Air conditioner control method, electronic equipment and air conditioner

By adjusting the air-conditioning output parameters to specifically meet the heat exchange requirements of the target object, the balance problem of multiple heat exchange objects in a stable state is solved, and energy-saving and comfortable air-conditioning control is achieved.

CN120777685APending Publication Date: 2025-10-14GREE ELECTRIC APPLIANCE INC OF ZHUHAI
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Patent Information

Application Number
CN202510911680.0
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-07-02
Publication Date
2025-10-14

AI Technical Summary

Technical Problem

In a stable indoor environment, when multiple heat exchange objects have different heat exchange requirements, existing technologies are difficult to balance local heat exchange requirements, resulting in increased power consumption and failure to meet individual comfort requirements.

Method used

By obtaining the relative position relationship between the target object and the air conditioner and the heat exchange requirements, the air outlet parameters are adjusted to switch to the second mode for centralized heat exchange, including adjusting the wind speed and air outlet temperature to specifically meet the heat exchange needs of the target object.

Benefits of technology

While meeting the heat exchange needs of the target object, it reduces the power consumption of the compressor, maintains the comfort of other people in the room, and achieves energy-saving heat exchange effects.

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Abstract

The embodiment of the invention discloses an air conditioner control method, electronic equipment and an air conditioner. The method comprises the steps that under the condition that the air conditioner operates in a first mode, the relative position relation between a target object and the air conditioner is obtained; according to the relative position relation and the heat exchange requirement of the target object, air outlet parameters of the air conditioner are determined, and the air outlet parameters comprise the target air speed and the target air outlet temperature adjusting amplitude; and the air conditioner is controlled to be switched from the first mode to a second mode according to the air outlet parameters, and in the second mode, the air conditioner conducts centralized heat exchange on the target object. By the adoption of the embodiment, the technical problem that in the prior art, it is difficult to balance the local heat exchange requirement in the stable state can be solved, and the heat exchange requirement of the target object can be met in an energy-saving mode under the condition that the comfort of indoor personnel is comprehensively met.
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Description

Technical Field

[0001] The present application relates to the field of air conditioning, and more specifically, to an air conditioning control method, an electronic device, and an air conditioner. Background Art

[0002] When there are multiple heat exchange objects in the same indoor environment, the multiple heat exchange objects may have different heat exchange requirements. For example, when the temperature of the current indoor environment has reached a stable state and meets the heat exchange needs of indoor occupants, a new user entering the room from the outdoors may have independent heat exchange needs. Taking the cooling season as an example, when a person just enters the room from the higher temperature outdoors, they urgently need to cool down quickly to meet their comfort needs. However, when the room is in a stable state, the indoor occupants' demand for cooling is no longer too strong. At this time, the indoor temperature and air supply status may not be able to meet the cooling needs of the occupants who have just entered the room. If the set temperature is lowered at this time, the compressor will increase its frequency, power consumption will increase, and the comfort of other occupants who have been in the stable room for a long time will not be met. Summary of the Invention

[0003] The embodiments of the present application provide an air conditioning control method, an electronic device, and an air conditioner, which can solve the technical problem that the existing technology is difficult to balance the local heat exchange requirements under a stable state, and can meet the heat exchange requirements of the target object in an energy-saving manner while comprehensively meeting the comfort of indoor personnel.

[0004] According to a first aspect of an embodiment of the present application, there is provided an air conditioning control method, the method comprising:

[0005] When the air conditioner is operating in the first mode, obtaining a relative position relationship between the target object and the air conditioner;

[0006] Determining the air outlet parameters of the air conditioner according to the relative position relationship and the heat exchange demand of the target object, wherein the air outlet parameters include a target wind speed and a target air outlet temperature adjustment range;

[0007] The air conditioner is controlled to switch from the first mode to a second mode according to the air outlet parameter. In the second mode, the air conditioner performs centralized heat exchange on the target object.

[0008] In combination with the first aspect, in an optional implementation, the first mode is an anti-direct blowing mode, or the first mode is a mode when the temperature of the space where the air conditioner is located is in a stable state;

[0009] The method further includes detecting the target object in the following manner:

[0010] When the air conditioner is operating in the first mode, detecting a surface temperature of a user entering the space;

[0011] If the surface temperature of the user meets a set condition, the user is determined to be the target object.

