INDUCTION COOKING APPARATUS AND METHOD OF USE
20170245329 ยท 2017-08-24
Inventors
Cpc classification
Y10T29/49119
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
A47J27/002
HUMAN NECESSITIES
A47J36/02
HUMAN NECESSITIES
International classification
A47J36/02
HUMAN NECESSITIES
Abstract
A method of forming a cooking apparatus includes providing a vessel having an inside surface, an outside surface, and a hollow area that is configured to receive food. The method also includes forming a first plurality of ferrous elements to be disposed on an outside of the vessel. The method also includes forming a second plurality of ferrous elements to be disposed in the hollow area of the vessel. The first plurality of ferrous elements and the second plurality of ferrous elements are configured to be heated by electromagnetic radiation from an electromagnetic radiation source, and the first plurality of ferrous elements and the second plurality of ferrous elements are configured to transfer heat to food located in the vessel. The method further includes providing a controller to control movement of at least the first plurality of ferrous elements.
Claims
1. A method of forming a cooking apparatus comprising: providing a vessel having an inside surface, an outside surface, and a hollow area that is configured to receive food via an opening in the vessel; forming a first plurality of ferrous elements to be disposed on an outside of the vessel; forming a second plurality of ferrous elements to be disposed in the hollow area of the vessel; and forming a third plurality of ferrous elements to be disposed over the opening of the vessel, wherein the first plurality of ferrous elements, the second plurality of ferrous elements, and the third plurality of ferrous elements are configured to be heated by electromagnetic radiation from an electromagnetic radiation source, and wherein the first plurality of ferrous elements, the second plurality of ferrous elements, and the third plurality of ferrous elements are configured to transfer heat to the food located in the hollow area of the vessel.
2. The method of claim 1, further comprising a controller configured to independently control movement of the first plurality of ferrous elements, the second plurality of ferrous elements, and the third plurality of ferrous elements.
3. The method of claim 1, further comprising mounting the first plurality of ferrous elements on a support column.
4. The method of claim 3, wherein the support column is configured to rotate about a longitudinal axis.
5. The method of claim 1, further comprising mounting the second plurality of ferrous elements on a wall of the inside surface.
6. The method of claim 1, further comprising mounting the second plurality of ferrous elements on a support column.
7. The method of claim 1, further comprising mounting the third plurality of ferrous elements on a support arm disposed over the opening of the vessel.
8. The method of claim 1, wherein the electromagnetic radiation source comprises a first electromagnetic radiation source configured to provide electromagnetic radiation to the first plurality of ferrous elements, a second electromagnetic radiation source configured to provide electromagnetic radiation to the second plurality of ferrous elements, and a third electromagnetic radiation source configured to provide electromagnetic radiation to the third plurality of ferrous elements.
9. The method of claim 1, wherein the vessel is configured to rotate about a longitudinal axis.
10. The method of claim 1, wherein the vessel is made from a ferrous material.
11. The method of claim 1, wherein the vessel is made from a non-ferrous material.
12. The method of claim 1, further comprising forming at least one heat sensor in the hollow area, the at least one heat sensor in communication with a controller and configured to detect areas of the vessel that are cooler relative to other areas of the vessel, and wherein the controller is configured to control movement of at least the first plurality of ferrous elements to direct the heat to the areas of the vessel that are cooler.
13. A cooking system comprising: a cooking vessel having an inside surface, an outside surface, and a hollow area configured to receive food via an opening of the vessel; a first plurality of ferrous elements configured to be positioned outside the cooking vessel; a second plurality of ferrous elements configured to be positioned within the hollow area; a third plurality of ferrous elements configured to be positioned over the opening of the vessel; and at least one electromagnetic radiation source configured to heat the first plurality of ferrous elements, the second plurality of ferrous elements, and the third plurality of ferrous elements to transfer the heat to the food located in the hollow area of the cooking vessel.
14. The cooking system of claim 13, further comprising a motor configured to move the first plurality of ferrous elements relative to the cooking vessel.
15. The cooking system of claim 13, further comprising a heat sensor located within the hollow area, wherein the heat sensor is configured to detect areas of the cooking vessel that are cooler relative to other areas of the cooking vessel, and wherein the heat sensor is in communication with a controller that is configured to control movement of at least the first plurality of ferrous elements to direct the heat to the areas of the cooking vessel that are cooler.
