the beverage space to increase over 50° C. in temperature. FIG. 10B illustrates that when 82.5 gm of CaO, 7.5 gm wax, and 32.5 ml of water reactant are used, a change in temperature of the water in the beverage space of over 50° C. is typically achieved. Advantageously, it can be seen that the higher the starting temperature of the beverage, the lesser the temperature increase of the beverage. The above experiments have also demonstrated that the CaO/wax solid reactant produces virtually no steam. No visibly detectable steam was observed in the described experiments. A dry paper towel that was placed under the bottom end of the container while the reaction occurred remained perfectly dry to sight and touch after the reaction was complete.
  • In a preferred embodiment, some printing may be written on the inner surface of shrink wrap film 40 with thermographic ink or may be applied to certain areas of the can such as the can lid. Thermographic ink changes colors upon reaching a predetermined temperature. In this manner, certain areas of the can could change color when the contents of the can have reached a temperature which is considered to be sufficiently hot. As an example, FIG. 8 shows two sections of thermographic ink 160A and 160B. The thermographic ink could be formulated such that both sections 160A and 160B are the same color (e.g. black with some marking or color printed below sections 160A and 160B in a different color thermographic ink which reacts at a different temperature than the covering ink) when the can is below a suitable temperature for drinking. As the can approaches the correct temperature range for drinking, in section 160B the black ink will become transparent thus disappearing allowing the second color below to appear (e.g. green) indicating the can contents are at the proper temperature for consumption. If the contents of the can became too hot, section 160B the green ink will become transparent thus disappearing (i.e., no colors in 160 a) and at the same time in section 160A the black ink will become transparent thus disappearing and allowing the second color below to appear (e.g. red), thereby cautioning the consumer about the overly hot beverage. The thermographic ink will be “reversible” in the sense that as the temperature exceeds a threshold, the ink will change from a first color to a second color, but if the temperature again drops below the threshold, the ink will return to the first color. Using the above example, if the indicator became red suggesting the beverage was overly hot, the ink would later return to a green indicator when the beverage returned to correct temperature range for safely drinking.
  • Naturally, the thermographic ink could take on any design and could be formulated to change color over any given range of temperatures. For example, with infant baby formula the ink might change color at approximately 40° C. to indicate the beverage is ready to drink as opposed to the approximately 65° C. for an adult beverage. More preferably, when dealing with drinks for infants, the first color indication could take place at approximately 37° C. to indicate a suitable drinking temperature and a second color indication could take place at approximately 43° C. to indicate the drink was too hot for infants to drink. For adults, the first color indication could take place at approximately 60° C. to indicate a suitable drinking temperature and a second color indication could take place at approximately 80° C. to indicate the drink was too hot to drink. Naturally, variations of these temperature ranges are within the scope of the present invention. Additionally, the present invention encompasses the first and second indicators not only being true “colors” such as red and green, but also the indicators being different shades of a single color including different shades of gray and even the ink changing from opaque to transparent or some particular color. The term “color” as used herein is intended to encompass all these alternatives. For example, in the embodiment suggested in FIG. 9, the first thermographic ink indicator 180 a will be opaque below a certain temperature (e.g. 80° C.). Upon reaching that temperature, the thermographic ink will become transparent and reveal or unmask a “too hot to drink” warning symbol 180 b positioned under the ink. Likewise, the second indicator 181 a would have a “ready to drink” symbol 181 b positioned under thermographic ink which became transparent at a suitably hot drinking temperature (e.g. 60° C.). If the temperature of the beverage reached 80° C., the ink in 181 b would become transparent as the indicator 180 b appears. Furthermore, this concept of employing thermographic ink could be applied to food or drink containers which are not necessarily self-heating. For example, the above described thermographic ink printing could be used on disposable coffee cups or microwavable food products. Likewise, the thermographic ink could not only be used directly on the container, but also be applied to an adhesive label or “sticker” which would then be applied to the container lid. Thermographic inks for carrying out this embodiment are well known and available under the tradename “Chromazone” and manufactured by Thermographic Measurements Co. Ltd, in the United Kingdom and supplied by Eckart America located in Painesville, Ohio.
  • Another embodiment of the present invention includes a container having a thermotic module and a label attached to a surface of the container, the label comprising an ink which gives an indicia when said thermotic module has been activated. One purpose of such a label is to indicate whether the thermotic module has been activated in order to assist consumers in identifying containers which may have previously been activated but not otherwise opened. In preferred embodiments, the ink is irreversible so that once the container has been activated, the indicia remains permanently visible even after the container has cooled to ambient temperatures.
  • FIGS. 1 and 11A to 11C illustrate one such indicator label 75. In this embodiment, indicator label 75 is formed of a body section 76 (FIGS. 11A to 11C) with some type of irreversible thermochromatic ink 77 giving an indicia whether the thermotic module has been activated. The body section 76 may be formed of any material to which irreversible thermochromatic ink 77 may adhere in a substantially permanent manner. In one embodiment, body section 76 is formed of a conventional paper. In another embodiment, body section 76 is formed of a thin film of clear PVC, but could be formed from many different materials such as polyethylene terephthalate or any other polymer those skilled in the art would recognize as suitable.
