Induction heat cooking apparatus
10681780 ยท 2020-06-09
Assignee
Inventors
Cpc classification
Y02B40/00
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
H05B6/1254
ELECTRICITY
International classification
Abstract
An electronic induction heat cooking apparatus includes a rectifier for rectifying an input voltage and outputting a direct current (DC) voltage; a plurality of switching elements for switching the DC voltage output through the rectifier; a plurality of heating coils for heating a cooking utensil by controlling the plurality of switching elements; a controller for controlling the plurality of switching elements according to a plurality of operation modes; and a supporting member in which at least one of the plurality of heating coils is mounted. The supporting member includes a coil insertion part, into which the heating coils are inserted, and the magnetic member is inserted into the supporting member to directly face the heating coils at the lower side of the heating coils.
Claims
1. An electronic induction heat cooking apparatus comprising: a rectifier configured to rectify an input voltage and output a direct current (DC) voltage; a plurality of switching elements configured to switch the DC voltage output through the rectifier; a plurality of heating coils configured to heat a cooking utensil based on operation of the plurality of switching elements; a controller configured to control the plurality of switching elements according to a plurality of operation modes; and a supporting member in which at least one of the plurality of heating coils is mounted, wherein the supporting member includes: a coil supporting part that supports side surfaces of the heating coils and that has a spiral shape, the coil supporting part defining a coil insertion part that has the spiral shape and that is configured to receive the heating coils, and a reinforcement part that supports the coil supporting part, the reinforcement part defining a magnetic member insertion part configured to receive a magnetic member, wherein the magnetic member inserted into the magnetic member insertion part directly faces a lower side of the heating coils, wherein the reinforcement part extends in a vertical direction and has a first vertical portion that contacts a side surface of the magnetic member and a second vertical portion that extends from the first vertical portion in the vertical direction and that faces the side surfaces of the heating coils, wherein the coil supporting part is disposed at a position corresponding to the second vertical portion of the reinforcement part, and wherein the magnetic member insertion part is configured to receive the magnetic member in a state in which an upper side of the magnetic member is in contact with the lower side of the heating coils and a lower side of the coil supporting part.
2. The electronic induction heat cooking apparatus according to claim 1, wherein the reinforcement part covers the side surfaces of the heating coils.
3. The electronic induction heat cooking apparatus according to claim 1, wherein an upper side of the magnetic member insertion part is in contact with the coil insertion part.
4. The electronic induction heat cooking apparatus according to claim 3, wherein the magnetic member insertion part includes a plurality of magnetic member insertion parts that are arranged along a radial direction of the heating coils.
5. The electronic induction heat cooking apparatus according to claim 3, wherein the magnetic member insertion part extends in a radial direction of the heating coils, and includes a first plurality of magnetic member insertion parts having a first length in the radial direction and a second plurality of magnetic member insertion parts having a second length in the radial direction, the second length being less than the first length.
6. The electronic induction heat cooking apparatus according to claim 1, wherein the magnetic member includes ferrite.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE EMBODIMENTS
(12) Reference will now be made in detail to the embodiments of the present disclosure, examples of which are illustrated in the accompanying drawings.
(13) In the following detailed description of the preferred embodiments, reference is made to the accompanying drawings that form a part hereof, and in which is shown by way of illustration specific preferred embodiments in which the invention may be practiced. These embodiments are described in sufficient detail to enable those skilled in the art to practice the invention, and it is understood that other embodiments may be utilized and that logical structural, mechanical, electrical, and chemical changes may be made without departing from the spirit or scope of the invention. To avoid detail not necessary to enable those skilled in the art to practice the invention, the description may omit certain information known to those skilled in the art. The following detailed description is, therefore, not to be taken in a limiting sense.
