GB1592978A - Microwave food heating package method of heating such package containing food food so heated and combination of oven and microwave food heating package - Google Patents

Microwave food heating package method of heating such package containing food food so heated and combination of oven and microwave food heating package Download PDF

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Publication number
GB1592978A
GB1592978A GB4177177A GB4177177A GB1592978A GB 1592978 A GB1592978 A GB 1592978A GB 4177177 A GB4177177 A GB 4177177A GB 4177177 A GB4177177 A GB 4177177A GB 1592978 A GB1592978 A GB 1592978A
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Prior art keywords
package
food
microwave
heating
heating element
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GB4177177A
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Pillsbury Co
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Pillsbury Co
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Publication of GB1592978A publication Critical patent/GB1592978A/en
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Classifications

    • 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
    • B65D81/3446Containers, 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 specially adapted to be heated by microwaves
    • 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
    • B65D2581/00Containers, 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
    • B65D2581/34Containers, 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
    • B65D2581/3401Cooking or heating method specially adapted to the contents of the package
    • B65D2581/3402Cooking or heating method specially adapted to the contents of the package characterised by the type of product to be heated or cooked
    • B65D2581/3405Cooking bakery products
    • B65D2581/3406Pizza or bread
    • 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
    • B65D2581/00Containers, 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
    • B65D2581/34Containers, 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
    • B65D2581/3437Containers, 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 specially adapted to be heated by microwaves
    • B65D2581/3439Means for affecting the heating or cooking properties
    • B65D2581/3447Heat attenuators, blocking agents or heat insulators for temperature control
    • 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
    • B65D2581/00Containers, 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
    • B65D2581/34Containers, 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
    • B65D2581/3437Containers, 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 specially adapted to be heated by microwaves
    • B65D2581/3439Means for affecting the heating or cooking properties
    • B65D2581/3448Binders for microwave reactive materials, e.g. for inks or coatings
    • 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
    • B65D2581/00Containers, 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
    • B65D2581/34Containers, 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
    • B65D2581/3437Containers, 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 specially adapted to be heated by microwaves
    • B65D2581/3463Means for applying microwave reactive material to the package
    • B65D2581/3464Microwave reactive material applied by ink printing
    • 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
    • B65D2581/00Containers, 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
    • B65D2581/34Containers, 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
    • B65D2581/3437Containers, 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 specially adapted to be heated by microwaves
    • B65D2581/3471Microwave reactive substances present in the packaging material
    • B65D2581/3472Aluminium or compounds thereof
    • 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
    • B65D2581/00Containers, 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
    • B65D2581/34Containers, 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
    • B65D2581/3437Containers, 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 specially adapted to be heated by microwaves
    • B65D2581/3471Microwave reactive substances present in the packaging material
    • B65D2581/3477Iron or compounds thereof
    • 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
    • B65D2581/00Containers, 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
    • B65D2581/34Containers, 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
    • B65D2581/3437Containers, 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 specially adapted to be heated by microwaves
    • B65D2581/3471Microwave reactive substances present in the packaging material
    • B65D2581/3479Other metallic compounds, e.g. silver, gold, copper, nickel
    • 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
    • B65D2581/00Containers, 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
    • B65D2581/34Containers, 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
    • B65D2581/3437Containers, 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 specially adapted to be heated by microwaves
    • B65D2581/3471Microwave reactive substances present in the packaging material
    • B65D2581/3481Silicon or oxides thereof
    • 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
    • B65D2581/00Containers, 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
    • B65D2581/34Containers, 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
    • B65D2581/3437Containers, 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 specially adapted to be heated by microwaves
    • B65D2581/3471Microwave reactive substances present in the packaging material
    • B65D2581/3482Ceramic compositions, e.g. vermiculite, bentonite
    • 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
    • B65D2581/00Containers, 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
    • B65D2581/34Containers, 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
    • B65D2581/3437Containers, 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 specially adapted to be heated by microwaves
    • B65D2581/3486Dielectric characteristics of microwave reactive packaging
    • B65D2581/3489Microwave reflector, i.e. microwave shield
    • 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
    • B65D2581/00Containers, 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
    • B65D2581/34Containers, 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
    • B65D2581/3437Containers, 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 specially adapted to be heated by microwaves
    • B65D2581/3486Dielectric characteristics of microwave reactive packaging
    • B65D2581/3494Microwave susceptor

Landscapes

  • Engineering & Computer Science (AREA)
  • Life Sciences & Earth Sciences (AREA)
  • Food Science & Technology (AREA)
  • Mechanical Engineering (AREA)
  • Cookers (AREA)
  • Electric Ovens (AREA)
  • Constitution Of High-Frequency Heating (AREA)
  • Food-Manufacturing Devices (AREA)
  • Food Preservation Except Freezing, Refrigeration, And Drying (AREA)
  • General Preparation And Processing Of Foods (AREA)

Abstract

The package (10) has a base which is designed as a heating element (42) and is composed of a carrier (44) and a layer (46) which absorbs microwaves, becomes hot thereby and heats the food from underneath. The food can also be heated by the direct irradiation of microwaves. The extent of this irradiation is reduced by a shield (38); said shield can have openings (40) which still transmit part of the irradiation. The package can thus be adapted to the food which it is intended to accommodate, with the result that even just part of the food is heated, if required. Converting part of the microwave energy into the heat of the heating element (42) also permits baking, browning and formation of crusts, which is not normally possible with simple irradiation by microwave energy. <IMAGE>

