EP2999302A1 - Plaque de cuisson à induction et procédé pour détecter la présence d'une batterie de cuisine - Google Patents

Plaque de cuisson à induction et procédé pour détecter la présence d'une batterie de cuisine Download PDF

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Publication number
EP2999302A1
EP2999302A1 EP14185257.4A EP14185257A EP2999302A1 EP 2999302 A1 EP2999302 A1 EP 2999302A1 EP 14185257 A EP14185257 A EP 14185257A EP 2999302 A1 EP2999302 A1 EP 2999302A1
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EP
European Patent Office
Prior art keywords
voltage
induction
pot detection
monitoring point
cookware
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Granted
Application number
EP14185257.4A
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German (de)
English (en)
Other versions
EP2999302B1 (fr
Inventor
Alex Viroli
Laurent Jeanneteau
Massimo Nostro
Massimo Zangoli
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Electrolux Appliances AB
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Electrolux Appliances AB
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Publication date
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Priority to EP14185257.4A priority Critical patent/EP2999302B1/fr
Publication of EP2999302A1 publication Critical patent/EP2999302A1/fr
Application granted granted Critical
Publication of EP2999302B1 publication Critical patent/EP2999302B1/fr
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    • HELECTRICITY
    • H05ELECTRIC TECHNIQUES NOT OTHERWISE PROVIDED FOR
    • H05BELECTRIC HEATING; ELECTRIC LIGHT SOURCES NOT OTHERWISE PROVIDED FOR; CIRCUIT ARRANGEMENTS FOR ELECTRIC LIGHT SOURCES, IN GENERAL
    • H05B6/00Heating by electric, magnetic or electromagnetic fields
    • H05B6/02Induction heating
    • H05B6/06Control, e.g. of temperature, of power
    • H05B6/062Control, e.g. of temperature, of power for cooking plates or the like
    • HELECTRICITY
    • H05ELECTRIC TECHNIQUES NOT OTHERWISE PROVIDED FOR
    • H05BELECTRIC HEATING; ELECTRIC LIGHT SOURCES NOT OTHERWISE PROVIDED FOR; CIRCUIT ARRANGEMENTS FOR ELECTRIC LIGHT SOURCES, IN GENERAL
    • H05B2213/00Aspects relating both to resistive heating and to induction heating, covered by H05B3/00 and H05B6/00
    • H05B2213/05Heating plates with pan detection means

