Induction cooktop
11655984 · 2023-05-23
Assignee
Inventors
Cpc classification
F24C15/106
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
H05B6/10
ELECTRICITY
F24C15/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
An induction cooktop includes a ceramic cooking surface in connection with a housing. A plurality of inductors is disposed in the housing and each of the inductors is in communication with a controller. The controller is configured to selectively activate each of the inductors in response to an input received at the user interface identifying an active inductor of the plurality of inductors to activate. The controller is further configured to detect a presence of a pan proximate the active inductor in response to a detection signal and identify a small pan condition in response to a phase angle detected for the active inductor of the plurality of inductors.
Claims
1. An induction cooktop, comprising: a ceramic cooking surface in connection with a housing; a plurality of inductors disposed in the housing; and a controller in communication with the inductors, wherein the controller is configured to: selectively activate each of the inductors in response to an input received at the user interface identifying an active inductor of the plurality of inductors to activate; detect a presence of a pan proximate the active inductor in response to a detection signal; and identify a small pan condition in response to a phase angle detected for the active inductor of the plurality of inductors.
2. The induction cooktop according to claim 1, further comprising: an inverter comprising at least one inverter switch configured to drive the active inductor.
3. The induction cooktop according to claim 2, wherein the small pan condition is detected in response to a phase angle between a zero-crossing of an induced current and a leading edge of a voltage across the inverter switch.
4. The induction cooktop according to claim 3, wherein the phase angle is identified by determining a zero-crossing of the induced current in the active inductor.
5. The induction cooktop according to claim 3, wherein the phase angle is identified by determining the leading edge of a square wave of the voltage across the inverter switch.
6. The induction cooktop according to claim 3, wherein the controller is configured to identify the small pan condition in response to the phase angle being less than a pan presence threshold.
7. The induction cooktop according to claim 6, wherein the pan presence threshold corresponds to a phase angle approximately less than 88 degrees.
8. The induction cooktop according to claim 6, wherein the pan presence threshold corresponds to a phase angle approximately less than 87 degrees.
9. The induction cooktop according to claim 1, wherein the small pan condition corresponds to the detection of a small pan having a surface approximately less than 50 cm.sup.2.
10. A method of controlling a cooktop, comprising: selectively activating an active inductor in response to an input received at a user interface; detecting a presence of a pan proximate the active inductor in response to a detection signal; and identifying a small pan condition in response to a phase angle detected for the active inductor, wherein the phase angle is between a zero-crossing of an induced current and a leading edge of a voltage across an inverter switch configured to provide current to the active inductor.
11. The method according to claim 10, wherein the phase angle is identified by determining a zero-crossing of the induced current in the active inductor.
12. The method according to claim 10, wherein the phase angle is identified by determining the leading edge of a square wave of the voltage across the inverter switch.
13. The method according to claim 10, wherein the small pan condition is detected in response to the phase angle being less than a pan presence threshold.
14. The method according to claim 10, further comprising: identifying the small pan condition in response to a current driven through the active inductor being less than 30 amps.
15. A controller for identifying a small pan condition for an induction cooktop, the controller in communication with a plurality of inductors, an inverter switch, and a user interface, the controller configured to: selectively activate each of the inductors in response to an input received at the user interface identifying an active inductor of the plurality of inductors to activate; detect a presence of a pan proximate the active inductor in response to a detection signal; and identify the small pan condition in response to a phase angle identified between a zero-crossing of an induced current and a leading edge of a voltage across the inverter switch.
16. The controller according to claim 15, wherein the small pan condition is identified in response to a zero-crossing of the induced current in the active inductor and the leading edge of a square wave of the voltage across the inverter switch, wherein the inverter switch is configured to provide current to the active inductor.
17. The controller according to claim 15, wherein the controller is further configured to: identify the small pan condition in response to the phase angle being less than a pan presence threshold.
18. The controller according to claim 17, wherein the pan presence threshold corresponds to a phase angle approximately less than 88 degrees.
19. The controller according to claim 15, wherein the controller is further configured to: periodically update the identification of the presence of the pan during an operation of the active inductor.