  • The ink forming the indicator is a type of ink which changes states based upon the occurrence of some condition. As used herein, “ink” means any substance, usually a liquid but possibly a gas or solid, which is used to impart color to another material. For example, many embodiments employ a thermochromatic ink which changes color or otherwise becomes visible when a certain temperature range is reached. FIG. 11B illustrates the indicator label with the ink in the unactivated colorless state and FIG. 11C illustrates the ink in an activated visible state. In many embodiments, the ink is “irreversible” in the sense that once the ink changes color state (e.g., changes color, ceases being relatively colorless, or becomes relatively colorless) upon reaching a certain temperature range, then the ink generally remains in the changed state (or least in some changed state visible to the user) even after the temperature of the ink moves outside the activation range. Typically, this means the ink will be a first color (or colorless) at an initial temperature, but then change color at an activation temperature and substantially remain that color after the ink cools below the activation temperature. However, other variations would be considered irreversible. For example, an ink that is colorless at an initial temperature, changes to a first color at a second temperature, and then changes to a second color visible to a user when the label returns to the initial temperature, would also be considered an irreversible indicator. As used herein, “color” includes black, white, and shades of grey.
  • In one embodiment, the ink comprises a leuco dye, i.e., a dye whose molecules can acquire two forms, one of which is colorless. One nonlimiting example of leuco dye based thermochromatic inks are available from New Prismatic Enterprise Co. Ltd of Taipei, Taiwan. In preferred embodiments, the indicator becomes visible when the label reaches about 40 degrees Celsius and more preferably when the label reaches about 60 degrees Celsius. However any temperature or range of temperatures at which food or beverages could be consumed (e.g., 0 degrees to 100 degrees Celsius or any temperature of range therebetween) could be designed as the activation temperature for the ink.
  • The size and shape of the label could vary greatly from application to application. In FIGS. 1 and 11, the label is a small circular section of material approximately 10 mm in diameter. Likewise, the indicia placed on the label could vary greatly. In FIG. 11C the indicia 77 is a dot with the letting “ACTIVATED,” but obviously any type of letter, symbol, or even solid coloring of the entire label could be employed. The indicia could also be constructed by applying the ink in the negative pattern of the desired indicia. For example in FIG. 11C, the ink could be applied over the entire label except for the area forming the dot and the lettering. Upon activation of the ink, the uninked background portion of body section 76 would form the dot and lettering. In a preferred embodiment, the indicia formed of thermochromatic ink is printed on the reverse side (i.e., the side attached to a container) of a label formed of a clear PVC film. When an adhesive is applied as described below, the adhesive is also applied to the reverse side after the ink has been printed onto the film.
  • FIG. 11A illustrates the opposite side of indicator label 75 and suggests how an adhesive 78, such as B Gum adhesive available from Jet Many Enterprises Corp. of Taipei, Taiwan, is coated onto the back surface of body section 76. FIG. 1 illustrates indicator label 75 positioned on the metal top of container 1 and in certain embodiments it may be preferred to place the label on a metal surface of the container to most directly conduct the internal heat of the container to the label. However, other embodiments could conceivably place indicator label 75 on any other surface, including container cover 40 or on container sidewall 8 after an aperture has been cut in cover/label 40/41 to accommodate the label.
  • Nor is it necessary that the irreversible thermochromatic ink be printed on a separate section of material in order to form the label. In certain embodiments, the irreversible ink could be printed directly on the container (for example the container lid as suggested in FIG. 1). The ink could be applied to the metal of the container or to another label surface of the container. The ink could be applied by any conventional or future developed process, including by way of example, silk screening, stamp printing, laser jet printing, or sublimation printing.
  • FIGS. 6A and 6B illustrate one embodiment of the present invention having a flexible nipple attachment 45 as described in U.S. Pat. No. 6,708,833 which is incorporated by reference herein in its entirety. Flexible nipple attachment 45 will further include nipple head 46, nipple neck 47, and nipple shoulder 48. Nipple attachment 45 may be formed of any suitable rubber-like material, such as latex, rubberized plastic, or silicone. Nipple head 45 will have a nursing aperture 49 formed therein. However, it is generally more hygienic and more aesthetically pleasing to close off nursing aperture 49 prior to use in order to prevent the contents of container 1 from escaping through nursing aperture 49.
  • To this end, a removable plug is formed over nursing aperture 45. In the embodiment seen in the figures, the removable plug consists of a pull tab 55 integrally formed with attachable nipple 45. Where the lower section of the pull tab 55 attaches to nursing aperture 49, a v-shaped cut is produced through nipple head 46 such that only a thin section of material holds tab 55 to nipple head 46. This produces a fault or fatigue point along which tab 55 will break off. When tab 55 is pulled, it readily tears away or twists off and leaves aperture 49 open to fluid flow induced by an infant's suckling. All the features of nipple attachment 45, including v-shaped cuts and pull tabs 55, may be integrally formed by any conventional technique such as pour molding or injection molding of silicon.
  • A second aperture, air aperture 53, is also formed in the shoulder portion 48 of nipple attachment 45. Air aperture 53 is closed with a removable plug 54 in the same manner as nursing aperture 49. The purpose of air aperture 53 is to allow air into container 1 to displace fluid removed through the infant's nursing and prevent a vacuum from forming in container 1. Naturally an air aperture could be positioned anywhere on the container which would allow air to replace the fluid removed.
  • Connecting nipple attachment 45 to container 1 may be accomplished as follows. Nipple attachment 45 will have an attachment perimeter which is sufficiently large in diameter in order to stretch across the container rim. The lid rim will then be placed over the attachment perimeter and the container rim and the lid rim will be crimped into place. It will be understood that when the rubber-like material is tightly crimped between the container rim and the lid rim, it will form an air-tight seal for retaining and sealing in the contents of container 1.
  • When nipple attachment 45 is used in combination with container 1, a plastic rim cap or protective ring 5 (see FIG. 2) may be positioned on top of the metal lid rim to ensure that overly warm metal does not come into contact with the infant suckling from contain 1.