(14) Also, in the description of embodiments, terms such as first, second, A, B, (a), (b) or the like may be used herein when describing components of the present invention. Each of these terminologies is not used to define an essence, order or sequence of a corresponding component but used merely to distinguish the corresponding component from other component(s). It should be noted that if it is described in the specification that one component is connected, coupled or joined to another component, the former may be directly connected, coupled, and joined to the latter or connected, coupled, and joined to the latter via another component.
(15)
(16) Referring to
(17) In addition, although not shown, a controller for controlling switching operations of the switching elements 221, 222, 223 and 224 is further included. In the embodiment, three heating coils are included.
(18) In the embodiment, when the number of heating coils is N, N+1 switching elements may be included and the heating coils may be driven while minimizing the number of switching elements.
(19) One end of the first switching element 221 is connected to the positive voltage terminal and the other end thereof is connected to the second switching element 222. One end of the second switching element 222 is connected to the first switching element 221 and the other end thereof is connected to the third switching element 223. One end of the third switching element 223 is connected to the second switching element 222 and the other end thereof is connected to the fourth switching element 224. One end of the fourth switching element 224 is connected to the third switching element 223 and the other end thereof is connected to the negative voltage terminal.
(20) In addition, a DC capacitor 290 connected across the rectifier 210 may be further included and the DC capacitor 290 reduces ripple of a DC voltage output from the rectifier 210.
(21) Although, in the embodiment, the first heating coil 241 is connected between the first resonance capacitor 261 and the second resonance capacitor 262, the first resonance capacitor 261 may not be included.
(22) Although, in the embodiment, the second heating coil 242 is connected to the third resonance capacitor 263, the second heating coil may be connected between an additional resonance capacitor (not shown) and the third resonance capacitor 263, similarly to the first heating coil 241.
(23) Although, in the embodiment, the third heating coil 243 is connected to the fourth resonance capacitor 264, the third heating coil may be connected between an additional resonance capacitor (not shown) and the fourth resonance capacitor 264, similarly to the first heating coil 241.
(24) In the switching elements 221, 222, 223 and 224, an anti-parallel diode may be connected and an auxiliary resonance capacitor connected to the anti-parallel diode in parallel may be connected to minimize switching loss of the switching elements.
(25) The switching elements 221, 222, 223 and 224 may be arranged in a first direction. A cooling fan 295 is provided at one side of the switching elements 221, 222, 223 and 224 such that air from the cooling fan 295 flows in the first direction.
(26) The first switching element 221 may be provided closest to the cooling fan 295 and then the second switching element 222, the third switching element 223 and the fourth switching element 224 may be arranged.
(27) The first heating coil 241 is connected between the first switching element 221 and the second switching element 222, the second heating coil 242 is connected between the second switching element 222 and the third switching element 223, and the third heating coil 243 is connected between the third switching element 223 and the fourth switching element 224.
(28) The power of the first heating coil 241 may be greater than that of the second heating coil 242 or the third heating coil 243 and the power of the second heating coil 242 may be equal to that of the third heating coil 243. In the embodiment, the power of the first heating coil 241 may be 4.4 kW and the power of the second heating coil 242 and the third heating coil 243 may be 1.8 kW.
(29)
(30) Referring to
(31) Accordingly, the signal from the controller 280 is applied to the gate drivers 291, 292, 293 and 294 to drive the semiconductor switches, thereby controlling the switching elements 221, 222, 223 and 224.
(32) A current converter 270 may be provided between the ground of the switching elements 221, 222, 223 and 224 connected in series and the first, second and third heating coils 241, 242 and 243. The current converter 270 measures current flowing in the first, second and third heating coils 241, 242 and 243 such that a current value is input to the controller 280 through an analog/digital converter (ADC) included in the controller 280. The controller 280 controls the switching elements 221, 222, 223 and 224 based on the current value.
(33)
(34) As shown in
(35) When driving the first heating coil 241, the controller 280 controls the first switching element 221 to be closed and controls the second, third and fourth switching elements 222, 223 and 224 to be opened during a half resonance period. During the remaining half resonance period, the controller controls the first switching element 221 to be opened and controls the second, third and fourth switching elements 222, 223 and 224 to be closed.
