Gas stove panel and control method, device and storage medium thereof

By using the corresponding relationship between the preset load variable and the temperature of the gas stove panel, the temperature at any position of the panel is calculated using the functional relationship, the problem of the inability to monitor the panel temperature in real time in the prior art is solved, and the safety and product development efficiency are improved.

CN115523515BActive Publication Date: 2025-08-12NINGBO FOTILE KITCHEN WARE CO LTD
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Patent Information

Application Number
CN202211178118.4
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2022-09-22
Publication Date
2025-08-12
Estimated Expiration
2042-09-22

AI Technical Summary

Technical Problem

The existing technology cannot monitor the temperature at any position of the tempered panel of the gas stove in real time, resulting in the inability to predict the risk of panel bursting in time. The existing solution can only detect the temperature near the burner, which has poor results.

Method used

By setting the correspondence between the preset load variable and the temperature of the gas stove panel, obtain the panel material and real-time firepower, use the functional relationship to calculate the temperature data at any position of the panel, and issue an early warning command when the threshold is exceeded, adjust the firepower or take cooling measures.

Benefits of technology

Real-time monitoring of the temperature at any position of the panel is achieved, reducing hardware equipment investment, improving product development efficiency and quality, and reducing the risk of panel bursting.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present disclosure provides a gas stove panel and its control method, device, and storage medium. The control method includes the following steps: presetting a correspondence between a load variable and the temperature of the gas stove panel; the load variable includes the gas stove power level, and the correspondence stores temperature data for any position on the surface of the panel made of different materials under the influence of different power levels; obtaining the current gas stove panel material and real-time power level, matching the correspondence, and obtaining temperature data for any position on the surface of the gas stove panel under the real-time power level; and issuing a warning instruction when the temperature data exceeds a preset threshold. The present disclosure eliminates the need to install a separate temperature detection module to detect the temperature of each panel node during panel manufacturing. Instead, the theoretical maximum panel node temperature is obtained through theoretical calculation, eliminating the need for actual detection points and reducing hardware investment.
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Description

Technical Field

[0001] The present disclosure relates to the technical field of gas stoves, and in particular to a gas stove panel and a control method, device, and storage medium thereof. Background Art

[0002] Tempered glass is currently the mainstream material for gas stove panels, but tempered glass has a 0.3% chance of self-explosion. In addition, the operating environment of gas stoves is harsh. Compared with other kitchen appliances, due to the effect of flame heat, the temperature and thermal stress of the tempered panel become higher, resulting in an increased probability of thermal explosion and mechanical cracking. From the perspective of safety and market maintenance rate, it is necessary to find ways to reduce the temperature of the tempered panel during use.

[0003] In the prior art, different methods for preventing gas stove panels from cracking are employed at different manufacturing stages. During the manufacturing stage, existing measures to prevent tempered panels from cracking due to excessive temperatures all rely on multiple proofing experiments to determine their feasibility. However, this method requires a long proofing time span and is often not successful on the first try, hindering the rapid launch of new products and the rapid resolution of market quality issues. During the use stage, a commonly used solution is to install a temperature sensor on the gas stove panel and connect it to the gas valve of the gas stove via a controller. When the temperature sensor detects that the temperature of the gas stove panel is higher than a pre-set threshold, the controller controls the gas valve to close, causing the gas stove to stop heating. However, panel thermal explosions usually occur suddenly, and the temperature sensor is often located near the burner. This solution can only detect the temperature near the corresponding burner on the gas stove panel, resulting in limited effectiveness and not covering the entire panel. If the temperature of other nodes on the panel is too high, it is often not reflected in a timely manner.

[0004] Public content

[0005] The technical problem to be solved by the present disclosure is to overcome the defect in the prior art that the temperature of any position of the gas stove tempered panel cannot be monitored in real time when the panel is working so as to predict the risk of panel explosion, and to provide a gas stove panel and its control method, device and storage medium.

