Unmanned pot control method and device, electronic equipment and storage medium
By using a thermocouple in an unmanned pot to convert heat into electrical energy and automatically adjusting the power supply mode according to the capacitance voltage, the problem that the existing unmanned pot power supply mode cannot be automatically adjusted is solved, and the battery life time and user experience are improved.
Patent Information
- Application Number
- CN202510359365.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-25
- Publication Date
- 2025-06-24
AI Technical Summary
During the automatic cooking process, the existing unmanned pot cannot automatically adjust the power supply mode due to different power consumption abilities of different modules, resulting in short battery life and poor user experience.
The heat from the bottom of the pot is converted into electrical energy by a thermocouple, and the capacitor is used to connect it to the unmanned pot. According to the comparison of the capacitance voltage and the preset charging threshold, the target power supply state is determined, the high power supply time is calculated, and the circuit connection of the high power consumption module is blocked after the time is reached.
It realizes automatic adjustment of the power supply mode according to different power generation capabilities, extends the battery life time and improves the user experience.
Smart Images

Figure CN120200346A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of unmanned cooker control, and in particular to a control method, device, electronic device and storage medium for an unmanned cooker. Background Art
[0002] Currently, an automatic cooking unmanned cooker uses a battery to supply power to the entire system, which includes a wireless transmission module, a touch sensing module, a display module, etc. Although the power consumption is not large, the automatic recipe cooking time of the unmanned cooker is generally long, and the continuous power consumption is large. Therefore, the single use time of the battery is short, and the battery needs to be replaced frequently, resulting in poor user experience.
[0003] In the related art, a thermocouple is added to the bottom of the unmanned cooker to generate electric energy by collecting heat, and then supply power to the unmanned cooker. However, different modules have different power consumption capabilities, and in the prior art, the power supply mode cannot be automatically adjusted according to different electric energy generation capabilities. Summary of the Invention
[0004] In view of this, the purpose of the present invention is to provide a control method, device, electronic device and storage medium for an unmanned cooker.
[0005] In a first aspect, an embodiment of the present invention provides a control method for an unmanned cooker. The hot end of the thermocouple is welded to the bottom of the cooker body of the unmanned cooker. The thermocouple is electrically connected to one end of a capacitor, and the other end of the capacitor is electrically connected to the unmanned cooker. After the unmanned cooker is heated by an open flame, the potential difference between the hot end and the cold end of the thermocouple is converted and input to the capacitor. The method includes:
[0006] Obtaining a first capacitor voltage in the thermocouple charging mode;
[0007] Determining the target state of the capacitor according to the comparison relationship between the first capacitor voltage and a preset charging threshold;
[0008] If the target state represents a high-power supply state, calculating the high-power supply duration;
[0009] After reaching the power supply duration, blocking the circuit connection between the capacitor and the high-power module to stop supplying power to the high-power module.
[0010] Combined with the first aspect, the step of determining the target power supply state according to the comparison relationship between the first capacitor voltage and the preset charging threshold includes:
[0011] If U1 < U2, determining the target state of the capacitor as the capacitor charging state;
[0012] If U2 ≤ U1 < U3, determining the target state of the capacitor as the low-power supply state;
[0013] If U1 ≥ U3, determining the target state of the capacitor as the high-power supply state;
[0014] Among them, U1 is the first capacitor voltage, U2 is the first voltage threshold, U3 is the second voltage threshold, and U2 < U3.
[0015] Combined with the first aspect, if the target power supply state is a high-power consumption power supply state, the steps of calculating the high-power consumption power supply duration include:
[0016] Obtain the charging power in the thermocouple charging mode and the current output power of the high-power consumption module;
[0017] Calculate the high-power consumption power supply duration according to the current output power, the capacitance of the capacitor, the battery efficiency, the low-power consumption power supply voltage threshold, the first capacitor voltage, and the charging power.
