MODULAR COOKTOP ASSEMBLY
20200408415 ยท 2020-12-31
Inventors
Cpc classification
F24C7/083
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24C15/108
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24C15/104
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24C3/126
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24C15/30
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F24C7/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24C15/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A modular cooktop assembly includes a modular housing. The modular housing includes a cooktop unit, a track assembly, and a safety device. The cooktop unit includes a heating surface, and/or the track assembly is connected between the modular housing and the cooktop unit. The cooktop unit is configured to move between a first position and a second position via the track assembly. The safety device is configured to connect power to the cooktop unit as the cooktop unit moves between the first position and the second position.
Claims
1. A modular cooktop assembly, comprising: a modular housing, including: a cooktop unit including a heating surface; a track assembly connected to the modular housing and the cooktop unit; and a safety device; wherein the cooktop unit is configured to move between a first position and a second position via the track assembly; and the safety device is configured to connect power to the cooktop unit as the cooktop unit moves between the first position and the second position.
2. The modular cooktop assembly of claim 1, wherein the safety device connects power to the cooktop unit when the cooktop unit is in the second position; and the safety device disconnects power from the cooktop unit when the cooktop unit is in the first position.
3. The modular cooktop assembly of claim 1, wherein when the cooktop unit is in the first position, the cooktop unit is disposed substantially within the modular housing; when the cooktop unit is in the second position, the cooktop unit is disposed substantially outside the modular housing; and the modular housing is configured to be disposed substantially within a recess of a storage assembly.
4. The modular cooktop assembly of claim 1, wherein the modular housing includes insulation material configured to substantially limit dispersion of heat from the cooktop unit through the modular housing.
5. The modular cooktop assembly of claim 1, wherein the track assembly includes a first track member and a second track member; the first track member is connected to an inner surface of the modular housing; the second track member is connected to an outer surface of the cooktop unit; and the second track member slides along the first track member to move the cooktop unit between the first position and the second position.
6. The modular cooktop assembly of claim 1, wherein the heating surface includes a first cooking surface and a second cooking surface; the cooktop unit includes a third position; the safety device provides power to the first cooking surface when the cooktop unit is in the third position; and the safety device provides power to the first cooking surface and the second cooking surface when the cooktop unit is in the second position.
7. The modular cooktop assembly of claim 6, wherein the safety device does not provide power to the second cooking surface when the cooktop unit is in the third position.
8. The modular cooktop assembly of claim 1, wherein the safety device is a mechanical switch.
9. The modular cooktop assembly of claim 1, including an electronic control unit (ECU); wherein the safety device is a sensor; and the ECU is configured to control the safety device.
10. The modular cooktop assembly of claim 9, wherein the sensor includes a first sensor portion, a second sensor portion, and a third sensor portion; the ECU is configured to provide power to the first cooking surface when the first sensor portion is proximate the second sensor portion; and the ECU is configured to provide power to the first cooking surface and the second cooking surface when the first sensor portion is substantially proximate the third sensor portion.
11. The modular cooktop assembly of claim 1, wherein the cooktop unit includes an outer side, and the outer side is configured to connect with a panel member.
12. A storage assembly including the modular cooktop assembly of claim 1, wherein the storage assembly includes a first recess and a second recess; the first recess is substantially similar to the second recess; the modular housing is configured to be disposed in at least one of the first recess and the second recess; the modular housing is configured to removed from one of the first recess and the second recess; and the modular housing is configured to be inserted into the other of the first recess and the second recess without disconnecting the cooktop unit from the modular housing.
13. The modular cooktop assembly of claim 1, including an air mover disposed within the cooktop unit.
14. The modular cooktop assembly of claim 1, including sealing member; the sealing member is disposed on the heating surface; and the sealing member at least partially provides a fluid seal between the heating surface and a top of the modular housing.
15. The modular cooktop assembly of claim 1, including a blocking member; wherein the blocking member is disposed on the heating surface; the blocking member includes a first position in which the blocking member is substantially perpendicular to the heating surface; the blocking member includes a second position in which the blocking member is substantially parallel to the heating surface; and the blocking member is configured to move between the first position and the second position as the cooktop unit moves between the first position and the second position.
