Jet control method and device applied to intelligent air conditioning

By distinguishing the properties of the wind-receiving area and the comfort requirements, the intelligent air conditioner determines the air supply speed plan, solving the problems of inflexible and low-precision air supply control in existing technologies, and achieving higher air supply control accuracy and user comfort.

CN119063224BActive Publication Date: 2025-10-03FOSHAN VIOMI ELECTRICAL TECH
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Patent Information

Application Number
CN202411443113.9
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-10-15
Publication Date
2025-10-03
Estimated Expiration
2044-10-15

AI Technical Summary

Technical Problem

Existing smart air conditioners have problems with low flexibility and low control accuracy in air supply control, and cannot meet user needs in different usage scenarios.

Method used

By determining the wind-receiving object information of the scene where the target air conditioner is located, distinguishing the nature of the wind-receiving area as the area near the tail end of the airflow or the gathering area, determining the air supply speed type according to the comfort requirements, and controlling the air supply speed plan to match the wind-receiving area properties and object information, flexible air supply control is achieved.

Benefits of technology

It improves the accuracy of determining the air supply speed plan, optimizes the indoor air flow distribution, avoids air flow impacting people or objects, and improves the overall comfort of users and the accuracy of air supply control.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention discloses a jet control method and device for an intelligent air conditioner. The method comprises: determining the properties of the wind receiving area corresponding to the target air conditioner based on the wind receiving object information of the current scene in which the target air conditioner is located, the wind receiving area properties including the properties of the near area at the tail end of the air flow or the properties of the collection area at the tail end of the air flow; determining the comfort requirement properties of the target air conditioner for the current scene based on the wind receiving area properties, the comfort requirement properties including the fixed point comfort properties and / or the range comfort properties; determining the air supply speed type of the target air conditioner for the current scene based on the comfort requirement properties, the air supply speed type including the fixed speed type or the dynamic speed type; determining the air supply speed scheme of the target air conditioner based on the wind receiving object information, the air supply speed type, and the wind receiving area properties, and controlling the target air conditioner to execute an air supply control operation that matches the air supply speed scheme. It can be seen that the implementation of the present invention can improve the control accuracy and applicability of the air conditioner jet.
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Description

Technical Field

[0001] The present invention relates to the technical field of intelligent air-conditioning control, and in particular to a jet control method and device applied to an intelligent air-conditioning. Background Art

[0002] With technological advancements and improvements in people's quality of life, smart home appliances, especially smart air conditioners, have become an indispensable part of modern homes. Traditional air conditioners primarily meet users' cooling or heating needs through simple temperature adjustments. However, in actual use, users have higher requirements for air conditioning airflow comfort, accuracy, and energy efficiency. This is especially true in different usage scenarios (such as living rooms, bedrooms, offices, and conference rooms), where user requirements for airflow vary due to differences in spatial layout, occupancy, and activity patterns.

[0003] While smart air conditioners currently on the market offer intelligent features like temperature and humidity control, they still have numerous shortcomings in airflow control. For example, many air conditioners are limited to fixed, pre-set control routines, preventing them from implementing more dynamic and flexible airflow strategies, significantly diminishing the user experience. Therefore, providing a solution to the technical challenges of limited control flexibility and precision inherent in existing smart air conditioners is crucial. Summary of the Invention

[0004] The present invention provides a jet control method and device for an intelligent air conditioner, which can help improve the control flexibility of the intelligent air conditioner and its adaptability to user needs.

[0005] In order to solve the above technical problems, the first aspect of the present invention discloses a jet control method applied to an intelligent air conditioner, the method comprising:

[0006] Determining properties of a wind receiving area corresponding to the target air conditioner based on the determined wind receiving object information of the current scene in which the target air conditioner is located, wherein the properties of the wind receiving area include properties of an area near the tail end of the air flow or properties of an area gathering at the tail end of the air flow;

[0007] determining, based on the properties of the wind-exposed area, the required comfort properties of the target air conditioner for the current scene, the required comfort properties including fixed-point comfort properties and / or range comfort properties;

[0008] determining, according to the comfort requirement properties, an air supply speed type of the target air conditioner for the current scene, the air supply speed type including a fixed speed type or a dynamic speed type;

[0009] According to the wind receiving object information, the air supply speed type and the nature of the wind receiving area, the air supply speed scheme of the target air conditioner is determined, and the target air conditioner is controlled to perform an air supply control operation matching the air supply speed scheme; the air supply speed scheme includes the air supply speed and the air supply area.

[0010] As an optional implementation manner, in the first aspect of the present invention, the wind-affected object information at least includes first position information of the wind-affected object in the current scene;

[0011] The determining, based on the determined wind-receiving object information of the current scene in which the target air conditioner is located, properties of the wind-receiving area corresponding to the target air conditioner includes:

[0012] Obtaining second position information corresponding to the target air conditioner in the scene;

[0013] performing information conversion on the first position information and the second position information according to the three-dimensional coordinate system corresponding to the current scene to obtain the three-dimensional coordinates of the wind-affected object corresponding to the first position information and the three-dimensional coordinates of the air conditioner corresponding to the second position information;

[0014] Calculating multiple target distances corresponding to the three-dimensional coordinates of the wind-affected object and the three-dimensional coordinates of the air conditioner according to a preset distance calculation formula;

[0015] For each target distance, determining a numerical value corresponding to the target distance according to a preset reference interval corresponding to the target distance, wherein the preset reference interval corresponding to each target distance includes a first interval level and a second interval level; the numerical value corresponding to the target distance is used to indicate whether the target distance belongs to the corresponding first interval level or the second interval level;

[0016] When all the numerical values ​​satisfy the set first division condition, determining that the windward area property of the target air conditioner is the airflow tail end near area property;

[0017] When all the numerical attributes satisfy the set second division condition, it is determined that the windward area property of the target air conditioner is the airflow tail end collection area property.

[0018] As an optional embodiment, in the first aspect of the present invention, calculating the multiple target distances corresponding to the three-dimensional coordinates of the wind-affected object and the three-dimensional coordinates of the air conditioner according to a preset distance calculation formula includes:

[0019] Based on a plurality of preset calculation parameters and in combination with a two-point distance calculation formula, the coordinate difference between the three-dimensional coordinates of the air conditioner and the three-dimensional coordinates of the wind-receiving object and each of the preset calculation parameters is calculated and recorded as the target distance; the plurality of preset calculation parameters include a combination of axis coordinates corresponding to at least two axes of the x-axis, the y-axis, and the z-axis;

[0020] Furthermore, all the numerical values ​​satisfy the first division condition:

[0021] The number of the target distances whose corresponding values ​​belong to the first interval level among all the target distances is greater than or equal to a first number;

[0022] All the numerical values ​​belonging to the second division condition are specifically:

[0023] The number of the target distances among all the target distances whose corresponding numerical values ​​belong to the second interval level is greater than or equal to a second number.

[0024] As an optional embodiment, in the first aspect of the present invention, it is characterized in that each of the wind-exposed area properties has at least one comfort requirement property bound thereto, the airflow tail end near area property is bound to the fixed-point comfort property; the airflow tail end collection area property is bound to the range comfort property;

[0025] The step of determining the comfort requirement properties of the target air conditioner for the current scene according to the properties of the wind-exposed area includes:

[0026] Determine basic comfort requirement properties bound to the wind receiving area properties and their corresponding basic air supply areas;

[0027] Acquire stagnation information of the wind-affected object in the current scene in real time, the stagnation information including at least one stagnation node of the wind-affected object in the current scene;

[0028] It is determined whether there is a target stagnation node that meets a preset property change condition among all the stagnation nodes. When it is determined that there is no target stagnation node that meets the preset property change condition among all the stagnation nodes, the basic comfort requirement property is determined to be the comfort requirement property of the target air conditioner for the current scenario.