  • In a preferred embodiment, container 1 will include some type of easy-opening lid 3, such as a conventional lid having a rim, a peel-back top, and a finger ring as suggested in FIG. 1. As is well known in the art, the lid will be opened by first lifting the finger ring to cause a punch portion to break the seal between the peel-back top and the lid rim. Then the finger ring will be pulled backwards, pulling the peel-back top away from the rest of the lid rim.
  • FIG. 6B shows nipple attachment 45 in an extended position, ready for use after the plug 55 is removed. However, prior to being placed in use, nipple attachment 45 will be placed in a folded or semi-inverted position within container 1 as seen in FIG. 6A. The material between nipple neck 47 and nipple shoulder 48 will be semi-inverted such that nipple head 46 will be just below the container lid. In order to allow nipple attachment 45 to fold more readily, the side walls along the portion of nipple attachment 42 which semi-inverts will be somewhat thinner than the remaining sections of nipple attachment 45. For example, the inverting portion of the sidewall may be approximately 0.6 mm thick while the remaining sections of the nipple attachment 45 are approximately 2 to 3 mm thick.
  • It will be seen that placing nipple attachment 45 in the folded position within container 1 allows it to be sealed therein by the lid as suggested by FIG. 1. This will ensure that nipple attachment 45 remains in a clean and sterile condition up until the moment it is placed in use. To place container 1 into use, it is only necessary to remove the peel-back the top of the lid, pull nipple attachment 45 into the extended position, and twist off removable plugs 55.
  • The present invention will further include a novel lip protector 60 as seen in FIG. 7. Lip protector 60 will generally comprise a ring portion 62 substantially conforming to the rim of the container lid 3. Positioned in front of the collapsible tab 58 will be front portion 63 of lip protector 60. Positioned to the rear of collapsible tab 58 will be a middle section 61 which connects at each end to ring portion 62. It will be understood that a user can lift the rear of opening tab 64 which will pivot downward beneath middle section 61 and depress collapsible tab 58 and create an opening in lid 3. In the embodiment shown, lip protector 60 will be formed in a manner which leaves at least half of the lid 3 uncovered by lip protector 60. In an alternate embodiment, ring portion 62 will be fixed against rotation on the rim (e.g., by crimping or by an adhesive) such that lip protector 60 cannot rotate out of position at any time or at any temperature normal temperature range of container 1, either prior to activation of the themic module or at the highest temperature the container reaches after activation.
  • The present invention also includes a method of retorting a self-heating container. “Retorting” is a conventional process of sterilizing the contents of a canned goods and the like. Retorting typically comprises subjecting the contents of a sealed can to elevated temperatures (about 120° C.) and pressures (about 10 psi). The method begins with the step of providing a metal container 1 (see FIGS. 2 and 6 a) having an open top end 11, a beverage space 6, and a cavity 10 for heat changing reactants formed in a bottom end of the container 1. A beverage is placed in the beverage space 6 and a lid 3 is hermetically secured onto open top end 11. Cavity 10 of container 1 is then charged with at least two reactants separated by a breakable barrier which in one embodiment is the process and structure described in the above Figures. Thereafter, the metal end ring 27 is crimped onto the bottom end of container 1 to form a substantially moisture tight seal between the interior of cavity 10 and an environment outside container 1. The crimp of end ring 27 is “substantially moisture tight” in the sense that it will prevent moisture (e.g. steam or water) from entering cavity 10 when container 1 is subject a retorting process at temperatures of at least 100° C. and pressures of at least 5 psi. More preferably, the end ring crimp prevents the entry of moisture at temperatures of at least about 120° C. and pressures of at least about 15 psi.
  • While the present invention has been described in terms of specific embodiments, many variations and modifications will be apparent to those skilled in the art. For example, the reactants in the above embodiments were CaO and water, but other reactants are within the scope of the present invention. Likewise, while wax is disclosed as the temperature moderating substance in the above embodiments, any substance maintaining the reaction temperature at between about 105° C. and about 120° C. is within the scope of the present invention. All such modifications and variations are intended to come within the scope of the following claims.

Claims (15)

1. A container having a thermotic module and a label attached to a surface of said container, said label comprising an irreversible ink which gives an irreversible indicia when said thermotic module has been activated.
2. The container according to claim 1, wherein said irreversible ink is a thermochromic ink.
3. The container according to claim 2, wherein said indicia comprises lettering formed by said irreversible ink.
4. The container according to claim 2, wherein said indicia comprises the negative image of lettering formed by said irreversible ink.
5. The container according to claim 2, wherein said irreversible ink is a thermochromic leuco dye ink.
6. The container according to claim 2, wherein said label comprises a PVC film and said ink is printed on a surface of said film which attaches to said container.
7. The container according to claim 2, wherein said label comprises said ink applied directly to a metal surface of said container.
8. The container according to claim 2, wherein said ink changes color state at a temperature of at least about 40 degrees Celsius.
9. The container according to claim 5, wherein said ink changes color state at a temperature of at least about 40 degrees Celsius.
10. The container according to claim 6, wherein said ink changes color state at a temperature of at least about 40 degrees Celsius.
11. The container according to claim 6, wherein said ink changes color state at a temperature of at least about 40 degrees Celsius.
12. The container according to claim 2, wherein said label is applied to a metal surface of said container.
13. A self-heating container comprising:
a. a metal container body having an enclosed volume for receiving a beverage and a bottom end with a cavity formed of metal internal walls extending upward into said enclosed volume;
b. a solid reactant positioned within said cavity;
c. a liquid reactant cup having a top and bottom end and a breakable barrier covering said top end to retain a liquid reactant therein;
d. said liquid reactant cup having a an outer shoulder with a vent passage formed therethrough such that no pressure differential is created in a space above and a space below said cup; and
e. a label attached to a surface of said container, said label comprising an irreversible ink which gives an irreversible indicia when said thermotic module has been activated.