[0006] The present disclosure solves the above technical problems through the following technical solutions:

[0007] In a first aspect, a method for controlling a gas stove panel is provided, the method comprising the following steps:

[0008] A correspondence between a preset load variable and the temperature of a gas stove panel; the load variable includes the fire power of the gas stove, and the correspondence stores temperature data at any position on the surface of panels of different materials under the influence of different fire powers;

[0009] Obtaining the panel material and real-time firepower of the current gas stove, and matching the corresponding relationship to obtain temperature data of any position on the surface of the panel of the current gas stove under the real-time firepower;

[0010] When the temperature data is greater than a preset threshold, an early warning instruction is issued.

[0011] Preferably, the load variable also includes ambient temperature;

[0012] The corresponding relationship also stores temperature data at any position on the surface of panels made of different materials under the influence of different ambient temperatures;

[0013] Before the step of obtaining the panel material and real-time fire power of the current gas stove, the following steps are also included:

[0014] Get the real-time ambient temperature of the gas stove;

[0015] The step of matching the corresponding relationship to obtain temperature data of any position on the surface of the panel of the current gas stove under real-time firepower specifically includes:

[0016] The corresponding relationship is matched according to the real-time ambient temperature, the panel material and the real-time firepower, so as to obtain temperature data of any position on the surface of the panel of the current gas stove under the real-time ambient temperature and the real-time firepower.

[0017] Preferably, the corresponding relationship also stores temperature data of any position on the surface of panels of different materials at any firepower level and different maintenance time;

[0018] Before the step of obtaining the panel material and real-time fire power of the current gas stove, the following steps are also included:

[0019] Get the current maintenance time of the gas stove at the current real-time fire power;

[0020] The step of matching the corresponding relationship to obtain temperature data of any position on the surface of the panel of the current gas stove under real-time firepower specifically includes:

[0021] According to the corresponding relationship among the current maintenance time, the panel material and the real-time firepower, temperature data of any position on the surface of the panel of the current gas stove under the current maintenance time and the real-time firepower is obtained.

[0022] Preferably, the correspondence between the preset load variable and the gas stove panel temperature specifically includes the following steps:

[0023] Preset multiple nodes on any panel and set temperature sensors at all the nodes;

[0024] By changing the value of the firepower, the detected temperature data at any position of the panel of different materials under the working state is obtained;

[0025] The corresponding relationship between the fire power and the temperature of the gas stove panel is determined according to the detected temperature data.

[0026] Preferably, the panel is made of tempered glass;

[0027] Alternatively, the panel is made of a combination of tempered glass and at least one material, wherein the material includes tempered glass, explosion-proof mesh, and metal sheet.

[0028] Preferably, after issuing the warning instruction, the method further includes the following steps:

[0029] generating a temperature control instruction according to a difference between a maximum value in the temperature data and the preset threshold value;

[0030] The fire power of the gas stove is adjusted based on the temperature control instruction.

[0031] Preferably, the step of obtaining the panel material and real-time fire power of the current gas stove further includes the following steps:

[0032] The area range of the arbitrary position is determined according to the position of the stove head of the gas stove.

[0033] In a second aspect, a control device for a gas stove panel is provided, the control device comprising:

[0034] A relationship preset module is used to preset a corresponding relationship between a load variable and the temperature of a gas stove panel; the load variable includes the fire power of the gas stove, and the corresponding relationship stores temperature data at any position on the surface of the panel of different materials under the influence of different fire powers;

[0035] A data acquisition module is used to obtain the panel material and real-time fire power of the current gas stove, and match the corresponding relationship to obtain temperature data of any position on the surface of the panel of the current gas stove under the real-time fire power;

[0036] The early warning module is used to issue an early warning instruction when the temperature data is greater than a preset threshold.