[0012] In conjunction with the first aspect, in an optional implementation, the method further includes:

[0013] determining the air outlet direction and air sweeping mode of the second mode according to the relative position relationship;

[0014] The air outlet direction is toward the target object, and the air sweeping method is up and down sweeping.

[0015] In combination with the first aspect, in an optional implementation, the relative position relationship includes a relative distance, and the heat exchange requirement of the target object includes a surface temperature of the target object;

[0016] The determining of the air outlet parameters of the air conditioner according to the relative position relationship and the heat exchange requirement of the target object includes:

[0017] determining the target wind speed according to the relative distance and the surface temperature of the target object;

[0018] The target air outlet temperature adjustment range is determined according to the relative distance and the surface temperature of the target object.

[0019] In conjunction with the first aspect, in an optional implementation, determining the target wind speed according to the relative distance and the surface temperature of the target object includes:

[0020] Determining the target wind speed according to a preset first mapping relationship, where the first mapping relationship includes mapping relationships between a plurality of relative distance intervals, a plurality of surface temperature intervals, and wind speed;

[0021] Among them, in the same relative distance interval, the surface temperature interval with a larger surface temperature corresponds to a larger wind speed, and in the same surface temperature interval, the relative distance interval with a larger relative distance corresponds to a larger wind speed.

[0022] In conjunction with the first aspect, in an optional implementation, determining the target outlet air temperature adjustment range according to the relative distance and the surface temperature of the target object includes:

[0023] determining the target outlet air temperature according to a preset second mapping relationship, wherein the second mapping relationship includes a mapping relationship between a plurality of relative distance intervals, a plurality of surface temperature intervals, and an outlet air temperature adjustment range under the current outlet air temperature;

[0024] Among them, in the same relative distance interval, the surface temperature interval with a larger surface temperature includes a larger corresponding air outlet temperature adjustment amplitude; in the same surface temperature interval, the relative distance interval with a larger relative distance includes a larger corresponding air outlet temperature adjustment amplitude; in the same relative distance interval and the same surface temperature interval, the larger the current air outlet temperature, the larger the corresponding air outlet temperature adjustment amplitude.

[0025] In conjunction with the first aspect, in an optional implementation, controlling the air conditioner to switch from the first mode to the second mode according to the air outlet parameter includes:

[0026] In the second mode, the air outlet is controlled according to the target wind speed, and the air outlet temperature is adjusted according to the target air outlet temperature adjustment range;

[0027] During the process of adjusting the air outlet temperature, if it is detected that the deviation of the internal temperature of the space where the air conditioner is located relative to the set temperature reaches a first deviation value, the current air outlet temperature is maintained or increased to maintain the deviation of the internal temperature relative to the set temperature within the first deviation value.

[0028] In combination with the first aspect, in an optional implementation, the method further includes: in the second mode, if it is detected that the surface temperature of the target object does not meet a set condition, controlling the air conditioner to end operation of the second mode.

[0029] In conjunction with the first aspect, in an optional implementation, the method further includes:

[0030] The air conditioner is controlled to terminate the second mode and then to operate in the first mode.

[0031] In conjunction with the first aspect, in an optional implementation, the method further includes:

[0032] The relative position relationship and the heat exchange demand of the target object are periodically updated to periodically update the air outlet parameters, and the second mode is operated according to the updated air outlet parameters.

[0033] According to a second aspect of an embodiment of the present application, there is provided an electronic device, comprising a memory for storing one or more computer instructions;

[0034] A processor is used to call and execute the computer instructions to implement the method described in the first aspect of the embodiment of the present application.

[0035] According to a third aspect of the embodiments of the present application, an air conditioner is provided. The air conditioner adopts the method of the first aspect of the embodiments of the present application, or has an electronic device of the second aspect of the embodiments of the present application.

