Air conditioner regulation and control method and device based on regional parameters
By acquiring the user's comfort temperature and ambient temperature, determining the regional parameters of the air conditioner, and calculating the control parameters of the air outlet and air guide components, the problem of low flexibility in air conditioner control is solved, thereby improving the flexibility of air conditioner regulation and the efficiency of temperature regulation, and enhancing environmental comfort.
Patent Information
- Application Number
- CN202410634865.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2024-05-21
- Publication Date
- 2025-11-25
AI Technical Summary
The existing air conditioning control methods have low flexibility, resulting in uneven indoor temperature regulation and affecting environmental comfort.
By acquiring the user's comfort temperature and ambient temperature, the regional parameters of the air conditioner are determined, and the control parameters of the air outlet and air guide components are calculated to achieve intelligent regulation.
It improves the flexibility of air conditioning control and the efficiency of temperature regulation, thereby enhancing environmental comfort.
Smart Images

Figure CN121007376A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of intelligent control technology, and in particular to an air conditioning control method and device based on regional parameters. Background Technology
[0002] Currently, air conditioning operation is typically controlled by users setting a desired indoor temperature and a fixed airflow mode. However, this method of air conditioning control is inflexible and can lead to uneven indoor temperature regulation due to the fixed airflow mode, such as large temperature differences between multiple indoor areas, thus reducing environmental comfort. Therefore, it is particularly important to propose a technical solution that can improve the flexibility of air conditioning control while also increasing the efficiency of air conditioning in regulating ambient temperature to enhance environmental comfort. Summary of the Invention
[0003] This invention provides an air conditioning control method and device based on regional parameters, which can improve the flexibility of air conditioning control while increasing the efficiency of air conditioning in regulating ambient temperature, thereby improving environmental comfort.
[0004] To address the aforementioned technical problems, the first aspect of this invention discloses an air conditioning control method based on regional parameters, the method comprising:
[0005] The system obtains the user's comfort temperature and the current ambient temperature of the environment in which the user is located; the environment is equipped with air conditioning.
[0006] Determine the user's first zone parameters regarding the air conditioner;
[0007] Based on the user's comfort temperature, the current ambient temperature, and the first area parameters, the first control parameters corresponding to the air conditioner are determined; the first control parameters corresponding to the air conditioner include the first air outlet control parameters of the air conditioner and / or the first oscillation control parameters corresponding to the air guide assembly of the air conditioner;
[0008] Based on the first control parameter, the air conditioner is controlled to perform the first air outlet operation corresponding to the first control parameter.
[0009] As an optional implementation, in the first aspect of the present invention, the method further includes:
[0010] Determine the intelligent control mode corresponding to the air conditioner; the intelligent control mode includes a first control mode or a second control mode.
[0011] The step of determining the first control parameter corresponding to the air conditioner based on the user comfort temperature, the current ambient temperature, and the first area parameter includes:
[0012] A first temperature difference is determined based on the user's comfort temperature and the current ambient temperature;
[0013] Based on the intelligent control mode and the first temperature difference, the temperature adjustment mode of the air conditioner and the first temperature difference threshold corresponding to the temperature adjustment mode are determined; the temperature adjustment mode includes a cooling mode or a heating mode.
[0014] Based on the first temperature difference value and the first temperature difference threshold, the first temperature adjustment stage corresponding to the air conditioner is determined; the first temperature adjustment stage includes a rapid temperature adjustment stage or a comfortable temperature adjustment stage.
[0015] Based on the first temperature difference, the first regional parameters, and the first temperature adjustment stage, the first control parameters corresponding to the air conditioner are determined.
[0016] As an optional implementation, in a first aspect of the present invention, the first area parameter includes one or more combinations of the user's angle relative to the air conditioner, the user's distance relative to the air conditioner, and the user's activity area range relative to the air conditioner in the environment;
[0017] The step of determining the first control parameter corresponding to the air conditioner based on the first temperature difference, the first regional parameter, and the first temperature adjustment stage includes:
[0018] Determine the first control parameter range corresponding to the first temperature adjustment stage; the first control parameter range includes the first air outlet parameter range and the first oscillation parameter range.
[0019] Based on the first temperature difference and the first air outlet parameter range, the first air outlet control parameter corresponding to the air conditioner is determined;
[0020] Based on the first area parameters and the first air outlet control parameters, the comfort impact coefficient of the air conditioner on the user is determined; the comfort impact coefficient is used to represent the degree of influence of the air outlet effect corresponding to the first air outlet control parameters on the user's comfort.
[0021] Based on the comfort impact coefficient and the first area parameters, the first angle parameters corresponding to the air guide assembly of the air conditioner are determined;
[0022] Based on the first swing parameter range and the first angle parameter, the first swing control parameter corresponding to the air guide component is determined.
[0023] As an optional implementation, in the first aspect of the present invention, the method further includes:
[0024] During the process of controlling the air conditioner to perform the first air outlet operation, it is determined whether the environment meets the determined first parameter control conditions;
[0025] When it is determined that the environment meets the first parameter control conditions, the second region parameter of the region where the user is located in the environment is determined.
[0026] Based on the second region parameters, the second control parameters corresponding to the air conditioner are determined; the second control parameters corresponding to the air conditioner include the second air outlet control parameters of the air conditioner and / or the second oscillation control parameters corresponding to the air guide assembly of the air conditioner.
[0027] Based on the second control parameter, the air conditioner is controlled to perform the second air outlet operation corresponding to the second control parameter.
[0028] As an optional implementation, in the first aspect of the present invention, determining whether the environment meets the determined first parameter control condition includes:
[0029] Based on the user's comfort temperature and the current ambient temperature, determine the type of airflow parameter to be collected, and collect the real-time airflow parameter of the airflow parameter type in the environment; the airflow parameter type includes cold air settling parameter type or warm air accumulation parameter type;
[0030] The real-time ambient temperature of the environment is collected, and a second temperature difference is determined based on the user's comfort temperature and the real-time ambient temperature.
[0031] Determine whether the second temperature difference is less than or equal to the determined second temperature difference threshold or whether the real-time air flow parameters are within the preset air flow requirement range;
[0032] When it is determined that the second temperature difference is less than or equal to the second temperature difference threshold or the real-time air flow parameter is within the air flow demand range, it is determined that the environment meets the determined first parameter control condition.
[0033] When it is determined that the second temperature difference is greater than the second temperature difference threshold and the real-time air flow parameter is not within the air flow demand range, it is determined that the environment does not meet the determined first parameter control conditions.
[0034] As an optional implementation, in the first aspect of the present invention, the method further includes:
[0035] When it is determined that the environment does not meet the first parameter control conditions, the air flow adjustment area corresponding to the environment is determined according to the real-time air flow parameters and the air flow demand range; the air flow adjustment area corresponding to the environment is the area in the environment where the air flow needs to be adjusted.
[0036] Based on the airflow adjustment area, determine the third area parameter of the airflow adjustment area relative to the air conditioner;
[0037] Based on the real-time airflow parameters and the third region parameters, the airflow adjustment difficulty coefficient corresponding to the airflow adjustment region is evaluated;
[0038] Based on the first control parameter and the real-time airflow parameter, evaluate the airflow impact coefficient of the first air outlet operation on the airflow adjustment area;
[0039] The first control parameter is corrected based on the first region parameter, the air adjustment difficulty coefficient, and the air flow influence coefficient.
[0040] As an optional implementation, in a first aspect of the invention, the second region parameter includes one or more combinations of the following: the spatial dimensions of the region, furniture layout information of the region, wall position information of the region, and the wall distance of the air conditioner relative to each wall in the region.
[0041] The method further includes:
[0042] Based on the second temperature difference, the second temperature adjustment stage corresponding to the air conditioner is determined; the second temperature adjustment stage includes the comfort temperature adjustment stage or the whole-house temperature replenishment stage;
[0043] And, determining the second control parameters corresponding to the air conditioner based on the second region parameters includes:
[0044] Based on the spatial dimensions of the area, the wall location information, the distances between all the walls, and the first control parameter, the air temperature regulation efficiency corresponding to the air conditioner is analyzed; the air temperature regulation efficiency is used to represent the efficiency of the air supplied by the air conditioner to flow evenly to all areas of the environment;
[0045] Based on the furniture layout information, the airflow obstruction coefficient corresponding to the air conditioner is analyzed; the airflow obstruction coefficient is used to indicate the degree to which the furniture in the environment obstructs the flow of air emitted by the air conditioner.
[0046] The second control parameters corresponding to the air conditioner are determined based on the second temperature difference, the air temperature regulation efficiency, the air flow obstruction coefficient, and the second temperature regulation stage.
[0047] A second aspect of the present invention discloses an air conditioning control device based on regional parameters, the device comprising:
[0048] The acquisition module is used to acquire the user's corresponding comfort temperature and the current ambient temperature of the environment in which the user is located; the environment is equipped with an air conditioner;
[0049] The determining module is used to determine the user's first zone parameters regarding the air conditioner;
[0050] The determining module is further configured to determine the first control parameters corresponding to the air conditioner based on the user comfort temperature, the current ambient temperature, and the first area parameters; the first control parameters corresponding to the air conditioner include the first air outlet control parameters of the air conditioner and / or the first oscillation control parameters corresponding to the air guide assembly of the air conditioner;
[0051] The control module is used to control the air conditioner to perform the first air outlet operation corresponding to the first control parameter according to the first control parameter.
[0052] As an optional implementation, in a second aspect of the present invention, the determining module is further configured to determine the intelligent control mode corresponding to the air conditioner; the intelligent control mode includes a first control mode or a second control mode;
[0053] The specific method by which the determining module determines the first control parameter corresponding to the air conditioner based on the user comfort temperature, the current ambient temperature, and the first area parameter includes:
[0054] A first temperature difference is determined based on the user's comfort temperature and the current ambient temperature;
[0055] Based on the intelligent control mode and the first temperature difference, the temperature adjustment mode of the air conditioner and the first temperature difference threshold corresponding to the temperature adjustment mode are determined; the temperature adjustment mode includes a cooling mode or a heating mode.
