POWER MODULE AND COOKING APPLIANCE
20200386411 ยท 2020-12-10
Inventors
- Laurent Jeanneteau (Forli, IT)
- Alex Viroli (Forli, IT)
- Massimo Nostro (Forli, IT)
- Fabio ANGELI (Forli, IT)
Cpc classification
F24C7/083
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H02M1/44
ELECTRICITY
F24C7/087
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H05B2213/03
ELECTRICITY
F24C7/067
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F24C7/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24C7/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H02M1/44
ELECTRICITY
Abstract
The invention relates to a power module, preferably induction module for powering one, two, three, four, at least one, at least two, at least three or at least four heating element (s), preferably electrical, radiant and/or induction heating elements, more preferably induction coils (3), of a cooking appliance, preferably a cooking hob, more preferably a radiant or induction hob (1), the power module (10) at least comprising:one, two or at least two heating power units (11), in particular three or at least three heating power units, more in particular four or at least four heating power units, preferably heating frequency units and/or induction generators (11), each for providing power, in particular electrical power, to one, two, three, at least one, at least two or at least three heating elements (3);one or at least one controller (12) for controlling the heating power unit(s) (11);a communication interface (13) for coupling the power module (10) with one or at least one user interface (5);wherein, in particular in a first configuration mode, the power module (10) is adapted to be operated either according to a master module configuration or a slave module configuration and/orwherein, in particular in a second configuration mode, the power module (10) is configured to directly communicate with the at least one user interface, a corresponding cooking appliance as well as a corresponding method for operating a cooking appliance.
Claims
1. Power module, preferably induction module for powering one, two, three, four, at least one, at least two, at least three or at least four heating element(s), preferably electrical, radiant and/or induction heating elements, more preferably induction coils, of a cooking appliance, preferably a cooking hob, more preferably a radiant or induction hob, in particular according to claim 5, the power module at least comprising: one, two or at least two heating power units, in particular three or at least three heating power units, more in particular four or at least four heating power units, preferably heating frequency units and/or induction generators, each for providing power, in particular electrical power, to one, two, three, at least one, at least two or at least three heating elements; one or at least one controller for controlling the heating power unit(s); a communication interface for coupling the power module with one or at least one user interface; wherein, in a first configuration mode, the power module is adapted to be operated either according to a master module configuration or a slave module configuration, and wherein, in a second configuration mode, the power module is configured to directly communicate with the at least one user interface.
2. Power module according to claim 1, wherein in the master module configuration, the power module is configured to receive user interface information from the at least one user interface and provide operation information to one or more slave power modules based on said user interface information and/or wherein in the slave module configuration, the power module is configured to receive operation information from a master power module and operate the heating power unit according to said operation information and/or wherein in said slave module configuration, the power module does not consider information directly provided by the user interface.
3. Power module according to claim 1, wherein the one or at least one controller is adapted to operate the power module at least according to the first configuration mode and a second configuration mode, wherein in the second configuration mode, the power module is configured to directly communicate with the at least one user interface.
4. Power module according to claim 1, wherein the communication interface is configured to couple the power module with the at least one user interface and one or more further power modules, and/or wherein the communication interface is a bus inter-face for coupling the power module with a communication bus and/or comprising storage means for storing information regarding operating the power module according to master module configuration or slave module configuration and/or comprising a housing, preferably a plastic housing, for housing the power module.
5. Cooking appliance, preferably cooking hob, more preferably electric, radiant and/or induction hob, in particular for heating, cooking and/or boiling food by means of an electric and/or magnetic field, the cooking appliance comprising: two, three, four, six, at least two, at least three, at least four or at least six heating elements, preferably electrical, radiant and/or induction heating elements, more preferably induction coils; two, three, four, six, at least two, at least three, at least four or at least six, preferably hardware-identical, power modules, preferably induction modules, in particular according to claim 1, each heating element being coupled with at least one power module, the power modules being configured to provide power, in particular electrical power, to one or more heating elements; and at least one user interface for receiving user input; wherein each power module comprises a communication interface in order to couple the power module with a communication media, in particular a communication bus, wherein at least some of the power modules, preferably each power module, comprise a controller adapted to operate the power module according to a master-slave-concept.
