Control method of heating equipment, heating equipment and computer readable storage medium
By obtaining environmental parameters and calculating theoretical heat values, accurately adjusting the temperature of heating equipment, the problem of inaccurate temperature control in the existing technology is solved, the accuracy and energy efficiency of temperature control are improved, and the user experience is improved.
Patent Information
- Application Number
- CN202311736237.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2023-12-14
- Publication Date
- 2025-06-17
AI Technical Summary
The temperature control of existing heating equipment is inaccurate, which makes it impossible to achieve the user's ideal target ambient temperature, affecting the user's user experience.
By obtaining the environmental parameters of the current space, including ambient humidity and temperature, the theoretical heat value required to heat to the target temperature is calculated, and temperature adjustment is performed based on this value to accurately adjust the ambient temperature.
It improves the temperature control accuracy of heating equipment, reduces energy consumption, and improves user experience.
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Figure CN120160184A_ABST
Abstract
Description
Technical Field
[0001] The present application relates to the technical field of household appliances, and particularly relates to a control method for a heating device, a heating device, and a computer-readable storage medium. Background Art
[0002] Heating devices such as heaters and air conditioners are essential electrical appliances for most families to keep warm in winter. General electronic heating devices are equipped with temperature sensors on the body. The heating load of the heating device is controlled to be turned on or off according to the ambient temperature detected by the temperature sensor. However, due to the different installation positions of the temperature sensors on the body, the detected ambient temperature error is relatively large, so accurate temperature control cannot be achieved, and the ideal target ambient temperature cannot be reached by the user. Obviously, the user experience is not good during such use. Summary of the Invention
[0003] The present application provides a control method for a heating device, a heating device, and a computer-readable storage medium, which are used to improve the temperature control accuracy of the heating device and reduce the energy consumption of the heating device, so as to improve the user experience.
[0004] In order to solve the above technical problems, the technical solution adopted by the present application is: providing a control method for a heating device, including: obtaining the environmental parameters of the current space; calculating the theoretical heat value required to heat the current space to the target temperature based on the environmental parameters; performing a temperature adjustment operation based on the theoretical heat value to adjust the environmental temperature of the current space to the environmental temperature corresponding to the target temperature.
[0005] Among them, the environmental parameters at least include the current environmental humidity and the current environmental temperature of the current space. Calculating the theoretical heat value required to heat the current space to the target temperature based on the environmental parameters includes: obtaining the load power of the heating device; obtaining the theoretical heat value required to heat the current space to the target temperature based on the load power, the current environmental humidity, the current environmental temperature, and the target temperature.
[0006] Among them, the environmental parameters further include the space volume of the current space. Obtaining the theoretical heat value required to heat the current space to the target temperature based on the load power, the current environmental humidity, the current environmental temperature, and the target temperature includes: obtaining the theoretical heat value required to heat the current space to the target temperature based on the space volume, the load power, the current environmental humidity, the current environmental temperature, and the target temperature.
[0007] Among them, performing a temperature adjustment operation based on the heat value includes: detecting the actual output heat value of the heating device; in response to the actual output heat value of the heating device being equal to the theoretical heat value, obtaining the current environmental temperature of the current space again as the first temperature; performing a temperature adjustment operation based on the first temperature.
[0008] Among them, performing temperature adjustment based on the first temperature includes: determining whether the absolute value of the difference between the first temperature and the target temperature is less than or equal to a preset threshold; in response to the absolute value of the difference between the first temperature and the target temperature being greater than the preset threshold, obtaining a temperature compensation value; obtaining a compensated heat value based on the temperature compensation value; and compensating the ambient temperature of the current space based on the compensated heat value.
[0009] Among them, it includes: in response to the absolute value of the difference between the first temperature and the target temperature being greater than the preset threshold, activating an alarm function.
[0010] Among them, the temperature compensation value includes the absolute value of the difference between the first temperature and the target temperature.
[0011] To solve the above technical problems, the technical solution adopted by this application is: to provide a heating device, the heating device includes: a collection device for obtaining the environmental parameters of the current space; a control mechanism for calculating the theoretical heat value required to heat the current space to the target temperature based on the environmental parameters; a temperature adjustment mechanism, and the control mechanism is used to control the temperature adjustment mechanism to perform temperature adjustment work based on the theoretical heat value, so as to adjust the environmental temperature of the current space to the environmental temperature corresponding to the target temperature.
