Air conditioner control method and device, storage medium and air conditioner
By determining the temperature control environment parameters and the user's departure time in the air conditioner, setting the insulation and temperature increase control parameters, the problem of difficult to balance the energy consumption and comfort experience of the air conditioner when there is no user in the temperature control space is solved, and the low-energy consumption insulation and rapid temperature increase effect is achieved.
Patent Information
- Application Number
- CN202510400856.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-31
- Publication Date
- 2025-05-13
AI Technical Summary
In the heating scenario where there is no user in the temperature-controlled space, it is difficult to effectively balance the energy consumption of the air conditioner and the user's comfort experience.
The insulation control parameters and the temperature increase control parameters are determined by determining the temperature control environment parameters and the user's departure time when the unmanned temperature control conditions are met. According to these parameters, the air conditioner is operated in the insulation phase when unmanned and in the heating phase when the user returns.
In the heating scenario where there is no user in the temperature-controlled space, it effectively balances the energy consumption and user comfort experience of the air conditioner, ensuring that the temperature-controlled space returns to the appropriate temperature when the user returns.
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Figure CN119983522A_ABST
Abstract
Description
Technical Field
[0001] The present application relates to the technical field of air conditioning, and in particular to an air conditioner control method, device, storage medium and air conditioner. Background Art
[0002] Taking heat pump air conditioners as an example, in heating scenarios, when users need to leave the temperature-controlled space for a long time, they usually have to turn off the air conditioner. However, when the user returns to the temperature-controlled space, the temperature of the walls, floors and other locations in the space has often become lower, and it takes a long time to turn on the air conditioner again for heating, resulting in a poor user comfort experience.
[0003] At present, in order to improve the comfort experience, some related technical solutions will continue to keep the air conditioner running when there is no user in the temperature-controlled space to avoid the temperature drop in the temperature-controlled space. Although this solution ensures comfort, it consumes a lot of energy.
[0004] Therefore, in the current heating scenario where there are no users in the temperature-controlled space, there is a problem that the energy consumption of the air conditioner and the user's comfort experience cannot be effectively balanced. Summary of the invention
[0005] The embodiment of the present application provides an air conditioner control solution, which can effectively balance the energy consumption of the air conditioner and the user comfort experience in a heating scenario where there is no user in the temperature-controlled space.
[0006] The embodiments of the present application provide the following technical solutions:
[0007] According to one embodiment of the present application, a method for controlling an air conditioner, wherein, if an unmanned temperature control condition is met, temperature control environment parameters and the length of time a user is away are determined; based on the temperature control environment parameters and the length of time the user is away, insulation control parameters and temperature rise control parameters are determined; the air conditioner is controlled to perform an insulation phase according to the insulation control parameters; after the insulation phase ends, the air conditioner is controlled to perform an insulation phase according to the temperature rise control parameters.
[0008] In some embodiments of the present application, controlling the air conditioner to perform a heat preservation stage according to the heat preservation control parameters includes: after controlling the air conditioner to run for a first operating period according to the heat preservation control parameters, detecting change data of the indoor ambient temperature during the first operating period to obtain first temperature change data; adjusting the heat preservation control parameters according to the first temperature change data; and controlling the operation of the air conditioner according to the adjusted heat preservation control parameters.
[0009] In some embodiments of the present application, the insulation control parameters include the operating temperature of the insulation stage and the operating duration of the insulation stage; adjusting the insulation control parameters according to the first temperature change data includes: if the first temperature change data is less than a first range, reducing the operating temperature of the insulation stage by a first temperature value and extending the operating duration of the insulation stage by a first insulation duration; if the first temperature change data is within the first range, maintaining the operating temperature of the insulation stage and the operating duration of the insulation stage; if the first temperature change data is greater than the first range, increasing the operating temperature of the insulation stage by a second temperature value and shortening the operating duration of the insulation stage by a second insulation duration.
[0010] In some embodiments of the present application, controlling the air conditioner to operate in the heating stage according to the heating control parameters includes: after controlling the air conditioner to operate for a second operating period according to the heating control parameters, detecting the indoor ambient temperature after heating; adjusting the heating control parameters according to the indoor ambient temperature after heating; and controlling the operation of the air conditioner according to the adjusted heating control parameters.
[0011] In some embodiments of the present application, the temperature rise control parameter includes the operating temperature in the temperature rise stage; adjusting the temperature rise control parameter according to the indoor ambient temperature after temperature rise includes: if the indoor ambient temperature after temperature rise is less than a second range, increasing the operating temperature in the temperature rise stage by a third temperature value; if the indoor ambient temperature after temperature rise is within the second range, maintaining the operating temperature in the temperature rise stage; if the indoor ambient temperature after temperature rise is greater than the second range, reducing the operating temperature in the temperature rise stage by a fourth temperature value.
