Swing blade control method and device applied to intelligent air conditioner

By analyzing the louver status and demand information of smart air conditioners, air supply control parameters are generated, solving the problem of low louver control efficiency in smart air conditioners, improving control accuracy and convenience, extending the service life of air conditioners, and protecting user health.

CN119022439BActive Publication Date: 2026-07-24FOSHAN VIOMI ELECTRICAL TECH
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
FOSHAN VIOMI ELECTRICAL TECH
Filing Date
2024-10-15
Publication Date
2026-07-24

AI Technical Summary

Technical Problem

Existing smart air conditioners are inefficient in controlling the louvers, requiring manual operation and lacking convenience, thus reducing the user experience.

Method used

By determining the state range information of the swing blades in the target air conditioner, analyzing the airflow coverage area, and matching the control range information according to the demand information, air supply control parameters are generated to achieve comfortable air supply operation.

Benefits of technology

It improves the control efficiency and convenience of air conditioner louvers, extends the service life of air conditioners, protects user health, and achieves green and environmentally friendly energy use.

✦ Generated by Eureka AI based on patent content.

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Abstract

The application relates to the technical field of smart home, and discloses a swing-leaf control method and device applied to a smart air conditioner, which comprises the following steps: determining state range information of swing leaves in a target air conditioner; analyzing a first air flow coverage area of the target air conditioner according to the state range information; matching control range information of the swing leaves according to the first air flow coverage area and determined target demand information corresponding to the target air conditioner; and generating air supply control parameters of the target air conditioner according to the control range information, wherein the air supply control parameters are used for controlling the target air conditioner to perform a comfortable air supply operation matched to the target demand information. It can be seen that the application can improve the control efficiency and convenience of swing leaves of the air conditioner, adapt the air supply control parameters for performing the comfortable air supply operation to the target demand information by combining the actual state of the swing leaves of the air conditioner with the target demand information, and improve the control accuracy of the swing leaves of the air conditioner.
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Description

Technical Field

[0001] This invention relates to the field of smart home technology, and in particular to a method and device for controlling the louver of a smart air conditioner. Background Technology

[0002] With the continuous development of technology, smart home devices are constantly being improved, such as smart air conditioners, and more and more families are able to enjoy the convenient services provided by smart homes.

[0003] However, in practice, it has been found that for smart air conditioners, users still need to manually control the air conditioner louvers to avoid direct airflow and achieve rapid cooling of the space. In this case, users also need to find the remote control used to control the air conditioner louvers. If the corresponding remote control cannot be found, the above objectives cannot be achieved, which greatly reduces the efficiency of air conditioner louver control and the user's air conditioning experience.

[0004] Therefore, it is particularly important to propose a technical solution to improve the efficiency of air conditioner blade control. Summary of the Invention

[0005] This invention provides a method and device for controlling the louvers of an air conditioner, which can improve the control efficiency and convenience of the air conditioner's louvers.

[0006] To address the aforementioned technical problems, the first aspect of this invention discloses a louver control method for use in intelligent air conditioners, the method comprising:

[0007] Determine the state range information of the swing blades in the target air conditioner;

[0008] Based on the state range information, analyze the first airflow coverage area of ​​the target air conditioner;

[0009] Based on the first airflow coverage area and the target demand information corresponding to the target air conditioner, the control range information of the swing blades is matched;

[0010] Based on the control range information, air supply control parameters for the target air conditioner are generated. These air supply control parameters are used to control the target air conditioner to perform a matching comfort air supply operation adapted to the target demand information.

[0011] As an optional implementation, in a first aspect of the present invention, the state range information includes swing range information and layout range information, the layout range information being used to represent the layout of the swing blades, and the step of analyzing the first airflow coverage area of ​​the target air conditioner based on the state range information includes:

[0012] Determine the air supply speed range information of the target air conditioner and the spatial layout information of the target space corresponding to the target air conditioner;

[0013] Based on the air supply speed range information and the state range information, analyze the second airflow coverage area of ​​the target air conditioner;

[0014] Based on the second airflow coverage area and the spatial layout information, the first airflow coverage area of ​​the target air conditioner is analyzed.

[0015] As an optional implementation, in the first aspect of the present invention, the air supply speed range information includes multiple speed information, and the step of analyzing the second airflow coverage area of ​​the target air conditioner based on the air supply speed range information and the state range information includes:

[0016] For each speed information, the third airflow coverage area of ​​the target air conditioner under that speed information is analyzed based on the speed information and the state range information.

[0017] Based on all the third airflow coverage areas, at least one dynamic speed matching set of the target air conditioner is generated. The dynamic speed matching set includes at least two speed information, and the dynamic switching control method of the speed information in different dynamic speed matching sets is different.

[0018] The second airflow coverage area of ​​the target air conditioner is analyzed based on all the aforementioned dynamic speed matching sets.

[0019] As an optional implementation, in the first aspect of the present invention, the swing range information includes multiple swing information, the swing information including swing angle information and swing frequency information, each swing information having a different swing angle information and / or a different swing frequency information, and for each speed information, analyzing the third airflow coverage area of ​​the target air conditioner under that speed information based on the speed information and the state range information includes:

[0020] Based on the rotation speed information and the layout range information, calculate the fixed airflow coverage area of ​​the target air conditioner under the rotation speed information;

[0021] For each swing information, based on the swing information and the fixed airflow coverage area under the speed information, calculate the airflow area swing influence value of the swing information on the fixed airflow coverage area under the speed information. The airflow area swing influence value is used to represent the degree of influence of the swing information on the fixed airflow coverage area under the speed information. Based on the airflow area swing influence value and the fixed airflow coverage area under the speed information, analyze the fourth airflow coverage area of ​​the target air conditioner under the swing information and the speed information.

[0022] Based on all the fourth airflow coverage areas, the third airflow coverage area of ​​the target air conditioner under this speed information is analyzed.

[0023] As an optional implementation, in a first aspect of the invention, for each of the oscillation information, calculating the influence value of the oscillation information on the airflow area oscillation of the fixed airflow coverage area under the fixed airflow coverage area under the rotational speed information, based on the oscillation information and the rotational speed information, includes:

[0024] Based on the fixed airflow coverage area under the swing information and the rotation speed information, airflow vortex oscillation effect information under the rotation speed information and the swing information is generated;

[0025] Based on the airflow vortex oscillation effect information and the fixed airflow coverage area under the rotational speed information, calculate the influence value of the oscillation information on the airflow area oscillation of the fixed airflow coverage area under the rotational speed information.

