Heating equipment, control method and device thereof and readable storage medium
By selecting different air outlets according to the heating power of the heating element, the problem of cold air blowing out by the heater at the beginning of work is solved, achieving more efficient heating and better user experience.
Patent Information
- Application Number
- CN202311681262.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2023-12-08
- Publication Date
- 2025-06-10
AI Technical Summary
In the early stages of operation, the existing heaters have low ambient temperature and the air blown out is cold, which leads to discomfort for users.
By obtaining the heating power of the heating element, select the corresponding air outlet for air discharge. When the heating power is high, the first air outlet is used to heat the environment in a lower position; when the heating power is low, the second air outlet is used to vent air to the user to realize the air supply to the user's location.
The problem of cold air blown by the heater is improved, the user experience of heating equipment is improved, and the heating efficiency and user experience are optimized by adjusting the air outlet and heating power.
Smart Images

Figure CN120120628A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the field of control technologies, and in particular, to a heating device, a control method, a control device, and a readable storage medium thereof. Background Art
[0002] In related technical solutions, a heater diffuses the heat generated by a heating element into the environment through air convection, blower blowing, etc., so as to raise the temperature of a local environment, thereby achieving a heating effect.
[0003] Taking a skirting heater as an example, its air outlet is fixed upward. In the initial stage of the heater's operation, the environmental temperature rises slowly, and the environmental temperature at the location of the heater is relatively low, making the blown air relatively cold and causing discomfort to the user. Summary of the Invention
[0004] The present invention aims to solve at least one of the technical problems existing in the prior art or related technologies.
[0005] To this end, in the first aspect of the present invention, a control method for a heating device is provided.
[0006] In the second aspect of the present invention, a control device for a heating device is provided.
[0007] In the third aspect of the present invention, another control device for a heating device is provided.
[0008] In the fourth aspect of the present invention, a readable storage medium is provided.
[0009] In the fifth aspect of the present invention, a heating device is provided.
[0010] In view of this, according to the first aspect of the present invention, a control method for a heating device is provided. The heating device includes a heating element, a first air outlet, and a second air outlet. The control method includes: obtaining the heating power of the heating element; when the heating power is a first power, using the first air outlet to blow air; when the heating power is a second power, using the second air outlet to blow air; wherein the first power is greater than the second power.
[0011] The technical solution of the present application proposes a control method for a heating device. By running the above control method, the corresponding air outlet can be selected for blowing air according to the heating power of the heating element. In this process, when the heating element generates heat at a higher power, the first air outlet can be used to blow air, thereby heating the environment at a lower position. And when the heating power is relatively low, the second air outlet is used to blow air to realize the air supply to the position where the user is located.
[0012] Specifically, in the initial stage of the heating device's operation, its heating speed to the environment is relatively slow, and the heated space range is relatively small. To achieve rapid temperature rise, the heating element is controlled to operate at a relatively high heating power. At this time, the first air outlet is used for air outlet to expand the space range heated by the heating device.
[0013] Meanwhile, as the heating device operates, one end of the space where the heating device is located has been heated for a certain period of time or its ambient temperature is already relatively high. At this time, the heating power of the heating element will decrease. At this time, the second air outlet is used to blow air towards the user, so as to blow the heated air towards the user.
[0014] In this process, compared with the solution of directly using the second air outlet to blow air towards the user in the initial stage of the heating device's operation, the control method proposed in this application can improve the problem of the air blown out by the heater being relatively cold, thereby enhancing the user experience of the heating device.
[0015] In addition, the control method of the heating device proposed in this application also has the following additional technical features.
[0016] In some technical solutions, optionally, it further includes: when the heating power is the third power, the second air outlet is used for air outlet; obtaining the continuous duration of the heating element operating at the third power; when the continuous duration is greater than or equal to the first duration, controlling the blower of the heating device to operate intermittently; wherein, the third power is less than the second power.
[0017] In this technical solution, when the heating power is the third power, by counting the continuous duration of the heating element operating at the third power, and then measuring the continuous duration of the heating device in the current state according to the comparison result of the continuous duration and the first duration, and then controlling the operating state of the blower according to the determination result.
[0018] In this process, the blower can be controlled to operate intermittently, so as to disturb the air flow by using the blower, and then while the heating device heats the air, the operating duration of the blower is reduced, so as to reduce the operating power consumption of the heating device, and thus achieve energy saving.
[0019] In some technical solutions, optionally, the third power can be zero power.
[0020] In this technical solution, it can be understood that the continuous duration of the heating element stopping operation is counted, and then the blower is controlled to operate intermittently according to the comparison result.
[0021] In some technical solutions, optionally, the first duration can be taken according to actual usage needs.
[0022] Specifically, the value of the first duration can be three minutes, five minutes, or eight minutes or ten minutes.
[0023] In some technical solutions, optionally, obtaining the heating power of the heating element includes: obtaining a set temperature value, a first temperature value, and a second temperature value, where the first temperature value is less than the second temperature value; determining a temperature range to be selected based on the set temperature value, the first temperature value, and the second temperature value, and each temperature range to be selected corresponds to the heating power of the heating element; obtaining the ambient temperature value; and determining the heating power based on the temperature range to be selected in which the ambient temperature value is located.
[0024] In this technical solution, the determination of the heating power of the heating element is refined.
[0025] Specifically, as can be seen from the above, at the initial stage of the operation of the heating device, the heating power of the heating element is relatively high, and as the heating device operates, the heating power of the heating element decreases.
[0026] Based on this, the technical solution of the present application obtains the set temperature value, and divides the temperature range to be selected based on the set temperature value, the first temperature value, and the second temperature value, and determines the heating power of the heating element according to the temperature range in which the ambient temperature value is located.
[0027] Among them, the set temperature value is the temperature value that the user makes the ambient temperature reach by controlling the heating device to heat the environment.
[0028] In this process, without measuring the actual operating parameters of the heating element, the indirect determination of the heating power can be achieved, reducing the difficulty of measuring the heating power.
[0029] In addition, during the operation of the heating device, it is necessary to obtain the ambient temperature value in order to determine the heating situation of the heating device on the environment according to the comparison result between the ambient temperature value and the set temperature value. In the above technical solution, the reuse of the ambient temperature value and the set temperature value can be achieved.