[0056] Based on the first temperature difference value and the first temperature difference threshold, the first temperature adjustment stage corresponding to the air conditioner is determined; the first temperature adjustment stage includes a rapid temperature adjustment stage or a comfortable temperature adjustment stage.
[0057] Based on the first temperature difference, the first regional parameters, and the first temperature adjustment stage, the first control parameters corresponding to the air conditioner are determined.
[0058] As an optional implementation, in a second aspect of the invention, the first area parameter includes one or more combinations of the user's angle relative to the air conditioner, the user's distance relative to the air conditioner, and the user's activity area range relative to the air conditioner in the environment;
[0059] The specific method by which the determining module determines the first control parameter corresponding to the air conditioner based on the first temperature difference, the first regional parameter, and the first temperature adjustment stage includes:
[0060] Determine the first control parameter range corresponding to the first temperature adjustment stage; the first control parameter range includes the first air outlet parameter range and the first oscillation parameter range.
[0061] Based on the first temperature difference and the first air outlet parameter range, the first air outlet control parameter corresponding to the air conditioner is determined;
[0062] Based on the first area parameters and the first air outlet control parameters, the comfort impact coefficient of the air conditioner on the user is determined; the comfort impact coefficient is used to represent the degree of influence of the air outlet effect corresponding to the first air outlet control parameters on the user's comfort.
[0063] Based on the comfort impact coefficient and the first area parameters, the first angle parameters corresponding to the air guide assembly of the air conditioner are determined;
[0064] Based on the first swing parameter range and the first angle parameter, the first swing control parameter corresponding to the air guide component is determined.
[0065] As an optional implementation, in a second aspect of the invention, the apparatus further includes:
[0066] The judgment module is used to determine whether the environment meets the determined first parameter control conditions during the process of the control module controlling the air conditioner to perform the first air outlet operation;
[0067] The determining module is further configured to determine the second region parameter of the region where the user is located in the environment when the judging module determines that the environment meets the first parameter control condition;
[0068] The determining module is further configured to determine the second control parameters corresponding to the air conditioner based on the second region parameters; the second control parameters corresponding to the air conditioner include the second air outlet control parameters of the air conditioner and / or the second swing control parameters corresponding to the air guide assembly of the air conditioner;
[0069] The control module is further configured to control the air conditioner to perform a second air outlet operation corresponding to the second control parameter, based on the second control parameter.
[0070] As an optional implementation, in the second aspect of the present invention, the specific method by which the determining module determines whether the environment meets the determined first parameter control condition includes:
[0071] Based on the user's comfort temperature and the current ambient temperature, determine the type of airflow parameter to be collected, and collect the real-time airflow parameter of the airflow parameter type in the environment; the airflow parameter type includes cold air settling parameter type or warm air accumulation parameter type;
[0072] The real-time ambient temperature of the environment is collected, and a second temperature difference is determined based on the user's comfort temperature and the real-time ambient temperature.
[0073] Determine whether the second temperature difference is less than or equal to the determined second temperature difference threshold or whether the real-time air flow parameters are within the preset air flow requirement range;
[0074] When it is determined that the second temperature difference is less than or equal to the second temperature difference threshold or the real-time air flow parameter is within the air flow demand range, it is determined that the environment meets the determined first parameter control condition.
[0075] When it is determined that the second temperature difference is greater than the second temperature difference threshold and the real-time air flow parameter is not within the air flow demand range, it is determined that the environment does not meet the determined first parameter control conditions.
[0076] As an optional implementation, in a second aspect of the present invention, the determining module is further configured to, when the judging module determines that the environment does not meet the first parameter control conditions, determine the air flow adjustment area corresponding to the environment based on the real-time air flow parameters and the air flow demand range; the air flow adjustment area corresponding to the environment is the area in the environment where the air flow needs to be adjusted.
[0077] The determining module is further configured to determine a third region parameter of the air flow adjustment region relative to the air conditioner based on the air flow adjustment region;
[0078] The device further includes:
[0079] The evaluation module is used to evaluate the air adjustment difficulty coefficient corresponding to the air flow adjustment area based on the real-time air flow parameters and the third area parameters;
[0080] The evaluation module is further configured to evaluate the airflow impact coefficient of the first air outlet operation on the airflow adjustment area based on the first control parameter and the real-time airflow parameter.
[0081] The correction module is used to correct the first control parameters based on the first region parameters, the air adjustment difficulty coefficient, and the air flow influence coefficient.
[0082] As an optional implementation, in a second aspect of the invention, the second area parameters include one or more combinations of the spatial dimensions of the area, furniture layout information of the area, wall position information of the area, and the wall distance of the air conditioner relative to each wall in the area;
[0083] The determining module is further configured to determine the second temperature adjustment stage corresponding to the air conditioner based on the second temperature difference; the second temperature adjustment stage includes the comfort temperature adjustment stage or the whole-house temperature replenishment stage;
[0084] Furthermore, the specific method by which the determining module determines the second control parameter corresponding to the air conditioner based on the second region parameter includes:
[0085] Based on the spatial dimensions of the area, the wall location information, the distances between all the walls, and the first control parameter, the air temperature regulation efficiency corresponding to the air conditioner is analyzed; the air temperature regulation efficiency is used to represent the efficiency of the air supplied by the air conditioner to flow evenly to all areas of the environment;
[0086] Based on the furniture layout information, the airflow obstruction coefficient corresponding to the air conditioner is analyzed; the airflow obstruction coefficient is used to indicate the degree to which the furniture in the environment obstructs the flow of air emitted by the air conditioner.
[0087] The second control parameters corresponding to the air conditioner are determined based on the second temperature difference, the air temperature regulation efficiency, the air flow obstruction coefficient, and the second temperature regulation stage.
[0088] A third aspect of the present invention discloses another air conditioning control device based on regional parameters, the device comprising:
[0089] Memory containing executable program code;
[0090] A processor coupled to the memory;
[0091] The processor calls the executable program code stored in the memory to execute the air conditioning control method based on regional parameters disclosed in the first aspect of the present invention.
[0092] The fourth aspect of the present invention discloses a computer storage medium storing computer instructions, which, when invoked, are used to execute the air conditioning control method based on regional parameters disclosed in the first aspect of the present invention.
[0093] Compared with the prior art, the embodiments of the present invention have the following beneficial effects:
[0094] In this embodiment of the invention, the user's comfort temperature and the current ambient temperature of the user's environment are obtained; an air conditioner is installed in the environment; a first regional parameter of the user regarding the air conditioner is determined; based on the user's comfort temperature, the current ambient temperature, and the first regional parameter, a first control parameter corresponding to the air conditioner is determined; the first control parameter corresponding to the air conditioner includes a first air outlet control parameter of the air conditioner and / or a first oscillation control parameter corresponding to the air guide component of the air conditioner; based on the first control parameter, the air conditioner is controlled to perform a first air outlet operation corresponding to the first control parameter. Therefore, implementing this invention can obtain the user's comfort temperature and the current ambient temperature of the user's environment and determine the user's first regional parameter of the air conditioner, and then determine the first control parameter corresponding to the air conditioner based on the user's comfort temperature, the current ambient temperature, and the first regional parameter, so as to control the air conditioner to perform a first air outlet operation corresponding to the first control parameter. This enables intelligent control of the air conditioner's air outlet based on the user's regional parameter of the air conditioner and the corresponding comfort temperature and ambient temperature. By analyzing the influence relationship between the regional parameter of the user's environment and the air conditioner's air outlet effect, the flexibility and accuracy of determining the air conditioner's control parameters can be improved. This, in turn, can improve the air conditioner's regulation efficiency in adjusting the ambient temperature while increasing the flexibility of air conditioner regulation, thereby improving environmental comfort. Attached Figure Description
[0095] To more clearly illustrate the technical solutions in the embodiments of the present invention, the accompanying drawings used in the description of the embodiments will be briefly introduced below. Obviously, the accompanying drawings described below are only some embodiments of the present invention. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0096] Figure 1 This is a schematic diagram illustrating the applicable scenario for an air conditioning control method based on regional parameters disclosed in an embodiment of the present invention.
[0097] Figure 2 This is a schematic flowchart of an air conditioning control method based on regional parameters disclosed in an embodiment of the present invention;
[0098] Figure 3 This is a schematic flowchart of another air conditioning control method based on regional parameters disclosed in an embodiment of the present invention;
[0099] Figure 4 This is a schematic diagram of the structure of an air conditioning control device based on regional parameters disclosed in an embodiment of the present invention;
[0100] Figure 5This is a schematic diagram of another air conditioning control device based on regional parameters disclosed in an embodiment of the present invention;
[0101] Figure 6 This is a schematic diagram of another air conditioning control device based on regional parameters disclosed in an embodiment of the present invention. Detailed Implementation
[0102] To enable those skilled in the art to better understand the present invention, the technical solutions of the present invention will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present invention. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0103] The terms "first," "second," etc., used in the specification, claims, and accompanying drawings of this invention are used to distinguish different objects, not to describe a specific order. Furthermore, the terms "comprising" and "having," and any variations thereof, are intended to cover non-exclusive inclusion. For example, a process, method, apparatus, product, or end that includes a series of steps or units is not limited to the listed steps or units, but may optionally include steps or units not listed, or may optionally include other steps or units inherent to these processes, methods, products, or ends.
[0104] In this document, the term "embodiment" means that a particular feature, structure, or characteristic described in connection with an embodiment may be included in at least one embodiment of the invention. The appearance of this phrase in various places throughout the specification does not necessarily refer to the same embodiment, nor is it a separate or alternative embodiment mutually exclusive with other embodiments. It will be explicitly and implicitly understood by those skilled in the art that the embodiments described herein can be combined with other embodiments.
[0105] This invention discloses an air conditioning control method and apparatus based on regional parameters. It can acquire the user's comfort temperature and the current ambient temperature of the user's environment, determine the user's first regional parameters for the air conditioning, and then determine the first control parameters corresponding to the air conditioning based on the user's comfort temperature, the current ambient temperature, and the first regional parameters. This allows the air conditioning to execute the first air outlet operation corresponding to the first control parameters. This achieves intelligent control of the air conditioning outlet based on the user's regional parameters and the corresponding comfort and ambient temperatures. By analyzing the influence relationship between the user's environmental regional parameters and the air conditioning outlet effect, it improves the flexibility and accuracy of determining the air conditioning control parameters. This enhances both the flexibility of air conditioning control and the efficiency of air conditioning in regulating ambient temperature, thereby improving environmental comfort. Detailed descriptions follow.