[0026] As an optional implementation, in the first aspect of the present invention, the spatial layout information includes at least one of spatial heat source distribution information, spatial object distribution information, spatial pattern information, spatial brightness information, and spatial material information. The step of analyzing the first airflow coverage area of ​​the target air conditioner based on the second airflow coverage area and the spatial layout information includes:

[0027] Analyze the first airflow effect information of the target air conditioner based on the second airflow coverage area;

[0028] Based on the first airflow effect information and the spatial layout information, analyze the second airflow effect information of the target air conditioner;

[0029] Based on the first airflow effect information and the second airflow effect information, the spatial influence value of the airflow effect of the target air conditioner is calculated, and the spatial influence value of the airflow effect is used to represent the degree of influence of the target space on the first airflow effect information;

[0030] Based on the spatial influence value of the airflow effect and the second airflow coverage area, the first airflow coverage area of ​​the target air conditioner is analyzed.

[0031] As an optional implementation, in the first aspect of the present invention, the step of matching the control range information of the oscillating blades based on the first airflow coverage area and the determined target demand information corresponding to the target air conditioner includes:

[0032] Based on the target demand information corresponding to the identified target air conditioner, determine the comfort airflow area for the current scenario;

[0033] Based on the first airflow coverage area, it is determined whether the swing blade meets the fixed-point air supply coverage condition under the comfortable windward area. When it is determined that the swing blade meets the fixed-point air supply coverage condition, the control range information of the swing blade is matched according to the comfortable windward area.

[0034] When it is determined that the oscillating blade does not meet the fixed-point air supply coverage conditions, the dynamic air supply area range of the comfort air receiving area is analyzed based on the first airflow coverage area and the target demand information; and the control range information of the oscillating blade is matched based on the dynamic air supply area range.

[0035] A second aspect of the present invention discloses a louver control device for use in a smart air conditioner, the device comprising:

[0036] The determination module is used to determine the state range information of the swing blades in the target air conditioner;

[0037] The analysis module is used to analyze the first airflow coverage area of ​​the target air conditioner based on the state range information;

[0038] The matching module is used to match the control range information of the swing blades based on the first airflow coverage area and the target demand information corresponding to the target air conditioner.

[0039] The generation module is used to generate air supply control parameters for the target air conditioner based on the control range information. The air supply control parameters are used to control the target air conditioner to perform a comfortable air supply operation that matches the target demand information.

[0040] As an optional implementation, in a second aspect of the present invention, the state range information includes swing range information and layout range information, wherein the layout range information is used to represent the layout of the swing blades, and the specific method by which the analysis module analyzes the first airflow coverage area of ​​the target air conditioner based on the state range information includes:

[0041] Determine the air supply speed range information of the target air conditioner and the spatial layout information of the target space corresponding to the target air conditioner;

[0042] Based on the air supply speed range information and the state range information, analyze the second airflow coverage area of ​​the target air conditioner;

[0043] Based on the second airflow coverage area and the spatial layout information, the first airflow coverage area of ​​the target air conditioner is analyzed.

[0044] As an optional implementation, in the second aspect of the present invention, the air supply speed range information includes multiple speed information, and the specific method by which the analysis module analyzes the second airflow coverage area of ​​the target air conditioner based on the air supply speed range information and the state range information includes:

[0045] For each speed information, the third airflow coverage area of ​​the target air conditioner under that speed information is analyzed based on the speed information and the state range information.

[0046] Based on all the third airflow coverage areas, at least one dynamic speed matching set of the target air conditioner is generated. The dynamic speed matching set includes at least two speed information, and the dynamic switching control method of the speed information in different dynamic speed matching sets is different.

[0047] The second airflow coverage area of ​​the target air conditioner is analyzed based on all the aforementioned dynamic speed matching sets.

[0048] As an optional implementation, in the second aspect of the present invention, the swing range information includes multiple swing information, the swing information including swing angle information and swing frequency information, each swing information having a different swing angle information and / or a different swing frequency information. For each speed information, the analysis module analyzes the third airflow coverage area of ​​the target air conditioner under that speed information based on the speed information and the state range information in the following specific ways:

[0049] Based on the rotation speed information and the layout range information, calculate the fixed airflow coverage area of ​​the target air conditioner under the rotation speed information;

[0050] For each swing information, based on the swing information and the fixed airflow coverage area under the speed information, calculate the airflow area swing influence value of the swing information on the fixed airflow coverage area under the speed information. The airflow area swing influence value is used to represent the degree of influence of the swing information on the fixed airflow coverage area under the speed information. Based on the airflow area swing influence value and the fixed airflow coverage area under the speed information, analyze the fourth airflow coverage area of ​​the target air conditioner under the swing information and the speed information.

[0051] Based on all the fourth airflow coverage areas, the third airflow coverage area of ​​the target air conditioner under this speed information is analyzed.

[0052] As an optional implementation, in a second aspect of the present invention, for each piece of oscillation information, the specific method by which the analysis module calculates the influence value of the oscillation information on the airflow area oscillation of the fixed airflow coverage area under the fixed airflow coverage area under the fixed airflow coverage area under the rotational speed information includes:

[0053] Based on the fixed airflow coverage area under the swing information and the rotation speed information, airflow vortex oscillation effect information under the rotation speed information and the swing information is generated;

[0054] Based on the airflow vortex oscillation effect information and the fixed airflow coverage area under the rotational speed information, calculate the influence value of the oscillation information on the airflow area oscillation of the fixed airflow coverage area under the rotational speed information.

[0055] As an optional implementation, in the second aspect of the present invention, the spatial layout information includes at least one of spatial heat source distribution information, spatial object distribution information, spatial pattern information, spatial brightness information, and spatial material information. The specific method by which the analysis module analyzes the first airflow coverage area of ​​the target air conditioner based on the second airflow coverage area and the spatial layout information includes:

[0056] Analyze the first airflow effect information of the target air conditioner based on the second airflow coverage area;

[0057] Based on the first airflow effect information and the spatial layout information, analyze the second airflow effect information of the target air conditioner;

[0058] Based on the first airflow effect information and the second airflow effect information, the spatial influence value of the airflow effect of the target air conditioner is calculated, and the spatial influence value of the airflow effect is used to represent the degree of influence of the target space on the first airflow effect information;

[0059] Based on the spatial influence value of the airflow effect and the second airflow coverage area, the first airflow coverage area of ​​the target air conditioner is analyzed.

[0060] As an optional implementation, in a second aspect of the present invention, the specific method by which the matching module matches the control range information of the oscillating blades based on the first airflow coverage area and the determined target demand information corresponding to the target air conditioner includes:

[0061] Based on the target demand information corresponding to the identified target air conditioner, determine the comfort airflow area for the current scenario;

[0062] Based on the first airflow coverage area, it is determined whether the swing blade meets the fixed-point air supply coverage condition under the comfortable windward area. When it is determined that the swing blade meets the fixed-point air supply coverage condition, the control range information of the swing blade is matched according to the comfortable windward area.

