Portable gas stove control method, system and apparatus, medium and gas stove

By using an automatic control method for portable gas stoves, the system can automatically adjust the firepower and disconnect the gas supply based on the user-set combustion time and the current usage time calculated by the system. This solves the problem of traditional gas stoves being unable to accurately control cooking time and safety, thus improving user experience and safety.

WO2026040405A1PCT designated stage Publication Date: 2026-02-26IWATANI GAS APPLIANCES (ZHUHAI) CO LTD
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Patent Information

Application Number
PCT/CN2025/085279
Authority / Receiving Office
WO · WO
Patent Type
Applications
Current Assignee / Owner
Priority Date
2024-08-22
Filing Date
2025-03-27
Publication Date
2026-02-26

AI Technical Summary

Technical Problem

Traditional portable gas stoves cannot accurately control cooking time, resulting in inconsistent cooking of food, and they cannot continue heating when the user is briefly away, affecting user experience and safety.

Method used

The system automatically controls the combustion time by allowing the user to set the combustion duration. It calculates the current usage time and alarms when the difference reaches the preset duration. It then adjusts the firepower and disconnects the gas supply when the difference reaches the second preset duration.

Benefits of technology

It improves the safety and user experience of portable gas stoves, ensures accurate food cooking time, and automatically shuts off when the user leaves, preventing gas waste.

✦ Generated by Eureka AI based on patent content.

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Abstract

Disclosed in the present application are a portable gas stove control method, system and apparatus, a storage medium and a gas stove. The method comprises the following steps: in response to a first operation of a user, controlling a portable gas stove to run at an initial heat level and calculating the current use duration of the portable gas stove, the first operation being a user's operation for configuring a combustion duration of the portable gas stove; when a difference between the current use duration and the combustion duration is a second preset duration, controlling an acousto-optic alarm apparatus to give an alarm and detecting whether the user performs the first operation within a first preset duration; when no first operation executed by a user is detected within the first preset duration, controlling the portable gas stove to adjust from the initial heat level to a first heat level, and calculating the running duration of the portable gas stove running at the first heat level; and when the running duration is equal to a difference between the second preset duration and the first preset duration, disconnecting a gas source of the portable gas stove. The present application can be widely applied to the technical field of portable gas stoves.
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Description

Portable gas stove control method, system, device, medium and gas stove TECHNICAL FIELD

[0001] The present application relates to the technical field of portable gas stoves, and in particular to a portable gas stove control method, system, device, medium and gas stove. BACKGROUND

[0002] With the improvement of people's living standards, portable gas stoves have entered thousands of households; in the use process of traditional portable gas stoves, because different food materials have different cooking times, the traditional portable gas stoves can only adjust the cooking time manually, which cannot accurately grasp the raw and cooked food; moreover, in the process of the user's brief absence, the traditional portable gas stove often needs to be extinguished for safety considerations; this also leads to the fact that the gas stove cannot continuously heat, thereby resulting in poor user experience; therefore, there are still technical problems to be solved in the related art. SUMMARY

[0003] The present application aims to at least partly solve one of the technical problems in the prior art;

[0004] To this end, one purpose of the embodiments of the present application is to provide a portable gas stove control method, system, device and storage medium, which can improve the safety of the portable gas stove and improve the user experience.

[0005] In order to achieve the above technical purpose, the technical scheme adopted by the embodiments of the present application comprises: a portable gas stove control method, comprising: in response to a first operation of a user, controlling a portable gas stove to operate at an initial fire power and calculating a current use duration of the portable gas stove; the first operation is an operation of the user configuring a burning duration of the portable gas stove;

[0006] When the difference between the current use duration and the burning duration is a second preset duration, controlling an audible and visual alarm device to alarm and detecting whether the user performs the first operation within a first preset time;

[0007] When the user is not detected to perform the first operation within the first preset time, controlling the portable gas stove to adjust from the initial fire power to a first fire power and calculating a running time of the portable gas stove operating at the first fire power;

[0008] When the running time is equal to the difference between the second preset duration and the first preset time, disconnecting a gas source of the portable gas stove.

[0009] In addition, the portable gas stove control method according to the above embodiments of the present application can also have the following additional technical features:

[0010] Further, in the embodiments of the present application, the method further comprises:

[0011] When it is detected that the user performs the first operation within the first preset time, the portable gas stove is controlled to run at the initial fire power, the burning time is updated, the current use time is adjusted to 0, and the step of calculating the current use time of the portable gas stove is returned.