[0106] To better understand the air conditioning control method and apparatus based on regional parameters described in this invention, the applicable scenarios for this method are first described. Specifically, the applicable scenarios are those requiring control of air conditioning operation, such as scenarios requiring control of the air conditioning to perform airflow operation. Specifically, taking the scenario requiring control of the air conditioning to perform airflow operation as an example, this scenario can be as follows: Figure 1 As shown, Figure 1 This is a schematic diagram illustrating a scenario applicable to the air conditioning control method based on regional parameters disclosed in an embodiment of the present invention. Figure 1 As shown in the diagram, this scenario illustration uses a living room area as an example in a scenario where the air conditioner needs to be controlled to perform airflow operation. The living room area may include the user and the air conditioner. Furthermore, the air conditioner includes air guiding components, such as left and right sway blades and / or air guide plates. Further, optionally, the area may also include doors and windows (such as windows) and furniture (such as sofas).
[0107] Furthermore, when the living room area is the user's current environment, the air conditioner can be controlled to perform airflow operation through the following steps: obtain the user's comfort temperature and the current ambient temperature of the user's environment; an air conditioner is installed in the environment; determine the user's first zone parameters for the air conditioner; determine the first control parameters for the air conditioner based on the user's comfort temperature, the current ambient temperature, and the first zone parameters; the first control parameters for the air conditioner include the first airflow control parameters of the air conditioner and / or the first oscillation control parameters corresponding to the air guide components of the air conditioner; and control the air conditioner to perform the first airflow operation corresponding to the first control parameters based on the first control parameters.
[0108] It should be noted that, Figure 1 The schematic diagram shown is only intended to illustrate one scenario applicable to a regional parameter-based air conditioning control method, and is not intended to limit the applicability of the regional parameter-based air conditioning control method and device to other scenarios. Figure 1 The scene illustrations shown do not specify the model, function, or size of the air conditioner, nor the layout, area, or location of the living room area.
[0109] The above provides an example of one of the scenarios in which the air conditioning control method and device based on regional parameters are applicable. The following is a detailed description of the air conditioning control method and device based on regional parameters.
[0110] Example 1
[0111] Please see Figure 2 , Figure 2 This is a schematic flowchart of an air conditioning control method based on regional parameters disclosed in an embodiment of the present invention. Wherein, Figure 2The described air conditioning control method based on regional parameters can be applied to an air conditioning control device based on regional parameters. This device may include one of an air conditioning control equipment, an air conditioning control terminal, an air conditioning control system, and a server. The server may include a local server or a cloud server; this embodiment of the invention is not limited thereto. For example, the air conditioning control terminal may include a smart terminal; this embodiment of the invention is not limited thereto. This device can be applied to a smart home system, which can be used to control various smart devices included in the smart home, such as a smart air conditioner; this embodiment of the invention is not limited thereto. Figure 2 As shown, the air conditioning control method based on regional parameters may include the following operations:
[0112] 101. Obtain the user's comfort temperature and the current ambient temperature of the user's environment.
[0113] In this embodiment of the invention, the user's comfort temperature is the ambient temperature value at which the user feels comfortable. Optionally, the user's comfort temperature may include the temperature input / set by the user or the temperature determined based on the user's historical temperature data when using the air conditioner. This embodiment of the invention does not limit this. The user's environment is equipped with an air conditioner. Optionally, the air conditioner may be a smart air conditioner. Further, the user's environment may be an indoor environment equipped with an air conditioner, such as a residence, office building, or shopping mall. This embodiment of the invention does not limit this.
[0114] 102. Determine the user's first zone parameters for the air conditioner.
[0115] In this embodiment of the invention, optionally, the first area parameter of the user relative to the air conditioner may include one or more combinations of the user angle relative to the air conditioner, the user distance relative to the air conditioner, and the user's activity area range relative to the air conditioner in the environment. This embodiment of the invention is not limited to these parameters. Further optionally, a coordinate system is established with the air conditioner as the center, and the aforementioned user angle may include the user's angle relative to the air conditioner in at least one of the X, Y, and Z directions. This embodiment of the invention is not limited to these parameters. Further optionally, the user's activity area range relative to the air conditioner in the environment may include the maximum and minimum user distance and / or the maximum and minimum user angle relative to the air conditioner corresponding to the user's current behavior within the target time period. This embodiment of the invention is not limited to these parameters.
[0116] 103. Determine the first control parameters corresponding to the air conditioner based on the user's comfort temperature, the current ambient temperature, and the parameters of the first zone.
[0117] In this embodiment of the invention, the first control parameter corresponding to the air conditioner may include the first air outlet control parameter of the air conditioner and / or the first swing control parameter corresponding to the air guide component of the air conditioner, which is not limited in this embodiment of the invention; optionally, the first control parameter may also include the first control duration of the air conditioner, which is not limited in this embodiment of the invention; optionally, the air guide component of the air conditioner may include a swivel blade and / or a guide plate, wherein the swivel blade is used to adjust the air outlet direction of the air conditioner in the lateral direction (e.g., left-right direction), and the guide plate is used to adjust the air outlet direction of the air conditioner in the longitudinal direction (e.g., up-down direction), which is not limited in this embodiment of the invention.
[0118] 104. Based on the first control parameter, control the air conditioner to perform the first air outlet operation corresponding to the first control parameter.
[0119] In this embodiment of the invention, the first air outlet operation corresponding to the first control parameter includes the air outlet operation of the air conditioner and / or the oscillation control operation of the air guide component of the air conditioner. This embodiment of the invention does not limit the scope of the operation.
[0120] In this embodiment of the invention, optionally, the air conditioning control steps corresponding to this embodiment of the invention can be implemented based on the automatic driving algorithm corresponding to the air conditioner. This embodiment of the invention does not impose any limitations.
[0121] It should be noted that steps 101 and 102 are not sequential; that is, step 101 can occur before or after step 102, or occur simultaneously with step 102. This embodiment of the invention does not impose any limitations on this.
[0122] As can be seen, the method described in the embodiments of the present invention can obtain the user's comfort temperature and the current ambient temperature of the user's environment, determine the user's first regional parameters for the air conditioner, and then determine the first control parameters for the air conditioner based on the user's comfort temperature, the current ambient temperature, and the first regional parameters, so as to control the air conditioner to perform the first air outlet operation corresponding to the first control parameters. This enables intelligent control of the air conditioner's air outlet based on the user's regional parameters for the air conditioner and the corresponding comfort temperature and ambient temperature. By analyzing the influence relationship between the regional parameters of the user's environment and the air conditioner's air outlet effect, the flexibility and accuracy of determining the air conditioner's control parameters can be improved. In this way, while improving the flexibility of air conditioner regulation, the efficiency of air conditioner in regulating ambient temperature can be improved, which is conducive to improving environmental comfort.
[0123] In an optional embodiment, the method may further include the following operations:
[0124] Determine the corresponding smart control mode for the air conditioner.
[0125] The intelligent control mode includes a first control mode or a second control mode; for example, the first control mode can be a global wind mode, and the second control mode can be an AI (Artificial Intelligence) mode, which is not limited in this embodiment of the invention. Optionally, the temperature adjustment mode corresponding to the global wind mode can include a cooling mode, and the temperature adjustment mode corresponding to the AI mode can include a cooling mode and a heating mode, which is not limited in this embodiment of the invention.
[0126] As can be seen, this optional embodiment can determine the corresponding intelligent control mode of the air conditioner, which can help to more accurately determine the corresponding first control parameter of the air conditioner, thereby improving the accuracy of the air conditioner control parameter.
[0127] In this optional embodiment, determining the first control parameter corresponding to the air conditioner based on the user's comfort temperature, the current ambient temperature, and the first zone parameter may include the following operations:
[0128] The first temperature difference is determined based on the user's comfort temperature and the current ambient temperature;
[0129] Based on the intelligent control mode and the first temperature difference, the temperature adjustment mode of the air conditioner and the first temperature difference threshold corresponding to the temperature adjustment mode are determined; the temperature adjustment mode includes cooling mode or heating mode.
[0130] Based on the first temperature difference value and the first temperature difference threshold, the first temperature adjustment stage corresponding to the air conditioner is determined; the first temperature adjustment stage includes a rapid temperature adjustment stage or a comfortable temperature adjustment stage.
[0131] Based on the first temperature difference, the first zone parameters, and the first temperature adjustment stage, the first control parameters corresponding to the air conditioner are determined.
[0132] Alternatively, the first temperature adjustment stage of the air conditioner can be determined in the following way: the first temperature adjustment stage of the air conditioner is determined according to the current ambient temperature, and this embodiment of the invention does not limit this.
[0133] Optionally, the first temperature difference can be the difference between the user's comfortable temperature and the current ambient temperature. When the first temperature difference is positive, the temperature adjustment mode is determined to be the heating mode; when the first temperature difference is negative, the temperature adjustment mode is determined to be the cooling mode. This embodiment of the invention does not limit the specific temperature difference.
[0134] The temperature regulation efficiency of the rapid temperature adjustment phase is higher than that of the comfort temperature adjustment phase. Optionally, when the temperature regulation mode is cooling mode, the rapid temperature adjustment phase is rapid cooling phase and the comfort temperature adjustment phase is comfort cooling phase; when the temperature regulation mode is heating mode, the rapid temperature adjustment phase is rapid heating phase and the comfort temperature adjustment phase is first supplementary heating phase. This embodiment of the invention does not limit the specific implementation.