[0036] The application embodiment can solve the technical problem that the existing technology is difficult to balance the local heat exchange demand under a stable state, and can meet the heat exchange demand of the target object in an energy-saving manner while comprehensively meeting the comfort of indoor personnel. BRIEF DESCRIPTION OF THE DRAWINGS

[0037] Figure 1 is a flow chart of an air conditioning control method according to an embodiment of the present application;

[0038] Figure 2 2 is a flow chart of another air conditioning control method according to an embodiment of the present application. DETAILED DESCRIPTION

[0039] In order to enable those skilled in the art to better understand the present invention, the following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the drawings in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments in the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts should fall within the scope of protection of this application.

[0040] It should be understood that the “plurality” mentioned herein refers to two or more than two. In the description of the embodiments of the present application, unless otherwise specified, “ / ” means or, for example, A / B can mean A or B; “and / or” in this article is merely a description of the association relationship of associated objects, indicating that there can be three relationships, for example, A and / or B can mean: A exists alone, A and B exist at the same time, and B exists alone. In addition, in order to facilitate a clear description of the technical solutions of the embodiments of the present application, in the embodiments of the present application, words such as “first” and “second” are used to distinguish between identical or similar items with substantially the same functions and effects. Those skilled in the art can understand that words such as “first” and “second” do not limit the quantity and execution order, and words such as “first” and “second” do not limit certain different

[0041] In addition, the terms "comprises" and "having" and any variations thereof are intended to cover a non-exclusive inclusion. For example, a process, method, system, product or apparatus that includes a series of steps or elements is not necessarily limited to those steps or elements expressly listed but may include other steps or elements not expressly listed or inherent to such process, method, product or apparatus.

[0042] When there are multiple heat exchange objects in the same indoor environment, the multiple heat exchange objects may have different heat exchange requirements. For example, when the temperature of the current indoor environment has reached a stable state and meets the heat exchange needs of indoor occupants, a new user entering the room from the outdoors may have independent heat exchange needs. Taking the cooling season as an example, when a person just enters the room from the higher temperature outdoors, they urgently need to cool down quickly to meet their comfort needs. However, when the room is in a stable state, the indoor occupants' demand for cooling is no longer too strong. At this time, the indoor temperature and air supply status may not be able to meet the cooling needs of the occupants who have just entered the room. If the set temperature is lowered at this time, the compressor will increase its frequency, power consumption will increase, and the comfort of other occupants who have been in the stable room for a long time will not be met.

[0043] Therefore, how to meet the local heat exchange requirements in a stable state is a technical problem that needs to be solved in the embodiments of this application. Furthermore, by creating a personalized air supply solution and establishing a local heat exchange environment, it is possible to meet the heat exchange requirements and achieve energy savings while comprehensively satisfying the comfort of indoor occupants. This is explained in detail below.

[0044] Figure 1 This is a flow chart of an air conditioning control method according to an embodiment of the present application, referring to Figure 1 , the method includes the following processing procedures.

[0045] 100: When the air conditioner is operating in the first mode, obtain a relative position relationship between the target object and the air conditioner.

[0046] In the embodiment of the present application, the target object refers to an object having heat exchange requirements, such as a human, an animal, etc.

[0047] 102: Determine air outlet parameters of the air conditioner based on the relative position relationship and the heat exchange requirements of the target object.

[0048] In this embodiment, the air outlet parameters include the target wind speed and the target air outlet temperature adjustment range. It is necessary that the target air outlet temperature adjustment range can be used to calculate the target air outlet temperature, and the two are equivalent.

[0049] 104: Control the air conditioner to switch from the first mode to the second mode according to the air output parameter. In the second mode, the air conditioner performs centralized heat exchange for the target object.

[0050] The method provided in the embodiments of this application specifically determines the airflow parameters of the air conditioner based on the relative position of the target object and the air conditioner, as well as the target object's heat exchange requirements. The air conditioner's operation is then controlled based on the airflow parameters, thereby facilitating the satisfaction of the target object's heat exchange requirements while comprehensively ensuring the comfort of indoor occupants. Furthermore, since the indoor temperature setpoint is not directly adjusted, the power consumption of the compressor can be reduced.

[0051] Optionally, in one implementation of the embodiment of the present application, the first mode is a direct blow-off prevention mode, or the first mode is a mode for operation when the temperature of the space where the air conditioner is located is stable. Prior to step 100, the target object is detected in the following manner: when the air conditioner is operating in the first mode, the surface temperature of a user entering the space is detected; if the surface temperature of the user meets a set condition, the user is determined to be a target object.