20. The controller according to claim 19, wherein the controller is further configured to: deactivate the active inductor in response to the periodic update detecting the phase angle greater than 88 degrees for a predetermined period of time.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) Further objects and advantages of the present disclosure may become more apparent from the following detailed description and from the annexed drawing, which is provided by way of a non-limiting example, wherein:
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DETAILED DESCRIPTION OF EMBODIMENTS
(7) For purposes of description herein the terms “upper,” “lower,” “right,” “left,” “rear,” “front,” “vertical,” “horizontal,” and derivatives thereof shall relate to the device as oriented in
(8) Referring to
(9) The user interface 22 may correspond to a touch interface configured to perform heat control and selection of the plurality of hobs 12 as illustrated in a plurality of instructive decals 26 disposed on a cooking surface 28 of the cooktop. The user interface 22 may comprise a plurality of sensors 30 configured to detect a presence of an object, for example a finger of an operator, proximate thereto. The sensors 30 may correspond to any form of sensors. In an exemplary embodiment, the sensors 30 may correspond to capacitive, resistive, and/or optical sensors. In an exemplary embodiment, the sensors 30 correspond to capacitive proximity sensors.
(10) The user interface 22 may further comprise a display 32 configured to communicate at least one function of the cooktop 10. The display may correspond to various forms of displays, for example, light emitting diode (LED) display, a liquid crystal display (LCD), etc. In some embodiments, the display may correspond to a segmented display configured to depict one or more alpha-numeric characters to communicate a cooking function of the cooktop 10. The display may further be operable to communicate one or more error messages or status messages of the cooktop 10.
(11) Referring now to
(12) The controller 20 is configured to selectively drive the induction coil 46 in response to a detection of a user input into the user interface 22 and a detection of a pan 24 on the cooking surface 28. The induction coil 46 is driven in this example with a half bridge inverter 48. The controller 20 is configured to monitor the current i.sub.L driven through the induction coil 46. Additionally, the controller 20 is configured to monitor the voltage V.sub.S2 on a lower switch 50 of the half bridge inverter 48. The phase angle between the zero-crossing of the current i.sub.L and the leading edge of the square wave of V.sub.S2 can be derived from the current i.sub.L and the voltage V.sub.S2. See
(13) Though a half bridge inverter is referred to herein, various driving circuits may be similarly utilized to control the induction coil 46 as described herein. For example, the induction coil 46 may correspond to a full bridge inverter or a quasi-resonant converter. The controller 20 may utilize a variety of sensor circuits to monitor the current i.sub.L and the voltage V.sub.S2. Additionally, the controller 20 may comprise one or more processors or circuits configured to derive the identify the zero-crossing of the current i.sub.L and the leading edge of the voltage V.sub.S2.
(14) Referring now to
(15) The phase angle 58 identified in
(16) Referring now to
(17) The normal operation zone 74 of the control scheme 72 may correspond to the phase angle 58 ranging from approximately 0 degrees to 85 degrees with the current i.sub.L approximately less than 40 amps. Between a phase angle 58 of approximately 45 degrees and 85 degrees with the current i.sub.L approximately between 30 and 40 amps, the controller may activate a peak current limitation 76. Additionally, the controller 20 may identify the phase angle 58 approximately between 85 degrees and 90 degrees with the current i.sub.L approximately between 0 and 40 amps as a first no pan detected range 78 of operation. In response to this condition, the controller may fail to activate a selected induction coil even if a small pan is present. As such, the control scheme 72 may fail to provide for operation of an induction cooktop with small pans.
(18) Therefore, the control scheme 72 may not provide for activation of an induction coil in the presence of a pan having such a size to have a surface in contact with the induction cooktop smaller than a size threshold (for example 50 cm.sup.2). Such a size threshold may correspond to a working point falling in the area “NO PAN DETECTED” in the PHASE range 85°-90°. This can be an undesired operation, since in this case the user would like the system to operate and to activate; however, the activation may be limited for safety purposes.
(19) The control scheme 72 of the controller may further provide for an activated peak current 80 limitation to be activated in response to the phase angle 58 approximately between 0 degrees and 60 degrees with the current i.sub.L approximately between 40 and 95 amps. Additionally, the controller may activate a second no pan detected range 82 of operation in response to the phase angle 58 approximately between 60 degrees and 75 degrees with the current i.sub.L approximately between 40 and 95 amps. Finally a safety warning zone 84 may correspond to the phase angle 58 approximately between 75 degrees and 90 degrees with the current i.sub.L approximately between 40 and 95 amps.
(20) Referring now to
(21) The normal operation zone 96 of the modified control scheme 92 may correspond to the phase angle 58 ranging from approximately 0 degrees to 85 degrees with the current i.sub.L approximately less than 40 amps. Between a phase angle 58 of approximately 45 degrees and 85 degrees with the current i.sub.L approximately between 30 and 40 amps, the controller may activate a peak current limitation 98. Additionally, the controller may identify the phase angle 58 approximately between 88 degrees and 90 degrees with the current i.sub.L approximately between 0 and 40 amps as a first no pan detected range 100 of operation. In response to this condition, the controller 20 may accurately identify a pan not present proximate a selected induction coil.
