Control Method, Device, Equipment and Storage Medium of a Device

By controlling the air guide plate according to the target temperature when the air conditioner is turned on, the problem of low air outlet temperature in the initial stage of heating is solved, and the effect of quickly achieving the set temperature and improving heating comfort is achieved.

CN115406087BActive Publication Date: 2025-06-17ZHUHAI GREE REFRIGERATION TECH CENT OF ENERGY SAVING & ENVIRONMENTAL PROTECTION
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Patent Information

Application Number
CN202210997088.3
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2022-08-18
Publication Date
2025-06-17
Estimated Expiration
2042-08-18

AI Technical Summary

Technical Problem

The air temperature of existing wall-mounted air conditioners is low during the initial heating stage, resulting in the user being blown directly into cold air, unable to quickly reach the set temperature, resulting in poor indoor heating comfort.

Method used

When the heating mode of the equipment is turned on, the target temperature of the target component is obtained, the control strategy of the target air guide plate is determined, and the opening and closing state and rotation direction of the air guide plate are controlled according to the strategy to achieve the effect of quickly achieving the set temperature.

Benefits of technology

It effectively avoids direct cold air blowing of the equipment, improves heating comfort, and ensures that the indoor temperature quickly reaches the value set by the user.

✦ Generated by Eureka AI based on patent content.

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Abstract

An embodiment of the present invention relates to a control method, device, equipment and storage medium for a device. The method includes: when the device is turned on to the heating mode, obtaining the target temperature of a target component in the device; determining a control strategy for a target air deflector of the device according to the target temperature; and controlling the target air deflector according to the control strategy. Thus, the technical effect of avoiding direct cold air blowing in the initial stage of the heating mode and improving the heating comfort can be achieved.
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Description

Technical Field

[0001] Embodiments of the present invention relate to the technical field of smart home, and in particular, to a control method, device, equipment and storage medium for a device. Background Art

[0002] With the continuous development of the air conditioner industry, the air outlet temperature of the wall-mounted air conditioner on the market is relatively low in the initial stage of heating. In this stage, the air flow blown out from the air duct of the air conditioner is cold, resulting in the user being directly blown by cold air, unable to quickly reach the temperature value set by the user, bringing an uncomfortable experience to the user, and causing problems such as poor indoor heating comfort.

[0003] Based on this, how to solve the problem of the device blowing cold air directly and poor heating comfort has become an urgent problem to be solved at present. Summary of the Invention

[0004] In view of this, to solve the above technical problems of the device blowing cold air directly and poor heating comfort, embodiments of the present invention provide a control method, device, equipment and storage medium for a device.

[0005] In a first aspect, an embodiment of the present invention provides a control method for a device, including:

[0006] When the device is turned on to the heating mode, obtain the target temperature of the target component in the device;

[0007] Determine the control strategy of the target air deflector of the device according to the target temperature;

[0008] Control the target air deflector according to the control strategy.

[0009] In a possible implementation manner, the target air deflector at least includes: a first air deflector and a second air deflector;

[0010] The determining the control strategy of the target air deflector of the device according to the target temperature includes:

[0011] When the target temperature is less than the first threshold, determine the control strategy of the target air deflector as the first control strategy;

[0012] The controlling the target air deflector according to the control strategy includes:

[0013] When the control strategy is the first control strategy, control the second air deflector to remain in the closed state, and open the first air deflector to the first preset position. Wherein, when the control strategy is the first control strategy, the rotation speed of the internal blower of the device is the first rotation speed.

[0014] In a possible implementation, the control strategy for determining the target air deflector of the device according to the target temperature includes:

[0015] When the target temperature is greater than or equal to the first threshold and less than or equal to the second threshold, determine the control strategy for the target air deflector as the second control strategy;

[0016] The control of the target air deflector according to the control strategy includes:

[0017] When the control strategy is the second control strategy, obtain the set temperature of the device and the ambient temperature of the area where the device is located;

[0018] Determine the difference between the set temperature and the ambient temperature;

[0019] When the difference is greater than or equal to the third threshold, control the first air deflector and the second air deflector to open simultaneously, and the rotation directions of the first air deflector and the second air deflector are opposite. When the first air deflector and the second air deflector complete rotation, form up and down blowing, where the rotation speed of the internal fan of the device is the second rotation speed.

[0020] In a possible implementation, the control of the target air deflector according to the control strategy includes:

[0021] When the control strategy is the second control strategy and the difference is less than the third threshold, control the first air deflector and the second air deflector to open simultaneously, and the rotation directions of the first air deflector and the second air deflector are opposite. When the first air deflector and the second air deflector complete rotation, form up and down blowing, and the rotation speed of the internal fan of the device is the third rotation speed.

[0022] In a possible implementation, the method includes:

[0023] When the control strategy is the first control strategy, obtain the running duration of the device;

[0024] When the running duration reaches the set duration threshold, switch the control strategy of the target air deflector from the first control strategy to the second control strategy.

[0025] In a possible implementation, the method includes:

[0026] When the control strategy is the first control strategy, detect whether the target temperature reaches the first threshold;

[0027] When the target temperature reaches the first threshold, switch the control strategy of the target air deflector from the first control strategy to the second control strategy.

[0028] In a possible implementation, the control strategy for determining the target air deflector of the device according to the target temperature includes:

[0029] When the target temperature is greater than a second threshold, determining the control strategy for the target air deflector as a third control strategy;

[0030] The control of the target air deflector according to the control strategy includes:

[0031] When the control strategy is the third control strategy, obtaining the set temperature of the device and the ambient temperature of the area where the device is located;

[0032] Determining the difference between the set temperature and the ambient temperature;

[0033] When the difference is greater than or equal to a fourth threshold, controlling the first air deflector and the second air deflector to be opened simultaneously, and the rotation directions of the first air deflector and the second air deflector are opposite, and when the first air deflector and the second air deflector complete rotation, up and down blowing is formed, wherein the rotation speed of the internal fan of the device is the fourth rotation speed.

[0034] In a possible implementation, the control of the target air deflector according to the control strategy includes:

[0035] When the control strategy is the third control strategy and the difference is less than the fourth threshold, controlling the first air deflector to be closed and the second air deflector to be opened to a second preset position, wherein the rotation speed of the internal fan of the device is the fifth rotation speed.

[0036] In a second aspect, an embodiment of the present invention provides a control device for a device, including:

[0037] An acquisition module, configured to acquire the target temperature of a target component in the device when the device is turned on to the heating mode;

[0038] A determination module, configured to determine a control strategy for the target air deflector of the device according to the target temperature;

[0039] A control module, configured to control the target air deflector according to the control strategy.

[0040] In a third aspect, an embodiment of the present invention provides a device, including: a processor and a memory, where the processor is configured to execute a control program of the device stored in the memory to implement the control method of the device according to any one of the first aspects.

[0041] In a fourth aspect, an embodiment of the present invention provides a device, including: a target air deflector disposed at an air outlet, where the target air deflector includes a first air deflector and a second air deflector;

[0042] The target air deflector is configured to perform corresponding operations according to the control strategy corresponding to the target temperature of the target component in the device when the device is turned on to the heating mode.

[0043] In a fifth aspect, an embodiment of the present invention provides a storage medium, characterized in that the storage medium stores one or more programs, and the one or more programs can be executed by one or more processors to implement the control method of the device according to any one of the first aspects.

[0044] The control solution of the device provided by the embodiment of the present invention includes: when the device is turned on to the heating mode, obtaining the target temperature of the target component in the device; after the device is turned on to the heating mode, first obtaining the target temperature of the specified component in the device; determining the control strategy of the target air deflector of the device according to the target temperature; determining the current heating state by analyzing the magnitude of the target temperature, and further determining the control strategy of the target air deflector of the device; controlling the target air deflector according to the control strategy; by setting different control strategies, performing different control operations on the target air deflector of the device, and completing the control operation of the target air deflector of the device in the heating mode; according to this solution, the technical effect of avoiding the device from directly blowing cold air and improving the heating comfort can be achieved. BRIEF DESCRIPTION OF THE DRAWINGS

[0045] The drawings here are incorporated into the description and form a part of this description, showing embodiments consistent with the present invention and used together with the description to explain the principles of the present invention.