[0029] As an optional embodiment, in the first aspect of the present invention, each of the comfort requirement properties has a matching air supply range;

[0030] When it is determined that there is a target stalled node that meets the preset property change condition among all the stalled nodes, the method further includes:

[0031] Determine the node air supply range corresponding to the target stagnant node according to the node position of the target stagnant node;

[0032] Determining target comfort requirement properties that match the air supply range of the node;

[0033] determining the target comfort requirement property and the basic comfort requirement property as the comfort requirement property of the target air conditioner for the current scene;

[0034] The target stagnant nodes that meet the preset property change conditions are specifically:

[0035] Among all the stagnation nodes, there is a stagnation node whose node position is outside the basic air supply area, and the stagnation time of the wind-receiving object in the stagnation node is greater than the preset timing time.

[0036] As an optional embodiment, in the first aspect of the present invention, determining the air supply speed scheme of the target air conditioner based on the wind receiving object information, the air supply speed type, and the nature of the wind receiving area includes:

[0037] determining, based on the wind-affected object information, offset information of the wind-affected object relative to the target air conditioner, the offset information including a first offset term indicating whether the wind-affected object is offset to the left or right of the target air conditioner, and a second offset term indicating whether the wind-affected object is offset to the near or far side of the target air conditioner;

[0038] The offset information is used as the first combination information, and the air supply speed type and the comfort requirement property are used as the second combination information. Information permutation and combination are performed to obtain the corresponding information permutation and combination result as the air supply speed solution of the target air conditioner.

[0039] As an optional embodiment, in the first aspect of the present invention, when the comfort requirement property includes the fixed-point comfort property, the air supply speed type includes the fixed speed type; and the information permutation and combination result includes a fixed speed at a fixed point to the left or a fixed speed at a fixed point to the right:

[0040] When the comfort requirement property includes the range comfort property, the air supply speed type includes the dynamic speed type; and the information arrangement and combination result includes the dynamic speed of a close range or the dynamic speed of a far range.

[0041] A second aspect of the present invention discloses a jet control device for an intelligent air conditioner, the device comprising:

[0042] A first determination module is configured to determine properties of a wind receiving area corresponding to the target air conditioner based on the determined wind receiving object information of the current scene in which the target air conditioner is located, wherein the properties of the wind receiving area include properties of an airflow tail end near area or properties of an airflow tail end collection area;

[0043] A second determining module is configured to determine, based on the properties of the wind-exposed area, the comfort requirement properties of the target air conditioner for the current scene, where the comfort requirement properties include fixed-point comfort properties and / or range comfort properties;

[0044] a third determining module, configured to determine, based on the comfort requirement, an air supply speed type of the target air conditioner for the current scene, the air supply speed type including a fixed speed type or a dynamic speed type;

[0045] The fourth determination module is used to determine the air supply speed scheme of the target air conditioner based on the wind-receiving object information, the air supply speed type and the nature of the wind-receiving area, and control the target air conditioner to perform an air supply control operation that matches the air supply speed scheme; the air supply speed scheme includes the air supply speed and the air supply area.

[0046] As an optional implementation manner, in the second aspect of the present invention, the wind-affected object information at least includes first position information of the wind-affected object in the current scene;

[0047] The first determining module determines the nature of the wind-receiving area corresponding to the target air conditioner according to the determined wind-receiving object information of the current scene in which the target air conditioner is located, specifically including:

[0048] Obtaining second position information corresponding to the target air conditioner in the scene;

[0049] performing information conversion on the first position information and the second position information according to the three-dimensional coordinate system corresponding to the current scene to obtain the three-dimensional coordinates of the wind-affected object corresponding to the first position information and the three-dimensional coordinates of the air conditioner corresponding to the second position information;

[0050] Calculating multiple target distances corresponding to the three-dimensional coordinates of the wind-affected object and the three-dimensional coordinates of the air conditioner according to a preset distance calculation formula;

[0051] For each target distance, determining a numerical value corresponding to the target distance according to a preset reference interval corresponding to the target distance, wherein the preset reference interval corresponding to each target distance includes a first interval level and a second interval level; the numerical value corresponding to the target distance is used to indicate whether the target distance belongs to the corresponding first interval level or the second interval level;

[0052] When all the numerical values ​​satisfy the set first division condition, determining that the windward area property of the target air conditioner is the airflow tail near area property;

[0053] When all the numerical attributes satisfy the set second division condition, it is determined that the windward area property of the target air conditioner is the airflow tail end collection area property.

[0054] As an optional embodiment, in the second aspect of the present invention, the first determination module calculates the multiple target distances corresponding to the three-dimensional coordinates of the wind-affected object and the three-dimensional coordinates of the air conditioner according to a preset distance calculation formula, specifically including:

[0055] Based on a plurality of preset calculation parameters and in combination with a two-point distance calculation formula, the coordinate difference between the three-dimensional coordinates of the air conditioner and the three-dimensional coordinates of the wind-receiving object and each of the preset calculation parameters is calculated and recorded as the target distance; the plurality of preset calculation parameters include a combination of axis coordinates corresponding to at least two axes of the x-axis, the y-axis, and the z-axis;

[0056] Furthermore, all the numerical values ​​satisfy the first division condition:

[0057] The number of the target distances whose corresponding values ​​belong to the first interval level among all the target distances is greater than or equal to a first number;

[0058] All the numerical values ​​belonging to the second division condition are specifically:

[0059] The number of the target distances among all the target distances whose corresponding numerical values ​​belong to the second interval level is greater than or equal to a second number.

[0060] As an optional embodiment, in the second aspect of the present invention, each of the wind-exposed area properties has at least one comfort requirement property bound thereto, the airflow tail end near area property is bound to a fixed-point comfort property; the airflow tail end collection area property is bound to a range comfort property;

[0061] The second determining module determines the comfort requirement properties of the target air conditioner for the current scene according to the properties of the wind-exposed area in a manner specifically including:

[0062] Determine basic comfort requirement properties bound to the wind receiving area properties and their corresponding basic air supply areas;

[0063] Acquire stagnation information of the wind-affected object in the current scene in real time, the stagnation information including at least one stagnation node of the wind-affected object in the current scene;

[0064] It is determined whether there is a target stagnation node that meets a preset property change condition among all the stagnation nodes. When it is determined that there is no target stagnation node that meets the preset property change condition among all the stagnation nodes, the basic comfort requirement property is determined to be the comfort requirement property of the target air conditioner for the current scenario.

[0065] As an optional embodiment, in the second aspect of the present invention, each of the comfort requirement properties has a matching air supply range;

[0066] The second determining module determines the comfort requirement properties of the target air conditioner for the current scene according to the properties of the wind-exposed area, and specifically includes:

[0067] When it is determined that there is a target stagnant node that meets the preset property change condition among all the stagnant nodes, determining the node air supply range corresponding to the target stagnant node according to the node position of the target stagnant node;

[0068] Determining target comfort requirement properties that match the air supply range of the node;

[0069] determining the target comfort requirement property and the basic comfort requirement property as the comfort requirement property of the target air conditioner for the current scene;

[0070] The target stagnant nodes that meet the preset property change conditions are specifically:

[0071] Among all the stagnation nodes, there is a stagnation node whose node position is outside the basic air supply area, and the stagnation time of the wind-receiving object in the stagnation node is greater than the preset timing time.

[0072] As an optional embodiment, in the second aspect of the present invention, the fourth determination module determines the air supply speed scheme of the target air conditioner based on the wind receiving object information, the air supply speed type, and the nature of the wind receiving area, specifically including:

[0073] determining, based on the wind-affected object information, offset information of the wind-affected object relative to the target air conditioner, the offset information including a first offset term indicating whether the wind-affected object is offset to the left or right of the target air conditioner, and a second offset term indicating whether the wind-affected object is offset to the near or far side of the target air conditioner;

[0074] The offset information is used as the first combination information, and the air supply speed type and the comfort requirement property are used as the second combination information. Information permutation and combination are performed to obtain the corresponding information permutation and combination result as the air supply speed solution of the target air conditioner.