[0012] Among them, the collection device at least includes: a temperature collection device for obtaining the current ambient temperature; a humidity collection device for obtaining the current ambient humidity.
[0013] To solve the above technical problems, the technical solution adopted by this application is: to provide a computer-readable storage medium, the computer-readable storage medium is used to store program instructions, and when the program instructions are executed by a processor, the control method described in any one of the above is used.
[0014] The beneficial effect of the embodiment of this application is: The control method of the heating device of this application calculates the theoretical heat value required to heat the current space to the target temperature based on the environmental parameters. Further, the heating device performs temperature adjustment work based on this theoretical heat value. Among them, the theoretical heat value is calculated based on the current environmental parameters, which represents the heat value required for the heating device to heat the current space to the target temperature. The theoretical heat value can effectively indicate the heat value required for the heating device to heat the current space to the target temperature. Therefore, the heating device performs temperature adjustment work based on this theoretical heat value, which can effectively improve the temperature control accuracy of the heating device and effectively reduce the energy consumption of the heating device, thereby effectively improving the user experience. Description of the Drawings
[0015] Figure 1 It is a schematic diagram of the step flow of the first embodiment of the control method of the heating device of this application;
[0016] Figure 2It is a schematic diagram of the step flow of an embodiment of step S200 of the control method of the heating device of the present application;
[0017] Figure 3 It is a schematic diagram of the step flow of an embodiment of step S300 of the control method of the heating device of the present application;
[0018] Figure 4 It is a schematic diagram of the step flow of an embodiment of step S330 of the control method of the heating device of the present application;
[0019] Figure 5 It is a schematic diagram of the step flow of the second embodiment of the control method of the heating device of the present application;
[0020] Figure 6 It is a schematic structural diagram of an embodiment of the heating device of the present application;
[0021] Figure 7 It is a schematic structural diagram of an embodiment of the computer-readable storage medium of the present application. Detailed Embodiments
[0022] Next, the technical solutions in the embodiments of the present application will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present application. Obviously, the described embodiments are only a part of the embodiments of the present application, rather than all the embodiments. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present application without creative efforts shall fall within the protection scope of the present application.
[0023] The terms "first" and "second" in the present application are only used for descriptive purposes and cannot be construed as indicating or implying relative importance or implicitly specifying the quantity of the indicated technical features. In the description of the present application, the meaning of "a plurality" is at least two, such as two, three, etc., unless otherwise clearly and specifically defined. In addition, the terms "include" and "have" and any variations thereof are intended to cover non-exclusive inclusion. For example, a process, method, system, product or device that includes a series of steps or units is not limited to the listed steps or units, but optionally further includes steps or units not listed, or optionally further includes other steps or units inherent to these processes, methods, products or devices.
[0024] The present application provides a control method for a heating device, wherein the heating device includes heating furnaces, heaters, air conditioners and other heating devices. As Figure 1 shown, Figure 1 It is a schematic diagram of the step flow of the first embodiment of the control method of the heating device of the present application. Among them, the execution subject of the control method of the heating device is the heating device, and the control method of the heating device includes:
[0025] Step S100: Obtain the environmental parameters of the current space.
[0026] Obtaining the environmental parameters of the current space means obtaining the environmental parameters of the working environment where the heating device is currently located. For example, if the working environment where the heating device is currently located is the user's bedroom, the heating device will pre-obtain the environmental parameters of the bedroom when working, such as the space volume of the bedroom, the indoor temperature and humidity of the bedroom, etc.
[0027] Optionally, in this embodiment, the environmental parameters include the space volume of the current space, the current environmental humidity of the current space, and the current environmental temperature. Among them, the space volume of the current space is the space volume of the working environment where the heating device is currently located. Among them, the current environmental humidity is the environmental humidity of the working environment where the heating device is currently located, and the current environmental temperature is the environmental temperature of the working environment where the heating device is currently located. Among them, the environmental parameters obtained through step S100 can be understood as the environmental parameters of the heating device before starting work.
[0028] In other embodiments, the environmental parameters may also only include: the current environmental humidity and the current environmental temperature of the current space.
[0029] Step S200: Calculate the theoretical heat value required to heat the current space to the target temperature based on the environmental parameters.