[0046] Figure 1 It is a schematic flowchart of a control method for a device provided by an embodiment of the present invention;

[0047] Figure 2 It is a schematic flowchart of another control method for a device provided by an embodiment of the present invention;

[0048] Figure 3 It is a schematic flowchart of still another control method for a device provided by an embodiment of the present invention;

[0049] Figure 4a It is a scenario schematic of a control method for a device provided by an embodiment of the present invention Figure 1 ;

[0050] Figure 4b It is a scenario schematic of a control method for a device provided by an embodiment of the present invention Figure 2 ;

[0051] Figure 4c It is a scenario schematic of a control method for a device provided by an embodiment of the present invention Figure 3 ;

[0052] Figure 5 Schematic structural diagram of a control device for a device provided by an embodiment of the present invention;

[0053] Figure 6 Schematic structural diagram of a device provided by an embodiment of the present invention. Specific embodiments

[0054] To make the objectives, technical solutions, and advantages of the embodiments of the present invention clearer, the technical solutions in the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings in the embodiments of the present invention. Apparently, the described embodiments are some, but not all, of the embodiments of the present invention. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present invention without creative efforts shall fall within the protection scope of the present invention.

[0055] The terms "including" and "having" in the embodiments of the present invention are used to mean an open inclusion, and it means that there may be additional elements / components / etc. in addition to the listed elements / components / etc.; the terms "first" and "second" etc. are only used as labels and are not a limitation on the quantity of their objects. In addition, different elements and regions in the drawings are only schematically shown, so the present invention is not limited to the sizes or distances shown in the drawings.

[0056] For ease of understanding of the embodiments of the present invention, the following will further explain with specific embodiments in conjunction with the accompanying drawings. The embodiments do not constitute a limitation on the embodiments of the present invention.

[0057] Figure 1 Schematic flowchart of a control method for a device provided by an embodiment of the present invention. According to Figure 1 the provided diagram, the control method of the device specifically includes:

[0058] S101. When the device is turned on to the heating mode, obtain the target temperature of the target component in the device.

[0059] The execution subject of the embodiment of the present invention is a heating device, and the opening and closing state of the air deflector of the device is controlled by the temperature of the specified component provided on the device.

[0060] Among them, the target component can be understood as one of the multiple functional components installed in the device, and the target component is selected as the component with the heat generation function. The target temperature here can be understood as the actual temperature of the detected target component, and the detection method here can be measured by a temperature sensor, a thermometer, or other temperature measuring devices, which will not be elaborated here.

[0061] Further, when the heating mode of the device is detected by a detection instrument, specify the target components in the detection device, obtain the current target temperature information of the target components, and store the target temperature in the device manager.

[0062] S102. Determine the control strategy of the target air deflector of the device according to the target temperature.

[0063] The target air deflector mentioned here can be understood as the device on the device for air outlet. The effect of air outlet is achieved by opening the target air deflector. The number of the target air deflectors includes at least one, but is not limited to one. The position of the target air deflector can be set above, below or in front of the device, which will not be elaborated here.

[0064] Further, after obtaining the target temperature in the device, according to the magnitude of the target temperature, determine the current heating state of the device, and then determine different control strategies set by the device for different target temperatures, and control the opening and closing state of the target air deflector through different control strategies.

[0065] S103. Control the target air deflector according to the control strategy.

[0066] The control mentioned here can be understood as achieving the effect of controlling the heating mode of the device by controlling the opening angle of the target air deflector.

[0067] Further, according to different target temperatures in the device, different control strategies are obtained. According to different control strategies, control the opening angle and wind force of the target air deflector of the device to achieve the effect of controlling the device to quickly reach the heating mode.

[0068] The control method of the device provided by the embodiment of the present invention includes: when the heating mode of the device is turned on, obtain the target temperature of the target components in the device; after the heating mode of the device is turned on, first obtain the target temperature of the specified components in the device; determine the control strategy of the target air deflector of the device according to the target temperature; determine the current heating state by analyzing the magnitude of the target temperature, and then determine the control strategy for the target air deflector of the device; control the target air deflector according to the control strategy; by setting different control strategies, perform different control operations on the target air deflector of the device to complete the control operation of the target air deflector of the device in the heating mode; according to this solution, the technical effect of avoiding the device from blowing cold air directly and improving the heating comfort can be achieved.

[0069] Figure 2 It is a schematic flowchart of another control method of the device provided by the embodiment of the present invention. Figure 2 It is introduced on the basis of the previous embodiment. As Figure 2 shown in the provided diagram, the control method of the device specifically further includes:

[0070] S201. When the device is turned on in the heating mode, obtain the target temperature of the target component in the device.

[0071] The execution subject of the embodiments of the present invention is a heating device, and the opening and closing state of the air deflector of the device is controlled by the temperature of the designated component set on the device. Applied in the heating process of an air conditioner, there are two upper and lower air deflectors installed in the air conditioner. At the same time, the upper air deflector is set as a large air deflector, and the lower air deflector is set as a small air deflector. By detecting the temperature of the evaporator tube in the air conditioner, the states of the large and small air deflectors of the air conditioner are controlled to achieve rapid heating and avoid direct blowing of cold air.

[0072] Among them, the target component can be understood as one of the multiple functional components installed in the device, and the target component is selected as the component with heat generation function. The target temperature here can be understood as the actual temperature of the detected target component. The detection method here can be measured by a temperature sensor, a thermometer or other temperature measuring devices, which will not be elaborated here.

[0073] Further, when it is detected by the detection instrument that the device is turned on in the heating mode, detect the designated target component in the device, obtain the current target temperature information of the target component, and store the target temperature data in the device manager.

[0074] In a possible instance scenario, the temperature of the evaporator tube in the air conditioner is detected in real time by devices such as a temperature sensor, and the detected temperature information of the evaporator tube is stored.

[0075] S202. When the target temperature is less than the first threshold, determine that the control strategy for the target air deflector is the first control strategy.

[0076] Among them, the target air deflector includes at least a first air deflector and a second air deflector. The position of the first air deflector is set above the second air deflector, and the size of the first air deflector is set larger than that of the second air deflector. The first air deflector of the device is used to realize the upper blowing control, and the second air deflector is used to realize the lower blowing control. The first threshold here can be understood as the temperature reference value in the preset low temperature state, which is used to limit whether the target temperature of the current device reaches the first threshold. The first control strategy here can be understood as the control strategy executed on the target air deflector of the device when the target temperature in the device is lower than the first threshold.

[0077] Further, there are two target air deflectors set in the device. When it is detected that the target temperature in the current device is less than the first threshold, it is determined that the current device is in the low temperature heating state, and then it is determined to adopt the first control strategy to control the target air deflector of the device.

[0078] In a possible example scenario, there are upper and lower air deflectors in the air conditioner, and the upper air deflector is set as a large air deflector, and the lower air deflector is set as a small air deflector. The specific positions of the upper and lower air deflectors are not specifically limited. The threshold value of the evaporator tube temperature of the air conditioner is set to 30°C, with a floating range of 30°C ± 5°C. When the evaporator tube temperature in the air conditioner is lower than 30°C, it is determined that the current air conditioner is in the primary stage of the heating mode, and cold air is blown out through the air conditioner, and then the opening states of the upper and lower air deflectors of the air conditioner are controlled.

[0079] S203. When the control strategy is the first control strategy, control the second air deflector to remain closed, and the first air deflector is opened to the first preset position. Among them, when the control strategy is the first control strategy, the rotational speed of the internal fan of the device is the first rotational speed.

[0080] The first preset position mentioned here can be understood as the opening gear of the first air deflector of the device. Multiple opening angles are set for the first air deflector of the device, and corresponding gears are set for each angle. It can be set according to the rule that the larger the opening angle of the first air deflector, the corresponding gear increases, or adjusted according to the rule that the larger the opening angle of the first air deflector, the smaller the corresponding gear is set. The internal fan mentioned here can be understood as the component in the device used to control the blowing wind speed. The greater the rotational speed of the internal fan, the stronger the air output of the corresponding device. By adjusting the rotational speed of the internal fan, the purpose of controlling the air output speed of the device is achieved. The first rotational speed here can be understood as the initial rotational speed set for the internal fan, and the internal fan is in a low-speed operation state.

