DEVICE FOR HEATING FILLED BRIOCHES
20200367693 ยท 2020-11-26
Assignee
Inventors
- Marc FONT VENTURA (Cervia de Ter, ES)
- Jaume DE PALOL MASDEVALL (Banyoles, ES)
- Miquel COMA VILA (Banyoles, ES)
- Rafael HESSE (Bescano, ES)
- Irene PIJOAN PAGES (Banyoles, ES)
Cpc classification
A47J37/0611
HUMAN NECESSITIES
B21D43/026
PERFORMING OPERATIONS; TRANSPORTING
G05B19/41815
PHYSICS
G05B2219/39105
PHYSICS
A47J2037/0617
HUMAN NECESSITIES
International classification
Abstract
A device (1) for heating filled brioches preferably filled with ice-cream, comprising an upper subassembly (3) and a lower subassembly (4) linked by one or more joints or hinges (10). Each one of the subassemblies (3, 4) includes a heating plate (14) with a cavity (14a) intended to receive the filled brioche, or other similar product, in order to heat it, arranged so that in an operative position they overlap one another. Each heating plate (14) is positioned on top of a heat transfer plate (16) enclosed in a thermoinsulating layer (13), except for an opening to allow contact between the heating plate (14) and the heat transfer plate (16).
The heating plates (14) are releasable from the subassembly (3, 4) on which they are arranged by means of one or more releasable fastening elements protruding from the heating plate (14) and inserted in one or more slots (3c, 4c) of either casing of the subassemblies (3, 4).
Claims
1. A device for heating filled brioches, especially with a frozen dough filling, which includes: an upper subassembly and a lower subassembly that carries out the function of a base and which are hinged to one another; two or more heating plates, in thermal contact with a heat transfer plate having a heating thermal resistor attached thereto, one or more of said heating plates being installed in the upper subassembly and the other one or more heating plates being installed in the lower subassembly, arranged in an operative position overlapping one another; loaded elastic elements that press said heating transfer plate against said heating plates; and at least one thermostat configured to adjust the temperature of said heating plates wherein each of said heating plates is linked to the upper or the lower subassembly wherein it is installed by means of at least one fastening element that allows for some shifting of the heating plate relative to the respective subassembly, allowing separating and removing the heating plate from the subassembly, each of said heating plates is provided with a semi spherical cavity for receiving the product; said heat transfer plate and heating thermal resistor are housed in an enclosure supported in the respective upper or lower subassembly and loaded by said elastic elements, which press said enclosure against the corresponding heating plate, ensuring, through an opening of said enclosure, an optimal contact of the heat transfer plate with the heating plate, and there existing guide columns configured to allow a guided shifting of the enclosure along a shifting stroke, and said heat transfer plate, housed inside an enclosure, is surrounded by a thermo-insulating layer, except for an open area, in correspondence to said opening of the enclosure, for abutment of the heat transfer plate with the heating plate.
2. The device according to claim 1, wherein said elastic elements are coaxially arranged relative to the guide columns, which rest on supports of said upper and lower subassemblies.
3. The device according to claim 1, wherein the enclosure is constituted by a coupling linkage of two half enclosures.
4. The device according to claim 1, wherein each fastening element is releasable and comprises at least one elastic tab, said tab being respectively attached to the upper or lower subassembly by a slot and linked to the heating plate.
5. The device according to claim 1, wherein each heating plate is linked to its respective upper subassembly or lower subassembly by means of at least two releasable attachment elements arranged on opposite sides of the heating plate.
6. The device according to claim 1, wherein said heat transfer plate includes a heat transfer resistor.
7. The device according to claim 1, wherein said heat transfer plate and said heating plate are quadrangular.
8. The device according to claim 2, wherein said elastic elements comprise four loaded springs, applied to each of the corners of the enclosure.
9. The device according to claim 1, wherein the lower subassembly consists of at least two independent heating plates, and the upper subassembly consists of at least two independent heating plates complementary to the heating plates of the lower subassembly.
10. The device according to claim 9, wherein the heat transfer plates in thermal contact with each group of two opposing heating plates respectively supported in the upper or lower subassembly are controlled by an independent regulating thermostat.
11. The device according to claim 1, which also comprises two or more light indicators wherein at least the first light indicator indicates the operative state of the device and wherein at least the second light indicator indicates whether the heat transfer plates have reached a predetermined temperature.
12. The device according to claim 1, wherein the heating thermal resistor, housed within the enclosure is attached and pressed against the heat transfer plate by means of an aluminium plate and fastening elements.
13. The device according to claim 12, wherein an additional insulating layer is contemplated between the aluminium plate and the heating thermal resistor.
14. The device according to claim 1, wherein each guide column, is supported on a support attached to each of the four corners of the interior of a prismatic casing that delimits each subassembly.
15. The device according to claim 4, wherein each heating plate is linked to its respective upper subassembly or lower subassembly by means of at least two releasable attachment elements arranged on opposite sides of the heating plate.