[0030] After the heating device obtains the environmental parameters, it calculates the theoretical heat value required to heat the current space to the target temperature based on the environmental parameters. Among them, the target temperature is the temperature for adjustment or the temperature parameter automatically adjusted by the heating device according to personalized functions such as user analogy. The heating device can calculate more accurately the heat value required to heat the current space to the target temperature according to the environmental parameters of the current working environment, thereby effectively improving the temperature control accuracy of the heating device.
[0031] As Figure 2 shown, Figure 2 is a schematic flowchart of the steps of step S200 of the control method of the heating device of the present application. Among them, step S200 can be implemented by the Figure 2 method steps shown, specifically including step S210 to step S220.
[0032] Step S210: Obtain the load power of the heating device.
[0033] Step S220: Obtain the theoretical heat value required to heat the current space to the target temperature based on the load power, environmental parameters, and target temperature.
[0034] The steps S210 to S220 will be described together.
[0035] The load power is the load power when the heating device, including the heating device, is operating normally. Depending on the model of the heating device, the load power varies. Before calculating the heat value required to heat the current space to the target temperature, the heating device will also pre-acquire its own load power. Further, the heating device calculates the heat value required to heat the current space to the target temperature based on the load power, the environmental parameters obtained through step S100, and the target temperature. By this means, the heat value required to heat the current space to the target temperature can be accurately obtained, thereby effectively improving the temperature control accuracy of the heating device.
[0036] For example, in this embodiment, the environmental parameters collected by the heating device include the space volume of the current space, the current environmental humidity, and the current environmental temperature. Among them, based on the load power, the target temperature, the current space volume, the current environmental humidity, and the current environmental temperature, the heating device can accurately calculate the heat value required to heat the current space to the target temperature. Among them, the heat value is directly proportional to the space volume. That is, when the load power is constant, the larger the current space volume, the greater the required heat value. The current environmental humidity has a certain impact on the heating and temperature rise of the indoor heater. When the current environmental humidity is high, the moisture in the air will absorb part of the heat, thereby slowing down the rate of increase in the indoor temperature. Therefore, under the same load power condition, the higher the current environmental humidity, the less heat is required to heat to the target temperature. For example, in some embodiments, the load power P is 2000W, the current environmental humidity is about 60%, the current environmental temperature is 7°C, and the target temperature is 16°C. Among them, the heating time H to the target temperature is 1 hour. Based on this, the heat value Q required to heat to the target temperature can be determined as: Q = H × P.
[0037] Among them, in other embodiments, the environmental parameters collected by the heating device at least include the current environmental humidity and the current environmental temperature. The heating device can accurately calculate the heat value required to heat the current space to the target temperature based on the load power, the target temperature, and the above environmental parameters.
[0038] Step S300: Perform temperature adjustment work based on the theoretical heat value to adjust the environmental temperature of the current space to the environmental temperature corresponding to the target temperature.
[0039] After obtaining the theoretical heat value required to adjust the current space environment temperature to the target temperature through the method steps from step S100 to step S200, the heating device accurately performs the temperature adjustment work based on this theoretical heat value. Among them, the theoretical heat value is calculated based on the current environmental parameters, which represents the heat value required for the heating device to heat the current space to the target temperature. The theoretical heat value can effectively indicate the heat value required for the heating device to heat the current space to the target temperature, thereby effectively improving the temperature control accuracy of the heating device and effectively reducing the energy consumption of the heating device, and further effectively improving the user experience.
[0040] Different from the prior art, the control method of the heating device in this application calculates the theoretical heat value required to heat the current space to the target temperature based on the environmental parameters. Further, the heating device performs the temperature adjustment work based on this theoretical heat value. Among them, the theoretical heat value is calculated based on the current environmental parameters, which represents the heat value required for the heating device to heat the current space to the target temperature. The theoretical heat value can effectively indicate the heat value required for the heating device to heat the current space to the target temperature. Therefore, the heating device performs the temperature adjustment work based on this theoretical heat value, which can effectively improve the temperature control accuracy of the heating device and effectively reduce the energy consumption of the heating device, and further effectively improve the user experience.
[0041] Optionally, Figure 3 is a schematic flow chart of the steps of an embodiment of step S300 of the control method of the heating device in this application. Among them, step S300 can be implemented through Figure 3 the method steps shown, specifically including steps S310 to S330.