[0018] Combined with the first aspect, the steps of calculating the high-power consumption power supply duration according to the current output power, the capacitance of the capacitor, the battery efficiency, the first voltage threshold, the first capacitor voltage, and the charging power include:
[0019] Calculate with the following formula:
[0020]
[0021] Among them, T is the high-power consumption power supply duration, C is the capacitance of the capacitor, U1 is the first capacitor voltage, U2 is the first voltage threshold, P2 is the current output power of the high-power consumption module, P1 is the charging power of the capacitor, and η2 is the charging efficiency of the high-power consumption module.
[0022] Combined with the first aspect, after the step of stopping the high-power consumption power supply after reaching the power supply duration, it further includes:
[0023] Obtain the second capacitor voltage;
[0024] Judge whether the second capacitor voltage is less than or equal to the product of the first voltage threshold and the adjustment coefficient;
[0025] If so, return a prompt message of abnormal non-stick pot.
[0026] Combined with the first aspect, after the step of judging whether the second capacitor voltage is less than the product of the first voltage threshold and the adjustment coefficient, it further includes:
[0027] If not, judge whether the second capacitor voltage is greater than the first voltage threshold;
[0028] If so, conduct the circuit connection between the capacitor and the low-power consumption module;
[0029] If not, continuously charge the capacitor until the capacitor voltage after charging is greater than the first voltage threshold, and then conduct the circuit connection between the capacitor and the low-power consumption module.
[0030] In combination with the first aspect, if the target state represents a high-power supply state, before the step of calculating the high-power supply duration, it further includes:
[0031] Block the circuit connection between the blocking capacitor and the low-power module, and conduct the circuit connection between the capacitor and the high-power module.
[0032] In the second aspect, the present application provides a control device for a non-stick pot. The hot end of the thermocouple is welded to the bottom of the pot body of the non-stick pot. The thermocouple is electrically connected to one end of the capacitor, and the other end of the capacitor is electrically connected to the non-stick pot. After the non-stick pot is heated by an open flame, the potential difference between the hot end and the cold end of the thermocouple is converted and input to the capacitor. The device includes:
[0033] An acquisition module for acquiring the first capacitor voltage in the charging mode of the thermocouple;
[0034] A determination module for determining the target state of the capacitor according to the comparison relationship between the first capacitor voltage and a preset charging threshold;
[0035] A calculation module for calculating the high-power supply duration if the target state represents a high-power supply state;
[0036] A control module for blocking the circuit connection between the capacitor and the high-power module after reaching the supply duration to stop supplying power to the high-power module.
[0037] In the third aspect, the present application provides an electronic device, which includes a memory and a processor. The memory is used to store a computer program, and the processor runs the computer program to enable the electronic device to execute the above method.
[0038] In the fourth aspect, the present application provides a readable storage medium, in which computer program instructions are stored. When the computer program instructions are read and run by a processor, the above method is executed.
[0039] The embodiments of the present invention bring the following beneficial effects: The present application provides a control method, device, electronic device, and storage medium for a non-stick pot. The method is a control method for a non-stick pot. The hot end of the thermocouple is welded to the bottom of the pot body of the non-stick pot. The thermocouple is electrically connected to one end of the capacitor, and the other end of the capacitor is electrically connected to the non-stick pot. After the non-stick pot is heated by an open flame, the potential difference between the hot end and the cold end of the thermocouple is converted and input to the capacitor. The method includes: acquiring the first capacitor voltage in the charging mode of the thermocouple; determining the target state of the capacitor according to the comparison relationship between the first capacitor voltage and a preset charging threshold; calculating the high-power supply duration if the target state represents a high-power supply state; blocking the circuit connection between the capacitor and the high-power module after reaching the supply duration to stop supplying power to the high-power module.
[0040] The unmanned cooker control method provided by this application compares the voltage of the energy storage capacitor with a preset voltage threshold to determine the appropriate state. In the high-power supply state, the high-power supply is stopped in time after reaching the power supply duration, avoiding the difficult achievement of the expected working effect when forced power supply is carried out in the case of insufficient power supply, so as to improve the user experience.