Description
BRIEF DESCRIPTION OF THE FIGURES
[0020] The former and other advantages and characteristics will be more fully understood from the following detailed description of an exemplary embodiment with reference to the attached drawings, which must be understood as illustrative and non-limiting, wherein:
[0021]
[0022]
[0023]
[0024]
[0025]
DETAILED DESCRIPTION OF AN EMBODIMENT
[0026] The attached figures show several exemplary embodiments of the present invention having an illustrative non-limiting character.
[0027] It will be understood that different parts that constitute the invention described in an embodiment may be freely combined with the parts described in other different embodiments, even if such a combination has not been explicitly explained or shown, provided that no prejudice results from the combination.
[0028] It should be noted that any description which only describes one of the subassemblies of the device, and the components or pieces which form it, will be valid or applicable, only in the corresponding cases, to the subassembly that is not mentioned.
[0029]
[0030] Said heating device 1 is formed by an upper subassembly 3, a lower subassembly 4, a decorative closing plate 5, at least one joint 10 such as a hinge, supporting elements or feet 7, which preferably allow to adjust the height of the device or level the same relative to a supporting top or surface, two light indicators 8 and 9, preferably of LED or neon type, wherein one of them indicates the operative state of the device 1, preferably by the use of a green colour, and the other one indicates whether the heat transfer plates 16 have reached a predetermined baking temperature or a user-defined temperature, preferably by the use of a red colour.
[0031] The upper subassembly 3 and the lower subassembly 4 are preferably linked by two joints 10, in this case two hinges. Said hinges 10 are formed (see
[0032] The decorative closing plate 5 is attached to the subassembly 3 by means of a number of, preferably four, screws 6, arranged on each corner of said plate 5. In this particular example, the plate 5 is made of a non-thermal conductive material, for example, wood, and it has a fixture that overhangs from the device 1, used as a handle, that allows to raise or lower the upper subassembly 3, swinging around said hinges. Said plate 5 also has through slots that allow for additional ventilation of the upper subassembly 3 heating elements of the device 1, which complements the ventilation by the bores 30, 40.
[0033] The supporting feet 7 act as adjustable supports of the lower subassembly 4, which carry out the function of a base of the device 1. Preferably, four supporting feet 7 are used, each one arranged in a corner of the lower subassembly 4, thus providing greater stability to the device 1.
[0034]
[0035]
[0036] The releasable fastening element is formed, in this embodiment, by an elastic tab 20 that protrudes vertically from at least one of the side faces of the heating plate 14, preferably from a centred position of the side face (see mounting arrangement of
[0037] The different heating 14 and heat transfer 16 plates, both of which are part of the lower subassembly 4 and of the upper one 3, are arranged in such a way that each heat transfer plate 16, which has a heating thermal resistor 22 attached thereto, is wrapped (except for a face where an opening exists for abutment with the corresponding heating plate 14) by a thermoinsulating layer 13.
[0038] Each heat transfer plate 16 is housed inside a thermally insulated enclosure 26, formed by two half enclosures 15 and 17, which form a single enclosure 26, when coupled to one another, the half enclosure 15 having an open area 15b that allows the rear surface of the heating plate 14, arranged on the back side of the cavity 14a of the heating plate 14, to be in thermal contact with the heat transfer plate 16. The heating thermal resistor 22 is pressed against the heat transfer plate 16 by means of an aluminium plate 25b and an additional insulating layer 25a is located therebetween. Thus, in this particular exemplary embodiment, the assembly of the heating thermal resistor 22, the heating plate 14, the aluminium plate 25b and the insulating layer 25a forms a multilayer assembly, the different plates and layers being stacked and overlapping. Such an arrangement is derivable from said
[0039] The heat transfer plate 16 and both half enclosures 15 and 17 surrounding the thermoinsulating layer 13 have lugs with through bores 15a, 16a and 17a on their four corners, the through bores 16a having semi-circular geometry, a guide column 19formed by a first outer guide column 19a and a second inner guide column 19b inside the formergoing therethrough, on which a loaded elastic element 18, preferably a spring, is coaxially mounted. Each guide column 19, specifically said first outer guide column 19a, is supported on a support 4b attached to each of the four corners of the interior of a prismatic casing that delimits the lower subassembly 4 (see
[0040] The loaded elastic element 18, coaxially arranged to the guide column 19b, is in contact with the back side of the enclosure 26, which houses the heat transfer plate 16.
[0041]
[0042] In order to simplify the portrayal of the components only the heat transfer plate 16 has been portrayed in
[0043] In
[0044]
[0045]
[0046] Enclosure 30 is formed by two half enclosures 15 and 17 and it houses therein the heat transfer plate 16 (which, in this exemplary embodiment, has the heating thermal resistor 22 attached thereto, in addition to the aluminium plate 25b and an additional insulating layer 25a located there between), the thermoinsulating layer 13 wrapping said heat transfer plate 16 and the adjustable thermostat 2 in contact with the heating plate 14.
[0047] In
[0048]