6. Cooking appliance according to claim 5, wherein one of said power modules is configured as master power module, in particular master induction module and at least one further power module is configured as slave power module, in particular slave induction module and/or wherein the master power module is adapted to receive user interface information from the at least one user interface and provide operation information to said one or more slave power modules based on said user interface information and wherein the slave power module is configured to receive operation information from said master power module and operate at least one, at least two or at least three heating power units, in particular induction generators, according to said operation information.
7. Cooking appliance according to claim 1, wherein the or the at least one user interface is adapted to provide user interface information to said one or more slave power modules and said one or more slave power modules are adapted to reject or ignore said user interface information and/or wherein a single communication media, in particular a single communication bus, is used for communication be-tween the master power module and the user interface and for communication between the master power module and the one or more slave power modules.
8. Cooking appliance according to claim 1, wherein the master power module is configured to serve as a central controller for grouping heating elements associated with one, two, three, at least two or at least three slave modules in order to form a common cooking area based on said group of heating elements and/or wherein the master power module is configured to determine operation information including target power and/or operating frequency of said one or more slave power modules based on said user interface information and/or based on a noise reduction algorithm and/or wherein the master power module is configured to transmit information regarding the heating elements to be activated, the target power and/or the operating frequency to said one or more slave power modules, in particular wherein the one or more slave power modules are configured to process the information received from the master power module and operate the one or more heating elements coupled with said slave module according to said received information.
9. Cooking appliance according to claim 1, wherein the or each slave power module is adapted to provide feedback information to said master power module in order to inform the master power module about the operation state of the slave power module.
10. Cooking appliance according to claim 1, comprising at least one or more of the following features: at least two power supply lines, in particular two, three or at least three power supply lines for supplying power to the cooking appliance, the power supply lines comprising at least a first power supply line and a second power supply line, wherein the power supply lines supply power by means of one or at least one AC voltage input signal with a first frequency, the AC voltage input signal comprising a first voltage phase or two or at least two AC voltage input signals, in particular with a first frequency, the at least two AC voltage input signals comprising at least a first and a second, in particular different, voltage phase.
11. Cooking appliance according to claim 1, comprising at least one or more of the following features: the power modules comprising at least a first power module and a second power module, each power module particularly provided as a power board, preferably comprising a power generating circuit and/or mounted on a printed circuit board (PCB), the power modules, in particular the first and the second power module, receiving power from the first and the second power supply line by means of at least one AC voltage input signal, at least one or each power module comprising a frequency processing unit, in particular at least one or each power module comprising a filter unit, in particular an electric or electronic filtering circuit and, a net filter and/or a line filter, for filtering the at least one AC voltage in-put signal, in particular for attenuating conducted radio frequencies and/or for reducing electromagnetic interference, EMI and/or for maintaining electromagnetic compatibility (EMC) and/or at least one or each power module comprising a rectifying unit, in particular a fullwave-rectifier and/or a bridge rectifier, for rectifying the at least one AC voltage input signal into a DC voltage signal, the or each DC voltage signal in particular being supplied to two power rails, wherein one of the two power rails defines a voltage reference potential.
12. Cooking appliance according to claim 1, comprising at least one or more of the following features: each power module comprising two or at least two heating power units, in particular three or at least three heating power units, more in particular four or at least four heating power units, preferably generators and/or inverters, each provided preferably as a heating frequency unit for generating a heating frequency, the at least two heating power units comprising at least a first and a second heating power unit, each heating power unit preferably being supplied with electrical power by two power rails, wherein the heating power units, in particular the first and the second heating power unit, output electrical signals, preferably with at least a second and a third frequency, wherein more preferably each of the second and the third frequency are at least 100 times higher than the first frequency.
13. Cooking appliance according to claim 1, comprising at least one or more of the following features: at least one or each heating power unit comprising one single power switch or two power switches for generating the heating frequency, in particular one or two power switches provided as one or two integrated circuits, more in particular one or two IGBT's or relays, at least one or each heating power unit operating a quasi resonant circuit or a half bridge circuit, at least one or each power module comprising at least one controller to control the operation of the heating power units.