[0037] Preferably, the load variable also includes ambient temperature;

[0038] The corresponding relationship also stores temperature data at any position on the surface of panels made of different materials under the influence of different ambient temperatures;

[0039] The control device further comprises:

[0040] Temperature acquisition module, used to obtain the real-time ambient temperature of the gas stove;

[0041] The data acquisition module is also used to match the corresponding relationship according to the real-time ambient temperature, the panel material and the real-time firepower, and obtain temperature data at any position on the surface of the panel of the current gas stove under the real-time ambient temperature and the real-time firepower.

[0042] Preferably, the corresponding relationship also stores temperature data of any position on the surface of panels of different materials at any firepower level and different maintenance time;

[0043] The control device further comprises:

[0044] The time acquisition module is used to obtain the current maintenance time of the gas stove at the current real-time fire power level;

[0045] The data acquisition module is also used to match the corresponding relationship according to the current maintenance time, the panel material and the real-time firepower, and obtain the temperature data of any position on the surface of the panel of the current gas stove under the current maintenance time and the real-time firepower.

[0046] Preferably, the relationship preset module includes the following:

[0047] A node preset unit, used to preset multiple nodes on any panel and set temperature sensors at all the nodes;

[0048] A firepower adjustment unit, used to obtain the detected temperature data of any position of the panel under the working state of different materials by changing the value of the firepower;

[0049] The relationship determination unit is used to determine the corresponding relationship between the fire power and the temperature of the gas stove panel according to the detected temperature data.

[0050] Preferably, the panel is made of tempered glass;

[0051] Alternatively, the panel is made of a combination of tempered glass and at least one material, wherein the material includes tempered glass, explosion-proof mesh, and metal sheet.

[0052] Preferably, the control device further includes the following:

[0053] A control instruction module, configured to generate a temperature control instruction according to a difference between a maximum value in the temperature data and the preset threshold value;

[0054] The firepower adjustment module is used to adjust the firepower of the gas stove based on the temperature control instruction.

[0055] Preferably, the data acquisition module further includes the following:

[0056] The range determination unit is used to determine the area range of the arbitrary position according to the position of the stove head of the gas stove.

[0057] In a third aspect, a gas stove panel is provided, comprising a memory, a processor, and a computer program stored in the memory and executable on the processor, wherein the processor implements any one of the above control methods when executing the computer program.

[0058] In a fourth aspect, a computer-readable storage medium is provided, on which a computer program is stored, and when the computer program is executed by a processor, any one of the control methods described above is implemented.

[0059] The positive progress effect of the present disclosure is that: during use, by presetting the correspondence between the load variable and the temperature of the gas stove panel, it is only necessary to actually detect the firepower size to realize real-time acquisition of the temperature of any position of the panel, and issue a command warning when the panel temperature exceeds the threshold. Based on the above method, there is no need to install a separate temperature detection module to perform temperature detection on each node of the panel during the manufacturing process of the panel. The theoretical maximum node temperature of the panel is obtained through theoretical calculation, and there is no actual detection point, which reduces the investment in hardware equipment. In addition, the temperature data relationship between panels of different materials under different conditions obtained by experimental measurement during the design of the reference control method can be used in the product development stage to guide the structural design of the panel, reduce the proofing time and the number of proofing times, and improve the efficiency and quality of product development. BRIEF DESCRIPTION OF THE DRAWINGS

[0060] Figure 1 This is a flow chart of a method for controlling a gas stove panel provided in Example 1 of the present disclosure.

[0061] Figure 2 This is a schematic diagram of a specific flow chart of step 100 of a method for controlling a gas stove panel provided in Example 1 of the present disclosure.

[0062] Figure 3 This is a module schematic diagram of a control device for a gas stove panel provided in Example 2 of the present disclosure.

[0063] Figure 4 A schematic diagram of a module of another gas stove panel control device provided in Example 2 of the present disclosure.

[0064] Figure 5 This is a module schematic diagram of an electronic device in a gas stove panel provided in Example 3 of the present disclosure. DETAILED DESCRIPTION

[0065] The present disclosure is further illustrated below by way of examples, but the present disclosure is not limited to the scope of the examples.