[0052] Taking the cooling season as an example, if the user's surface temperature is higher than the first temperature (meets the set condition), the user is determined to be the target object and needs to be Figure 1 The method provided by the embodiment shown. Taking the heating season as an example, if the user's surface temperature is lower than the first temperature (meets the set condition), the user is determined to be the target object and needs to be used. Figure 1 The method provided in the illustrated embodiment. In the embodiments of the present application, the cooling season is mainly used as an example for description. Based on this, those skilled in the art should understand how to perform similar processing in the heating season, and this article will not go into details.

[0053] Optionally, in one implementation of this embodiment, the air conditioning control method further includes determining an air outlet direction and air sweeping mode in the second mode based on the relative position relationship. The air outlet direction is toward the target object, and the air sweeping mode is up and down sweeping. This allows for centralized air delivery to the target object, rapidly adjusting the target object's surface temperature, thereby meeting the target object's heat exchange requirements while minimizing the impact on the comfort of other occupants.

[0054] Optionally, in one implementation of the embodiment of the present application, the relative position relationship includes a relative distance, and the heat exchange demand of the target object includes a surface temperature of the target object. In the cooling season, the greater the extent to which the surface temperature of the target object is higher than the set temperature, the greater the heat exchange demand.

[0055] Process 102 can be implemented in the following manner: determining a target wind speed based on the relative distance and the surface temperature of the target object; and determining a target outlet air temperature adjustment range based on the relative distance and the surface temperature of the target object.

[0056] The target wind speed can be determined based on a preset first mapping relationship (e.g., a mapping relationship table, or a functional relationship. For example, the functional relationship can be obtained by fitting the mapping relationship in the mapping relationship table). The first mapping relationship includes a mapping relationship between multiple relative distance intervals, multiple surface temperature intervals, and wind speed. Within the same relative distance interval, a surface temperature interval with a larger surface temperature corresponds to a higher wind speed; within the same surface temperature interval, a relative distance interval with a larger relative distance corresponds to a higher wind speed.

[0057] Regarding the target outlet air temperature adjustment range, it can be determined according to a preset second mapping relationship (for example, a mapping relationship table, or a functional relationship. For example, the functional relationship can be obtained by fitting the mapping relationship of the mapping relationship table). The second mapping relationship includes a mapping relationship between multiple relative distance intervals, multiple surface temperature intervals and outlet air temperature adjustment ranges under the current outlet air temperature. Among them, in the same relative distance interval, the surface temperature interval with a larger surface temperature includes a larger outlet air temperature adjustment range. In the same surface temperature interval, the relative distance interval with a larger relative distance includes a larger outlet air temperature adjustment range. In the same relative distance interval and the same surface temperature interval, the higher the current outlet air temperature, the larger the corresponding outlet air temperature adjustment range.

[0058] The above two mapping relationships are designed to adjust the wind speed (i.e., wind speed) and air outlet temperature according to the surface temperature and relative distance of different target objects, respectively. This makes the air outlet of the air conditioner more targeted to the target object, which is conducive to quickly meeting the heat exchange needs of the target object while reducing the impact on the comfort of existing occupants in the room.

[0059] Optionally, in an implementation of this embodiment, the process 104 may be implemented in the following manner to control the air conditioner to switch from the first mode to the second mode according to the air outlet parameters.

[0060] In the second mode, the air flow is controlled according to the target air speed, and the air flow temperature is adjusted according to the target air flow temperature adjustment range. During the air flow temperature adjustment process, if the deviation of the internal temperature of the air-conditioning space relative to the set temperature reaches a first deviation value, the current air flow temperature is maintained or increased to maintain the deviation of the internal temperature relative to the set temperature within the first deviation value.

[0061] This implementation adjusts the outlet air temperature while also limiting it based on the internal temperature (e.g., the average of multiple temperature collection locations or the temperature at a specific location). This effectively avoids or minimizes any impact on the comfort of existing occupants. The selection of the first deviation value is primarily based on ensuring the comfort of existing occupants.