[0012] Further, in the embodiments of the present application, the first fire power is W1, the initial fire power is W0, and the first fire power and the initial fire power satisfy the relationship: W1=0.5W0.

[0013] Further, in the embodiments of the present application, the burning time is T1, the second preset time is T2, and the burning time and the second preset time satisfy the relationship T2=1 / 6T1, T1≥60min.

[0014] Further, in the embodiments of the present application, the second preset time is T2, and when the burning time is less than 60 minutes, T2=10min.

[0015] Further, in the embodiments of the present application, the burning time is T1, the maximum burning time of the gas cylinder is T max , and T1≤2 / 3T max .

[0016] In another aspect, the embodiments of the present application also provide a portable gas stove control system, comprising:

[0017] An acquisition unit is configured to, in response to a first operation of a user, control a portable gas stove to run at an initial fire power and calculate a current use time of the portable gas stove; the first operation is an operation of the user configuring a burning time of the portable gas stove;

[0018] A first processing unit is configured to, when a difference between the current use time and the burning time is a second preset time, control an audible and visual alarm device to alarm and detect whether the user performs the first operation within a first preset time;

[0019] A second processing unit is configured to, when it is not detected that the user performs the first operation within the first preset time, control the portable gas stove to adjust from the initial fire power to a first fire power and calculate a running time of the portable gas stove running at the first fire power;

[0020] A third processing unit is configured to, when the running time is equal to a difference between the second preset time and the first preset time, disconnect a gas source of the portable gas stove.

[0021] In another aspect, the present application also provides a portable gas stove control device, comprising:

[0022] at least one processor;

[0023] at least one memory for storing at least one program;

[0024] When the at least one program is executed by the at least one processor, the at least one processor implements the portable gas stove control method as any one of the summary.

[0025] In another aspect, the present application also provides a computer readable storage medium, wherein the computer readable storage medium stores processor executable instructions, and the processor executable instructions, when executed by a processor, are used to execute the portable gas stove control method as any one of the above.

[0026] In addition, the present application also provides a portable gas stove comprising the control system as described above or the control device as described above.

[0027] The advantages and beneficial effects of the present application will be partially given in the following description, partially will become obvious from the following description, or will be learned by the practice of the present application:

[0028] The scheme of the present application is to control the portable gas stove to run at an initial fire power in response to a first operation of a user and calculate a current use duration of the portable gas stove; the first operation is an operation of the user configuring a combustion duration of the portable gas stove; when a difference between the current use duration and the combustion duration is a second preset duration, control an audible and visual alarm device to alarm and detect whether the first operation of the user is performed within a first preset time; when it is detected that the first operation of the user is performed within the first preset time, control the portable gas stove to adjust from the initial fire power to a first fire power and calculate a running time of the portable gas stove running at the first fire power; when the running time is equal to a difference between the second preset duration and the first preset time, cut off a gas source of the portable gas stove; the above scheme of the present application can control the portable gas stove and cut off the gas in time, can improve the safety of the portable gas stove, and can improve the user experience. BRIEF DESCRIPTION OF DRAWINGS

[0029] Fig. 1 is a step schematic diagram of a portable gas stove control method in an embodiment of the present application;

[0030] Fig. 2 is a circuit structure schematic diagram of a power supply module in an embodiment of the present application;

[0031] Fig. 3 is a circuit structure schematic diagram of an audible alarm unit in an embodiment of the present application;

[0032] Fig. 4 is a circuit structure schematic diagram of a gas source cut-off module in an embodiment of the present application;

[0033] Fig. 5 is a schematic diagram of the circuit connection between the control module and the visual alarm unit in an embodiment of the present application;

[0034] Fig. 6 is a schematic diagram of the pin of the display module in an embodiment of the present application;

[0035] Fig. 7 is a schematic diagram of the structure of the portable gas stove control system in an embodiment of the present application;

[0036] Fig. 8 is a schematic diagram of the structure of the portable gas stove control device in an embodiment of the present application. DETAILED DESCRIPTION

[0037] The principles and processes of the portable gas stove control method, system, device and storage medium in the embodiments of the present application will be described in detail below with reference to the accompanying drawings.