[0081] Furthermore, when the target temperature of the device is lower than the first threshold value, the device executes the first control strategy on the target air deflector, controls the second air deflector on the device not to open and remains closed; controls the first air deflector to open the initial gear, and the opening angle is set to the first preset position, and at the same time controls the rotational speed of the internal fan in the device to be in the low-speed operation state of the first rotational speed.

[0082] Optionally, before the device executes the first control strategy, it is necessary to check whether the initial states of the target air deflectors of the device are all in the closed state. If they are not in the closed state, first control the target air deflectors of the device to execute the closing process, so that when the device executes the control strategy, it is ensured that the current target air deflectors of the device are all in the initial closed state, avoiding the influence of the operation of the target air deflectors of the device in different control strategy states when the target air deflectors are not in the closed state.

[0083] In a possible example scenario, when the evaporator temperature of the air conditioner is lower than 30°C, it is determined that the current air conditioner blows cold air. To avoid direct cold air blowing on the user, the large air deflector at the upper position in the air conditioner is controlled to open at a set angle, and it operates at a low wind speed. At the same time, the small air deflector at the lower position in the air conditioner is controlled not to open and remains closed. At this time, the internal fan of the air conditioner operates at a low speed to avoid direct cold air blowing on the user.

[0084] S204. When the target temperature is greater than or equal to the first threshold and less than or equal to the second threshold, determine that the control strategy for the target air deflector is the second control strategy.

[0085] The second threshold mentioned here can be understood as a preset temperature reference value used to define whether the target temperature of the current device is between the first threshold and the second threshold. The second control strategy here can be understood as the control strategy executed on the target air deflector of the device when the target temperature in the device is lower than the second threshold.

[0086] Furthermore, there are two target air deflectors in the device. When it is detected that the target temperature in the current device is between the first threshold and the second threshold, it is determined that the device is currently in the medium-temperature heating state, and then it is determined to adopt the second control strategy to control the target air deflector of the device.

[0087] In a possible example scenario, there are upper and lower air deflectors in the air conditioner. When the evaporator pipe temperature in the air conditioner is in the range of [30°C, 40°C], it is determined that the current air conditioner is in the intermediate stage of the heating mode, and warm air is blown out through the air conditioner, and then the opening states of the upper and lower air deflectors of the air conditioner are controlled.

[0088] S205. When the control strategy is the second control strategy, obtain the set temperature of the device and the ambient temperature of the area where the device is located.

[0089] The set temperature mentioned here can be understood as the heating temperature set through the device when the heating mode of the device is turned on. When the heating temperature is reached, it indicates that the device reaches the set temperature. The area where the device is located mentioned here can be understood as the set range where the device is located, which can be, but is not limited to, the room area where the device is located, or the range covered by a circle with the location of the device as the center and a specified distance as the radius. The ambient temperature mentioned here can be understood as the average temperature detected in the area where the device is located.

[0090] Furthermore, when the target temperature of the device is between the first threshold and the second threshold, determine that the control strategy of the device for the target air deflector is the second control strategy; and then obtain the set temperature when the device turns on the heating mode and the ambient temperature information in the corresponding heating coverage area of the device.

[0091] S206. Determine the difference between the set temperature and the ambient temperature.

[0092] Further, when the device is in the medium-temperature state, by obtaining the set temperature and the ambient temperature preset for the device, subtracting the current ambient temperature from the set temperature, the obtained difference is used as the basis for determining whether the device has reached the set heating mode.

[0093] S207. When the difference is greater than or equal to the third threshold, control the first air deflector and the second air deflector to open simultaneously, and the rotation directions of the first air deflector and the second air deflector are opposite. When the first air deflector and the second air deflector complete rotation, up-and-down air blowing is formed. Among them, the rotation speed of the internal fan of the device is the second rotation speed.

[0094] The third threshold mentioned here can be understood as a preset error temperature reference value, which is used to limit the situation where the temperature difference of the current device reaches the third threshold. The smaller the difference is from the third threshold, the closer the heating state of the device is to the set heating mode. The internal fan mentioned here can be understood as the component in the device used to control the air blowing speed. The greater the rotation speed of the internal fan, the stronger the air output volume of the corresponding device. By adjusting the rotation speed of the internal fan, the purpose of controlling the air output speed of the device is achieved. The second rotation speed here can be understood as the intermediate rotation speed set for the internal fan, and the internal fan is in the medium-speed operation state.

[0095] Further, when the current temperature difference of the device exceeds the third threshold, it is determined that the current indoor temperature is much lower than the set temperature of the device. The device executes the second control strategy on the target air deflector, controls the first air deflector and the second air deflector on the device to open simultaneously; and controls the first air deflector and the second air deflector to rotate in opposite directions. It can be that the first air deflector rotates clockwise, and at this time the second air deflector rotates counterclockwise; when the first air deflector and the second air deflector both rotate to the set angle position, the air blowing mode of the upper and lower air outlets is turned on. At this time, the internal fan is set to operate in the medium-high gear of the second rotation speed, and the air blowing speed of the target air deflector is increased by increasing the rotation speed of the internal fan to achieve rapid air output.

[0096] In a possible example scenario, when the evaporator temperature of the air conditioner is in the range of [30°C, 40°C], it is determined that the air conditioner is blowing warm air. It is detected that the user-set temperature of the current air conditioner is 30°C, and the current indoor ambient temperature is 22°C. The temperature difference between the two is 30°C - 22°C = 8°C. The set temperature difference threshold is 4°C. Then it is determined that the temperature difference of 8°C of the current air conditioner exceeds the set temperature difference threshold of 4°C, indicating that the gap between the current indoor temperature and the set temperature is large and the heating requirement of the air conditioner is not met. Control the large air deflector at the upper position in the air conditioner to rotate clockwise to the set position of 30° and operate at medium-high speed. At the same time, control the small air deflector at the lower position in the air conditioner to rotate counterclockwise to the set position of 30° and operate at medium-high speed. At this time, the internal fan of the air conditioner operates at medium-high speed to accelerate the heating state of the air conditioner.

[0097] S208. When the target temperature is greater than the second threshold, determine that the control strategy for the target air deflector is the third control strategy.

[0098] The second threshold mentioned here can be understood as a pre-set temperature reference value for the high-temperature state, which is used to limit whether the target temperature of the current device reaches the second threshold. The third control strategy here can be understood as the control strategy executed on the target air deflector of the device when the target temperature in the device is higher than the third threshold.

[0099] Furthermore, there are two target air deflectors in the device. When it is detected that the target temperature in the current device is greater than the third threshold, it is determined that the device is currently in the high-temperature heating state, and then it is determined to use the third control strategy to control the target air deflector of the device.

[0100] In a possible example scenario, there are upper and lower air deflectors in the air conditioner, and the upper air deflector is set as the large air deflector, and the lower air deflector is set as the small air deflector. The specific positions of the upper and lower air deflectors are not specifically limited. Set another threshold for the evaporator tube temperature of the air conditioner to be 40°C, with a floating range of 40°C ± 5°C. When the evaporator tube temperature in the air conditioner is higher than 40°C, it is determined that the current air conditioner is in the advanced stage of the heating mode, and hot air is blown out through the air conditioner, and then the opening states of the upper and lower air deflectors of the air conditioner are controlled.

[0101] S209. When the control strategy is the third control strategy, obtain the set temperature of the device and the ambient temperature of the area where the device is located.

[0102] The set temperature mentioned here can be understood as the heating temperature set by the device when the high-temperature state of the device is turned on for heating. When the heating temperature is reached, it indicates that the device has reached the set temperature. The area where the device is located can be understood as the set range where the device is located, which can be, but is not limited to, the room area where the device is located, or the range covered by a circle with the location of the device as the center and a specified distance as the radius. The ambient temperature mentioned here can be understood as the average temperature detected within the area where the device is located.