[0030] In some technical solutions, optionally, the temperature ranges to be selected include a first temperature range, a second temperature range, and a third temperature range. Determining the temperature ranges to be selected based on the set temperature value, the first temperature value, and the second temperature value includes: determining a first difference between the set temperature value and the first temperature value; determining a second difference between the set temperature value and the second temperature value; determining a first broken line based on the first difference and the second difference; determining a first sum value of the set temperature value and the first temperature value; determining a second broken line based on the first sum value and the set temperature value; taking the area where the temperature value is on one side of the first broken line and far from the second broken line as the first temperature range; taking the area where the temperature value is between the first broken line and the second broken line as the second temperature range; and taking the area where the temperature value is on one side of the second broken line and far from the first broken line as the third temperature range.
[0031] In this technical solution, the division of the temperature ranges to be selected is refined.
[0032] In the above technical solution, by calculating the first difference value, the first sum value, and the second difference value, three temperature intervals are obtained based on the set temperature value, the first difference value, the first sum value, and the second difference value. In this process, when the ambient temperature value increases, a comparison object with a higher value can be selected for the ambient temperature value, and when the ambient temperature value decreases, a comparison object with a lower value can be selected for the ambient temperature value, so as to reduce the switching frequency of the heating power.
[0033] In the above technical solution, as the ambient temperature value increases, the value of the heating power continuously decreases to reduce the thermal inertia of the heating element. Conversely, as the ambient temperature value decreases, the value of the heating power continuously increases to delay the rate of decrease of the ambient temperature by adjusting the heating power of the heating element.
[0034] In some technical solutions, optionally, it further includes: controlling the blower of the heating device to operate in a preset mode; wherein, when the blower operates in the preset mode, the air outlet volume of the blower simulates natural wind.
[0035] By adopting the preset mode for air outlet, when the heating device operates in the preset mode, natural wind is blown to the user, reducing the problem that when blowing air to the user at a constant wind speed, the user feels that the blowing is rigid and unnatural.
[0036] In some technical solutions, optionally, the first air outlet includes a first sub-air outlet and a second sub-air outlet arranged oppositely. Adopting the first air outlet for air outlet includes: adopting the first sub-air outlet and the second sub-air outlet for air outlet.
[0037] In this technical solution, the first air outlet is defined. In the above technical solution, since the first sub-air outlet and the second sub-air outlet are arranged oppositely, horizontal air outlet can be carried out by using the first sub-air outlet and the second sub-air outlet, so as to expand the space range heated by the heating device and improve the heating efficiency of the heating device for the environment where it is located.
[0038] In the above technical solution, a reasonable sub-air outlet can be selected for air outlet according to the interference situation between the placement position of the heating device and the environment where it is located, so as to ensure the heating effect of the heating device on the environment where it is located.
[0039] In some technical solutions, optionally, the flow-through cross-section of the first air outlet is set as the first cross-section, the included angle between the air outlet direction of the first air outlet and the first cross-section is α1, and the included angle β1 = 90° - α1 is set, and the included angle β1 is less than or equal to the first angle; and / or the flow-through cross-section of the second air outlet is set as the second cross-section, the included angle between the air outlet direction of the second air outlet and the second cross-section is α2, and the included angle β2 = 90° - α2 is set, and the included angle β2 is less than or equal to the second angle; wherein, the first angle and the second angle are less than or equal to 45°.
[0040] In this embodiment, the air outlet directions of the first air outlet and the second air outlet are defined. In this process, the first air outlet and the second air outlet can be used to realize air supply within a certain angle range, so as to heat the air within a larger air supply range, thereby accelerating the air temperature rise at the location of the heating device.
[0041] In some technical solutions, optionally, the first angle and the second angle are less than or equal to 10°. In this process, by defining that the first angle and the second angle are less than or equal to 10°, the air supply distance of the first air outlet and the second air outlet can be increased, thereby reducing the temperature difference in the room where the heating device is located.
[0042] In some technical solutions, optionally, the included angle between the air outlet direction of the first air outlet and the horizontal direction is less than or equal to 45°; and / or the included angle between the air outlet direction of the second air outlet and the vertical direction is less than or equal to 45°.
[0043] In some technical solutions, optionally, the included angle between the air outlet direction of the first air outlet and the horizontal direction is less than or equal to 10°; and / or the included angle between the air outlet direction of the second air outlet and the vertical direction is less than or equal to 10°.
[0044] In this embodiment, it can be understood that the first air outlet is used to blow air in the horizontal direction, and the second air outlet is used to blow air in the vertical direction.
[0045] According to the second aspect of the present invention, the present invention provides a control device for a heating device. The heating device includes a heating element, a first air outlet and a second air outlet. The control device includes: an acquisition unit for acquiring the heating power of the heating element; a processing unit for using the first air outlet to blow air when the heating power is the first power; and using the second air outlet to blow air when the heating power is the second power; wherein, the first power is greater than the second power.
[0046] The technical solution of this application proposes a control device for a heating device, which can select a corresponding air outlet for air output according to the heating power of the heating element. In this process, when the heating element generates heat at a relatively high power, the first air outlet can be used for air output, thereby heating the environment at a lower position, and when the heating power is relatively low, the second air outlet can be used for air output to realize air supply to the position where the user is located.
[0047] Specifically, in the initial stage of the operation of the heating device, its heating speed for the environment is relatively slow, and the heated space range is relatively small. In order to achieve rapid temperature rise, the heating element will be controlled to operate at a relatively high heating power. At this time, the first air outlet is used for air output to expand the space range heated by the heating device.
[0048] At the same time, as the heating device operates, one end of the space where the heating device is located has been heated for a certain period of time or its ambient temperature is already relatively high. At this time, the heating power of the heating element will decrease. At this time, the second air outlet is used to blow air to the user, so as to blow the heated air to the user.
[0049] In this process, compared with the solution of directly using the second air outlet to blow air to the user in the initial stage of the operation of the heating device, the control method proposed in this application can improve the problem that the air blown out by the heater is relatively cold, thereby enhancing the use experience of the heating device.
