The present disclosure relates to the household electrical appliances, and in particular to an induction cooktop and a method for controlling an induction cooktop.
There are various kitchen appliances or kitchen utensils for cooking or heating, such as induction cookers, rice cookers, electric pots, etc. on the existing cooktop. In order to use the kitchen appliances or kitchen utensils, a large number of power strips are arranged on the cooktop, which can be simultaneously used by these kitchen appliances.
When multiple devices are simultaneously used, the wires of these devices are staggered, causing annoyance for the user during use of the devices. Moreover, due to these wires, safety hazards may exist in the kitchen during cleaning. In addition, the devices are not easy to be stored.
Since the conventional induction cooker has only one coil disk, the detection techniques are implemented by means of a single pulse. However, in the application scenario of the full-surface type of the induction cooktop, due to a large number of coil disks, the conventional detection and identification methods are costly. Moreover, at this stage, the pot may have to be placed at the designated location to be heated by the induction cooker, which affects the customer's experience.
In order to solve the above technical problems, embodiments of the present disclosure provide an induction cooktop and a method for controlling an induction cooktop.
To achieve the above objects, the technical solutions of the present disclosure are realized as follows.
Some embodiments of the present disclosure provide an induction cooktop. The induction cooktop includes a processing module, a power supply module and at least one heating module.
The power supply module is configured to supply power to the heating module.
The heating module includes a heating circuit configured to heat a pot, and a detection circuit connected to the heating circuit.
The processing module is configured to acquire a parameter value at a signal collection point in the detection circuit, to determine whether a pot is placed on the heating module according to the parameter value, and to control the heating circuit to heat the pot in response to determining that the pot is placed on the heating module.
In the above solution, the heating circuit includes a switching element and an inductor.
The processing module is configured to control the switching element to connect the inductor to the power supply module in response to determining that a pot is placed on the heating module, so that the pot is heated by the inductor.
In the above solution, the processing module is configured to collect a voltage value at the signal collection point in the detection circuit, and to determine whether a pot is placed on the heating module according to the voltage value.
In the above solution, the processing module is configured to determine that a pot is placed on the heating module in response to determining that the voltage value exceeds a first threshold, and to control the heating module to heat the pot.
In the above solution, the switching element includes a relay, and the relay includes a first port, a second port and a third port. The first port is connected to the inductor, the second port is connected to the detection circuit, and the third port is connected to a third port of a relay of another heating module and to the power supply module.
The processing module is configured to control the first port of the switching element to be connected to the third port.
In the above solution, the heating circuit includes a resonance unit, and the resonance unit includes a capacitor connected to the inductor.
Some embodiments of the present disclosure provide a method for controlling an induction cooktop as any of the above-mentioned induction cooktops. The method for controlling the induction cooktop includes the following operations.
A parameter value at a signal collection point in the detection circuit is acquired by the processing module, and it is determined by the processing module whether a pot is placed on the heating module according to the parameter value. The heating circuit is controlled by the processing module to heat the pot in response to determining that the pot is placed on the heating module.
In the above solution, the heating circuit includes a switching element and an inductor.
The operation that the heating circuit is controlled to heat the pot includes the following operation.
The switching element is controlled to connect the inductor to the power supply module, so that the pot is heated by the inductor.
In the above solution, the operations that the parameter value at the signal collection point in the detection circuit is acquired by the processing module and it is determined by the processing module whether a pot is placed on the heating module according to the parameter value include the following operations.
A voltage value at the signal collection point in the detection circuit is collected by the processing module, and it is determined by the processing module whether a pot is placed on the heating module according to the voltage value.
In the above solution, the operation that it is determined whether a pot is placed on the heating module according to the voltage value includes the following operation.
It is determined that a pot is placed on the heating module in response to determining that the voltage value exceeds a first threshold.
The embodiments of the present disclosure provide an induction cooktop and a method for controlling an induction cooktop. The induction cooktop includes a processing module, a power supply module and at least one heating module. The power supply module is configured to supply power to the heating module. The heating module includes a detection circuit and a heating circuit for heating a pot. The processing module is configured to acquire a parameter value in the detection circuit, to determine whether a pot is placed on the heating module according to the parameter value, and to control the heating circuit to heat the pot in response to determining that the pot is placed on the heating module. Thus, in the solutions of the embodiments of the present disclosure, the processing module may dynamically detect the position of the load on the heating module, and determine the change in the position of the load in real time, etc. The processing module may determine the parameter value at the signal collection point while detecting the position, and determine whether a pot is placed according to the parameter value, so that the heating module is instantly controlled, thereby increasing the heating efficiency.