[0103] Further, when the target temperature of the device exceeds the third threshold, it is determined that the control strategy for the target air deflector of the device is the third control strategy; then, the set temperature of the device in the high-temperature state and the ambient temperature information within the corresponding heating coverage area of the device are obtained. The set temperature and the ambient temperature here can be the same as or different from the set temperature and the ambient temperature in the second control strategy state.

[0104] S210. Determine the difference between the set temperature and the ambient temperature.

[0105] Further, when the device is in the high-temperature state, by obtaining the set temperature and the ambient temperature preset by the device, subtracting the current ambient temperature from the set temperature, the obtained difference is used as the basis for determining whether the device has reached the set heating mode.

[0106] S211. When the difference is greater than or equal to the fourth threshold, control the first air deflector and the second air deflector to be opened simultaneously, and the rotation directions of the first air deflector and the second air deflector are opposite. When the first air deflector and the second air deflector complete the rotation, up-and-down air blowing is formed, where the rotational speed of the internal blower of the device is the fourth rotational speed.

[0107] The fourth threshold mentioned here can be understood as another preset error temperature reference value used to limit whether the temperature difference of the current device reaches the fourth threshold. The closer the difference is to the fourth threshold, the closer the heating state of the device is to the set heating mode. In the embodiments of the present invention, the third threshold and the fourth threshold can be set to the same size or two different temperature thresholds with different sizes. The internal blower mentioned here can be understood as the component in the device used to control the air blowing speed. The greater the rotational speed of the internal blower, the stronger the corresponding air output of the device. By adjusting the rotational speed of the internal blower, the purpose of controlling the air output speed of the device is achieved. The fourth rotational speed here can be understood as the high-level rotational speed set for the internal blower, and the internal blower is in the high-speed operation state.

[0108] Further, when the current temperature difference of the device exceeds the fourth threshold, it is determined that the current indoor temperature is much lower than the set temperature of the device. The device executes the third control strategy on the target air deflector, controlling the first air deflector and the second air deflector on the device to be opened simultaneously; and controlling the first air deflector and the second air deflector to rotate in opposite directions. It can be that the first air deflector rotates clockwise, and at this time the second air deflector rotates counterclockwise; when both the first air deflector and the second air deflector are rotated to the set angle position, the blowing mode of the upper and lower air outlets is turned on, or the air can be blown in the up-and-down air deflector up-and-down sweeping mode; at this time, the internal fan is set to operate in the high gear of the fourth speed, and the blowing speed of the target air deflector is increased by increasing the speed of the internal fan to achieve rapid air output, so that the ambient temperature quickly reaches the set temperature of the device.

[0109] In a possible example scenario, when the evaporator temperature of the air conditioner is higher than the temperature threshold of 40 °C, the upper and lower amplitude ranges of the set temperature threshold are 40 °C ± 5 °C. It is determined that the current air conditioner blows hot air. It is detected that the user-set temperature of the current air conditioner is 30 °C, and the current indoor ambient temperature is 25 °C. The temperature difference between the two is 30 °C - 25 °C = 5 °C. The set temperature difference threshold is 3 °C. Then it is determined that the temperature difference of 5 °C of the current air conditioner exceeds the set temperature difference threshold of 3 °C, indicating that the current indoor temperature and the set temperature have a large gap and do not meet the heating requirements of the air conditioner. Control the large air deflector at the upper part of the air conditioner to rotate clockwise to open the set 40° angle position, and operate at a high gear wind speed. At the same time, control the small air deflector at the lower part of the air conditioner to rotate counterclockwise to open the set 40° angle position, and operate at a high gear wind speed. At this time, the internal fan of the air conditioner operates at a high gear speed to accelerate the heating state of the air conditioner.

[0110] A control method for a device provided by an embodiment of the present invention, by obtaining the target temperature of the target component of the device when the heating mode of the device is turned on, comparing the target temperature with the first threshold and the second threshold, and determining the control strategy of the device for the target air deflector. When the target temperature is lower than the first threshold, control the first air deflector of the device to open, and the second air deflector remains in the closed state, which is a control strategy to avoid direct blowing of cold air; when the target temperature is between the first threshold and the second threshold, by obtaining the difference between the set temperature and the ambient temperature of the device, judging the size relationship between the difference and the third threshold. When the difference is greater than the third threshold, control the first air deflector and the second air deflector to be opened simultaneously in opposite rotation directions; when the target temperature exceeds the second threshold, by obtaining the difference between the set temperature and the ambient temperature of the device, judging the size relationship between the difference and the fourth threshold. When the difference is greater than the fourth threshold, control the first air deflector and the second air deflector to be opened simultaneously in opposite rotation directions; complete the control of the target air deflector of the device, and achieve the technical effect of avoiding the device from directly blowing cold air and improving the heating comfort.

[0111] Figure 3 It is a schematic flowchart of another device control method provided by an embodiment of the present invention. Figure 3 It is introduced based on the first embodiment. According to Figure 3 the provided diagram, the device control method specifically further includes:

[0112] S301. When the device is turned on to the heating mode, obtain the target temperature of the target component in the device.

[0113] The execution subject of the embodiment of the present invention is a heating device, and the opening and closing state of the air deflector of the device is controlled by the temperature of the specified component set on the device. Applied in the heating process of an air conditioner, there are two upper and lower air deflectors installed in the air conditioner. At the same time, the upper air deflector is set as a large air deflector, and the lower air deflector is set as a small air deflector. By detecting the temperature of the evaporator tube in the air conditioner, the states of the large and small air deflectors of the air conditioner are controlled to achieve rapid heating and avoid direct blowing of cold air.

[0114] Among them, the target component can be understood as one of the multiple functional components installed in the device, and the target component is selected as the component with heat generation function. The target temperature here can be understood as the actual temperature of the detected target component. The detection method here can be measured by a temperature sensor, a thermometer or other temperature measuring devices, which will not be elaborated here.

[0115] Further, when it is detected by the detection instrument that the device is turned on to the heating mode, detect the specified target component in the device, obtain the current target temperature information of the target component, and store the target temperature data in the device manager.

[0116] In a possible example scenario, the temperature of the evaporator in the air conditioner is detected in real time by devices such as a temperature sensor, and the detected temperature information of the evaporator is stored.

[0117] S302. When the target temperature is less than the first threshold, determine that the control strategy of the target air deflector is the first control strategy.

[0118] Among them, the target air deflector includes at least a first air deflector and a second air deflector. The position of the first air deflector is set above the second air deflector, and the size of the first air deflector is set larger than that of the second air deflector. The first threshold here can be understood as a preset temperature reference value in the low temperature state, which is used to define whether the target temperature of the current device reaches the first threshold. The first control strategy here can be understood as the control strategy executed on the target air deflector of the device when the target temperature in the device is lower than the first threshold.

[0119] Further, two target air deflectors are provided in the device. When it is detected that the target temperature in the current device is lower than the first threshold, it is determined that the device is currently in the low-temperature heating state, and then it is determined to control the target air deflectors of the device using the first control strategy.

[0120] In a possible example scenario, there are upper and lower air deflectors provided in the air conditioner, and the upper air deflector is set as a large air deflector, and the lower air deflector is set as a small air deflector. The specific positions of the upper and lower air deflectors are not specifically limited. The threshold of the evaporator pipe temperature of the air conditioner is set to 30°C, with a floating range of 30°C ± 5°C. When the evaporator pipe temperature in the air conditioner is lower than 30°C, it is determined that the current air conditioner is in the primary stage of the heating mode, and cold air is blown out through the air conditioner, and then the opening states of the upper and lower air deflectors of the air conditioner are controlled.

[0121] S303. When the control strategy is the first control strategy, control the second air deflector to remain closed, and the first air deflector is opened to the first preset position. Among them, when the control strategy is the first control strategy, the rotational speed of the internal fan of the device is the first rotational speed.