(36) Through the above operation, during the half resonance period, an input voltage is applied to the first heating coil 241 and the first and second resonance capacitors 261 and 262 and thus resonance starts to increase current of the first heating coil 241. During the remaining half resonance period, the input voltage is reversely applied to the first heating coil 241 and the first and second resonance capacitors 261 and 262 and thus resonance starts to increase reverse current of the first heating coil 241.
(37) As operation is repeated, eddy current is induced in the cooking utensil laid on the first heating coil 241 to operate the electronic induction heat cooking apparatus.
(38) As shown in
(39) Through the above operation, during the half resonance period, an input voltage is applied to the second heating coil 242 and the third resonance capacitor 263 and thus resonance starts to increase current of the second heating coil 242. During the remaining half resonance period, the input voltage is reversely applied to the second heating coil 242 and the third resonance capacitor 263 and thus resonance starts to increase reverse current of the second heating coil 242.
(40) As operation is repeated, eddy current is induced in the cooking utensil laid on the second heating coil 242 to operate the electronic induction heat cooking apparatus.
(41) Although not shown, when the third heating coil 243 is driven, during a half resonance period, the first, second and third switching elements 221, 222 and 223 are controlled to be closed and the fourth switching element 224 is controlled to be opened. During the remaining half resonance period, the first, second and third switching elements 221, 222 and 223 are controlled to be opened and the fourth switching element 224 is controlled to be closed.
(42) The controller 280 controls the switching elements in this manner to drive the heating coils.
(43) As described above, the electronic induction heat cooking apparatus according to the embodiment includes a plurality of heating coils and a minimum number of switching elements for driving the plurality of heating coils, thereby decreasing the size of the electronic induction heat cooking apparatus and reducing production costs.
(44)
(45) Referring to
(46) First, when driving the first heating coil 241, the controller 280 controls the first switching element 221 to be closed and controls the second, third and fourth switching elements 222, 223 and 224 to be opened during a half resonance period. During the remaining half resonance period, the controller controls the first switching element 221 to be opened and controls the second, third and fourth switching elements 222, 223 and 224 to be closed.
(47) Through the above operation, during the half resonance period, an input voltage is applied to the first heating coil 241 and the first and second resonance capacitor 261 and 262 and thus resonance starts to increase current of the first heating coil 241. During the remaining half resonance period, the input voltage is reversely applied to the first heating coil 241 and the first and second resonance capacitor 261 and 262 and thus resonance starts to increase reverse current of the first heating coil 241.
(48) As operation is repeated, eddy current is induced in the cooking utensil laid on the first heating coil 241 to operate the electronic induction heat cooking apparatus.
(49) Subsequently, when driving the second heating coil 242, the controller 280 controls the first switching element 221 and the second switching element 222 to be closed and controls the third and fourth switching elements 223 and 224 to be opened during a half resonance period. During the remaining half resonance period, the controller controls the first switching element 221 and the second switching element 222 to be opened and controls the third and fourth switching elements 223 and 224 to be closed.
(50) Through the above operation, during the half resonance period, an input voltage is applied to the second heating coil 242 and the third resonance capacitor 263 and thus resonance starts to increase current of the second heating coil 242. During the remaining half resonance period, the input voltage is reversely applied to the second heating coil 242 and the third resonance capacitor 263 and thus resonance starts to increase reverse current of the second heating coil 242.
(51) As operation is repeated, eddy current is induced in the cooking utensil laid on the second heating coil 242 to operate the electronic induction heat cooking apparatus.
(52) Similarly, when the third heating coil 243 is driven, during a half resonance period, the first, second and third switching elements 221, 222 and 223 are controlled to be closed and the fourth switching element 224 is controlled to be opened. During the remaining half resonance period, the first, second and third switching elements 221, 222 and 223 are controlled to be opened and the fourth switching element 224 is controlled to be closed.