14. The self-heating container according to claim 13, further comprising a metal end ring with a second breakable barrier attached thereto, said end ring being crimped onto a bottom of said metal container body to form a substantially moisture tight seal between an interior of said cavity and an environment outside said container.
15. The container according to claim 13, wherein said label comprises said ink applied directly to a metal surface of said container.
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Cited By (11)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20110226636A1 (en) * 2010-03-19 2011-09-22 Rexam Beverage Can Company Ornamental and Temperature Indicating Can Ends and Tabs
US20120232620A1 (en) * 2011-03-10 2012-09-13 Walters Dale E Infant Heel Heat Pack
US20130075296A1 (en) * 2011-09-27 2013-03-28 Crown Packaging Technology, Inc. Marking of Can Ends And/Or Pull Tabs Using Photonically Sensitive Ink
US20130144367A1 (en) * 2011-03-10 2013-06-06 Dale E. Walters Infant Heel Heat Pack
US20140245527A1 (en) * 2013-03-01 2014-09-04 Gel Sports Incorporated Comfort guard apparatus for regulating body temperature and method of use
US20140262897A1 (en) * 2013-03-15 2014-09-18 Owens-Brockway Glass Container Inc. Container With A Medal
US9186924B2 (en) 2012-04-17 2015-11-17 Rexam Beverage Can Company Decorated beverage can tabs
US20160121259A1 (en) * 2013-06-21 2016-05-05 Mitsubishi Gas Chemical Company, Inc. Absorbent- containing container
WO2016168575A1 (en) * 2015-04-17 2016-10-20 Joseph Company International, Inc. Food or beverage container having heat exchange unit internally thereof and thermochromic material on outer surface to indicate temperature change
WO2019136056A1 (en) * 2018-01-02 2019-07-11 Silgan Containers Llc Tamper evidencing metal foil container closure
US11396416B2 (en) * 2015-10-29 2022-07-26 Tempra Technology, Inc. Portable heating for small quantities of consumer product

Citations (90)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US730337A (en) * 1901-10-04 1903-06-09 Martin Bonnefont Nursing-bottle.
US1897723A (en) * 1927-04-29 1933-02-14 Walter H Free Refrigerating device
US2089970A (en) * 1934-12-29 1937-08-17 Non Metallic Minerals Inc Merwinite refractories
US2288895A (en) * 1940-10-09 1942-07-07 Continental Can Co Self-heating container
US2300793A (en) * 1941-03-22 1942-11-03 Virgil E C Martin Self-heating can
US2327447A (en) * 1940-02-15 1943-08-24 Continental Can Co Self-heating food container
US2384278A (en) * 1940-10-25 1945-09-04 Ici Ltd Heater for canned foods and beverages
US2519986A (en) * 1949-06-30 1950-08-22 Allan E Trout Baby food formula container
US2628909A (en) * 1947-09-05 1953-02-17 John J Horan Packaging for liquid infant food
US2628906A (en) * 1950-01-21 1953-02-17 John J Horan Nursing devices
US2746265A (en) * 1955-01-07 1956-05-22 Evan D Mills Container cooling device
US2850006A (en) * 1955-12-02 1958-09-02 Olaus G Karpalo Emergency can heater
US2956702A (en) * 1956-03-19 1960-10-18 Clark W Ransom Infant nursing bottle and nipple arrangement
US3023587A (en) * 1958-04-07 1962-03-06 Kwik Kold Of America Inc Chemical cooling stick for beverages
US3049729A (en) * 1959-06-17 1962-08-21 Dream Flex Inc Bed construction
US3094981A (en) * 1962-01-02 1963-06-25 Alice K Brewer Self-heating composite container
US3101707A (en) * 1960-02-18 1963-08-27 Edward C Ryan Food heating devices
US3213932A (en) * 1961-09-14 1965-10-26 Gottfurcht Bernard Varied temperature container
US3815867A (en) * 1973-04-16 1974-06-11 Us Navy Pressure regulator
US3874557A (en) * 1974-02-07 1975-04-01 Harold E Porter Self-cooling or self-heating beverage container or the like
US3970068A (en) * 1973-05-29 1976-07-20 Shotaro Sato Heat exchange package for food
US4067949A (en) * 1975-03-05 1978-01-10 Owens-Illinois, Inc. Container with improved heat-shrunk cellular sleeve
US4338098A (en) * 1979-04-03 1982-07-06 Teitin Limited Solid heat-generating composition
US4450977A (en) * 1981-04-02 1984-05-29 The Dow Chemical Company Manufacture of draw-redraw cans using film laminated or extrusion coated steel sheet material
US4486366A (en) * 1983-01-14 1984-12-04 Owens-Illinois, Inc. Method of continuously producing heat shrinkable amorphous polystyrene foam layer
US4501259A (en) * 1981-12-18 1985-02-26 Tarahelm Limited Device for heating food contained in a sealed container
US4600111A (en) * 1985-05-13 1986-07-15 Brown Mary F Toddler cup
US4640264A (en) * 1983-10-20 1987-02-03 Tosinobu Yamaguchi Food and drink warming container
US4762113A (en) * 1986-08-04 1988-08-09 Chori Company, Ltd. Self-heating container
US4784678A (en) * 1987-04-06 1988-11-15 The Coca-Cola Company Self-cooling container
US4793323A (en) * 1986-07-16 1988-12-27 Blusei S.P.A. Single-use self-heating container for liquids and/or solids