In order to make the purpose, technical solutions and advantages of the embodiments of the present disclosure clearer, the technical solutions of the embodiments of the present disclosure will be described clearly and completely in conjunction with the accompanying drawings of the embodiments of the present disclosure. Apparently, the described embodiments are a part of the embodiments of the present disclosure, rather than all of the embodiments of the present disclosure. Based on the described embodiments of the present disclosure, all of the other embodiments obtained by those skilled in the art belong to the protection scope of the present disclosure.
The power supply module is configured to supply power to the heating module.
The heating module includes a heating circuit configured to heat a pot, and a detection circuit connected to the heating circuit.
Specifically, for each heating module, the heating module may include a heating circuit and a detection circuit. The heating circuit is configured to heat a pot on the heating module. The detection circuit is connected to the heating circuit and is configured to detect the state of the heating circuit, specifically the state of an inductor of the heating circuit.
The processing module is configured to acquire a parameter value at a signal collection point in the detection circuit, to determine whether a pot is placed on the heating module according to the parameter value, and to control the heating circuit to heat the pot in response to determining that a pot is placed on the heating module.
Specifically, the heating circuit includes a switching element and an inductor.
The processing module is specifically configured to control the switching element to connect the inductor to the power supply module in response to determining that a pot is placed on the heating module, so that the pot is heated by the inductor. That is, the pot is heated.
Specifically, the processing module is configured to collect a voltage value at the signal collection point in the detection circuit, and to determine whether a pot is placed on the heating module according to the voltage value.
Specifically, the processing module may determine whether an object is placed on the heating module according to the voltage value at the signal collection point, and may determine whether the object is a pot according to the specific voltage value in response to determining that an object is placed on the heating module. The processing module may control the switching element to connect the inductor to the power supply module in response to determining that a pot is placed on the heating module, so that the pot is heated by the inductor.
It should be noted that when the induction cooktop is designed, the connection relationship between the heating circuit and the detection circuit as well as the parameter value of each device in the circuit can be predetermined, and the inductance value of the inductor can be determined according to the voltage value. That is, the voltage value reflects the change in the inductance value of the inductor. The developers can precalculate a first threshold. In practical application, when it is determined that the voltage value exceeds the first threshold, it is indicated that a pot is placed on the heating module. To further illustrate, during heating, the inductor for heating the pot can be equivalent to a resistor and an inductor connected in series. In a case that the placed objects are different from each other and the areas of the contact surfaces between the objects and the heating module are different from each other, the inductance values are different, and thus the voltage values are different. Based on the above principle, it can be determined whether an object is placed on the heating module and whether the object is a pot according to the voltage value.
In these embodiments, the switching element includes a relay, and the relay includes a first port, a second port and a third port.
The first port is connected to the inductor, the second port is connected to the detection circuit, and the third port is connected to a third port of a relay of another heating module and to the power supply module.
The heating circuit may also include a resonance unit. The resonance unit specifically includes a capacitor connected to the inductor.
The above-mentioned heating modules may adopt the same structure as the heating module shown in
Herein, according to the magnitude of the voltage value, it can be determined that the object is a pot (in a case that the voltage value exceeds the first threshold, it is indicated that the object is a pot), such as a pot 205, or the object is another object (in a case that the voltage value does not exceed the first threshold, it is indicated that the object is not a pot), such as a cell phone 204. The object is heated if it is indicated that the object is a pot 205, and the object is not heated if it is indicated that the object is a cell phone 204.
The detection circuit includes a first component M1, a second component M2 and a battery E1. The structure of the first component M1 may be the same as the structure of the second component M2, specifically including a diode, a capacitor, a MOS transistor (in particular a N-channel MOS transistor). Each of both ends of the capacitor is connected to a respective one of both ends of the diode. The drain (i.e., D pole) of the MOS transistor is connected to one of both ends of the diode, and the source (i.e., S pole) of the MOS transistor is connected to the other one of both ends of the diode.