Definitions

  • the present invention relates generally to the field of induction hobs. More specifically, the present invention is related to an induction hob adapted to perform a pot detection mechanism.
  • Induction hobs for preparing food are well known in prior art.
  • Induction hobs typically comprise at least one heating zone which is associated with at least one induction element.
  • the induction element is coupled with electronic driving means for driving an AC current through the induction element.
  • Said AC current generates a time varying magnetic field.
  • the invention relates to an induction hob comprising a power stage with at least one switching element for enabling an alternating current flow through an induction element, a control unit and a pot detection entity.
  • the control unit is adapted to provide a single electrical pulse to the power stage for initiating an oscillating current flow between the induction element and at least one capacitor, said oscillating current flow leading to an oscillating voltage at a first monitoring point of the power stage.
  • the pot detection entity is adapted to monitor the oscillating voltage of said first monitoring point and to compare the number of oscillations of the voltage of said first monitoring point initiated by the single electrical pulse with a first threshold value in order to detect a piece of cookware placed above the induction element. Thereby an efficient and reliable detection of a piece of cookware above the induction element is achieved.
  • the switching element is an insulated-gate bipolar transistor (IGBT).
  • IGBT insulated-gate bipolar transistor
  • Said insulated-gate bipolar transistor may be arranged in a quasi-resonant architecture.
  • the first monitoring point is arranged at the collector of the switching element. Said arrangement is advantageous because the oscillation tendency of said circuit node strongly depends on the load of the induction element.
  • the pot detection entity is adapted to compare the number of oscillations of the voltage of the first monitoring point initiated by the single electrical pulse with a second threshold value and lock further provision of an electrical pulse to the power stage if the monitored number of oscillations is below said second threshold value.
  • a long-term overvoltage situation within the power stage, specifically at the IGBT can be avoided which may lead to a circuitry damage.
  • the provision of further single electrical pulses for preliminary pot detection is locked for a period of time between 0.5 sec to 10 sec.
  • the pot detection entity is adapted to provide pot detection information if said monitored number of oscillations is between the first and second threshold value. Said pot detection information may be provided to the control unit in order to display pot detection information at the user interface. In addition, said pot detection entity may be used for enabling the provision of energy to the induction element in order to heat the piece of cookware placed above said induction element.
  • the pot detection entity is adapted to provide lack-of-pot information at a user interface if said monitored number of oscillations is above the first threshold value. Said lack-of-pot information may be displayed at the user interface in case that a user interaction for powering the respective induction element is received. Thereby, the user may receive information that a powering of the respective induction element is not possible because of said missing piece of cookware.
  • the control unit is adapted to provide a further single electrical pulse to the power stage in order to start a further pot detection cycle.
  • the control unit may provide multiple single electrical pulses (separated from one another by long pulse pauses, said pulse pauses being many times longer than the pulse duration) in order to continuously derive information whether a piece of cookware is placed above the respective induction element.
  • the pot detection entity is adapted to iterate the pot detection cycle as long as a power request for powering the induction element is received.
  • said pot detection cycle is a preliminary pot detection cycle which is adapted to detect a piece of cookware before starting the cooking process.
  • the pot detection entity after receiving a power request in order to heat a piece of cookware placed above the induction element, the pot detection entity is adapted to monitor the presence of cookware. Thereby it is possible to avoid a damage of the induction hob due to powering the induction element in no-load situations, i.e. in situations in which the piece of cookware has been removed from the heating zone.
  • the pot detection entity is adapted to monitor the presence of the cookware by monitoring the voltage at a second monitoring point and compare the voltage at said second monitoring point with a voltage threshold value in order to derive information regarding the presence of cookware.
  • the pot detection entity is adapted to derive lack-of-pot information if the voltage at said second monitoring point is above the voltage threshold value.
  • the voltage at said second monitoring point is above the voltage threshold value.
  • the rising of the voltage at said second monitoring point above said voltage threshold value may be indicative for the removal of the piece of cookware and may be used to disable the provision of electrical power to the induction element.
  • the second monitoring point is the electrical connection or node between the induction element and said at least one capacitor, said induction element and said at least one capacitor forming a resonant oscillating circuit of the induction hob.
  • Said capacitor may have a high capacity value leading to an oscillation-free voltage at said electrical node between the induction element and said at least one capacitor.
  • the voltage of said electrical node may be only slowly varying, wherein the voltage value measured at said electrical node strongly depends on the load situation of the induction element.
  • said voltage value may be used for determining the load situation while powering the induction element in order to provide heat to a piece of cookware placed above the induction element.
  • the invention relates to a method for detecting the presence of a cookware placed above an induction element of an induction hob, the induction hob comprising a power stage with at least one switching element for enabling an alternating current flow through the induction element, a control unit and a pot detection entity.
  • the control unit provides a single electrical pulse to the power stage for initiating an oscillating current flow between the induction element and at least one capacitor, said oscillating current flow leading to an oscillating voltage at a first monitoring point of the power stage.
  • the pot detection entity monitors the oscillating voltage of said first monitoring point and provides information regarding said oscillating voltage to the control unit.