[0135] As can be seen, this optional embodiment can determine a first temperature difference based on the user's comfort temperature and the current ambient temperature. Then, based on the intelligent control mode and the first temperature difference, it determines the air conditioner's temperature adjustment mode and the corresponding first temperature difference threshold. Then, based on the first temperature difference and the first temperature difference threshold, it determines the corresponding first temperature adjustment stage of the air conditioner. Based on the first temperature difference, the first area parameter, and the first temperature adjustment stage, it determines the corresponding first control parameter of the air conditioner. It can analyze the current temperature adjustment stage based on the temperature difference, thereby improving the accuracy of determining the air conditioner's temperature adjustment stage. This is beneficial to improving the accuracy of determining the air conditioner's control parameters, so as to accurately control the air conditioner's airflow based on the accurate temperature adjustment stage and air conditioner control parameters, and thus improve the air conditioner's adjustment efficiency and accuracy for ambient temperature.
[0136] In this optional embodiment, determining the first temperature adjustment stage corresponding to the air conditioner based on the first temperature difference value and the first temperature difference threshold may include the following operations:
[0137] Determine whether the first temperature difference is less than or equal to the first temperature difference threshold;
[0138] When it is determined that the first temperature difference is less than or equal to the first temperature difference threshold, the first temperature adjustment stage corresponding to the air conditioner is determined to be the comfort temperature adjustment stage.
[0139] When it is determined that the first temperature difference is greater than the first temperature difference threshold, the first temperature adjustment stage corresponding to the air conditioner is determined to be the rapid temperature adjustment stage.
[0140] As can be seen, this optional embodiment can also determine the first temperature adjustment stage of the air conditioner as a comfort temperature adjustment stage when the first temperature difference is less than or equal to the first temperature difference threshold, and determine the first temperature adjustment stage of the air conditioner as a rapid temperature adjustment stage when the first temperature difference is greater than the first temperature difference threshold. This can improve the accuracy of determining the temperature adjustment stage of the air conditioner, thereby helping to improve the accuracy of air conditioner control and parameter determination.
[0141] In this optional embodiment, the first area parameter may include one or more combinations of the user's angle relative to the air conditioner, the user's distance relative to the air conditioner, and the user's activity area range relative to the air conditioner in the environment.
[0142] Specifically, based on the first temperature difference, the first zone parameters, and the first temperature adjustment stage, the first control parameters corresponding to the air conditioner are determined, including:
[0143] Determine the first control parameter range corresponding to the first temperature adjustment stage; the first control parameter range includes the first air outlet parameter range and the first oscillation parameter range.
[0144] Based on the first temperature difference and the first air outlet parameter range, determine the first air outlet control parameter corresponding to the air conditioner;
[0145] Based on the parameters of the first zone and the parameters of the first air outlet control, the comfort impact coefficient of the air conditioner on the user is determined; the comfort impact coefficient is used to represent the degree of influence of the air outlet effect corresponding to the first air outlet control parameter on the user's comfort.
[0146] Based on the comfort impact coefficient and the parameters of the first zone, determine the first angle parameters corresponding to the air guide components of the air conditioner;
[0147] Based on the first swing parameter range and the first angle parameter, the first swing control parameter corresponding to the air guide assembly is determined.
[0148] Among them, if the value of the comfort impact coefficient of the air conditioner on the user is positive and the larger the value, it means that the air outlet effect corresponding to the first air outlet control parameter is more likely to make the user feel comfortable. If the value of the comfort impact coefficient of the air conditioner on the user is negative and the larger the value, it means that the air outlet effect corresponding to the first air outlet control parameter is more likely to make the user feel uncomfortable (for example, making the user feel too cold or too stuffy).
[0149] Optionally, the first air outlet parameter range may include one or more of the following: a first air outlet volume threshold, a first air outlet velocity threshold, and a first air outlet temperature threshold; this is not limited in this embodiment of the invention. Further, each of the above air outlet parameter thresholds may include a maximum threshold and / or a minimum threshold; this is not limited in this embodiment of the invention. Optionally, the first swing parameter range may include one or more of the following: a first swing blade angle offset value corresponding to the swing blade, a first swing blade frequency threshold corresponding to the swing blade, a first air guide plate angle offset value corresponding to the air guide plate, and a first air guide plate frequency threshold corresponding to the air guide plate; this is not limited in this embodiment of the invention. The aforementioned angle offset value may be an offset value corresponding to a certain reference angle (e.g., the user's angle) as a standard value to determine the swing angle range. Further, each of the above swing parameter thresholds may include a maximum threshold and / or a minimum threshold; this is not limited in this embodiment of the invention.
[0150] The first air outlet control parameter may include one or more of the following: first air outlet volume, first air outlet velocity, and first air outlet temperature; the embodiments of the present invention do not limit this parameter. The first angle parameter may include the first tilt angle corresponding to the oscillating blade and / or the first upward angle corresponding to the air guide plate and / or the first downward angle corresponding to the air guide plate. The first swing control parameter may include one or more of the following: the swing angle range of the first oscillating blade corresponding to the oscillating blade, the upward angle range of the first air guide plate corresponding to the air guide plate, the downward angle range of the first air guide plate corresponding to the air guide plate, the swing frequency of the first oscillating blade corresponding to the oscillating blade, and the swing frequency of the first air guide plate corresponding to the air guide plate; the embodiments of the present invention do not limit this parameter.
[0151] As can be seen, this optional embodiment can also determine the first control parameter range corresponding to the first temperature adjustment stage, then determine the first air outlet control parameter based on the first temperature difference and the first air outlet parameter range, and determine the comfort impact coefficient of the air conditioner on the user based on the first area parameter and the first air outlet control parameter. Then, determine the first angle parameter corresponding to the air guide component based on the comfort impact coefficient and the first area parameter, and then determine the first swing control parameter corresponding to the air guide component based on the first swing parameter range and the first angle parameter. It can analyze the degree of influence of the air conditioner's air outlet effect on the user's comfort by accurately determining the air outlet control parameter, thereby improving the accuracy of determining the swing control parameter of the air guide component by increasing the accuracy of determining the comfort impact coefficient, which in turn helps to improve the precision of the air conditioner control parameters and further improve the accuracy of air conditioner regulation.
[0152] In this optional embodiment, further optionally, determining the first swing control parameter corresponding to the air guide assembly based on the first swing parameter range and the first angle parameter may include the following operations:
[0153] When the range of the first swing parameters includes the first swing blade angle offset value and the first air guide plate angle offset value, the first swing blade angle threshold corresponding to the swing blade is determined according to the user angle and the first swing blade angle offset value; the first air guide plate angle threshold corresponding to the air guide plate is determined according to the user angle and the first air guide plate angle offset value.
[0154] Determine whether the first tilt angle corresponding to the oscillating blade is within the numerical range corresponding to the first oscillating blade angle threshold and whether the first upward angle or the first downward angle corresponding to the air guide plate is within the numerical range corresponding to the first air guide plate angle threshold.
[0155] When it is determined that the first tilt angle corresponding to the oscillating blade is within the numerical range corresponding to the first oscillating blade angle threshold and the first upward angle or the first downward angle corresponding to the air guide plate is within the numerical range corresponding to the first air guide plate angle threshold, the swing angle range and the swing frequency of the first oscillating blade corresponding to the oscillating blade are determined according to the first tilt angle and the first oscillating blade frequency threshold; and the upward angle range or the downward angle range of the first air guide plate corresponding to the air guide plate are determined according to the first upward angle or the first downward angle, and the swing frequency of the first air guide plate is determined according to the swing frequency of the first air guide plate.
[0156] When it is determined that the first tilt angle corresponding to the oscillating blade is not within the numerical range corresponding to the first oscillating blade angle threshold, or the first upward angle corresponding to the air guide plate is not within the numerical range corresponding to the first air guide plate angle threshold, or the first downward angle corresponding to the air guide plate is not within the numerical range corresponding to the first air guide plate angle threshold, the first angle parameter is corrected according to the first swing parameter range, and the first swing control parameter corresponding to the air guide assembly is determined according to the corrected first angle parameter.
[0157] As can be seen, this optional embodiment can also determine the first swing blade angle threshold corresponding to the swing blade based on the user angle and the first swing blade angle offset value, and determine the first air guide plate angle threshold corresponding to the air guide plate based on the user angle and the first air guide plate angle offset value. Then, it is determined whether the first tilt angle corresponding to the swing blade is within the numerical range corresponding to the first swing blade angle threshold and whether the first upward angle or the first downward angle corresponding to the air guide plate is within the numerical range corresponding to the first air guide plate angle threshold. If the determination result is yes, the first swing control parameter can be determined based on the determined angle parameter. If the determination result is no, the determined angle parameter needs to be corrected before the first swing control parameter can be determined, thereby improving the verification accuracy of the swing control parameter of the air guide assembly, which in turn helps to improve the accuracy of the swing control parameter of the air guide assembly, and thus helps to improve the control accuracy of the airflow direction of the air conditioner, so as to improve the air conditioner's accuracy in regulating the ambient temperature.
[0158] In this optional embodiment, optionally, during the process of controlling the air conditioner to perform the first air outlet operation, the method may further include the following operations:
[0159] Obtain information regarding the execution status of the first air outlet operation of the air conditioner;
[0160] Based on the above execution information, determine whether the first air outlet operation of the air conditioner meets the preset strong air outlet conditions;
[0161] When it is determined that the first air outlet operation of the air conditioner meets the strong air outlet condition, the strong air outlet control parameters corresponding to the strong air outlet condition are obtained, and the air conditioner is controlled to execute the strong air outlet operation corresponding to the strong air outlet control parameters.
[0162] The powerful airflow control parameters include one or more combinations of powerful airflow duration, powerful airflow parameters of the air conditioner, and oscillation control parameters corresponding to the air guide component of the air conditioner. This embodiment of the invention does not limit these parameters. The powerful airflow operation can be achieved by controlling the oscillation of the air guide plate to quickly change the direction of the airflow from the air conditioner.
[0163] As can be seen, this optional embodiment can also control the air conditioner to perform strong air output operation when the current air output operation meets the strong air output conditions, so as to achieve rapid cooling or rapid heating in a short time, thereby further improving the control flexibility of the air conditioner and thus improving the air conditioner's efficiency in regulating ambient temperature.