[0063] When it is determined that the oscillating blade does not meet the fixed-point air supply coverage conditions, the dynamic air supply area range of the comfort air receiving area is analyzed based on the first airflow coverage area and the target demand information; and the control range information of the oscillating blade is matched based on the dynamic air supply area range.

[0064] A third aspect of the present invention discloses another louver control device for use in intelligent air conditioners, the device comprising:

[0065] Memory containing executable program code;

[0066] A processor coupled to the memory;

[0067] The processor calls the executable program code stored in the memory to execute the louver control method for smart air conditioners disclosed in the first aspect of the present invention.

[0068] The fourth aspect of the present invention discloses a computer storage medium storing computer instructions, which, when invoked, are used to execute the louver control method for intelligent air conditioners disclosed in the first aspect of the present invention.

[0069] Compared with the prior art, the embodiments of the present invention have the following beneficial effects:

[0070] In this embodiment of the invention, the state range information of the swing blades in the target air conditioner is determined; based on the state range information, the first airflow coverage area of ​​the target air conditioner is analyzed; based on the first airflow coverage area and the target demand information corresponding to the target air conditioner, the control range information of the swing blades is matched; based on the control range information, the air supply control parameters of the target air conditioner are generated, and the air supply control parameters are used to control the target air conditioner to perform a matching comfort air supply operation adapted to the target demand information. It can be seen that implementing this invention can analyze the current first airflow coverage area of ​​the target air conditioner based on the determined state range information of the swing blades in the target air conditioner, and by combining it with the determined target demand information corresponding to the target air conditioner, match the control range information of the swing blades adapted to the target demand information, thereby generating air supply control parameters for controlling the target air conditioner to perform a matching comfort air supply operation adapted to the target demand information. This can improve the control efficiency and convenience of the air conditioner swing blades, and further combine the actual state of the air conditioner swing blades and the target demand information to adapt the air supply control parameters adapted to the target demand information for performing a comfort air supply operation, improving the control accuracy of the air conditioner swing blades, which is beneficial for extending the service life of the air conditioner, protecting the health of users using the air conditioner, and achieving green and environmentally friendly energy use. Attached Figure Description

[0071] 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.

[0072] Figure 1 This is a schematic diagram of a scenario for louver control in a smart air conditioner, as disclosed in an embodiment of the present invention.

[0073] Figure 2 This is a flowchart illustrating a blade control method for an intelligent air conditioner disclosed in an embodiment of the present invention.

[0074] Figure 3 This is a flowchart illustrating another method for controlling the louvers of an intelligent air conditioner, as disclosed in an embodiment of the present invention.

[0075] Figure 4 This is a schematic diagram of the structure of a blade control device for use in a smart air conditioner, as disclosed in an embodiment of the present invention.

[0076] Figure 5 This is a schematic diagram of another louver control device for smart air conditioners disclosed in an embodiment of the present invention. Detailed Implementation

[0077] To enable those skilled in the art to better understand the present invention, the technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. 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.

[0078] 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.

[0079] 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.

[0080] This invention discloses a louver control method and device for intelligent air conditioners. Based on the determined state range information of the louvers in the target air conditioner, it analyzes the current first airflow coverage area of ​​the target air conditioner. By combining this with the determined target demand information corresponding to the target air conditioner, it matches the louver control range information to adapt to the target demand information, thereby generating air supply control parameters for controlling the target air conditioner to perform comfortable air supply operations adapted to the target demand information. This not only improves the efficiency of air conditioner louver control but also further combines the actual state of the louvers and the target demand information to adapt the air supply control parameters for performing comfortable air supply operations, improving the control accuracy of the air conditioner louvers. This helps extend the service life of the air conditioner, protects the user's health during air conditioner use, and promotes green and environmentally friendly energy use. Detailed descriptions follow.

[0081] To better understand the louver control method and device for smart air conditioners described in this invention, a scenario applicable to the louver control method for smart air conditioners is first described. Specifically, a schematic diagram of this scenario can be shown as follows: Figure 1 As shown, Figure 1As shown, the scenario includes a target space (e.g., a house) divided into three areas, a smart air conditioner, and a user / target. The target space includes a first space for the user (area B) and a second space associated with the first space (area A, area C). Optionally, the first and second spaces can represent different target scenarios. The user / target can perform different activities in the first and second spaces to present different target scenarios. Target scenarios can include at least one of the following: a user reading scenario, a user sleeping scenario, a user cooking scenario, a user exercising scenario, and a user washing scenario. Optionally, as... Figure 1 As shown, a smart air conditioner can determine the state range information of the swing blades in a target air conditioner; analyze the first airflow coverage area of ​​the target air conditioner based on the state range information; match the control range information of the swing blades based on the first airflow coverage area and the target demand information corresponding to the target air conditioner; and generate air supply control parameters for the target air conditioner based on the control range information. These air supply control parameters are used to control the target air conditioner to perform a matching comfort air supply operation adapted to the target demand information. The aforementioned target air conditioner is defined as follows: Figure 1 The smart air conditioner shown is not applicable in practice; in reality, it can be used in either the user's primary space or a secondary space. It should be noted that... Figure 1 The scene diagram shown is only intended to illustrate a scenario applicable to a louver control method used in smart air conditioners. The target space (such as a house), smart air conditioner, and user / target involved are also only for illustrative purposes. Figure 1 The scenario diagram shown is not intended to limit the scope of this discussion. The following is a detailed description of a louver control method and device applied to intelligent air conditioners.

[0082] Example 1

[0083] Please see Figure 2 , Figure 2 This is a flowchart illustrating a louver control method for an intelligent air conditioner, as disclosed in an embodiment of the present invention. Figure 2 The described louver control method for smart air conditioners can be applied to smart air conditioners, and also to smart devices related to smart air conditioners. These smart devices include, but are not limited to, one or more of cloud devices, edge computing devices, relay devices, base station devices, urban management devices, smart home devices, and smart connected devices. This invention does not limit the application of these methods. Figure 2 As shown, the louver control method applied to smart air conditioners may include the following operations:

[0084] 101. Determine the state range information of the swing blades in the target air conditioner;

[0085] In this embodiment of the invention, the aforementioned state range information is used to represent the state of the aforementioned pendulum blades, and is expressed in the form of a range.

[0086] Optionally, the target air conditioner can be identified by its air conditioner identifier or by its associated identifier, such as the space identifier, object identifier, or year identifier of the target air conditioner. Further, the identifier can be represented by one or more forms such as characters, voice, images, or codes.