  • the control unit compares the number of oscillations of the voltage of said first monitoring point initiated by the single electrical pulse with a first threshold value in order to detect a piece of cookware placed above the induction element.
  • Fig. 1 shows a schematic illustration of an induction hob 1 according to the invention.
  • the induction hob 1 may comprise multiple heating zones 2 preferably provided at a common hob plate. Each heating zone is correlated with at least one induction element placed beneath the hop plate.
  • the induction hob 1 further comprises a user interface 3 for receiving user input and/or providing information, specifically graphical information to the user.
  • Fig. 2 shows a schematic block diagram of an induction hob 1 being adapted to detect a piece of cookware placed on the induction hob 1 (in the following also referred to pot detection), specifically a piece of cookware placed above a heating zone 2 of the induction hob 1.
  • the induction hob 1 is configured to perform two different kinds of pot detection mechanisms.
  • a first pot detection mechanism is in the following referred to as "preliminary pot detection”. Said preliminary pot detection may be preferably used for detecting a cookware placed on the heating zone, i.e. placed above the induction element before starting heating the cookware.
  • the induction hob may be adapted to perform a second pot detection mechanism, said second pot detection mechanism in the following referred to as "continuous pot protection”. Said “continuous pot protection” may be applied during heating the cookware in order to determine, whether the piece of cookware is still placed on the heating zone 2.
  • the induction hob 1 comprises a power stage 10, a control unit 11 and a user interface 3, said user interface 3 being coupled with the control unit 11 in order to provide information to the user and/or to receive information from the user via the user interface 3. Furthermore, the induction hob 1 may comprise a bridge rectifier 13, said bridge rectifier 13 being coupled with the power stage 10 for providing electrical power to the induction element comprised within the power stage 10. The bridge rectifier 13 may be coupled with one or more phases of the mains supply network.
  • control unit 11 is coupled with the power stage 10 via a driver unit 14, said driver unit 14 being adapted to receive an electrical pulse P by the control unit 11, modify said received electrical pulse P and provide said modified electrical pulse P to the power stage 10.
  • control unit 11 may be directly coupled with the power stage 10, i.e. may provide the electrical pulse P directly to the power stage 10.
  • the induction hob 1 comprises a pot detection entity 12.
  • said pot detection entity 12 may be integrated in the control unit 11.
  • the pot detection entity 12 may form a subunit within the control unit 11.
  • the pot detection entity 12 forms of self-contained entity separate from the control unit 11.
  • the control unit 11 may be adapted to generate an electrical pulse P.
  • Said electrical pulse P may comprise a rectangular pulse form or essentially a rectangular pulse form.
  • Said electrical pulse P may be single electrical pulse P, i.e. after providing said single electrical pulse there may be a long signal pause (a multiple of the pulse duration, e.g. ten times the pulse duration or more). After said signal pause, a further single electrical pulse P may be generated.
  • Said electrical pulse P may be provided to the driver unit 14 in order to modify the electrical pulse P provided by the control unit 11.
  • the driver unit 14 may be adapted to amplify the electrical pulse P and or change the signal level of the electrical pulse P (e.g. providing an offset to the electrical pulse P etc.) in order to provide a modified electrical pulse P' to the power stage 10 which is modified according to the requirements of the power stage 10.
  • said modified single electrical pulse P' may cause a short opening of a switching element comprised within the power stage 10.
  • a current flow may be initiated through the induction element comprised within the power stage 10.
  • the switching element may close. Said short time opening of said switching element may course an oscillating current flow within the power stage 10.
  • the power stage 10 may comprise a capacitor in the following also referred to as resonant capacitor.
  • the induction element which may be constituted by an induction coil may form together with said resonant capacitor an oscillating circuit. In said oscillating circuit, an oscillating current flow may be initiated by the upper-mentioned short opening of the switching element (caused by the electrical pulse P).
  • the electrical loss of the oscillating circuit significantly depends on the fact whether a piece of cookware is placed on the heating zone 2 or not. More in detail, in case that no piece of cookware is placed on the heating zone 2, the oscillating circuit comprises a low loss and the number of oscillations, which can be measured at a first monitoring point of the oscillating circuit until the oscillation is decayed is large.
  • said piece of cookware may damp the oscillations and the number of oscillations, which can be measured at the first monitoring point of the oscillating circuit until the oscillation is decayed is low with respect to the number of oscillations measured in a no-load situation.
  • the power stage 10 may be coupled with the voltage monitoring unit 15.
  • Said voltage monitoring unit 15 may receive voltage values derived from said oscillating circuit.
  • the voltage provided to the voltage monitoring unit 15 may be tapped at the first monitoring point.
  • Said first monitoring point may be formed by the collector of the switching element (for example the collector of an insulated-gate bipolar transistor IGBT) comprised within the power stage 10.
  • the voltage monitoring unit 15 may be adapted to derive information out of the oscillating voltage of the first monitoring point.
  • the voltage monitoring unit 15 may be adapted to determine the maximum voltage values of the oscillating voltage in order to determine the decay of the oscillating voltage.
  • the voltage monitoring unit 15 may be adapted to determine the minimum voltage values of the oscillating voltage also in order to determine the decay of the oscillating voltage.
  • the voltage monitoring unit 15 may be coupled with the pot detection entity 12 in order to provide set information derived out of the oscillating voltage to the pot detection entity 12.
  • the pot detection entity 12 may process said received information in order to determine the decay of oscillating voltage. More in detail, the voltage monitoring unit 15 may provide upper mentioned set of maximum values or minimum values derived out of the oscillating voltage to the pot detection entity 12.
