EP0269415A2 - Induktionsheizschaltungen für Kochgeräte - Google Patents

Induktionsheizschaltungen für Kochgeräte Download PDF

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Publication number
EP0269415A2
EP0269415A2 EP87310359A EP87310359A EP0269415A2 EP 0269415 A2 EP0269415 A2 EP 0269415A2 EP 87310359 A EP87310359 A EP 87310359A EP 87310359 A EP87310359 A EP 87310359A EP 0269415 A2 EP0269415 A2 EP 0269415A2
Authority
EP
European Patent Office
Prior art keywords
circuit
pan
coil
conduction
induction heating
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.)
Withdrawn
Application number
EP87310359A
Other languages
English (en)
French (fr)
Other versions
EP0269415A3 (de
Inventor
Julian Coppin
Francis Downham
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.)
Creda Ltd
Original Assignee
Creda Ltd
Priority date (The priority date 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 date listed.)
Filing date
Publication date
Application filed by Creda Ltd filed Critical Creda Ltd
Publication of EP0269415A2 publication Critical patent/EP0269415A2/de
Publication of EP0269415A3 publication Critical patent/EP0269415A3/de
Withdrawn legal-status Critical Current

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Classifications

    • 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

Definitions

  • This invention relates to induction heating circuits for cooking appliances.
  • Such circuits may comprise a rectifier for converting A.C. mains supply to direct current which is then converted by an inverter to an alternating supply at a suitable frequency, usually in the range of from 20-35 kHZ. That supply energises a coil which induces currents in a suitable utensil placed over the coil thereby heating the utensil and its contents.
  • an induction heating circuit for a cooking appliance includes an inverter for powering an induction heating coil at values determined by the duration of conduction of semi-conductor switching means and in which means are provided for responding to the current flow through the heating coil during periods when the switching device is non-conducting and for inhibiting a return of the switching device to conduction unless the current flow indicates that a suitable utensil is located on the heating coil.
  • the current responsive means may be connected to the junction of a diode and a resistor in series connection with the heating coil.
  • Further means may be provided for allowing, in the event of inhibition of the return to conduction, a return to conduction of the switching means after the expiration of a preset time interval and at preset time intervals thereafter until the presence of a suitable utensil is detected when a return to conduction is allowed.
  • an A.C. mains input connected to input terminals 1, 2 is rectified and smoothed by full wave rectifier 3 and smoothing circuit 4 respectively.
  • the output of the smoothing circuit is applied to a pan coil 12 in series connection with a semi-conductor switching device which could be a high voltage bipolar device and which is shown in the drawing as a gate turn-­off thyristor VT1 and a resistor R2.
  • a semi-conductor switching device which could be a high voltage bipolar device and which is shown in the drawing as a gate turn-­off thyristor VT1 and a resistor R2.
  • Also in series connection with coil L2 are inductors L1 and L3 and the primary winding of a saturating transformer T1 which will be referred to again below.
  • Diode D1 is the so-called commutating or "free-­wheeling" diode needed to divert load current through the inductive load when the thyristor is turned off as will be described in detail below, thereby protecting thyristor VT1 from damage by excessive voltages at the end of its non-conducting period.
  • diode D2 In parallel connection across thyristor VT1 and resistor R2 is a series connected combination of diode D2 and capacitor CR.
  • the capacitance of capacitor CR determines, with other circuit parameters including the inductance of pan coil 12 and of inductor L3, the resonant frequency of the circuit.
  • Diode D2 also provides a conductive path for circulating currents during periods of resonance when thyristor VT1 is turned-off as will be described below.
  • a third diode D3 is connected between the junction between the primary winding of transformer T1 and inductor L3 and that between diode D2 and capacitor CR.
  • Diode D3 is poled to provide a further route for current flow during resonant periods in a direction opposite to that permitted by diode D2.
  • a drive circuit shown as block 5 Connected to the gate electrodes of thyristor VT1 is a drive circuit shown as block 5 and of conventional form which supplies pulses of variable width to control the switching on and off of the thryistor and hence to control the power input to the pan coil L2.
  • the drive circuit is controlled by a timing circuit shown as block 6 which receives inputs from a pan detector circuit shown as block 7 which responds to current flow through the pan coil L2 during thyristor turn-off periods and which in the event that the current flow indicates that no utensil or an unsuitable utensil has been placed above pan coil L2, inhibits the action of the timing and drive circuits 6, 5 respectively.
  • circuit 7 responds to the flow of current through diode D1 as monitored by resistor R1.
  • circuit 7 responds and produces an output which is applied to the timing circuit 6 to inhibit the latter and thereby the operation of the drive circuit 5.
  • Operation of the timing circuit 6 is also controlled by a load current detector shown as block 8 to ensure that the power input to the pan coil L2 is that set by a power controller indicated by block 9 and which is set by a user in accordance with the heating requirement.