[0122] The first preset position mentioned here can be understood as the opening gear of the first air deflector of the device. Multiple opening angles are set for the first air deflector of the device, and corresponding gears are set for each angle. It can be set according to the rule that the larger the opening angle of the first air deflector, the corresponding increase in the gear, or adjusted according to the rule that the larger the opening angle of the first air deflector, the smaller the corresponding set gear. The internal fan mentioned here can be understood as the component in the device used to control the blowing wind speed. The greater the rotational speed of the internal fan, the stronger the corresponding air output of the device. By adjusting the rotational speed of the internal fan, the purpose of controlling the air output speed of the device is achieved. The first rotational speed here can be understood as the initial rotational speed set for the internal fan, and the internal fan is in a low-speed operating state.

[0123] Further, when the target temperature of the device is lower than the first threshold, the device executes the first control strategy on the target air deflectors, controls the second air deflector on the device not to open and remains closed; controls the first air deflector to open the initial gear, and the opening angle is set to the first preset position, and at the same time controls the rotational speed of the internal fan in the device to be in the low-speed operating state of the first rotational speed.

[0124] Optionally, before the device executes the first control strategy, it is necessary to check whether the initial states of the target air deflectors of the device are all in the closed state. If they are not in the closed state, first control the target air deflectors of the device to execute the closing process, so that when the device executes the control strategy, it is ensured that the current target air deflectors of the device are all in the initial closed state, avoiding the influence of the operation of the device on the target air deflectors in different control strategy states when the target air deflectors are not in the closed state.

[0125] In a possible example scenario, when the evaporator temperature of the air conditioner is lower than 30°C, it is determined that the air conditioner is blowing cold air. To avoid direct cold air blowing on the user, the large air deflector at the upper position in the air conditioner is controlled to open at a set angle, and it operates at a low wind speed. At the same time, the small air deflector at the lower position in the air conditioner is controlled not to open and remains closed. At this time, the internal fan of the air conditioner operates at a low speed to avoid direct cold air blowing on the user.

[0126] S304. When the target temperature is greater than or equal to the first threshold and less than or equal to the second threshold, determine that the control strategy for the target air deflector is the second control strategy.

[0127] The second threshold mentioned here can be understood as a preset temperature reference value used to define whether the target temperature of the current device is between the first threshold and the second threshold. The second control strategy here can be understood as the control strategy executed on the target air deflector of the device when the target temperature in the device is lower than the second threshold.

[0128] Furthermore, there are two target air deflectors in the device. When it is detected that the target temperature in the current device is between the first threshold and the second threshold, it is determined that the device is currently in the medium-temperature heating state, and then it is determined to use the second control strategy to control the target air deflectors of the device.

[0129] In a possible example scenario, there are upper and lower air deflectors in the air conditioner. When the evaporator pipe temperature in the air conditioner is in the temperature range of [30°C, 40°C], and the floating range of this temperature range can be [30°C ± 5°C, 40°C ± 5°C], it is determined that the current air conditioner is in the intermediate stage of the heating mode, and warm air is blown out through the air conditioner, and then the opening states of the upper and lower air deflectors of the air conditioner are controlled.

[0130] S305. When the control strategy is the second control strategy and the difference is less than the third threshold, control the first air deflector and the second air deflector to open simultaneously, and the rotation directions of the first air deflector and the second air deflector are opposite. When the first air deflector and the second air deflector complete rotation, up and down blowing is formed, and the rotation speed of the internal fan of the device is the third rotation speed.

[0131] The third threshold mentioned here can be understood as a preset error temperature reference value used to define whether the temperature difference of the current device reaches the third threshold. The smaller the difference is less than the third threshold, the closer the heating state of the device is to the set heating temperature. The internal fan mentioned here can be understood as the component in the device used to control the blowing wind speed. The greater the rotation speed of the internal fan, the stronger the air output of the corresponding device. By adjusting the rotation speed of the internal fan, the purpose of controlling the air output speed of the device is achieved. The third rotation speed here can be understood as the medium-high rotation speed set for the internal fan, and the internal fan operates at the medium-high rotation speed state.

[0132] Further, when the current temperature difference of the device is lower than the third threshold, it is determined that the current indoor temperature is close to the set temperature of the device, indicating that the current ambient temperature reaches the set temperature of the device; the device executes the second control strategy on the target air deflector, controlling the first air deflector and the second air deflector on the device to be opened simultaneously; and controlling the first air deflector and the second air deflector to rotate in opposite directions, which can be that the first air deflector rotates clockwise, and at this time the second air deflector rotates counterclockwise; when both the first air deflector and the second air deflector are rotated to the set angle position, the blowing mode of the upper and lower air outlets is turned on. At this time, it is set that the internal fan operates in the medium and high speed positions of the third speed, and the blowing wind speed of the target air deflector is increased by increasing the speed of the internal fan to achieve rapid air output, and finally the heating is maintained according to the heating mode set by the user (for example, energy-saving mode or up and down sweeping mode, etc.).

[0133] In a possible example scenario, when the evaporator temperature of the air conditioner is in the range of [30°C, 40°C], it is determined that the current air conditioner blows warm air. It is detected that the user-set temperature of the current air conditioner is 30°C, and the current indoor ambient temperature is 27°C. The temperature difference between the two is 30°C - 27°C = 3°C. The set temperature difference threshold is 4°C. Then it is determined that the current temperature difference of the air conditioner, 3°C, is lower than the set temperature difference threshold of 4°C, indicating that the current indoor temperature is close to the set temperature, and by default, it meets the heating requirements of the air conditioner. Control the large air deflector at the upper part of the air conditioner to rotate clockwise to open to the set position of 30°, and operate at medium and high speeds. At the same time, control the small air deflector at the lower part of the air conditioner to rotate counterclockwise to open to the set position of 30°, and operate at medium and high speeds. At this time, the internal fan of the air conditioner operates at medium and high speeds to accelerate the heating state of the air conditioner, and when the state is stable, it is maintained according to the heating mode set by the user (for example, energy-saving mode or up and down sweeping mode, etc.).

[0134] S306. When the control strategy is the first control strategy, obtain the operating duration of the device.

[0135] The operating duration mentioned here can be understood as the duration when the device is in the first control strategy state. Limit the duration of the device in the low-temperature heating state according to the size of the operating duration.

[0136] Further, when the target temperature of the device is lower than the first threshold, control the target air deflector of the device to execute the first control strategy. At the same time, start timing the state in the first control strategy and count the size of the operating duration.

[0137] S307. When the operating duration reaches the set duration threshold, switch the control strategy of the target air deflector from the first control strategy to the second control strategy.

[0138] The duration threshold mentioned here can be understood as the set duration when the device is in the first control strategy state.

[0139] Further, start timing when the device is under the first control strategy. When the running duration reaches the set duration threshold, determine that the low-temperature heating of the device ends, start the next temperature control stage, and switch the control strategy of the target air deflector from the first control strategy to the second control strategy for control.

[0140] In a possible example scenario, when the evaporator pipe temperature in the air conditioner is lower than the set 30°C, open the large air deflector at the upper position of the air conditioner to the position of 30° for blowing, and control the small air deflector at the lower position to close; start timing. After running for 180 s, control the upper and lower air deflectors of the air conditioner to open simultaneously to enter the heating state of simultaneous blowing, thereby changing the control state of the air conditioner.

[0141] S308. When the control strategy is the first control strategy, detect whether the target temperature reaches the first threshold.

[0142] Further, when it is detected that the target temperature is lower than the first threshold, control the target air deflector of the device to execute the first control strategy; during the execution of the first control strategy, detect whether the target temperature of the current device rises to the first threshold through a temperature sensor or an infrared sensor to determine that the device reaches the next heating state from the low-temperature heating state.

[0143] S309. When the target temperature reaches the first threshold, switch the control strategy of the target air deflector from the first control strategy to the second control strategy.

[0144] Further, perform real-time detection on the target temperature of the device. When the target temperature rises from a state lower than the first threshold to greater than or equal to the first threshold, determine that the current heating state of the device has changed, and control the control strategy of the target air deflector to be switched from the first control strategy to the second control strategy, so that the device enters the next heating state.