[0062] In other embodiments of the present application, in the second mode, if the surface temperature of the target object is detected to not meet the set conditions, it is determined that the target object does not require targeted heat exchange, and the air conditioner is stopped from operating according to the air output parameters (i.e., the air conditioner is controlled to end the second mode). In this case, the target object can continue to be included in the direct blowback prevention range, and the air conditioner can be controlled to operate in the direct blowback prevention mode to improve the comfort of all people in the room.

[0063] In the embodiment of the present application, the relative position relationship and the heat exchange demand of the target object can be periodically updated to periodically update the air outlet parameters, and the second mode is operated according to the updated air outlet parameters, thereby more accurately tracking and meeting the heat exchange demand of the target object.

[0064] Figure 2 1 is a flow chart of an air conditioning control method according to an embodiment of the present application. Figure 2 , the air conditioning control method includes the following processing procedures.

[0065] When a room is in a stable state, most air conditioners will reduce the compressor's operating frequency and wind speed, turning on a direct blow prevention mode to avoid the discomfort caused by cold air. However, during the cooling season, for example, there's also the risk of someone suddenly entering a stable room from a warmer outdoor temperature. At this point, the indoor temperature and air supply may not meet their cooling needs. Lowering the set temperature at this point would cause the compressor to run at a higher frequency, increasing power consumption and failing to meet the comfort requirements of other people who have been in the room for an extended period. The present embodiments address this issue.

[0066] In a stable room, when a new user enters the room, the air conditioner infrared sensor is used to obtain the relative position L0 of the new user to the air conditioner and the skin temperature T1. The temperature detection device is used to detect the skin temperature T1 and the current air outlet temperature T 出风 , through skin temperature T1, relative position L0 and current air outlet temperature T 出风 Comprehensively determine the indoor unit adjustment status.

[0067] The specific implementation plan is as follows:

[0068] Detect the current room temperature (T 内环 ) and air conditioning set temperature (T 设定 ) to determine whether the current room is in a stable state. Specifically, it can be determined whether the room temperature reaches the set temperature ± a certain range, and the room temperature change is small, for example: T 内环 Reach T 设定 ±a℃ (recommended value of a is 0.3), and within t time (recommended value of t is 10min) T 内环 If the rate of change is ≤b℃ / min (the recommended value of b is 0.02), the room is judged to have reached a stable state.

[0069] If the room has reached a stable state, then Figure 2 As shown, the following judgment is first made: when the room has reached a stable state, a new person enters the room. If a new person enters the room, the skin temperature of the new person entering the room is further detected.

[0070] Afterwards, it is judged whether the user skin surface temperature T1 is greater than or equal to the set value Tb. If not, the new user position is included in the anti-direct-blowing range; if yes, it is determined that the user has a heat exchange requirement, and subsequent processing is performed.

[0071] Wherein, if the user skin surface temperature T1 ≥ Ta (Ta recommended value 36℃, when the user skin surface temperature is higher than this value, it indicates that the user has just entered the air conditioner area from a relatively hot environment, and requires rapid cooling to meet the comfort requirement); when the user skin surface temperature Ta > T1 ≥ Tb (Tb recommended value 30℃, when the user skin surface temperature is between Ta and Tb, it indicates that the user needs appropriate cool wind at this time, but does not require a lower air outlet temperature).

[0072] Afterwards, the relative position L0 of the user and the air conditioner is detected.

[0073] Afterwards, the air deflector F is determined according to T1 and L0, and the air outlet temperature reduction amplitude is determined according to T 出风 , T1 and L0. Specifically, the following cases are included.

[0074] Case 1: When the relative position L0 of the air conditioner and the user is detected to be L0 ≥ L1 (L1 recommended value 5m, indicating that the user is far away from the air conditioner at this time, and the air outlet temperature needs to be reduced and the air speed needs to be increased to meet the comfort requirement of the user in a relatively hot state), the left and right sweep adjustment is adjusted to face the newly entered indoor personnel, the up and down sweep is turned on, the air deflector F is obtained from the lookup table 1, and the air outlet temperature adjustment amplitude ΔT 出风 is comprehensively confirmed according to the relative position L0, the user skin temperature T1, and the current air outlet temperature T 出风 , and is specifically obtained by referring to Table 2.