Description

(54) MICROWAVE FOOD HEATING PACKAGE, METHOD OF HEATING SUCH PACKAGE CONTAINING FOOD, FOOD SO HEATED AND COMBINATION OF OVEN AND MICROWAVE FOOD HEATING PACKAGE (71) We, THE PILLSBURY COMPANY, a corporation organized and existing under the laws of the State of Delaware, United States of America, of 608 Second Avenue South, Minneapolis, State of Minnesota 55402, United States of America, (assignee of CHARLES HENRY TURPIN and THOMAS CRAIG HOESE), do hereby declare the invention, for which we pray that a patent may be granted to us, and the method by which it is to be performed, to be particularly described in and by the following statement: The present invention relates to a microwave food heating package, to a method of heating such a package, to food so heated and to a combination of an oven and a microwave food heating package.
Heating foods directly i.e. conventionally in a microwave oven, often gives them a soggy character or if the food is a bread product, it sometimes takes on a leathery character quite unlike that of the same product heated in a non-microwave oven.
The crust of some products such as pizza pies develop an unusual texture which is either soggy or leathery and is quite unappealing. Thus, while sogginess and texture is a problem in some food products, the inability of an ordinary microwave oven to brown the surface is particularly important in heating of meat, eggs, bread or vegetables such as hash brown, french fried or augraten potatoes. In recent years, ceramic dishes that become hot in a microwave oven have been sold to solve this problem. Such a dish is quite heavy, relatively expensive and must be prewarmed without food on it for about 2 to 5 minutes. A number of other containers that have been proposed for browning or searing the surface of a food fall into three general categories.The first are those which include an electrically resistive film usually about .00001 cm to .00002 cm thick applied to the surface of a nonconductor such as a ceramic dish and described, for example in U.S. patents 3,853,612; 3,705,054; 3,922,452 and 3,783,220. Heat is produced because of the I2R loss (resistive loss). This system is not acceptable for use in the invention primarily because of the bulk weight and cost of the dish and its breakability.
Second are microwave energy absorbers formed from a mass or bed of particles that become hot in bulk when exposed to microwave energy. The microwave absorbing substance can be composed of ferrites, carbon particles, etc. Examples are described in U.S. patents 2,582,174; 2,830,162; 3,302,632; 3,773,669; 3,777,099; 3,881,027; 3,701,872 and 3,731,037 and German patent 1,049,019.These materials are useful components in the present invention. The third category comprises electrical conductors such as parallel rods, cups or strips which function to produce an intense fringing electric field pattern that causes surface heating in an adjacent food. Examples are described in U.S. Patents 2,540,036; 3,271,552; 3,591,751; 3,857,009; 3,946,187 and 3,946,188. This system of heating is not used in the present invention.
In the development of the present invention, microwave energy absorbers when used alone were found unsatisfactory for most purposes particularly in conjunction with heating farinaceous foods such as bread products, fruit pies or pizza pies primarily because the microwave energy received directly by the food product from the magnetron or other microwave generator caused the internal temperature of the food product to rise quite rapidly whereas the heat conducted from the microwave absorber was applied more slowly so that by the time the exterior became brown or was seared, the interior was burned, dried, or otherwise overdone. U.S. Patent 3,941,967 describes a microwave cooking vessel or utensil having a body formed from glass, porcelain, and ceramic or synthetic resin such as fluorine-containing resin, polypropylene, or the like.In the vessel is a metal plate beneath which is provided a heating element such as the ferrite ceramic, sillicon carbide ceramic or a resistive film. A shield cover formed from a metal sheet or mesh is placed over the food to isolate the microwave radiation from the food and the internal heating of the material to be cooked is set at a suitable level by properly adjusting the leakage of the microwave radiation through the shield cover. While the system described in the patent can be used to provide a balance between internal and external heating, the vessel is expensive, costing $20 or more, and heavy. Much of the weight and cost of the patented vessel results from the inherent bulk and weight of the heat absorber. It is therefore used as a permanent utensil by the homemaker and is totally unsuited as a container for vending a food product.Moreover the relatively large bulk and mass of the heat absorber causes it to stay very hot, say 500--600"F for quite a time after removal from the oven which makes it possible for the fingers to be burned.
Another heater is described in U.S. Patent 3,777,099. Similarly massive, the heat absorber is placed inside an insulator such as sand or concrete with cardboard or ceramic around it. All forms of the invention utilize a heavy slab or plate on which the food is placed. The food is not shielded or enclosed. U.S.
Patent 3,731,037 describes a microwave kiln for food having heat insulating walls preferably of a material capable of withstanding refractory temperatures lined with a material such as glass or ceramic which is made lossy. The patent also discloses a disposable kiln containing an aluminum food dish, polyurethane foam walls and a lossy floor lining which consists of water.
It has been previously proposed to provide a paper box with a metal foil layer which partially shields a food contained in the package from microwave radiation when heated in a microwave oven. Examples are U.S. Patents 2,714,070; 3,865,301 and 3,219,460. When foods are heated in packages of this kind, the aforementioned problems of sogginess or leatheriness and absence of surface scorching occur rendering the container unsuited for the purpose to which the present invention is directed.
According to the present invention there is provided a disposable microwave food heating package which comprises a package body formed from a microwave transparent non-lossy dielectric sheet material having a cellulosic or plastic resin base defining an outer container, at least one lossy microwave absorptive heating element within the container, the absorptive heating element: (i) becoming hot when exposed to microwave radiation, (ii) having a thickness substantially in the range wherein the heating element thickness and the surface temperature obtained by the heating element when subjected to microwave heating for a specified time are positively correlated (as herein after defined).
(iii) being associated in conductive heat transfer relationship with a food when the food is placed in the package, and (iv) being adapted to heat the food in heat transfer relationship with the heating element to sufficiently high temperature to sear, brown or crisp the surface thereof, and a microwave opaque shield member at least partially enclosing the food to reduce by a predetermined quantity the direct transmission of microwave energy to the food.
The invention includes a method of heating food in such a package, food when so heated and also a combination of an oven and such a package.
By practice of the present invention there may be provided a microwave heating package and distribution method for foodstuffs having one or more of the following characteristics and advantages: a) the package can be considered inexpensive and disposable; b) can be used for both shipping and heating a food and will sear or brown its surface; c) can be used as a serving plate or tray; d) can be constructed primarily of known packaging materials which are readily obtainable and inexpensive; and e) provision is made for locating a heat absorber in position... to receive microwave energy at a point in the oven where the energy is coupled efficiently to the absorber; f) the food can in some forms of the invention be heated simultaneously by the dual application of microwave energy directly and by conduction heating from a heat absorber to the surface of the food product to thereby brown, dry or scorch the surface in contact with the heat absorber; g) the package is safe to use without danger of sparks, arcing or burning during heating; h) provision is made if desired for totally shielding the food product from direct exposure to microwave energy while heating is accomplished solely through conduction from a heat absorber; i) there is a provision for allowing the heat absorber to very quickly cool after the oven is turned off to prevent burning the fingers;; j) the package has enough strength to adequately protect the food during shipping and will not break or contaminate the food; k) the package is light weight and specifically, a package for a single 343X343 inch 66 gm. slice of pizza will weigh about 30 gm. or less and contain a microwave absorptive heating material in a layer weighing about 15 gms. or less.
The present invention provides an inexpensive disposable microwave food shipping, heating and serving container or package composed of a microwave energy absorber which becomes hot when exposed to microwave radiation associated in conductive heat transfer relationship with a food product when the food is placed in the package. The expression "heat conductive relationship" herein means thermal conduction through a solid as well as the transmission of radiant heat by electromagnetic waves and the convection of heat through the air.