[0087] Optionally, the aforementioned state range information can be determined by combining it with the aforementioned identifier. Optionally, it can also be obtained by user uploads. Optionally, it can also be obtained by sensing devices. The aforementioned sensing devices include, but are not limited to, radar, base stations, routers, mobile portable communication devices, wearable devices with communication functions, etc. Optionally, specifically, the aforementioned sensing devices can include wireless communication modules, such as Wi-Fi modules, to implement the aforementioned step 101 operation. Optionally, specifically, the aforementioned sensing devices can include voice sensing modules to realize voice interaction with users and recognize voice commands triggered by users. The aforementioned sensing devices can perceive the aforementioned state range information based on the communication sensing fusion frame structure.

[0088] 102. Based on the status range information, analyze the first airflow coverage area of ​​the target air conditioner;

[0089] In this embodiment of the invention, as an optional implementation, the aforementioned state range information includes swing range information and layout range information. The layout range information is used to represent the layout of the swing blades. Analyzing the first airflow coverage area of ​​the target air conditioner based on the state range information may include the following operations:

[0090] Determine the air supply speed range of the target air conditioner and the spatial layout information of the target space corresponding to the target air conditioner;

[0091] Based on the air supply speed range information and status range information, analyze the second airflow coverage area of ​​the target air conditioner;

[0092] Based on the second airflow coverage area and spatial layout information, analyze the first airflow coverage area of ​​the target air conditioner.

[0093] In this optional embodiment, the above-mentioned information on the air supply speed range of the target air conditioner and the spatial layout information of the target space corresponding to the target air conditioner can be referred to the supplementary explanation of the method for determining the state range information in step 101. This optional embodiment will not repeat the details.

[0094] It is evident that implementing this optional embodiment can analyze the second airflow coverage area of ​​the target air conditioner based on the determined air supply speed range information and the determined state range information, and analyze the first airflow coverage area of ​​the target air conditioner by combining the determined spatial layout information of the target space corresponding to the target air conditioner, thereby improving the accuracy of the first airflow coverage area of ​​the target air conditioner. This is beneficial to improving the control accuracy of the air conditioner louvers while improving the control efficiency of the air conditioner louvers.

[0095] In this optional embodiment, as an optional implementation, the aforementioned air supply speed range information includes multiple speed information. Analyzing the second airflow coverage area of ​​the target air conditioner based on the air supply speed range information and the state range information may include the following operations:

[0096] For each speed information, the third airflow coverage area of ​​the target air conditioner under that speed information is analyzed based on the speed information and the state range information.

[0097] Based on all third airflow coverage areas, at least one dynamic speed matching set for the target air conditioner is generated. The dynamic speed matching set includes at least two speed information, and the dynamic switching control method for speed information is different in different dynamic speed matching sets.

[0098] Based on all dynamic speed matching sets, analyze the second airflow coverage area of ​​the target air conditioner.

[0099] As can be seen, implementing this optional embodiment can, when analyzing the second airflow coverage area of ​​the target air conditioner based on the determined air supply speed range information and state range information, further analyze the third airflow coverage area of ​​the target air conditioner under each speed information included in the air supply speed range information, based on the speed information and the aforementioned state range information; then, based on all third airflow coverage areas, generate at least one dynamic speed matching set of the target air conditioner with different dynamic switching control methods. Specifically, the dynamic switching control methods of the speed information in different dynamic speed matching sets are different. Therefore, based on all dynamic speed matching sets, the analysis of the second airflow coverage area of ​​the target air conditioner can maximize the combination of the dynamic switching control methods of all speed information, analyze the widest airflow coverage area of ​​the target air conditioner without being affected by the spatial layout, improve the analysis accuracy of the second airflow coverage area, and further improve the analysis accuracy of the first airflow coverage area, and improve the control accuracy of the air conditioner louvers.

[0100] In this optional embodiment, as another optional implementation, the aforementioned swing range information includes multiple swing information, which includes swing angle information and swing frequency information. Each swing information corresponds to a different swing angle information and / or a different swing frequency information. For each speed information, based on the speed information and the state range information, analyzing the third airflow coverage area of ​​the target air conditioner under that speed information may include the following operations:

[0101] Based on the rotation speed information and layout range information, calculate the fixed airflow coverage area of ​​the target air conditioner under the given rotation speed information;

[0102] For each oscillation information, based on the oscillation information and the fixed airflow coverage area under the rotation speed information, calculate the airflow area oscillation influence value of the oscillation information on the fixed airflow coverage area under the rotation speed information. The airflow area oscillation influence value is used to represent the degree of influence of the oscillation information on the fixed airflow coverage area under the rotation speed information. Based on the airflow area oscillation influence value and the fixed airflow coverage area under the rotation speed information, analyze the fourth airflow coverage area of ​​the target air conditioner under the oscillation information and the rotation speed information.

[0103] Based on all the fourth airflow coverage areas, analyze the third airflow coverage area of ​​the target air conditioner under this speed information.

[0104] As can be seen, implementing this optional embodiment can, when analyzing the third airflow coverage area of ​​the target air conditioner under each rotation speed information and state range information, further combine the swing range information including each swing information (different swing angle information and / or swing frequency information correspond to different swing information), calculate the fixed airflow coverage area of ​​the target air conditioner under the rotation speed information based on the swing information and the rotation speed information, combined with the above-mentioned blade layout range information, calculate the airflow area swing influence value of the swing information on the fixed airflow coverage area under the rotation speed information, and then analyze the fourth airflow coverage area of ​​the target air conditioner under the swing information and the rotation speed information based on the airflow area swing influence value and the fixed airflow coverage area under the rotation speed information, and analyze the third airflow coverage area of ​​the target air conditioner under the rotation speed information based on all the fourth airflow coverage areas, further combining the degree of influence of the swing information on the fixed airflow coverage area under the rotation speed information, further improving the third airflow coverage area of ​​the target air conditioner under each rotation speed information, which is beneficial to improving the analysis accuracy of the second airflow coverage area, and further improving the analysis accuracy of the first airflow coverage area, which is beneficial to further improving the control accuracy of the air conditioner blades.

[0105] In this optional embodiment, as another optional implementation, the above-described calculation of the influence value of the oscillation information on the airflow area oscillation of the fixed airflow coverage area under ...

[0106] Based on the fixed airflow coverage area under the swing information and the rotation speed information, airflow vortex oscillation effect information under the rotation speed information and the swing information is generated;

[0107] Based on the airflow vortex oscillation effect information and the fixed airflow coverage area under the given rotational speed information, calculate the influence value of the oscillation information on the airflow area oscillation of the fixed airflow coverage area under the given rotational speed information.