[0164] Example 2
[0165] Please see Figure 3 , Figure 3 This is a schematic flowchart of an air conditioning control method based on regional parameters disclosed in an embodiment of the present invention. Wherein, Figure 3 The described air conditioning control method based on regional parameters can be applied to an air conditioning control device based on regional parameters. This device may include one of an air conditioning control equipment, an air conditioning control terminal, an air conditioning control system, and a server. The server may include a local server or a cloud server; this embodiment of the invention is not limited thereto. For example, the air conditioning control terminal may include a smart terminal; this embodiment of the invention is not limited thereto. This device can be applied to a smart home system, which can be used to control various smart devices included in the smart home, such as a smart air conditioner; this embodiment of the invention is not limited thereto. Figure 3 As shown, the air conditioning control method based on regional parameters may include the following operations:
[0166] 201. Obtain the user's comfort temperature and the current ambient temperature of the user's environment.
[0167] 202. Determine the user's first zone parameters for the air conditioner.
[0168] 203. Determine the first control parameters for the air conditioner based on the user's comfort temperature, the current ambient temperature, and the parameters of the first zone.
[0169] 204. Based on the first control parameter, control the air conditioner to perform the first air outlet operation corresponding to the first control parameter.
[0170] 205. During the process of controlling the air conditioner to perform the first air outlet operation, determine whether the environment meets the determined first parameter control conditions.
[0171] In this embodiment of the invention, when the judgment result of step 205 is yes, the operation of step 206 is executed; optionally, when the judgment result of step 205 is no, the operation of step 204 is executed. This embodiment of the invention does not limit the scope of the operation.
[0172] In this embodiment of the invention, optionally, the first parameter control condition can be determined by the stage type of the first temperature control stage corresponding to the air conditioner, and this embodiment of the invention does not limit it.
[0173] 206. Determine the second region parameter of the region where the user is located in the environment.
[0174] In this embodiment of the invention, optionally, the second area parameter of the area where the user is located in the environment may include one or more combinations of the area's spatial dimensions, the area's furniture layout information, the area's wall position information, and the distance of the air conditioner relative to each wall in the area. This embodiment of the invention does not limit this. The area where the user is located can be one of the areas in the environment. Further optionally, the spatial dimensions of the area may include one or more combinations of the area's length, width, height, area, and volume. This embodiment of the invention does not limit this.
[0175] 207. Based on the parameters of the second region, determine the second control parameters corresponding to the air conditioner.
[0176] In this embodiment of the invention, the second control parameter corresponding to the air conditioner includes the second air outlet control parameter of the air conditioner and / or the second swing control parameter corresponding to the air guide component of the air conditioner. This embodiment of the invention does not limit the scope of the control parameter.
[0177] 208. Based on the second control parameter, control the air conditioner to perform the second air outlet operation corresponding to the second control parameter.
[0178] In this embodiment of the invention, the second air outlet operation corresponding to the second control parameter includes the air outlet operation of the air conditioner and / or the oscillation control operation of the air guide component of the air conditioner, which is not limited in this embodiment of the invention; optionally, the second control parameter may also include the second control duration of the air conditioner, which is not limited in this embodiment of the invention.
[0179] In this embodiment of the invention, for other detailed descriptions of steps 201-204, please refer to the detailed description of steps 101-104 in Embodiment 1. These details will not be repeated in this embodiment of the invention.
[0180] As can be seen, the method described in the embodiments of the present invention can obtain the user's comfort temperature and the current ambient temperature of the user's environment, determine the user's first regional parameters for the air conditioner, and then determine the first control parameters for the air conditioner based on the user's comfort temperature, the current ambient temperature, and the first regional parameters, so as to control the air conditioner to perform the first air outlet operation corresponding to the first control parameters. This enables intelligent control of the air conditioner's air outlet based on the user's regional parameters for the air conditioner and the corresponding comfort temperature and ambient temperature. By analyzing the influence relationship between the regional parameters of the user's environment and the air conditioner's air outlet effect, the flexibility and accuracy of determining the air conditioner's control parameters can be improved. In this way, while improving the flexibility of air conditioner regulation, the efficiency of air conditioner in regulating ambient temperature can be improved, which is conducive to improving environmental comfort. Furthermore, during the first air outlet process, it can determine whether the environment meets the first parameter control conditions. If the determination result is yes, it determines the second area parameter of the area where the user is located in the environment, and then determines the second control parameter corresponding to the air conditioner based on the second area parameter to control the air conditioner to perform the corresponding second air outlet operation. By constantly monitoring the impact of the air conditioner's air outlet operation on the environment, it can achieve real-time control of the air conditioner's air outlet operation based on real-time environmental conditions, thereby further improving the flexibility of air conditioner control. Moreover, by analyzing the influence relationship between the second area parameter and the air conditioner's air outlet effect, it can further improve the accuracy of the analysis of the air flow corresponding to the air conditioner's air outlet and the influence of the area parameter on the ambient temperature, which is conducive to further improving the accuracy and efficiency of the air conditioner's regulation of the ambient temperature.
[0181] In an optional embodiment, determining whether the environment meets the determined first parameter control condition may include the following operations:
[0182] Based on the user's comfort temperature and the current ambient temperature, determine the type of airflow parameter to be collected, and collect real-time airflow parameters of the airflow parameter type in the environment; the airflow parameter type includes cold air settling parameter type or warm air accumulation parameter type.
[0183] Collect the real-time ambient temperature and determine the second temperature difference based on the user's comfort temperature and the real-time ambient temperature;
[0184] Determine whether the second temperature difference is less than or equal to the determined second temperature difference threshold or whether the real-time air flow parameters are within the preset air flow requirement range;
[0185] When it is determined that the second temperature difference is less than or equal to the second temperature difference threshold or the real-time air flow parameter is within the air flow demand range, the environment is determined to meet the first parameter control condition.
[0186] When it is determined that the second temperature difference is greater than the second temperature difference threshold and the real-time air flow parameters are not within the air flow demand range, it is determined that the environment does not meet the determined first parameter control conditions.
[0187] Optionally, the type of air flow parameter to be collected can be determined based on the user's comfort temperature and the current ambient temperature. Specifically, the temperature adjustment mode of the air conditioner can be obtained based on the first temperature difference corresponding to the user's comfort temperature and the current ambient temperature. When the temperature adjustment mode is cooling mode, the type of air flow parameter to be collected is determined to be cold air settling parameter type. When the temperature adjustment mode is heating mode, the type of air flow parameter to be collected is determined to be warm air accumulation parameter type. This embodiment of the invention does not limit the type of air flow parameter to be collected.
[0188] The current ambient temperature obtained in step 201 and the real-time ambient temperature in this optional embodiment are collected at different times.
[0189] Optionally, when the control parameters corresponding to the air conditioner are determined based on the first temperature adjustment stage, the second temperature difference threshold can be determined based on the second temperature adjustment stage, and the second temperature difference threshold is less than the first temperature difference threshold. This embodiment of the invention does not impose any limitations.
[0190] As can be seen, this optional embodiment can determine the type of airflow parameter to be collected based on the user's comfort temperature and the current ambient temperature, and collect the real-time airflow parameter of the airflow parameter type in the environment, as well as the real-time ambient temperature. Based on the user's comfort temperature and the real-time ambient temperature, a second temperature difference is determined. Then, by judging whether the second temperature difference is less than or equal to the determined second temperature difference threshold or whether the real-time airflow parameter is within the preset airflow demand range, it is determined whether the environment meets the determined first parameter control conditions. This can improve the accuracy of obtaining the impact of air conditioning on the environment during the air conditioning air outlet process, thereby improving the accuracy of judging whether the environment meets the first parameter control conditions, and further improving the accuracy of judging whether the air conditioning air outlet operation needs to be adjusted, thus improving the accuracy of air conditioning control.
[0191] In this optional embodiment, the method may also include the following operations:
[0192] When it is determined that the environment does not meet the conditions for the first parameter control, the corresponding airflow adjustment area is determined based on the real-time airflow parameters and the range of airflow demand.
[0193] Based on the airflow adjustment zone, determine the parameters of the third zone of the airflow adjustment zone relative to the air conditioner;
[0194] Based on real-time airflow parameters and third-zone parameters, assess the airflow adjustment difficulty coefficient corresponding to the airflow adjustment zone.
[0195] Based on the first control parameter and the real-time airflow parameter, evaluate the airflow impact coefficient of the first air outlet operation on the airflow adjustment area.
[0196] The first control parameters are corrected based on the parameters of the first region, the air adjustment difficulty coefficient, and the air flow influence coefficient.
[0197] The airflow adjustment area corresponding to the environment can be an area in the environment where the airflow needs to be adjusted and / or an area in the environment where the airflow does not meet the preset standard. This embodiment of the invention does not limit this.
[0198] The third region parameter of the air flow adjustment region relative to the air conditioner may include one or more combinations of the maximum region distance of the air flow adjustment region relative to the air conditioner, the minimum region distance of the air flow adjustment region relative to the air conditioner, the maximum region angle of the air flow adjustment region relative to the air conditioner, and the minimum region angle of the air flow adjustment region relative to the air conditioner. This embodiment of the invention does not limit the parameters.
[0199] Specifically, if the airflow influence coefficient is positive and the larger the value, the better the effect of the first air outlet operation on increasing the airflow speed in the airflow adjustment area; if the airflow influence coefficient is negative and the larger the value, the greater the reduction in airflow speed in the airflow adjustment area caused by the first air outlet operation.
[0200] As can be seen, this optional embodiment can also determine the corresponding airflow adjustment area based on real-time airflow parameters and airflow demand range when it is determined that the environment does not meet the first parameter control conditions. Then, it determines the third area parameter of the airflow adjustment area relative to the air conditioner based on the airflow adjustment area, evaluates the air adjustment difficulty coefficient corresponding to the airflow adjustment area based on the real-time airflow parameters and the third area parameter, and evaluates the airflow impact coefficient of the first air outlet operation on the airflow adjustment area based on the first control parameter and the real-time airflow parameters. Then, it corrects the first control parameter based on the first area parameter, the air adjustment difficulty coefficient, and the airflow impact coefficient. This can improve the accuracy of determining the area where airflow needs to be adjusted when the current environment does not meet the conditions, and improve the accuracy of the analysis of airflow conditions. This is conducive to improving the accuracy of the correction of the air conditioner control parameters, which in turn is conducive to controlling the air conditioner air outlet based on the corrected and accurate air conditioner control parameters. This is conducive to improving the ability of the air conditioner to specifically adjust the temperature in areas where the airflow conditions are not up to standard, thereby improving the air conditioner's temperature regulation efficiency for the environment.