14. Cooking appliance according to claim 1, comprising at least one or more of the following features: at least one or each heating power unit being connected or connectable to at least one heating element, in particular by means of at least one line and/or switching device, at least one or each heating power unit energizing at least one oscillating circuit comprising at least one inductive element and at least one capacitive element, in particular at least one coil and at least one capacitor, at least one or each heating power unit generating a heating frequency in at least one heating element, in particular in the at least one inductive element or coil.
15. Cooking appliance according to claim 1, comprising at least one or more of the following features: at least one or each of the at least two power modules comprising at least two, preferably passive, cooling elements, in particular heatsinks for cooling the at least two heating power units and/or the frequency processing unit, more in particular the rectifying unit, at least one or each of the at least two power modules comprising at least one active cooling element, in particular at least one cooling fan, preferably for cooling the at least two passive cooling elements, the or at least one active cooling element providing cool air for cooling the cooling elements, in particular the heatsinks.
16. Cooking appliance according to claim 1, comprising at least one or more of the following features: at least one shielding element, preferably against electric and/or magnetic fields and/or heat radiation, in particular a mica sheet, being arranged above and/or below each heating element, in particular above and/or below each inductive element or coil, of each or at least one power module.
17. Cooking appliance according to claim 1, comprising at least one or more of the following features: a preferably rectangular and/or glass ceramic, cooking surface, one or at least one user interface comprising a dis-play unit and an input unit, in particular for each power module, the or each display unit and the or each input unit being combined to form at least one touch sensitive screen, the at least one user interface, in particular the display unit and the input unit, being arranged under, at or on the cooking surface.
18. Cooking appliance according to claim 1, comprising at least one or more of the following features: the heating elements being arranged in a matrix form with at least one, at least two or at least three rows and/or at least one, at least two or at least three columns under the cooking surface, the at least two power modules being arranged below the cooking surface and/or below the heating elements.
19. Cooking appliance according to claim 1, comprising at least one or more of the following features: at least one, at least two, preferably at least three, more preferably at least four, cooking zones being arranged and/or arrangeable on the cooking surface, each cooking zone being constituted by two, three, four, at least two, at least three or at least four heating elements, wherein in particular each heating element of a cooking zone is operated at the same heating level and/or with the same power, the at least two, preferably at least three, more preferably at least four cooking zones being adaptable to the position, shape and/or size of at least one, at least two, at least three or at least four cooking vessels, at least one, at least two or at least three cooking zones receiving or being configured to receive power from the first and the second power supply line, in particular by means of the first and the second power module.
20. Cooking appliance according to claim 1, comprising at least one or more of the following features: the heating elements in particular formed in such a way that they can be combined to a larger heating zone, more particular in at least essentially D-shaped, triangular, quadratic, circular and/or elliptical shape, the heating elements in particular being arranged, at least partially, in concentrical circuits and/or comprising a linear and/or a rounded part, in particular with a constant radius, the two, three, four, at least two, at least three or at least four heating elements being arranged on at least one heating elements carrying unit, preferably on at least one induction coil carrier plate, the heating elements carrying unit carrying and/or sup-porting ferrite elements and ferrite support elements for guiding the electrical and/or magnetic field of the heating elements.
21. Cooking appliance according to claim 1, comprising at least one or more of the following features: the or a first power module comprising a first communication interface and the or a second power module comprising a second communication interface, the or a user interface comprising a third communication interface, each power module being configured to communicate, in the slave module configuration, indirectly as a slave power module with the user interface by means of another power module forming a master power module, each power module being configured to communicate, in the master module configuration, directly with the user inter-face, in the master module configuration, the first communication interface communicating with the third communication interface, so that the first power module communicates directly with the user interface by means of the first communication interface and the third communication inter-face, in the slave module configuration, the first communication interface communicating with the second communication interface, so that the first power module communicates indirectly with the user interface via the second power module by means of the first, the second and the third communication interface.