[0108] As can be seen, implementing this optional embodiment can, when calculating the influence value of the oscillation information on the airflow area oscillation of the fixed airflow coverage area under ...

[0109] In an optional embodiment, the aforementioned spatial layout information includes at least one of spatial heat source distribution information, spatial object distribution information, spatial pattern information, spatial brightness information, and spatial material information. The analysis of the first airflow coverage area of ​​the target air conditioner based on the second airflow coverage area and the spatial layout information may include the following operations:

[0110] Analyze the first airflow effect information of the target air conditioner based on the second airflow coverage area;

[0111] Based on the first airflow effect information and spatial layout information, analyze the second airflow effect information of the target air conditioner;

[0112] Based on the first airflow effect information and the second airflow effect information, the spatial influence value of the airflow effect of the target air conditioner is calculated. The spatial influence value of the airflow effect is used to represent the degree of influence of the target space on the first airflow effect information.

[0113] Based on the spatial influence value of airflow effect and the second airflow coverage area, the first airflow coverage area of ​​the target air conditioner is analyzed.

[0114] As can be seen, implementing this optional embodiment can further analyze the first airflow effect information of the target air conditioner under the second airflow coverage area after analyzing the second airflow coverage area. Combining the spatial layout information including at least one of spatial heat source distribution information, spatial object distribution information, spatial pattern information, spatial brightness information, and spatial material information, the second airflow effect information of the target air conditioner under the influence of spatial layout is analyzed. Based on the first airflow effect information and the second airflow effect information, the spatial influence value of the airflow effect of the target air conditioner, which represents the degree of influence of the target space on the first airflow effect information, is calculated. Furthermore, the first airflow coverage area of ​​the target air conditioner is analyzed in combination with the second airflow coverage area to improve the accuracy and scientific nature of the analysis of the first airflow coverage area. This is beneficial to improving the matching accuracy of the control range of the oscillating blades to the target demand information, and to improving the control efficiency of the air conditioner oscillating blades while improving the control accuracy of the air conditioner oscillating blades.

[0115] 103. Based on the first airflow coverage area and the target demand information corresponding to the determined target air conditioner, match the control range information of the swing blades;

[0116] In this embodiment of the invention, optionally, the target air conditioner may include a wireless communication module, such as a Wi-Fi module. The wireless communication module is used to establish a wireless communication link between the target air conditioner and the aforementioned sensing device and / or other smart home devices. This wireless communication link can realize wireless interactive communication of routine information and control commands between the target air conditioner and the aforementioned sensing device and / or other smart home devices. For example, when a user connects to the wireless communication module using a portable device, they can send a command to the target air conditioner. The target air conditioner can parse the command through the wireless communication module, thereby triggering the execution of step 101 and / or the operation of determining the target demand information corresponding to the target air conditioner.

[0117] Optionally, the target air conditioner may further include a voice perception module, which is used to realize voice interaction between the target air conditioner and the user. For example, when the user sends a voice message, the target air conditioner can obtain and parse the user's voice message through the voice perception module, thereby triggering the execution of step 101 and / or the operation of determining the target demand information corresponding to the target air conditioner.

[0118] 104. Based on the control range information, generate the air supply control parameters for the target air conditioner. The air supply control parameters are used to control the target air conditioner to perform a matching comfort air supply operation adapted to the target demand information.

[0119] As can be seen, implementing the embodiments of the present invention can analyze the current first airflow coverage area of ​​the target air conditioner based on the determined state range information of the swing blades in the target air conditioner. By combining the determined target demand information corresponding to the target air conditioner, the control range information of the swing blades adapted to the target demand information is matched, thereby generating air supply control parameters for controlling the target air conditioner to perform a matching comfort air supply operation adapted to the target demand information. This can improve the control efficiency and convenience of the air conditioner swing blades, and further combine the actual state of the air conditioner swing blades and the target demand information to adapt the air supply control parameters for performing comfort air supply operation adapted to the target demand information, thereby improving the control accuracy of the air conditioner swing blades, which is conducive to extending the service life of the air conditioner, protecting the health of users using the air conditioner, and achieving green and environmentally friendly energy use.

[0120] Example 2

[0121] Please see Figure 3 , Figure 3 This is a flowchart illustrating another method for controlling the louvered blades of an intelligent air conditioner, as disclosed in an embodiment of the present invention. Figure 3 The described louver control method for smart air conditioners can be applied to smart air conditioners, and also to smart devices related to smart air conditioners. These smart devices include, but are not limited to, one or more of cloud devices, edge computing devices, relay devices, base station devices, urban management devices, smart home devices, and smart connected devices. This invention does not limit the application of these methods. Figure 3 As shown, the louver control method applied to smart air conditioners may include the following operations:

[0122] 201. Determine the state range information of the swing blades in the target air conditioner;

[0123] 202. Based on the status range information, analyze the first airflow coverage area of ​​the target air conditioner;

[0124] In this embodiment of the invention, for supplementary explanations of steps 201 and 202, please refer to the supplementary explanations of steps 101 and 102 in Embodiment 1. This embodiment of the invention will not repeat these explanations.

[0125] 203. Based on the target demand information corresponding to the identified target air conditioner, determine the comfort airflow area in the current scenario;

[0126] In this embodiment of the invention, optionally, the above-mentioned determination of target requirement information can also be adaptively adjusted in combination with the determination method for determining state range information in Embodiment 1, and this embodiment of the invention will not elaborate further.

[0127] 204. Based on the first airflow coverage area, determine whether the swing blades meet the fixed-point air supply coverage conditions under the comfort windward area. If it is determined that the swing blades meet the fixed-point air supply coverage conditions, then step 205 is triggered. If it is determined that the swing blades do not meet the fixed-point air supply coverage conditions, then step 206 is triggered.

[0128] 205. Based on the comfort windward area, match the control range information of the oscillating blades and trigger the execution of step 208;

[0129] 206. Based on the coverage area of ​​the first airflow and the target demand information, analyze the dynamic air supply area range of the comfort airflow area;

[0130] 207. Match the control range information of the louvers according to the dynamic air supply area range;

[0131] 208. Based on the control range information, generate the air supply control parameters for the target air conditioner. The air supply control parameters are used to control the target air conditioner to perform a matching comfort air supply operation adapted to the target demand information.