[0066] Example 1

[0067] This embodiment provides a method for controlling a gas stove panel. Figure 1 As shown, the control method includes the following steps:

[0068] Step 100: Preset a corresponding relationship between a load variable and the temperature of a gas stove panel; the load variable includes the fire power of the gas stove, and the corresponding relationship stores temperature data at any position on the surface of the panel of different materials under the influence of different fire powers;

[0069] Step 101: obtaining the panel material and real-time firepower of the current gas stove, matching the corresponding relationship, and obtaining temperature data of any position on the surface of the panel of the current gas stove under the real-time firepower;

[0070] Step 102: When the temperature data is greater than a preset threshold, an early warning instruction is issued.

[0071] In an optional embodiment, as Figure 2 As shown, step 100 specifically includes the following steps:

[0072] Step 1000: Preset multiple nodes on any panel and set temperature sensors at all the nodes;

[0073] Step 1001: By changing the value of the fire power, the detected temperature data of any position of the panel of different materials under the working state is obtained;

[0074] Step 1002: Determine the corresponding relationship between the fire power and the gas stove panel temperature according to the detected temperature data.

[0075] In an optional embodiment, the panel is made of tempered glass;

[0076] Alternatively, the panel is made of a combination of tempered glass and at least one material, wherein the material includes tempered glass, explosion-proof mesh, and metal sheet.

[0077] In specific implementation, there are the following common material combinations: stove panel with only tempered glass, tempered glass panel with explosion-proof mesh, tempered glass panel with metal sheet on one side, tempered glass panel with metal sheet on both sides, etc.

[0078] Here is a detailed explanation of the impact of materials in practical applications. Different materials will affect some static variables in the functional relationship, namely material parameters (different from load variables, which are dynamic variables that actually need to be obtained in real time when the gas stove is working, such as ambient temperature and real-time firepower), such as material density, glass panel thickness, thermal conductivity, specific heat capacity, emissivity, and heat transfer coefficient between the material surface and air.

[0079] During specific implementation, it is necessary to obtain a material thermophysical property parameter database through experiments in advance. The material thermophysical property parameter database is used to store material thermophysical property parameters such as thermal conductivity, specific heat capacity, density, etc. of various materials.

[0080] In a specific example, for example, a household gas stove made of aluminum alloy and glass in use can obtain a material thermophysical parameter database as shown in Table 1 in advance through experiments (Table 1 here only lists three thermophysical parameters as an example, and does not include only these three); at this time, it is only necessary to obtain parameters such as the thickness of the tempered glass panel, the thickness of the aluminum alloy plate attached to the back of the glass, the flame temperature, and the ambient temperature, and then match the relevant content in the material thermophysical property parameter database to obtain parameters such as the emissivity and the heat transfer coefficient between the aluminum alloy surface and the air.

[0081] Table 1 Material thermal properties

[0082]

[0083] In practice, the relationship between firepower and stove panel temperature can be expressed as a fitted function, with panels of different materials having corresponding fitted function relationships. Based on this function relationship, theoretical calculations can be used to obtain temperature data for any position on the panel at any time, eliminating the need for actual temperature measurement points and reducing hardware investment. More specifically, the parameters of this function relationship consider a wide range of factors, including numerical influencing factors such as static and dynamic variables. Boundary conditions, such as the panel's initial state parameters and the convective heat transfer coefficient at the panel's contact points with the air, play a significant role.

[0084] The nodes where different materials come into contact will cause changes in the functional relationship. For example, a gas stove panel has a glass surface layer and an aluminum alloy layer underneath the glass. The energy generated by the flame obviously has different heat transfer effects in the two materials. At this time, all nodes on the contact surface of the glass layer and the aluminum alloy layer will cause adjustments to some parameters in the functional relationship.

[0085] In addition, in practical applications, the above material parameters are selected as needed according to different situations. Continuing with the above example, the material parameter of the heat transfer coefficient between the material surface and the air is obviously only meaningful for the glass layer, because the glass layer is in contact with the air as the surface layer and generates heat radiation energy transfer.