Thus although the food usually touches the absorber, or is in contact with a layer adjacent to it, contact is not always essential. The food while usually refrigerated can be frozen or at room temperature. The absorber is usually but not necessarily in the form of a layer or sheet of lossy material bonded to a structural supporting sheet such as metal foil. The package includes a shield which is usually an electrical conductor to reduce by a controlled amount the direct transmission of microwave energy into the food product. The shield can comprise a metal screen or a metal foil cover having holes adjusted in size to provide a predetermined and controlled amount of direct microwave energy transmission into the food product or when required a single non-perforated sheet.In some embodiments of the invention parts of the package are enclosed and supported in an outer container body formed from microwave transparent semi-rigid dielectric sheet material such as a paperboard carton which forms a part of the package. The absorber heats the adjacent surface of the food by conduction to a sufficiently high temperature to crisp or scorch the surface while direct microwave exposure of the food when provided heats the inside. The thickness of the absorber must be substantially in the range wherein absorber thickness and temperature response are positively correlated. In one preferred form of the invention the microwave absorber layer is of the minimum thickness that will reach without exceeding a preselected equilibrium operating temperature.
By means of the present invention foodstuffs can be distributed by packing them in a disposable container having a shield and absorber for converting microwave energy to thermal energy then transporting and heating them in the container to provide surface scorching and reduced direct microwave transmission to the food as will be described more fully below.
Packages in accordance with the present invention can be used for shipping and vending foods both through retail grocery outlets and vending machines.
They can be used for a single serving or for several foods in a single container in the manner of a T.V. dinner.
The container body can comprise any microwave permeable non-lossy material and is usually a dielectric such as paperboard or other cellulosic material or plastic resin such as a polyamide or polyester resin having the requisite heat resistance. The container body, e.g., a paperboard box usually includes side, top and bottom walls to enclose and protect the food product.
The lossy microwave energy absorber preferably has the form of a thin sheet or layer that serves as a heating body and is usually part of a composite sheet of heating body composed of a structural supporting sheet and can be either microwave transparent or microwave opaque such as a ceramic or metal sheet to which the active microwave absorber is applied as a relatively thin paint like layer.
The expression "paint like layer" herein means a coating applied as a layer having a small finite thickness up to on the order of about 1/32 of an inch bonded directly to the structural support layer and having a sufficient flexibility to remain adhered to the layer when the latter is bent or deformed. When this laminate is used to support the food product, the energy absorbing layer is normally placed on the opposite side of the structural support sheet from the food thus the food is adjacent to and usually contacts the structural support sheet or foil. The geometry and especially the thickness of the microwave absorber is preferably maintained within a specified range to control the equilibrium temperature reached by the heater after a specified period of heating or indefinite heating.It was discovered that the thickness should be maintained substantially within the range wherein the temperature is positively correlated with the changes in thickness i.e., the temperature response rises with an increase in thickness. The shield which reduces by a controlled amount the quantity of direct microwave transmission to the food product is conveniently applied as a layer or lamination to the inner surface of the container body. It is preferably, but not invariably, formed from an electrically conductive material such as metal foil, e.g., aluminum foil.
One or more microwave absorbers can be employed. For example, if two are employed, it is convenient to place one on the top and one on the bottom of the food product to sear or brown both top and bottom surfaces. The invention also contemplates completely surrounding the food product with a microwave absorber. This form of the invention is particularly useful in connection with fruit pies.
The present invention will now be further described by reference to the accompanying drawings, in which: Figure 1 is a perspective view of a microwave oven containing a package embodying the invention.
Figure 2 is a perspective view of the package of Figure 1 on an enlarged scale shown with the top open.
Figure 3 is a vertical transverse sectional view taken on line 3-3 of Figure 1 with the package in a closed condition.
Figure 4 is a greatly magnified partial sectional view taken on line 4--4 of Figure 2.
Figure 5 is a partial vertical sectional view similar to Figure 3 of a modified form of the invention.
Figure 6 is a vertical sectional view of another form of the invention.
Figure 7 is another form of the invention in vertical cross section.
Figure 8 is a graph illustrating the relationship between the composite absorber thickness and the resulting surface temperature after heating for one minute.
Figure 9 is a graph showing the time/temperature response for absorbers of different thicknesses.
Refer particularly to Figures 1, 2, and 3 which illustrate a typical application of the invention for use in shipping, heating and serving a single portion of a food such as a slice of pizza pie.
Figure 1 illustrates a package embodying the invention in a microwave oven 5 of suitable known construction including the usual controls 6 microwave generator 7 producing microwaves under present regulations at 2450 megahertz.
It is to be understood, however, that the present invention is applicable to all wavelengths at which microwaves can be used for heating. Microwaves are usually understood to be in the range of 1000 to 30,000 MHZ. The waves are conducted through guide 8 to a microwave oven cavity 9 into which the package 10 is placed.
The package 10 comprises an outer container body 12 formed from a microwave transparent non-lossy dielectric sheet material, e.g. paperboard or plastic including four sidewalls 14, 16, 18 and 20 joined by centrally extending integral corner folds 22, 24, 26 and 27 each comprising a pair of mutually hinged flaps that are also hinged along one side edge to an adjacent sidewall. The carton 12 also includes integral bottom wall 29 and top wall 28 having a tab 30 that can be secured in any suitable manner, e.g., by pasting to the sidewall 20 when the carton is closed to hold the top in place. The top 28 also includes a pair of side flaps 32 and 34 which fold downwardly and lie adjacent to the outside surfaces of side walls 14 and 18. The carton when used for a single serving of pizza pie might measure 4x4xl inch. If paperboard is used, 14 to 18 point bleached food grade sulfate paperboard is preferred. The package is wrapped with Cellophane (Registered Trade Mark) or other protective flexible sheet material 36 (Figure 3) including any of the well known packaging films e.g. nylon, polyester, polystyrene or wax paper. The wrapper 36 is used to protect the package during storage and is removed prior to placing the package in the microwave oven.
Bonded to the inside surface of the cover flap 28 is a shield composed of an electrically conductive metal foil 38 comprising .00035 inch aluminum foil laminated to 25 pound kraft paper. This laminate is bonded with any suitable adhesive to the inside surface of cover 28. The shield 38 in this case does not totally shield the food product contained in the package from all microwave radiation but instead acts as a partial shield adapted to control the passage of microwave energy into the food product directly. The amount reaching the food directly is less than the amount that would reach it without the shield.
Transmission is accomplished through openings 40 of a predetermined size. As heating occurs, moisture vapor and steam is vented through the openings 40 thereby maximizing the opportunity for moisture to be driven out of the crust and for the crust to become crisp. If desired, one or more moveable metal covers (not shown) can be provided to open or close the openings 40 prior heating to any desired extent to thereby allow the user to control the amount of internal heating.
Good results have been achieved with pizza pie of 66 gm. in a 1000 watt oven with four openings 40 each 14 inches square, i.e., totaling 5 square inches of open area while the total area of the shield 38 (including the hole area) is about 21 square inches. Thus, the open area of the holes 40 is about 25% of the shielded area, however, good results can be achieved with a much wider range of open area for example about 10% to 75% of the shield can be open when direct microwave heating is desired. In some cases, as described below, no direct microwave heating is provided for the food product, the product in that case is heated solely by conduction from the heat absorber.In determining the size of the openings 40, i.e., the degree of shielding, one first decides upon the amount of conduction or surface heating that is needed and establishes the dimensions and composition of the composite 42. The size of the openings 40 (or in the case of other embodiments such as that in Figure 7 where no holes are used the size of the shield itself) is then made larger or smaller until the desired predetermined amount of internal heating is accomplished by direct microwave transmission without burning or drying the interior. This is best accomplished empirically. Thus, if the product is not warm enough on the inside, the openings 40 are made larger but is too warm or burned, the openings 40 are made larger but is too warm or burned, the openings 40 are made smaller.In general, the size of openings 40 or the size of the shield itself if no holes are used will be determined by the type of food, its composition, the amount of water contained in the food, whether it is frozen, cooked or uncooked, etc. It should be understood that as the amount of direct microwave transmission to the food is increased, for example by making the openings 40 larger, the amount of energy going to the absorber and consequently the amount of conductive heating decreases. The dimensions and opening size given are merely set forth by way of example.