[0201] In another alternative embodiment, the second area parameters include one or more combinations of the area's spatial dimensions, furniture layout information of the area, wall location information of the area, and the distance of the air conditioner relative to each wall in the area.
[0202] The method may also include the following operations:
[0203] Based on the second temperature difference, determine the corresponding second temperature adjustment stage of the air conditioner; the second temperature adjustment stage includes either a comfort temperature adjustment stage or a whole-house temperature replenishment stage.
[0204] Furthermore, determining the second control parameters corresponding to the air conditioner based on the second region parameters may include the following operations:
[0205] Based on the spatial dimensions of the area, wall location information, distances between all walls, and the first control parameter, analyze the air temperature regulation efficiency corresponding to the air conditioner; air temperature regulation efficiency is used to represent the efficiency of the air supplied by the air conditioner to flow evenly to all areas of the environment.
[0206] Based on the furniture layout information, analyze the airflow obstruction coefficient corresponding to the air conditioner; the airflow obstruction coefficient is used to indicate the degree to which furniture in the environment obstructs the flow of air emitted by the air conditioner.
[0207] The second control parameters for the air conditioner are determined based on the second temperature difference, air temperature regulation efficiency, air flow obstruction coefficient, and the second temperature regulation stage.
[0208] Specifically, when the first temperature adjustment stage is a rapid temperature adjustment stage, the second temperature adjustment stage is a comfort temperature adjustment stage; when the first temperature adjustment stage is a comfort temperature adjustment stage, the second temperature adjustment stage is a whole-house supplementary temperature adjustment stage. The temperature regulation efficiency corresponding to the comfort temperature adjustment stage is higher than that corresponding to the whole-house supplementary temperature adjustment stage.
[0209] The second air outlet control parameter may include one or more of the following: second air outlet volume, second air outlet velocity, and second air outlet temperature; the second angle parameter may include the second tilt angle corresponding to the oscillating blade and / or the second upward angle corresponding to the air guide plate and / or the second downward angle corresponding to the air guide plate; the second swing control parameter may include one or more of the following: the swing angle range of the second oscillating blade corresponding to the oscillating blade, the upward angle range of the second air guide plate corresponding to the air guide plate, the downward angle range of the second air guide plate corresponding to the air guide plate, the swing frequency of the second oscillating blade corresponding to the oscillating blade, and the swing frequency of the second air guide plate corresponding to the air guide plate; the second swing control parameter may include one or more of the following: the swing angle range ...
[0210] As can be seen, this optional embodiment can analyze the air temperature regulation efficiency of the air conditioner based on the spatial dimensions of the area, wall location information, distances between all walls, and the first control parameter. Then, based on the furniture layout information, it can analyze the air flow obstruction coefficient of the air conditioner. Finally, based on the second temperature difference, the air temperature regulation efficiency, the air flow obstruction coefficient, and the second temperature regulation stage determined by the second temperature difference, it can determine the second control parameter of the air conditioner. This can improve the accuracy of the analysis of the impact of the layout of the area on the air conditioner's air output effect, thereby improving the accuracy of the determination of the second control parameter and thus improving the accuracy of the real-time control of the air conditioner.
[0211] In yet another optional embodiment, when the second temperature adjustment phase is a comfort temperature adjustment phase, the method may further include the following operations:
[0212] Determine whether the environment meets the determined control conditions for the second parameter;
[0213] When it is determined that the environment meets the established second parameter control conditions, the corresponding third temperature control stage of the air conditioner is determined; the third temperature control stage may include a whole-house heat replenishment stage or a comfortable and quiet stage.
[0214] Obtain user behavior information;
[0215] Based on the third temperature adjustment stage, the parameters of the first zone, the parameters of the second zone, and the behavioral information, determine the third control parameters corresponding to the air conditioner;
[0216] Based on the third control parameter, control the air conditioner to perform the third air outlet operation corresponding to the third control parameter.
[0217] Specifically, when the second temperature adjustment stage is the comfort temperature adjustment stage, the third temperature adjustment stage is the whole-house temperature replenishment stage; when the second temperature adjustment stage is the whole-house temperature replenishment stage, the third temperature adjustment stage is the comfort and tranquility stage. The temperature regulation efficiency corresponding to the whole-house temperature replenishment stage is higher than that corresponding to the comfort and tranquility stage.
[0218] The second parameter control condition can be determined by the stage type of the second temperature control stage corresponding to the air conditioner, and this embodiment of the invention does not limit it.
[0219] The third air outlet operation corresponding to the third control parameter includes the air outlet operation of the air conditioner and / or the oscillation control operation of the air guide component of the air conditioner, which is not limited in this embodiment of the invention; optionally, the third control parameter may also include the third control duration of the air conditioner, which is not limited in this embodiment of the invention.
[0220] As can be seen, this optional embodiment can determine the third temperature adjustment stage of the air conditioner and obtain user behavior information when the environment meets the determined second parameter control conditions. Then, based on the third temperature adjustment stage, the first area parameter, the second area parameter, and the behavior information, it determines the third control parameter of the air conditioner to control the air conditioner to execute the third air outlet operation corresponding to the third control parameter. This can improve the accuracy of determining the temperature adjustment stage of the air conditioner, thereby further improving the accuracy of the air conditioner in adjusting the temperature for different environmental conditions. This, in turn, helps to improve the efficiency of the air conditioner in regulating the ambient temperature and helps to keep the ambient temperature stable and efficient at a temperature that the user feels comfortable, thus improving the user's experience with the air conditioner.
[0221] Example 3
[0222] Please see Figure 4 , Figure 4 This is a schematic diagram of the structure of an air conditioning control device based on regional parameters disclosed in an embodiment of the present invention. Wherein, Figure 4 The described air conditioning control device based on regional parameters may include one of the following: air conditioning control equipment, air conditioning control terminal, air conditioning control system, and server. The server may include a local server or a cloud server, and this embodiment of the invention is not limited thereto. For example, the air conditioning control terminal may include a smart terminal, and this embodiment of the invention is not limited thereto. This device can be applied to a smart home system, which can be used to control various smart devices included in the smart home, such as a smart air conditioner, and this embodiment of the invention is not limited thereto. Figure 4 As shown, the air conditioning control device based on regional parameters may include:
[0223] The acquisition module 301 is used to acquire the user's comfort temperature and the current ambient temperature of the environment in which the user is located; an air conditioner is installed in the environment.
[0224] Module 302 is used to determine the user's first zone parameters for the air conditioner;
[0225] The determining module 302 is further configured to determine the first control parameters corresponding to the air conditioner based on the user's comfort temperature, the current ambient temperature, and the first zone parameters; the first control parameters corresponding to the air conditioner include the first air outlet control parameters of the air conditioner and / or the first oscillation control parameters corresponding to the air guide assembly of the air conditioner;
[0226] The control module 303 is used to control the air conditioner to perform the first air outlet operation corresponding to the first control parameter according to the first control parameter.
[0227] As can be seen, the device described in the embodiments of the present invention can obtain the user's comfort temperature and the current ambient temperature of the user's environment, determine the user's first regional parameters for the air conditioner, and then determine the first control parameters for the air conditioner based on the user's comfort temperature, the current ambient temperature, and the first regional parameters, so as to control the air conditioner to perform the first air outlet operation corresponding to the first control parameters. It can realize intelligent control of the air conditioner's air outlet based on the user's regional parameters for the air conditioner and the corresponding comfort temperature and ambient temperature. By analyzing the influence relationship between the regional parameters of the user's environment and the air conditioner's air outlet effect, it can improve the flexibility and accuracy of determining the air conditioner's control parameters, thereby improving the air conditioner's regulation efficiency for ambient temperature while improving the air conditioner's regulation flexibility, which is conducive to improving environmental comfort.
[0228] In an optional embodiment, the determining module 302 is further configured to determine the intelligent control mode corresponding to the air conditioner; the intelligent control mode includes a first control mode or a second control mode.
[0229] The specific method by which the determining module 302 determines the first control parameter corresponding to the air conditioner based on the user comfort temperature, the current ambient temperature, and the first zone parameter may include:
[0230] The first temperature difference is determined based on the user's comfort temperature and the current ambient temperature;
[0231] Based on the intelligent control mode and the first temperature difference, the temperature adjustment mode of the air conditioner and the first temperature difference threshold corresponding to the temperature adjustment mode are determined; the temperature adjustment mode includes cooling mode or heating mode.
[0232] Based on the first temperature difference value and the first temperature difference threshold, the first temperature adjustment stage corresponding to the air conditioner is determined; the first temperature adjustment stage includes a rapid temperature adjustment stage or a comfortable temperature adjustment stage.
[0233] Based on the first temperature difference, the first zone parameters, and the first temperature adjustment stage, the first control parameters corresponding to the air conditioner are determined.
[0234] As can be seen, the apparatus described in this optional embodiment can determine the intelligent control mode corresponding to the air conditioner, which is beneficial for more accurate determination of the first control parameter corresponding to the air conditioner, thereby improving the accuracy of the air conditioner control parameter. Furthermore, it can determine a first temperature difference based on the user's comfort temperature and the current ambient temperature, and then determine the air conditioner's temperature adjustment mode and the first temperature difference threshold corresponding to the temperature adjustment mode based on the intelligent control mode and the first temperature difference value. Then, based on the first temperature difference and the first temperature difference threshold, it determines the first temperature adjustment stage corresponding to the air conditioner. Based on the first temperature difference, the first area parameter, and the first temperature adjustment stage, the first control parameter corresponding to the air conditioner is determined. This allows for analysis of the current temperature adjustment stage based on the temperature difference, thereby improving the accuracy of determining the air conditioner's temperature adjustment stage. This improves the accuracy of determining the air conditioner control parameter, enabling accurate control of the air conditioner's airflow based on the accurate temperature adjustment stage and air conditioner control parameter, and ultimately improving the air conditioner's efficiency and accuracy in regulating ambient temperature.