[0075] Case 2: When the relative position L0 of the air conditioner and the user is detected to be L1 > L0 ≥ L2 (L2 recommended value 3m, indicating that the user is relatively far away from the air conditioner at this time, and the air outlet temperature still needs to be reduced and the air speed needs to be increased to meet the comfort requirement), the left and right sweep adjustment is adjusted to face the newly entered indoor personnel, the up and down sweep is turned on, the air deflector F is obtained from the lookup table 1, and the air outlet temperature adjustment amplitude ΔT 出风 is comprehensively confirmed according to the relative position L0, the user skin temperature T1, and the current air outlet temperature T 出风 , and is specifically obtained by referring to Table 2.

[0076] Case 3: When the relative position L0 of the air conditioner and the user is detected to be L2 > L0 ≥ L3 (L3 recommended value 1m, indicating that the user is moderately far away from the air conditioner at this time, and the air outlet temperature and air speed need to be moderately set to avoid the user from feeling too cold), the left and right sweep adjustment is adjusted to face the newly entered indoor personnel, the up and down sweep is turned on, the air deflector F is obtained from the lookup table 1, and the air outlet temperature adjustment amplitude ΔT出风 Comprehensively confirm the adjustment range of the air outlet temperature △T 出风 , please refer to Table 2 for details.

[0077] Case 4: When it is detected that the relative position between the air conditioner and the user is L0 < L3 (indicating that the user is relatively close to the air conditioner, the air outlet temperature and wind speed settings need to be appropriately lowered to avoid discomfort caused by strong wind), the left and right air sweeps are adjusted so that the air outlet faces the new person entering the room, and the upper and lower air sweeps are turned on. The wind speed F is obtained from the query table 1 and is adjusted according to the relative position L0, the user's skin temperature T1, and the current air outlet temperature T 出风 Comprehensively confirm the adjustment range of the air outlet temperature △T 出风 , please refer to Table 2 for details.

[0078]

[0079] Table 1 (Windshield F increases gradually from F1 to F5)

[0080]

[0081] Table 2

[0082] After that, T is detected every t1 time interval. 出风 , T1, L0 and T 内环 (Indoor ambient temperature).

[0083] After that, determine whether T inner loop ≤ T 设定 If the condition is met, the outlet temperature is no longer reduced according to the above judgment condition (ie, the current outlet temperature is maintained unchanged), and the temperature is checked to see if the outlet temperature is within the time T2. 内环 If it continues to decrease, then increase the outlet temperature Td℃. Otherwise, continue to judge whether T 内环 ≤T 设定 -Tc℃. If T is not satisfied 内环 ≤T 设定 -Tc℃, re-judge whether the user's skin surface temperature T1 ≥ Tb.

[0084] Specifically, the skin temperature T1, relative position L0, current air outlet temperature T are detected every t1 time (the recommended value of t1 is 3 minutes). 出风 And the current indoor ambient temperature T 内环 Adjust the outlet temperature reduction range in time. The recommended value of t1 is 3 minutes. If T1 < Tb is detected, the anti-direct blowing mode will be operated. If T appears before T1 ≤ Tb 内环 ≤T 设定-Tc℃ (Tc recommended value is 1), the current outlet temperature is maintained and no longer lowered according to skin temperature and other conditions. If T is detected after a subsequent interval of t2 (t2 recommended value is 5 minutes), 内环 If the temperature continues to decrease on this basis, the outlet air temperature Td℃ will be increased (the recommended value of Td is 0.5℃) until T 内环 No longer below T 设定 -Tc℃.

[0085] When it is detected that the user's skin surface temperature T1 is less than Tb (when the user's skin surface temperature is lower than this value, it indicates that the user will feel uncomfortable when blown by cold wind at this time), the user's current position is obtained, the current user position is also included in the anti-direct blowing range, and the air guide plate is adjusted according to the anti-direct blowing logic to avoid direct blowing of cold wind.