US4802343A (en) * 1987-07-01 1989-02-07 The Coca-Cola Company Self-cooling container
JPS6458682A (en) * 1987-08-27 1989-03-06 Toppan Printing Co Ltd Production of self-heating type can pack
JPS6470375A (en) * 1987-05-25 1989-03-15 Chuo Shikan Kogyo Kk Sealed container for food
US4895135A (en) * 1987-08-10 1990-01-23 Fukubi Kagaku Kogyo Kabushiki Kaisha Self-heating container
US4949702A (en) * 1988-08-12 1990-08-21 Nissin Shokuhin Kabushiki Kaisha Self-heating container
US5018232A (en) * 1986-11-24 1991-05-28 Sachetti Terrance W Cover
US5072605A (en) * 1989-06-13 1991-12-17 Toyo Seikan Kaisha Ltd. Process for production of covered deep-drawn can
US5088870A (en) * 1987-08-27 1992-02-18 Daiwa Can Company Method for forming a two chambered can
US5169524A (en) * 1990-11-27 1992-12-08 Horst Meiritz Filter ring
US5190609A (en) * 1991-04-02 1993-03-02 Avery Dennison Corporation Stable pressure sensitive shrink label technique
US5217740A (en) * 1991-08-13 1993-06-08 Purina Mills, Inc. High moisture ration
US5255812A (en) * 1992-07-01 1993-10-26 Hsu Yu T Container cap
JPH06270970A (en) * 1993-03-15 1994-09-27 Asahi Chem Ind Co Ltd Retort pouch food container with heat generating function
US5392762A (en) * 1994-01-24 1995-02-28 Hsu; Yu T. Beverage can heating device
US5461867A (en) * 1994-05-31 1995-10-31 Insta-Heat, Inc. Container with integral module for heating or cooling the contents
US5465707A (en) * 1994-06-15 1995-11-14 Fulcher; Fred Self heating individual meal package
US5483949A (en) * 1994-09-22 1996-01-16 James; Dean B. Exothermic compositions and container for heating food
US5542418A (en) * 1995-01-30 1996-08-06 Hotcan International, Ltd. Acid-base fuels for self heating food containers
US5555741A (en) * 1993-10-07 1996-09-17 Envirochill International Ltd. Self-cooling fluid container with integral refrigerant chamber
JPH08301364A (en) * 1995-05-02 1996-11-19 Daiwa Can Co Ltd Container with heating function
US5626020A (en) * 1995-05-05 1997-05-06 Sangster; Bruce F. Molecular refrigerants and cooling systems
US5626022A (en) * 1994-05-31 1997-05-06 Insta-Heat, Inc. Container with integral module for heating or cooling the contents
US5740567A (en) * 1997-03-24 1998-04-21 Mitchell; Kimberly E. Blanket with waterproof frictional backing
US5786578A (en) * 1997-06-30 1998-07-28 Christy; George M. Microwave-heatable exercise putty in a container with temperature indicator
US5943875A (en) * 1997-12-08 1999-08-31 Envirochill International, Ltd. Self-cooling fluid container with nested refrigerant and fluid chambers
US5946930A (en) * 1997-03-26 1999-09-07 Anthony; Michael M. Self-cooling beverage and food container using fullerene nanotubes
US6079405A (en) * 1999-11-30 2000-06-27 Justo; Jose A. Container with in situ dual food product mixing and heating
US6103280A (en) * 1997-09-20 2000-08-15 Bass Public Limited Company Self-cooling containers of beverage and foodstuffs
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
US6123065A (en) * 1996-06-11 2000-09-26 Teglbjarg; Caspar Feeding bottle
US6134894A (en) * 1995-03-23 2000-10-24 Searle; Matthew J. Method of making beverage container with heating or cooling insert
US6138847A (en) * 1999-02-25 2000-10-31 Johnson; Russell Joe Disposable non-reusable baby bottle
US6167718B1 (en) * 1997-04-20 2001-01-02 Edward M. Halimi Self-carbonating self-cooling beverage container
US6171623B1 (en) * 1995-03-03 2001-01-09 Cambridge Consultants Limited Liquid feed bottle
US6170283B1 (en) * 1995-09-27 2001-01-09 Michael M. Anthony Self-cooling beverage and food container and manufacturing method
US6178753B1 (en) * 1999-04-19 2001-01-30 Ontro, Inc. Container with self-heating module having liquid reactant and breakable reactant barrier at distal end of module
US6234165B1 (en) * 2000-08-28 2001-05-22 Kevin A. Creighton Baby bottle warmer
US6267110B1 (en) * 2000-02-25 2001-07-31 Convenience Heating Technologies Ltd. Disposable heating unit for food containers
US6266879B1 (en) * 1999-08-26 2001-07-31 Ontro, Inc. Container with integral module for heating or cooling the contents and method for its manufacture
US20020097778A1 (en) * 2001-01-22 2002-07-25 Jason Moroskat Thermo-sensitive labels for beverage containers
US20020117163A1 (en) * 1999-10-15 2002-08-29 Thermotic Developments Limited Self-heating of self-cooling containers
US20020129610A1 (en) * 1999-10-06 2002-09-19 Searle Matthew J. Self-heating or self-cooling containers
US20020162549A1 (en) * 2001-05-02 2002-11-07 Kolb Kenneth W. Insertable thermotic module for self-heating can
US20020167989A1 (en) * 2001-05-14 2002-11-14 Russo Michael L. Coffee cup with temperature indication
US6502407B1 (en) * 1999-05-13 2003-01-07 Thermotic Developments Limited Self-heating or self-cooling containers