[0075] As an optional embodiment, in the second aspect of the present invention, when the comfort requirement property includes the fixed-point comfort property, the air supply speed type includes the fixed speed type; and the information arrangement and combination result includes a fixed speed at a fixed point to the left or a fixed speed at a fixed point to the right:

[0076] When the comfort requirement property includes the range comfort property, the air supply speed type includes the dynamic speed type; and the information arrangement and combination result includes the dynamic speed of a close range or the dynamic speed of a far range.

[0077] A third aspect of the present invention discloses another jet control device for use in an intelligent air conditioner, the device comprising:

[0078] a memory storing executable program code;

[0079] a processor coupled to the memory;

[0080] The processor calls the executable program code stored in the memory to execute the jet control method applied to the intelligent air conditioner disclosed in the first aspect of the present invention.

[0081] A fourth aspect of the present invention discloses a computer storage medium, which stores computer instructions. When the computer instructions are called, they are used to execute the jet control method for intelligent air conditioning disclosed in the first aspect of the present invention.

[0082] Compared with the prior art, the embodiments of the present invention have the following beneficial effects:

[0083] In an embodiment of the present invention, a jet control method for an intelligent air conditioner is provided, the method comprising: determining properties of a wind receiving area corresponding to the target air conditioner based on information of a wind receiving object in a current scene in which the target air conditioner is located, the properties of the wind receiving area including properties of a near-end area of ​​the air flow tail or properties of a collection area of ​​the air flow tail; determining comfort requirement properties of the target air conditioner for the current scene based on the properties of the wind receiving area, the comfort requirement properties including fixed-point comfort properties and / or range comfort properties; determining an air supply speed type of the target air conditioner for the current scene based on the comfort requirement properties, the air supply speed type including a fixed speed type or a dynamic speed type; determining an air supply speed scheme of the target air conditioner based on the wind receiving object information, the air supply speed type and the properties of the wind receiving area, and controlling the target air conditioner to perform an air supply control operation matching the air supply speed scheme; the air supply speed scheme includes an air supply speed and an air supply area. It can be seen that the implementation of the present invention can, based on the determined information of the wind-receiving object, determine in sequence the properties of the wind-receiving area, the properties of the comfort requirements, and the type of air supply speed for the target air conditioner, and finally determine the air supply speed scheme for the target air conditioner based on the multiple parameters / information, thereby improving the accuracy of determining the air supply speed scheme; among them, by distinguishing the properties of the near-end area and the collection area of ​​the air flow, the subsequently executed air supply speed scheme can plan the air supply area more scientifically, avoiding the discomfort caused by the direct impact of the air flow on the human body or objects, and at the same time optimizing the distribution of the indoor airflow to make the indoor temperature more uniform, which is conducive to improving the accuracy of indoor airflow control when adopting the air supply speed scheme, and improving the overall comfort of the user in the current scene. BRIEF DESCRIPTION OF THE DRAWINGS

[0084] In order to more clearly illustrate the technical solutions in the embodiments of the present invention, the following briefly introduces the drawings required for use in the description of the embodiments. Obviously, the drawings described below are only some embodiments of the present invention. For ordinary technicians in this field, other drawings can be obtained based on these drawings without creative work.

[0085] Figure 1 This is a schematic diagram of a scenario in which a jet control method applied to an intelligent air conditioner disclosed in an embodiment of the present invention is applicable;

[0086] Figure 2 This is a flow chart of a jet control method applied to an intelligent air conditioner disclosed in an embodiment of the present invention;

[0087] Figure 3 This is a flow chart of another jet control method applied to an intelligent air conditioner disclosed in an embodiment of the present invention;

[0088] Figure 4 This is a schematic structural diagram of a jet control device for intelligent air conditioning disclosed in an embodiment of the present invention;

[0089] Figure 5 1 is a schematic structural diagram of another jet control device for intelligent air conditioning disclosed in an embodiment of the present invention;

[0090] Figure 6 It is a schematic diagram of the temperature control range corresponding to different comfort requirements disclosed in the embodiment of the present invention. DETAILED DESCRIPTION

[0091] In order to enable those skilled in the art to better understand the solutions of the present invention, the technical solutions in the embodiments of the present invention will be clearly and completely described below in conjunction with the accompanying drawings of the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. All other embodiments obtained by ordinary technicians in this field based on the embodiments of the present invention without making any creative efforts shall fall within the scope of protection of the present invention.

[0092] The terms "first," "second," and so on, in the description and claims of the present invention and the accompanying drawings are used to distinguish between different items, not to describe a specific order. Furthermore, the terms "including," "having," and any variations thereof, are intended to cover non-exclusive inclusions. For example, a process, method, apparatus, product, or end comprising a series of steps or elements is not limited to the listed steps or elements but may optionally include steps or elements not listed therein, or may optionally include other steps or elements inherent to such process, method, product, or end.

[0093] References herein to "embodiments" mean that a particular feature, structure, or characteristic described in connection with the embodiments may be included in at least one embodiment of the present invention. The appearance of this phrase in various places in the specification does not necessarily refer to the same embodiment, nor does it constitute a separate or alternative embodiment that is mutually exclusive of other embodiments. It is understood, both explicitly and implicitly, by those skilled in the art that the embodiments described herein may be combined with other embodiments.

[0094] The present invention discloses a jet control method and device for intelligent air conditioners. The method can sequentially determine the wind receiving area properties, comfort requirement properties, and air supply speed type for a target air conditioner based on the determined wind receiving object information. Finally, the air supply speed scheme for the target air conditioner is comprehensively determined based on these multiple parameters / information, thereby improving the accuracy of determining the air supply speed scheme. Specifically, by distinguishing the properties of the near-end area and the collection area of ​​the airflow, the subsequently executed air supply speed scheme can more scientifically plan the air supply area, avoiding discomfort caused by direct airflow impacting the human body or objects. At the same time, the distribution of indoor airflow is optimized to make the indoor temperature more uniform, which is conducive to improving the accuracy of indoor airflow control when adopting the air supply speed scheme and improving the overall comfort of the user in the current scene. The following are detailed explanations.

[0095] In order to better understand the jet control method and device for intelligent air conditioner described in the present invention, the scenario in which the jet control method for intelligent air conditioner is applicable is first described. Specifically, the scenario can be as follows: Figure 1 As shown, Figure 1 FIG. 1 is a schematic diagram of a scenario in which a jet flow control method for intelligent air conditioning disclosed in an embodiment of the present invention is applicable. Figure 1 As shown, the scenario may include:

[0096] Air conditioner 101 is configured to automatically acquire / collect information about an object receiving wind in a current scene in which air conditioner 101 is located, automatically analyze the information about the object receiving wind, thereby determining the nature of the wind receiving area for air conditioner 101, and, based on the nature of the wind receiving area, gradually determine the comfort requirement and air supply speed type for air conditioner 101, and intelligently store the information about the object receiving wind, the nature of the wind receiving area, the comfort requirement, and the air supply speed type;

[0097] The air conditioner 101 is also used to call the stored wind-receiving object information, wind-receiving area properties, comfort requirement properties and air supply speed type when it is determined that there is a real-time adjustment demand for the air conditioner 101, and generate a corresponding air supply speed plan and execute the air supply speed plan.

[0098] Among them, the real-time adjustment demand can be detecting a real-time control instruction triggered by the user for the air conditioner 101, or it can be detecting that the air conditioner 101 is in the startup state and there is an identified user in the current scene, and the identified user is a user whose user registration information exists in the database.

[0099] It should be noted that a wireless communication module is provided in the air conditioner 101, such as a wifi module, a Bluetooth module, a ZigBee module, a LoRa module, a cellular communication module, etc.; through the wireless communication module, the air conditioner 101 can receive and issue various communication instructions.