[0086] In another specific example, for example, in the material combination of the panel, compared with the case without the energy-focusing heat-insulating disk, the presence of the energy-focusing heat-insulating disk will increase the thermal resistance, thereby affecting the radiation energy of the flame to the panel surface, and the radiation energy is the energy converted from the real-time fire power to the panel.

[0087] In an optional implementation manner, before step 101, the method further includes:

[0088] The area range of the arbitrary position is determined according to the position of the stove head of the gas stove.

[0089] In specific implementation, due to the inherent properties of the gas stove, the temperature in a certain area centered on the stove head is higher, and the temperature in the outermost positions is relatively lower. Therefore, in order to improve the efficiency of obtaining temperature data, the monitoring range of any position can be narrowed to reduce the number of corresponding relationships that need to be matched.

[0090] In an optional embodiment, the load variable further includes ambient temperature;

[0091] The corresponding relationship also stores temperature data at any position on the surface of panels made of different materials under the influence of different ambient temperatures;

[0092] Before step 101, the process further includes: obtaining the real-time ambient temperature of the gas stove;

[0093] At this time, the step 101 specifically includes: matching the corresponding relationship according to the real-time ambient temperature, the panel material and the real-time firepower, and obtaining the temperature data of any position on the surface of the panel of the current gas stove under the real-time ambient temperature and the real-time firepower.

[0094] In an optional embodiment, the corresponding relationship further stores temperature data of any position on the surface of panels of different materials at any firepower level and different maintenance time;

[0095] Before step 101, the process also includes: obtaining the maintenance time of the gas stove at the current real-time fire power level.

[0096] At this time, the step 101 specifically includes: matching the corresponding relationship according to the current maintenance time, the panel material and the real-time firepower, and obtaining the temperature data of any position on the surface of the panel of the current gas stove under the current maintenance time and the real-time firepower.

[0097] In an optional embodiment, step 102 further includes:

[0098] generating a temperature control instruction according to a difference between a maximum value in the temperature data and the preset threshold value;

[0099] The fire power of the gas stove is adjusted based on the temperature control instruction.

[0100] In addition to adjusting the fire power of the gas stove, in actual application, you can also turn on the cooling device according to the temperature control instructions to ensure that the temperature drops to avoid panel explosion.

[0101] In this embodiment, during use, by presetting the correspondence between the load variable and the temperature of the gas stove panel, it is only necessary to actually detect the load variables such as the fire power and the ambient temperature, and the temperature of any position of the panel can be obtained in real time through the functional relationship. When the panel temperature exceeds the threshold, an instruction is issued to adjust the fire power, or other means are used to cool the panel to meet the user's customized safety needs; based on the above method, there is no need to install a separate temperature detection module to detect the temperature of each node of the panel during the manufacturing process of the panel. The theoretical maximum node temperature of the panel is obtained through theoretical calculation, and there is no actual detection point, which reduces the investment in hardware equipment; in addition, the temperature data relationship of panels of different materials under different conditions measured experimentally in the design process of the reference control method can be used in the product development stage to guide the structural design of the panel, reduce the proofing time and number of proofing, and improve the efficiency and quality of product development.

[0102] Example 2

[0103] This embodiment provides a control device 10 for a gas stove panel. The control device 10 can implement the control method in embodiment 1, such as Figure 3 As shown, the control device 10 includes:

[0104] A relationship preset module 11 is used to preset a corresponding relationship between a load variable and the temperature of a gas stove panel; the load variable includes the fire power of the gas stove, and the corresponding relationship stores temperature data at any position on the surface of the panel of different materials under the influence of different fire powers;

[0105] The data acquisition module 12 is used to obtain the panel material and real-time fire power of the current gas stove, and match the corresponding relationship to obtain the temperature data of any position on the surface of the panel of the current gas stove under the real-time fire power;

[0106] The early warning module 13 is configured to issue an early warning instruction when the temperature data is greater than a preset threshold.