[0086] By using the embodiment of the present application, a suitable local environment is created to meet the needs of people who have just entered the room, and the adjustment plan is confirmed based on the relative position of the person and the air conditioner, skin temperature, etc., which does not destroy the comfort of the original indoor environment, but can quickly meet the comfort requirements of the human body just entering the room, and there is no need to adjust the compressor frequency, thereby achieving energy-saving effects.

[0087] The above examples illustrate the method embodiments according to the present application. The present invention further provides an electronic device including a memory and a processor. The memory stores computer instructions, and the processor is configured to call and execute the computer instructions to implement the methods provided in the embodiments of the present application.

[0088] The embodiments of the present application also provide an air conditioner, which adopts the method provided by the embodiments of the present application, or has the electronic device provided by the embodiments of the present application.

[0089] An embodiment of the present application also provides an air-conditioning indoor unit, which adopts the method provided in the embodiment of the present application, or has the electronic device provided in the embodiment of the present application.

[0090] The description of the electronic device, air conditioner, and air conditioner indoor unit is similar to the description of the above method embodiment and has similar beneficial effects as the method embodiment. Please refer to the description of the method embodiment of this application for understanding.

[0091] The sequence of the serial numbers or introduction of the embodiments of this application is for description only and does not represent the superiority or inferiority of the embodiments.

[0092] In the several embodiments provided in this application, it should be understood that the disclosed technical content can be implemented in other ways. Among them, the device embodiments described above are only exemplary. For example, the division of units can be a logical function division. In actual implementation, there may be other division methods, such as multiple units or components can be combined or integrated into another system, or some features can be ignored or not executed. Another point is that the mutual coupling or direct coupling or communication connection shown or discussed can be through some interfaces, indirect coupling or communication connection of units or modules, which can be electrical or other forms.

[0093] Units described as separate components may or may not be physically separate, and components shown as units may or may not be physical units, that is, they may be located in one place or distributed across multiple units. Some or all of the units may be selected to achieve the purpose of the present embodiment according to actual needs.

[0094] In addition, the functional units in the various embodiments of the present application may be integrated into a single processing unit, or each unit may exist physically separately, or two or more units may be integrated into a single unit. The aforementioned integrated units may be implemented in the form of hardware or software functional units.

[0095] In the above embodiments, all or part can be implemented by software, hardware, firmware, or any combination thereof. When implemented by software, all or part can be implemented in the form of a computer program product. The computer program product includes one or more computer instructions. When the computer instructions are loaded and executed on a computer, all or part of the processes or functions according to the embodiments of the present application are generated. The computer can be a general-purpose computer, a special-purpose computer, a computer network, or other programmable devices. The computer instructions can be stored in a computer-readable storage medium or transmitted from one computer-readable storage medium to another computer-readable storage medium, for example, the computer instructions can be transmitted from one website, computer, server or data center to another website, computer, server or data center through wired (for example: coaxial cable, optical fiber, digital subscriber line (DSL)) or wireless (for example: infrared, wireless, microwave, etc.). The computer-readable storage medium can be any available medium that can be accessed by a computer, or a data storage device such as a server, data center, etc. integrated with one or more available media. The available media can be magnetic media (for example: floppy disk, hard disk, magnetic tape), optical media (for example: digital versatile disc (DVD)) or semiconductor media (for example: solid state disk (SSD)) and the like. It should be noted that the computer-readable storage medium mentioned in the embodiments of the present application can be a non-volatile storage medium, in other words, it can be a non-transitory storage medium.

[0096] It should be noted that the information (including but not limited to user device information, user personal information, etc.), data (including but not limited to data for analysis, stored data, displayed data, etc.) and signals involved in the embodiments of the present application are all authorized by the user or fully authorized by all parties, and the collection, use and processing of related data need to comply with relevant laws, regulations and standards of relevant countries and regions. For example, the scene data of the current frame in the three-dimensional virtual scene, the device information of the client, and the scene interaction information involved in the embodiments of the present application are all obtained under sufficient authorization.

[0097] The above is only the preferred embodiment of the present application, and it should be noted that for those skilled in the art, without departing from the principles of the present application, a number of improvements and refinements can be made, which should be considered as the protection scope of the present application.