[0041] Other features and advantages of the present invention will be described in the following specification, and partly will be obvious from the specification, or will be understood by implementing the present invention. The objectives and other advantages of the present invention are achieved and obtained by the structures specifically pointed out in the specification, claims and drawings.
[0042] To make the above objectives, features and advantages of the present invention more obvious and understandable, the following specifically enumerates preferred embodiments and, in conjunction with the accompanying drawings, details are described as follows. BRIEF DESCRIPTION OF THE DRAWINGS
[0043] In order to more clearly illustrate the specific embodiments of the present invention or the technical solutions in the prior art, the following will briefly introduce the drawings required for the description of the specific embodiments or the prior art. Obviously, the drawings in the following description are some embodiments of the present invention. For those skilled in the art, without creative efforts, other drawings can also be obtained based on these drawings.
[0044] Figure 1 It is a schematic flowchart of the control method of the unmanned cooker provided by the embodiment of the present invention;
[0045] Figure 2 It is a schematic structural diagram of the control device of the unmanned cooker provided by the embodiment of the present invention;
[0046] Figure 3 It is a schematic structural diagram of the electronic device provided by the embodiment of the present invention;
[0047] Figure 4 It is a schematic structural diagram of the unmanned cooker provided by the embodiment of the present invention.
[0048] Reference numerals:
[0049] 1 - cooker body, 2 - thermocouple, 3 - handle, 4 - control unit, 5 - battery, 6 - cooker stand;
[0050] 10 - acquisition module, 20 - determination module, 30 - calculation module, 40 - control module;
[0051] 130 - processor, 131 - memory, 132 - bus, 133 - communication interface. DETAILED DESCRIPTION OF THE EMBODIMENTS
[0052] To make the objectives, technical solutions, and advantages of the embodiments of the present invention clearer, the technical solutions of the present invention will be clearly and completely described below with reference to the accompanying drawings. Apparently, the described embodiments are some, but not all, of the embodiments of the present invention. All other embodiments obtained by those skilled in the art based on the embodiments of the present invention without creative efforts fall within the scope of protection of the present invention.
[0053] To facilitate the understanding of this embodiment, the application scenario and design concept of the embodiments of the present application will be briefly introduced below.
[0054] In the related art, a thermocouple is added to the bottom of the unmanned pot to generate electric energy by collecting heat and then supply power to the unmanned pot. However, different modules have different power consumption capabilities, and the prior art cannot automatically adjust the power supply mode according to different electric energy generation capabilities.
[0055] Based on this, the embodiments of the present application provide a control method, device, electronic device, and storage medium for an unmanned pot. The method is applied to a control unit in the control system of the unmanned pot. Combining with Figure 4 the shown unmanned pot, the pot body 1 of the unmanned pot is arranged on the pot rack 6, and a thermocouple 2 is arranged at the bottom of the pot body 1. Specifically, the hot end of the thermocouple 2 is welded to the bottom of the pot. Only when an electric potential difference is generated after the unmanned pot is heated by an open flame will electric energy be generated. It can be understood that the higher the temperature of the hot end of the thermocouple 2, the greater the generated electric potential difference and the more electric energy. The generated electric energy is stored in a capacitor, and the circuit connection between the capacitor and one or more low-power consumption modules in the unmanned pot is turned on to supply power to the low-power consumption modules; the circuit connection between the capacitor and the high-power consumption modules is turned on to supply power to the high-power consumption modules. It can be understood that the low-power consumption modules at least include one of a wireless transmission module, a Bluetooth module, a display module, and a touch sensing module; the high-power consumption modules at least include the battery 5 of the unmanned pot. The battery 5 is arranged in the handle 3 of the unmanned pot, and a control unit 4 is also arranged in the handle 3. The control unit 4 is connected to the battery 5 and each low-power consumption module.
[0056] Embodiment 1
[0057] The present application provides a control method for an unmanned pot. Combining with Figure 1 as shown, the method includes:
[0058] S110, obtaining the first capacitor voltage in the thermocouple charging mode.