Within the carton described is provided a spacer such as a sheet of open faced corrugated board or other suitable microwave transparent material 41 of just the proper size to fit easily in the bottom of the carton. On this spacer rests a microwave absorbing heating body 42. The microwave absorbing heating body 42 is a composite or laminate best seen in Figures 2 and 3 consisting of an upper structural support member 44 having a substantial degree of strength and the heat resistance necessary to withstand the temperature involved, e.g., aluminum, steel, copper, brass or ceramic foil or sheet mica, portland cement, or plaster of paris being typical and a microwave absorbing heating layer 46 which comprises any suitable microwave absorptive lossy substance known to the art that will reach a temperature when exposed to microwave energy above 212OF. either alone or in combination with one or more diluents and binders. It is important to note that the body 42 is flexible or semi-flexible in that it can be easily formed or bent with the fingers without fracturing into pieces although coating 46 may crack. This flexibility gives it resistance to breakage even though struck with a hard blow as contrasted with the performance of a rigid sheet formed from a brittle material.
The layer 46 is relatively thin like a layer of paint. The binder bonds or cements the absorbent particles together to hold them in place and also forms the heating layer 46 into a solid mass thereby preventing sparks or arcing between individual particles. The bonding function can be provided by any suitable adhesive or solid matrix that is resistant to the temperatures involved e.g. portland cement, plaster of paris or sodium silicate. The layer 46 may not be continuous.
That is to say, it can be provided in two or more strips or bands or may include holes or openings. The microwave absorber should preferably be lossy enough to achieve temperatures of over 300OF., the most preferred being in the range of 400OF. to 8000 F. Any known lossy microwave energy absorbing substance can be used if it is capable of achieving a temperature of over 212"F. to thereby bring to a boil any free moisture present in the food. The microwave absorbing material may or may not be of the type which is variable with a temperature as described in U.S.
Patent 2,831,162.
Material for use as the microwave energy absorbent layer 46 falls primarily into four groups: first semiconductors, examples of which are zinc oxide, germanium oxide and barium titanate. Among the second group are ferromagnetic materials that have a Curie temperature higher than about 212OF.
including powdered iron, some iron oxides, and ferrites e.g. barium ferrite, zinc ferrite, magnesium ferrite, copper ferrite, or any of the other commonly used ferrites and other suitable ferromagnetic materials and alloys e.g. alloys of magnanese, tin and copper or manganese, aluminum and copper and alloys of iron and sulfur e.g. pyrrhotite with hexagonal crystals. Other materials are for example silicon carbide, iron carbide and strontium ferrite. Other suitable materials are Period 8 oxides and other oxides e.g. chromium oxide, cobalt oxide, manganese oxide, samarium oxide or nickel oxide. One preferred material is powdered and granular Fe3O4 obtained from taconite or mixtures of powdered and granular Fe3O4. In a fourth group are dielectric materials e.g. asbestos, some fire brick, carbon and graphite.
With regard to ferroelectric and ferromagnetic materials it has been found that generally the Curie point must be the same as or above maximum temperature one wants to achieve Thus, if 5000F. is the desired temperature, the Curie point must be at least 5000 F. Slightly higher temperatures might be achieved if the dielectric absorption gives rise to further temperature increases.
Relatively high magnetic or dielectric constants improve the heating ability of the material and help to achieve thinness in the finished product by reducing the mass of material required to achieve a given temperature. The final temperature achieved is limited in three ways in general. First by the Curie point of the active heating material, because below the Curie point the material absorbs microwave energy and above this temperature the material loses its magnetic properties and will no longer heat. Second by the percentage of active microwave absorbent material in the mixture and third, by the amount or mass of microwave absorbent material and particularly by the thickness of the layer 46 that is used. Clay ceramic is not extremely lossy alone but if made part of the heater layer 46 will contribute to some extent to the heat produced. Other examples are silicates and like glasses.
The structural support layer 44 should be relatively inexpensive, undamaged by heat, corrosion resistant, non-toxic to food and provide a degree of structural strength. When aluminum is employed it is preferably a foil about 1--3 mil. thick.
The absorber is preferably on the outside, that is to say, on the opposite side of the supporting sheet 44 from the food product. Aluminum foil when inside serves two purposes. It is a structural support for the absorber and also acts as a clean cooking surface to prevent contamination of the food product by the absorber.
While metal is preferred, layer 44 can also comprise a non-metal such as a nonmetallic mineral or a thin glaze of ceramic fused to the upper surface of the heat absorbing layer 46 but because the heating body 42 must withstand temperatures of 500OF. to 6000F. such a structure does not have the strength of a composite using a metal layer and is expensive in addition to being more breakable. If the structural support 44 is non-metallic it is preferred to use a temperature resistant mineral or ceramic which is fused to form a homogeneous sheet either with or without reinforcement e.g. a metal screen, metal or mineral fibers or glass fibers for structural strength. Metals are greatly preferred to ceramics and glass because of their relative toughness, flexibility or bendability and resistance to breakage.
Accordingly, less material is required than in the case when a non-metal is used for the structural support 44. A forth group comprises formulated combinations of the above materials, or the above materials mixed with non-lossy microwave permeable materials e.g. minerals including perlite, sand, alumina or magnesia which function as inert fillers to slow down the heating rate and help make the layer stronger.
The best lossy material to use depends upon a number of factors, the most important of which are, for example, its heating efficiency, the final temperature to be achieved, the heat stability or resistance to cracking or other destructive factors, the lack of sparks and arcing. When Fe3O4 is used as the primary lossy heat absorber, one suitable formula is 37 grams Fe3O4 obtained from taconite, 37 grams sand and 11.5 mil. of a 2.5 part sodium silicate to 1 part water solution. The sand and powdered Fe3O4 are blended together and the sodium silicate solution is added and uniformly mixed. This wet mixture is applied, for example, by brushing or rolling onto a sheet of 3 mil. aluminum to a thickness of .030 inches.The laminate comprising the layers 44 and 46 is then heated with the edges held to prevent warpage to about 200OF. for about 2 hours or until dry. The resulting laminate is very light in weight, flexible in the sense that it can be easily bent with the fingers, stable and strong enough to withstand shipment and storage. It is nontoxic to food substances and will heat the surface of the food in contact with the upper surface of the aluminum foil to 6000F. or hotter. During the drying of the coating layer 46, most of the water is lost so that the final dry composition comprises about 37 grams Fe3O4, 37 grams sand and about 5 grams sodium silicate.
The spacer 41 can be formed from many microwave transparent articles of which open face corrugated board is merely an example. Other suitable materials are, for example, one or more pieces of perlite, magnesia alumina, glass or fiberglass. If perlite is used, it can be formed from powdered perlite bonded together with sodium silicate in a manner known to those skilled in the art. The spacer 41 preferably holds the absorber 42 about a quarter of an inch or more from the lower surface of the oven cavity to promote efficient coupling of the microwave energy to the heat absorber.
Resting upon the heating body 42 is a food product 43 such as a square slice of pizza pie or any of a variety of other foods e.g. french fries, hash brown potatoes, onion rings, cheese sandwich to be toasted, a slice of fruit pie or meat.
While convenient to make contact between the food and the laminate 4446, it is not essential since heat can be transferred from the composite sheet to the food by radiation or convection rather than conduction.