[0042] Step S310: Detect the actual output heat value of the heating device.
[0043] After the heating device obtains the theoretical heat value through the above method, it starts to perform the temperature adjustment work and continuously detects its actual output heat value during the temperature adjustment process to determine whether its actual output heat value reaches the theoretical heat value, so as to preliminarily determine whether the current environmental temperature reaches the target temperature.
[0044] Step S320: In response to the actual output heat value of the heating device being equal to the theoretical heat value, obtain the current environmental temperature of the current space as the first temperature again.
[0045] Step S330: Control the heating device to perform the temperature adjustment work based on the first temperature.
[0046] The description of steps S320 to S330 will be unified.
[0047] When it is determined that the actual output heat value of the heating device is equal to the theoretical heat value, theoretically the current ambient temperature is the same as the target temperature. To prevent error interference caused by acquisition errors, such as errors that occur when collecting the ambient temperature and ambient humidity, and interference caused by environmental factors such as an unenclosed space, etc., when the actual output heat value of the heating device is equal to the theoretical heat value, the heating device acquires the current ambient temperature of the current space again, that is, the first temperature, so as to perform the temperature adjustment work again through step S330, that is, perform temperature compensation on the current ambient temperature, so that the current ambient temperature is closer to the target temperature, and thus effectively improve the temperature control accuracy of the heating device.
[0048] As Figure 4 shown, Figure 4 is a schematic flowchart of the steps of an embodiment of step S330 of the control method of the heating device of the present application. Among them, step S330 can be implemented by the Figure 4 method steps shown, specifically including steps S331 to S335.
[0049] Step S331: Determine whether the absolute value of the difference between the first temperature and the target temperature is less than or equal to a preset threshold.
[0050] Step S332: In response to the absolute value of the difference between the first temperature and the target temperature being greater than the preset threshold, obtain a temperature compensation value.
[0051] Steps S331 to S332 are described together.
[0052] Among them, when ignoring the errors of the heating device itself, that is, in the most ideal state, when the actual output heat value of the heating device is equal to the theoretical heat value, the current ambient temperature is the same as the target temperature. Therefore, after the heating device obtains the first temperature through step S320, it determines whether the absolute value of the difference between the first temperature and the target temperature is less than or equal to the preset threshold. If the first temperature and the target temperature are less than or equal to the preset threshold, it means that the current ambient temperature has reached or is basically close to the target temperature, and the heating device stops the temperature adjustment work to effectively save the energy consumption of the heating device.
[0053] In actual situations, due to calculation or measurement errors in the heating device itself, when the actual output heat value of the heating device is equal to the theoretical heat value, due to the influence of the error factors of the heating device itself, the absolute value of the difference between the first temperature and the target temperature is greater than the preset threshold. Therefore, it is necessary to further perform temperature compensation on the current environment to adjust the current ambient temperature of the current environment to the target temperature. Specifically, if the absolute value of the difference between the first temperature and the target temperature is greater than the preset threshold, the heating device obtains a temperature compensation value to compensate the current ambient temperature based on the temperature compensation value, so that the current ambient temperature is closer to the target temperature, and thus effectively improves the user experience.
[0054] Optionally, in this embodiment, the temperature compensation value is the absolute value of the difference between the first temperature and the target temperature. Taking the absolute value of the difference between the first temperature and the target temperature as the temperature compensation value can effectively determine the error value of the acquisition device on the heating device, thereby effectively improving the temperature control accuracy of the heating device.
[0055] Step S333: Obtain a compensated heat value based on the temperature compensation value.
[0056] After obtaining the temperature compensation value through the above steps S331 to S332, the heating device further obtains a compensated heat value based on the temperature compensation value. Specifically, in this embodiment, after the heating device obtains the temperature compensation value in the above manner, it uses the temperature compensation value, the current space volume, and the current environmental humidity as calculation parameters to calculate the compensated heat value. Based on this compensated heat value, it can be determined according to the actually set target temperature, thereby realizing dynamic temperature compensation and effectively improving the temperature control accuracy of the heating device.
[0057] Step S334: Compensate the environmental temperature of the current space based on the compensated heat value.