[0107] In an optional embodiment, the load variable further includes ambient temperature;

[0108] The corresponding relationship also stores temperature data of any position on the surface of panels of different materials under the influence of different ambient temperatures; at this time, the control device 10 further includes:

[0109] The temperature acquisition module 14 is used to obtain the real-time ambient temperature of the gas stove;

[0110] The data acquisition module is also used to match the corresponding relationship according to the real-time ambient temperature, the panel material and the real-time firepower, and obtain temperature data at any position on the surface of the panel of the current gas stove under the real-time ambient temperature and the real-time firepower.

[0111] In an optional embodiment, as Figure 4 As shown (with Figure 3 Regarding the temperature acquisition module 14, the corresponding relationship also stores temperature data of any position on the surface of the panel of different materials at any firepower level and different maintenance time; at this time, the control device 10 also includes:

[0112] The time acquisition module 15 is used to obtain the current maintenance time of the gas stove at the current real-time fire power level;

[0113] The data acquisition module is also used to match the corresponding relationship according to the current maintenance time, the panel material and the real-time firepower, and obtain the temperature data of any position on the surface of the panel of the current gas stove under the current maintenance time and the real-time firepower.

[0114] In an optional embodiment, the relationship preset module 11 includes the following:

[0115] A node presetting unit 111 is used to preset multiple nodes on any panel and set temperature sensors at all the nodes;

[0116] The fire power adjustment unit 112 is used to obtain the detected temperature data of any position of the panel under the working state of different materials by changing the value of the fire power;

[0117] The relationship determination unit 113 is used to determine the corresponding relationship between the fire power and the temperature of the gas stove panel according to the detected temperature data.

[0118] In an optional embodiment, the panel is made of tempered glass;

[0119] Alternatively, the panel is made of a combination of tempered glass and at least one material, wherein the material includes tempered glass, explosion-proof mesh, and metal sheet.

[0120] In an optional embodiment, the control device 10 further includes the following:

[0121] A control instruction module 16 is configured to generate a temperature control instruction according to a difference between a maximum value in the temperature data and the preset threshold value;

[0122] The fire power adjustment module 17 is used to adjust the fire power of the gas stove based on the temperature control instruction.

[0123] In an optional embodiment, the data acquisition module 12 further includes the following:

[0124] The range determination unit 121 is configured to determine the area range of the arbitrary position according to the position of the stove head of the gas stove.

[0125] In this embodiment, the control device presets the correspondence between the load variable and the temperature of the gas stove panel during use. It only needs to actually detect load variables such as the fire power and the ambient temperature. The temperature of any position of the panel can be obtained in real time through a functional relationship. When the panel temperature exceeds the threshold, an instruction is issued to adjust the fire power, or other means are used to cool the panel to meet the user's customized safety needs. Based on the above method, there is no need to install a separate temperature detection module to perform temperature detection on each node of the panel during the panel manufacturing process. The theoretical maximum node temperature of the panel is obtained through theoretical calculation. There is no actual detection point, which reduces the investment in hardware equipment.

[0126] Example 3

[0127] This embodiment provides a gas stove panel, which includes an electronic device, Figure 5 This is a schematic structural diagram of an electronic device for a gas stove panel provided in this embodiment. The electronic device includes a memory, a processor, and a computer program stored in the memory and executable on the processor. When the processor executes the computer program, the control method for the gas stove panel in the above-mentioned embodiment 1 is implemented. Figure 5 The electronic device 80 shown is only an example and should not limit the functionality and scope of use of the embodiments of the present disclosure. Figure 5 As shown, the electronic device 80 may be a general-purpose computing device, such as a server device. Components of the electronic device 80 may include, but are not limited to, the at least one processor 81, the at least one memory 82, and a bus 83 connecting different system components (including the memory 82 and the processor 81).

[0128] The bus 83 includes a data bus, an address bus, and a control bus.