[0012] In some embodiments of the present application, before controlling the air conditioner to run for a second operating time according to the temperature rise control parameter, the method further includes: determining a final insulation stage operating time; subtracting the final insulation stage operating time from the user's absence time to obtain the second operating time.
[0013] In some embodiments of the present application, the temperature control environment parameters include an outdoor ambient temperature and a set temperature control temperature; determining the heat preservation control parameters and the temperature rise control parameters based on the temperature control environment parameters and the length of time the user is away includes: obtaining an operating parameter table; from the operating parameter table, querying the control parameters that match the outdoor ambient temperature, the set temperature control temperature, and the length of time the user is away, to obtain the heat preservation control parameters and the temperature rise control parameters.
[0014] According to one embodiment of the present application, an air conditioner control device includes: a memory storing a computer program; and a processor reading the computer program stored in the memory to execute the method described in the embodiment of the present application.
[0015] According to another embodiment of the present application, a storage medium stores a computer program thereon, and when the computer program is executed by a processor of an air conditioner control device, the computer executes the method described in the embodiment of the present application.
[0016] According to another embodiment of the present application, an air conditioner may include an air conditioner control device.
[0017] According to another embodiment of the present application, a computer program product or a computer program includes computer instructions stored in a computer-readable storage medium. A processor of an air conditioner control device reads the computer instructions from the computer-readable storage medium, and the processor executes the computer instructions, so that the air conditioner control device executes the method provided in various optional implementations described in the embodiments of the present application.
[0018] In an embodiment of the present application, if the unmanned temperature control condition is met, the temperature control environment parameters and the length of time the user is away are determined; based on the temperature control environment parameters and the length of time the user is away, the insulation control parameters and the temperature rise control parameters are determined; the air conditioner is controlled to perform the insulation stage according to the insulation control parameters; after the insulation stage ends, the air conditioner is controlled to perform the heating stage according to the temperature rise control parameters.
[0019] In this manner in the embodiments of the present application, when the temperature-controlled space meets the unmanned temperature control condition, the insulation control parameters and the heating control parameters are determined according to the temperature control environment parameters and the length of time the user is away, and the air conditioner is controlled to perform low-energy operation in the insulation stage according to the insulation control parameters. After the insulation stage is over, the air conditioner is controlled to perform operation in the heating stage according to the heating control parameters, so that when the user returns to the temperature-controlled space, the temperature in the temperature-controlled space returns to a suitable temperature. Thus, in the heating scenario when there is no user in the temperature-controlled space, an effective balance is achieved between the air conditioner's energy consumption and the user's comfort experience. BRIEF DESCRIPTION OF THE DRAWINGS
[0020] In order to more clearly illustrate the technical solutions in the embodiments of the present application, the drawings required for use in the description of the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments of the present application. For those skilled in the art, other drawings can be obtained based on these drawings without creative work.
[0021] Figure 1 A flow chart of an air conditioner control method according to an embodiment of the present application is shown.
[0022] Figure 2 A heat preservation control flow chart according to an embodiment of the present application is shown.
[0023] Figure 3 A temperature rise control flow chart according to an embodiment of the present application is shown.
[0024] Figure 4 A block diagram of an air conditioner control device according to an embodiment of the present application is shown.
[0025] Figure 5 A block diagram of an air conditioner according to an embodiment of the present application is shown. DETAILED DESCRIPTION
[0026] The present disclosure is further described in detail below in conjunction with the accompanying drawings and embodiments. It should be understood that the embodiments provided herein are only used to explain the present disclosure and are not intended to limit the present disclosure. In addition, the embodiments provided below are partial embodiments for implementing the present disclosure, rather than providing all embodiments for implementing the present disclosure. In the absence of conflict, the technical solutions recorded in the embodiments of the present disclosure can be implemented in any combination.
[0027] It should be noted that, in the embodiments of the present disclosure, the terms "include", "comprises" or any other variants thereof are intended to cover non-exclusive inclusion, so that a method or apparatus including a series of elements includes not only the elements explicitly recorded, but also includes other elements not explicitly listed, or also includes elements inherent to the implementation of the method or apparatus. In the absence of further restrictions, an element defined by the sentence "includes a ..." does not exclude the presence of other related elements in the method or apparatus including the element (such as a step in the method or a unit in the apparatus, for example, a unit may be a part of a circuit, a part of a processor, a part of a program or software, etc.).
[0028] For example, the air conditioner control method provided by the embodiment of the present disclosure includes a series of steps, but the air conditioner control method provided by the embodiment of the present disclosure is not limited to the recorded steps. Similarly, the air conditioner control device provided by the embodiment of the present disclosure includes a series of units, but the device provided by the embodiment of the present disclosure is not limited to including the units explicitly recorded, and may also include units required to obtain relevant information or perform processing based on information.