[0050] In addition, the control device of the heating device proposed in this application also has the following additional technical features.
[0051] In some technical solutions, optionally, the processing unit is further configured to: use the second air outlet for air output when the heating power is the third power; obtain the duration of the heating element operating at the third power; control the fan of the heating device to operate intermittently when the duration is greater than or equal to the first duration; wherein the third power is less than the second power.
[0052] In this technical solution, when the heating power is the third power, by counting the duration of the heating element operating at the third power, and then measuring the duration of the heating device in the current state according to the comparison result between the duration and the first duration, and then controlling the operating state of the fan according to the determination result.
[0053] In this process, the fan can be controlled to operate intermittently, so as to disturb the air flow by using the fan, and while heating the air by the heating device, reduce the operating duration of the fan, so as to reduce the operating power consumption of the heating device, and thus achieve energy saving.
[0054] In some technical solutions, optionally, the third power can be zero power.
[0055] In this technical solution, it can be understood that the continuous duration of the heating element stopping operation is counted, and then the fan is controlled to operate intermittently according to the comparison result.
[0056] In some technical solutions, optionally, the first duration can be set according to actual usage needs.
[0057] Specifically, the value of the first duration can be three minutes, five minutes, or eight minutes or ten minutes.
[0058] In some technical solutions, optionally, the acquisition unit is configured to: acquire a set temperature value, a first temperature value, and a second temperature value, where the first temperature value is less than the second temperature value; determine a candidate temperature range based on the set temperature value, the first temperature value, and the second temperature value, and each candidate temperature range corresponds to a heating power of the heating element; acquire an ambient temperature value; and determine the heating power based on the candidate temperature range in which the ambient temperature value is located.
[0059] In this technical solution, the determination of the heating power of the heating element is refined.
[0060] Specifically, as described above, at the initial stage of the operation of the heating device, the heating power of the heating element is relatively high, and as the heating device operates, the heating power of the heating element decreases.
[0061] Based on this, the technical solution of the present application acquires the set temperature value, and divides the candidate temperature range based on the set temperature value, the first temperature value, and the second temperature value, and determines the heating power of the heating element according to the temperature range in which the ambient temperature value is located.
[0062] Among them, the set temperature value is the temperature value that the user heats the environment by controlling the heating device to reach.
[0063] In this process, without measuring the actual operating parameters of the heating element, the indirect determination of the heating power can be realized, reducing the difficulty of measuring the heating power.
[0064] In addition, during the operation of the heating device, it is necessary to acquire the ambient temperature value to determine the heating situation of the heating device for the environment according to the comparison result between the ambient temperature value and the set temperature value. In the above technical solution, the reuse of the ambient temperature value and the set temperature value can be realized.
[0065] In some technical solutions, optionally, the second temperature value is greater than the first temperature value.
[0066] In some technical solutions, optionally, the temperature range to be selected includes a first temperature range, a second temperature range, and a third temperature range. The acquisition unit is configured to: determine a first difference between the set temperature value and the first temperature value; determine a second difference between the set temperature value and the second temperature value; determine a first broken line based on the first difference and the second difference; determine a first sum value of the set temperature value and the first temperature value; determine a second broken line based on the first sum value and the set temperature value; use the area on one side of the first broken line and far from the second broken line as the first temperature range; use the area between the first broken line and the second broken line as the second temperature range; and use the area on one side of the second broken line and far from the first broken line as the third temperature range.
[0067] In this technical solution, the division of the temperature range to be selected is refined.
[0068] In the above technical solution, by calculating the first difference, the first sum value, and the second difference, three temperature ranges are divided based on the set temperature value, the first difference, the first sum value, and the second difference. In this process, when the ambient temperature value increases, a comparison object with a higher value can be selected for the ambient temperature value, and when the ambient temperature value decreases, a comparison object with a lower value can be selected for the ambient temperature value, thereby reducing the switching frequency of the heating power.
[0069] In the above technical solution, as the ambient temperature value increases, the value of the heating power continuously decreases to reduce the thermal inertia of the heating element. Conversely, as the ambient temperature value decreases, the value of the heating power continuously increases to delay the decrease rate of the ambient temperature by adjusting the heating power of the heating element.
[0070] In some technical solutions, the processing unit is further configured to: control the fan of the heating device to operate in a preset mode; wherein, when the fan operates in the preset mode, the air outlet volume of the fan simulates natural wind.
[0071] By adopting the preset mode for air outlet, when the heating device operates in the preset mode, natural wind is blown to the user, reducing the problem that when blowing air at a constant wind speed, the user feels that the blowing is rigid and unnatural.
[0072] In some technical solutions, optionally, the first air outlet includes a first sub-air outlet and a second sub-air outlet that are oppositely arranged. The processing unit is configured to: use the first sub-air outlet and the second sub-air outlet for air outlet.
[0073] In this technical solution, the first air outlet is defined. In the above technical solution, since the first sub-air outlet and the second sub-air outlet are oppositely arranged, horizontal air outlet can be achieved by using the first sub-air outlet and the second sub-air outlet, so as to expand the space range heated by the heating device and improve the heating efficiency of the heating device for the environment where it is located.
[0074] In the above technical solution, the reasonable sub-air outlet can be selected for air outlet according to the interference situation between the placement position of the heating device and the environment where it is located, so as to ensure the heating effect of the heating device on the environment where it is located.
[0075] In some technical solutions, optionally, the flow-through cross-section of the first air outlet is set as the first cross-section, the included angle between the air outlet direction of the first air outlet and the first cross-section is α1, and the included angle β1 = 90° - α1 is set, and the included angle β1 is less than or equal to the first angle; and / or the flow-through cross-section of the second air outlet is set as the second cross-section, the included angle between the air outlet direction of the second air outlet and the second cross-section is α2, and the included angle β2 = 90° - α2 is set, and the included angle β2 is less than or equal to the second angle; wherein, the first angle and the second angle are less than or equal to 45°.
[0076] In this embodiment, the air outlet directions of the first air outlet and the second air outlet are defined. In this process, the first air outlet and the second air outlet can be used to realize air supply within a certain angle range, so as to heat the air within a larger air supply range and accelerate the air temperature rise at the position where the heating device is located.