[0058] After obtaining the compensated heat value, the heating device further performs a temperature adjustment operation, which is also called a compensated temperature adjustment operation. Among them, the heating device uses the compensated heat value as the upper limit value of the output heat. When the output heat value reaches the compensated heat value, it indicates that the compensated temperature adjustment operation is completed. Optionally, the heating device can also repeatedly execute the steps of S331 to S334 until the difference between the current environmental temperature and the target temperature is less than or equal to a preset threshold, and then stop the temperature adjustment operation. Based on this, it can effectively improve the temperature control accuracy of the heating device while effectively saving the energy consumption of the heating device.
[0059] Step S335: Activate an alarm function in response to the absolute value of the difference between the first temperature and the target temperature being greater than a preset threshold.
[0060] In actual situations, it is also possible that due to a gap or air leakage in the current space, for example, the doors or windows in the room are open, when the actual output heat value of the heating device is equal to the theoretical heat value, the absolute value of the difference between the first temperature and the target temperature is greater than the preset threshold, resulting in the heating device still needing to continue working when the output heat is equal to the theoretical heat value, which seriously affects the power consumption of the heating device. Therefore, when the heating device determines that its actual output heat value is equal to the theoretical heat value and the absolute value of the difference between the first temperature and the target temperature is greater than the preset threshold, it will activate the alarm function to prompt the user to check whether the current space is in a closed state. Based on this, it can effectively prevent the heating device from continuously performing temperature adjustment operations due to reasons such as gaps or air leakage in the current space, thereby effectively reducing the energy consumption of the heating device.
[0061] The present application also proposes a second embodiment of the control method for the heating device, as Figure 5 shown, Figure 5 which is a schematic flowchart of the steps of the second embodiment of the control method for the heating device of the present application. In this embodiment, the second embodiment of the control method for the heating device includes the following steps.
[0062] Step S400: Obtain the environmental parameters of the current space.
[0063] For the specific implementation manner, reference may be made to step S100 of the above embodiment, and details are not repeated herein.
[0064] Step S500: Calculate the theoretical heat value required to heat the current space to the target temperature based on the environmental parameters.
[0065] For the specific implementation manner, reference may be made to step S200 of the above embodiment, and details are not repeated herein.
[0066] Step S600: Start heating based on the theoretical heat value.
[0067] After the heating device obtains the theoretical heat value through steps S400 to S500, it starts to heat the current space based on the user's control or its own personalized function.
[0068] Step S700: Real-time detect the actual output heat value of the heating device, and determine whether the actual output heat value reaches the theoretical heat value.
[0069] After the heating device starts heating, it real-time detects the actual output heat value of the heating device and determines whether the actual output heat value reaches the theoretical heat value. If the actual output heat value of the heating device does not reach the theoretical heat value, continue to execute step S600 until the actual output heat value reaches the theoretical heat value, and then start to execute steps S800 to S900.
[0070] Step S800: In response to the actual output heat value of the heating device being equal to the theoretical heat value, obtain the current environmental temperature of the current space as the first temperature again.
[0071] For the specific implementation manner, reference may be made to step S320 of the above embodiment, and details are not repeated herein.
[0072] Step S900: Determine whether the absolute value of the difference between the first temperature and the target temperature is less than or equal to a preset threshold.
[0073] For the specific implementation manner, reference may be made to step S320 of the above embodiment, and details are not repeated herein.
[0074] When the heating device determines that the absolute value of the difference between the first temperature and the target temperature is less than or equal to the preset threshold, it indicates that the current ambient temperature has been heated to the target temperature. The heating device directly executes step S1300 to stop heating, thereby effectively saving the energy consumption of the heating device.
[0075] If the heating device determines that the absolute value of the difference between the first temperature and the target temperature is greater than the preset threshold, it indicates that the current space may be unenclosed, such as the window being open, etc., and there may be certain errors and other unstable factors in the heating device. When the actual output heat value of the heating device reaches the theoretical heat value, the current ambient temperature still cannot reach the target temperature. Based on this, the heating device executes steps S1000 to S1100 to compensate the current ambient temperature, and executes step S1200 to notify the user to check whether the current space is in an open state, such as determining whether the doors and windows are closed, etc.
[0076] Step S1000: In response to the absolute value of the difference between the first temperature and the target temperature being greater than the preset threshold, obtain a temperature compensation value.
[0077] For the specific implementation method, reference can be made to step S332 of the above embodiment, which will not be elaborated here.
[0078] Step S1100: Compensate the ambient temperature of the current space based on the temperature compensation value.