[0029] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as those commonly understood by those skilled in the art to which the present disclosure belongs. The terms used herein are only for the purpose of describing specific embodiments and are not intended to limit the present disclosure.
[0030] It is understandable that in the specific implementation of this application, relevant data is involved. When the embodiments in this application are applied to specific products or technologies, user permission or consent is required, and the collection, use and processing of relevant data need to comply with relevant laws, regulations and standards of relevant countries and regions.
[0031] Taking heat pump air conditioners as an example, in heating scenarios, when users need to leave the temperature-controlled space for a long time, they usually have to turn off the air conditioner. However, when the user returns to the temperature-controlled space, the temperature of the walls, floors and other locations in the space has often become lower, and it takes a long time to turn on the air conditioner again for heating, resulting in a poor user comfort experience. In order to improve the comfort experience, some related technical solutions will continue to keep the air conditioner running when there are no users in the temperature-controlled space to avoid the temperature drop in the temperature-controlled space. Although this solution ensures comfort, it consumes a lot of energy. Therefore, in the current heating scenario where there are no users in the temperature-controlled space, there is a problem that the energy consumption of the air conditioner and the user's comfort experience cannot be effectively balanced.
[0032] The present application provides the following technical solution, which can effectively balance the energy consumption of the air conditioner and the user's comfort experience in a heating scenario where there is no user in the temperature-controlled space.
[0033] Figure 1 The flowchart of an air conditioner control method according to an embodiment of the present application is schematically shown. The execution subject of the air conditioner control method can be any air conditioner control device with processing capabilities, for example, an air conditioner, a mobile phone, a computer, a smart watch, and an air conditioner control device in other home appliances, and the air conditioner control device can include at least a memory and a processor. Among them, the air conditioner can include a heat pump air conditioner or other capacity air conditioner.
[0034] In a specific embodiment of the present application, the air conditioner is specifically a heat pump air conditioner, and the air conditioner control device serving as the executor of the air conditioner control method is specifically located in the heat pump air conditioner. The air conditioner control device may include a processor and a memory, and a computer program is stored in the memory. The processor can read the computer program stored in the memory to execute the methods described in each embodiment of the present application.
[0035] like Figure 1 As shown, the air conditioner control method may include steps S110 to S140.
[0036] Step S110, if the unattended temperature control condition is met, determine the temperature control environment parameters and the user's absence time;
[0037] Step S120, determining a heat preservation control parameter and a temperature rise control parameter according to the temperature control environment parameter and the user's absence time;
[0038] Step S130, controlling the air conditioner to operate in a heat preservation stage according to the heat preservation control parameter;
[0039] Step S140, after the end of the heat preservation stage, controlling the air conditioner to operate in the heat rising stage according to the heat rising control parameters.
[0040] When the air conditioner control device determines that the unmanned temperature control condition is met, it determines the temperature control environment parameters and the user's absence time. The unmanned temperature control condition may be a predetermined condition for triggering the execution of the air conditioner control method of the embodiment of the present application, and the unmanned temperature control condition may be "reaching the time point of leaving home specified by the user" or "detecting that there is no object (the object may be a person or an animal, etc.) in the temperature control space for more than a predetermined period of time" and the like.
[0041] The temperature control environment parameters may include, but are not limited to, the outdoor environment temperature and the set temperature control temperature, the outdoor environment temperature being the temperature of the outdoor environment where the outdoor unit of the air conditioner is located, and the set temperature control temperature being the target temperature set by the user for the air conditioner. The air conditioner control device may detect the outdoor environment temperature through a preset sensor and obtain the outdoor environment temperature through networking or other means, and the embodiments of the present application do not specifically limit this.
[0042] The user away time is the time required from when the user leaves the temperature-controlled space to when he / she returns to the temperature-controlled space. In one mode, the air conditioner control device can obtain the user away time input by the user through the control interface or voice. Optionally, in one mode, the air conditioner control device can automatically determine the user away time that matches the unmanned temperature control condition based on the unmanned temperature control condition that is satisfied. For example, the unmanned temperature control condition can be "reaching the user-specified time of leaving home at 8 o'clock", and the preset time table can be further queried to determine the user away time that matches 8 o'clock.
[0043] Furthermore, the air conditioner control device can determine the insulation control parameters and temperature increase control parameters that match the temperature control environment parameters and the user's absence duration based on the temperature control environment parameters and the user's absence duration, wherein the insulation control parameters refer to the parameters that control the air conditioner to keep the temperature controlled space warm, and the temperature increase control parameters refer to the parameters that control the air conditioner to increase the temperature of the temperature controlled space.
[0044] Furthermore, the air conditioner control device first controls the air conditioner to enter the insulation stage and then enters the heating stage after the insulation stage, thereby avoiding the high energy consumption problem of running the air conditioner according to the temperature control temperature set by the user when there is no one in the temperature-controlled space for a long time, and at the same time avoiding the poor comfort experience of turning off the air conditioner first and then turning it back on when the user returns.