[0059] S120, determining the target state of the capacitor according to the comparison relationship between the first capacitor voltage and the preset charging threshold.
[0060] S130, if the target state represents a high-power supply state, calculating the high-power supply duration.
[0061] S140. After reaching the power supply duration, disconnect the circuit connection between the capacitor and the high-power consumption module to stop powering the high-power consumption module.
[0062] In this embodiment, by comparing the voltage of the energy storage capacitor with a preset voltage threshold to determine the appropriate state, in the high-power consumption power supply state, after reaching the power supply duration, the high-power consumption power supply is stopped in a timely manner, avoiding the difficulty of achieving the expected working effect when forcibly powering in the case of insufficient power supply, so as to improve the user experience.
[0063] Combined with the first aspect, step S120 includes:
[0064] S121. If U1 < U2, determine that the target state of the capacitor is the capacitor charging state.
[0065] S122. If U2 ≤ U1 < U3, determine that the target state of the capacitor is the low-power consumption power supply state.
[0066] S123. If U1 ≥ U3, determine that the target state of the capacitor is the high-power consumption power supply state.
[0067] Wherein, U1 is the first capacitor voltage, U2 is the first voltage threshold, U3 is the second voltage threshold, and U2 < U3.
[0068] It can be understood that when the first capacitor voltage U1 is less than the first voltage threshold U2, it means that the electric energy converted by collecting heat through the thermocouple 2 is not enough to power the low-power consumption module. At this time, electric energy should continue to be generated and stored.
[0069] When the first capacitor voltage U1 is greater than the first voltage threshold U2, it means that the electric energy converted by collecting heat through the thermocouple 2 is enough to power the low-power consumption module. If the first capacitor voltage U1 is less than or equal to the second voltage threshold U3, it indicates that although it is enough to power the low-power consumption module, it is not enough to power the high-power consumption module; when the first capacitor voltage U1 is greater than the second voltage threshold U3, it means that the current energy storage is enough to power the high-power module.
[0070] Combined with the first aspect, step S130 includes:
[0071] S131. Obtain the charging power in the thermocouple charging mode and the current output power of the high-power consumption module.
[0072] S132. Calculate the high-power consumption power supply duration according to the current output power, the capacitance of the capacitor, the battery efficiency, the first voltage threshold, the first capacitor voltage, and the charging power.
[0073] Combined with the first aspect, step S132 includes:
[0074] Calculate according to the following formula:
[0075]
[0076] Among them, T is the high-power supply duration, C is the capacitance of the capacitor, U1 is the first capacitor voltage, U2 is the first voltage threshold, P2 is the current output power of the high-power module, is the charging power of the capacitor, and η2 is the charging efficiency of the high-power module.
[0077] Specifically, in the high-power supply state, calculate the duration during which the capacitor decreases from the first capacitor voltage to the first voltage threshold due to charging the high-power module, and stop charging the high-power module in a timely manner after reaching this duration. Among them, the capacitance C of the capacitor, the charging power P1 in the thermocouple charging mode, and the charging efficiency η2 of the high-power module are all detected in advance and stored in the control unit of the unmanned cooker.
[0078] Combined with the first aspect, after step S140, it further includes:
[0079] S150, obtain the second capacitor voltage.
[0080] S160, determine whether the second capacitor voltage is less than or equal to the product of the first voltage threshold and the adjustment coefficient;
[0081] If so, execute step S170.
[0082] S170, return a prompt message for the abnormality of the unmanned cooker.
[0083] During the process of the capacitor supplying power to the high-power module, the voltage gradually decreases. After supplying power to the high-power module, the second capacitor voltage obtained again is compared with K×U1, where K < 1; if the second capacitor voltage < K×U1, it indicates an abnormal circuit connection, and at this time, return a prompt message for the abnormality of the unmanned cooker; if the second capacitor voltage ≥ K×U1, continue to obtain the capacitor voltage and compare it with U2 and U3 again to execute the corresponding charging or power supply mode.