[0132] As can be seen, implementing the embodiments of the present invention can, after analyzing the state of the target air conditioner to determine the first airflow coverage area of ​​the target air conditioner, determine the comfortable airflow area of ​​the current scenario that meets the target demand information based on the determined target demand information. Based on the first airflow coverage area, it is determined whether the louvers meet the fixed-point air supply coverage conditions under the comfortable airflow area of ​​the current scenario that meets the target demand information. When the determination result is yes, the control range information of the louvers can be matched according to the comfortable airflow area, and then the air supply control parameters of the target air conditioner used to control the target air conditioner to perform a matching comfortable air supply operation adapted to the target demand information can be generated. When the determination result is no, the dynamic air supply area range that meets the above-mentioned comfortable airflow area can be analyzed based on the first airflow coverage area and the target demand information. Then, the control range information of the louvers can be matched according to the dynamic air supply area range, and then the air supply control parameters of the target air conditioner used to control the target air conditioner to perform a matching comfortable air supply operation adapted to the target demand information can be generated. This can improve the control efficiency and accuracy of the air conditioner louvers, and improve the flexibility, diversity, environmental adaptability and stability of the air conditioner louvers, which is conducive to improving the user's actual air conditioning experience.

[0133] Example 3

[0134] Please see Figure 4 , Figure 4This is a schematic diagram of a louver control device for a smart air conditioner, as disclosed in an embodiment of the present invention. This louver control device for smart air conditioners can be applied to smart air conditioners, and also to smart devices related to smart air conditioners. These smart devices include, but are not limited to, one or more of cloud devices, edge computing devices, relay devices, base station devices, urban management devices, smart home devices, and smart network devices; the present invention does not limit the application to these devices. Figure 4 As shown, the louver control device applied to a smart air conditioner may include:

[0135] The determination module 301 is used to determine the state range information of the swing blades in the target air conditioner;

[0136] Analysis module 302 is used to analyze the first airflow coverage area of ​​the target air conditioner based on the state range information;

[0137] Matching module 303 is used to match the control range information of the swing blades based on the first airflow coverage area and the target demand information corresponding to the determined target air conditioner;

[0138] The generation module 304 is used to generate air supply control parameters for the target air conditioner based on the control range information. The air supply control parameters are used to control the target air conditioner to perform a matching comfort air supply operation adapted to the target demand information.

[0139] As can be seen, implementing the embodiments of the present invention can analyze the current first airflow coverage area of ​​the target air conditioner based on the determined state range information of the swing blades in the target air conditioner. By combining the determined target demand information corresponding to the target air conditioner, the control range information of the swing blades adapted to the target demand information is matched, thereby generating air supply control parameters for controlling the target air conditioner to perform a matching comfort air supply operation adapted to the target demand information. This can improve the control efficiency of the air conditioner swing blades, and further combine the actual state of the air conditioner swing blades and the target demand information to adapt the air supply control parameters for performing comfort air supply operation adapted to the target demand information, thereby improving the control accuracy of the air conditioner swing blades, which is conducive to extending the service life of the air conditioner, protecting the health of users using the air conditioner, and achieving green and environmentally friendly energy use.

[0140] In this embodiment of the invention, as an optional implementation, the aforementioned state range information includes swing range information and layout range information. The layout range information is used to represent the layout of the swing blades. The specific method by which the analysis module 302 analyzes the first airflow coverage area of ​​the target air conditioner based on the state range information includes:

[0141] Determine the air supply speed range of the target air conditioner and the spatial layout information of the target space corresponding to the target air conditioner;

[0142] Based on the air supply speed range information and status range information, analyze the second airflow coverage area of ​​the target air conditioner;

[0143] Based on the second airflow coverage area and spatial layout information, analyze the first airflow coverage area of ​​the target air conditioner.

[0144] It is evident that implementing this optional embodiment can analyze the second airflow coverage area of ​​the target air conditioner based on the determined air supply speed range information and the determined state range information, and analyze the first airflow coverage area of ​​the target air conditioner by combining the determined spatial layout information of the target space corresponding to the target air conditioner, thereby improving the accuracy of the first airflow coverage area of ​​the target air conditioner. This is beneficial to improving the control accuracy of the air conditioner louvers while improving the control efficiency of the air conditioner louvers.

[0145] In this optional embodiment, as an optional implementation, the aforementioned air supply speed range information includes multiple speed information, and the analysis module 302 analyzes the specific method of the second airflow coverage area of ​​the target air conditioner based on the air supply speed range information and the state range information, including:

[0146] For each speed information, the third airflow coverage area of ​​the target air conditioner under that speed information is analyzed based on the speed information and the state range information.

[0147] Based on all third airflow coverage areas, at least one dynamic speed matching set for the target air conditioner is generated. The dynamic speed matching set includes at least two speed information, and the dynamic switching control method for speed information is different in different dynamic speed matching sets.

[0148] Based on all dynamic speed matching sets, analyze the second airflow coverage area of ​​the target air conditioner.

[0149] As can be seen, implementing this optional embodiment can, when analyzing the second airflow coverage area of ​​the target air conditioner based on the determined air supply speed range information and state range information, further analyze the third airflow coverage area of ​​the target air conditioner under each speed information included in the air supply speed range information, based on the speed information and the aforementioned state range information; then, based on all third airflow coverage areas, generate at least one dynamic speed matching set of the target air conditioner with different dynamic switching control methods. Specifically, the dynamic switching control methods of the speed information in different dynamic speed matching sets are different. Therefore, based on all dynamic speed matching sets, the analysis of the second airflow coverage area of ​​the target air conditioner can maximize the combination of the dynamic switching control methods of all speed information, analyze the widest airflow coverage area of ​​the target air conditioner without being affected by the spatial layout, improve the analysis accuracy of the second airflow coverage area, and further improve the analysis accuracy of the first airflow coverage area, and improve the control accuracy of the air conditioner louvers.

[0150] In this optional embodiment, as another optional implementation, the aforementioned swing range information includes multiple swing information, which includes swing angle information and swing frequency information. Each swing information corresponds to a different swing angle information and / or a different swing frequency information. For each speed information, the analysis module 302 analyzes the third airflow coverage area of ​​the target air conditioner under the speed information based on the speed information and the state range information in the following specific ways:

[0151] Based on the rotation speed information and layout range information, calculate the fixed airflow coverage area of ​​the target air conditioner under the given rotation speed information;

[0152] For each oscillation information, based on the oscillation information and the fixed airflow coverage area under the rotation speed information, calculate the airflow area oscillation influence value of the oscillation information on the fixed airflow coverage area under the rotation speed information. The airflow area oscillation influence value is used to represent the degree of influence of the oscillation information on the fixed airflow coverage area under the rotation speed information. Based on the airflow area oscillation influence value and the fixed airflow coverage area under the rotation speed information, analyze the fourth airflow coverage area of ​​the target air conditioner under the oscillation information and the rotation speed information.