22. Method for operating a cooking appliance, preferably a cooking hob, more preferably a radiant and/or induction hob, according to claim 1, the cooking appliance comprising two, three, four, six, at least two, at least three, at least four or at least six heating elements, preferably electrical, radiant and/or induction heating elements, more preferably induction coils, two, three, four, six, at least two, at least three, at least four or at least six, in particular hardware-identical, power modules, preferably induction modules, each heating element being coupled with an or at least one power module, preferably induction power module in order to provide, in particular electrical, power to one or more heating elements and at least one user interface for receiving user input, the method at least comprising the step of: configuring, in a first operation mode, one power module of said power modules as master power module and at least one further or each power module as slave module configuring, in a second configuration mode, one, at least one or each power module of said power modules to communicate directly with the at least one user interface.
23. Method according to claim 22, the method further comprising at least one or more of the steps of: after receiving a user input at the user interface, receiving user interface information at the master power module; processing the user interface information at the master power module; operating the at least one heating element coupled with said one or more master power modules based on said operation information, deriving operation information for said one or more slave power modules based on said user interface information; transmitting operation information from the master power module to said one or more slave power modules; and/or operating the at least one heating element coupled with said one or more slave power modules based on said operation information.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0156] The various aspects of the invention, including its particular features and advantages, will be readily understood from the following detailed description and the accompanying drawings, in which:
[0157]
[0158]
[0159]
[0160]
[0161]
[0162]
Detailed Description of Preferred Embodiments
[0163] The present invention will now be described more fully with reference to the accompanying drawings, in which example embodiments are shown. However, this invention should not be construed as limited to the embodiments set forth herein. Throughout the following description similar reference numerals have been used to denote similar elements, parts, items or features, when applicable.
[0164]
[0165] According to said automatic pot detection process, the induction coils 3 are not only used to cook or heat the food contained in the piece of cookware 4, but also to identify the position of the overlying piece of cookware 4. When a piece of cookware 4 is disposed in any position on the induction hob 1, its position is identified, with consequent determination of which induction coils 3 lie below said piece of cookware (according to
[0166] In order to provide electrical power to said induction coils 3, the induction hob 1 comprises multiple induction modules 10. Each induction module 10 may be coupled with one or more induction coils 1 in order to provide electrical power to said induction coils 1.
[0167] Furthermore, the induction module 10 comprises a communication interface 13 for coupling the induction module 10 with the user interface 5 and one or more further induction modules 10. For example, the communication interface 13 may be adapted to be coupled with a communication bus 14 (e.g. serial line, SP, I2C, RS485 etc.) in order to exchange information between the user interface 5 and the induction modules 10. Based on said communication interface 13, the induction modules 10 may also be able to exchange information between each other.
[0168] For example, an induction module 10 may further comprise a bridge rectifier to supply the induction generator 11 with electrical power, a heat sink for removing heat from the electrical power elements (IGBTs or other powers switching elements, bridge rectifier, etc.). In addition, each induction module 10 may comprise a housing or enclosure in which upper-mentioned elements are arranged. Said housing may be adapted such that multiple induction modules 10 can be assembled side-by-side in order to form an induction module array (required for powering a plurality of induction coils of an induction coil array). Preferably, each induction module 10 may comprise a fan for cooling down the elements included in the induction module 10. Alternatively, an external fan may be used to cool down elements included in multiple induction modules 10.
[0169] According to embodiments, an induction module 10 may comprise all components required for powering one or more induction coils 3. So, when coupling the induction module 10 with one or more induction coils 3 and a user interface 5, a fully functional induction hob 1 is obtained.
[0170]
[0171] The induction modules 10 included in the induction hob 1 are identical in view of their hardware. However, in order to improve the flexibility of usage of the induction modules 10, the induction modules 10 are software-configurable in order to be operated according to at least the first and a second configuration mode. The induction modules 10 may comprise a storage, register or similar means (e.g. a jumper) for defining the configuration mode according to which the respective induction module 10 is operated.