The food is placed in the package 10 at the factory and shipped at any temperature, either frozen or non-frozen, and can be placed in the oven 5 in either a frozen or non-frozen condition. When the food is to be heated, the wrapper 36 is removed thereby uncovering the openings 40. The package is then placed in the microwave oven and as microwave energy passes into the chamber 9 through guide 8 a predetermined controlled amount of the microwave energy enters the package through openings 40 and passes directly into the food product 43 heating it throughout. The remainder heats the absorber 46 and is transmitted by conduction through aluminum foil layer 44 to the bottom of the food product thereby crisping or browning the bottom of the crust.This action has proved to be highly effective in removing the soggy or leathery character found when the same food product is heated alone in a microwave oven. Heating in a 1000 watt oven will take about 105 seconds for a 66 gm. pizza and 180 seconds for a 264 gm. pizza. The direct controlled microwave transmission through the openings 40 allows the interior of the food product to be heated without being burned or dried. The heat absorber reaches a temperature typically of about 500OF. to 7000F., and preferably in the range of 600OF. Because of the relatively small amount of material in the heat absorbing layer 46 and the low cost of component parts, the container is very inexpensive and can be considered disposable.In addition, the low mass of the heater allows it to very quickly cool to the same temperature as the food product 43 when the power is turned off thereby minimizing the risk of burning the fingers. The microwave absorptive heating surface is characterized by providing sufficient heat to roast, sear or toast the surface of the food article without burning either other parts of the package or the hands when the package is opened.
The geometry and especially the thickness of the heating body 42 and layer 46 was discovered to be an imporant factor in successfully utilizing the present invention. In the development of the present invention, it was discovered that as the thickness of the heater layer 46 was increased starting from a small finite thickness typically in the range of 0.01 inches to 0.016 inches the temperature after a given period of heating rises at first, in other words, is positively correlated with changes in thickness but it then falls surprisingly after some critical thickness is reached and is negatively correlated with the thickness of the heating layer.
Refer to Figure 8 which clearly shows the correlation by plotting the thickness of heating body 42, that is, of aluminum layer 44 and the lossy heating layer 46 against the surface temperature after one minute of heating in a microwave oven. The layer 46 in both Figures 9 and 10 consisted of 50%--325 mesh Fe3O4 and 50%--30+325 mesh Fe3O4 uniformly mixed together and bonded as a solid paint like layer to a 3 mil. sheet of aluminum with a binder consisting of a sodium silicate solution (2.5 parts sodium silicate to 1 part water) with 11.5 mil. of the sodium silicate solution added for each 74 grams of iron oxide. The heating experiments illustrated in Figures 8 and 9 were carried out in a 1000 watt Litton 70/30 oven.The particle sizes presented herein are expressed as U.S. screen sizes.
All quantities and proportions herein are expressed by weight rather than volume unless so indicated. The strongest specimens, i.e., those that withstand heating best without cracking or other damage contain particles of different sizes. For that reason the materials of more than one particle size are preferred.
The thickness of the heating body whether a composite sheet or a microwave absorptive heating body that isnot a composite is substantially on the rising temperature response portion of the curve of Figure 8, in other words, from a small finite thickness at the left to substantially the maximum temperature response. It is in this general range that the temperature increases as a function of increasing thickness, i.e., is positively correlated. The work "substantially" herein means no more than 1/3 greater than the thickness producing the maximum temperature response. Thus, in Figure 8 for example, the operative range extends from the low end of the curve at the left upwardly to 3/32 inches, the maximum response, plus 1/3 of 3/32 inches or 1/8 or an inch. By using thicknesses in this range, the following advantages are achieved.First, the mass of the heater and its cost is kept as low as possible. Second, the composite 42 tends to be more flexible and is more resistant to breakage because layer 46 is better supported by the layer 44. Third, it cools almost immediately to the temperature of the food when removed from the oven thereby minimizing the opportunity to burn the fingers and finally, it heats the surface of the food at a faster rate. This can be seen best by comparing the slopes of the curves in Figure 10 wherein heating time in the oven is plotted against the temperature at four different thicknesses of composite 42.
An important feature of the invention is the discovery that it is useful to control the final equilibrium temperature of the heater, i.e., prevent it from exceeding a predetermined maximum temperature by limiting the thickness of the coating 46. Thus, it can be seen that by reference to Figure 9 that laminates of 1/8 and 1/16 inch thickness can reach 800OF. or 900OF. However, by limiting the thickness to 1/32 of an inch, a maximum of 600OF. will be reached.
In Figure 9 the curves for thicknesses of 1/32 of an inch and 1/4 of an inch have almost levelled out and the reason the curves for 1/8 of an inch and 1/16 of an inch do not show a peak is simply that the samples are not run for a sufficient time.
If they had been then eventually a temperature would have been reached at which heat is given up from the sample as fast as it can convert microwave energy to heat thus limiting the temperature. In a preferred form of the invention, the thickness of the heat absorbing sheet is the minimum thickness that will reach, but not exceed, a selected equilibrium temperature. However, if the temperature of the absorber is still rising at the point where the oven is turned off and the food is done, this preferred optional form of the invention is not being used. While this feature is preferred, it is not essential since turning off the oven at exactly the correct time will prevent overheating. However, it is not as safe and reliable.
Refer now to Figure 5 which illustrates a modified form of the invention in which the same numbers refer to corresponding parts already illustrated in Figures 1 to 4. As seen in Figure 5, the spacer 41 is not used. In its place are a plurality of supports 50 in this case four in number (only one being shown) each of which consists of a tab or flap made by placing a semi-circular cut in the bottom wall 29 of the box 10 near each of the corners thereof. Each of the resulting tabs is turned up thereby supporting the corners of the heating plate 42 and the food product 43. The package of Figure 5 is less expensive than Figures 1 to 4 since the corrugated material 40 is eliminated.
Figure 6 illustrates another modified form of the invention. A microwave food heating package 60 includes an outer container body 62 in this case the carton formed from paperboard having four vertically disposed rectangular sidewalls only three of which 64, 66 and 68 are shown all connected together at their edges either with or without inwardly projecting cornerfolds as described above in connection with Figures 1 to 4. Hinged at 70 to the upper edge of wall 64 is a top wall 69 having a tab 72 that is glued down to hold the cover in place prior to opening. In the package of Figure 6 are two parallel vertically spaced heating composites or laminates 42 each similar to that alreadly described in connection with Figure 4.If desired the upper composite 42 can contain a more concentrated absorber in layer 46 or be thicker so as to reach about the same temperature as the lower composite in the slightly less concentrated field found at the top of the package. One laminate is placed below the food 43 with the aluminum layer 44 facing upwardly in contact with the lower surface of the food and the other is placed above the food and resting on top of the food product with the aluminum layer 44 facing downwardly in contact with the upper surface of the food. The lower laminate 42 can be supported in any suitable manner as by means of paperboard tabs 74 which extend inwardly from sidewalls 64 and 68. It will be seen that the walls 64 and 68 extend downwardly slightly beyond the laminate 42 thereby supporting composite 42 a predetermined distance, e.g., 1/4 inch above the floor of the oven chamber during heating.Bonded to the outside surface of each sidewall including walls 6468 is a shield comprising a strip of electrically conductive material such as an aluminum foil strip 76 which extends all the way around the carton thereby surrounding the food product 43. Strip 76 together with the laminates 42, totally shields the food product from all direct microwave energy radiation so that heating in this instance is carried out solely by means of conduction from the composite 42. In this case the lower composite 42 serves as the bottom of the container. The food product in this instance comprises any kind of food which normally is cooked very little on the interior or has been precooked so that only exterior scorching or browning is needed.Examples are a raw egg, a grilled cheese sandwich consisting of two layers of bread between which is placed a layer of cheese or a bacon, lettuce and tomato sandwich. If the food product comprises a raw egg, the egg can be surrounded by a ring or strip of paper (not shown) or other material to prevent the albumen of the egg from spreading. When these foods are cooked in such a package, the benefits are surprising. In the case of a bacon, lettuce and tomato sandwich, the outside of the bread is toasted and hot whereas the lettuce and tomato remains fresh and crisp and does not becoine cooked, wilted or slimey as it would if placed alone in a microwave oven and cooked. In the case of a grilled cheese sandwich, the bread is toasted and the cheese is warmed or slightly melted whereas if heated along the cheese will become extremely hot and the bread soggy.A raw egg can be fried using the package of Figure 6 and it has the characteristics of an ordinary fried egg whereas when cooked in a microwave oven alone, the finished product is somewhat like a poached egg. If desired, the foil -strip 76 can be omitted still leaving layer 44 at least partially enclosing the food to permit the entry of a controlled amount of microwave energy into the food to heat the interior in addition to the surface heating provided by the two composite sheets 42. This modification is useful with a variety of foods e.g. batter coated pre-cooked filet of fish and hash brown potatoes.