[0235] In this optional embodiment, the first area parameter may include one or more combinations of the user's angle relative to the air conditioner, the user's distance relative to the air conditioner, and the user's activity area range relative to the air conditioner in the environment.
[0236] The specific method by which the determining module 302 determines the first control parameter corresponding to the air conditioner based on the first temperature difference, the first region parameter, and the first temperature adjustment stage may include:
[0237] Determine the first control parameter range corresponding to the first temperature adjustment stage; the first control parameter range includes the first air outlet parameter range and the first oscillation parameter range.
[0238] Based on the first temperature difference and the first air outlet parameter range, determine the first air outlet control parameter corresponding to the air conditioner;
[0239] Based on the parameters of the first zone and the parameters of the first air outlet control, the comfort impact coefficient of the air conditioner on the user is determined; the comfort impact coefficient is used to represent the degree of influence of the air outlet effect corresponding to the first air outlet control parameter on the user's comfort.
[0240] Based on the comfort impact coefficient and the parameters of the first zone, determine the first angle parameters corresponding to the air guide components of the air conditioner;
[0241] Based on the first swing parameter range and the first angle parameter, the first swing control parameter corresponding to the air guide assembly is determined.
[0242] As can be seen, the apparatus described in this optional embodiment can also determine the first control parameter range corresponding to the first temperature adjustment stage, then determine the first air outlet control parameter based on the first temperature difference and the first air outlet parameter range, and determine the comfort impact coefficient of the air conditioner on the user based on the first area parameter and the first air outlet control parameter. Then, it can determine the first angle parameter corresponding to the air guide component based on the comfort impact coefficient and the first area parameter, and finally determine the first swing control parameter corresponding to the air guide component based on the first swing parameter range and the first angle parameter. This allows for the analysis of the impact of the air conditioner's air outlet effect on the user's comfort through accurately determined air outlet control parameters. By improving the accuracy of determining the comfort impact coefficient, the accuracy of determining the swing control parameter of the air guide component is enhanced, which in turn improves the precision of the air conditioner control parameters and further improves the accuracy of air conditioner regulation.
[0243] In an optional embodiment, such as Figure 5 As shown, the device may further include:
[0244] The judgment module 304 is used to determine whether the environment meets the determined first parameter control conditions during the process of the control module 303 controlling the air conditioner to perform the first air outlet operation.
[0245] The determining module 302 is also used to determine the second region parameter of the region where the user is located in the environment when the judging module 304 determines that the environment meets the first parameter control conditions;
[0246] The determining module 302 is also used to determine the second control parameters corresponding to the air conditioner based on the second region parameters; the second control parameters corresponding to the air conditioner include the second air outlet control parameters of the air conditioner and / or the second swing control parameters corresponding to the air guide assembly of the air conditioner;
[0247] The control module 303 is also used to control the air conditioner to perform the second air outlet operation corresponding to the second control parameter according to the second control parameter.
[0248] As can be seen, the device described in this optional embodiment can determine whether the environment meets the first parameter control conditions during the first air outlet process. If the determination result is yes, it determines the second area parameter of the area where the user is located in the environment, and then determines the second control parameter corresponding to the air conditioner based on the second area parameter to control the air conditioner to perform the corresponding second air outlet operation. It can monitor the impact of the air conditioner's air outlet operation on the environment at all times to achieve real-time control of the air conditioner's air outlet operation based on the real-time environmental conditions, thereby further improving the flexibility of air conditioner control. Furthermore, by analyzing the influence relationship between the second area parameter and the air conditioner's air outlet effect, it can further improve the accuracy of the analysis of the air flow corresponding to the air conditioner's air outlet and the influence of the area parameter on the ambient temperature, which is conducive to further improving the accuracy and efficiency of the air conditioner's regulation of the ambient temperature.
[0249] In this optional embodiment, the specific method by which the determining module 304 determines whether the environment meets the determined first parameter control conditions may include:
[0250] Based on the user's comfort temperature and the current ambient temperature, determine the type of airflow parameter to be collected, and collect real-time airflow parameters of the airflow parameter type in the environment; the airflow parameter type includes cold air settling parameter type or warm air accumulation parameter type.
[0251] Collect the real-time ambient temperature and determine the second temperature difference based on the user's comfort temperature and the real-time ambient temperature;
[0252] Determine whether the second temperature difference is less than or equal to the determined second temperature difference threshold or whether the real-time air flow parameters are within the preset air flow requirement range;
[0253] When it is determined that the second temperature difference is less than or equal to the second temperature difference threshold or the real-time air flow parameter is within the air flow demand range, the environment is determined to meet the first parameter control condition.
[0254] When it is determined that the second temperature difference is greater than the second temperature difference threshold and the real-time air flow parameters are not within the air flow demand range, it is determined that the environment does not meet the determined first parameter control conditions.
[0255] As can be seen, the device described in this optional embodiment can also determine the type of airflow parameter to be collected based on the user's comfort temperature and the current ambient temperature, and collect the real-time airflow parameter of the airflow parameter type in the environment, as well as the real-time ambient temperature, to determine a second temperature difference based on the user's comfort temperature and the real-time ambient temperature. Then, by judging whether the second temperature difference is less than or equal to the determined second temperature difference threshold or whether the real-time airflow parameter is within the preset airflow demand range, it can determine whether the environment meets the determined first parameter control conditions. This can improve the accuracy of obtaining the impact of the air conditioner on the environment during the air conditioning air outlet process, thereby improving the accuracy of judging whether the environment meets the first parameter control conditions, and further improving the accuracy of judging whether the air conditioning air outlet operation needs to be adjusted, thus improving the accuracy of air conditioning control.
[0256] In this optional embodiment, optionally, the determining module 302 is further configured to determine the air flow adjustment area corresponding to the environment based on the real-time air flow parameters and the air flow demand range when the judging module 304 determines that the environment does not meet the first parameter control conditions; the air flow adjustment area corresponding to the environment is the area in the environment where the air flow needs to be adjusted.
[0257] The determining module 302 is also used to determine the third zone parameter of the air flow adjustment zone relative to the air conditioner based on the air flow adjustment zone;
[0258] Among them, such as Figure 5 As shown, the device may further include:
[0259] The evaluation module 305 is used to evaluate the air adjustment difficulty coefficient corresponding to the air flow adjustment area based on real-time air flow parameters and third area parameters.
[0260] The evaluation module 305 is also used to evaluate the airflow impact coefficient of the first air outlet operation on the airflow adjustment area based on the first control parameters and real-time airflow parameters.
[0261] The correction module 306 is used to correct the first control parameters based on the first region parameters, the air adjustment difficulty coefficient, and the air flow influence coefficient.
[0262] As can be seen, the apparatus described in this optional embodiment can, when it is determined that the environment does not meet the first parameter control conditions, determine the corresponding airflow adjustment area based on real-time airflow parameters and the airflow demand range, then determine the third area parameter of the airflow adjustment area relative to the air conditioner based on the airflow adjustment area, evaluate the air adjustment difficulty coefficient corresponding to the airflow adjustment area based on the real-time airflow parameters and the third area parameter, and evaluate the airflow influence coefficient of the first air outlet operation on the airflow adjustment area based on the first control parameter and the real-time airflow parameters. Then, based on the first area parameter, the air adjustment difficulty coefficient, and the airflow influence coefficient, the first control parameter is corrected. This can improve the accuracy of determining the area where airflow needs to be adjusted when the current environment does not meet the conditions, and improve the accuracy of the analysis of airflow conditions. This is beneficial to improving the accuracy of the correction of the air conditioner control parameters, which in turn is beneficial to controlling the air conditioner air outlet based on the corrected and accurate air conditioner control parameters. This is beneficial to improving the ability of the air conditioner to specifically adjust the temperature in areas where the airflow conditions are not up to standard, thereby improving the air conditioner's temperature regulation efficiency for the environment.
[0263] In this optional embodiment, the second area parameters may include one or more combinations of the following: the spatial dimensions of the area, furniture layout information of the area, wall location information of the area, and the wall distance of the air conditioner relative to each wall in the area.
[0264] The determining module 302 is also used to determine the second temperature adjustment stage corresponding to the air conditioner based on the second temperature difference; the second temperature adjustment stage includes a comfort temperature adjustment stage or a whole-house temperature replenishment stage.
[0265] Furthermore, the specific method by which the determining module 302 determines the second control parameters corresponding to the air conditioner based on the second region parameters may include:
[0266] Based on the spatial dimensions of the area, wall location information, distances between all walls, and the first control parameter, analyze the air temperature regulation efficiency corresponding to the air conditioner; air temperature regulation efficiency is used to represent the efficiency of the air supplied by the air conditioner to flow evenly to all areas of the environment.
[0267] Based on the furniture layout information, analyze the airflow obstruction coefficient corresponding to the air conditioner; the airflow obstruction coefficient is used to indicate the degree to which furniture in the environment obstructs the flow of air emitted by the air conditioner.
[0268] The second control parameters for the air conditioner are determined based on the second temperature difference, air temperature regulation efficiency, air flow obstruction coefficient, and the second temperature regulation stage.
[0269] As can be seen, the device described in this optional embodiment can also analyze the air temperature regulation efficiency of the air conditioner based on the spatial dimensions of the area, wall location information, distances between all walls, and the first control parameter. Then, based on the furniture layout information, it can analyze the air flow obstruction coefficient of the air conditioner. Finally, based on the second temperature difference, the air temperature regulation efficiency, the air flow obstruction coefficient, and the second temperature regulation stage determined by the second temperature difference, it can determine the second control parameter of the air conditioner. This can improve the accuracy of the analysis of the influence of the layout of the area on the air conditioner's air output effect, thereby improving the accuracy of the determination of the second control parameter and thus improving the accuracy of the real-time control of the air conditioner.