[0038] Referring to Fig. 1, the present application provides a portable gas stove control method. The method can include but is not limited to steps S101-S104.

[0039] S101, in response to a first operation of a user, controlling the portable gas stove to operate at an initial fire power and calculating a current use duration of the portable gas stove. The first operation is an operation of the user configuring the combustion duration of the portable gas stove.

[0040] It can be understood that the first operation of the user can be an operation of setting the combustion duration of the portable gas stove. The combustion duration can be the combustion duration of the portable gas stove that the user wants to set. The current use duration can be the running duration of the portable gas stove operating at the initial fire power calculated after the first operation of the user is performed.

[0041] S102, when the difference between the current use duration and the combustion duration is a second preset duration, controlling the audible and visual alarm device to alarm and detecting whether the user performs the first operation within a first preset time.

[0042] It can be understood that the second preset duration can be the difference between the current use duration and the combustion duration set by the user, which can be a threshold value of any duration.

[0043] S103, when the first operation of the user within the first preset time is not detected, controlling the portable gas stove to adjust from the initial fire power to a first fire power and calculating the running time of the portable gas stove operating at the first fire power.

[0044] It can be understood that the first fire power can be smaller than the initial fire power, and adjusting the fire power to be smaller can prolong the cooking time of the portable gas stove and avoid dry burning of food. The size of the fire power of the portable gas stove can be determined by testing the heat load value, observing the flame shape, measuring the flame temperature, or thermal imaging detection.

[0045] S104, when the running time is equal to the difference between the second preset time length and the first preset time, disconnecting the gas source of the portable gas stove.

[0046] It can be understood that the running time can be the time when the portable gas stove is cooking food or working with the first fire power. The first preset time can be the time interval required for the user to decide whether to perform the first operation after the audible and light alarm device alarms.

[0047] In some possible embodiments of the present application, the processor calculates that the running time is equal to the difference between the second preset time length and the first preset time, and the processor can disconnect the gas source of the portable gas stove, and the portable gas stove is turned off.

[0048] Specifically, the burning time can be 2 hours, the second preset time length can be 20 minutes, the first preset time can be 5 minutes, and the first fire power can be half of the initial fire power. In response to the operation of the user configuring the burning time of the portable gas stove to be 2 hours, the processor can control the portable gas stove to operate at the initial fire power and start calculating the current use time of the portable gas stove from 0. After operating at the initial fire power for a period of time, when the difference between the current use time and the preset 2 hours is 20 minutes, that is, when the user configures the 2-hour burning time left 20 minutes, the processor can control the audible and light alarm device to alarm and detect whether the user is configuring the burning time of the portable gas stove within the first preset time. Whether the configured signal is confirmed can be determined by whether the corresponding key signal is detected. When it is detected that the user does not configure the burning time of the portable gas stove within the first preset time, the processor can control the portable gas stove to adjust from the initial fire power to the first fire power which is only half of the initial fire power, and start calculating the running time of the portable gas stove operating at the first fire power. When the running time of the portable gas stove operating at the fire power which is half of the initial fire power is equal to the difference of 15 minutes between 20 minutes and 5 minutes, the controller can disconnect the gas source of the portable gas stove.

[0049] Further, the control method further comprises step S105.

[0050] S105, when it is detected that the user performs the first operation within the first preset time, controlling the portable gas stove to operate at the initial fire power, updating the burning time, adjusting the current use time to 0, and returning to the step of calculating the current use time of the portable gas stove.

[0051] In some possible embodiments of the present application, when the processor detects that the user performs the first operation within the first preset time, the processor can control the portable gas stove to keep running at the initial fire power, update the burning time length to the time length after the first operation within the first preset time, adjust the current use time length to 0 and return to the step of calculating the current use time length of the portable gas stove, recalculate the difference between the current use time length and the burning time length, and after the recalculation, when the difference between the current use time length and the burning time length is the second preset time length, control the audible and visual alarm device to alarm and detect whether the user performs the first operation within the first preset time. When it is detected that the user does not perform the first operation within the first preset time, the portable gas stove is controlled to adjust from the initial fire power to the first fire power and calculate the running time of the portable gas stove running at the first fire power. When the running time is equal to the difference between the second preset time length and the first preset time, the gas source of the portable gas stove is disconnected.