[0100] Optionally, the air conditioner 101 is further provided with a voice control module, which is used to implement a voice interaction function with the user. Specifically, the voice control module is used to intelligently receive voice control instructions triggered by the user, analyze the voice control instructions, obtain corresponding air conditioning control instructions; and transmit the air conditioning control instructions to the air conditioner 101 to perform operation control on the air conditioner 101;

[0101] Optionally, the user issues a voice input instruction through his / her user terminal (such as a mobile phone, tablet, smart remote control panel, etc.), and transmits the voice input instruction to the air conditioner 101 via the wireless communication module; further, the wireless communication module transmits the voice input instruction to the instruction execution center (such as the air conditioner control chip) or the voice control module of the air conditioner 101, so as to execute the voice control operation matching the voice input instruction through the instruction execution center or the voice control module, such as executing the above-mentioned real-time adjustment demand determination, controlling the generation of the start-up air supply speed plan, controlling the execution of the air supply speed plan, etc., which is not limited in the embodiments of the present invention.

[0102] It should be noted that Figure 1 The scenarios shown are only intended to illustrate the applicable scenarios of the jet control method for smart air conditioners. The air conditioner 101 involved is also only schematically shown. The specific structure / size / shape / location / installation method can be adaptively adjusted according to the actual scenario. Figure 1 The scenario shown is not limiting in this regard.

[0103] The above describes the application scenarios to which the jet control method applied to the intelligent air conditioner is applicable. The following describes in detail the jet control method and device applied to the intelligent air conditioner.

[0104] Example 1

[0105] See also Figure 2 , Figure 2 This is a flow chart of a jet control method for intelligent air conditioning disclosed in an embodiment of the present invention. Figure 2The jet control method for intelligent air conditioner described above can be applied to a jet control device for intelligent air conditioner, and the embodiment of the present invention does not limit this. Figure 2 As shown, the jet control method applied to the intelligent air conditioner may include the following operations:

[0106] 201. Determine properties of a wind receiving area corresponding to the target air conditioner based on the determined wind receiving object information of the current scene in which the target air conditioner is located. The wind receiving area properties include properties of an airflow tail end near area or properties of an airflow tail end collection area.

[0107] In an embodiment of the present invention, the wind-affected object information may include the wind-affected object, which may refer to a user who has a registration / registration / authentication record in the target air conditioner, such as user a after purchasing the target air conditioner, wherein user a includes but is not limited to humans and pets, and the pet specifically refers to a pet whose size exceeds the standard measurement value, such as a small cat or dog.

[0108] In the embodiment of the present invention, before executing step 201, the method further includes:

[0109] The target air conditioner detects whether a start-up condition for the target air conditioner is currently satisfied. When it is detected that the start-up condition for the target air conditioner is currently satisfied, the target air conditioner is subjected to operation initialization control, and a scene detection device configured in the current scene of the target air conditioner is controlled to perform sensor detection on the current scene of the target air conditioner, thereby obtaining a sensor detection result for the current scene.

[0110] performing data comparison on the sensor detection results, and determining whether the corresponding data comparison results indicate that a target detection object matching the user registration data exists in the current scene; when it is determined that the corresponding data comparison results indicate that a target detection object matching the user registration data exists in the current scene, extracting target sensor detection data matching the target detection object from the sensor detection results as wind-affected object information;

[0111] Among them, the current startup conditions for the target air conditioner include receiving a startup instruction for the target air conditioner triggered by the user, and / or the scene detection device detects that there is identification information of a user entering the current scene; at the same time, the scene detection device can be a functional component configured on the target air conditioner for performing scene scanning and data reading; it can also be a device installed separately in the current scene and the device can perform data interaction with the target air conditioner.

[0112] It can be seen that in the embodiment of the present invention, by setting up an intelligent determination mechanism for the wind-affected object information, the target air conditioner can obtain the wind-affected object information in a timely and efficient manner, thereby promptly responding to the user's demand for use of the target air conditioner after entering the current scene where the target air conditioner is located. On the basis of improving the accuracy of the wind-affected object information determination, it is also beneficial to improve the control speed of subsequent control of the target air conditioner to execute operation control.

[0113] In an embodiment of the present invention, the information of the wind-affected objects may include the number, age, and wind-affected physique of the wind-affected objects (such as a strong physique that can be blown by relatively cold wind (18°C) for a long time or a weak physique that can only be blown by not-so-cold wind (26°C) for a short time), etc., which is not limited in the embodiment of the present invention.

[0114] In the embodiment of the present invention, please refer to Figure 6 , Figure 6 Schematic diagram of temperature control ranges corresponding to different comfort requirements disclosed in an embodiment of the present invention. Figure 6 The left side in the middle corresponds to the properties of the area near the tail end of the airflow; Figure 6 The middle right side corresponds to the properties of the airflow tail end collection area.

[0115] 202. Determine the comfort requirement properties of the target air conditioner for the current scenario based on the properties of the wind-exposed area. The comfort requirement properties include fixed-point comfort properties and / or range comfort properties.

[0116] In the embodiment of the present invention, the temperature control range corresponding to the fixed-point comfort property is smaller than the temperature control range corresponding to the range comfort property; for details, please refer to Figure 6 , Figure 6 The left side corresponds to the temperature control range of fixed-point comfort properties, and the distance of its core temperature control is only d1; the right side corresponds to the temperature control range of range comfort properties, and the distance of its core temperature control is d2, and d1<d2.

[0117] 203. Determine an air supply speed type of the target air conditioner for the current scenario based on the nature of the comfort requirement. The air supply speed type includes a fixed speed type or a dynamic speed type.

[0118] In an embodiment of the present invention, the fixed speed type refers to controlling the parameters of the target air conditioner only according to a set program; the dynamic speed type, based on the fixed speed type, can intelligently obtain temporary control instructions to perform flexible, real-time, and dynamic control of the target air conditioner; the temporary control instructions can be temporarily issued by the user, or they can be generated after intelligent analysis of real-time data collected by the target air conditioner for the current scene, which is not limited in the embodiment of the present invention.

[0119] 204. Determine an air supply speed plan for a target air conditioner based on the air receiving object information, the air supply speed type, and the nature of the air receiving area, and control the target air conditioner to perform an air supply control operation that matches the air supply speed plan; the air supply speed plan includes the air supply speed and the air supply area.

[0120] It can be seen that implementation Figure 2 The described jet control method applied to intelligent air conditioners can, based on the determined information of the wind-receiving object, sequentially determine the wind-receiving area properties, comfort requirement properties, and air supply speed type for the target air conditioner, and finally comprehensively determine the air supply speed scheme for the target air conditioner based on the multiple parameters / information, thereby improving the accuracy of determining the air supply speed scheme; among them, by distinguishing the properties of the near-end area and the collection area of ​​the air flow, the subsequently executed air supply speed scheme can more scientifically plan the air supply area, avoid discomfort caused by direct air flow impacting the human body or objects, and at the same time optimize the distribution of indoor airflow to make the indoor temperature more uniform, which is conducive to improving the accuracy of indoor airflow control when adopting the air supply speed scheme, and improving the overall comfort of users in the current scene.

[0121] In an optional embodiment, the wind-affected object information includes at least first position information of the wind-affected object in the current scene;

[0122] The above step 201 specifically includes the following methods for determining the properties of the wind-receiving area corresponding to the target air conditioner based on the determined wind-receiving object information of the current scene where the target air conditioner is located:

[0123] Obtaining second position information corresponding to the target air conditioner in the scene;

[0124] Performing information conversion on the first position information and the second position information according to the three-dimensional coordinate system corresponding to the current scene to obtain the three-dimensional coordinates of the wind-affected object corresponding to the first position information and the three-dimensional coordinates of the air conditioner corresponding to the second position information;

[0125] Calculate the distances between the three-dimensional coordinates of the wind-affected object and the three-dimensional coordinates of the air conditioner according to a preset distance calculation formula;

[0126] For each target distance, the numerical value corresponding to the target distance is determined according to the preset reference interval corresponding to the target distance. The preset reference interval corresponding to each target distance includes a first interval level and a second interval level. The numerical value corresponding to the target distance is used to indicate whether the target distance belongs to the corresponding first interval level or second interval level.