US20030041853A1 (en) * 2001-05-02 2003-03-06 Kolb Kenneth W. Insertable thermotic module for self-heating cans
US20030071006A1 (en) * 2001-10-12 2003-04-17 Kolb Kenneth W. Infant nipple attachment
US6705309B2 (en) * 1999-02-26 2004-03-16 Matthew J Searle Self-heating or self-cooling containers
US6715173B2 (en) * 2001-02-22 2004-04-06 Sealy Technology Llc Modular sleep systems with friction-secured comfort unit
US6773637B1 (en) * 2000-05-01 2004-08-10 Gail D. DiSalvo Composition for indicating the prevailing temperature
US20040226363A1 (en) * 2002-02-20 2004-11-18 Joseph Rait Level indicator having thermochromic leucodye inks
US20050051156A1 (en) * 2003-07-03 2005-03-10 Schreff H. Joshua Reagent mixtures for self-contained temperature-change container assemblies
US20050145242A1 (en) * 2002-01-28 2005-07-07 Romeu Isidro G. Autothermic packaging
US20050198968A1 (en) * 2004-03-15 2005-09-15 Scudder James A. Tray for selectably heating or cooling the contents
US20050198969A1 (en) * 2004-03-15 2005-09-15 Scudder James A. Container with integral module for heating or cooling the contents
US20050279106A1 (en) * 2004-06-17 2005-12-22 Leonzo Fernando O Self-heating/cooling arrangement for beverage and/or food
US20060162344A1 (en) * 2004-03-15 2006-07-27 Ontech Delaware Inc. Container with module for heating or cooling the contents
US20060169276A1 (en) * 2004-03-15 2006-08-03 Ontech Delaware Inc. Tray for selectably heating or cooling the contents
US20080145488A1 (en) * 2004-08-20 2008-06-19 Mars Incorporated Packaged Stabilized Foodstuff

Patent Citations (102)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US730337A (en) * 1901-10-04 1903-06-09 Martin Bonnefont Nursing-bottle.
US1897723A (en) * 1927-04-29 1933-02-14 Walter H Free Refrigerating device
US2089970A (en) * 1934-12-29 1937-08-17 Non Metallic Minerals Inc Merwinite refractories
US2327447A (en) * 1940-02-15 1943-08-24 Continental Can Co Self-heating food container
US2288895A (en) * 1940-10-09 1942-07-07 Continental Can Co Self-heating container
US2384278A (en) * 1940-10-25 1945-09-04 Ici Ltd Heater for canned foods and beverages
US2300793A (en) * 1941-03-22 1942-11-03 Virgil E C Martin Self-heating can
US2628909A (en) * 1947-09-05 1953-02-17 John J Horan Packaging for liquid infant food
US2519986A (en) * 1949-06-30 1950-08-22 Allan E Trout Baby food formula container
US2628906A (en) * 1950-01-21 1953-02-17 John J Horan Nursing devices
US2746265A (en) * 1955-01-07 1956-05-22 Evan D Mills Container cooling device
US2850006A (en) * 1955-12-02 1958-09-02 Olaus G Karpalo Emergency can heater
US2956702A (en) * 1956-03-19 1960-10-18 Clark W Ransom Infant nursing bottle and nipple arrangement
US3023587A (en) * 1958-04-07 1962-03-06 Kwik Kold Of America Inc Chemical cooling stick for beverages
US3049729A (en) * 1959-06-17 1962-08-21 Dream Flex Inc Bed construction
US3101707A (en) * 1960-02-18 1963-08-27 Edward C Ryan Food heating devices
US3213932A (en) * 1961-09-14 1965-10-26 Gottfurcht Bernard Varied temperature container
US3094981A (en) * 1962-01-02 1963-06-25 Alice K Brewer Self-heating composite container
US3815867A (en) * 1973-04-16 1974-06-11 Us Navy Pressure regulator
US3970068A (en) * 1973-05-29 1976-07-20 Shotaro Sato Heat exchange package for food
US3874557A (en) * 1974-02-07 1975-04-01 Harold E Porter Self-cooling or self-heating beverage container or the like
US4067949A (en) * 1975-03-05 1978-01-10 Owens-Illinois, Inc. Container with improved heat-shrunk cellular sleeve
US4338098A (en) * 1979-04-03 1982-07-06 Teitin Limited Solid heat-generating composition
US4450977A (en) * 1981-04-02 1984-05-29 The Dow Chemical Company Manufacture of draw-redraw cans using film laminated or extrusion coated steel sheet material
US4501259A (en) * 1981-12-18 1985-02-26 Tarahelm Limited Device for heating food contained in a sealed container
US4486366A (en) * 1983-01-14 1984-12-04 Owens-Illinois, Inc. Method of continuously producing heat shrinkable amorphous polystyrene foam layer
US4640264A (en) * 1983-10-20 1987-02-03 Tosinobu Yamaguchi Food and drink warming container
US4600111A (en) * 1985-05-13 1986-07-15 Brown Mary F Toddler cup
US4793323A (en) * 1986-07-16 1988-12-27 Blusei S.P.A. Single-use self-heating container for liquids and/or solids
US4762113A (en) * 1986-08-04 1988-08-09 Chori Company, Ltd. Self-heating container
US5018232A (en) * 1986-11-24 1991-05-28 Sachetti Terrance W Cover
US4784678A (en) * 1987-04-06 1988-11-15 The Coca-Cola Company Self-cooling container
JPS6470375A (en) * 1987-05-25 1989-03-15 Chuo Shikan Kogyo Kk Sealed container for food
US4802343A (en) * 1987-07-01 1989-02-07 The Coca-Cola Company Self-cooling container
US4895135A (en) * 1987-08-10 1990-01-23 Fukubi Kagaku Kogyo Kabushiki Kaisha Self-heating container