[0084] Combined with the first aspect, after step S160, it further includes:
[0085] If not, execute step S171.
[0086] S171, determine whether the second capacitor voltage is greater than the first voltage threshold.
[0087] If so, execute S172; if not, execute step S173.
[0088] S172, conduct the circuit connection between the capacitor and the low-power module.
[0089] S173, continuously charge the capacitor until the charged capacitor voltage is greater than the first voltage threshold, and conduct the circuit connection between the capacitor and the low-power module.
[0090] It is understandable that when the second capacitor voltage ≥ K×U1, the second capacitor voltage continues to be compared with the first voltage threshold. When it is greater than the first voltage threshold, the circuit connection between the capacitor and the low-power module is turned on to supply power to the low-power module.
[0091] Combined with the first aspect, before step S130, it further includes:
[0092] Block the circuit connection between the capacitor and the low-power module, and turn on the circuit connection between the capacitor and the high-power module.
[0093] If it is already in the process of supplying power to the low-power module, continuously monitor the voltage of the capacitor. During this process, the thermocouple 2 continuously absorbs heat and converts it into electrical energy and stores it in the capacitor. When supplying power to the low-power module, the energy storage capacity of the capacitor gradually increases. If the voltage of the capacitor reaches the second voltage threshold for supplying power to the high-power module, stop supplying power to the low-power module and only supply power to the high-power module.
[0094] In the second aspect, the present application provides a control device for a non-stick pot. The hot end of the thermocouple is welded to the bottom of the pot body of the non-stick pot. The thermocouple is electrically connected to one end of the capacitor, and the other end of the capacitor is electrically connected to the non-stick pot. After the non-stick pot is heated by an open flame, the potential difference between the hot end and the cold end of the thermocouple is converted and input into the capacitor. Combined Figure 2 As shown, the device includes: an acquisition module 10, a determination module 20, a calculation module 30, and a control module 40.
[0095] The acquisition module 10 is used to acquire the first capacitor voltage in the thermocouple charging mode;
[0096] The determination module 20 is used to determine the target state of the capacitor according to the comparison relationship between the first capacitor voltage and the preset charging threshold;
[0097] The calculation module 30 is used to calculate the high-power supply duration if the target state represents a high-power supply state;
[0098] The control module 40 is used to block the circuit connection between the capacitor and the high-power module after reaching the supply duration to stop supplying power to the high-power module.
[0099] In the third aspect, an embodiment of the present application provides an electronic device. Combined Figure 3 As shown, the electronic device includes a memory 131 and a processor 130. The memory 131 is used to store a computer program, and the processor 130 runs the computer program to enable the electronic device to execute the above method.
[0100] Furthermore, combined Figure 3The electronic device shown also includes a bus 132 and a communication interface 133. The processor 130, the communication interface 133, and the memory 131 are connected via the bus 132.
[0101] Among them, the memory 131 may include a high-speed random access memory (RAM), and may also include a non-volatile memory, such as at least one disk memory. The communication connection between this system network element and at least one other network element is realized through at least one communication interface 133 (which can be wired or wireless), and the Internet, wide area network, local area network, metropolitan area network, etc. can be used. The bus 132 can be an ISA bus, a PCI bus, an EISA bus, etc. The bus can be divided into an address bus, a data bus, a control bus, etc. For the sake of simplicity of representation, Figure 3 only a single bidirectional arrow is used in the figure, but it does not mean that there is only one bus or one type of bus.