16. The cooking system of claim 13, further comprising a controller configured to control the heat transferred to the food by the first plurality of ferrous elements, the second plurality of ferrous elements, and the third plurality of ferrous elements.
17. A method comprising: positioning a first plurality of ferrous elements relative to a cooking vessel; delivering electromagnetic radiation, by an electromagnetic radiation source, to heat the first plurality of ferrous elements and to transfer the heat from the first plurality of ferrous elements to food within the cooking vessel; detecting, by a heat sensor positioned within the cooking vessel, areas within the cooking vessel that are cooler relative to other areas within the cooking vessel; and causing, by a controller in communication with the heat sensor, movement of the first plurality of ferrous elements for directing targeted heat from the first plurality of ferrous elements to the food within the cooking vessel.
18. The method of claim 17, further comprising causing rotation, by the controller, of the first plurality of ferrous elements relative to the cooking vessel for directing the targeted heat to the food.
19. The method of claim 17, wherein the first plurality of ferrous elements are located outside the cooking vessel.
20. The method of claim 19, wherein a portion of the first plurality of ferrous elements are disposed over an opening of the cooking vessel, wherein the opening is configured to receive the food into the cooking vessel.
Description
BRIEF DESCRIPTION OF DRAWINGS
[0015] Additional features and advantages of the present invention will be made clear in the following specification taken with the drawings in which:
[0016]
[0017]
[0018]
[0019]
[0020]
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[0022]
DETAILED DESCRIPTION
[0023] Embodiments of the present invention will now be described with reference to the above-identified Drawings. However, the Drawings and the description herein of the invention are not intended to limit the scope of the invention. It will be understood that various modifications of the present description of the invention are possible without departing from the spirit of the invention. Also, features described herein may be omitted, additional features may be included, and/or features described herein may be combined in a manner different from the specific combinations recited herein, all without departing from the spirit of the invention.
[0024] With reference to the drawings there is shown in
[0025] The cooking vessel 20 is a container of generally conventional design and may be made of a non-ferrous material or, alternatively, of a non-ferrous material with a ferrous bottom surface to facilitate two modes of cooking. Induction cooking is accomplished according to the present invention and also conventional cooking may be accomplished using a conventional stove or cook top. As shown in
[0026] The source of electromagnetic radiation 24 may be spaced apart from the container 20 as is shown in
[0027] The support structure 22 is a key element of the present invention and is preferably made of a non-ferrous material which is capable of withstanding typical cooking temperatures. Appropriate materials for the support structure 22 have been found to be glass, aluminum and certain woods.
[0028] As is best shown in
[0029] Along the central column 28 there is a plurality of branches 30 or hooks 40 on which ferrous elements 32, 34, 36, 38 or similar materials may be removably affixed according to the wishes of the person preparing the food. The food being cooked may be affixed to selected branches 30 by allowing the end of the branch 30 to pierce the solid food. Alternatively, ferrous elements 32, 34, 36, 38 are permanently attached to central column 28.
[0030] A ferrous or non-ferrous dish or pail 42 may be hung from a selected branch as shown in
[0031] During use, the ferrous elements 32, 34, 36, 38, which are hung from or attached to selected branches 30 of the support structure 22, are heated by induction in order to create the desired heating pattern. The ferrous elements 32, 34, 36, 38 may be of various shapes and number according to the cooking application. Included in these shapes are rectangular, circular, ellipsoidal, triangular and regular and irregular geometrical shapes. The size of the ferrous elements 32, 34, 36, 38 and the relative proximity of the ferrous elements 32, 34, 36, 38 to the food being cooked may be adjusted or varied by a user in order to create a desired heating pattern.
[0032] The ferrous element may also have various configurations including a household item such as an eating utensil 42 as is shown in
[0033] During use, the source of electro-magnetic energy 24 creates heat within the ferrous elements 32, 34, 36, 38.
[0034] When a ferrous cooking vessel is used the electro-magnetic radiation source can also create heat in the cooking vessel 20.
[0035] The ability to vary the size, shape and proximity of the ferrous elements 32, 34, 36, 38 to the food being cooked results in a previously unavailable level of precision and control in the preparation of food.
[0036] In another embodiment shown in
[0037] The ferrous elements can have different sizes, shapes compositions and magnetic properties. The ferrous element may be connected one to another either by mounting two or more ferrous elements 36, 44 on a single branch of the support structure as shown in
[0038] The ability to vary the number, shape orientation and proximity to the food during the cooking process enables the user to achieve a previously unobtainable level of control and precision in the preparation of food.