[0127] When all numerical values ​​meet the first division condition, the windward area of ​​the target air conditioner is determined to be near the tail end of the airflow.

[0128] When all numerical values ​​satisfy the set second division condition, it is determined that the windward area property of the target air conditioner is the airflow tail end collection area property.

[0129] In this optional embodiment, a three-dimensional coordinate system for the current scene is pre-constructed, and information conversion is performed on the first position information and the second position information to obtain the three-dimensional coordinates of the wind-affected object (x1, y1, z1) and the three-dimensional coordinates of the air conditioner corresponding to the second position information (x2, y2, z2).

[0130] It can be seen that in this optional embodiment, the first position information of the wind-affected object is first determined as the basis for analysis, and then the second position information of the target air conditioner is obtained to ensure the accuracy of the data source in the analysis process. Furthermore, by introducing a three-dimensional coordinate system, the position information of the two is converted to a unified standard, avoiding errors caused by inconsistent coordinate systems, thereby enhancing the accuracy of position information processing; in addition, by pre-setting reference intervals (including the first interval level and the second interval level), the calculated target distance is numerically determined. The setting of this interval division system can reasonably reflect the airflow environment characteristics of the wind-affected object at different distances, further improving the accuracy of the determination of the nature of the wind-affected area. Finally, through the precise division of the nature of the wind-affected area, the intelligent air conditioner can adopt corresponding air supply strategies according to the characteristics of different areas, such as adjusting the air supply speed, direction, etc., so as to better meet the comfort needs of users; this adaptive adjustment based on scene changes is conducive to improving the convenience of use and control flexibility of the air conditioner.

[0131] In this optional embodiment, the method of calculating the multiple target distances corresponding to the three-dimensional coordinates of the wind-affected object and the three-dimensional coordinates of the air conditioner according to the preset distance calculation formula specifically includes:

[0132] Based on multiple preset calculation parameters and in combination with a two-point distance calculation formula, the coordinate difference between the three-dimensional coordinates of the air conditioner and the three-dimensional coordinates of the wind-affected object and each preset calculation parameter is calculated and recorded as the target distance; the multiple preset calculation parameters include a combination of axis coordinates corresponding to at least two axes of the x-axis, y-axis, and z-axis;

[0133] And, all numerical values ​​belong to the first division condition:

[0134] The number of target distances whose corresponding values ​​belong to the first interval level among all target distances is greater than or equal to the first number;

[0135] All numerical attributes satisfy the second division condition:

[0136] The number of target distances whose corresponding values ​​among all target distances belong to the second interval level is greater than or equal to the second number.

[0137] In this optional embodiment, the multiple preset calculation parameters specifically include (x, y), (x, z), (y, z), and (x, y, z); further, the preset distance calculation formula includes a two-dimensional two-point distance calculation formula and a three-dimensional two-point distance calculation formula; for the two-dimensional two-point calculation formula, taking the axis coordinate combination of the x-axis and y-axis coordinates as an example, the three-dimensional coordinates of the wind-receiving object are (x1, y1, z1), and the three-dimensional coordinates of the air conditioner are (x2, y2, z2), and the corresponding calculation formula is:

[0138]

[0139] Correspondingly, the calculation formulas for the x-axis and z-axis, and the y-axis and z-axis are similar to this calculation formula; similarly, the calculation formula for the distance between two points in three dimensions is:

[0140]

[0141] It can be seen that in this optional embodiment, by taking multiple preset calculation parameters (including a combination of axis coordinates corresponding to at least two axes of the x-axis, y-axis and z-axis) as a benchmark and combining the two-point distance calculation formula to calculate multiple target distances between the three-dimensional coordinates of the air conditioner and the three-dimensional coordinates of the wind-affected object, multiple dimensions in the three-dimensional space can be considered, avoiding the one-sidedness that may be caused by single-dimensional calculation, which is conducive to improving the comprehensiveness and accuracy of the distance calculation; by setting specific division conditions (first division condition, second division condition), a clear quantitative standard is provided for the determination of the nature of the wind-affected area. This method based on statistics and comparison can more accurately reflect the relative position relationship between the wind-affected object and the air conditioner, thereby improving the accuracy and reliability of the regional property determination.

[0142] Example 2

[0143] See also Figure 3 , Figure 3 This is a flow chart of another jet control method for intelligent air conditioning disclosed in an embodiment of the present invention. Figure 3 The jet control method for intelligent air conditioner described above can be applied to a jet control device for intelligent air conditioner, and the embodiment of the present invention does not limit this. Figure 3 As shown, the jet control method applied to the intelligent air conditioner may include the following operations:

[0144] 301. Determine properties of a wind receiving area corresponding to the target air conditioner based on the determined wind receiving object information of the current scene where the target air conditioner is located. The wind receiving area properties include properties of an airflow tail near area or properties of an airflow tail collection area.

[0145] In the embodiment of the present invention, each wind-exposed area property has at least one bound comfort requirement property. The property of the area near the tail end of the airflow is bound to the fixed-point comfort property; the property of the collection area at the tail end of the airflow is bound to the range comfort property. The comfort requirement property includes the fixed-point comfort property and / or the range comfort property.

[0146] 302. Determine the basic comfort requirement properties bound to the wind receiving area properties and the corresponding basic air supply area.

[0147] 303. Acquire stagnation information of the wind-affected object in the current scene in real time, where the stagnation information includes at least one stagnation node of the wind-affected object in the current scene.

[0148] 304. Determine whether there is a target stagnant node that meets a preset property change condition among all stagnant nodes. When it is determined that there is no target stagnant node that meets the preset property change condition among all stagnant nodes, determine the basic comfort requirement property as the comfort requirement property of the target air conditioner for the current scenario.

[0149] 305. Determine an air supply speed type of the target air conditioner for the current scenario based on the nature of the comfort requirement. The air supply speed type includes a fixed speed type or a dynamic speed type.

[0150] 306. Determine an air supply speed plan for the target air conditioner based on the air receiving object information, the air supply speed type, and the nature of the air receiving area, and control the target air conditioner to perform an air supply control operation that matches the air supply speed plan; the air supply speed plan includes the air supply speed and the air supply area.

[0151] In the embodiment of the present invention, for other descriptions of step 301 and steps 305-306, please refer to other specific descriptions of step 201 and steps 203-204 in embodiment 1, which will not be repeated in this embodiment of the present invention.

[0152] It can be seen that implementation Figure 3 The described jet control method applied to intelligent air conditioners can obtain stagnation information of wind-affected objects in the current scene in real time, including the location and number of stagnation nodes, thereby achieving accurate determination of the spatial distribution state of wind-affected objects; further, by judging whether the stagnation nodes meet preset property change conditions, the determination of comfort requirement properties is refined, enabling the target air conditioner to provide a more personalized comfort experience for specific wind-affected objects or areas. This decision-making process based on real-time data is conducive to improving the timeliness and accuracy of determining comfort requirement properties.

[0153] In an optional embodiment, each comfort requirement property has its matching air supply range;

[0154] When it is determined that there is a target stagnant node that meets a preset property change condition among all the stagnant nodes, the method further includes:

[0155] According to the node position of the target stagnant node, determine the node air supply range corresponding to the target stagnant node;

[0156] Determine the target comfort requirement properties that match the node air supply range;

[0157] Determine the target comfort requirement properties and the basic comfort requirement properties as the comfort requirement properties of the target air conditioner for the current scenario;

[0158] Among them, the target stagnation nodes that meet the preset nature change conditions are:

[0159] Among all the stagnation nodes, there is a stagnation node whose node position is outside the basic air supply area, and the stagnation time of the wind-receiving object in the stagnation node is greater than the preset timing time.