[0102] The processor 130 may be an integrated circuit chip with signal processing capabilities. In the implementation process, the steps of the above method can be completed by the integrated logic circuit in the hardware of the processor 130 or the instructions in software form. The above-mentioned processor 130 can be a general-purpose processor, including a central processing unit (CPU for short), a network processor (NP for short), etc.; it can also be a digital signal processor (DSP for short), an application specific integrated circuit (ASIC for short), a field-programmable gate array (FPGA for short), or other programmable logic devices, discrete gate or transistor logic devices, discrete hardware components. It can implement or execute the various methods, steps, and logic block diagrams disclosed in the embodiments of the present invention. The general-purpose processor can be a microprocessor or the processor can also be any conventional processor, etc. The steps of the method disclosed in combination with the embodiments of the present invention can be directly embodied as being executed and completed by the hardware decoding processor, or executed and completed by the combination of the hardware and software modules in the decoding processor. The software module can be located in a mature storage medium in the art, such as a random access memory, a flash memory, a read-only memory, a programmable read-only memory, or an electrically erasable programmable memory, a register, etc. This storage medium is located in the memory 131, and the processor 130 reads the information in the memory 131 and combines its hardware to complete the steps of the method in the foregoing embodiments.
[0103] Fourthly, an embodiment of the present application provides a readable storage medium. When computer program instructions stored in the readable storage medium are read and run by a processor, the above-mentioned method is executed.
[0104] Those skilled in the art can clearly understand that for the convenience and conciseness of description, the specific working processes of the above-described system and device can refer to the corresponding processes in the foregoing method embodiments, and will not be described herein again.
[0105] In addition, in the description of the embodiments of the present invention, unless otherwise clearly specified and limited, the terms "installation", "connection", and "connection" should be understood in a broad sense. For example, it can be a fixed connection, a detachable connection, or an integral connection; it can be a mechanical connection or an electrical connection; it can be directly connected or indirectly connected through an intermediate medium, and it can be the communication inside two components. For those skilled in the art, the specific meanings of the above terms in the present invention can be understood according to specific situations.
[0106] If the function is implemented in the form of a software functional unit and sold or used as an independent product, it can be stored in a computer-readable storage medium. Based on such an understanding, the technical solution of the present invention, in essence, or the part that contributes to the prior art or a part of the technical solution can be embodied in the form of a software product. The computer software product is stored in a storage medium and includes several instructions for causing a computer device (which can be a personal computer, a server, or a network device, etc.) to execute all or part of the steps of the methods in the various embodiments of the present invention. The foregoing storage medium includes: various media such as USB flash drives, mobile hard disks, read-only memories (ROM, Read-Only Memory), random access memories (RAM, Random Access Memory), magnetic disks, or optical discs that can store program codes.
[0107] In the description of the present invention, it should be noted that the orientation or positional relationship indicated by the terms "center", "upper", "lower", "left", "right", "vertical", "horizontal", "inner", "outer", etc. is based on the orientation or positional relationship shown in the drawings. It is only for the convenience of describing the present invention and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and therefore cannot be understood as a limitation of the present invention. In addition, the terms "first", "second", and "third" are only used for descriptive purposes and cannot be understood as indicating or implying relative importance.
[0108] Finally, it should be noted that the above embodiments are only specific implementation manners of the present invention, used to illustrate the technical solutions of the present invention, rather than limiting it. The protection scope of the present invention is not limited thereto. Although the present invention has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that any person skilled in the technical field can still modify the technical solutions described in the foregoing embodiments, or can easily think of changes, or perform equivalent replacements on some of the technical features; and these modifications, changes or replacements do not make the essence of the corresponding technical solutions deviate from the spirit and scope of the technical solutions of the embodiments of the present invention, and should all be covered within the protection scope of the present invention. Therefore, the protection scope of the present invention should be subject to the protection scope of the claims.
Claims
1. A method for controlling an unmanned pot, characterized in that: The hot end of the thermocouple is welded to the bottom of the pot body of the unmanned pot, the thermocouple is electrically connected to one end of a capacitor, and the other end of the capacitor is electrically connected to the unmanned pot. After the unmanned pot is heated by an open flame, the electric potential generated by the hot end and the cold end of the thermocouple is converted and input into the capacitor; the method comprises: Obtaining a first capacitor voltage in a thermocouple charging mode; Determining a target state of the capacitor according to a comparison relationship between the first capacitor voltage and a preset charging threshold; If the target state is characterized as a high power consumption power supply state, calculating the high power consumption power supply duration; After the power supply time is reached, the connection between the capacitor and the circuit of the high power consumption module is blocked to stop supplying power to the high power consumption module.