[0052] Further, in some possible embodiments of the present application, the first fire power is W1, the initial fire power is W0, and the first fire power and the initial fire power satisfy the relationship W1=0.5W0. Adjusting the fire power to half can slow down the evaporation of water in food to avoid dry burning, and at the same time, the user can have more time to judge whether it is necessary to reset the time. Specifically, the size of the fire power of the portable gas stove can be determined and quantified by methods such as testing the thermal load value, observing the flame shape, measuring the flame temperature, or thermal imaging detection.

[0053] Further, in some possible embodiments of the present application, the burning time length is T1, the second preset time length is T2, and the burning time length and the second preset time length satisfy the relationship T2=1 / 6T1, T1≥60min.

[0054] Further, in some possible embodiments of the present application, the second preset time length is T2, and when the burning time length is less than 60 minutes, T2=10min.

[0055] Specifically, when the user sets the burning time length T1 to be greater than or equal to 60 minutes, the second preset time length can be set to 1 / 6 of the burning time length, that is, the second preset time length is 1 / 6T1 time before the alarm device alarms, which can avoid the automatic gas disconnection of the gas stove in a short time later. When the user sets the burning time length T1 to be less than 60 minutes, the second preset time can be 10 minutes. It can be understood that the burning time length T1 of the present application needs to be greater than 10 minutes.

[0056] Further, in some possible embodiments of the present application, the burning time length is T1, the maximum burning time length of the gas cylinder is T max , and T1≤2 / 3T max . Specifically, the set burning time length is T1 each time, and the maximum burning time length of the gas cylinder is Tmax The combustion time of each setting can be less than or equal to two-thirds of the maximum combustion time T of the gas cylinder. max

[0057] The specific implementation principles of the present application will be described below in conjunction with the accompanying drawings:

[0058] First, the device for implementing the method described in the embodiment can include a power supply module, a control module, an alarm module, a display module, and a gas source cutoff module. The control module can be a single-chip microcomputer. Referring to FIGS. 2-6, the control module is IC1, the output terminals of which are all connected to one end of the pull-up resistor R29, and the other end of the pull-up resistor R29 is connected to the 5V power supply of VCC. The display module can be a digital tube LED1, and the DIG1 pin, the DIG2 pin, the DIG3 pin, the DIG4 pin, the DIG5 pin, the A pin, the B pin, the C pin, the D pin, the E pin, the F pin, and the G pin of LED1 are all connected to the output terminals of IC. The power supply module can output the 3.3V voltage required by the control module. The user can adjust the combustion time of the gas stove through K1 and K2 signals, and the display module LED1 can display the difference between the current use time and the combustion time. When the method of the embodiment is first executed, LED1 can display the combustion time, and then count down from the combustion time step by step. When the difference between the current use time and the combustion time reaches a threshold value, the control module can control the alarm module to alarm, and at the same time detect whether the user performs the operation of configuring the combustion time of the portable gas stove within a preset time. When the first operation of the user within the first preset time is not detected, the control module can control the gas source cutoff module to control the gas flow of the portable gas stove, so as to adjust the portable gas stove from the initial firepower to the first firepower. At the same time, the control module can calculate the running time of the portable gas stove running at the first firepower, and when the running time is equal to the difference between the second preset time and the first preset time, the controller can disconnect the gas source of the portable gas stove through the gas source cutoff module.

[0059] ​In FIG. 2, the power supply module can output 3.3V, and can include a 3V power supply, a switch K3, a 5V power supply of VCC, a first inductor L1, a third chip IC3, a third capacitor C3, a fifth capacitor C5, a sixth capacitor C6, a seventh capacitor C7, a fifth diode D5, and a twenty-eighth resistor R28. One end of the switch is connected to the 3V capacitor, and the other end of the switch K3, one end of the fifth capacitor C5, one end of the sixth capacitor C6, and one end of the first inductor L1 are connected to the 5V power supply of VCC. The other end of the first inductor L1 and the input end of the third chip IC3 are connected to the anode of the fifth diode D5. The cathode of the fifth diode D5, the output end of the third chip IC3, one end of the seventh capacitor C7, one end of the third capacitor C3, and one end of the twenty-eighth resistor R28 are connected, and one end of the twenty-eighth resistor R28 serves as the output end of the power supply module. The fifth capacitor C5, the sixth capacitor C6, the ground end of the third chip IC3, the other end of the seventh capacitor C7, the other end of the third capacitor C3, and the other end of the twenty-eighth resistor R28 are grounded.