16. A modular cooktop assembly, comprising: a modular housing, including: a cooktop unit including a heating surface; a hinge member connected to the modular housing and the cooktop unit; and a safety device; wherein the cooktop unit is configured to move between a first position and a second position via the hinge member; when the cooktop unit is in the first position, the cooktop unit is disposed substantially within the modular housing; when the cooktop unit is in the second position, the cooktop unit is disposed substantially outside the modular housing; and the modular housing is configured to be disposed substantially within a recess.
17. The modular cooktop assembly of claim 16, wherein when the cooktop unit pivots about 90 degrees when moving between the first position and the second position.
18. The modular cooktop assembly of claim 16, including a safety device; wherein the safety device is configured to selectively connect power to the cooktop unit as the cooktop unit moves between the first position and the second position.
19. The modular cooktop assembly of claim 18, wherein the safety device includes a sensor; the safety device is configured to connect power to the cooktop unit when the cooktop unit is in the second position; and the safety device is configured to disconnect power form the cooktop unit when the cooktop unit is in the first position.
20. A method of assembling a modular cooktop assembly including a modular housing, a cooktop unit, a track assembly, and an ECU, the method comprising: connecting the cooktop unit with the modular housing via the track assembly; connecting the cooktop unit to a safety device configured to selectively provide power to the cooktop unit; inserting the modular housing substantially within a recess of a storage assembly; and connecting the modular cooktop assembly to a power supply; wherein the cooktop unit is configured to move between a first position and a second position via the track assembly independent of the recess; when the cooktop unit is in the first position, the cooktop unit is disposed substantially within the modular housing; and when the cooktop unit is in the second position, the cooktop unit is disposed substantially outside of the modular housing.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
[0028] Reference will now be made in detail to embodiments of the present disclosure, examples of which are described herein and illustrated in the accompanying drawings. While the present disclosure will be described in conjunction with embodiments and/or examples, it will be understood that they are not intended to limit the present disclosure to these embodiments and/or examples. On the contrary, the present disclosure is intended to cover alternatives, modifications, and equivalents.
[0029] As generally illustrated in
[0030] As described herein, modular is defined as a portable and/or an internally connected system (e.g., a self-contained system with few external connections). For example and without limitation, modular housing 50 may include one or more components that do not require additional connection and/or installation when moving modular cooktop assembly 20 to different locations (e.g., such as cooktop unit 30, an ECU 40, track assembly 60, and/or safety device 70). ECU 40 in this example is an electronic control unit that controls power supply 26, gas supply 28, and power supplied to modular cooktop assembly 20 during operation. Modular cooktop assembly 20 functions as a movable cooktop surface disposed in one or more of a variety of recesses, such as recess 24 of a storage assembly 22. In the illustrated example, modular cooktop assembly 20 moves such that cooking unit 30 is disposed at one or more heights and/or locations. For example, cooktop unit 30 remains connected with track assembly 60 when moving modular housing 50 between recesses, such as recess 24 and another recess in another unit. Additionally or alternatively, safety device 70 remains connected with cooktop unit 30 when moving modular housing 50 between recesses. When inserting modular housing 50 into storage assembly 22, power supply 26 is connected to modular cooktop assembly 20 for cooktop unit 30 to be operable (e.g., other electrical and/or mechanical components of the modular cooktop assembly may not require assembly and/or additional connection). When removing modular housing 50 from storage assembly 22, in one example power supply 26 may be disconnected from modular cooktop assembly 20 such that modular housing 50 is ready for insertion into a different and/or same portion of the storage assembly 22 (e.g., other electrical and/or mechanical components such as track assembly 60 and/or safety device 70 may remain connected within modular housing 50 as modular cooktop assembly 20 is removed from storage assembly 22.).