  • the output of the mark/space generator 10 is also applied to an interrogation circuit shown as block 11.
  • the interrogation circuit 11 operates, in conjunction with the pan detector 7 in the following manner. In the absence of a suitable pan above the pan coil L2, the pan detection circuit inhibits the timing circuit and this in turn prevents the subsequent turn-on of thyristor VT1. Subsequently, the interrogation circuit 11 switches the timing circuit 6 back into operation at, typically, one-second intervals until the presence of a suitable utensil above the pan coil 12 is detected by detector 7.
  • the interrogation circuit 11 will also operate on normal start-up with a suitable utensil over the pan coil.
  • the circuit provides, on normal start-up, typically, a one-second delay before it produces an interrogation output. During that one-second delay, the complete system settles to a stable condition before any attempt is made to switch on thyristor VT1.
  • the embodiment also includes protection circuits shown in Fig. 1 as block 12. Such circuits monitor the function of the system and should a malfunction be detected, the drive circuit 5 is prevented from operating and the thryistor VT1 is rendered non-conducting.
  • the protection circuits may monitor operating potentials for the various control functions, i.e. the generator 10, interrogation circuit 11, timing circuits 6, pan detector 7, control voltage detector and control current detector to ensure those potentials are of the correct value before power is connected to the resonant circuit and associated components.
  • the protection circuits also ensure that a predetermined "powering-up" sequence is followed at the commencement of a cooking operation and following a temporary interruption of the mains supply and following a voltage surge or "gliche" therein.
  • the system as thus described operates in known manner. Turning on the thyristor VT1 produces a ramped increase in the current through the pan coil L2. When that current reaches a value set by controller 9, and sensed by control current detector 8, the thrysitor is turned- off. Resonance now occurs in the circuit including the pan coil L2, inductor L3 and capacitor CR. The resonant circuit is coupled via transformer T1 to a voltage detector shown as block 13 and when the voltage drops to a minimum level, detector 13 responds and inputs to the timing circuit 6 which, via drive circuits, turns on the thryistor VT1. The interrogation function referred to above is inhibited once the pressure above the pan coil of a suitable utensil has been sensed.
  • a saturating transformer is particu­larly advantageous as it enables a precise indication to be obtained of the instant when the voltage in the resonant circuit reaches its minimum value.
  • Fig. 1 The system shown in Fig. 1 will normally be powered from the mains supply and it is found that the peak voltages developed during resonance are very high but can be limited by the inclusion in series with the pan coil L2 of a ballast inductor L1. This also reduces the effective supply voltage during periods when the thyristor is turned on.
  • ballast inductor also enables the value of the inductance of the pan coil L2 to be chosen to allow optimisation of both inductance value and geometry of the pan coil L2.
  • the inductance of the pan coil L2 is defined by the circuit operating voltage and current, the frequency of resonance and the power throughput.
  • the resultant inductance value and coil geometry of the pan coil L2 maynot be the optimum for the application.
  • the arrangement allows a rate of current rise through the pan coil that is similar to that obtained with the pan coil only.
  • capacitor CS, the filter and resonant reversed commutation capacitor must be of a value that is a compromise to allow the voltage across capacitor CS to reduce during periods when thyristor VT1 is turned-on and to allow absorption of the circulating current during resonance. That means a reduction in the inductance of the pan coil L2. It also follows that it is necessary to increase the capacitance of capacitor CR to maintain the optimum resonant frequency. The reduction in pan coil inductance and increase in CR capacitance proportionally reduces the voltage excursions across capacitor CR during resonance.
  • the precise instant of time at which thryistor VT1 is turned-on is determined, as explained above, by the control voltage detector 13 that is coupled to the pan coil circuit via saturating transformer RT1.
  • the transformer T1 is a saturating current transformer.
  • thyristor VT1 must be turned on again at the instant when the voltage across capacitor CR is zero in order to reduce the amplitude of the discharge current through thryistor VT1.
  • the voltage across capacitor CR does not return to zero.
  • the thyristor must be turned on again at the instant at which the voltage across capacitor CR is at a minimum in order to reduce the amplitude of the short duration current flow. The minimum voltage is coincident with the reversal of current through pan coil L2.
  • the thyristor VT1 is turned on at the instant of minimum voltage across capacitor CR.
  • the cooking appliance may be a hob unit in which case one or more of the pan heating units may be of the form described above.
  • Other pan heating units may be gas burners and/or electric heating units.
  • the invention may also be embodied in a cooker which may be free-standing.
  • One or more of the top or pan burners may be of the form described above.
  • Other top heating units may be gas burners and/or electric heating units.