[0145] In a possible example scenario, in the initial stage, the evaporator pipe temperature of the air conditioner is lower than the set 30°C. Open the large air deflector at the upper position of the air conditioner to the position of 30° for blowing, and control the small air deflector at the lower position to close; perform real-time detection on the evaporator pipe temperature in the air conditioner. When it is detected that the evaporator pipe is greater than or equal to the set 30°C, control the small air deflector at the lower position of the air conditioner to open at a set angle, and at the same time control the large air deflector at the upper position to open at a larger angle, and the air conditioner enters the state of fast blowing.

[0146] S310. When the target temperature is greater than the second threshold, determine that the control strategy of the target air deflector is the third control strategy.

[0147] The second threshold mentioned here can be understood as a preset temperature reference value for the high-temperature state, which is used to define the situation of whether the target temperature of the current device reaches the second threshold. The third control strategy here can be understood as the control strategy executed on the target air deflector of the device when the target temperature in the device is higher than the third threshold.

[0148] Furthermore, two target air deflectors are provided in the device. When it is detected that the target temperature in the current device is greater than the third threshold, it is determined that the device is currently in the high-temperature heating state, and then it is determined to control the target air deflector of the device using the third control strategy.

[0149] In a possible example scenario, there are upper and lower air deflectors provided in the air conditioner, and the upper air deflector is set as a large air deflector, and the lower air deflector is set as a small air deflector. The specific positions of the upper and lower air deflectors are not specifically limited. Another threshold for the evaporator pipe temperature of the air conditioner is set at 40°C, with a floating range of 40°C ± 5°C. When the evaporator pipe temperature in the air conditioner is higher than 40°C, it is determined that the current air conditioner is in the advanced stage of the heating mode, hot air is blown out through the air conditioner, and then the opening states of the upper and lower air deflectors of the air conditioner are controlled.

[0150] S311. When the control strategy is the third control strategy and the difference is less than the fourth threshold, control the first air deflector to close and the second air deflector to open to the second preset position, where the rotational speed of the internal blower of the device is the fifth rotational speed.

[0151] The fourth threshold mentioned here can be understood as another preset error temperature reference value, which is used to define the situation of whether the temperature difference of the current device reaches the fourth threshold. The closer the difference is to the fourth threshold, the closer the heating state of the device is to the set heating mode. The magnitudes of the third threshold and the fourth threshold in the embodiments of the present invention can be set to be the same size or two temperature thresholds of different sizes. The second preset position mentioned here can be understood as another opening angle state greater than the first preset position. The internal blower mentioned here can be understood as the component in the device used to control the blowing wind speed. The greater the rotational speed of the internal blower, the stronger the air output of the corresponding device. By adjusting the rotational speed of the internal blower, the purpose of controlling the air output speed of the device is achieved. The fifth rotational speed here can be understood as the medium-high rotational speed set for the internal blower. The internal blower is in the medium-high rotational speed operation state. The fifth rotational speed and the third rotational speed can be set to the same gear or different gear states.

[0152] Further, when the current temperature difference of the device is less than the fourth threshold, it is determined that the current indoor temperature is close to the set temperature of the device, and it is determined that the current ambient temperature reaches the set temperature. The device executes the third control strategy on the target air deflector, controls the first air deflector on the device to close, and the second air deflector to open to the second preset position; turns on the blowing mode of the lower air outlet. At this time, the set indoor fan runs in the medium and high speed positions of the fifth speed, and the blowing wind speed of the target air deflector is reduced by the rotation speed of the indoor fan to achieve stable air output, so that the ambient temperature is maintained at the set temperature of the device.

[0153] In a possible example scenario, when the evaporator temperature of the air conditioner is higher than the temperature threshold of 40 °C, the upper and lower amplitude ranges of the set temperature threshold are 40 °C ± 5 °C. It is determined that the current air conditioner blows hot air. It is detected that the user-set temperature of the current air conditioner is 30 °C, and the current indoor ambient temperature is 28 °C. The temperature difference between the two is 30 °C - 28 °C = 2 °C. The set temperature difference threshold is 3 °C. Then it is determined that the temperature difference of 2 °C of the current air conditioner is less than the set temperature difference threshold of 3 °C, indicating that the current indoor temperature is close to the set temperature, and it is determined that the heating requirement of the air conditioner is met. The large air deflector at the upper position in the air conditioner is controlled to close, and at the same time, the small air deflector at the lower position in the air conditioner is controlled to rotate counterclockwise to open to the vertical position of the set 90 ° angle, and the opening angle is increased for operation. At this time, the indoor fan of the air conditioner runs at medium and high speeds to maintain the current heating state of the air conditioner.

[0154] A control method for a device provided by an embodiment of the present invention, after turning on the heating mode, detects the target temperature of the device. When the target temperature is lower than the first threshold, controls the target air deflector to execute the first control strategy, controls the first air deflector of the device to open, and the second air deflector to close; when the target temperature is between the first threshold and the second threshold, controls the target air deflector to execute the second control strategy, and uses the running duration of the target temperature in the first control strategy and whether it reaches the first threshold as a judgment basis to control the device to switch from the first control strategy to the second control strategy; when the target temperature is greater than the second threshold, controls the target air deflector to execute the third control strategy, thereby completing the control of the target air deflector of the device, and achieving the technical effect of avoiding the device from directly blowing cold air and improving the heating comfort.

[0155] In a possible example scenario, such as Figure 4a - Figure 4c is an application scenario diagram of a control method for a device provided by an embodiment of the present invention. The air conditioner is selected as the control device for illustration. Such as Figure 4a - Figure 4c As shown in the structure, the application scenario diagram specifically includes: an air conditioner 41, an evaporator 42, a first air deflector 43, and a second air deflector 44.

[0156] In the air conditioner 41, multiple evaporators 42 are provided. At the tail position of the air conditioner 41, an air outlet is provided. Corresponding to one air outlet, there are two air guide plates, namely an upper air guide plate and a lower air guide plate. The upper air guide plate is a large air guide plate, and the lower air guide plate is a small air guide plate.

[0157] Such as Figure 4a is the application scenario of a control method for a device provided by an embodiment of the present invention Figure 1 , in the state of the diagram provided as Figure 4a , when the air conditioner 41 is turned on in the heating operation mode, first, the main control system in the air conditioner 41 determines whether the first air guide plate 43 and the second air guide plate 44 are in the initial closed position, and simultaneously confirms that the compressor and the four-way valve for the normal operation of the functions of the air conditioner 41 have been turned on and are working to ensure the normal operation of the air conditioner. At this time, the internal fan of the air conditioner 41 defaults to running at a low wind speed, and judges the magnitude relationship between the average pipe temperature T of the current evaporator 42 and the temperature threshold of 30 °C set in the main control system. If T < 30 °C, it means that the evaporator pipe temperature of the air conditioner 41 in the heating mode is relatively low at this time, and the air outlet temperature is also correspondingly low. To prevent the relatively low-temperature air flow blown out from the air duct of the air conditioner 41 from causing discomfort to the human body, the position of the second air guide plate 44 located below the air outlet of the air conditioner 41 is controlled to remain in the initial closed position without executing the rotation instruction, while the first air guide plate 43 located above the air outlet of the air conditioner is opened at a certain angle. However, the position where the first air guide plate 43 is opened is inclined upward horizontally to ensure that the cold air flow does not blow in, that is, to achieve the effect of the anti-cold air function in the initial operation stage of the heating mode of the air conditioner.