[0060] In FIG. 3 and FIG. 5, the alarm module can include a sound alarm unit and a visual alarm unit. The visual alarm unit includes a light-emitting diode LED2 and a current-limiting resistor R2. The anode of the light-emitting diode LED2 is connected to one end of the current-limiting resistor R2, the other end of the current-limiting resistor R2 is connected to the 5V power supply of VCC, and the cathode of the light-emitting diode LED2 is connected to any one output end of the control module IC1. When the output end connected to the cathode of the light-emitting diode LED2 in the control module IC1 is at a low level, the light-emitting diode LED2 can be lit.

[0061] The sound alarm unit can include a first transistor Q1, a buzzer BUZ1, a fifth resistor R5, and a sixth resistor R6. One end of the fifth resistor R5 and one end of the sixth resistor R6 are connected in parallel, and the parallel connection is connected to any one output end of the control module IC1. The other end of the sixth resistor R6 is connected to the base of the first transistor Q1, the other end of the fifth resistor R5 and the emitter of the first transistor Q1 are grounded, the collector of the first transistor Q1 is connected to one end of the buzzer BUZ1, and the other end of the buzzer BUZ1 is connected to the 5V power supply of VCC.

[0062] Referring to FIG. 4, the gas source cutoff module can include a seventeenth resistor R17, a fourth triode Q4, a first diode D1, a twenty-second resistor R22, a twenty-first resistor R21 and a second inductor L2. When the gas source cutoff module is working, a magnetic field generated by the second inductor L2 affects the attraction of the igniter of the portable gas stove, so as to turn off the gas supply function of the gas cylinder. One end of the seventeenth resistor R17 is connected with an output end of the control module IC1, which is different from the output end connected with the LED1 and the output end connected with the sound alarm unit. The other end of the seventeenth resistor R17 is connected with the base of the fourth triode Q4, and the emitter of the fourth triode Q4 is connected with the 5V power supply of VCC. One end of the twenty-first resistor R21, the anode of the first diode D1 and the collector of the fourth triode Q4 are connected, and the cathode of the first diode D1 is connected with the 5V power supply of VCC. The other end of the twenty-first resistor R21 and the other end of the twenty-second resistor R22 are grounded.

[0063] In addition, referring to FIG. 7, corresponding to the method of FIG. 1, the embodiment of the present application also provides a portable gas stove control system. The system can include an acquisition unit 1001, a first processing unit 1002, a second processing unit 1003 and a third processing unit 1004. The acquisition unit 1001 can be used to control the portable gas stove to operate at an initial fire power and calculate the current use time length of the portable gas stove in response to a first operation of a user. The first operation is an operation of the user configuring the combustion time length of the portable gas stove. The first processing unit 1002 can be used to control the sound and light alarm device to alarm and detect whether the user performs the first operation within a first preset time when the difference between the current use time length and the combustion time length is a second preset time length. The second processing unit 1003 can be used to control the portable gas stove to adjust from the initial fire power to a first fire power and calculate the operation time of the portable gas stove operating at the first fire power when it is detected that the user does not perform the first operation within the first preset time. The third processing unit 1004 can be used to disconnect the gas source of the portable gas stove when the operation time is equal to the difference between the second preset time length and the first preset time.

[0064] It should be noted that the acquisition unit can be any one integrated circuit unit or microprocessor unit obtained by integrating a chip with processing function and its peripheral circuit through existing integrated technology. The first processing unit and the second processing unit can also be any one integrated circuit module or microprocessor module obtained by integrating a chip with processing function and its peripheral circuit through existing integrated technology. The first processing unit and the second processing unit can further include one or more memories. The one or more memories can be used to store the specific algorithm for compression adjustment processing in the present application.

[0065] It should be noted that the contents of the portable gas stove control method embodiments described above are applicable to the portable gas stove control system embodiments, the portable gas stove control system embodiments specifically implement the same functions as the portable gas stove control method embodiments described above, and achieve the same beneficial effects as the portable gas stove control method embodiments described above.

[0066] Corresponding to the method of Figure 1, the embodiments of the application also provide a portable gas stove control device, the specific structure of which can refer to Figure 8, comprising:

[0067] At least one processor 1011.

[0068] At least one memory 1012 for storing at least one program.