Refer now to Figure 7 which illustrates a modified form of the invention to be used in shipping, heating and serving of several foods only one of which is to be heated on the surface in accordance with the present invention. As seen in Figure 7 a tray 1W and cover 102 are provided each of which may be generally rectangular in plan view with mating edges 104 and 106 that hold the cover 102 in place before the food is served. The tray- 100 is divided into three compartments containing foods 112,114 and 116 by transverse ribs 108 and 110. Food products 112 and 114 can comprise foods that should be heated uniformly throughout such as diced carrots and mash potatoes. The food product 116 is any of the kinds mentioned above which should be heated on the surface to a very high temperature.The heating composite 42 can be of any of the compositions described hereinabove. It includes a structural support layer 44 facing upwardly against the food 116 and a microwave absorptive heating layer 46 bonded to layer 44 as already described. The composite 42 is supported upon a spacer 41 also as described above. Laminated by means of a suitable adhesive to the inside surface of the cover is a shield 118 formed from an electrical conductor which in this instance comprises a sheet of woven metal screen e.g. aluminum screen of a predetermined size including a horizontal top portion and side portion 11 8a that extends downwardly somewhat to provide the requisite shielding for the food product 116.
A certain amount of microwave energy will be able to reach the food product 116 from the sides. Thus, only partial and not complete shielding is provided. The amount of energy reaching the food product 116 and hence the size of the shield 118 is determined by the inside temperature reached when the requisite degree of surface crisping or browning is accomplished by the heater composite 42. The tray 100 and cover 102 can comprise any suitable dielectric material e.g. pressed paper, paper fiber or plastic resin with the requisite heat resistance and can be either foamed or non-foamed. The same materials can be used as described in connection with the carton 12. During use, the tray and cover are placed in a microwave oven which heats the foods 112 and 114 by direct microwave transmission and food 116 both by controlled direct transmission and by conduction from the composite 42.The food can- be served and eaten in tray 100 after the cover 102 has been removed.
It can thus be seen that the invention is adapted to providing a heater composite for heating by conduction one or more surfaces of a food while the food is shielded at least in part from microwave energy. Specifically, in one form of the invention conduction heating is provided on the bottom and the top is shielded. In another embodiment, conduction heating is provided on the top and bottom while the side is either shielded or not shielded. In other cases the product is totally shielded from all direct exposure to microwave energy as illustrated in Figure 6 with heating carried out solely by conduction. However, in any case the conduction heating browns, crisps or sears the surface of the product or dries it out to such an extent as to remove the sogginess or leathery character associated with such a product when heated alone in a microwave oven.It can also be seen that the present invention as illustrated in all embodiments except Figure 6 will provide simultaneously direct microwave and thermal heating in balanced predetermined proportions.
It can also be seen that the invention provides a package which is so inexpensive and light in weight that it can be considered disposable and will afford excellent protection for a food product during shipment, storage and can even be used as a serving dish. Moreover, because of the lightness of the microwave absorbent lossy heat composite, the composite will heat at a very rapid rate and cool down quickly thereby making the package safe to handle after removal from the oven.
The temperatures reached after one mihute of heating of various absorptive compositions are presented below in Table 1. The tests were run on a 1000 watt Litton 70/30 oven. Samples were made with the composition listed to provide a complete laminate of the thickness given by applying the wet coating to a I mil.
thick sheet of aluminum measuring 4 inches by 4 inches. The coating was then dried in an oven for an hour at 2500F. The laminate was then placed in an oven and heated without any food product in contact with it during the test. TABLE 1 Heating Range of Various Bonded Composites Nominal Surface Tempera Weight, Thickness, ture in 60 Sec, Constituents, wt% Example Grams Inches F.-Range Other than Binder Binder 1 74 1/8 500-600 Q Ferrite* (100) Sodium silicate 2 75 1/8 450-550 Q Ferrite* (100) Sodium silicate 3 70 1/8 500-600 -325 Fe3O4 (100) Sodium silicate 4 - 1/16 550-750 -325 Fe3O4 (100) Calcium aluminate 5 112.3 1/8 400-500 -325 Fe3O4 (40), -28 Fe (60) Sodium silicate 6 95 1/8 600-800 -325 Fe3O4 (50), -30+325 Fe3O4 (50) Sodium silicate 7 61.1 1/8 400-600 -325 Fe3O4 (72), -30+325 Graphite (28) Sodium silicate 8 90 1/8 400-700 -325 Fe3O4 (37.5), -30+325 Fe3O4 (37.5), -325 Silica (12.5), -20+100 Sand (12.5) Sodium silicate 9 80 1/8 300-500 -325 Fe3O4 (25), -30+325 Fe3O4 (25), -325 Silica (25), -20+100 Sand (25), Sodium silicate 10 72 1/8 200-300 -325 Fe3O4 (12.5)-30+325 Fe3O4 (12.5) -325 Silica (37.5), -20+100 Sand (37.5) Sodium silicate 11 58 1/16 300-600 -325 Fe3O4 (50), -20+100 Sand (50) Sodium silicate * a nickel, zinc ferrite having a resistivity of about 108 ohm/centimeters made by the Indiana General Corporation of Indiana.
The food can be safely eaten directly from the package with little danger of burning the mouth or fingers since the heat absorbing member cools by the time the food is eaten to the temperature of the food before the food is eaten. For the purposes of the present invention, it is assumed that the food is eaten about 30 seconds or more from the time that the oven is turned off.
The packages of the invention can also be sold empty for the consumer to use in heating any food product in the home and can be disposed of after use or used repeatedly as desired. In such an application of the invention the packages can be marked with the use intended, e.g., for heating pizza pie, for steaks or hamburgers, for toasting sandwiches or for fruit pies. In each case the thickness and composition of the heat absorbing layer 46 and the size of the openings in the shield, if any, would be the best for the particular food marked on the label.
It can also be seen that the heating body or composite 42 has the following important attributes. First, it heats quickly to a temperature that will brown or scorch the surface of the food. Second, in a preferred form of the invention it reaches a maximum temperature within the safe temperature zone for the food being heated if left too long in the oven, and third, it cools fast so as to reach the temperature of the food product by the time the food is eaten. In the case of a ferrous heating layer formed from particles held together with a binder it was found that the preferred thickness range for layer 46 is between .02 and .187 inches. When thinner than this range, the absorber does not get hot enough nor heat fast enough for most foods.When above this range, the microwave energy absorber tends to heat too slowly, eventually reaches an unsate temperature and retains heat too long for safety.
It will also be seen that each of the packages described has a space therein to receive a food product and the shield whether a separate piece as 38 and 76 or laminated to the microwave energy absorber as in Figure 7 at least partially encloses the space for the food to partially or completely shield it from microwave energy. The heating body 42 is located adjacent to and defines one or more boundaries of the space for the food.
WHAT WE CLAIM IS: 1. A disposable microwave food heating package which comprises a package body formed from a microwave transparent non-lossy dielectric sheet material having a cellulosic or plastic resin base defining an outer container, at least one lossy microwave absorptive heating element within the container, the absorptive heating element:: (i) becoming hot when exposed to microwave radiation, (ii) having a thickness substantially in the range wherein the heating element thickness and the surface temperature obtained by the heating element when subjected to microwave heating for a specified time are positively correlated as hereinbefore defined, (iii) being associated in conductive heat transfer relationship with a food when the food is placed in the package, and (iv) being adapted to heat the food in heat transfer relationship with the heating element to sufficiently high temperature to sear, brown or crisp the surface thereof, and a microwave opaque shield member at least partially enclosing the food to reduce by a predetermined quantity the direct transmission of microwave energy to the food.
2. A package as claimed in claim I in which the outer container has at least side and top walls formed from semi-rigid dielectric microwave transparent sheet material.
3. A package as claimed in claim I or 2 in which the outer container is formed from paperboard.
4. A package as claimed in any of claims 1 to 3 in which the package body is in the form of a carton having a carton top and a carton bottom of said microwave transparent, non-lossy sheet material.
5. A package as claimed in any of claims 1 to 4 in which the heating element is of the minimum thickness that will reach but not exceed a preselected equilibrium operating temperature.
6. A package as claimed in any of claims 1 to 5 in which the lossy microwave absorptive heating element is in sheet form.
7. A package as claimed in any of claims 1 to 6 in which the heating element
**WARNING** end of DESC field may overlap start of CLMS **.