(22) The controller 20 may identify the small pan operating range 94 in response to the phase angle 58 approximately between 84 degrees and 88 degrees with the current i.sub.L approximately less than 30 amps. The small pan operating range may further correspond to the phase angle 58 approximately between 85 degrees and 87 degrees. In this way, the controller 20 may be advantageously configured to operate at least one induction coil of the cooktop 20 to provide for operation with the small pan 24.
(23) The modified control scheme 92 of the controller 20 may further provide for an activated peak current 102 limitation to be activated in response to the phase angle 58 approximately between 0 degrees and 60 degrees with the current i.sub.L approximately between 40 and 95 amps. Additionally, the controller 20 may activate a second no pan detected range 104 of operation in response to the phase angle 58 approximately between 60 degrees and 75 degrees with the current i.sub.L approximately between 40 and 95 amps. Finally a safety warning zone 106 may correspond to the phase angle 58 approximately between 75 degrees and 90 degrees with the current i.sub.L approximately between 40 and 95 amps.
(24) In some embodiments, the control scheme may further provide for the controller 20 to periodically update to the detection of the small pan periodically during a cooking operation. That is, the controller 20 may continue to periodically monitor the phase angle 58 and the current i.sub.L throughout operation of each of the induction coils 16 or inductors of the cooktop 10. In response to identifying an inductor having a phase angle greater than 88 degrees for a predetermined time, the controller 20 may deactivate the inductor. The time interval for the predetermined time may vary. In some implementations, the time interval may be approximately 5 seconds.
(25) It will be understood by one having ordinary skill in the art that construction of the described device and other components is not limited to any specific material. Other exemplary embodiments of the device disclosed herein may be formed from a wide variety of materials, unless described otherwise herein.
(26) For purposes of this disclosure, the term “coupled” (in all of its forms, couple, coupling, coupled, etc.) generally means the joining of two components (electrical or mechanical) directly or indirectly to one another. Such joining may be stationary in nature or movable in nature. Such joining may be achieved with the two components (electrical or mechanical) and any additional intermediate members being integrally formed as a single unitary body with one another or with the two components. Such joining may be permanent in nature or may be removable or releasable in nature unless otherwise stated.
(27) It is also important to note that the construction and arrangement of the elements of the device as shown in the exemplary embodiments is illustrative only. Although only a few embodiments of the present innovations have been described in detail in this disclosure, those skilled in the art who review this disclosure will readily appreciate that many modifications are possible (e.g., variations in sizes, dimensions, structures, shapes and proportions of the various elements, values of parameters, mounting arrangements, use of materials, colors, orientations, etc.) without materially departing from the novel teachings and advantages of the subject matter recited. For example, elements shown as integrally formed may be constructed of multiple parts or elements shown as multiple parts may be integrally formed, the operation of the interfaces may be reversed or otherwise varied, the length or width of the structures and/or members or connector or other elements of the system may be varied, the nature or number of adjustment positions provided between the elements may be varied. It should be noted that the elements and/or assemblies of the system may be constructed from any of a wide variety of materials that provide sufficient strength or durability, in any of a wide variety of colors, textures, and combinations. Accordingly, all such modifications are intended to be included within the scope of the present innovations. Other substitutions, modifications, changes, and omissions may be made in the design, operating conditions, and arrangement of the desired and other exemplary embodiments without departing from the spirit of the present innovations.
(28) It will be understood that any described processes or steps within described processes may be combined with other disclosed processes or steps to form structures within the scope of the present device. The exemplary structures and processes disclosed herein are for illustrative purposes and are not to be construed as limiting.
(29) It is also to be understood that variations and modifications can be made on the aforementioned structures and methods without departing from the concepts of the present device, and further it is to be understood that such concepts are intended to be covered by the following claims unless these claims by their language expressly state otherwise.
(30) The above description is considered that of the illustrated embodiments only.
(31) Modifications of the device will occur to those skilled in the art and to those who make or use the device. Therefore, it is understood that the embodiments shown in the drawings and described above is merely for illustrative purposes and not intended to limit the scope of the device, which is defined by the following claims as interpreted according to the principles of patent law, including the Doctrine of Equivalents.