[0045] Specifically, in the heat preservation stage, the air conditioner control device can control the air conditioner to operate in the heat preservation stage according to the heat preservation control parameters, and in the heat preservation stage, the indoor environment temperature of the temperature-controlled space can be controlled to be lower than the set temperature control temperature, so that the temperature-controlled space is first kept warm at a relatively low energy consumption in the heat preservation stage. After the heat preservation stage ends, the temperature rise stage begins, and the air conditioner control device can control the air conditioner to operate in the heat rise stage according to the temperature rise control parameters, so that when the user returns to the temperature-controlled space, the temperature in the temperature-controlled space returns to a suitable indoor environment temperature.
[0046] In summary, in this manner in the embodiments of the present application, when the temperature-controlled space meets the unmanned temperature control condition, the insulation control parameters and the temperature rise control parameters are determined according to the temperature control environment parameters and the length of time the user is away, and the air conditioner is controlled to perform low-energy operation in the insulation stage according to the insulation control parameters. After the insulation stage is over, the air conditioner is controlled to perform operation in the heating stage according to the temperature rise control parameters, so that when the user returns to the temperature-controlled space, the temperature in the temperature-controlled space returns to an appropriate temperature. Thus, in the heating scenario when there is no user in the temperature-controlled space, an effective balance is achieved between the air conditioner's energy consumption and the user's comfort experience.
[0047] Described below Figure 1 When the air conditioner is controlled under the embodiment, further optional specific embodiments are provided for each step performed.
[0048] In one embodiment, the temperature control environment parameters include an outdoor ambient temperature and a set temperature control temperature; in step S120, determining the heat preservation control parameters and the temperature rise control parameters based on the temperature control environment parameters and the user's absence duration may include: obtaining an operating parameter table; from the operating parameter table, querying the control parameters that match the outdoor ambient temperature, the set temperature control temperature, and the user's absence duration to obtain the heat preservation control parameters and the temperature rise control parameters.
[0049] In this embodiment, the air conditioner control device can obtain an operation parameter table locally or remotely, and the operation parameter table includes control parameters that match different temperature durations, and the control parameters include heat preservation control parameters and temperature increase control parameters. From the operation parameter table, the control parameters that match the outdoor environment temperature, the set temperature control temperature, and the user's absence duration can be queried conveniently and efficiently, and the queried matching control parameters include the initial heat preservation control parameters and the initial temperature increase control parameters.
[0050] Specifically, in one embodiment, the initial heat preservation control parameters may include the initial heat preservation stage operating temperature, the initial heat preservation stage operating time and the first operating time, and the initial heating control parameters may include the initial heating stage operating temperature. From the operating parameter table, you can first query the "heat preservation stage operating temperature, heating stage operating temperature, initial heat preservation stage operating time and first operating time" corresponding to the "outdoor ambient temperature and set temperature control temperature", and among them, "the initial heat preservation stage operating time is less than the user's absence time, and the first operating time is less than or equal to the initial heat preservation stage operating time".
[0051] Among them, the initial operating temperature of the insulation stage is lower than the set temperature control temperature, the initial operating temperature of the insulation stage is lower than the initial operating temperature of the heating stage, and the difference between the initial operating temperature of the heating stage and the set temperature control temperature is lower than the predetermined difference.
[0052] Optionally, in other embodiments, in step S120, determining the heat preservation control parameter and the temperature rise control parameter according to the temperature control environment parameter and the user's absence time may include: using a temperature control model to make a decision based on the temperature control environment parameter and the user's absence time, and obtaining the heat preservation control parameter and the temperature rise control parameter output by the temperature control model. The temperature control model may be deployed locally or in the cloud, and the temperature control model may be a model obtained by fine-tuning a large language model or by training other optional neural network models.
[0053] See also Figure 2 In one embodiment, in step S130, controlling the air conditioner to operate in the insulation stage according to the insulation control parameters may include: step S210, after controlling the air conditioner to operate for a first operating time according to the insulation control parameters, detecting the change data of the indoor ambient temperature during the first operating time to obtain first temperature change data; step S220, adjusting the insulation control parameters according to the first temperature change data; step S230, controlling the air conditioner to operate according to the adjusted insulation control parameters.
[0054] After determining the initial insulation control parameters and the temperature rise control parameters, the insulation stage is first entered. After entering the insulation stage, the air conditioner is controlled to run for a first operating time according to the initial insulation control parameters, and the change data of the indoor environment temperature in the temperature control space during the first operating time is detected. The detected change data is the first temperature change data. The "initial insulation control parameters" are the insulation control parameters determined according to the temperature control environment parameters and the user's absence time.
[0055] In one example, the first temperature change data may specifically be a decreasing speed of the indoor ambient temperature during the first operating time; in another example, the first temperature change data may specifically be a decreasing temperature value of the indoor ambient temperature during the first operating time.