[0153] Based on all the fourth airflow coverage areas, analyze the third airflow coverage area of ​​the target air conditioner under this speed information.

[0154] As can be seen, implementing this optional embodiment can, when analyzing the third airflow coverage area of ​​the target air conditioner under each rotation speed information and state range information, further combine the swing range information including each swing information (different swing angle information and / or swing frequency information correspond to different swing information), calculate the fixed airflow coverage area of ​​the target air conditioner under the rotation speed information based on the swing information and the rotation speed information, combined with the above-mentioned blade layout range information, calculate the airflow area swing influence value of the swing information on the fixed airflow coverage area under the rotation speed information, and then analyze the fourth airflow coverage area of ​​the target air conditioner under the swing information and the rotation speed information based on the airflow area swing influence value and the fixed airflow coverage area under the rotation speed information, and analyze the third airflow coverage area of ​​the target air conditioner under the rotation speed information based on all the fourth airflow coverage areas, further combining the degree of influence of the swing information on the fixed airflow coverage area under the rotation speed information, further improving the third airflow coverage area of ​​the target air conditioner under each rotation speed information, which is beneficial to improving the analysis accuracy of the second airflow coverage area, and further improving the analysis accuracy of the first airflow coverage area, which is beneficial to further improving the control accuracy of the air conditioner blades.

[0155] In this optional embodiment, as another optional implementation, for each oscillation information, the analysis module 302 calculates the influence value of the oscillation information on the airflow area oscillation of the fixed airflow coverage area under the fixed airflow coverage area under the rotation speed information in the following specific ways:

[0156] Based on the fixed airflow coverage area under the swing information and the rotation speed information, airflow vortex oscillation effect information under the rotation speed information and the swing information is generated;

[0157] Based on the airflow vortex oscillation effect information and the fixed airflow coverage area under the given rotational speed information, calculate the influence value of the oscillation information on the airflow area oscillation of the fixed airflow coverage area under the given rotational speed information.

[0158] As can be seen, implementing this optional embodiment can, when calculating the influence value of the oscillation information on the airflow area oscillation of the fixed airflow coverage area under ...

[0159] In an optional embodiment, the aforementioned spatial layout information includes at least one of spatial heat source distribution information, spatial object distribution information, spatial pattern information, spatial brightness information, and spatial material information. The specific method by which the analysis module 302 analyzes the first airflow coverage area of ​​the target air conditioner based on the second airflow coverage area and the spatial layout information includes:

[0160] Analyze the first airflow effect information of the target air conditioner based on the second airflow coverage area;

[0161] Based on the first airflow effect information and spatial layout information, analyze the second airflow effect information of the target air conditioner;

[0162] Based on the first airflow effect information and the second airflow effect information, the spatial influence value of the airflow effect of the target air conditioner is calculated. The spatial influence value of the airflow effect is used to represent the degree of influence of the target space on the first airflow effect information.

[0163] Based on the spatial influence value of airflow effect and the second airflow coverage area, the first airflow coverage area of ​​the target air conditioner is analyzed.

[0164] As can be seen, implementing this optional embodiment can further analyze the first airflow effect information of the target air conditioner under the second airflow coverage area after analyzing the second airflow coverage area. Combining the spatial layout information including at least one of spatial heat source distribution information, spatial object distribution information, spatial pattern information, spatial brightness information, and spatial material information, the second airflow effect information of the target air conditioner under the influence of spatial layout is analyzed. Based on the first airflow effect information and the second airflow effect information, the spatial influence value of the airflow effect of the target air conditioner, which represents the degree of influence of the target space on the first airflow effect information, is calculated. Furthermore, the first airflow coverage area of ​​the target air conditioner is analyzed in combination with the second airflow coverage area to improve the accuracy and scientific nature of the analysis of the first airflow coverage area. This is beneficial to improving the matching accuracy of the control range of the oscillating blades to the target demand information, and to improving the control efficiency of the air conditioner oscillating blades while improving the control accuracy of the air conditioner oscillating blades.

[0165] In another optional embodiment, the matching module 303 matches the control range information of the swing blades based on the first airflow coverage area and the target demand information corresponding to the determined target air conditioner in the following specific ways:

[0166] Based on the target demand information corresponding to the identified target air conditioner, determine the comfort airflow area for the current scenario;

[0167] Based on the first airflow coverage area, determine whether the swing blades meet the fixed-point air supply coverage conditions under the comfort airflow area. When it is determined that the swing blades meet the fixed-point air supply coverage conditions, then match the control range information of the swing blades according to the comfort airflow area.

[0168] When it is determined that the oscillating blades do not meet the fixed-point air supply coverage conditions, the dynamic air supply area range of the comfort air receiving area is analyzed based on the first airflow coverage area and target demand information; and the control range information of the oscillating blades is matched based on the dynamic air supply area range.

[0169] As can be seen, implementing the embodiments of the present invention can, after analyzing the state of the target air conditioner to determine the first airflow coverage area of ​​the target air conditioner, determine the comfortable airflow area of ​​the current scenario that meets the target demand information based on the determined target demand information. Based on the first airflow coverage area, it is determined whether the louvers meet the fixed-point air supply coverage conditions under the comfortable airflow area of ​​the current scenario that meets the target demand information. When the determination result is yes, the control range information of the louvers can be matched according to the comfortable airflow area, and then the air supply control parameters of the target air conditioner used to control the target air conditioner to perform a matching comfortable air supply operation adapted to the target demand information can be generated. When the determination result is no, the dynamic air supply area range that meets the above-mentioned comfortable airflow area can be analyzed based on the first airflow coverage area and the target demand information. Then, the control range information of the louvers can be matched according to the dynamic air supply area range, and then the air supply control parameters of the target air conditioner used to control the target air conditioner to perform a matching comfortable air supply operation adapted to the target demand information can be generated. This can improve the control efficiency and accuracy of the air conditioner louvers, and improve the flexibility, diversity, environmental adaptability and stability of the air conditioner louvers, which is conducive to improving the user's actual air conditioning experience.

[0170] Example 4

[0171] Please see Figure 5 , Figure 5 This is a schematic diagram of another louver control device for a smart air conditioner disclosed in an embodiment of the present invention. This louver control device for a smart air conditioner can be applied to a smart air conditioner, and also to smart devices related to smart air conditioners. These smart devices include, but are not limited to, one or more of cloud devices, edge computing devices, relay devices, base station devices, urban management devices, smart home devices, and smart network devices; the embodiments of the present invention do not limit the application to these devices. Figure 5 As shown, the louver control device applied to a smart air conditioner may include:

[0172] Memory 401 that stores executable program code.