[0129] The memory 82 may include a volatile memory, such as a random access memory (RAM) 821 and / or a cache memory 822 , and may further include a read-only memory (ROM) 823 .

[0130] The memory 82 may also include a program tool 825 (or utility) having a set (at least one) of program modules 824, such program modules 824 including but not limited to: an operating system, one or more application programs, other program modules and program data, each of which or some combination may include an implementation of a network environment.

[0131] The processor 81 executes various functional applications and data processing by running computer programs stored in the memory 82 , such as the control method of the gas stove panel in the above-mentioned embodiment 1.

[0132] The electronic device 80 can also communicate with one or more external devices 84. Such communication can be performed through an input / output (I / O) interface 85. In addition, the model generating electronic device 80 can also communicate with one or more networks (such as a local area network (LAN), a wide area network (WAN) and / or a public network such as the Internet) through a network adapter 86. Figure 5 As shown, the network adapter 86 communicates with other modules of the electronic device 80 via the bus 83. Figure 5 Not shown, other hardware and / or software modules may be used in conjunction with the electronic device 80, including but not limited to microcode, device drivers, redundant processors, external disk drive arrays, RAID (disk array) systems, tape drives, and data backup storage systems.

[0133] It should be noted that while the above detailed description refers to several units / modules or sub-units / modules of the gas stove panel, this division is merely exemplary and not mandatory. In practice, depending on the embodiments of the present disclosure, the features and functions of two or more units / modules described above may be embodied in a single unit / module. Conversely, the features and functions of a single unit / module described above may be further divided and embodied by multiple units / modules.

[0134] Example 4

[0135] This embodiment provides a computer-readable storage medium on which a computer program is stored. When the computer program is executed by a processor, the method for controlling the gas stove panel in the above-mentioned embodiment 1 is implemented.

[0136] The readable storage medium may include, but is not limited to, a portable disk, a hard disk, a random access memory, a read-only memory, an erasable programmable read-only memory, an optical storage device, a magnetic storage device, or any suitable combination thereof.

[0137] In a possible implementation, the present disclosure can also be implemented in the form of a program product, which includes program code. When the program product is run on a terminal device, the program code is used to enable the terminal device to execute the steps of the control method for the gas stove panel in the above embodiment 1.

[0138] The program code for executing the present disclosure may be written in any combination of one or more programming languages, and may be executed entirely on the user device, partially on the user device, as a standalone software package, partially on the user device and partially on a remote device, or entirely on the remote device.

[0139] While specific embodiments of the present disclosure have been described above, those skilled in the art will appreciate that these are merely illustrative and that the scope of protection of the present disclosure is defined by the appended claims. Those skilled in the art may make various changes or modifications to these embodiments without departing from the principles and essence of the present disclosure, and such changes and modifications are intended to fall within the scope of protection of the present disclosure.

Claims

1. A method for controlling a gas stove panel, characterized in that: The control method comprises the following steps: A correspondence between a preset load variable and the temperature of a gas stove panel; the load variable includes the fire power of the gas stove, and the correspondence stores temperature data at any position on the surface of panels of different materials under the influence of different fire powers; Obtaining the panel material and real-time firepower of the current gas stove, and matching the corresponding relationship to obtain temperature data of any position on the surface of the panel of the current gas stove under the real-time firepower; When the temperature data is greater than a preset threshold, an early warning instruction is issued; The load variables also include ambient temperature; The corresponding relationship also stores temperature data at any position on the surface of panels made of different materials under the influence of different ambient temperatures; Before the step of obtaining the panel material and real-time fire power of the current gas stove, the following steps are also included: Get the real-time ambient temperature of the gas stove; The step of matching the corresponding relationship to obtain temperature data of any position on the surface of the panel of the current gas stove under real-time firepower specifically includes: According to the real-time ambient temperature, the panel material and the real-time firepower, the corresponding relationship is matched to obtain temperature data of any position on the surface of the panel of the current gas stove under the real-time ambient temperature and the real-time firepower; The corresponding relationship also stores temperature data of any position on the surface of panels of different materials at any firepower level and different maintenance time; Before the step of obtaining the panel material and real-time fire power of the current gas stove, the following steps are also included: Get the current maintenance time of the gas stove at the current real-time fire power; The step of matching the corresponding relationship to obtain temperature data of any position on the surface of the panel of the current gas stove under real-time firepower specifically includes: According to the current maintenance time, the panel material and the real-time firepower, the corresponding relationship is matched, and temperature data of any position on the surface of the panel of the current gas stove under the current maintenance time and the real-time firepower is obtained; The correspondence between the preset load variable and the gas stove panel temperature specifically includes the following steps: Preset multiple nodes on any panel and set temperature sensors at all the nodes; By changing the value of the firepower, the detected temperature data at any position of the panel of different materials under the working state is obtained; The corresponding relationship between the fire power and the temperature of the gas stove panel is determined according to the detected temperature data.