Claims (35)

**WARNING** start of CLMS field may overlap end of DESC **. The food can be safely eaten directly from the package with little danger of burning the mouth or fingers since the heat absorbing member cools by the time the food is eaten to the temperature of the food before the food is eaten. For the purposes of the present invention, it is assumed that the food is eaten about 30 seconds or more from the time that the oven is turned off. The packages of the invention can also be sold empty for the consumer to use in heating any food product in the home and can be disposed of after use or used repeatedly as desired. In such an application of the invention the packages can be marked with the use intended, e.g., for heating pizza pie, for steaks or hamburgers, for toasting sandwiches or for fruit pies. In each case the thickness and composition of the heat absorbing layer 46 and the size of the openings in the shield, if any, would be the best for the particular food marked on the label. It can also be seen that the heating body or composite 42 has the following important attributes. First, it heats quickly to a temperature that will brown or scorch the surface of the food. Second, in a preferred form of the invention it reaches a maximum temperature within the safe temperature zone for the food being heated if left too long in the oven, and third, it cools fast so as to reach the temperature of the food product by the time the food is eaten. In the case of a ferrous heating layer formed from particles held together with a binder it was found that the preferred thickness range for layer 46 is between .02 and .187 inches. When thinner than this range, the absorber does not get hot enough nor heat fast enough for most foods.When above this range, the microwave energy absorber tends to heat too slowly, eventually reaches an unsate temperature and retains heat too long for safety. It will also be seen that each of the packages described has a space therein to receive a food product and the shield whether a separate piece as 38 and 76 or laminated to the microwave energy absorber as in Figure 7 at least partially encloses the space for the food to partially or completely shield it from microwave energy. The heating body 42 is located adjacent to and defines one or more boundaries of the space for the food. WHAT WE CLAIM IS:
1. A disposable microwave food heating package which comprises a package body formed from a microwave transparent non-lossy dielectric sheet material having a cellulosic or plastic resin base defining an outer container, at least one lossy microwave absorptive heating element within the container, the absorptive heating element:: (i) becoming hot when exposed to microwave radiation, (ii) having a thickness substantially in the range wherein the heating element thickness and the surface temperature obtained by the heating element when subjected to microwave heating for a specified time are positively correlated as hereinbefore defined, (iii) being associated in conductive heat transfer relationship with a food when the food is placed in the package, and (iv) being adapted to heat the food in heat transfer relationship with the heating element to sufficiently high temperature to sear, brown or crisp the surface thereof, and a microwave opaque shield member at least partially enclosing the food to reduce by a predetermined quantity the direct transmission of microwave energy to the food.
2. A package as claimed in claim I in which the outer container has at least side and top walls formed from semi-rigid dielectric microwave transparent sheet material.
3. A package as claimed in claim I or 2 in which the outer container is formed from paperboard.
4. A package as claimed in any of claims 1 to 3 in which the package body is in the form of a carton having a carton top and a carton bottom of said microwave transparent, non-lossy sheet material.
5. A package as claimed in any of claims 1 to 4 in which the heating element is of the minimum thickness that will reach but not exceed a preselected equilibrium operating temperature.
6. A package as claimed in any of claims 1 to 5 in which the lossy microwave absorptive heating element is in sheet form.
7. A package as claimed in any of claims 1 to 6 in which the heating element
includes a metallic electroconductive supporting sheet and a microwave absorptive layer bonded thereto and supported thereby.
8. A package as claimed in claim 7 in which the supporting sheet is flexible.
9. A package as claimed in any of claims 1 to 8 in which the heating element comprises a composite laminate of a metal foil and a lossy microwave absorptive substance bonded to the foil as a paint-like layer.
10. A package as claimed in any of claims 1 to 9 in which the heating element comprises a layer of metal foil and a paint-like microwave absorptive layer.
11. A package as claimed in claim 9 or 10 in which the paint-like layer is between about 0.02 and 0.187 inch in thickness.
12. A package as claimed in any of claims I to 11 in which the heating element is in sheet form as a paint-like layer applied to a support structure in sheet form and is bonded thereto on at least one surface thereof, the paint-like layer being 1/32 of an inch thick or less and the sheet and support structure being flexible.
13. A package as claimed in any of claims 1 to 12 in which the heating element comprises a multiplicity of particles of microwave absorptive material and a binder bonding the particles together.
14. A package as claimed in claim 13 in which the particles are of different particles sizes.
15. A package as claimed in claim 13 or 14 in which the particles comprise iron oxide.
16. A package as claimed in claim 15 in which the particles comprise Fe3O4.
17. A package as claimed in any of claims 13 to 16 in which the binder is a mineral.
18. A package as claimed in any of claims 13 to 16 in which the binder is sodium silicate.
19. A package as claimed in any of claims 13 to 18 in which a microwave transparent mineral is mixed with the particles as a diluent.
20. A package as claimed in claim 19 in which the microwave transparent mineral is in solid particulate form.
21. A package as claimed in any of claims 13 to 20 in which there is an inert mineral filler with the microwave absorptive material particles and the binder.
22. A package as claimed in claim 21 in which the filler comprises sand.
23. A package as claimed in any of claims 1 to 22 in which the heating element is between 0.02 and 0.187 inch in thickness.
24. A package as claimed in any of claims I to 23 in which there are a pair of spaced apart lossy microwave absorptive heating elements in sheet form, each of the elements being connected in heat conductive relationship with a different surface of the food, when the food is placed in the package to thereby heat different surfaces of the food by conduction when the package is exposed to microwave energy.
25. A package as claimed in any of claims 1 to 23 which is in the form of a tray divided in compartments, there being a lossy microwave absorptive heating element within at least one of the compartments.
26. A package as claimed in any of claims 1 to 25 in which the shield is a metal foil on one side of the package and the absorptive heating element is on the opposite side of the package.
27. A package as. claimed in any of claims 1 to 26 in which the shield encloses the food when the food is placed in the package sufficiently to prevent substantially all direct microwave transmission into the food whereby the food is heated solely by the thermal energy conducted thereto by the absorptive heating element.
28. A package as claimed in any of claims 1 to 26 in which the shield is disposed so that the food when placed in the package is simultaneously heated by the dual effect of controlled microwave radiation heating and by conduction from the heating element.
29. A package as claimed in any of claims 1 to 26 in which the shield is provided with one or more holes for admitting microwave radiation and exhausting vapour and steam, the holes being of predetermined size to admit a selected fraction of microwave radiation impinging on the package to the interior of the food when the food is placed in the package.
30. A disposable microwave food heating package substantially as hereinbefore described with particular reference to and as illustrated in any of the accompanying drawings.
31. A method of heating food which comprises exposing a package as claimed in any of claims 1 to 30, containing food, to microwave energy.
32. A method according to claim 31 substantially as hereinbefore described with particular reference to and as illustrated in any of the accompanying drawings.
33. Food whenever heated by a method as claimed in claim 31 or 32.
34. A combination which comprises an oven and a package as claimed in any of claims 1 to 30 the oven comprising an open cavity and means of energizing the cavity with microwave energy.
35. A combination according to claim 34 substantially as hereinbefore described with particular reference to and as illustrated in any of the accompanying drawings.
GB4177177A 1976-10-08 1977-10-07 Microwave food heating package method of heating such package containing food food so heated and combination of oven and microwave food heating package Expired GB1592978A (en)