  • the pot detection entity 12 may compare said maximum or minimum values with a threshold voltage value and count the number of received values which are above (in case of received maximum values) or below (in case of received minimum values) said threshold voltage value. In case that the counted number of received values above/below the threshold voltage value is above the first threshold value, the control unit 11 may provide information that no piece of cookware is placed above the respective induction element. However, if the counted number of received values above/below the threshold voltage value is below the first threshold value, the control unit 11 may provide information that a piece of cookware is placed above the respective induction element.
  • the information derived by the preliminary pot detection mechanism may be used for enabling the power stage to heat the respective heating zone by means of the respective induction element. In case that no piece of cookware has been detected, the heating of the respective heating zone may be disabled.
  • Fig. 3 shows the driver unit 14, the power stage 10 and the bridge rectifier 13 in closer detail.
  • the driver unit 14 receives the electrical pulse P enabling the pot detection mechanism at the input port I1.
  • the driver unit 14 comprises an electrical circuitry configured to adapt the received electrical pulse P according to the needs of the power stage 10. For example, the driver unit may amplify the received electrical pulse P and/or may change the signal level of the electrical pulse by adding a certain offset voltage value to said received electrical pulse P in order to derive a modified electrical pulse P'.
  • Said modified electrical pulse P' may be provided to the gate of the switching element 20.
  • Said switching element 20 may be, for example, an IGBT.
  • the collector of the switching element 20 may be coupled via a filtering circuitry (comprising one or more capacitors) to the oscillating circuit 25, said oscillating circuit 25 comprising the induction element 21 and the resonant capacitor 22.
  • the power stage 10 may comprise a quasi-resonant power stage architecture.
  • the induction element 21 may be coupled with the bridge rectifier 13 in order to power the oscillating circuit 25 by the mains supply network.
  • the voltage at the collector of the switching element 20 is suddenly decreasing and after closing the switching element 20, the electrical voltage of the collector of the switching element 20 is oscillating. So, preferably said collector of the switching element 20 is used as first monitoring point 23 to derive the oscillating voltage Vc.
  • Fig. 4 shows a signal diagram of the situation when a piece of cookware is placed above the induction element 21 (load situation)
  • Fig. 5 shows a signal diagram of the situation when there is no piece of cookware placed above the induction element 21 (no load situation).
  • Said figures show the oscillating voltage Vc at said first monitoring point 23, the voltage Vdc measured at a second monitoring point 24 and the electrical pulse P.
  • the second monitoring point 24 may be located at the node between the induction element 21 and the resonant capacitor 22. It is worth mentioning that the illustration of the electrical pulse P is shifted against the oscillating voltage Vc and the voltage Vdc for the sake of a better recognisability.
  • the oscillating voltage Vc is decaying very fast, i.e. the number of oscillations is very small because the energy stored in the induction element 21 during the turn-on time of switching element 20 is transferred to the piece of cookware in a short period of time.
  • energy stored in the induction element 21 is periodically exchanged between the resonant capacitor 22 and the induction element 21 wherein only parasitic resistors damp the oscillations. Therefore, the number of oscillations is large with the respect to the load situation.
  • the voltage monitoring unit 15 is coupled with the pot detection entity 12 in order to provide set information derived out of the oscillating voltage Vc to the pot detection entity 12.
  • the pot detection entity 12 may also implement a second threshold value, said second threshold value defining a limit of oscillations below the first threshold value.
  • an overvoltage protection mechanism may be activated by the control unit 11. Said overvoltage protection mechanism may block the generation of a further single electrical pulse P for a certain period of time, i.e. block the preliminary pot detection mechanism for said period of time in order to avoid a damage of the switching element 20. After said blocking period, the control unit 11 may start again the preliminary pot detection mechanism by the transmitting a single electrical pulse P to the driver unit 14.
  • the pot detection entity 12 may also perform a further pot detection mechanism, in the following also referred to as continuous pot detection mechanism, said continuous pot detection mechanism being performed during powering a certain heating zone 2 in order to heat a piece of cookware.
  • the continuous pot detection mechanism may be configured to monitor whether the piece of cookware still remains on the respective heating zone 2.
  • the induction hob comprises a further voltage monitoring unit 16, said further voltage monitoring unit 16 receiving the voltage Vdc measured at the second monitoring point 24.
  • the further voltage monitoring unit 16 may be included in the control unit 11 or may form a self-contained entity.
  • the further voltage monitoring unit 16 may provide a modified voltage signal derived from the voltage Vdc measured at the second monitoring point 24 to the pot detection entity 12.
  • the pot detection entity 12 may compare said modified voltage signal with a voltage threshold value Vth in order to determine whether the modified voltage signal is above said voltage threshold value Vth. In case that said modified voltage signal is about said voltage threshold value Vth, the pot detection entity 12 may decide that there is no piece of cookware above the respective induction element 21.
  • Fig. 6 shows a signal diagram of a situation when a piece of cookware placed above the induction element 21 is removed from the heating zone 2 associated with said induction element 21.
  • the signal diagram shows the oscillating voltage Vc, the voltage Vdc at the second monitoring point 24 and a plurality of pulses P driving the power stage 10 in order to apply heat to the piece of cookware placed above the heating zone 2.
  • one of said plurality of pulses P used for applying heat to the piece of cookware is used (as single electrical pulse P) during the preliminary pot detection mechanism in order to cause oscillations of the voltage Vc.
  • the control unit may recognize the removal of the piece of cookware and disable the generation of pulses P in order to avoid a damaging of the induction hob 1.
  • the control unit 11 may start upper-mentioned preliminary pot detection mechanism by applying single electrical pulses P to the driver unit 14 in order to detect whether a piece of cookware is placed on the heating zone 2 once again.