2. The method according to claim 1, characterized in that The step of determining a target power supply state according to a comparison relationship between the first capacitor voltage and a preset charging threshold comprises: If U1<U2, it is determined that the target state of the capacitor is the capacitor charging state; If U2≤U1<U3, it is determined that the target state of the capacitor is a low power supply state; If U1≥U3, it is determined that the target state of the capacitor is a high power consumption power supply state; Wherein, U1 is the first capacitor voltage, U2 is the first voltage threshold, U3 is the second voltage threshold, and U2<U3.
3. The method according to claim 1, characterized in that If the target power supply state is a high power consumption power supply state, the step of calculating the high power consumption power supply duration includes: Get the charging power in thermocouple charging mode and the current output power of the high power consumption module; The high power consumption power supply duration is calculated according to the current output power, the capacitance of the capacitor, the battery efficiency, the first voltage threshold, the first capacitor voltage, and the charging power.
4. The method according to claim 3, characterized in that The step of calculating the high power consumption power supply duration according to the current output power, the capacitance of the capacitor, the battery efficiency, the first voltage threshold, the first capacitor voltage, and the charging power includes: Calculate with the following formula: Among them, T is the high power consumption power supply duration, C is the capacitance of the capacitor, U1 is the first capacitor voltage, U2 is the first voltage threshold, P2 is the current output power of the high power consumption module, P1 is the charging power of the capacitor, and η2 is the charging efficiency of the high power consumption module.
5. The method according to claim 1, characterized in that After the step of stopping the high power consumption power supply after the power supply duration is reached, the step further includes: Acquiring a second capacitor voltage; Determining whether the second capacitor voltage is less than or equal to the product of the first voltage threshold and the adjustment coefficient; If so, return a prompt message indicating that the unmanned pot is abnormal.
6. The method according to claim 5, characterized in that After the step of determining whether the second capacitor voltage is less than the product of the first voltage threshold and the adjustment coefficient, the method further includes: If not, determining whether the second capacitor voltage is greater than a first voltage threshold; If so, the on-capacitor is connected to the circuit of the low-power module; If not, the capacitor is continuously charged until the voltage of the charged capacitor is greater than a first voltage threshold, and the capacitor is connected to the circuit of the low power consumption module.
7. The method according to claim 1, characterized in that If the target state is characterized as a high power consumption power supply state, before the step of calculating the high power consumption power supply duration, the method further includes: The circuit connection between the capacitor and the low power consumption module is blocked, and the circuit connection between the capacitor and the high power consumption module is switched on.
8. An unmanned pot control device, characterized in that: The hot end of the thermocouple is welded to the bottom of the pot body of the unmanned pot, the thermocouple is electrically connected to one end of a capacitor, and the other end of the capacitor is electrically connected to the unmanned pot. After the unmanned pot is heated by an open flame, the electric potential generated by the hot end and the cold end of the thermocouple is converted and input into the capacitor; the device comprises: An acquisition module, used for acquiring a first capacitor voltage in a thermocouple charging mode; a determination module, configured to determine a target state of the capacitor according to a comparison relationship between the first capacitor voltage and a preset charging threshold; A calculation module, configured to calculate a high power consumption power supply duration if the target state is characterized as a high power consumption power supply state; The control module is used to block the circuit connection between the capacitor and the high power consumption module after the power supply time is reached, so as to stop supplying power to the high power consumption module.
9. An electronic device, characterized in that: The electronic device comprises a memory and a processor, wherein the memory is used to store a computer program, and the processor runs the computer program to enable the electronic device to perform the method according to any one of claims 1 to 7.
10. A storage medium, characterized in that: The storage medium stores computer program instructions, and when the computer program instructions are read and executed by a processor, the method according to any one of claims 1 to 7 is executed.