[0160] In this optional embodiment, the preset timing duration may be 1 minute, 5 minutes or 8 minutes, which is not limited in this embodiment of the present invention.

[0161] It can be seen that in this optional embodiment, by identifying and analyzing the specific location of each stagnation node and the stagnation duration of the wind-affected object, it is possible to accurately determine which areas or individuals or groups in which positions require special comfort requirement adjustments; this location-based comfort demand identification enables the air-conditioning system to provide differentiated air supply services for different areas, thereby significantly improving the personalized level of comfort in each area within the space, ensuring that each wind-affected object can obtain the most suitable environmental experience, which is also conducive to improving the accuracy of determining the nature of the comfort requirement.

[0162] In another optional embodiment, the method of determining the air supply speed scheme of the target air conditioner according to the wind receiving object information, the air supply speed type, and the nature of the wind receiving area in step 306 specifically includes:

[0163] Determining, based on the wind-affected object information, offset information of the wind-affected object relative to the target air conditioner, the offset information including a first offset term indicating whether the wind-affected object is offset to the left or right of the target air conditioner, and a second offset term indicating whether the wind-affected object is offset to the close or far side of the target air conditioner;

[0164] With the offset information as the first combination information and the air supply speed type and comfort requirement property as the second combination information, information permutation and combination are performed to obtain the corresponding information permutation and combination result as the air supply speed solution of the target air conditioner.

[0165] In this optional embodiment, when the comfort requirement property includes a fixed-point comfort property, the air supply speed type includes a fixed speed type; and the information arrangement and combination result includes a fixed speed at a fixed point to the left or a fixed speed at a fixed point to the right:

[0166] When the comfort requirement property includes a range comfort property, the air supply speed type includes a dynamic speed type; and the information arrangement and combination result includes a dynamic speed of a close range or a dynamic speed of a far range.

[0167] It can be seen that in this optional embodiment, by comprehensively considering the offset information of the wind-affected object (including left / right and near / far), the specific position of the wind-affected object in front of the target air conditioner can be accurately identified, and then combined with the air supply speed type and comfort requirements, a targeted air supply speed plan is further formulated. This personalized air supply strategy ensures that the air conditioning air supply can accurately cover the area where the wind-affected object is located, which is beneficial to the determination accuracy and personalization level of the air supply speed plan.

[0168] Example 3

[0169] See also Figure 4 , Figure 4 This is a structural diagram of a jet control device for smart air conditioners disclosed in an embodiment of the present invention. The jet control device for smart air conditioners can be a jet control terminal for smart air conditioners, a jet control device for smart air conditioners, a jet control system for smart air conditioners, or a jet control server for smart air conditioners. The jet control server for smart air conditioners can be a local server, a remote server, or a cloud server (also known as a cloud server). When the jet control server for smart air conditioners is a non-cloud server, the non-cloud server can communicate with the cloud server, which is not limited in the embodiment of the present invention. Figure 4 As shown, the jet control device applied to the intelligent air conditioner may include a first determination module 401, a second determination module 402, a third determination module 403 and a fourth determination module 404, wherein:

[0170] The first determination module 401 is used to determine the properties of the wind-receiving area corresponding to the target air conditioner based on the wind-receiving object information of the current scene in which the target air conditioner is located. The wind-receiving area properties include the properties of the area near the tail end of the airflow or the properties of the collection area at the tail end of the airflow.

[0171] The second determination module 402 is configured to determine the required comfort properties of the target air conditioner for the current scene according to the properties of the wind-receiving area, where the required comfort properties include fixed-point comfort properties and / or range comfort properties.

[0172] The third determination module 403 is used to determine the air supply speed type of the target air conditioner for the current scene according to the comfort requirement. The air supply speed type includes a fixed speed type or a dynamic speed type.

[0173] The fourth determination module 404 is used to determine the air supply speed plan of the target air conditioner based on the wind receiving object information, the air supply speed type and the nature of the wind receiving area, and control the target air conditioner to perform the air supply control operation matching the air supply speed plan; the air supply speed plan includes the air supply speed and the air supply area.

[0174] It can be seen that implementation Figure 4 The described jet control device applied to intelligent air conditioners can, based on the determined wind-receiving object information, sequentially determine the wind-receiving area properties, comfort requirement properties, and air supply speed type for the target air conditioner, and finally comprehensively determine the air supply speed scheme for the target air conditioner based on the multiple parameters / information, thereby improving the accuracy of determining the air supply speed scheme; among them, by distinguishing the properties of the near-end area and the collection area of ​​the air flow, the subsequently executed air supply speed scheme can more scientifically plan the air supply area, avoid discomfort caused by direct air flow impacting the human body or objects, and at the same time optimize the distribution of indoor airflow to make the indoor temperature more uniform, which is conducive to improving the accuracy of indoor airflow control when adopting the air supply speed scheme, and improving the overall comfort of the user in the current scene.

[0175] In an optional embodiment, the wind-affected object information includes at least first position information of the wind-affected object in the current scene;

[0176] The first determining module 401 determines the nature of the wind-receiving area corresponding to the target air conditioner according to the determined wind-receiving object information of the current scene where the target air conditioner is located, specifically in the following manner:

[0177] Obtaining second position information corresponding to the target air conditioner in the scene;

[0178] Performing information conversion on the first position information and the second position information according to the three-dimensional coordinate system corresponding to the current scene to obtain the three-dimensional coordinates of the wind-affected object corresponding to the first position information and the three-dimensional coordinates of the air conditioner corresponding to the second position information;

[0179] Calculate the distances between the three-dimensional coordinates of the wind-affected object and the three-dimensional coordinates of the air conditioner according to a preset distance calculation formula;

[0180] For each target distance, the numerical value corresponding to the target distance is determined according to the preset reference interval corresponding to the target distance. The preset reference interval corresponding to each target distance includes a first interval level and a second interval level. The numerical value corresponding to the target distance is used to indicate whether the target distance belongs to the corresponding first interval level or second interval level.

[0181] When all numerical values ​​meet the first division condition, the windward area of ​​the target air conditioner is determined to be near the tail end of the airflow.

[0182] When all numerical values ​​satisfy the set second division condition, it is determined that the windward area property of the target air conditioner is the airflow tail end collection area property.

[0183] It can be seen that in this optional embodiment, the first position information of the wind-affected object is first determined as the basis for analysis, and then the second position information of the target air conditioner is obtained to ensure the accuracy of the data source in the analysis process. Furthermore, by introducing a three-dimensional coordinate system, the position information of the two is converted to a unified standard, avoiding errors caused by inconsistent coordinate systems, thereby enhancing the accuracy of position information processing; in addition, by pre-setting reference intervals (including the first interval level and the second interval level), the calculated target distance is numerically determined. The setting of this interval division system can reasonably reflect the airflow environment characteristics of the wind-affected object at different distances, further improving the accuracy of the determination of the nature of the wind-affected area. Finally, through the precise division of the nature of the wind-affected area, the intelligent air conditioner can adopt corresponding air supply strategies according to the characteristics of different areas, such as adjusting the air supply speed, direction, etc., so as to better meet the comfort needs of users; this adaptive adjustment based on scene changes is conducive to improving the convenience of use and control flexibility of the air conditioner.