[0172] According to the first configuration mode, each induction module 10 included in the induction hob 1 is configured to communicate with the user interface 5 and directly receive information from said user interface 5 regarding the powering of the one or more induction coils 3 coupled with the induction module 10. In other words, all induction modules 10 are on the same hierarchical level and have the same functionality (no master-slave configuration). In said configuration, the user interface 5 directly transmits operating commands to each of said induction modules 10 by means of said communication bus 14. By using one or more induction modules 10 being configured according to said first configuration mode, an induction hob 1 can be obtained in which each induction coil 3 is associated with a certain fixed heating zone.
[0173] In order to use the same (i.e. hardware-identical) induction module 10 in a more sophisticated induction hob 1, e.g. an induction hob 1 with free configurable heating zones, the induction module 10 is adapted to be configured according to a second configuration mode. In said second configuration mode, a respective induction module 10 can be operated as a master induction module or a slave induction module in order to obtain a master-slave configuration of multiple induction modules 10 included in the induction hob 1.
[0174] In said master-slave configuration, one induction module 10 of the induction modules 10 included in an induction hob 1 is configured as master induction module and the further induction modules are configured as slave induction modules. Similar to the embodiment described before, the master induction module, the slave induction modules and the user interface 5 are connected with each other by means of a single communication bus 14. However, the slave induction modules do not directly exchange information with the user interface 5 but the information exchange is provided via the master induction module. Said master induction module directly communicates with the user interface 5 thereby receiving information regarding the heating zones requested by the user and the heating power to be provided to said heating zones. The master induction module is adapted to process the information received by the user interface 5 and provide operating information to each of said slave induction modules. Said operating information may comprise information regarding which induction coil 3 has to be activated, the electric m power to be provided to the respective induction coil 3 and/or the AC current frequency to be applied to the respective induction coil 3. It is worth mentioning thatdue to the usage of the communication bus 14the master induction module as well as the slave induction modules receive the information provided by the user interface 5 via said communication bus 14. However, the slave induction modules do not process information received directly from the user interface 5, i.e. reject said information and do only process information received by said master induction module. In other words, from the viewpoint of the slave induction modules, the master induction module represents a central controlling module, i.e. an additional central controller (independent controller separate from the master induction module) for handling said master-slave configuration can be avoided.
[0175] The master induction module may be adapted to provide operation information to said slave induction modules based on a noise reduction algorithm. Said noise reduction algorithm may be configured to reduce acoustic noise by an appropriate selection of operating frequency and/or operating power of the respective induction coils 3. So, in other words, the master induction module is adapted to assign operating frequencies and/or operating power to the respective induction coils 3 coupled with the slave induction modules by calculating appropriate operating frequencies and/or operating power for the respective induction coils 3 and providing information regarding said appropriate operating frequencies and/or operating power to the respective slave induction modules using the communication bus 14.
[0176] In order to be able to control the slave induction modules by means of the master induction module, a periodic or regular information exchange between the master induction module and the slave induction modules may be performed. In other words, the master and slave induction modules exchange information using a message loop.
[0177]
[0178] After the receiving the user interface information, the master induction module provides operation information to said one or more slave induction modules (master set message, S110). The operation information may be a broadcast message sent to all slave induction modules at the same time. According to other embodiments, different operation information may be provided to the respective slave induction modules.
[0179] The operation information may include information regarding which induction coil 3 has to be activated, the operating power of the respective induction coil 3 and/or the AC current frequency to be provided to the respective induction coil. As already mentioned before, said operation parameters may be determined by the master induction module according to an acoustic noise reduction mechanism.
[0180] The slave induction modules may process the received operation information (S120). In case that a broad cost message is used for providing operation information to the slave induction modules, a respective slave induction module may extract information which is addressed to it and may operate the one or more induction generators 11 according to said information. More in detail, each slave induction module may be adapted to activate an induction coil 3 based on said received information and choose the operating power and/or the AC current frequency according to said received information. In addition, the slave induction modules may be adapted to transmit a status message back to the master induction module (also referred to as feedback message) (S130). Said status message may comprise information regarding the AC current frequency provided to the respective induction coils, the reached (electric) power, regulation parameters and/or zone status flags.
[0181] The master induction module receives said feedback message and may defineaccording to the acoustic noise reduction algorithmthe active coils, the target (electrical) power and/or the AC current frequency for the next message loop cycle. Said updated information may be provided to the slave induction modules using a further operation information message transmitted by the master induction module to the slave induction modules via said communication bus 14 (S140). Thus, the message exchange between the master induction module and the slave induction module(s) may be repeated.