Herein, the switching element is a relay K1, in particular a single pole multiple throw relay. The third port 3 of the single pole multiple throw relay is connected to the inductor. The first port 1 of the single pole multiple throw relay is connected to the power supply module. The second port 2 of the single pole multiple throw relay is connected to the detection circuit, in particular to a middle point between the first component and the second component, i.e. point A.
By default, the detection circuit is connected to the second port 2 of the relay K1, and the third port 3 of the relay K1 is connected to the second port 2. When it is determined by the processing module that a pot is placed on the heating module, the third port 3 of the relay K1 is controlled to be connected to the first port 1, thereby forming a power supply circuit. The power supply module supplies power to the heating module, so that the pot is heated by the heating module.
In
Herein, the inductor Leq2 and the resistor Req2 may be respectively understood as the inductor Leq1 and the resistor Req1 as shown in
Specifically, the inductor Lm1 is in particular connected to the middle point between the first component M1 and the second component M2 of the detection circuit through the capacitor Cs1. The signal collection point in the detection circuit is the middle point between the second component M2 and the resistor Rs1, i.e. point C.
The heating circuit may also include a battery E2, a capacitor C1 and a capacitor C2 (the capacitor here may serve as a resonance unit) sequentially connected to each other. The inductor Lm1 is connected to a node between the capacitor C1 and the capacitor C2.
The structure of each of the first component and the second component shown in
In
It should be noted that in the above
Referring to
The processing module may collect the parameter value (specifically referring to the voltage value at the signal collection point) at the signal collection point in the detection circuit of each heating module, and determine whether a pot is placed on the corresponding heating module according to the voltage value.
Referring to
For the heating module 811 and the heating module 812, although the processing module may detect the change in the voltage value at its signal collection point, the voltage value does not exceed the first threshold, so that it is determined by the processing module that although there is a load placed on the heating module, the load is not a pot. Thus, the processing module will not control the switching element to change its state, that is, the other placed loads will not be heated.
It should be noted that the capacitor, the resistor, the first component and the second component involved in each circuit in the above-mentioned
In operation 901, a parameter value at a signal collection point in the detection circuit is acquired by the processing module, and it is determined by the processing module whether a pot is placed on the heating module according to the parameter value.
In operation 902, the heating circuit is controlled by the processing module to heat the pot in response to determining that the pot is placed on the heating module.
Specifically, the heating circuit includes a switching element and an inductor.
The operation that the heating circuit is controlled to heat the pot includes the following operation.
The switching element is controlled to connect the inductor to the power supply module, so that the pot is heated by the inductor.
Specifically, the operations that the parameter value at the signal collection point in the detection circuit is acquired by the processing module, and it is determined by the processing module whether the pot is placed on the heating module according to the parameter value include the following operations.
A voltage value at the signal collection point in the detection circuit is collected by the processing module, and it is determined by the processing module whether a pot is placed on the heating module according to the voltage value.
Specifically, the operation that it is determined whether a pot is placed on the heating module according to the voltage value includes the following operation.
It is determined that a pot is placed on the heating module in response to determining that the voltage value exceeds a first threshold.
Specifically, the switching element includes a relay, and the relay includes a first port, a second port and a third port. The first port is connected to the inductor, the second port is connected to the detection circuit, and the third port is connected to a third port of a relay of another heating module and to the power supply module.
The operation that the heating circuit is controlled to heat the pot includes the following operation.
The first port of the switching element is controlled to be connected to the third port.
Specifically, the processing module sends the control signal to the switching element to control the first port of the switching element to be connected to the third port, so that the switching element connects the heating circuit to the power supply module.
The above only describes the preferred embodiments of the present disclosure, and is not intended to limit the protection scope of the present disclosure. Any modifications, equivalent substitution, improvements made within the spirit and principle of the present disclosure shall be contained within the protection scope of the present disclosure.
Number | Date | Country | Kind |
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201910766188.3 | Aug 2019 | CN | national |
This application is a continuation of PCT International Application No. PCT/CN2019/123033, filed Dec. 4, 2019, the entire content of which is incorporated herein by reference, which claims priority to and the benefit of the Chinese Patent Application No. 201910766188.3, filed on Aug. 19, 2019, the contents of which are incorporated herein by reference in its entirety.
Number | Date | Country | |
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Parent | PCT/CN2019/123033 | Dec 2019 | US |
Child | 17674224 | US |