[0069] When the at least one program is executed by the at least one processor, the at least one processor implements the portable gas stove control method.

[0070] The contents of the above method embodiments are applicable to the device embodiments, the device embodiments specifically implement the same functions as the above method embodiments, and achieve the same beneficial effects as the above method embodiments.

[0071] Corresponding to the method of Figure 1, the embodiments of the application also provide a computer readable storage medium, wherein the processor executable instructions are stored, the processor executable instructions are used to execute the portable gas stove control method when executed by the processor.

[0072] The contents of the above portable gas stove control method embodiments are applicable to the storage medium embodiments, the storage medium embodiments specifically implement the same functions as the above portable gas stove control method embodiments, and achieve the same beneficial effects as the above portable gas stove control method embodiments.

[0073] In addition, the application also provides a portable gas stove, which can include the portable gas stove control device described above or the portable gas stove control system described above.

[0074] In some alternative embodiments, the function / operations mentioned in the block diagrams can not occur in the order mentioned in the operational illustrations. For example, depending on the involved function / operation, two blocks shown in succession can in fact be executed substantially concurrently or the blocks can sometimes be executed in reverse order, depending upon the functionality / operations involved. Further, embodiments presented and described in the flowcharts are only examples of implementations. The processes presented and described as examples can be implemented in hardware, software, or both hardware and software without deviating from the scope of the application. The various operations of methods described herein can be performed by any suitable means capable of performing the corresponding functions without deviating from the scope of the application. The various embodiments disclosed herein can be implemented in a variety of ways, including as a method, as a system, as a device, as a computer program product (including a non-transitory computer readable medium having program code stored thereon), or as any suitable combination of the foregoing.

[0075] Further, while the present application has been described in the context of functional modules, it is to be understood that one or more of the functions and / or features can be integrated in a single physical device and / or software module, or one or more functions and / or features can be implemented in separate physical devices or software modules. It is also to be understood that detailed discussion of the actual implementation of each module is unnecessary to an understanding of the present application. Rather, the actual implementation is within the routine skill of engineers familiar with the attributes, functions, and internal relationships of the various functional modules disclosed herein. Accordingly, the present application is not limited to the embodiments illustrated in the figures. Also, it is to be understood that the disclosed specific concepts are merely illustrative and are not intended to limit the scope of the present application, which is defined by the appended claims and their equivalents.

[0076] If the functions are implemented in the form of software function units and sold or used as independent products, they can be stored in a computer readable storage medium. Based on such understanding, the technical solutions of the present application can be embodied in the form of a software product, and the computer software product is stored in a storage medium, and includes a plurality of programs 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 described in the various embodiments of the present application. The aforementioned storage medium includes: a U disk, a mobile hard disk, a read-only memory (ROM, Read-Only Memory), a random access memory (RAM, Random Access Memory), a magnetic disk or an optical disk, and various media that can store program codes.

[0077] The logic and / or steps represented in the flow diagrams or otherwise described herein, for example, can be embodied in non-transitory computer- readable media, executed by a program executing system, apparatus, or device, such as a computer-based system, a processor-based system, or other system that can fetch the program (from the system, apparatus, or device) and execute the program, or in conjunction with such a program executing system, apparatus, or device. For the purposes of this specification, a "computer-readable medium" can be any apparatus that can contain, store, communicate, propagate, or transport the program for use by or in connection with the program executing system, apparatus, or device.

[0078] More specific examples (a non-exhaustive list) of the computer-readable medium include the following: an electrical connection (electronic) having one or more wires, a portable computer diskette (magnetic), a random access memory (RAM), a read-only memory (ROM), an erasable programmable read-only memory (EPROM or Flash memory), an optical fiber, and a portable compact disc read-only memory (CDROM). Additionally, the computer-readable medium can also be paper or another suitable medium upon which the program is printed, as the program can be electronically captured, for example, via optical scanning of the paper or other medium, then compiled, interpreted, or otherwise processed in a suitable manner, if necessary, and stored in a computer memory.

[0079] It should be understood that aspects of the present application can be implemented in hardware, software, firmware or combinations thereof. In the above described embodiments, multiple steps or methods can be implemented in software or firmware stored in a memory and executed by a suitable program executing system. For example, if implemented in hardware, and as in another embodiment, any of the following technologies known in the art, or combinations thereof, can be used: discrete logic circuitry having logic gates for implementing logic functions upon an application of data signals, application specific integrated circuits having appropriate combinational logic gates, programmable gate arrays (PGA), field programmable gate arrays (FPGA), and the like.