[0056] Further, the initial insulation control parameter is adjusted according to the first temperature change data, and the insulation stage ends after the air conditioner continues to be controlled to run the "insulation remaining time" according to the adjusted insulation control parameter. Among them, the "insulation remaining time" is equal to "the final insulation stage running time minus the first running time", and the final insulation stage running time is "the initial insulation stage running time in the initial insulation control parameter" or "the adjusted insulation stage running time in the adjusted insulation control parameter".
[0057] In this implementation mode, the insulation control parameters are further dynamically adjusted according to the change data of the indoor ambient temperature during the first operating period during the insulation stage, and the air conditioner operation is continued to be controlled according to the adjusted insulation control parameters, thereby further improving the insulation effect and enabling the heating process in the subsequent heating stage to be carried out reliably.
[0058] Further, in one embodiment, the insulation control parameters include an operating temperature in the insulation stage and an operating time in the insulation stage; and adjusting the insulation control parameters according to the first temperature change data may specifically include:
[0059] If the first temperature change data is less than the first range, the operating temperature of the heat preservation stage is reduced by a first temperature value and the operating time of the heat preservation stage is extended by a first heat preservation time;
[0060] If the first temperature change data is within the first range, maintaining the operating temperature and the operating time of the insulation stage;
[0061] If the first temperature change data is greater than the first range, the operating temperature of the heat preservation stage is increased by a second temperature value and the operating time of the heat preservation stage is shortened by a second heat preservation time.
[0062] The initial insulation control parameters include the initial insulation stage operating temperature T 保温1 And the running time of the insulation stage t 保温1 , the first temperature change data is expressed as ΔT 内环保温 , the first range is denoted as ΔT 内环1 To ΔT 内环2 , the first temperature value is represented by A, the first insulation time is represented by B, the second temperature value is represented by C, the second insulation time is represented by D, and the adjusted insulation stage operating temperature is represented by T 保温2 The adjusted insulation phase running time is expressed as t 保温2Among them, the sizes of A, B, C and D can be set according to actual conditions, and this application does not make any special restrictions.
[0063] In the first case, if the first temperature change data is less than the first range (ie, ΔT 内环保温 <ΔT 内环1 ), at this time, it indicates that the temperature attenuation in the temperature control space is small and the thermal insulation performance is excellent. The initial thermal insulation stage operating temperature is reduced by the first temperature value to obtain the adjusted thermal insulation stage operating temperature (i.e., T 保温2 =T 保温1 -A), the initial insulation stage running time is extended by the first insulation time to obtain the adjusted insulation stage running time (i.e., t 保温2 =t 保温1 +B), so the adjusted insulation control parameters in this case include T 保温2 =T 保温1 -A and t 保温2 =t 保温1 +B.
[0064] That is, in the first case, the first running time t 1 According to T 保温1 Control the air conditioner to run, then, according to T 保温2 Continue to control the air conditioner to run "insulation remaining time" and then the insulation stage ends. "Insulation remaining time" is equal to "final insulation stage running time (in this case, it is equal to the adjusted insulation stage running time t 保温2 ) minus the first running time (t 1 )". By further reducing the initial operating temperature of the insulation stage and extending the initial operating time of the insulation stage in the first case (small temperature decay in the temperature-controlled space and excellent insulation performance), energy consumption can be further reduced.
[0065] In the second case, if the first temperature change data is within the first range (ie, ΔT 内环1 ≤ΔT 内环保温 ≤ΔT 内环2 ), it indicates that the temperature decay and thermal insulation performance in the temperature control space are equivalent to the initial setting, and the initial thermal insulation stage operating temperature T is maintained. 保温1 And the initial running time of the insulation stage t 保温1 .
[0066] That is, in the second case, the first running time t 1 According to T 保温1 Control the air conditioner to run, then, according to T 保温1 Continue to control the air conditioner to run "insulation remaining time" and then the insulation stage ends. "Insulation remaining time" is equal to "final insulation stage running time (in this case, it is equal to the initial insulation stage running time t保温1 ) minus the first running time (t 1 )”.
[0067] In the third case, if the first temperature change data is greater than the first range (ie, ΔT 内环保温 >ΔT 内环2 ), indicating that the temperature attenuation in the temperature control space is large and the insulation performance is worse, then the initial insulation stage operating temperature is increased by the second temperature value to obtain the adjusted insulation stage operating temperature (i.e., T 保温2 =T 保温1 +C), and the initial determination of shortening the running time of the heat preservation stage by the second heat preservation time to obtain the adjusted running time of the heat preservation stage (i.e., t 保温2 =t 保温1 -D). Therefore, the adjusted insulation control parameters in this case include T 保温2 =T 保温1 +C and t 保温2 =t 保温1 -D.