[0184] In this optional embodiment, further optionally, the first determining module 401 calculates the multiple target distances corresponding to the three-dimensional coordinates of the wind-affected object and the three-dimensional coordinates of the air conditioner according to a preset distance calculation formula, specifically including:

[0185] Based on multiple preset calculation parameters and in combination with a two-point distance calculation formula, the coordinate difference between the three-dimensional coordinates of the air conditioner and the three-dimensional coordinates of the wind-affected object and each preset calculation parameter is calculated and recorded as the target distance; the multiple preset calculation parameters include a combination of axis coordinates corresponding to at least two axes of the x-axis, y-axis, and z-axis;

[0186] And, all numerical values ​​belong to the first division condition:

[0187] The number of target distances whose corresponding values ​​belong to the first interval level among all target distances is greater than or equal to the first number;

[0188] All numerical attributes satisfy the second division condition:

[0189] The number of target distances whose corresponding values ​​among all target distances belong to the second interval level is greater than or equal to the second number.

[0190] It can be seen that in this optional embodiment, by taking multiple preset calculation parameters (including a combination of axis coordinates corresponding to at least two axes of the x-axis, y-axis and z-axis) as a benchmark and combining the two-point distance calculation formula to calculate multiple target distances between the three-dimensional coordinates of the air conditioner and the three-dimensional coordinates of the wind-affected object, multiple dimensions in the three-dimensional space can be considered, avoiding the one-sidedness that may be caused by single-dimensional calculation, which is conducive to improving the comprehensiveness and accuracy of the distance calculation; by setting specific division conditions (first division condition, second division condition), a clear quantitative standard is provided for the determination of the nature of the wind-affected area. This method based on statistics and comparison can more accurately reflect the relative position relationship between the wind-affected object and the air conditioner, thereby improving the accuracy and reliability of the regional property determination.

[0191] In another optional embodiment, each wind-exposed area property has at least one comfort requirement property bound thereto, the airflow tail end near area property is bound to the fixed-point comfort property; the airflow tail end collection area property is bound to the range comfort property;

[0192] The second determining module 402 determines the comfort requirement properties of the target air conditioner for the current scene according to the properties of the wind-receiving area in the following manner:

[0193] Determine the basic comfort requirement properties bound to the wind receiving area properties and their corresponding basic air supply areas;

[0194] Acquire stagnation information of the wind-affected object in the current scene in real time, where the stagnation information includes at least one stagnation node of the wind-affected object in the current scene;

[0195] It is determined whether there is a target stagnation node that meets the preset property change conditions among all stagnation nodes. When it is determined that there is no target stagnation node that meets the preset property change conditions among all stagnation nodes, the basic comfort requirement property is determined to be the comfort requirement property of the target air conditioner for the current scenario.

[0196] It can be seen that in this optional embodiment, the stagnation information of the wind-affected objects in the current scene, including the position and number of stagnation nodes, can be obtained in real time, thereby achieving the accuracy of determining the spatial distribution state of the wind-affected objects; further, by judging whether the stagnation nodes meet the preset property change conditions, the determination of the comfort requirement properties is refined, so that the target air conditioner can provide a more personalized comfort experience for specific wind-affected objects or areas. This decision-making process based on real-time data is conducive to improving the timeliness and accuracy of determining the comfort requirement properties.

[0197] In this optional embodiment, each comfort requirement property has its matching air supply range;

[0198] The second determining module 402 determines the comfort requirement properties of the target air conditioner for the current scene according to the properties of the wind-receiving area, and specifically includes:

[0199] When it is determined that there is a target stagnant node that meets the preset property change conditions among all stagnant nodes, the node air supply range corresponding to the target stagnant node is determined according to the node position of the target stagnant node;

[0200] Determine the target comfort requirement properties that match the node air supply range;

[0201] Determine the target comfort requirement properties and the basic comfort requirement properties as the comfort requirement properties of the target air conditioner for the current scenario;

[0202] Among them, the target stagnation nodes that meet the preset nature change conditions are:

[0203] Among all the stagnation nodes, there is a stagnation node whose node position is outside the basic air supply area, and the stagnation time of the wind-receiving object in the stagnation node is greater than the preset timing time.

[0204] It can be seen that in this optional embodiment, by identifying and analyzing the specific location of each stagnation node and the stagnation duration of the wind-affected object, it is possible to accurately determine which areas or individuals or groups in which positions require special comfort requirement adjustments; this location-based comfort demand identification enables the air-conditioning system to provide differentiated air supply services for different areas, thereby significantly improving the personalized level of comfort in each area within the space, ensuring that each wind-affected object can obtain the most suitable environmental experience, which is also conducive to improving the accuracy of determining the nature of the comfort requirement.

[0205] In another optional embodiment, the fourth determining module 404 determines the air supply speed scheme of the target air conditioner according to the wind receiving object information, the air supply speed type, and the nature of the wind receiving area, specifically including:

[0206] Determining, based on the wind-affected object information, offset information of the wind-affected object relative to the target air conditioner, the offset information including a first offset term indicating whether the wind-affected object is offset to the left or right of the target air conditioner, and a second offset term indicating whether the wind-affected object is offset to the close or far side of the target air conditioner;

[0207] With the offset information as the first combination information and the air supply speed type and comfort requirement property as the second combination information, information permutation and combination are performed to obtain the corresponding information permutation and combination result as the air supply speed solution of the target air conditioner.

[0208] In this optional embodiment, when the comfort requirement property includes a fixed-point comfort property, the air supply speed type includes a fixed speed type; and the information arrangement and combination result includes a fixed speed at a fixed point to the left or a fixed speed at a fixed point to the right:

[0209] When the comfort requirement property includes a range comfort property, the air supply speed type includes a dynamic speed type; and the information arrangement and combination result includes a dynamic speed of a close range or a dynamic speed of a far range.

[0210] It can be seen that in this optional embodiment, by comprehensively considering the offset information of the wind-affected object (including left / right and near / far), the specific position of the wind-affected object in front of the target air conditioner can be accurately identified, and then combined with the air supply speed type and comfort requirements, a targeted air supply speed plan is further formulated. This personalized air supply strategy ensures that the air conditioning air supply can accurately cover the area where the wind-affected object is located, which is beneficial to the determination accuracy and personalization level of the air supply speed plan.

[0211] Example 4

[0212] See also Figure 6 , Figure 6 This is a structural diagram of another jet control device for intelligent air conditioning disclosed in an embodiment of the present invention. Figure 6 As shown, the jet control device applied to the intelligent air conditioner may include:

[0213] A memory 501 storing executable program code;

[0214] a processor 502 coupled to the memory 501;

[0215] The processor 502 calls the executable program code stored in the memory 501 to execute the steps of the jet control method applied to the intelligent air conditioner described in the first embodiment of the present invention or the second embodiment of the present invention.

[0216] Example 5

[0217] An embodiment of the present invention discloses a computer storage medium, which stores computer instructions. When the computer instructions are called, they are used to execute the steps of the jet control method applied to the intelligent air conditioner described in the first embodiment or the second embodiment of the present invention.

[0218] Example 6

[0219] An embodiment of the present 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 enable a computer to execute the steps of the jet control method applied to an intelligent air conditioner described in Example 1 or Example 2.

[0220] The device embodiments described above are merely illustrative. Modules described as separate components may or may not be physically separate, and components shown as modules may or may not be physical modules, i.e., they may be located in one place or distributed across multiple network modules. Some or all of the modules may be selected based on actual needs to achieve the objectives of the present embodiment. Persons of ordinary skill in the art will be able to understand and implement the present invention without inventive effort.

[0221] Through the detailed description of the above embodiments, those skilled in the art can clearly understand that each embodiment can be implemented by means of software plus the necessary general hardware platform, or of course, by means of hardware. Based on this understanding, the above technical solution, in essence, or the portion that contributes to the prior art, can be embodied in the form of a software product, which can be stored in a computer storage medium, including a read-only memory (ROM), a random access memory (RAM), a programmable read-only memory (PROM), an erasable programmable read-only memory (EPROM), a one-time programmable read-only memory (OTPROM), an electronically erasable programmable read-only memory (EEPROM), a compact disc read-only memory (CD-ROM) or other optical disc storage, magnetic disk storage, magnetic tape storage, or any other computer-readable medium capable of carrying or storing data.