JPS6458682A (en) * 1987-08-27 1989-03-06 Toppan Printing Co Ltd Production of self-heating type can pack
US5088870A (en) * 1987-08-27 1992-02-18 Daiwa Can Company Method for forming a two chambered can
US4949702A (en) * 1988-08-12 1990-08-21 Nissin Shokuhin Kabushiki Kaisha Self-heating container
US5072605A (en) * 1989-06-13 1991-12-17 Toyo Seikan Kaisha Ltd. Process for production of covered deep-drawn can
US5169524A (en) * 1990-11-27 1992-12-08 Horst Meiritz Filter ring
US5190609A (en) * 1991-04-02 1993-03-02 Avery Dennison Corporation Stable pressure sensitive shrink label technique
US5217740A (en) * 1991-08-13 1993-06-08 Purina Mills, Inc. High moisture ration
US5255812A (en) * 1992-07-01 1993-10-26 Hsu Yu T Container cap
JPH06270970A (en) * 1993-03-15 1994-09-27 Asahi Chem Ind Co Ltd Retort pouch food container with heat generating function
US5555741A (en) * 1993-10-07 1996-09-17 Envirochill International Ltd. Self-cooling fluid container with integral refrigerant chamber
US5392762A (en) * 1994-01-24 1995-02-28 Hsu; Yu T. Beverage can heating device
US5626022A (en) * 1994-05-31 1997-05-06 Insta-Heat, Inc. Container with integral module for heating or cooling the contents
US5979164A (en) * 1994-05-31 1999-11-09 Insta Heat, Inc. Container with integral module for heating or cooling the contents
US5461867A (en) * 1994-05-31 1995-10-31 Insta-Heat, Inc. Container with integral module for heating or cooling the contents
US5809786A (en) * 1994-05-31 1998-09-22 Insta-Heat, Inc. Container with integral module for heating or cooling the contents
US5941078A (en) * 1994-05-31 1999-08-24 Insta Heat, Inc. Container with integral module for heating or cooling the contents
US5465707A (en) * 1994-06-15 1995-11-14 Fulcher; Fred Self heating individual meal package
US5483949A (en) * 1994-09-22 1996-01-16 James; Dean B. Exothermic compositions and container for heating food
US5542418A (en) * 1995-01-30 1996-08-06 Hotcan International, Ltd. Acid-base fuels for self heating food containers
US6171623B1 (en) * 1995-03-03 2001-01-09 Cambridge Consultants Limited Liquid feed bottle
US6305175B1 (en) * 1995-03-23 2001-10-23 Matthew J. Searle Beverage container with heating or cooling material
US6134894A (en) * 1995-03-23 2000-10-24 Searle; Matthew J. Method of making beverage container with heating or cooling insert
JPH08301364A (en) * 1995-05-02 1996-11-19 Daiwa Can Co Ltd Container with heating function
US5626020A (en) * 1995-05-05 1997-05-06 Sangster; Bruce F. Molecular refrigerants and cooling systems
US6170283B1 (en) * 1995-09-27 2001-01-09 Michael M. Anthony Self-cooling beverage and food container and manufacturing method
US6123065A (en) * 1996-06-11 2000-09-26 Teglbjarg; Caspar Feeding bottle
US5740567A (en) * 1997-03-24 1998-04-21 Mitchell; Kimberly E. Blanket with waterproof frictional backing
US5946930A (en) * 1997-03-26 1999-09-07 Anthony; Michael M. Self-cooling beverage and food container using fullerene nanotubes
US6167718B1 (en) * 1997-04-20 2001-01-02 Edward M. Halimi Self-carbonating self-cooling beverage container
US5786578A (en) * 1997-06-30 1998-07-28 Christy; George M. Microwave-heatable exercise putty in a container with temperature indicator
US6103280A (en) * 1997-09-20 2000-08-15 Bass Public Limited Company Self-cooling containers of beverage and foodstuffs
US5943875A (en) * 1997-12-08 1999-08-31 Envirochill International, Ltd. Self-cooling fluid container with nested refrigerant and fluid chambers
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
US6138847A (en) * 1999-02-25 2000-10-31 Johnson; Russell Joe Disposable non-reusable baby bottle
US6705309B2 (en) * 1999-02-26 2004-03-16 Matthew J Searle Self-heating or self-cooling containers
US6178753B1 (en) * 1999-04-19 2001-01-30 Ontro, Inc. Container with self-heating module having liquid reactant and breakable reactant barrier at distal end of module
US6502407B1 (en) * 1999-05-13 2003-01-07 Thermotic Developments Limited Self-heating or self-cooling containers
US6351953B1 (en) * 1999-08-26 2002-03-05 James A. Scudder Container with integral module for heating or cooling the contents and method for its manufacture
US6266879B1 (en) * 1999-08-26 2001-07-31 Ontro, Inc. Container with integral module for heating or cooling the contents and method for its manufacture
US20020129610A1 (en) * 1999-10-06 2002-09-19 Searle Matthew J. Self-heating or self-cooling containers
US20020117163A1 (en) * 1999-10-15 2002-08-29 Thermotic Developments Limited Self-heating of self-cooling containers
US6079405A (en) * 1999-11-30 2000-06-27 Justo; Jose A. Container with in situ dual food product mixing and heating
US6267110B1 (en) * 2000-02-25 2001-07-31 Convenience Heating Technologies Ltd. Disposable heating unit for food containers