[0080] In the above description of the present specification, reference has been made to descriptive terms such as "one embodiment / expression", "another embodiment / expression", or "some embodiments / expressions" etc. It is understood that such terms are merely descriptive and do not necessarily refer to the same embodiment / expression or example. Furthermore, the described specific features, structures, materials or characteristics can be combined in any suitable manner in one or more embodiments / expressions.

[0081] While the embodiments of the application have been shown and described, it is to be understood that the embodiments can be varied, modified, substituted and changed by those skilled in the art without departing from the principles and spirit of the application, the scope of which is defined by the claims and their equivalents.

[0082] The above is a specific description of the preferred embodiments of the application, but the application is not limited to the described embodiments, and those skilled in the art can make various equivalent modifications or substitutions without departing from the spirit of the application, and these equivalent modifications or substitutions are all included in the scope defined by the claims of the application.

Claims

1. A method of controlling a portable gas burner, characterized in that, The method comprises the following steps: In response to a first operation of a user, a portable gas stove is controlled to operate at an initial fire power and a current use duration of the portable gas stove is calculated; the first operation is an operation of the user configuring a burning duration of the portable gas stove; When a difference between the current use duration and the burning duration is a second preset duration, an audible and visual alarm device is controlled to alarm and it is detected whether the first operation of the user is performed within a first preset time; When the first operation of the user within the first preset time is not detected, the portable gas stove is controlled to adjust from the initial fire power to a first fire power and a running time of the portable gas stove operating at the first fire power is calculated; the first fire power is less than the initial fire power; When the running time is equal to a difference between the second preset duration and the first preset time, a gas source of the portable gas stove is disconnected; When the first operation of the user within the first preset time is detected, the portable gas stove is controlled to keep operating at the initial fire power, the burning duration is updated, the current use duration is adjusted to 0 and the step of calculating the current use duration of the portable gas stove is returned.

2. The portable gas burner control method according to claim 1, characterized in that, The first fire power is W1, the initial fire power is W0, the first fire power and the initial fire power satisfy a relationship: W1=0.5W0.

3. The portable gas burner control method of claim 1, wherein The burning duration is T1, the second preset duration is T2, the burning duration and the second preset duration satisfy a relationship T2=1 / 6T1, T1≥60min.

4. The method of claim 3, wherein The second preset duration is T2, when the burning duration is less than 60 minutes, T2=10min.

5. The portable gas burner control method of claim 1, wherein The combustion duration is T1, and the maximum combustion duration of the gas cylinder is T max ; wherein T1≤2 / 3T max .

6. A portable gas burner control system characterized by, The method comprises the following steps: An acquisition unit is configured to control a portable gas stove to operate at an initial fire power and calculate a current use duration of the portable gas stove in response to a first operation of a user; The first operation is an operation of the user configuring a burning duration of the portable gas stove; A first processing unit is configured to control an audible and visual alarm device to alarm and detect whether the first operation of the user is performed within a first preset time when a difference between the current use duration and the burning duration is a second preset duration; A second processing unit is configured to control the portable gas stove to adjust from the initial fire power to a first fire power and calculate a running time of the portable gas stove operating at the first fire power when the first operation of the user within the first preset time is not detected; the first fire power is less than the initial fire power; A third processing unit is configured to disconnect a gas source of the portable gas stove when the running time is equal to a difference between the second preset duration and the first preset time; or control the portable gas stove to keep operating at the initial fire power, update the burning duration, adjust the current use duration to 0 and return to the step of calculating the current use duration of the portable gas stove when the first operation of the user within the first preset time is detected.

7. A portable gas burner control device, characterized in that The method comprises the following steps: At least one processor; At least one memory configured to store at least one program; When the at least one program is executed by the at least one processor, the at least one processor is caused to implement the portable gas stove control method according to any one of claims 1-5.

8. A computer-readable storage medium having stored therein instructions that are executable by a processor, the instructions comprising: The instructions executable by the processor, when executed by the processor, function to perform the portable gas burner control method of any one of claims 1-5.

9. A portable gas burner, characterized in that The portable gas burner control system of claim 6 or the portable gas burner control apparatus of claim 7.

Citation Information

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