[0031] As generally illustrated in
[0032] As generally illustrated in
[0033] Modular housing 50 may include one or more of a variety of materials. For example, modular housing 50 includes one or more insulative or insulation materials (e.g., ceramic, sheet metal, natural materials, porcelain, etc.) to ensure that components or other items external to modular housing 50, such as storage assembly 22, do not overheat or cause a fire hazard. In one example, modular housing 50 retains heat generated by cooktop unit 30 and is therefore made of a material having sufficient heat capacity to retain heat once heated to operating or cooking temperature, such as steel, copper, cast iron, and the like. Modular housing 50 at least partially limits the dispersion of heat generated by heating surface 32 (e.g., to areas outside modular housing 50 such as other portions of storage assembly 22). As generally illustrated in
[0034] Cooktop unit 30 connects with a panel member 42. Cooktop unit 30 includes an outer surface 44 that is substantially parallel to the X-Z plane. Outer surface 44 receives and/or engages panel member 42 in one or more of a variety of manners (e.g., connectors, latches, screws, etc.). For example, panel member 42 may be a cabinet/drawer panel. Panel member 42 is fixedly/removably connected to outer surface 44 of cooktop unit 30. Storage assembly 22 includes one or more drawer/cabinet panels 421 (see, e.g.,
[0035] As described herein, cooktop unit 30 moves between a first position and/or a second position. When cooktop unit 30 is in the first position, cooktop unit 30 is disposed substantially within modular housing 50. For example, the first position is a storage position and/or a non-use position for cooktop unit 30. A substantial portion of heating surface 32 is not accessible/operational when cooktop unit 30 is in the first position (e.g., at least a portion of modular housing 50 covers/overlaps in the Z-direction with heating surface 32, and/or power is not supplied to heating surface 32). When cooktop unit 30 is in the second position, cooktop unit 30 is disposed substantially outside modular housing 50, and/or at least partially within modular housing 50. For example, the second position is an operating position and/or a use position for cooktop unit 30, such as is illustrated in
[0036] As generally illustrated in
[0037] As generally illustrated in
[0038] For example, as generally illustrated in
[0039] As described herein, modular cooktop assembly 20 is configured such that first switch 72 and/or third switch 76 are engaged when cooktop unit 30 is in the first position. As cooktop unit 30 moves from the first position to the second position (e.g., in the Y-direction), a substantial portion of heating surface 32 may be exposed. Once a substantial portion of heating surface 32 is exposed, second switch 74 and/or fourth switch 78 engage engagement portions 80, 82 to connect power to heating surface 32 such that heating surface 32 is operational. Second switch 74 and/or fourth switch 78 include connector portions 74B, 78B that rotate into connection with one or more of a variety of conductors 79 to route power from power supply 26 to heating surface 32.
[0040] As generally illustrated in
[0041] As described herein, and generally illustrated in
[0042] As generally illustrated in
[0043] As generally illustrated in
[0044] As generally illustrated in
[0045] As described herein, safety device 70 includes a third sensor 94 which may be a transceiver, receiver, and/or proximity sensor. Third sensor 94 is disposed on outer track 64B of second track portion 64 (additionally or alternatively, third sensor 94 is disposed on outer track 62B of first track portion 62). Third sensor 94 electrically connects (wired and/or wirelessly) to ECU 40. When third sensor 94 is substantially proximate second sensor 92, ECU 40 supplies power to first cooking surface 96, and/or does not supply power to second cooking surface 98. When cooktop unit 30 is in the third position, first heating portions 96.sub.1, 96.sub.2, 96.sub.3 of first cooking surface 96 are operable, and/or second heating portions 98.sub.1, 98.sub.2, 98.sub.3 of second heating surface 98 are not operable. As cooktop unit 30 moves from the third position to the second position, ECU 40 continues to supply power to first cooking surface 96, and/or once second sensor 92 is substantially proximate first sensor 90, ECU 40 supplies power to both of first cooking surface 96 and second cooking surface 98.
[0046] As generally illustrated in
[0047] As generally illustrated in
[0048] As described herein, cooktop unit 30 includes a user interface 120. User interface 120 is electrically connected (wired and/or wirelessly) to ECU 40. User interface 120 is disposed on heating surface 32 such that a user may control the temperature of heating surface 32. User interface 120 includes a first control portion 120A and/or a second control portion 120B. ECU 40 activates first control portion 120A when cooktop unit 30 is in the third position, and/or ECU 40 activates both of first control portion 120A and second control portion 120B when cooktop unit 30 is in the second position. First control portion 120A individually controls the temperatures of first heating portions 96.sub.1, 96.sub.2, 96.sub.3 of first cooking surface 96, and/or second control portion individually controls the temperatures of second heating portions 98.sub.1, 98.sub.2, 98.sub.3 of second cooking surface 98.