[0182] In order to avoid a transmission bottleneck at the communication bus 14, the timing of the message is choosing by taking care of the communication bus load.
[0183] In case that the master induction module does not receive feedback messages of all slave induction modules, or the slave induction module's do not receive the operating information message provided by the master induction module after a defined timeout, the induction modules 10 are switched off.
[0184]
[0185] Each power module 10 in
[0186] In general,
[0187] The power modules 10 can, as shown in
[0188] Each power module 10 in
[0189] The power module 10 comprises a communication interface 13 for coupling the power module 10 with a user interface 5.
[0190] In a first configuration mode, the power module 10 is adapted to be operated either according to a master module configuration or a slave module configuration.
[0191] In the master module configuration, the power module 10 is configured to receive user interface information from the user interface 5 and provide operation information to one or more slave power modules based on said user interface information.
[0192] In the slave module configuration, the power module 10 is configured to receive operation information from a master power module and operate the heating power unit 11 according to said operation information.
[0193] In said slave module configuration, the power module 10 does not consider information directly provided by the user interface 5.
[0194] The one or at least one controller 12 is adapted to operate the power module 10 at least according to the first configuration mode and a second configuration mode.
[0195] In the second configuration mode, the power module 10 is configured to directly communicate with the at least one user interface 5.
[0196] The communication interface 13 is configured to couple the power module 10 with the at least one user interface 5 and one or more further power modules 10.
[0197] The communication interface 13 is a bus interface for coupling the power module 10 with a communication bus 14.
[0198] The power module 10 comprises not shown storage means for storing information regarding operating the power module 10 according to master module configuration or slave module configuration.
[0199] The power module 10 comprises also a not shown housing, preferably a plastic housing, for housing the power module.
[0200]
[0201] The cooking appliance 1 in
[0202] The cooking appliance 1 comprises, in the embodiment in
[0203] In general, a cooking appliance 1 according to the invention is preferably a cooking hob, more preferably an electric, radiant and/or induction hob, in particular for heating, cooking and/or boiling food by means of an electric and/or magnetic field.
[0204] The cooking appliance 1 can comprise two, three, four, six, at least two, at least three, at least four or at least six heating elements, preferably electrical, radiant and/or induction heating elements, more preferably induction coils 3, as shown in
[0205] The cooking appliance 1 can comprise two, three, four, six, at least two, at least three, at least four or at least six, preferably hardware-identical, power modules, preferably induction modules 10, as shown in
[0206] Each heating element 3 in
[0207] The cooking appliance 1 in
[0208] Each power module 10 comprises a communication interface 13 in order to couple the power module 10 with a communication media, in particular with a communication bus 14.
[0209] At least some of the power modules 10, preferably each power module 10, comprise a controller 13 adapted to operate the power module 10 according to a master-slave-concept.
[0210] One of said power modules 10 is configured as master power module, in particular master induction module, and at least one further power module 10 is configured as slave power module, in particular slave induction module.
[0211] A master power module 10 is adapted to receive user interface information from the at least one user interface 5 and provide operation information to said one or more slave power modules based on said user interface information.
[0212] A slave power module 10 is configured to receive operation information from said master power module and operate at least one, at least two or at least three heating power units, in particular induction generators 11, according to said operation information.
[0213] The user interface 5 is adapted to provide user interface information to the slave power module 10. Said slave power module 10 is adapted to reject or ignore said user interface information.
[0214] A single communication media, in particular a single communication bus 14, is used for communication between the master power module 10 and the user interface 5 and for communication between the master power module 10 and the slave power module 10.
[0215] The master power module 10 is configured to serve as a central controller for grouping heating elements 3 associated with one, two, three, at least two or at least three slave modules in order to form a common cooking area based on said group of heating elements 3.
[0216] The master power module 10 is further configured to determine operation information including target power and/or operating frequency of said one or more slave power modules based on said user interface information and/or based on a noise reduction algorithm.