[0039] The present invention also includes an induction cooking oven which is generally similar to the cooking vessel 20 and which is generally rectangular and box-like in configuration having a top, a bottom and four side walls with food disposed on ferrous or non-ferrous racks mounted within the oven. Ferrous elements 32, 34, 42 are inserted into the food as previously described. A plurality of sources of electromagnetic radiation 24 are disposed on the top wall and the four sidewalls.
[0040] The present invention provides a method for induction cooking which includes the following steps:
[0041] 1. Placing a plurality of ferrous elements in proximity to food;
[0042] 2. Subjecting the ferrous element and the food to electro-magnetic radiation, thereby enabling the electro-magnetic energy to heat the ferrous elements and allowing the heated ferrous element to transfer heat to the food.
[0043] In addition, the present invention provides another method for induction cooking which includes the following steps:
[0044] 1. Placing a plurality of ferrous elements in an area that is external to a cooking vessel;
[0045] 2. Subjecting the ferrous element and the food to electro-magnetic radiation, thereby enabling the electro-magnetic energy to heat the ferrous elements and allowing the heated ferrous element to transfer heat to the vessel and/or food.
[0046] In addition, the present invention provides another method for induction cooking which includes the following steps:
[0047] 1. Inserting at least one ferrous element into food;
[0048] 2. Subjecting the ferrous element and the food to electro-magnetic radiation thereby enabling the electro-magnetic energy to heat the at least one ferrous element by induction and allowing the heated ferrous element to transfer heat to the food.
[0049] The embodiments set forth above are directed to a cooking vessel having a plurality of ferrous members mounted on a support structure disposed in the hollow or cavity of the vessel. The various ferrous members are heated by an electromagnetic energy source and the resultant output heat is used to heat the contents of the vessel. However, it will be understood by those of ordinary skill in the art that ferrous elements may be placed external to the cooking vessel and which serve the purpose of heating food within the vessel. External elements may be positioned above, below and/or on the side of the cooking vessel. Such external ferrous elements are positioned to be in thermal communication with food located in the vessel. External ferrous elements may be provided in addition to internal ferrous elements.
[0050] For example, in one embodiment of the invention, electromagnetic energy sources may be positioned in any of various locations outside of a cooking vessel. The electromagnetic energy is directed to a ferrous vessel or to ferrous members external to the vessel.
[0051]
[0052] In one embodiment of the invention support member 62 is rotatable about its longitudinal axis (in the direction indicated by arrow 66), for example by way of an associated motor.
[0053] Alternatively or additionally support member 62 is movable in an upward and downward direction with respect to the floor of the vessel (as indicated by arrow 68), for example by way of a linear motion track or a bidirectional motor.
[0054] Still in another embodiment of the invention, the vessel itself is rotatable (e.g. by way of a motor driven roundtable) with respect to one or more support columns (as indicated by arrow 70).
[0055] Electromagnetic radiation emanating from electromagnetic energy sources 72a and/or 72b is used to heat either a cooking vessel, ferrous elements in or near the vessel or both. In the example shown in
[0056] It will be understood that more than one electromagnetic energy source may be provided in different embodiments of the invention. For example,
[0057] It will be understood that while the vessel of the invention may be of a variety of materials, it can also be ferrous in nature so that it too can be heated by induction. Ferrous elements can be mounted on the walls of the vessel itself or they may be placed in or near the vessel (e.g. an internal support column 78 with ferrous members 80 branching off thereofas shown in
[0058] In one embodiment of the invention, movable support members 62 which have ferrous elements 64 mounted thereon may be coupled to a heat sensor inside the vessel. The heat sensor will detect areas of the vessel that are cooler with respect to other areas and it will direct ferrous elements to such cooler areas to achieve more targeted heating. Alternatively, the ferrous elements may be moved randomly or at programmed intervals to insure uniform heating.
[0059] It will be understood by those of ordinary skill in the art that a cooking vessel 74 may have ferrous elements 80 positioned in the interior thereof, or ferrous elements 64 positioned in the exterior thereofor a combination of both. For example,
[0060] Although in the embodiment shown in
[0061]
[0062] It will be understood by those of ordinary skill in the art, that ferrous elements may be positioned in any of various areas around the walls and/or top of cooking vessel and the invention is not limited to any particular placement or arrangement of ferrous elements outside (or within) a cooking vessel.