[0077] In some technical solutions, optionally, the first angle and the second angle are less than or equal to 10°. In this process, by limiting the first angle and the second angle to be less than or equal to 10°, the air supply distance of the first air outlet and the second air outlet can be increased, thereby reducing the temperature difference in the room where the heating device is located.
[0078] In some technical solutions, optionally, the included angle between the air outlet direction of the first air outlet and the horizontal direction is less than or equal to 45°; and / or the included angle between the air outlet direction of the second air outlet and the vertical direction is less than or equal to 45°.
[0079] In some technical solutions, optionally, the included angle between the air outlet direction of the first air outlet and the horizontal direction is less than or equal to 10°; and / or the included angle between the air outlet direction of the second air outlet and the vertical direction is less than or equal to 10°.
[0080] In this embodiment, it can be understood that the first air outlet is used for horizontal air outlet, and the second air outlet is used for vertical air outlet.
[0081] According to the third aspect of the present invention, there is provided a control device for a heating device, including a processor and a memory. The memory stores programs or instructions that can run on the processor. When the programs or instructions are executed by the processor, the steps of the method as described in any one of the above are implemented.
[0082] According to the fourth aspect of the present invention, there is provided a readable storage medium, on which programs or instructions are stored. When the programs or instructions are executed by a processor, the steps of the method as described in any one of the above are implemented.
[0083] According to the fifth aspect of the present invention, there is provided a heating device, including: the control device of any one of the above heating devices; and / or the above readable storage medium.
[0084] The additional aspects and advantages of the present invention will be partly given in the following description, partly will become obvious from the following description, or will be understood through the practice of the present invention. BRIEF DESCRIPTION OF THE DRAWINGS
[0085] The above and / or additional aspects and advantages of the present invention will become obvious and easy to understand from the description of the embodiments in conjunction with the following drawings, wherein:
[0086] Figure 1 The flowchart showing the control method of the heating device in the embodiment of the present application;
[0087] Figure 2 The schematic structural diagram of the heating device in the embodiment of the present application;
[0088] Figure 3 The schematic structural diagram of the heating device in the embodiment of the present application;
[0089] Figure 4 The schematic diagram of the temperature range in the embodiment of the present application;
[0090] Figure 5 The schematic structural diagram of the heating device in the embodiment of the present application;
[0091] Figure 6 The schematic block diagram of a control device of a heating device in the embodiment of the present application;
[0092] Figure 7 The schematic block diagram of another control device of a heating device in the embodiment of the present application. Among them, Figure 2 、 Figure 3 and Figure 5 The corresponding relationship between the reference numerals and the component names in
[0093] 202 Heating element, 204 First air outlet, 206 Second air outlet, 208 Blower, 2042 First sub-air outlet, 2044 Second sub-air outlet, S1 First cross-section, S2 Second cross-section. Detailed implementation manner
[0094] In order to more clearly understand the above aspects, features and advantages of the present invention, the present invention will be further described in detail below with reference to the drawings and specific implementation manners. It should be noted that, without conflict, the embodiments of the present application and the features in the embodiments can be combined with each other.
[0095] In the following description, many specific details are set forth in order to fully understand the present invention. However, the present invention can also be implemented in other ways different from those described herein. Therefore, the protection scope of the present invention is not limited by the specific embodiments disclosed below.
[0096] In one embodiment of the present application, as Figure 1 , Figure 2 and Figure 3 shown, a control method for a heating device is provided. The heating device includes a heating element 202, a first air outlet 204 and a second air outlet 206. The control method includes:
[0097] Step 102, obtaining the heating power of the heating element;
[0098] Step 104, when the heating power is the first power, using the first air outlet to discharge air;
[0099] Step 106, when the heating power is the second power, using the second air outlet to discharge air.
[0100] Wherein, the first power is greater than the second power.
[0101] The embodiment of the present application proposes a control method for a heating device. By running the above control method, the corresponding air outlet can be selected for air discharge according to the heating power of the heating element. In this process, when the heating element generates heat at a higher power, the first air outlet can be used to discharge air, thereby heating the environment at a lower position. And when the heating power is relatively low, the second air outlet is used to discharge air to realize air supply to the position where the user is located.
[0102] Specifically, at the initial stage of the operation of the heating device, the heating speed of the environment is relatively slow and the heated space range is relatively small. In order to achieve rapid temperature rise, the heating element will be controlled to operate at a higher heating power. At this time, the first air outlet is used to discharge air in order to expand the space range heated by the heating device.
[0103] Meanwhile, as the heating device operates, the space where the heating device is located has been heated for a certain period of time or its ambient temperature is already relatively high. At this time, the heating power of the heating element will decrease. At this time, the second air outlet is used to blow air to the user, so as to blow the heated air to the user.
[0104] In this process, compared with the solution of directly using the second air outlet to blow air to the user at the initial stage of the operation of the heating device, the control method proposed in this application can improve the problem that the air blown out by the heater is too cold, thereby enhancing the user experience of the heating device.
[0105] In some embodiments, optionally, the heating device includes a blower 208. During the operation of the blower 208, air can be blown out through the first air outlet and / or the second air outlet.
[0106] In some embodiments, optionally, it further includes: when the heating power is the third power, the second air outlet is used to blow air; obtaining the continuous duration of the heating element operating at the third power; when the continuous duration is greater than or equal to the first duration, controlling the blower of the heating device to operate intermittently; wherein, the third power is less than the second power.
[0107] In this embodiment, when the heating power is the third power, by counting the continuous duration of the heating element operating at the third power, and then measuring the continuous duration of the heating device in the current state according to the comparison result of the continuous duration and the first duration, and then controlling the operating state of the blower 208 according to the determination result.
[0108] In this process, the blower 208 can be controlled to operate intermittently, so as to disturb the air flow by using the blower 208, and then while the heating device heats the air, the operating duration of the blower 208 is reduced, so as to reduce the operating power consumption of the heating device, and thus achieve energy saving.
[0109] In some embodiments, optionally, the third power can be zero power.