[0079] For the specific implementation method, reference can be made to steps S333 to S334 of the above embodiment, which will not be elaborated here. After the heating device compensates the ambient temperature of the current space through step S1100, it executes steps S800 to S900 again to determine whether the compensated ambient temperature reaches the target temperature. If the compensated ambient temperature does not reach the target temperature, the current ambient temperature is compensated again through steps S1000 to S1100, and so on in a loop until the ambient temperature reaches the target temperature and then step S1300 is executed to stop heating. On the contrary, if the ambient temperature of the current environment reaches the target temperature after the heating device compensates the current environment temperature for the first time, step S1300 is directly executed to stop heating.
[0080] Step S1200: In response to the absolute value of the difference between the first temperature and the target temperature being greater than the preset threshold, activate the alarm function.
[0081] For the specific implementation method, reference can be made to step S335 of the above embodiment, which will not be elaborated here.
[0082] Step S1300: Stop heating.
[0083] The heating device is through such as Figure 5After heating the ambient temperature of the current space to the target temperature according to the steps and execution order shown and then stopping heating, the purpose of precise temperature control and reduction of the energy consumption of the heating device can be achieved.
[0084] This application also provides a heating device 10, as Figure 6 shown, Figure 6 is a schematic structural diagram of an embodiment of the heating device of this application. As the execution main body of the above control method, the heating device 10 can execute the control methods of any of the above embodiments. Among them, the heating device 10 includes: a collection device 100, a control mechanism 200, and a temperature adjustment mechanism 300.
[0085] The collection device 100 is a device for collecting parameters. Among them, in this embodiment, it is used to obtain the environmental parameters of the current space.
[0086] The control mechanism 200 is the main control of the heating device 10, such as a control circuit such as a processor or a main control chip. The control mechanism 200 is used to calculate the theoretical heat value required to heat the current space to the target temperature based on the environmental parameters.
[0087] The temperature adjustment mechanism 300 is an execution mechanism for the heating device 10 to output a heat value. The control mechanism 200 is used to control the temperature adjustment mechanism 300 to perform temperature adjustment work based on the theoretical heat value, so as to adjust the ambient temperature of the current space to the ambient temperature corresponding to the target temperature.
[0088] Optionally, the collection device 100 at least includes: a temperature collection device and a humidity collection device.
[0089] The temperature collection device includes temperature collection elements such as temperature sensors, and is used to obtain the current ambient temperature of the current space.
[0090] The humidity collection device includes humidity collection elements such as humidity sensors, and is used to obtain the current ambient humidity of the current space.
[0091] This application provides a computer-readable storage medium. Please refer to Figure 7 , Figure 7 is a schematic structural diagram of an embodiment of the computer-readable storage medium of this application. The computer-readable storage medium is used to store program instructions. When the program instructions are executed by a processor, they are used to implement the control method of the heating device in any of the above embodiments.
[0092] The computer-readable storage medium 30 of the embodiment of this application stores program instructions 31 inside, and the program instructions 31 are executed to implement the control method of the above heating device.
[0093] Among them, the program instructions 31 can form a program file and be stored in the above storage medium in the form of a software product, so that an electronic device (which can be a personal computer, a server, or a network device, etc.) or a processor can execute all or part of the steps of the methods in various embodiments of the present application. The aforementioned storage medium includes: various media that can store program codes such as a USB flash drive, 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 disc, or terminal devices such as a computer, a server, a mobile phone, or a tablet.
[0094] The computer-readable storage medium 30 in this embodiment can be, but is not limited to, a USB flash drive, an SD card, a PD optical drive, a mobile hard disk, a large-capacity floppy drive, a flash memory, a multimedia memory card, a server, etc.
[0095] In one embodiment, a computer program product or a computer program is provided. The computer program product or the computer program includes computer instructions, and the computer instructions are stored in a computer-readable storage medium. The processor of the electronic device reads the computer instructions from the computer-readable storage medium, and the processor executes the computer instructions, so that the electronic device executes the steps in the embodiment of the control method of the above heating device.
[0096] In addition, if the above functions are implemented in the form of software functions and sold or used as an independent product, they can be stored in a storage medium readable by a mobile terminal. That is, the present application also provides a storage device storing program instructions, and the program instructions can be executed to implement the method of the above embodiment. The storage device can be a USB flash drive, an optical disc, a server, etc. That is to say, the present application can be embodied in the form of a software product, which includes several instructions for enabling an intelligent terminal to execute all or part of the steps of the methods in various embodiments.