[0217] The master power module 10 is further configured to transmit information regarding the heating elements 3 to be activated, the target power and/or the operating frequency to said one or more slave power modules.
[0218] The slave power module 10 is configured to process the information received from the master power module 10 and operate the heating elements 3 coupled with said slave module 10 according to said received information.
[0219] The slave power module 10 is adapted to provide feedback information to said master power module 10 in order to inform the master power module about the operation state of the slave power module.
[0220] Three power supply lines 41, 42 and 43 supply electrical power to the cooking appliance 1. The power supply lines comprise a first power supply line 42 and a second power supply line 43.
[0221] The power supply lines supply power by means of two AC voltage input signals with a first frequency, the AC voltage input signals comprising a first and a second voltage phase.
[0222] The power supply lines supply power by means of twoAC voltage input signals with a first frequency, the two AC voltage input signals comprising a first and a second, in particular different, voltage phase.
[0223] The power modules 10 comprise at least a first power module and a second power module. Each power module can be provided as a power board, preferably comprising a power generating circuit and/or mounted on a printed circuit board PCB.
[0224] The first and the second power module 10 receive power from the first and the second power supply line by means of two AC voltage input signals.
[0225] Each power module 10 comprises a frequency processing unit 30.
[0226] Each power module 10 comprises a filter unit 20, in particular an electric or electronic filtering circuit and, a net filter and/or a line filter, for filtering the at least one AC voltage input signal, in particular for attenuating conducted radio frequencies and/or for reducing electromagnetic interference, EMI and/or for maintaining electromagnetic compatibility EMC.
[0227] Each power module 10 also comprises a rectifying unit 21, in particular a fullwave-rectifier and/or a bridge rectifier, for rectifying the at least one AC voltage input signal into a DC voltage signal.
[0228] Each DC voltage signal is supplied to two power rails 16, 17, wherein one of the two power rails defines a voltage reference potential.
[0229] Each power module comprises four heating power units 11, preferably generators and/or inverters, each provided preferably as a heating frequency unit for generating a heating frequency.
[0230] In general, each power module 10 can comprises two or at least two heating power units 11, in particular three or at least three heating power units, more in particular four or at least four heating power units, preferably generators and/or inverters, each provided preferably as a heating frequency unit for generating a heating frequency.
[0231] The heating power units 11 comprise at least a first and a second heating power unit. Each heating power unit 11 is supplied with electrical power by two power rails 16, 17. The heating power units 11, in particular the first and the second heating power unit, can output electrical signals with at least a second and a third frequency. Each of the second and the third frequency are at least 100 times higher than the first frequency.
[0232] Each heating power unit 11 can comprise one single power switch or two power switches for generating the heating frequency. In particular, one or two power switches can be provided as one or two integrated circuits, more in particular one or two IGBT's or relays.
[0233] Each heating power unit 11 can operate a quasi resonant circuit or a half bridge circuit.
[0234] Each power module 10 comprises a controller 12 to control the operation of the heating power units 11.
[0235] Each heating power unit 11 is connected or connectable to one heating element 3, in particular by means of at least one line and/or switching device.
[0236] Each heating power unit 11 is energizing at least one oscillating circuit comprising at least one inductive element and at least one capacitive element, in particular at least one coil 3 and at least one capacitor.
[0237] Each heating power unit 11 is generating a heating frequency in at least one heating element, in particular in the at least one inductive element or coil 3 as shown in
[0238] Each of the two power modules 10 comprises at least two not shown, passive cooling elements, in particular heatsinks for cooling the at least two heating power units and/or the frequency processing unit, more in particular the rectifying unit 32.
[0239] Each of the two power modules 10 can comprise at least one not shown active cooling element, in particular at least one cooling fan, preferably for cooling the at least two passive cooling elements. The active cooling element can provide cool air for cooling the cooling elements, in particular the heatsinks.
[0240] At least one not shown shielding element, preferably against electric and/or magnetic fields and/or heat radiation, in particular a mica sheet, can be arranged above and/or below each heating element, in particular above and/or below each inductive element or coil, of each or at least one power module 10.