[0049] As generally illustrated in
[0050] As generally illustrated in
[0051] In embodiments, blocking member 140 moves between a first position and a second position. Blocking member 140 blocks cooking debris when in the second position (e.g., an extended position), and blocking member 140 does not block cooking debris when in the first position (e.g., a folded position). Such as generally shown in
[0052] As generally illustrated in
[0053] As generally illustrated in
[0054] Cooktop unit 230 rotates and/or pivots between the first position and the second position. When cooktop unit 230 is in the second position, cooktop unit 230 is substantially parallel to the X-Y plane (e.g., cooktop unit 230 is substantially perpendicular to modular housing 250). Modular cooktop assembly 220 includes a first hinge member 262 and/or a second hinge member 264. First hinge member 262 is disposed on first side 238A of cooktop unit 230, and/or second hinge member 264 is disposed on second side 238B of cooktop unit 230. Hinge members 262, 264 rotatably connect with cooktop unit 230 and/or modular housing 250 such that cooktop unit 230 rotates between the first position and the second position (e.g., at an angle of about 90 degrees). Modular cooktop assembly 220 includes a safety device 270 that comprises a first sensor portion 290 and/or a second sensor portion 292. Sensor portions 290, 292 are in electrical communication with ECU 240 such as to selectively provide power from a power supply 226 to cooktop unit 230 as cooktop unit 230 moves between the first position and the second position (e.g., and/or ECU 240 may be connected with a gas supply 228 in a similar manner). Cooktop unit 230 includes an outer facing side 244 that connects with a panel member 242. Cooktop unit 230 may include all conductive coils 291, all gas burners 293, and/or a mix thereof.
[0055] As generally illustrated in
[0056] As generally illustrated in
[0057] As described herein, a method of assembling a modular cooktop assembly 20 includes providing modular housing 50 including cooktop unit 30, ECU 40, and/or track assembly 60. The method includes connecting cooktop unit 30 to modular housing 50 via track assembly 60 such that cooktop unit 30 moves between a first position (e.g., wherein cooktop unit 30 is disposed substantially within modular housing 50) and a second position (e.g., wherein cooktop unit 30 is disposed substantially outside of modular housing 50). The method includes connecting cooktop unit 30 to safety device 70 (e.g., safety device 70 is connected with cooktop unit 30 in a first instance, but modular cooktop assembly 20 may be moved between recesses without disconnecting and/or re-connecting safety device 70). Safety device 70 selectively connects power supply 28 (and/or gas supply 28) to cooktop unit 30. For example, when cooktop unit 30 is in the first position, safety device 70 does not supply power to cooktop unit 30; and/or when cooktop unit 30 is in the second position, safety device 70 supplies power to cooktop unit 30. ECU 40 controls safety device 70 and/or receives information from safety device 70. Safety device 70 includes one or more sensors 90, 92, 94 (e.g., transmitters, receivers, proximity sensors, etc.) and/or one or more mechanical switches 72, 74, 76, 78, 84, 86, 88 (e.g., rocker switches, latching switches, rotating switches, etc.). The method includes inserting modular housing 50 substantially within recess 24 of storage assembly 22 (e.g., in the Y-direction). The method includes connecting power supply 26 (and/or gas supply 28) to cooktop unit 30 and/or connecting power supply 26 to ECU 40. The method includes connecting (e.g., removably or fixedly) panel member 42 to an outwardly facing surface 44 of cooktop unit 30. The method of assembling a modular cooktop assembly 20 includes removing modular housing 50 (e.g., including cooktop unit 30, ECU 40, and/or safety device 70) from recess 24, and/or inserting modular housing 50 in a second recess 24.sub.1 of a substantially similar size as recess 24. For example, modular cooktop assembly 20 (e.g., modular housing 50) moves to different positions within storage assembly 22 by disconnecting power supply 26 and/or gas supply 28. ECU 40, track assembly 60, and/or safety device 70 remain connected with cooktop unit 30 as modular housing 50 moves between a variety of different positions and/or heights.
[0058] For example, ECU 40 includes an electronic controller and/or an electronic processor, such as a programmable microprocessor and/or microcontroller. In embodiments, ECU 40 includes, for example, an application specific integrated circuit (ASIC). ECU 40 may include a central processing unit (CPU), a memory (e.g., a non-transitory computer-readable storage medium), and/or an input/output (I/O) interface. ECU 40 is configured to perform various functions, including those described in greater detail herein, with appropriate programming instructions and/or code embodied in software, hardware, and/or other medium. ECU 40 may include a plurality of controllers.