[0110] In this embodiment, it can be understood that the continuous duration of the heating element stopping operation is counted, and then the blower 208 is controlled to operate intermittently according to the comparison result.
[0111] In some embodiments, optionally, the first duration can be set according to actual usage needs.
[0112] Specifically, the value of the first duration can be three minutes, five minutes, or eight minutes or ten minutes.
[0113] In some embodiments, optionally, obtaining the heating power of the heating element includes: obtaining a set temperature value, a first temperature value, and a second temperature value, where the first temperature value is less than the second temperature value; determining a candidate temperature range based on the set temperature value, the first temperature value, and the second temperature value, with each candidate temperature range corresponding to the heating power of the heating element; obtaining the ambient temperature value; and determining the heating power based on the candidate temperature range in which the ambient temperature value is located.
[0114] In this embodiment, the determination of the heating power of the heating element is refined.
[0115] Specifically, as can be seen from the above, at the initial stage of the operation of the heating device, the heating power of the heating element is relatively high, and as the heating device operates, the heating power of the heating element decreases.
[0116] Based on this, the embodiments of the present application obtain the set temperature value, and divide to obtain the candidate temperature range based on the set temperature value, the first temperature value, and the second temperature value, and determine the heating power of the heating element according to the temperature range in which the ambient temperature value is located.
[0117] Among them, the set temperature value is the temperature value that the user makes the ambient temperature reach by controlling the heating device to heat the environment.
[0118] In this process, without measuring the actual operating parameters of the heating element, the indirect determination of the heating power can be realized, reducing the difficulty of measuring the heating power.
[0119] In addition, during the operation of the heating device, it is necessary to obtain the ambient temperature value in order to determine the heating situation of the heating device for the environment according to the comparison result between the ambient temperature value and the set temperature value. In the above embodiment, the reuse of the ambient temperature value and the set temperature value can be realized.
[0120] In some embodiments, optionally, as Figure 4 shown, the candidate temperature range includes a first temperature range, a second temperature range, and a third temperature range. Determining the candidate temperature range based on the set temperature value, the first temperature value, and the second temperature value includes: determining a first difference between the set temperature value and the first temperature value; determining a second difference between the set temperature value and the second temperature value; determining a first broken line based on the first difference and the second difference; determining a first sum value of the set temperature value and the first temperature value; determining a second broken line based on the first sum value and the set temperature value; taking the region where the temperature value is on one side of the first broken line and far from the second broken line as the first temperature range; taking the region where the temperature value is between the first broken line and the second broken line as the second temperature range; and taking the region where the temperature value is on one side of the second broken line and far from the first broken line as the third temperature range.
[0121] In this embodiment, the division of the candidate temperature range is refined.
[0122] As shown Figure 4 in the figure, the first temperature range, the second temperature range, and the third temperature range correspond to "one", "two", and "three" respectively.
[0123] In the above embodiment, by calculating the first difference, the first sum, and the second difference, three temperature ranges are divided based on the set temperature value, the first difference, the first sum, and the second difference. In this process, when the ambient temperature value increases, a comparison object with a higher value can be selected for the ambient temperature value, and when the ambient temperature value decreases, a comparison object with a lower value can be selected for the ambient temperature value, thereby reducing the switching frequency of the heating power.
[0124] In the above embodiment, as the ambient temperature value increases, the value of the heating power continuously decreases to reduce the thermal inertia of the heating element. Conversely, as the ambient temperature value decreases, the value of the heating power continuously increases to delay the rate of decrease of the ambient temperature by adjusting the heating power of the heating element.
[0125] In some embodiments, optionally, it further includes: controlling the blower of the heating device to operate according to a preset mode; wherein, when the blower operates according to the preset mode, the air volume of the blower outlet simulates natural wind.
[0126] By adopting the preset mode of air outlet, when the heating device operates according to the preset mode, natural wind is blown to the user, reducing the problem that when blowing air to the user at a constant wind speed, the user feels that the blowing is rigid and unnatural.
[0127] In some embodiments, optionally, when the blower 208 operates according to the preset mode, the operating speed of the blower 208 changes according to the wind speed change curve, so that the air volume of the blower 208 outlet simulates natural wind.
[0128] In this embodiment, the implementation manner of the heating device blowing air according to the wind speed change curve is defined.
[0129] Considering that the heating device uses the blower 208 to realize the air supply of the heating device, therefore, by controlling the blower 208 to operate according to the wind speed change curve, in this process, only by controlling the operation of the blower 208 can the simulation of natural wind be realized.
[0130] In some embodiments, optionally, it further includes: obtaining a second duration; determining the wind speed change curve based on the second duration and the ambient temperature value.
[0131] In this embodiment, by obtaining the second duration, the fluctuation period of the wind speed change curve can be determined according to the second duration, thereby realizing the customization of the wind speed change curve.
[0132] During this process, the natural wind can be customarily simulated, and then the wind expected by the user can be blown to the user, thereby improving the user experience.
[0133] In some embodiments, optionally, based on the second duration and the ambient temperature value, a wind speed change curve is determined, including: determining a basic wind speed value based on the ambient temperature value; determining a wind speed fluctuation period based on the second duration; and determining a wind speed change curve based on the basic wind speed value, the wind speed fluctuation period, and the wind speed change amplitude.
[0134] In this embodiment, the ambient temperature value is used to determine the basic wind speed value so that when the natural wind blows out, the air volume can be maintained at a certain level, thereby ensuring the heating effect of the heating device.
[0135] Among them, the wind speed change amplitude can be preset, such as set by the user when using the heating device, or set by the heating device at the time of factory shipment.
[0136] Specifically, a sine wave form is determined based on the wind speed fluctuation period and the wind speed change amplitude, and the basic wind speed value is superimposed on the basis of the above sine wave form to obtain a wind speed change curve.
[0137] During this process, an air volume that changes according to the sine wave form and the ambient temperature value can be formed. While simulating the natural wind, the problem that the user feels that the blowing wind is rigid and unnatural due to blowing the wind to the user at a constant wind speed is reduced.
[0138] In some embodiments, optionally, the first air outlet 204 includes a first sub-air outlet 2042 and a second sub-air outlet 2044 that are oppositely arranged. Using the first air outlet 204 to blow out air includes: using the first sub-air outlet 2042 and the second sub-air outlet 2044 to blow out air.