[0068] That is, in the third case, the first running time t 1 According to T 保温1 Control the air conditioner to run, then, according to T 保温2 Continue to control the air conditioner to run "insulation remaining time" and then the insulation stage ends. "Insulation remaining time" is equal to "final insulation stage running time (in this case, it is equal to the adjusted insulation stage running time t 保温2 ) minus the first running time (t 1 )". By further increasing the initial operating temperature of the insulation stage and shortening the initial operating time of the insulation stage in the third case (large temperature attenuation in the temperature-controlled space and worse insulation performance), it is possible to avoid the initial indoor environment temperature being too low and the time reserved for the heating stage being too short in the subsequent heating stage, further ensuring that the comfort experience can be met after heating.
[0069] See also Figure 3 In one embodiment, in step S130, controlling the air conditioner to operate in the heating stage according to the heating control parameter may include: step S310, controlling the air conditioner to operate for a second operating time according to the heating control parameter, and then detecting the indoor ambient temperature after heating; step S320, adjusting the heating control parameter according to the indoor ambient temperature after heating; step S330, controlling the operation of the air conditioner according to the adjusted heating control parameter.
[0070] After the heat preservation stage, the temperature rise stage is entered. After entering the temperature rise stage, the air conditioner is controlled to run for a second operation time according to the initial temperature rise control parameter, and the indoor environment temperature in the temperature control space is detected at this time. The detected indoor environment temperature is the indoor environment temperature after the temperature rise. The "initial temperature rise control parameter" is the temperature rise control parameter determined according to the temperature control environment parameter and the user's absence time.
[0071] Furthermore, the initial temperature rise control parameter is adjusted according to the second temperature change data, and the air conditioner operation is continued to be controlled according to the adjusted temperature rise control parameter, thereby further ensuring a good comfort experience after the user returns home.
[0072] Further, the temperature rise control parameter includes an operating temperature in the temperature rise stage; and adjusting the temperature rise control parameter according to the indoor ambient temperature after the temperature rise may specifically include:
[0073] If the indoor ambient temperature after heating is lower than the second range, the operating temperature in the heating stage is increased by a third temperature value;
[0074] If the indoor ambient temperature after heating is within the second range, maintaining the operating temperature in the heating stage;
[0075] If the indoor environment temperature after heating is greater than the second range, the operating temperature in the heating stage is reduced by a fourth temperature value.
[0076] The initial temperature rise control parameters may include the initial temperature rise stage operating temperature T 升温1 , the indoor ambient temperature after heating is expressed as T 内环升温 , the second range is denoted as T 内环3 To T 内环4 The third temperature value is represented by M, the fourth temperature value is represented by N, and the adjusted operating temperature in the heating stage is represented by T 升温2 Among them, the sizes of M and N can be set according to actual conditions, and this application does not make any special restrictions.
[0077] In the first case, if the indoor ambient temperature after heating is lower than the second range (i.e. T 内环升温 <T 内环3 ), it indicates that the temperature in the temperature-controlled space has not reached the second range with a comfortable experience, and the user experience will be reduced, so the initial operating temperature of the heating stage is increased by the third temperature value to obtain the adjusted operating temperature of the heating stage (i.e., T 升温2 =T 升温1 +M) can increase the operating temperature in the heating stage and speed up the heating process, so as to reach the second range with a comfortable experience as soon as possible.
[0078] That is, in the first case, the second operation time t2 According to T 升温1 Control the air conditioner to run, then, according to T 升温2 Continue to control the operation of the air conditioner, thereby further ensuring timely and effective comfort experience in the first case.
[0079] In the second case, if the indoor ambient temperature after heating is within the second range (i.e., T 内环3 ≤T 内环升温 ≤T 内环4 ), indicating that the temperature in the temperature-controlled space has reached the second range with a comfortable experience, and the initial heating stage operating temperature T is maintained. 升温1 Just keep running.
[0080] In the third case, if the indoor ambient temperature after heating is greater than the second range (i.e., T 内环升温> T 内环4 ), indicating that the temperature in the temperature-controlled space exceeds the second range too much, the air conditioner has too much ineffective output, and the economy is reduced. Then, the initial temperature rise stage operating temperature is reduced by a fourth temperature value to obtain the adjusted temperature rise stage operating temperature (i.e., T 升温2 =T 升温1 -N), which can make the second range with a comfortable experience reachable as quickly as possible.
[0081] Furthermore, in one embodiment, before controlling the air conditioner to run for a second running time according to the temperature rise control parameter, the method may further include:
[0082] Determine the final insulation stage running time, wherein the final insulation stage running time refers to the insulation stage running time in the initial insulation control parameters or the adjusted insulation control parameters; subtract the final insulation stage running time from the user's absence time to obtain the second running time.