US6773637B1 (en) * 2000-05-01 2004-08-10 Gail D. DiSalvo Composition for indicating the prevailing temperature
US6234165B1 (en) * 2000-08-28 2001-05-22 Kevin A. Creighton Baby bottle warmer
US20020097778A1 (en) * 2001-01-22 2002-07-25 Jason Moroskat Thermo-sensitive labels for beverage containers
US6715173B2 (en) * 2001-02-22 2004-04-06 Sealy Technology Llc Modular sleep systems with friction-secured comfort unit
US6962149B2 (en) * 2001-05-02 2005-11-08 Expressasia.Com Snd. Bhd. Insertable thermotic module for self-heating can
US20020162549A1 (en) * 2001-05-02 2002-11-07 Kolb Kenneth W. Insertable thermotic module for self-heating can
US7004161B2 (en) * 2001-05-02 2006-02-28 Expressasia Berhad Insertable thermotic module for self-heating cans
US6986345B2 (en) * 2001-05-02 2006-01-17 Expressasia Berhad Insertable thermotic module for self-heating can
US20030041853A1 (en) * 2001-05-02 2003-03-06 Kolb Kenneth W. Insertable thermotic module for self-heating cans
US20030205224A1 (en) * 2001-05-02 2003-11-06 Kolb Kenneth W. Insertable thermotic module for self-hearing can
US20020167989A1 (en) * 2001-05-14 2002-11-14 Russo Michael L. Coffee cup with temperature indication
US6708833B2 (en) * 2001-10-12 2004-03-23 Kenneth W. Kolb Infant nipple attachment
US20030071006A1 (en) * 2001-10-12 2003-04-17 Kolb Kenneth W. Infant nipple attachment
US20050145242A1 (en) * 2002-01-28 2005-07-07 Romeu Isidro G. Autothermic packaging
US20040226363A1 (en) * 2002-02-20 2004-11-18 Joseph Rait Level indicator having thermochromic leucodye inks
US20050051156A1 (en) * 2003-07-03 2005-03-10 Schreff H. Joshua Reagent mixtures for self-contained temperature-change container assemblies
US20050198969A1 (en) * 2004-03-15 2005-09-15 Scudder James A. Container with integral module for heating or cooling the contents
US20050198968A1 (en) * 2004-03-15 2005-09-15 Scudder James A. Tray for selectably heating or cooling the contents
US7025055B2 (en) * 2004-03-15 2006-04-11 Ontech Delaware Inc. Tray for selectably heating or cooling the contents
US20060162344A1 (en) * 2004-03-15 2006-07-27 Ontech Delaware Inc. Container with module for heating or cooling the contents
US20060169276A1 (en) * 2004-03-15 2006-08-03 Ontech Delaware Inc. Tray for selectably heating or cooling the contents
US7117684B2 (en) * 2004-03-15 2006-10-10 Ontech Delaware Inc. Container with integral module for heating or cooling the contents
US20050279106A1 (en) * 2004-06-17 2005-12-22 Leonzo Fernando O Self-heating/cooling arrangement for beverage and/or food
US20080145488A1 (en) * 2004-08-20 2008-06-19 Mars Incorporated Packaged Stabilized Foodstuff

Cited By (18)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20110226636A1 (en) * 2010-03-19 2011-09-22 Rexam Beverage Can Company Ornamental and Temperature Indicating Can Ends and Tabs
US8844747B2 (en) * 2010-03-19 2014-09-30 Rexam Beverage Can Company And temperature indicating can ends and tabs
US9028537B2 (en) * 2011-03-10 2015-05-12 Dale E. Walters Infant heel heat pack
US20120232620A1 (en) * 2011-03-10 2012-09-13 Walters Dale E Infant Heel Heat Pack
US20130144367A1 (en) * 2011-03-10 2013-06-06 Dale E. Walters Infant Heel Heat Pack
US20130075296A1 (en) * 2011-09-27 2013-03-28 Crown Packaging Technology, Inc. Marking of Can Ends And/Or Pull Tabs Using Photonically Sensitive Ink
US9637267B2 (en) 2011-09-27 2017-05-02 Crown Packaging Technology, Inc. Marking of can ends and/or pull tabs using photonically sensitive ink
US9186924B2 (en) 2012-04-17 2015-11-17 Rexam Beverage Can Company Decorated beverage can tabs
US10118729B2 (en) 2012-04-17 2018-11-06 Rexam Beverage Can Company Decorated beverage can tabs
US20140245527A1 (en) * 2013-03-01 2014-09-04 Gel Sports Incorporated Comfort guard apparatus for regulating body temperature and method of use
US20140262897A1 (en) * 2013-03-15 2014-09-18 Owens-Brockway Glass Container Inc. Container With A Medal
US9637271B2 (en) * 2013-03-15 2017-05-02 Owens-Brockway Glass Container Inc. Container with a medal
US9919840B2 (en) 2013-03-15 2018-03-20 Owens-Brockway Glass Container Inc. Container with a medal
US10351301B2 (en) 2013-03-15 2019-07-16 Owens-Brockway Glass Container Inc. Container with a medal
US20160121259A1 (en) * 2013-06-21 2016-05-05 Mitsubishi Gas Chemical Company, Inc. Absorbent- containing container
WO2016168575A1 (en) * 2015-04-17 2016-10-20 Joseph Company International, Inc. Food or beverage container having heat exchange unit internally thereof and thermochromic material on outer surface to indicate temperature change
US11396416B2 (en) * 2015-10-29 2022-07-26 Tempra Technology, Inc. Portable heating for small quantities of consumer product
WO2019136056A1 (en) * 2018-01-02 2019-07-11 Silgan Containers Llc Tamper evidencing metal foil container closure

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