Landscapes

  • Physics & Mathematics (AREA)
  • Electromagnetism (AREA)
  • Inverter Devices (AREA)
  • Cookers (AREA)
  • General Induction Heating (AREA)
EP87310359A 1986-11-25 1987-11-24 Induktionsheizschaltungen für Kochgeräte Withdrawn EP0269415A3 (de)

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
GB8628100A GB2197999B (en) 1986-11-25 1986-11-25 Improvements in or relating to induction heating circuits for cooking appliances
GB8628100 1986-11-25

Publications (2)

Publication Number Publication Date
EP0269415A2 true EP0269415A2 (de) 1988-06-01
EP0269415A3 EP0269415A3 (de) 1989-01-11

Family

ID=10607865

Family Applications (1)

Application Number Title Priority Date Filing Date
EP87310359A Withdrawn EP0269415A3 (de) 1986-11-25 1987-11-24 Induktionsheizschaltungen für Kochgeräte

Country Status (2)

Country Link
EP (1) EP0269415A3 (de)
GB (1) GB2197999B (de)

Citations (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4210792A (en) * 1976-07-27 1980-07-01 Tokyo Shibaura Electric Co., Ltd. Induction heating apparatus with load detecting and control circuit
DE3445538A1 (de) * 1983-12-14 1985-06-27 Sanyo Electric Co., Ltd., Moriguchi, Osaka Induktionsheizgeraet
DE3447865A1 (de) * 1984-07-26 1986-02-06 Kabushiki Kaisha Toshiba, Kawasaki, Kanagawa Induktionsheizgeraet

Family Cites Families (8)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JPS5421983B2 (de) * 1974-02-05 1979-08-03
GB1454598A (en) * 1974-07-02 1976-11-03 Cunningham R J Load controlled induction heating
GB1529114A (en) * 1977-03-31 1978-10-18 Diamond Controls Ltd H Power supply circuits
US4438311A (en) * 1979-07-05 1984-03-20 Sanyo Electric Co., Ltd. Induction heating cooking apparatus
US4352000A (en) * 1979-08-10 1982-09-28 Sanyo Electric Co., Ltd. Induction heating cooking apparatus
JPS5652890A (en) * 1979-10-01 1981-05-12 Sony Corp Electromagnetic induction heating cooking device
US4429205A (en) * 1980-01-28 1984-01-31 Roper Corporation Induction heating apparatus
US4885447A (en) * 1985-01-23 1989-12-05 Balay, S.A. System for the induction heating of the electric plates of a cooker

Patent Citations (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4210792A (en) * 1976-07-27 1980-07-01 Tokyo Shibaura Electric Co., Ltd. Induction heating apparatus with load detecting and control circuit
DE3445538A1 (de) * 1983-12-14 1985-06-27 Sanyo Electric Co., Ltd., Moriguchi, Osaka Induktionsheizgeraet
DE3447865A1 (de) * 1984-07-26 1986-02-06 Kabushiki Kaisha Toshiba, Kawasaki, Kanagawa Induktionsheizgeraet

Also Published As

Publication number Publication date
GB2197999B (en) 1991-01-09
GB8628100D0 (en) 1986-12-31
GB2197999A (en) 1988-06-02
EP0269415A3 (de) 1989-01-11

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