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US73087376A 1976-10-08 1976-10-08

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JP (1) JPS5345748A (en)
AT (1) AT362296B (en)
AU (1) AU506612B2 (en)
BE (1) BE859509A (en)
BR (1) BR7704865A (en)
CA (1) CA1091305A (en)
CH (1) CH626581A5 (en)
DE (1) DE2745307A1 (en)
FR (1) FR2367003A1 (en)
GB (1) GB1592978A (en)
IT (1) IT1090092B (en)
MX (1) MX145465A (en)
NL (1) NL7707116A (en)

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GB2133958A (en) * 1983-01-14 1984-08-01 Northland Aluminum Prod Cooking utensil for microwave oven
GB2367226A (en) * 2000-09-15 2002-03-27 Ekco Packaging Ltd Microwave susceptor in a food container
DE102006036253B4 (en) * 2005-09-02 2008-06-05 Müller, Wolfgang Packaging containers for the storage and microwave treatment of foodstuffs
CN114222387A (en) * 2021-11-25 2022-03-22 南京航空航天大学 Method for improving microwave heating temperature uniformity
CN115135584A (en) * 2019-12-28 2022-09-30 艾利丹尼森零售信息服务有限公司 Two-part radio frequency identification tag for inclusion in microwave food packaging

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GB2133958A (en) * 1983-01-14 1984-08-01 Northland Aluminum Prod Cooking utensil for microwave oven
GB2367226A (en) * 2000-09-15 2002-03-27 Ekco Packaging Ltd Microwave susceptor in a food container
GB2367226B (en) * 2000-09-15 2005-02-09 Ekco Packaging Ltd A container for food
DE102006036253B4 (en) * 2005-09-02 2008-06-05 Müller, Wolfgang Packaging containers for the storage and microwave treatment of foodstuffs
CN115135584A (en) * 2019-12-28 2022-09-30 艾利丹尼森零售信息服务有限公司 Two-part radio frequency identification tag for inclusion in microwave food packaging
CN114222387A (en) * 2021-11-25 2022-03-22 南京航空航天大学 Method for improving microwave heating temperature uniformity

Also Published As

Publication number Publication date
FR2367003B1 (en) 1982-05-28
NL7707116A (en) 1978-04-11
CA1091305A (en) 1980-12-09
AU506612B2 (en) 1980-01-17
AU2197277A (en) 1978-08-10
DE2745307C2 (en) 1991-04-11
ATA712577A (en) 1980-09-15
AT362296B (en) 1981-04-27
FR2367003A1 (en) 1978-05-05
BE859509A (en) 1978-04-07
MX145465A (en) 1982-02-19
DE2745307A1 (en) 1978-04-13
BR7704865A (en) 1978-05-02
IT1090092B (en) 1985-06-18
JPS5345748A (en) 1978-04-24
CH626581A5 (en) 1981-11-30

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Effective date: 19971006