(53) When the first, second and third heating coils 241, 242 and 243 are all driven using the above-described method, the first, second third heating coils 241, 242 and 243 may be driven again starting from the first heating coil 241.
(54)
(55) Referring to
(56) As shown in
(57) Accordingly, the first, second and third heating coils 241, 242 and 243 may be driven together, with different powers according to use thereof or user's need.
(58)
(59) Referring to
(60) Since the third switching element 223 remains in the closed state, the second heating coil 242 and the third heating coil 243 are connected in parallel.
(61) Accordingly, through the above operation, during the half resonance period, an input voltage is applied to the second and third heating coils 242 and 243 and the third and fourth resonance capacitors 263 and 264 and thus resonance starts to increase current in the second and third heating coils 242 and 243. During the remaining half resonance period, an input voltage is reversely applied to the second and third heating coils 242 and 243 and the third and fourth resonance capacitors 263 and 264 and thus resonance starts to increase reverse current in the second and third heating coils 242 and 243.
(62) At this time, the second and third heating coils 242 and 243 operating using the parallel driving method have the same power. In the embodiment, the power of the second and third heating coils 242 and 243 is 1.8 kW.
(63) In addition, the power of the second and third heating coils 242 and 243 operating using the parallel driving method may be less than that of the first heating coil 241.
(64) As operation is repeated, eddy current is induced in the cooking utensil laid on the second and third heating coils 242 and 243 to operate the electronic induction heat cooking apparatus.
(65)
(66) Referring to
(67) The heating coils may include a litz wire and the magnetic member may include ferrite, although not limited thereto.
(68) In the present invention, the coil supporting part 251 is formed on a front surface of the supporting member and the heating coils are formed on the front surface of the supporting member. The magnetic member insertion part 253 is formed on a rear surface of the supporting member and the magnetic member is provided on the rear surface of the supporting member.
(69) As shown in
(70)
(71) As shown in
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(73) As shown in
(74)
(75) Referring to
(76) Accordingly, the heating coils 40 and the magnetic member 55 are spaced apart from each other by the thickness of the reinforcement part 52 and thus efficiency deteriorates by magnetic resistance.
(77) Referring to
(78) In a part in which the magnetic member insertion part 253 is located, the reinforcement part 252 is not formed. Thus, the magnetic member insertion part 253 may be in contact with the coil insertion part at the upper side thereof.
(79) Accordingly, the heating coils 240 provided between the coil supporting parts 251, that is, in the coil insertion part, may directly face or may be directly in contact with the magnetic member 255 provided in the magnetic member insertion part 253 of the rear surface thereof.
(80) Since the heating coils 240 and the magnetic member 255 are not spaced apart from each other, magnetic resistance can be reduced and efficiency can be improved.
(81) The embodiment of the present invention provides an electronic induction heat cooking apparatus having a plurality of heating coils, which is capable of being controlled using a minimum number of switching elements.
(82) In addition, the embodiment of the present invention provides an electronic induction heat cooking apparatus having a plurality of heating coils simultaneously driven using a minimum number of heating coils.
(83) In addition, the embodiment of the present invention provides an electronic induction heat cooking apparatus capable of reducing magnetic resistance and increasing efficiency by improving the structure of a supporting member supporting a plurality of heating coils and a magnetic member.
(84) Although embodiments have been described with reference to a number of illustrative embodiments thereof, it should be understood that numerous other modifications and embodiments can be devised by those skilled in the art that will fall within the spirit and scope of the principles of this disclosure. More particularly, various variations and modifications are possible in the component parts and/or arrangements of the subject combination arrangement within the scope of the disclosure, the drawings and the appended claims. In addition to variations and modifications in the component parts and/or arrangements, alternative uses will also be apparent to those skilled in the art.