2. The method for controlling a gas stove panel according to claim 1, wherein: The panel is made of tempered glass; Alternatively, the panel is made of a combination of tempered glass and at least one material, wherein the material includes tempered glass, explosion-proof mesh, and metal sheet.

3. The method for controlling a gas stove panel according to claim 1, wherein: After issuing the warning instruction, the following steps are also included: generating a temperature control instruction according to a difference between a maximum value in the temperature data and the preset threshold value; The fire power of the gas stove is adjusted based on the temperature control instruction.

4. The method for controlling a gas stove panel according to claim 1, wherein: The method of obtaining the panel material and real-time fire power of the current gas stove further includes the following steps: The area range of the arbitrary position is determined according to the position of the stove head of the gas stove.

5. A control device for a gas stove panel, characterized in that: include: A relationship preset module is used to preset the corresponding relationship between the load variable and the gas stove panel temperature; The load variable includes the fire power of the gas stove, and the corresponding relationship stores the temperature data of any position on the surface of the panel of different materials under the influence of different fire power; A data acquisition module is used to obtain the panel material and real-time fire power of the current gas stove, and match the corresponding relationship to obtain temperature data of any position on the surface of the panel of the current gas stove under the real-time fire power; An early warning module is used to issue an early warning instruction when the temperature data is greater than a preset threshold; The load variables also include ambient temperature; The corresponding relationship also stores temperature data at any position on the surface of panels made of different materials under the influence of different ambient temperatures; The control device further comprises: Temperature acquisition module, used to obtain the real-time ambient temperature of the gas stove; The data acquisition module is further configured to match the corresponding relationship according to the real-time ambient temperature, the panel material, and the real-time firepower, and obtain temperature data of any position on the surface of the panel of the current gas stove under the real-time ambient temperature and the real-time firepower; The corresponding relationship also stores temperature data of any position on the surface of panels of different materials at any firepower level and different maintenance time; The control device further comprises: The time acquisition module is used to obtain the current maintenance time of the gas stove at the current real-time fire power level; The data acquisition module is further configured to match the corresponding relationship according to the current maintenance time, the panel material, and the real-time firepower, and obtain temperature data of any position on the surface of the panel of the current gas stove under the current maintenance time and the real-time firepower; The relationship preset module includes the following: A node preset unit, used to preset multiple nodes on any panel and set temperature sensors at all the nodes; A firepower adjustment unit, used to obtain the detected temperature data of any position of the panel under the working state of different materials by changing the value of the firepower; The relationship determination unit is used to determine the corresponding relationship between the fire power and the temperature of the gas stove panel according to the detected temperature data.

6. A gas stove panel comprising a memory, a processor, and a computer program stored in the memory and executable on the processor, characterized in that: When the processor executes the computer program, the control method according to any one of claims 1 to 4 is implemented.

7. A computer-readable storage medium having a computer program stored thereon, characterized in that: When the computer program is executed by a processor, the control method according to any one of claims 1 to 4 is implemented.

Citation Information

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