[0083] In this embodiment, the second running time is equal to the running time of the heating stage, that is, the second running time can be equal to the user's absence time minus the final heat preservation stage running time, and the final heat preservation stage running time is "the initial heat preservation stage running time in the initial heat preservation control parameter" or "the adjusted heat preservation stage running time in the adjusted heat preservation control parameter". That is, when the second running time is run after entering the heating stage, the end time point of the user's absence time is reached.
[0084] In addition, the embodiment of the present application also provides an air conditioner control device, which can be applied to control equipment. Figure 4 As shown, Figure 4A block diagram of an air conditioner control device according to an embodiment of the present application is shown. Specifically, the air conditioner control device 400 may include a processor 401 of one or more processing cores and a memory 402 of one or more computer-readable storage media.
[0085] The processor 401 can load the executable files corresponding to the processes of one or more computer programs into the memory 402 according to the instructions, and the processor 401 can run the computer programs stored in the memory 402 to realize the various functions in the embodiments of the air conditioner control method mentioned above in this application.
[0086] For example, the processor 401 may execute the following steps:
[0087] If the unmanned temperature control condition is met, determine the temperature control environment parameters and the length of time the user is away; determine the insulation control parameters and the temperature rise control parameters based on the temperature control environment parameters and the length of time the user is away; control the air conditioner to perform the insulation stage according to the insulation control parameters; after the insulation stage ends, control the air conditioner to perform the heating stage according to the temperature rise control parameters.
[0088] In some embodiments of the present application, controlling the air conditioner to perform a heat preservation stage according to the heat preservation control parameters includes: after controlling the air conditioner to run for a first operating period according to the heat preservation control parameters, detecting change data of the indoor ambient temperature during the first operating period to obtain first temperature change data; adjusting the heat preservation control parameters according to the first temperature change data; and controlling the operation of the air conditioner according to the adjusted heat preservation control parameters.
[0089] In some embodiments of the present application, the insulation control parameters include the operating temperature of the insulation stage and the operating duration of the insulation stage; adjusting the insulation control parameters according to the first temperature change data includes: if the first temperature change data is less than a first range, reducing the operating temperature of the insulation stage by a first temperature value and extending the operating duration of the insulation stage by a first insulation duration; if the first temperature change data is within the first range, maintaining the operating temperature of the insulation stage and the operating duration of the insulation stage; if the first temperature change data is greater than the first range, increasing the operating temperature of the insulation stage by a second temperature value and shortening the operating duration of the insulation stage by a second insulation duration.
[0090] In some embodiments of the present application, controlling the air conditioner to operate in the heating stage according to the heating control parameters includes: after controlling the air conditioner to operate for a second operating period according to the heating control parameters, detecting the indoor ambient temperature after heating; adjusting the heating control parameters according to the indoor ambient temperature after heating; and controlling the operation of the air conditioner according to the adjusted heating control parameters.
[0091] In some embodiments of the present application, the temperature rise control parameter includes the operating temperature in the temperature rise stage; adjusting the temperature rise control parameter according to the indoor ambient temperature after temperature rise includes: if the indoor ambient temperature after temperature rise is less than a second range, increasing the operating temperature in the temperature rise stage by a third temperature value; if the indoor ambient temperature after temperature rise is within the second range, maintaining the operating temperature in the temperature rise stage; if the indoor ambient temperature after temperature rise is greater than the second range, reducing the operating temperature in the temperature rise stage by a fourth temperature value.
[0092] In some embodiments of the present application, before controlling the air conditioner to run for a second operating time according to the temperature rise control parameter, it also includes: determining the final insulation stage operating time; subtracting the final insulation stage operating time from the user's absence time to obtain the second operating time.
[0093] In some embodiments of the present application, the temperature control environment parameters include an outdoor ambient temperature and a set temperature control temperature; determining the heat preservation control parameters and the temperature rise control parameters based on the temperature control environment parameters and the length of time the user is away includes: obtaining an operating parameter table; from the operating parameter table, querying the control parameters that match the outdoor ambient temperature, the set temperature control temperature, and the length of time the user is away, to obtain the heat preservation control parameters and the temperature rise control parameters.
[0094] Those skilled in the art will appreciate that all or part of the steps in the various methods of the above embodiments may be completed by a computer program, or by controlling related hardware through a computer program. The computer program may be stored in a computer-readable storage medium and loaded and executed by a processor.
[0095] To this end, an embodiment of the present application further provides a storage medium, in which a computer program is stored. The computer program can be loaded by a processor to execute the steps in any method provided in the embodiment of the present application.
[0096] The storage medium may be a computer-readable storage medium, and the storage medium may include: a read-only memory (ROM), a random access memory (RAM), a disk or an optical disk, etc.
[0097] Since the computer program stored in the storage medium can execute the steps in any method provided in the embodiments of the present application, the beneficial effects that can be achieved by the method provided in the embodiments of the present application can be achieved. Please refer to the previous embodiments for details and will not be repeated here.