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  • Physics & Mathematics (AREA)
  • Electromagnetism (AREA)
  • Cookers (AREA)
EP14185257.4A 2014-09-18 2014-09-18 Plaque de cuisson à induction et procédé pour détecter la présence d'une batterie de cuisine Active EP2999302B1 (fr)

Priority Applications (1)

Application Number Priority Date Filing Date Title
EP14185257.4A EP2999302B1 (fr) 2014-09-18 2014-09-18 Plaque de cuisson à induction et procédé pour détecter la présence d'une batterie de cuisine

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
EP14185257.4A EP2999302B1 (fr) 2014-09-18 2014-09-18 Plaque de cuisson à induction et procédé pour détecter la présence d'une batterie de cuisine

Publications (2)

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EP2999302A1 true EP2999302A1 (fr) 2016-03-23
EP2999302B1 EP2999302B1 (fr) 2019-11-27

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Cited By (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP3474630A1 (fr) * 2017-10-19 2019-04-24 LG Electronics Inc. Dispositif de chauffage par induction ayant une meilleure précision de détection d'objet cible et système de chauffage par induction le comprenant
EP3598850A1 (fr) * 2018-07-18 2020-01-22 LG Electronics Inc. -1- Dispositif de chauffage par induction pour effectuer une fonction de détection de récipients
EP3651548A1 (fr) * 2018-11-08 2020-05-13 LG Electronics Inc. -1- Procédé de pré-test à impulsion unique permettant d'améliorer la précision de détection des vaisseaux
WO2022013007A1 (fr) * 2020-07-17 2022-01-20 BSH Hausgeräte GmbH Ensemble plaque de cuisson à induction

Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP2059091A2 (fr) * 2007-11-12 2009-05-13 Samsung Electronics Co., Ltd. Appareil et procédé de chauffage par induction
US20100006563A1 (en) * 2005-10-14 2010-01-14 E.G.O. Elektro-Geraetebau Gmbh Induction heating device and associated operating and saucepan detection method
EP2282606A1 (fr) * 2009-08-05 2011-02-09 Coprecitec, S.L. Procédé de commande pour un appareil à induction et appareil à induction
WO2013064331A1 (fr) * 2011-11-03 2013-05-10 Arcelik Anonim Sirketi Cuiseur à induction

Patent Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20100006563A1 (en) * 2005-10-14 2010-01-14 E.G.O. Elektro-Geraetebau Gmbh Induction heating device and associated operating and saucepan detection method
EP2059091A2 (fr) * 2007-11-12 2009-05-13 Samsung Electronics Co., Ltd. Appareil et procédé de chauffage par induction
EP2282606A1 (fr) * 2009-08-05 2011-02-09 Coprecitec, S.L. Procédé de commande pour un appareil à induction et appareil à induction
WO2013064331A1 (fr) * 2011-11-03 2013-05-10 Arcelik Anonim Sirketi Cuiseur à induction

Cited By (7)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP3474630A1 (fr) * 2017-10-19 2019-04-24 LG Electronics Inc. Dispositif de chauffage par induction ayant une meilleure précision de détection d'objet cible et système de chauffage par induction le comprenant
US11064575B2 (en) 2017-10-19 2021-07-13 Lg Electronics Inc. Induction heating device having improved target object detection accuracy and induction heating system including the same
EP3598850A1 (fr) * 2018-07-18 2020-01-22 LG Electronics Inc. -1- Dispositif de chauffage par induction pour effectuer une fonction de détection de récipients
US11470694B2 (en) 2018-07-18 2022-10-11 Lg Electronics Inc. Induction heating device performing container sensing function
EP3651548A1 (fr) * 2018-11-08 2020-05-13 LG Electronics Inc. -1- Procédé de pré-test à impulsion unique permettant d'améliorer la précision de détection des vaisseaux
US11528782B2 (en) 2018-11-08 2022-12-13 Lg Electronics Inc. Single pulse pre-test method for improving vessel detection accuracy
WO2022013007A1 (fr) * 2020-07-17 2022-01-20 BSH Hausgeräte GmbH Ensemble plaque de cuisson à induction

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