[0270] Example 4
[0271] Please see Figure 6 , Figure 6 This is a schematic diagram of another air conditioning control device based on regional parameters disclosed in an embodiment of the present invention. Figure 6 As shown, the air conditioning control device based on regional parameters may include:
[0272] Memory 401 storing executable program code;
[0273] Processor 402 coupled to memory 401;
[0274] The processor 402 calls the executable program code stored in the memory 401 to execute the steps in the air conditioning control method based on regional parameters described in Embodiment 1 or Embodiment 2 of the present invention.
[0275] Example 5
[0276] This invention discloses a computer storage medium storing computer instructions. When these computer instructions are invoked, they are used to execute the steps in the air conditioning control method based on regional parameters described in Embodiment 1 or Embodiment 2 of this invention.
[0277] Example 6
[0278] This invention discloses a computer program product, which includes a non-transitory computer-readable storage medium storing a computer program, and the computer program is operable to cause a computer to perform the steps in the air conditioning control method based on regional parameters described in Embodiment 1 or Embodiment 2.
[0279] The device embodiments described above are merely illustrative. The modules described as separate components may or may not be physically separate. The components shown as modules may or may not be physical modules; that is, they may be located in one place or distributed across multiple network modules. Some or all of the modules can be selected to achieve the purpose of this embodiment according to actual needs. Those skilled in the art can understand and implement this without any creative effort.
[0280] Through the detailed description of the above embodiments, those skilled in the art can clearly understand that each implementation method can be implemented by means of software plus necessary general-purpose hardware platforms, and of course, it can also be implemented by hardware. Based on this understanding, the above technical solutions, in essence or the part that contributes to the prior art, can be embodied in the form of a software product. This computer software product can be stored in a computer-readable storage medium, including read-only memory (ROM), random access memory (RAM), programmable read-only memory (PROM), erasable programmable read-only memory (EPROM), one-time programmable read-only memory (OTPROM), electrically-Erasable Programmable Read-Only Memory (EEPROM), compact disc read-only memory (CD-ROM) or other optical disc storage, disk storage, magnetic tape storage, or any other computer-readable medium that can be used to carry or store data.
[0281] Finally, it should be noted that the air conditioning control method and apparatus based on regional parameters disclosed in the embodiments of the present invention are merely preferred embodiments of the present invention and are only used to illustrate the technical solutions of the present invention, not to limit it. Although the present invention has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that modifications can still be made to the technical solutions described in the foregoing embodiments, or equivalent substitutions can be made to some of the technical features. Such modifications or substitutions do not cause the essence of the corresponding technical solutions to deviate from the spirit and scope of the technical solutions of the embodiments of the present invention.
Claims
1. An air conditioning control method based on regional parameters, characterized in that, The method includes: The system obtains the user's comfort temperature and the current ambient temperature of the environment in which the user is located; the environment is equipped with air conditioning. Determine the user's first zone parameters regarding the air conditioner; Based on the user's comfort temperature, the current ambient temperature, and the first area parameter, the first control parameter corresponding to the air conditioner is determined; the first control parameter corresponding to the air conditioner includes the first air outlet control parameter of the air conditioner and / or the first oscillation control parameter corresponding to the air guide assembly of the air conditioner; Based on the first control parameter, the air conditioner is controlled to perform the first air outlet operation corresponding to the first control parameter.
2. The air conditioning control method based on regional parameters according to claim 1, characterized in that, The method further includes: Determine the intelligent control mode corresponding to the air conditioner; the intelligent control mode includes a first control mode or a second control mode. The step of determining the first control parameter corresponding to the air conditioner based on the user comfort temperature, the current ambient temperature, and the first area parameter includes: A first temperature difference is determined based on the user's comfort temperature and the current ambient temperature; Based on the intelligent control mode and the first temperature difference, the temperature adjustment mode of the air conditioner and the first temperature difference threshold corresponding to the temperature adjustment mode are determined; the temperature adjustment mode includes a cooling mode or a heating mode. Based on the first temperature difference value and the first temperature difference threshold, the first temperature adjustment stage corresponding to the air conditioner is determined; the first temperature adjustment stage includes a rapid temperature adjustment stage or a comfortable temperature adjustment stage. Based on the first temperature difference, the first regional parameters, and the first temperature adjustment stage, the first control parameters corresponding to the air conditioner are determined.
3. The air conditioning control method based on regional parameters according to claim 2, characterized in that, The first area parameters include one or more combinations of the user's angle relative to the air conditioner, the user's distance relative to the air conditioner, and the user's activity area range relative to the air conditioner in the environment; The step of determining the first control parameter corresponding to the air conditioner based on the first temperature difference, the first regional parameter, and the first temperature adjustment stage includes: Determine the first control parameter range corresponding to the first temperature adjustment stage; the first control parameter range includes the first air outlet parameter range and the first oscillation parameter range. Based on the first temperature difference and the first air outlet parameter range, the first air outlet control parameter corresponding to the air conditioner is determined; Based on the first area parameters and the first air outlet control parameters, the comfort impact coefficient of the air conditioner on the user is determined; the comfort impact coefficient is used to represent the degree of influence of the air outlet effect corresponding to the first air outlet control parameters on the user's comfort. Based on the comfort impact coefficient and the first area parameters, the first angle parameters corresponding to the air guide assembly of the air conditioner are determined; Based on the first swing parameter range and the first angle parameter, the first swing control parameter corresponding to the air guide component is determined.
4. The air conditioning control method based on regional parameters according to any one of claims 1-3, characterized in that, The method further includes: During the process of controlling the air conditioner to perform the first air outlet operation, it is determined whether the environment meets the determined first parameter control conditions; When it is determined that the environment meets the first parameter control conditions, the second region parameter of the region where the user is located in the environment is determined. Based on the second region parameters, the second control parameters corresponding to the air conditioner are determined; the second control parameters corresponding to the air conditioner include the second air outlet control parameters of the air conditioner and / or the second oscillation control parameters corresponding to the air guide assembly of the air conditioner. Based on the second control parameter, the air conditioner is controlled to perform the second air outlet operation corresponding to the second control parameter.
5. The air conditioning control method based on regional parameters according to claim 4, characterized in that, The determination of whether the environment meets the determined first parameter control condition includes: Based on the user's comfort temperature and the current ambient temperature, determine the type of airflow parameter to be collected, and collect the real-time airflow parameter of the airflow parameter type in the environment; the airflow parameter type includes cold air settling parameter type or warm air accumulation parameter type; The real-time ambient temperature of the environment is collected, and a second temperature difference is determined based on the user's comfort temperature and the real-time ambient temperature. Determine whether the second temperature difference is less than or equal to the determined second temperature difference threshold or whether the real-time air flow parameters are within the preset air flow requirement range; When it is determined that the second temperature difference is less than or equal to the second temperature difference threshold or the real-time air flow parameter is within the air flow demand range, it is determined that the environment meets the determined first parameter control condition. When it is determined that the second temperature difference is greater than the second temperature difference threshold and the real-time air flow parameter is not within the air flow demand range, it is determined that the environment does not meet the determined first parameter control conditions.
6. The air conditioning control method based on regional parameters according to claim 5, characterized in that, The method further includes: When it is determined that the environment does not meet the first parameter control conditions, the air flow adjustment area corresponding to the environment is determined according to the real-time air flow parameters and the air flow demand range; the air flow adjustment area corresponding to the environment is the area in the environment where the air flow needs to be adjusted. Based on the airflow adjustment area, determine the third area parameter of the airflow adjustment area relative to the air conditioner; Based on the real-time airflow parameters and the third region parameters, the airflow adjustment difficulty coefficient corresponding to the airflow adjustment region is evaluated; Based on the first control parameter and the real-time airflow parameter, evaluate the airflow impact coefficient of the first air outlet operation on the airflow adjustment area; The first control parameter is corrected based on the first region parameter, the air adjustment difficulty coefficient, and the air flow influence coefficient.
7. The air conditioning control method based on regional parameters according to claim 4, characterized in that, The second area parameters include one or more combinations of the following: the spatial dimensions of the area, the furniture layout information of the area, the wall position information of the area, and the wall distance of the air conditioner relative to each wall in the area; The method further includes: Based on the second temperature difference, the second temperature adjustment stage corresponding to the air conditioner is determined; the second temperature adjustment stage includes the comfort temperature adjustment stage or the whole-house temperature replenishment stage; And, determining the second control parameters corresponding to the air conditioner based on the second region parameters includes: Based on the spatial dimensions of the area, the wall location information, the distances between all the walls, and the first control parameter, the air temperature regulation efficiency corresponding to the air conditioner is analyzed; the air temperature regulation efficiency is used to represent the efficiency of the air supplied by the air conditioner to flow evenly to all areas of the environment; Based on the furniture layout information, the airflow obstruction coefficient corresponding to the air conditioner is analyzed; the airflow obstruction coefficient is used to indicate the degree to which the furniture in the environment obstructs the flow of air emitted by the air conditioner. The second control parameters corresponding to the air conditioner are determined based on the second temperature difference, the air temperature regulation efficiency, the air flow obstruction coefficient, and the second temperature regulation stage.
8. An air conditioning control device based on regional parameters, characterized in that, The device includes: The acquisition module is used to acquire the user's corresponding comfort temperature and the current ambient temperature of the environment in which the user is located; the environment is equipped with an air conditioner; The determining module is used to determine the user's first zone parameters regarding the air conditioner; The determining module is further configured to determine the first control parameters corresponding to the air conditioner based on the user comfort temperature, the current ambient temperature, and the first area parameters; the first control parameters corresponding to the air conditioner include the first air outlet control parameters of the air conditioner and / or the first oscillation control parameters corresponding to the air guide assembly of the air conditioner; The control module is used to control the air conditioner to perform the first air outlet operation corresponding to the first control parameter according to the first control parameter.
9. An air conditioning control device based on regional parameters, characterized in that, The device includes: Memory containing executable program code; A processor coupled to the memory; The processor calls the executable program code stored in the memory to execute the air conditioning control method based on regional parameters as described in any one of claims 1-7.
10. A computer storage medium, characterized in that, The computer storage medium stores computer instructions, which, when invoked, are used to execute the air conditioning control method based on regional parameters as described in any one of claims 1-7.