[0139] In this embodiment, the first air outlet 204 is defined. In the above embodiment, since the first sub-air outlet 2042 and the second sub-air outlet 2044 are oppositely arranged, the first sub-air outlet 2042 and the second sub-air outlet 2044 can be used to blow out air in the horizontal direction, so as to expand the space range heated by the heating device and improve the heating efficiency of the heating device for the environment where it is located.
[0140] In the above embodiment, the reasonable sub-air outlet can be selected according to the interference situation between the placement position of the heating device and the environment where it is located to blow out air, so as to ensure the heating effect of the heating device on the environment where it is located.
[0141] In some embodiments, optionally, such as Figure 5As shown, set the flow-through cross-section of the first air outlet 204 as the first cross-section S1, and the angle between the air outlet direction of the first air outlet 204 and the first cross-section S1 is α1. Set the angle β1 = 90° - α1, and the angle β1 is less than or equal to the first angle; and / or set the flow-through cross-section of the second air outlet 206 as the second cross-section S2, and the angle between the air outlet direction of the second air outlet 206 and the second cross-section S2 is α2. Set the angle β2 = 90° - α2, and the angle β2 is less than or equal to the second angle; wherein, the first angle and the second angle are less than or equal to 45°.
[0142] In the above embodiment, the flow-through cross-section of the first air outlet 204, that is, the first cross-section S1, can be understood as the cross-section of the channel through which the gas inside the heating device is pumped to the outside of the heating device by the first air outlet 204. Similarly, the flow-through cross-section of the second air outlet 206, that is, the second cross-section S2, can be understood as the cross-section of the channel through which the gas inside the heating device is pumped to the outside of the heating device by the second air outlet 206.
[0143] In this embodiment, the air outlet directions of the first air outlet 204 and the second air outlet 206 are limited. In this process, the first air outlet 204 and the second air outlet 206 can be used to realize air supply within a certain angle range, so as to heat the air within a larger air supply range, thereby accelerating the air temperature rise at the location of the heating device.
[0144] In some embodiments, optionally, the first angle and the second angle are less than or equal to 10°. In this process, by limiting the first angle and the second angle to be less than or equal to 10°, the air supply distance of the first air outlet 204 and the second air outlet 206 can be increased, thereby reducing the temperature difference in the room where the heating device is located.
[0145] In some embodiments, optionally, the angle between the air outlet direction of the first air outlet 204 and the horizontal direction is less than or equal to 45°; and / or the angle between the air outlet direction of the second air outlet 206 and the vertical direction is less than or equal to 45°.
[0146] In some embodiments, optionally, the angle between the air outlet direction of the first air outlet 204 and the horizontal direction is less than or equal to 10°; and / or the angle between the air outlet direction of the second air outlet 206 and the vertical direction is less than or equal to 10°.
[0147] In this embodiment, it can be understood that the first air outlet 204 is used to blow air in the horizontal direction, and the second air outlet 206 is used to blow air in the vertical direction.
[0148] In one of the embodiments, such as Figure 6As shown in the figure, the present invention provides a control device 600 for a heating device. The heating device includes a heating element, a first air outlet, and a second air outlet. The control device includes: an acquisition unit 602 for acquiring the heating power of the heating element; a processing unit 604 for using the first air outlet to blow air when the heating power is the first power, and using the second air outlet to blow air when the heating power is the second power; wherein the first power is greater than the second power.
[0149] An embodiment of the present application proposes a control device 600 for a heating device, which can select a corresponding air outlet to blow air according to the heating power of the heating element. In this process, when the heating element generates heat at a higher power, the first air outlet can be used to blow air, thereby heating the environment at a lower position, and when the heating power is lower, the second air outlet can be used to blow air to achieve air supply to the position where the user is located.
[0150] Specifically, at the initial stage of the operation of the heating device, the heating speed of the environment is relatively slow and the heated space range is relatively small. In order to achieve rapid temperature rise, the heating element will be controlled to operate at a higher heating power. At this time, the first air outlet is used to blow air to expand the space range heated by the heating device.
[0151] At the same time, as the heating device operates, the space where the heating device is located has been heated for a certain period of time or its ambient temperature is already relatively high. At this time, the heating power of the heating element will decrease. At this time, the second air outlet is used to blow air to the user, so as to blow the heated air to the user.
[0152] In this process, compared with the solution of directly using the second air outlet to blow air to the user at the initial stage of the operation of the heating device, the control method proposed in the present application can improve the problem that the air blown out by the heater is relatively cold, thereby improving the use experience of the heating device.
[0153] In some embodiments, optionally, the processing unit 604 is further configured to: use the second air outlet to blow air when the heating power is the third power; acquire the continuous duration of the heating element operating at the third power; and control the fan of the heating device to operate intermittently when the continuous duration is greater than or equal to the first duration; wherein the third power is less than the second power.
[0154] In this embodiment, when the heating power is the third power, by counting the continuous duration of the heating element operating at the third power, and then measuring the continuous duration of the heating device in the current state according to the comparison result between the continuous duration and the first duration, and then controlling the operating state of the fan according to the determination result.
[0155] In this process, the fan can be controlled to run intermittently to disturb the air flow by using the fan, so that while the heating device heats the air, the running duration of the fan is reduced, so as to reduce the running power consumption of the heating device, thereby achieving energy saving.
[0156] In some embodiments, optionally, the third power may be zero power.
[0157] In this embodiment, it can be understood that the continuous duration of the heating element stopping running is statistically counted, and then the fan is controlled to run intermittently according to the comparison result.
[0158] In some embodiments, optionally, the first duration can be set according to actual usage needs.
[0159] Specifically, the value of the first duration can be three minutes, five minutes, eight minutes or ten minutes.
[0160] In some embodiments, optionally, the obtaining unit 602 is configured to: obtain a set temperature value, a first temperature value and a second temperature value, where the first temperature value is less than the second temperature value; determine a temperature range to be selected according to the set temperature value, the first temperature value and the second temperature value, and each temperature range to be selected corresponds to a heating power of the heating element; obtain an ambient temperature value; and determine the heating power based on the temperature range in which the ambient temperature value is located.