[0097] In summary, for the control method of the heating device of the present application, the theoretical heat value required to heat the current space to the target temperature is calculated based on the environmental parameters. Further, the heating device performs the temperature adjustment work based on the theoretical heat value. Among them, the theoretical heat value is calculated based on the current environmental parameters, which represents the heat value required for the heating device to heat the current space to the target temperature. The theoretical heat value can effectively indicate the heat value required for the heating device to heat the current space to the target temperature. Therefore, the heating device performs the temperature adjustment work based on the theoretical heat value, which can effectively improve the temperature control accuracy of the heating device and effectively reduce the energy consumption of the heating device, thereby effectively improving the user experience.
[0098] It should be noted that the accompanying drawings in this article are only for showing the structural relationship and connection relationship of the invention product of the present application, and do not limit the specific structural dimensions of the invention product of the present application accordingly.
[0099] The above are only embodiments of the present invention, and do not limit the patent scope of the present invention accordingly. Any equivalent structural or equivalent process transformation made by using the content of the specification and drawings of the present invention, or directly or indirectly applied in other related technical fields, shall be equally included in the patent protection scope of the present invention.
Claims
1. A control method for a heating device, characterized in that, Including: Obtain the environmental parameters of the current space; Calculate the theoretical heat value required to heat the current space to the target temperature based on the environmental parameters; Perform temperature adjustment work based on the theoretical heat value to adjust the environmental temperature of the current space to the environmental temperature corresponding to the target temperature.
2. The control method according to claim 1, characterized in that, The environmental parameters at least include the current environmental humidity and the current environmental temperature of the current space. Calculating the theoretical heat value required to heat the current space to the target temperature based on the environmental parameters includes: Obtain the load power of the heating device; Obtain the theoretical heat value required to heat the current space to the target temperature based on the load power, the current environmental humidity, the current environmental temperature, and the target temperature.
3. The control method according to claim 2, characterized in that, The environmental parameters further include the space volume of the current space. Calculating the theoretical heat value required to heat the current space to the target temperature based on the load power, the current environmental humidity, the current environmental temperature, and the target temperature includes: Obtain the theoretical heat value required to heat the current space to the target temperature based on the space volume, the load power, the current environmental humidity, the current environmental temperature, and the target temperature.
4. The control method according to claim 1, characterized in that, Performing the temperature adjustment work based on the heat value includes: Detect the actual output heat value of the heating device; In response to the actual output heat value of the heating device being equal to the theoretical heat value, obtain the current environmental temperature of the current space again as the first temperature; Perform temperature adjustment work based on the first temperature.
5. The control method according to claim 4, characterized in that, Performing the temperature adjustment work based on the first temperature includes: Judge whether the absolute value of the difference between the first temperature and the target temperature is less than or equal to a preset threshold; In response to the absolute value of the difference between the first temperature and the target temperature being greater than the preset threshold, obtain a temperature compensation value; Obtain a compensation heat value based on the temperature compensation value; Compensate the environmental temperature of the current space based on the compensation heat value.
6. The control method according to claim 5, characterized in that, Including: In response to the absolute value of the difference between the first temperature and the target temperature being greater than the preset threshold, activate the alarm function.
7. The control method according to claim 5, characterized in that, The temperature compensation value includes the absolute value of the difference between the first temperature and the target temperature.
8. A heating device, characterized in that, The heating device includes: A collection device for obtaining the environmental parameters of the current space; A control mechanism for calculating the theoretical heat value required to heat the current space to the target temperature based on the environmental parameters; A temperature adjustment mechanism, and the control mechanism is used to control the temperature adjustment mechanism to perform temperature adjustment work based on the theoretical heat value to adjust the environmental temperature of the current space to the environmental temperature corresponding to the target temperature.
9. The heating device according to claim 8, characterized in that, The collection device at least includes: A temperature collection device for obtaining the current environmental temperature of the current space; A humidity collection device for obtaining the current environmental humidity of the current space.
10. A computer-readable storage medium, characterized in that, The computer-readable storage medium is used to store program instructions, and when the program instructions are executed by a processor, they are used to implement the control method according to any one of claims 1 to 7.