[0158] Such as Figure 4b is the application scenario of a control method for a device provided by an embodiment of the present invention Figure 2 , according to Figure 4bAs can be seen from the provided diagrams, the second air deflector 44 below the air outlet of the air conditioner 41 remains in the initial position without movement. When the first air deflector 43 above the air outlet is in the horizontally inclined upward position for a duration greater than or equal to 180 s or when the main control system determines that the average pipe temperature of the current evaporator 42 does not meet the condition of being less than 30°C, it enters the next-level judgment, that is, to determine whether the T pipe is within the range of [30°C, 40°C]. If this condition is met, it continues to judge the magnitude relationship between the currently set temperature Tset and the current indoor ambient temperature Tenv. If Tset - Tenv < 4°C, it indicates that the currently set temperature is not much different from the indoor ambient temperature. Then, the main control system of the air conditioner 41 executes the relevant heating mode instructions (such as energy-saving mode or up and down sweeping mode) according to the target requirements set by the user. If the T pipe is within the range of [30°C, 40°C], but does not meet the condition of Tset - Tenv < 4°C, it means that the temperature of the indoor environment is quite different from the required set temperature. At this time, the first air deflector 43 and the second air deflector 44 at the upper and lower positions of the air outlet of the air conditioner 41 simultaneously execute the operation instructions, and the internal fan operates at the medium-high speed to realize the up and down air outlet function, ensuring that the hot air flow blown out from the air duct of the air conditioner 41 is quickly transported to the indoor environment, reducing the temperature difference between the indoor environment temperature and the set temperature, and improving the heating comfort. The air flow direction of the air conditioner when executing the up and down air outlet function in the heating mode is as Figure 4b shown. When this control is executed, the first air deflector 43 above the air duct rotates clockwise, and the second air deflector 44 below the air duct rotates counterclockwise. The combined rotational movement between the large and small air deflectors ensures that the air flows are respectively transported from the upper and lower air ducts to the indoor, realizing the up and down heating air outlet and quickly raising the room temperature.

[0159] Such as Figure 4c is an application scenario of a control method for a device provided by an embodiment of the present invention Figure 3 , according to Figure 4c the provided diagrams, if it is detected that the current T pipe is not within the range of [30°C, 40°C], it continues to enter the next-level judgment, that is, to determine whether the T pipe is greater than 40°C. If this condition is met, it judges the magnitude relationship between the currently set temperature Tset and the current indoor ambient temperature Tenv. If Tset - Tenv < 4°C, it indicates that the currently set temperature is not much different from the indoor ambient temperature. At this time, the first air deflector 43 at the air outlet position of the air conditioner 41 rotates from the current position to the initial closed position and stops operating, and the second air deflector 44 operates to a position close to the ground to realize the vertical heating downward air outlet. The downward air flow direction is as Figure 4c shown. If it does not meet the condition of Tset - Tenv < 4°C, the first air deflector 43 and the second air deflector 44 at the air outlet position of the air conditioner open and operate simultaneously, and the internal fan also operates at the medium-high speed to execute the up and down air outlet function mode, thereby achieving the technical effect of avoiding the device from blowing cold air directly and improving the heating comfort.

[0160] Figure 5 The following is a schematic structural diagram of a control device for a device provided by an embodiment of the present invention. As Figure 5 shown in the structure, the control device of the device specifically includes:

[0161] An acquisition module 51, configured to acquire the target temperature of a target component in the device when the device turns on the heating mode;

[0162] A determination module 52, configured to determine a control strategy for a target air deflector of the device according to the target temperature;

[0163] A control module 53, configured to control the target air deflector according to the control strategy.

[0164] The control device of the device provided by this embodiment may be the control device of the device as shown in Figure 5 , and can execute all steps of the control method of the device as shown in Figure 1 -4, and further achieve the technical effects of the control method of the device shown in Figure 1 -4. For specific details, please refer to the relevant descriptions in Figure 1 -4. For the sake of brief description, it will not be elaborated here.

[0165] Figure 6 The following is a schematic structural diagram of a device provided by an embodiment of the present invention. Figure 6 The device 600 shown includes: at least one processor 601, a memory 602, at least one network interface 604, and other user interfaces 603. Each component in the device 600 is coupled together through a bus system 605. It can be understood that the bus system 605 is used to realize the connection and communication between these components. In addition to the data bus, the bus system 605 also includes a power bus, a control bus, and a status signal bus. However, for the sake of clear illustration, in Figure 6 all kinds of buses are labeled as the bus system 605.

[0166] Among them, the user interface 603 may include a display, a keyboard, or a pointing device (such as a mouse, a trackball, a touchpad, or a touch screen, etc.).

[0167] It can be understood that the memory 602 in the embodiments of the present invention can be a volatile memory or a non-volatile memory, or can include both volatile and non-volatile memories. Among them, the non-volatile memory can be a read-only memory (ROM), a programmable read-only memory (PROM), an erasable programmable read-only memory (EPROM), an electrically erasable programmable read-only memory (EEPROM), or a flash memory. The volatile memory can be a random access memory (RAM), which is used as an external cache. By way of example but not limitation, many forms of RAM are available, such as static random access memory (SRAM), dynamic random access memory (DRAM), synchronous dynamic random access memory (SDRAM), double data rate synchronous dynamic random access memory (DDR SDRAM), enhanced synchronous dynamic random access memory (ESDRAM), synch link dynamic random access memory (SLDRAM), and direct rambus random access memory (DRRAM). The memory 602 described herein is intended to include but not be limited to these and any other suitable types of memory.

[0168] In some embodiments, the memory 602 stores the following elements, executable units, or data structures, or subsets thereof, or extended sets thereof: an operating system 6021 and an application program 6022.

[0169] Among them, the operating system 6021 includes various system programs, such as a framework layer, a core library layer, a driver layer, etc., and is used to implement various basic services and process hardware-based tasks. The application program 6022 includes various application programs, such as a media player and a browser, etc., and is used to implement various application services. The program for implementing the method of the embodiments of the present invention can be included in the application program 6022.

[0170] In the embodiments of the present invention, by invoking the programs or instructions stored in the memory 602, specifically, the programs or instructions stored in the application program 6022, the processor 601 is used to execute the method steps provided in each method embodiment, for example, including:

[0171] When the device is turned on to the heating mode, obtain the target temperature of the target component in the device; determine the control strategy of the target air deflector of the device according to the target temperature; and control the target air deflector according to the control strategy.

[0172] The method disclosed in the embodiments of the present invention described above can be applied to or implemented by the processor 601. The processor 601 may be an integrated circuit chip with signal processing capabilities. During implementation, the steps of the above method can be completed by the integrated logic circuit in hardware or instructions in software form in the processor 601. The above-mentioned processor 601 may be a general-purpose processor, a digital signal processor (DSP), an application specific integrated circuit (ASIC), a field programmable gate array (FPGA), or other programmable logic devices, discrete gate or transistor logic devices, discrete hardware components. It can implement or execute the various methods, steps, and logic block diagrams disclosed in the embodiments of the present invention. The general-purpose processor may be a microprocessor or the processor may also be any conventional processor, etc. The steps of the method disclosed in combination with the embodiments of the present invention can be directly embodied as being executed and completed by a hardware decoding processor, or by a combination of hardware and software units in the decoding processor. The software unit may be located in a mature storage medium in the art such as a random access memory, a flash memory, a read-only memory, a programmable read-only memory, or an electrically erasable programmable memory, a register, etc. This storage medium is located in the memory 602, and the processor 601 reads the information in the memory 602 and combines its hardware to complete the steps of the above method.

[0173] It can be understood that the embodiments described herein can be implemented using hardware, software, firmware, middleware, microcode, or a combination thereof. For hardware implementation, the processing unit can be implemented in one or more application specific integrated circuits (ASICs), digital signal processors (DSPs), digital signal processing devices (DSPDs), programmable logic devices (PLDs), field-programmable gate arrays (FPGAs), general-purpose processors, controllers, microcontrollers, microprocessors, other electronic units for performing the functions described in this application, or a combination thereof.

[0174] For software implementation, the technologies described herein can be implemented by units that execute the functions described herein. The software code can be stored in a memory and executed by a processor. The memory can be implemented within the processor or external to the processor.

[0175] The device provided in this embodiment can be a device as shown in Figure 6 and can execute all steps of the control method of the device in Figure 1 -4, thereby achieving the technical effects of the control method of the device shown in Figure 1 -4. For specific details, please refer to the relevant description in Figure 1 -4. For the sake of brevity, it will not be elaborated here.

[0176] An embodiment of the present invention further provides a device, including: a target air deflector disposed at the air outlet, and the target air deflector includes a first air deflector and a second air deflector;

[0177] The target air deflector is configured to: when the device is in the heating mode, perform corresponding operations according to the control strategy corresponding to the target temperature of the target component in the device.