[0161] In this embodiment, the determination of the heating power of the heating element is refined.
[0162] Specifically, as can be seen from the above, at the initial stage of the operation of the heating device, the heating power of the heating element is relatively high, and as the heating device operates, the heating power of the heating element decreases.
[0163] Based on this, the embodiment of the present application obtains a set temperature value, and divides and obtains a temperature range to be selected based on the set temperature value, the first temperature value and the second temperature value, and determines the heating power of the heating element according to the temperature range in which the ambient temperature value is located.
[0164] Among them, the set temperature value is the temperature value that the user makes the ambient temperature reach by controlling the heating device to heat the environment.
[0165] In this process, without measuring the actual operating parameters of the heating element, the indirect determination of the heating power can be achieved, which reduces the difficulty of measuring the heating power.
[0166] In addition, during the operation of the heating device, it is necessary to obtain the ambient temperature value to determine the heating situation of the heating device according to the comparison result between the ambient temperature value and the set temperature value. In the above embodiment, the reuse of the ambient temperature value and the set temperature value can be achieved.
[0167] In some embodiments, optionally, the second temperature value is greater than the first temperature value.
[0168] In some embodiments, optionally, the temperature range to be selected includes a first temperature range, a second temperature range, and a third temperature range. The acquisition unit 602 is configured to: determine a first difference between the set temperature value and the first temperature value; determine a second difference between the set temperature value and the second temperature value; determine a first broken line based on the first difference and the second difference; determine a first sum value of the set temperature value and the first temperature value; determine a second broken line based on the first sum value and the set temperature value; use the region where the temperature value is on one side of the first broken line and far from the second broken line as the first temperature range; use the region where the temperature value is between the first broken line and the second broken line as the second temperature range; and use the region where the temperature value is on one side of the second broken line and far from the first broken line as the third temperature range.
[0169] In this embodiment, the division of the temperature range to be selected is refined.
[0170] In the above embodiment, by calculating the first difference, the first sum value, and the second difference, three temperature ranges are divided based on the set temperature value, the first difference, the first sum value, and the second difference. In this process, when the ambient temperature value increases, a comparison object with a higher value can be selected for the ambient temperature value, and when the ambient temperature value decreases, a comparison object with a lower value can be selected for the ambient temperature value, so as to reduce the switching frequency of the heating power.
[0171] In the above embodiment, as the ambient temperature value increases, the value of the heating power continuously decreases to reduce the thermal inertia of the heating element. On the contrary, as the ambient temperature value decreases, the value of the heating power continuously increases to delay the decrease rate of the ambient temperature by adjusting the heating power of the heating element.
[0172] In some embodiments, the processing unit 604 is further configured to: control the blower of the heating device to operate in a preset mode; wherein, when the blower operates in the preset mode, the air outlet volume of the blower simulates natural wind.
[0173] By adopting the preset mode for air outlet, when the heating device operates in the preset mode, natural wind is blown to the user, reducing the problem that when blowing air at a constant wind speed, the user feels that the blowing is rigid and unnatural.
[0174] In some embodiments, optionally, the first air outlet includes a first sub-air outlet and a second sub-air outlet which are oppositely arranged. The processing unit 604 is configured to: use the first sub-air outlet and the second sub-air outlet for air outlet.
[0175] In this embodiment, the first air outlet is defined. In the above embodiment, since the first sub-air outlet and the second sub-air outlet are oppositely arranged, the first sub-air outlet and the second sub-air outlet can be used to blow air in the horizontal direction, so as to expand the space range heated by the heating device and improve the heating efficiency of the heating device for the environment where it is located.
[0176] In the above embodiment, the reasonable sub-air outlet can be selected for air blowing according to the interference situation between the placement position of the heating device and the environment where it is located, so as to ensure the heating effect of the heating device on the environment where it is located.
[0177] In some embodiments, optionally, as Figure 5 shown, the flow-through cross-section of the first air outlet 204 is set as the first cross-section S1, the included angle between the air outlet direction of the first air outlet 204 and the first cross-section S1 is α1, and the included angle β1 = 90° - α1 is set, and the included angle β1 is less than or equal to the first angle; and / or the flow-through cross-section of the second air outlet 206 is set as the second cross-section S2, the included angle between the air outlet direction of the second air outlet 206 and the second cross-section S2 is α2, and the included angle β2 = 90° - α2 is set, and the included angle β2 is less than or equal to the second angle; wherein, the first angle and the second angle are less than or equal to 45°.
[0178] In this embodiment, the air outlet directions of the first air outlet 204 and the second air outlet 206 are defined. In this process, the first air outlet 204 and the second air outlet 206 can be used to realize air blowing within a certain angle range, so as to heat the air within a larger air blowing range and accelerate the air temperature rise at the position where the heating device is located.
[0179] In some embodiments, optionally, the first angle and the second angle are less than or equal to 10°. In this process, by defining that the first angle and the second angle are less than or equal to 10°, the air blowing distance of the first air outlet 204 and the second air outlet 206 can be increased, and further the temperature difference in the room where the heating device is located can be reduced.
[0180] In some embodiments, optionally, the included angle between the air outlet direction of the first air outlet 204 and the horizontal direction is less than or equal to 45°; and / or the included angle between the air outlet direction of the second air outlet 206 and the vertical direction is less than or equal to 45°.
[0181] In some embodiments, optionally, the included angle between the air outlet direction of the first air outlet 204 and the horizontal direction is less than or equal to 10°; and / or the included angle between the air outlet direction of the second air outlet 206 and the vertical direction is less than or equal to 10°.
[0182] In this embodiment, it can be understood that the first air outlet 204 is used to blow air in the horizontal direction, and the second air outlet 206 is used to blow air in the vertical direction.
[0183] In one embodiment, as Figure 7 shown, the present invention provides a control device 700 for a heating device, including a processor 702 and a memory 704. The memory 704 stores programs or instructions that can be run on the processor 702. When the programs or instructions are executed by the processor 702, the steps of the method according to any one of the above are implemented.