[0173] Processor 402 coupled to memory 401.

[0174] The processor 402 calls the executable program code stored in the memory 401 to execute the steps in the louver control method for intelligent air conditioners described in Embodiment 1 or Embodiment 2 of the present invention.

[0175] Example 5

[0176] 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 louver control method for intelligent air conditioners described in Embodiment 1 or Embodiment 2 of this invention.

[0177] Example 6

[0178] This invention discloses a computer program product, which includes a non-transitory computer storage medium storing a computer program, and the computer program is operable to cause a computer to perform the steps in the louver control method for an intelligent air conditioner described in Embodiment 1 or Embodiment 2.

[0179] 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.

[0180] 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.

[0181] Finally, it should be noted that the louver control method and device for intelligent air conditioners 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. A method for controlling the louvered blades in an intelligent air conditioner, characterized in that, The method includes: Determine the state range information of the swing blades in the target air conditioner. The state range information includes swing range information and layout range information. The layout range information is used to represent the layout of the swing blades. Determine the air supply speed range information of the target air conditioner and the spatial layout information of the target space corresponding to the target air conditioner; Based on the air supply speed range information and the state range information, analyze the second airflow coverage area of ​​the target air conditioner; Based on the second airflow coverage area and the spatial layout information, analyze the first airflow coverage area of ​​the target air conditioner; Based on the first airflow coverage area and the target demand information corresponding to the target air conditioner, the control range information of the swing blades is matched; Based on the control range information, air supply control parameters for the target air conditioner are generated. These air supply control parameters are used to control the target air conditioner to perform a matching comfort air supply operation adapted to the target demand information.

2. The louver control method for intelligent air conditioners according to claim 1, characterized in that, The air supply speed range information includes multiple speed information. The step of analyzing the second airflow coverage area of ​​the target air conditioner based on the air supply speed range information and the state range information includes: For each speed information, the third airflow coverage area of ​​the target air conditioner under that speed information is analyzed based on the speed information and the state range information. Based on all the third airflow coverage areas, at least one dynamic speed matching set of the target air conditioner is generated. The dynamic speed matching set includes at least two speed information, and the dynamic switching control method of the speed information in different dynamic speed matching sets is different. The second airflow coverage area of ​​the target air conditioner is analyzed based on all the aforementioned dynamic speed matching sets.

3. The louver control method for intelligent air conditioners according to claim 2, characterized in that, The swing range information includes multiple swing information, which includes swing angle information and swing frequency information. Each swing information corresponds to a different swing angle and / or different swing frequency information. For each speed information, the step of analyzing the third airflow coverage area of ​​the target air conditioner under that speed information, based on the speed information and the state range information, includes: Based on the rotation speed information and the layout range information, calculate the fixed airflow coverage area of ​​the target air conditioner under the rotation speed information; For each swing information, based on the swing information and the fixed airflow coverage area under the speed information, calculate the airflow area swing influence value of the swing information on the fixed airflow coverage area under the speed information. The airflow area swing influence value is used to represent the degree of influence of the swing information on the fixed airflow coverage area under the speed information. Based on the airflow area swing influence value and the fixed airflow coverage area under the speed information, analyze the fourth airflow coverage area of ​​the target air conditioner under the swing information and the speed information. Based on all the fourth airflow coverage areas, the third airflow coverage area of ​​the target air conditioner under this speed information is analyzed.

4. The louver control method for intelligent air conditioners according to claim 3, characterized in that, For each oscillation information, the step of calculating the influence value of the oscillation information on the airflow area oscillation of the fixed airflow coverage area under the fixed airflow coverage area under the fixed airflow coverage area under the rotational speed information, based on the oscillation information and the rotational speed information, includes: Based on the fixed airflow coverage area under the swing information and the rotation speed information, airflow vortex oscillation effect information under the rotation speed information and the swing information is generated; Based on the airflow vortex oscillation effect information and the fixed airflow coverage area under the rotational speed information, calculate the influence value of the oscillation information on the airflow area oscillation of the fixed airflow coverage area under the rotational speed information.

5. The louver control method for intelligent air conditioners according to claim 1, characterized in that, The spatial layout information includes at least one of spatial heat source distribution information, spatial object distribution information, spatial pattern information, spatial brightness information, and spatial material information. The step of analyzing the first airflow coverage area of ​​the target air conditioner based on the second airflow coverage area and the spatial layout information includes: Analyze the first airflow effect information of the target air conditioner based on the second airflow coverage area; Based on the first airflow effect information and the spatial layout information, analyze the second airflow effect information of the target air conditioner; Based on the first airflow effect information and the second airflow effect information, the spatial influence value of the airflow effect of the target air conditioner is calculated, and the spatial influence value of the airflow effect is used to represent the degree of influence of the target space on the first airflow effect information; Based on the spatial influence value of the airflow effect and the second airflow coverage area, the first airflow coverage area of ​​the target air conditioner is analyzed.

6. The louver control method for intelligent air conditioners according to any one of claims 1-5, characterized in that, The step of matching the control range information of the oscillating blades based on the first airflow coverage area and the determined target demand information corresponding to the target air conditioner includes: Based on the target demand information corresponding to the identified target air conditioner, determine the comfort airflow area for the current scenario; Based on the first airflow coverage area, it is determined whether the swing blade meets the fixed-point air supply coverage condition under the comfortable windward area. When it is determined that the swing blade meets the fixed-point air supply coverage condition, the control range information of the swing blade is matched according to the comfortable windward area. When it is determined that the oscillating blade does not meet the fixed-point air supply coverage conditions, the dynamic air supply area range of the comfort air receiving area is analyzed based on the first airflow coverage area and the target demand information; and the control range information of the oscillating blade is matched based on the dynamic air supply area range.

7. A blade control device for use in intelligent air conditioners, characterized in that, The device is used to perform the louver control method for a smart air conditioner as described in any one of claims 1-6, and the device comprises: The determination module is used to determine the state range information of the swing blades in the target air conditioner; The analysis module is used to analyze the first airflow coverage area of ​​the target air conditioner based on the state range information; The matching module is used to match the control range information of the swing blades based on the first airflow coverage area and the target demand information corresponding to the target air conditioner. The generation module is used to generate air supply control parameters for the target air conditioner based on the control range information. The air supply control parameters are used to control the target air conditioner to perform a comfortable air supply operation that matches the target demand information.

8. A blade control device for use in intelligent air conditioners, 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 louver control method for smart air conditioners as described in any one of claims 1-6.

9. A computer storage medium, characterized in that, The computer storage medium stores computer instructions, which, when invoked, are used to execute the louver control method for intelligent air conditioners as described in any one of claims 1-6.