[0178] The device provided in this embodiment can execute all steps of the control method of the device in Figure 1 -4, thereby achieving the technical effects of the control method of the device shown in Figure 1 -4. For specific details, please refer to the relevant description in Figure 1 -4. For the sake of brevity, it will not be elaborated here.

[0179] An embodiment of the present invention further provides a storage medium (computer-readable storage medium). The storage medium stores one or more programs. Among them, the storage medium can include volatile memory, such as random access memory; the memory can also include non-volatile memory, such as read-only memory, flash memory, hard disk or solid-state drive; the memory can also include a combination of the above types of memory.

[0180] When one or more programs in the storage medium can be executed by one or more processors, the control method of the device executed on the control device side as described above can be realized.

[0181] The processor is used to execute the control program of the device stored in the memory to realize the following steps of the control method of the device executed on the control device side:

[0182] When the device is in the heating mode, obtain the target temperature of the target component in the device; determine the control strategy of the target air deflector of the device according to the target temperature; control the target air deflector according to the control strategy.

[0183] Those skilled in the art should also be further aware that the units and algorithm steps of each example described in combination with the embodiments disclosed herein can be implemented by electronic hardware, computer software, or a combination of the two. To clearly illustrate the interchangeability of hardware and software, the components and steps of each example have been generally described according to functions in the above description. Whether these functions are executed in a hardware or software manner depends on the specific application and design constraints of the technical solution. Those skilled in the art can use different methods for each specific application to implement the described functions, but such implementation should not be considered to exceed the scope of the present invention.

[0184] The steps of the methods or algorithms described in combination with the embodiments disclosed herein can be implemented by hardware, software modules executed by a processor, or a combination of the two. The software modules can be placed in a random access memory (RAM), internal memory, read-only memory (ROM), electrically programmable ROM, electrically erasable programmable ROM, registers, hard disk, removable disk, CD-ROM, or any other form of storage medium known in the art.

[0185] The specific embodiments described above have further elaborated on the purpose, technical solution, and beneficial effects of the present invention. It should be understood that the above description is only the specific embodiments of the present invention and is not used to limit the protection scope of the present invention. Any modifications, equivalent replacements, improvements, etc. made within the spirit and principle of the present invention shall be included in the protection scope of the present invention.

Claims

1. A control method for a device, characterized in that, Including: When the device is turned on to the heating mode, obtain the target temperature of the target component in the device; Determine the control strategy of the target air deflector of the device according to the target temperature, and the target air deflector at least includes: a first air deflector and a second air deflector; Control the target air deflector according to the control strategy; Wherein, the determining the control strategy of the target air deflector of the device according to the target temperature includes: When the target temperature is greater than or equal to the first threshold and less than or equal to the second threshold, determine that the control strategy of the target air deflector is the second control strategy; The controlling the target air deflector according to the control strategy includes: When the control strategy is the second control strategy, obtain the set temperature of the device and the ambient temperature of the area where the device is located; Determine the difference between the set temperature and the ambient temperature; When the difference is less than the third threshold, control the first air deflector and the second air deflector to be turned on simultaneously, and the rotation directions of the first air deflector and the second air deflector are opposite. When the first air deflector and the second air deflector complete rotation, form up and down air blowing, and the rotation speed of the internal fan of the device is the third rotation speed.

2. The method according to claim 1, characterized in that, The determining the control strategy of the target air deflector of the device according to the target temperature includes: When the target temperature is less than the first threshold, determine that the control strategy of the target air deflector is the first control strategy; The controlling the target air deflector according to the control strategy includes: When the control strategy is the first control strategy, control the second air deflector to remain in the closed state, and the first air deflector is opened to the first preset position. Wherein, when the control strategy is the first control strategy, the rotation speed of the internal fan of the device is the first rotation speed.

3. The method according to claim 1, characterized in that, The controlling the target air deflector according to the control strategy includes: When the difference is greater than or equal to the third threshold, control the first air deflector and the second air deflector to be turned on simultaneously, and the rotation directions of the first air deflector and the second air deflector are opposite. When the first air deflector and the second air deflector complete rotation, form up and down air blowing, wherein the rotation speed of the internal fan of the device is the second rotation speed.

4. The method according to claim 2, characterized in that, The method includes: When the control strategy is the first control strategy, obtain the operation duration of the device; When the operation duration reaches the set duration threshold, switch the control strategy of the target air deflector from the first control strategy to the second control strategy.

5. The method according to claim 2, characterized in that, The method includes: When the control strategy is the first control strategy, detect whether the target temperature reaches the first threshold; When the target temperature reaches the first threshold, switch the control strategy of the target air deflector from the first control strategy to the second control strategy.

6. The method according to claim 1, characterized in that, The determining the control strategy of the target air deflector of the device according to the target temperature includes: When the target temperature is greater than the second threshold, determine that the control strategy of the target air deflector is the third control strategy; The controlling the target air deflector according to the control strategy includes: When the control strategy is the third control strategy, obtain the set temperature of the device and the ambient temperature of the area where the device is located; Determine the difference between the set temperature and the ambient temperature; When the difference is greater than or equal to the fourth threshold, control the first air deflector and the second air deflector to open simultaneously, and the rotation directions of the first air deflector and the second air deflector are opposite. When the first air deflector and the second air deflector complete rotation, up and down air blowing is formed, wherein the rotational speed of the internal blower of the device is the fourth rotational speed.

7. The method according to claim 6, characterized in that, The controlling the target air deflector according to the control strategy includes: When the control strategy is the third control strategy and the difference is less than the fourth threshold, control the first air deflector to close and the second air deflector to open to the second preset position, wherein the rotational speed of the internal blower of the device is the fifth rotational speed.

8. A control device for a device, characterized in that, It includes: An acquisition module, configured to acquire the target temperature of a target component in the device when the device turns on the heating mode; A determination module, configured to determine the control strategy of the target air deflector of the device according to the target temperature, and the target air deflector at least includes: a first air deflector and a second air deflector; A control module, configured to control the target air deflector according to the control strategy; Wherein, the determination module is specifically configured to: When the target temperature is greater than or equal to the first threshold and less than or equal to the second threshold, determine that the control strategy of the target air deflector is the second control strategy; The control module is specifically configured to: When the control strategy is the second control strategy, acquire the set temperature of the device and the ambient temperature of the area where the device is located; Determine the difference between the set temperature and the ambient temperature; When the difference is less than the third threshold, control the first air deflector and the second air deflector to open simultaneously, and the rotation directions of the first air deflector and the second air deflector are opposite. When the first air deflector and the second air deflector complete rotation, up and down air blowing is formed, and the rotational speed of the internal blower of the device is the third rotational speed.

9. A control device, characterized in that, It includes: A processor and a memory, the processor is configured to execute the control program of the device stored in the memory to implement the control method of the device according to any one of claims 1 to 7.

10. An air conditioner, characterized in that, It includes: A target air deflector arranged at the air outlet, and the target air deflector includes a first air deflector and a second air deflector; The target air deflector is configured to: when the air conditioner turns on the heating mode, perform corresponding operations according to the control strategy corresponding to the target temperature of the target component in the air conditioner, including: when the target temperature is greater than or equal to the first threshold and less than or equal to the second threshold, determine that the control strategy of the target air deflector is the second control strategy; When the control strategy is the second control strategy, acquire the set temperature of the air conditioner and the ambient temperature of the area where the air conditioner is located; determine the difference between the set temperature and the ambient temperature; when the difference is less than the third threshold, control the first air deflector and the second air deflector to open simultaneously, and the rotation directions of the first air deflector and the second air deflector are opposite. When the first air deflector and the second air deflector complete rotation, up and down air blowing is formed, and the rotational speed of the internal blower of the air conditioner is the third rotational speed.

11. A storage medium, characterized in that, The storage medium stores one or more programs, and the one or more programs can be executed by one or more processors to implement the control method of the device according to any one of claims 1 to 7.

Citation Information

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