[0241] The cooking appliance 1 comprises a, preferably rectangular and/or glass ceramic, cooking surface 2. The user interface 5 comprises a display unit and an input unit, in particular for each power module 10.
[0242] Each display unit and each input unit can be combined to form at least one touch sensitive screen.
[0243] The user interface 13, in particular the display unit and the input unit, are arranged under, at or on the cooking surface 2.
[0244] The heating elements 3 in
[0245] In general, the heating elements 3 can be arranged in a matrix form with at least one, at least two or at least three rows and/or at least one, at least two or at least three columns under the cooking surface. The at least two power modules 10 are arranged below the cooking surface and/or below the heating elements 3.
[0246] At least two, preferably at least three, more preferably at least four, cooking zones 6 are arranged and/or arrangeable on the cooking surface 2.
[0247] Each cooking zone 6 can be constituted by two, three, four, at least two, at least three or at least four heating elements 3. Each heating element 3 of a cooking zone 6 is operated at the same heating level or with the same power.
[0248] The at least two, preferably at least three, more preferably at least four cooking zones 6 are adaptable to the position, shape and/or size of at least two, at least three or at least four not shown cooking vessels.
[0249] At least one, at least two or at least three cooking zones 6 receive or are configured to receive power from the first and the second power supply line 42, 43, by means of the first and the second power module 10.
[0250] The heating elements 3 are formed in such a way that they can be combined to a larger heating zone 6, in
[0251] In general, the heating elements 3 in particular can be formed in such a way that they can be combined to a larger heating zone 6, more particular in at least essentially D-shaped, triangular, quadratic, circular and/or eliptical shape.
[0252] The heating elements 3 can be, in not shown embodiments, arranged, at least partially, in concentrical circuits and/or can comprise a linear and/or a rounded part, in particular with a m constant radius.
[0253] The heating elements 3 can be arranged on at least one not shown heating elements carrying unit, preferably on at least one induction coil carrier plate. The heating elements carrying unit is carrying and/or supporting ferrite elements and ferrite support elements for guiding the electrical and/or magnetic field of the heating elements 3.
[0254] The first power module 10 comprises a first communication interface 13 and the second power module 10 comprises a second communication interface 13. The user interface 5 comprises a third communication interface 13.
[0255] Each power module 10 is configured to communicate, in the slave module configuration, indirectly as a slave power module with the user interface 5 by means of another power module 10 forming a master power module.
[0256] Each power module 10 is configured to communicate, in the master module configuration, directly with the user interface 5.
[0257] In the master module configuration, the first communication interface 13 is communicating with the third communication interface, so that the first power module 10 communicates directly with the user interface 5 by means of the first communication interface and the third communication interface 13.
[0258] In the slave module configuration, the first communication interface is communicating with the second communication interface 13, so that the first power module 10 communicates indirectly with the user interface 5 via the second power module 10 by means of the first, the second and the third communication interface 13.
[0259]
[0265] The method further comprising at least one or more of the steps of: [0266] after receiving a user input at the user interface 5, receiving user interface information at the master power module as step S100; [0267] processing the user interface information at the master power module; [0268] operating the at least one heating element 3 coupled with said one or more master power modules based on said operation information, [0269] deriving operation information for said one or more slave power modules based on said user interface information; [0270] transmitting operation information from the master power module to said one or more slave power modules as step S110; and/or [0271] operating the at least one heating element 3 coupled with said one or more slave power modules based on said operation information.
[0272] Above, embodiments of a power module, especially induction module, according to the present invention as defined in the appended claims have been described. These should be seen as merely non-limiting examples. As understood by a skilled person, many modifications and alternative embodiments are possible within the scope of the invention.
LIST OF REFERENCE NUMERALS
[0273] 1 induction hob [0274] 2 cooking surface [0275] 3 induction coil [0276] 4 piece of cookware [0277] 5 user interface [0278] 6 cooking zones [0279] 10 induction module [0280] 11 induction generator [0281] 12 controller [0282] 13 communication interface [0283] 14 communication bus [0284] 16, 17 power rails [0285] 30 frequency processing unit [0286] 31 filter unit [0287] 32 rectifying unit [0288] 41, 42, 43 power supply lines