[0184] In one embodiment, the present invention provides a readable storage medium with programs or instructions stored thereon. When the programs or instructions are executed by a processor, the steps of the method according to any one of the above are implemented.
[0185] In one embodiment, the present invention provides a heating device, including: the control device of any one of the above heating devices; and / or the above readable storage medium.
[0186] In one embodiment, the heating device further includes a temperature sensor for the user to obtain the ambient temperature value. Among them, the temperature sensor is arranged at the air inlet of the heating device.
[0187] The terms "first" and "second" in the description and claims of this application may explicitly or implicitly include one or more of such features. In the textual description of the present invention, unless otherwise specified, the meaning of "a plurality" is two or more. Additionally, "and / or" in the description and claims means at least one of the connected objects. The character " / ", generally represents an "or" relationship between the associated objects before and after.
[0188] In the claims, description, and description drawings of the present invention, the term "a plurality" refers to two or more, unless otherwise explicitly defined. The orientation or positional relationship indicated by terms such as "upper" and "lower" is based on the orientation or positional relationship shown in the drawings, only for the convenience of describing the present invention and making the description process simpler, rather than indicating or implying that the device or element referred to must have the specific orientation, be constructed and operated in the specific orientation. Therefore, these descriptions should not be construed as limitations on the present invention; terms such as "connection", "installation", and "fixation" should all be understood in a broad sense. For example, "connection" can be a fixed connection between multiple objects, a detachable connection between multiple objects, or an integral connection; it can be a direct connection between multiple objects, or an indirect connection between multiple objects through an intermediate medium. For those of ordinary skill in the art, the specific meanings of the above terms in the present invention can be understood according to the specific circumstances of the above data.
[0189] In the claims, the specification and the drawings of the present invention, the descriptions of terms such as "one embodiment", "some embodiments", "specific embodiments", etc. mean that the specific features, structures, materials or characteristics described in connection with the embodiment or example are included in at least one embodiment or example of the present invention. In the claims, the specification and the drawings of the present invention, the schematic representations of the above terms do not necessarily refer to the same embodiment or example. Moreover, the specific features, structures, materials or characteristics described may be combined in any one or more embodiments or examples in a suitable manner.
[0190] The above are only the preferred embodiments of the present invention and are not intended to limit the present invention. For those skilled in the art, the present invention may have various changes and modifications. Any modification, equivalent replacement, improvement, etc. made within the spirit and principle of the present invention shall be included within the protection scope of the present invention.
Claims
1. A control method for a heating device, characterized in that, the heating device includes a heating element, a first air outlet and a second air outlet, and the control method includes: obtaining the heating power of the heating element; when the heating power is a first power, using the first air outlet to discharge air; when the heating power is a second power, using the second air outlet to discharge air; wherein, the first power is greater than the second power.
2. The control method for a heating device according to claim 1, characterized in that, further includes: when the heating power is a third power, using the second air outlet to discharge air; obtaining the continuous duration of the heating element operating at the third power; when the continuous duration is greater than or equal to a first duration, controlling the blower of the heating device to operate intermittently; wherein, the third power is less than the second power.
3. The control method for a heating device according to claim 2, characterized in that, the obtaining the heating power of the heating element includes: obtaining a set temperature value, a first temperature value and a second temperature value, the first temperature value being less than the second temperature value; determining a candidate temperature range according to the set temperature value, the first temperature value and the second temperature value, and each candidate temperature range corresponds to the heating power of the heating element; obtaining an ambient temperature value; determining the heating power based on the candidate temperature range in which the ambient temperature value is located.
4. The control method for a heating device according to claim 3, characterized in that, the candidate temperature ranges include a first temperature range, a second temperature range and a third temperature range, and the determining the candidate temperature range according to the set temperature value, the first temperature value and the second temperature value includes: determining a first difference between the set temperature value and the first temperature value; determining a second difference between the set temperature value and the second temperature value; determining a first broken line based on the first difference and the second difference; determining a first sum value of the set temperature value and the first temperature value; determining a second broken line based on the first sum value and the set temperature value; taking the area on one side of the first broken line and far from the second broken line as the first temperature range; taking the area between the first broken line and the second broken line as the second temperature range; taking the area on one side of the second broken line and far from the first broken line as the third temperature range.
5. The control method for a heating device according to any one of claims 1 to 4, characterized in that, further includes: controlling the blower of the heating device to operate according to a preset mode; wherein, when the blower operates according to the preset mode, the air volume of the blower simulates natural wind.
6. The control method for a heating device according to claim 5, characterized in that, the first air outlet includes a first sub-air outlet and a second sub-air outlet arranged oppositely, and the using the first air outlet to discharge air includes: using the first sub-air outlet and the second sub-air outlet to discharge air.
7. The control method of the heating device according to any one of claims 1 to 4, characterized in that, the flow cross-section of the first air outlet is set as the first cross-section, the included angle between the air outlet direction of the first air outlet and the first cross-section is α1, and the included angle β1 = 90° - α1 is set, and the included angle β1 is less than or equal to the first angle; and / or the flow cross-section of the second air outlet is set as the second cross-section, the included angle between the air outlet direction of the second air outlet and the second cross-section is α2, and the included angle β2 = 90° - α2 is set, and the included angle β2 is less than or equal to the second angle; wherein, the first angle and the second angle are less than or equal to 45°.
8. A control device of a heating device, characterized in that, the heating device includes a heating element, a first air outlet and a second air outlet, and the control device includes: an acquisition unit for acquiring the heating power of the heating element; a processing unit for using the first air outlet to discharge air when the heating power is the first power; using the second air outlet to discharge air when the heating power is the second power; wherein, the first power is greater than the second power.
9. A control device of a heating device, characterized in that, it includes a processor and a memory, the memory stores a program or instruction that can run on the processor, and when the program or instruction is executed by the processor, the steps of the method according to any one of claims 1 to 7 are implemented.
10. A readable storage medium, characterized in that, a program or instruction is stored on the readable storage medium, and when the program or instruction is executed by a processor, the steps of the method according to any one of claims 1 to 7 are implemented.
11. A heating device, characterized in that, it includes: the control device of the heating device according to claim 8 or 9; and / or the readable storage medium according to claim 10.