[0098] In addition, see Figure 5 The embodiment of the present application also provides an air conditioner, the air conditioner 500 may include Figure 4 The air conditioner control device 400 and other air conditioner modules 600 (such as a heat pump system, an indoor unit and an outdoor unit, etc.) are shown. It can be understood that the air conditioner can be a heat pump air conditioner or other capacity air conditioner.
[0099] According to another embodiment of the present application, a computer program product or a computer program includes computer instructions stored in a computer-readable storage medium. A processor of an air conditioner control device reads the computer instructions from the computer-readable storage medium, and the processor executes the computer instructions, so that the air conditioner control device executes the method provided in various optional implementations described in the embodiments of the present application.
[0100] Those skilled in the art will readily appreciate other embodiments of the present application after considering the specification and practicing the embodiments disclosed herein. The present application is intended to cover any variations, uses or adaptations of the present application, which follow the general principles of the present application and include common knowledge or customary technical means in the art that are not disclosed in the present application.
[0101] It should be understood that the present application is not limited to the embodiments that have been described above and shown in the accompanying drawings, but various modifications and changes may be made without departing from the scope thereof.
Claims
1. An air conditioner control method, characterized in that: The method comprises: If the unmanned temperature control conditions are met, determine the temperature control environment parameters and the user's absence time; Determine a heat preservation control parameter and a temperature rise control parameter according to the temperature control environment parameter and the user's absence time; Controlling the air conditioner to operate in a heat preservation stage according to the heat preservation control parameter; After the heat preservation stage is finished, the air conditioner is controlled to operate in the heat rising stage according to the heat rising control parameter.
2. The method according to claim 1, characterized in that The step of controlling the air conditioner to operate in the heat preservation stage according to the heat preservation control parameter comprises: After controlling the air conditioner to run for a first running time according to the heat preservation control parameter, detecting the change data of the indoor environment temperature during the first running time to obtain first temperature change data; adjusting the insulation control parameter according to the first temperature change data; The operation of the air conditioner is controlled according to the adjusted insulation control parameters.
3. The method according to claim 2, characterized in that The insulation control parameters include the operating temperature and the operating time of the insulation stage; and adjusting the insulation control parameters according to the first temperature change data includes: If the first temperature change data is less than the first range, the operating temperature of the heat preservation stage is reduced by a first temperature value and the operating time of the heat preservation stage is extended by a first heat preservation time; If the first temperature change data is within the first range, maintaining the operating temperature and the operating time of the insulation stage; If the first temperature change data is greater than the first range, the operating temperature of the heat preservation stage is increased by a second temperature value and the operating time of the heat preservation stage is shortened by a second heat preservation time.
4. The method according to claim 1, characterized in that: The step of controlling the air conditioner to perform a heating phase according to the heating control parameter comprises: After controlling the air conditioner to run for a second operation time according to the temperature increase control parameter, detecting the indoor environment temperature after the temperature increase; adjusting the temperature increase control parameter according to the indoor ambient temperature after the temperature increase; The operation of the air conditioner is controlled according to the adjusted temperature rise control parameter.
5. The method according to claim 4, characterized in that The temperature rise control parameter includes the operating temperature in the temperature rise stage; and the temperature rise control parameter is adjusted according to the indoor environment temperature after the temperature rise, including: If the indoor ambient temperature after heating is lower than the second range, the operating temperature in the heating stage is increased by a third temperature value; If the indoor ambient temperature after heating is within the second range, maintaining the operating temperature in the heating stage; If the indoor environment temperature after heating is greater than the second range, the operating temperature in the heating stage is reduced by a fourth temperature value.
6. The method according to claim 4, characterized in that Before controlling the air conditioner to run for a second running time according to the temperature rise control parameter, the method further includes: Determine the running time of the final holding phase; The second running time is obtained by subtracting the running time of the final heat preservation stage from the user's absence time.
7. The method according to any one of claims 1 to 5, characterized in that: The temperature control environment parameters include the outdoor environment temperature and the set temperature control temperature; the heat preservation control parameters and the temperature rise control parameters are determined according to the temperature control environment parameters and the user's absence time, including: Get the operating parameter table; From the operation parameter table, the control parameters matching the outdoor environment temperature, the set temperature control temperature and the user's absence time are queried to obtain the heat preservation control parameters and the temperature rise control parameters.
8. An air conditioner control device, characterized in that: include: a memory storing a computer program; A processor reads a computer program stored in a memory to execute the method according to any one of claims 1 to 7.
9. A storage medium, characterized in that: A computer program is stored thereon, and when the computer program is executed by a processor of the air conditioner control device, the computer is caused to execute the method according to any one of claims 1 to 7.
10. An air conditioner, characterized in that: Comprising the air conditioner control device as claimed in claim 8.