Claims

1. An air conditioning control method, characterized in that: The method comprises: When the air conditioner is operating in the first mode, obtaining a relative position relationship between the target object and the air conditioner; Determining the air outlet parameters of the air conditioner according to the relative position relationship and the heat exchange demand of the target object, wherein the air outlet parameters include a target wind speed and a target air outlet temperature adjustment range; The air conditioner is controlled to switch from the first mode to the second mode according to the air outlet parameter. In the second mode, the air conditioner performs centralized heat exchange on the target object. The first mode is different from the second mode.

2. The method according to claim 1, characterized in that The first mode is an anti-direct blowing mode, or the first mode is a mode when the temperature of the space where the air conditioner is located is in a stable state; The method also Including detecting the target object in the following manner: When the air conditioner is operating in the first mode, detecting a surface temperature of a user entering the space; If the surface temperature of the user meets a set condition, the user is determined to be the target object.

3. The method according to claim 1, characterized in that The method further comprises: determining the air outlet direction and air sweeping mode of the second mode according to the relative position relationship; The air outlet direction is toward the target object, and the air sweeping method is up and down sweeping.

4. The method according to claim 1, wherein The relative position relationship includes a relative distance, and the heat exchange requirement of the target object includes a surface temperature of the target object; The determining of the air outlet parameters of the air conditioner according to the relative position relationship and the heat exchange requirement of the target object includes: determining the target wind speed according to the relative distance and the surface temperature of the target object; The target air outlet temperature adjustment range is determined according to the relative distance and the surface temperature of the target object.

5. The method according to claim 4, characterized in that The determining the target wind speed according to the relative distance and the surface temperature of the target object includes: Determining the target wind speed according to a preset first mapping relationship, wherein the first mapping relationship includes mapping relationships between multiple relative distance intervals, multiple surface temperature intervals, and wind speed; Among them, in the same relative distance interval, the surface temperature interval with a larger surface temperature corresponds to a larger wind speed, and in the same surface temperature interval, the relative distance interval with a larger relative distance corresponds to a larger wind speed.

6. The method according to claim 4, characterized in that The determining the target air outlet temperature adjustment range according to the relative distance and the surface temperature of the target object includes: determining the target outlet air temperature according to a preset second mapping relationship, wherein the second mapping relationship includes a mapping relationship between a plurality of relative distance intervals, a plurality of surface temperature intervals, and an outlet air temperature adjustment range under the current outlet air temperature; Among them, in the same relative distance interval, the surface temperature interval with a larger surface temperature includes a larger corresponding air outlet temperature adjustment amplitude; in the same surface temperature interval, the relative distance interval with a larger relative distance includes a larger corresponding air outlet temperature adjustment amplitude; in the same relative distance interval and the same surface temperature interval, the larger the current air outlet temperature, the larger the corresponding air outlet temperature adjustment amplitude.

7. The method according to claim 1, characterized in that The controlling the air conditioner to switch from the first mode to the second mode according to the air outlet parameter includes: In the second mode, the air outlet is controlled according to the target wind speed, and the air outlet temperature is adjusted according to the target air outlet temperature adjustment range; During the process of adjusting the air outlet temperature, if it is detected that the deviation of the internal temperature of the space where the air conditioner is located relative to the set temperature reaches a first deviation value, the current air outlet temperature is maintained or increased to maintain the deviation of the internal temperature relative to the set temperature within the first deviation value.

8. The method according to claim 1, characterized in that The method further comprises: In the second mode, if it is detected that the surface temperature of the target object does not meet a set condition, the air conditioner is controlled to end the operation of the second mode.

9. The method according to claim 8, characterized in that The method further comprises: The air conditioner is controlled to terminate the second mode and then to operate in the first mode.

10. The method according to claim 1, characterized in that The method further comprises: The relative position relationship and the heat exchange demand of the target object are periodically updated to periodically update the air outlet parameters, and the second mode is operated according to the updated air outlet parameters.

11. An electronic device, characterized in that: The electronic device comprises: a memory for storing one or more computer instructions; A processor, configured to call and execute the computer instructions to implement the method according to any one of claims 1 to 10.

12. An air conditioner, characterized in that: The air conditioner adopts the method according to any one of claims 1 to 10, or has the electronic device according to claim 11.