[0059] Various embodiments are described herein for various apparatuses, systems, and/or methods. Numerous specific details are set forth to provide a thorough understanding of the overall structure, function, manufacture, and use of the embodiments as described in the specification and illustrated in the accompanying drawings. It will be understood by those skilled in the art, however, that the embodiments may be practiced without such specific details. In other instances, well-known operations, components, and elements have not been described in detail so as not to obscure the embodiments described in the specification. Those of ordinary skill in the art will understand that the embodiments described and illustrated herein are non-limiting examples, and thus it can be appreciated that the specific structural and functional details disclosed herein may be representative and do not necessarily limit the scope of the embodiments.
[0060] Reference throughout the specification to various embodiments, with embodiments, in embodiments, or an embodiment, or the like, means that a particular feature, structure, or characteristic described in connection with the embodiment is included in at least one embodiment. Thus, appearances of the phrases in various embodiments, with embodiments, in embodiments, or an embodiment, or the like, in places throughout the specification are not necessarily all referring to the same embodiment. Furthermore, the particular features, structures, or characteristics may be combined in any suitable manner in one or more embodiments. Thus, the particular features, structures, or characteristics illustrated or described in connection with one embodiment/example may be combined, in whole or in part, with the features, structures, functions, and/or characteristics of one or more other embodiments/examples without limitation given that such combination is not illogical or non-functional. Moreover, many modifications may be made to adapt a particular situation or material to the teachings of the present disclosure without departing from the scope thereof.
[0061] It should be understood that references to a single element are not necessarily so limited and may include one or more of such element. Any directional references (e.g., plus, minus, upper, lower, upward, downward, left, right, leftward, rightward, top, bottom, above, below, vertical, horizontal, clockwise, and counterclockwise) are only used for identification purposes to aid the reader's understanding of the present disclosure, and do not create limitations, particularly as to the position, orientation, or use of embodiments.
[0062] Joinder references (e.g., attached, coupled, connected, and the like) are to be construed broadly and may include intermediate members between a connection of elements and relative movement between elements. As such, joinder references do not necessarily imply that two elements are directly connected/coupled and in fixed relation to each other. The use of e.g. in the specification is to be construed broadly and is used to provide non-limiting examples of embodiments of the disclosure, and the disclosure is not limited to such examples. Uses of and and or are to be construed broadly (e.g., to be treated as and/or). For example and without limitation, uses of and do not necessarily require all elements or features listed, and uses of or are intended to be inclusive unless such a construction would be illogical.
[0063] While processes, systems, and methods may be described herein in connection with one or more steps in a particular sequence, it should be understood that such methods may be practiced with the steps in a different order, with certain steps performed simultaneously, with additional steps, and/or with certain described steps omitted.
[0064] It is intended that all matter contained in the above description or shown in the accompanying drawings shall be interpreted as illustrative only and not limiting. Changes in detail or structure may be made without departing from the present disclosure.
[0065] It should be understood that ECU 40, a system, and/or a processor as described herein may include a conventional processing apparatus known in the art, which may be capable of executing preprogrammed instructions stored in an associated memory, all performing in accordance with the functionality described herein. To the extent that the methods described herein are embodied in software, the resulting software can be stored in an associated memory and can also constitute means for performing such methods. Such a system or processor may further be of the type having ROM, RAM, RAM and ROM, and/or a combination of non-volatile and volatile memory so that any software may be stored and yet allow storage and processing of dynamically produced data and/or signals.
[0066] It should be further understood that an article of manufacture in accordance with this disclosure may include a non-transitory computer-readable storage medium having a computer program encoded thereon for implementing logic and other functionality described herein. The computer program may include code to perform one or more of the methods disclosed herein. Such embodiments may be configured to execute via one or more processors, such as multiple processors that are integrated into a single system or are distributed over and connected together through a communications network, and the communications network may be wired and/or wireless. Code for implementing one or more of the features described in connection with one or more embodiments may, when executed by a processor, cause a plurality of transistors to change from a first state to a second state. A specific pattern of change (e.g., which transistors change state and which transistors do not), may be dictated, at least partially, by the logic and/or code.