[0222] Finally, it should be noted that the jet control method and device for intelligent air conditioning disclosed in the embodiments of the present invention are only preferred embodiments of the present invention, and are only used to illustrate the technical solutions of the present invention, rather than to limit them. Although the present invention has been described in detail with reference to the aforementioned embodiments, those skilled in the art should understand that the technical solutions described in the aforementioned embodiments may still be modified, or some of the technical features thereof may be replaced by equivalents. However, these modifications or replacements do not deviate the essence of the corresponding technical solutions from the spirit and scope of the technical solutions of the various embodiments of the present invention.

Claims

1. A jet control method applied to intelligent air conditioning, characterized in that: The method comprises: Determining properties of a wind receiving area corresponding to the target air conditioner based on the determined wind receiving object information of the current scene in which the target air conditioner is located, wherein the properties of the wind receiving area include properties of an area near the tail end of the air flow or properties of an area gathering at the tail end of the air flow; determining, based on the properties of the wind-exposed area, the required comfort properties of the target air conditioner for the current scene, the required comfort properties including fixed-point comfort properties and / or range comfort properties; determining, according to the comfort requirement properties, an air supply speed type of the target air conditioner for the current scene, the air supply speed type including a fixed speed type or a dynamic speed type; According to the wind receiving object information, the air supply speed type and the nature of the wind receiving area, the air supply speed scheme of the target air conditioner is determined, and the target air conditioner is controlled to perform an air supply control operation matching the air supply speed scheme; the air supply speed scheme includes the air supply speed and the air supply area.

2. The jet control method for intelligent air conditioning according to claim 1, characterized in that: The wind-affected object information at least includes first position information of the wind-affected object in the current scene; The determining, based on the determined wind-receiving object information of the current scene in which the target air conditioner is located, properties of the wind-receiving area corresponding to the target air conditioner includes: Obtaining second position information corresponding to the target air conditioner in the scene; performing information conversion on the first position information and the second position information according to the three-dimensional coordinate system corresponding to the current scene to obtain the three-dimensional coordinates of the wind-affected object corresponding to the first position information and the three-dimensional coordinates of the air conditioner corresponding to the second position information; Calculating multiple target distances corresponding to the three-dimensional coordinates of the wind-affected object and the three-dimensional coordinates of the air conditioner according to a preset distance calculation formula; For each target distance, determining a numerical value corresponding to the target distance according to a preset reference interval corresponding to the target distance, wherein the preset reference interval corresponding to each target distance includes a first interval level and a second interval level; the numerical value corresponding to the target distance is used to indicate whether the target distance belongs to the corresponding first interval level or the second interval level; When all the numerical values ​​satisfy the set first division condition, determining that the windward area property of the target air conditioner is the airflow tail end near area property; When all the numerical attributes satisfy the set second division condition, it is determined that the windward area property of the target air conditioner is the airflow tail end collection area property.

3. The jet control method for intelligent air conditioning according to claim 2, characterized in that: Calculating a plurality of target distances corresponding to the three-dimensional coordinates of the wind-affected object and the three-dimensional coordinates of the air conditioner according to a preset distance calculation formula includes: Based on a plurality of preset calculation parameters and in combination with a two-point distance calculation formula, the coordinate difference between the three-dimensional coordinates of the air conditioner and the three-dimensional coordinates of the wind-receiving object and each of the preset calculation parameters is calculated and recorded as the target distance; the plurality of preset calculation parameters include a combination of axis coordinates corresponding to at least two axes of the x-axis, the y-axis, and the z-axis; Furthermore, all the numerical values ​​satisfy the first division condition: The number of the target distances whose corresponding values ​​belong to the first interval level among all the target distances is greater than or equal to a first number; All the numerical values ​​belonging to the second division condition are specifically: The number of the target distances among all the target distances whose corresponding numerical values ​​belong to the second interval level is greater than or equal to a second number.

4. The jet control method for intelligent air conditioning according to any one of claims 1 to 3, characterized in that: Each of the wind-exposed area properties has at least one comfort requirement property bound thereto, the airflow tail end near area property is bound to the fixed-point comfort property; the airflow tail end collection area property is bound to the range comfort property; The step of determining the comfort requirement properties of the target air conditioner for the current scene according to the properties of the wind-exposed area includes: Determine basic comfort requirement properties bound to the wind receiving area properties and their corresponding basic air supply areas; Acquire stagnation information of the wind-affected object in the current scene in real time, the stagnation information including at least one stagnation node of the wind-affected object in the current scene; It is determined whether there is a target stagnation node that meets a preset property change condition among all the stagnation nodes. When it is determined that there is no target stagnation node that meets the preset property change condition among all the stagnation nodes, the basic comfort requirement property is determined to be the comfort requirement property of the target air conditioner for the current scenario.

5. The jet control method for intelligent air conditioning according to claim 4, characterized in that: Each of the comfort requirements has a matching air supply range; When it is determined that there is a target stalled node that meets the preset property change condition among all the stalled nodes, the method further includes: Determine the node air supply range corresponding to the target stagnant node according to the node position of the target stagnant node; Determining target comfort requirement properties that match the air supply range of the node; determining the target comfort requirement property and the basic comfort requirement property as the comfort requirement property of the target air conditioner for the current scene; The target stagnant nodes that meet the preset property change conditions are specifically: Among all the stagnation nodes, there is a stagnation node whose node position is outside the basic air supply area, and the stagnation time of the wind-receiving object in the stagnation node is greater than the preset timing time.

6. The jet control method for intelligent air conditioning according to claim 2 or 3, characterized in that: The determining of the air supply speed scheme of the target air conditioner according to the wind receiving object information, the air supply speed type, and the property of the wind receiving area includes: determining, based on the wind-affected object information, offset information of the wind-affected object relative to the target air conditioner, the offset information including a first offset term indicating whether the wind-affected object is offset to the left or right of the target air conditioner, and a second offset term indicating whether the wind-affected object is offset to the near or far side of the target air conditioner; The offset information is used as the first combination information, and the air supply speed type and the comfort requirement property are used as the second combination information. Information permutation and combination are performed to obtain the corresponding information permutation and combination result as the air supply speed solution of the target air conditioner.

7. The jet control method for intelligent air conditioning according to claim 6, characterized in that: When the comfort requirement property includes the fixed-point comfort property, the air supply speed type includes the fixed speed type; and the information arrangement and combination result includes a fixed speed at a left fixed point or a fixed speed at a right fixed point: When the comfort requirement property includes the range comfort property, the air supply speed type includes the dynamic speed type; and the information arrangement and combination result includes the dynamic speed of a close range or the dynamic speed of a far range.

8. A jet control device applied to an intelligent air conditioner, characterized in that: The device comprises: A first determination module is configured to determine properties of a wind receiving area corresponding to the target air conditioner based on the determined wind receiving object information of the current scene in which the target air conditioner is located, wherein the properties of the wind receiving area include properties of an airflow tail end near area or properties of an airflow tail end collection area; A second determining module is configured to determine, based on the properties of the wind-exposed area, the comfort requirement properties of the target air conditioner for the current scene, where the comfort requirement properties include fixed-point comfort properties and / or range comfort properties; a third determining module, configured to determine, based on the comfort requirement, an air supply speed type of the target air conditioner for the current scene, the air supply speed type including a fixed speed type or a dynamic speed type; The fourth determination module is used to determine the air supply speed scheme of the target air conditioner based on the wind-receiving object information, the air supply speed type and the nature of the wind-receiving area, and control the target air conditioner to perform an air supply control operation matching the air supply speed scheme; the air supply speed scheme includes the air supply speed and the air supply area.

9. A jet control device applied to an intelligent air conditioner, characterized in that: The device comprises: a memory storing executable program code; a processor coupled to the memory; The processor calls the executable program code stored in the memory to execute the jet control method applied to the intelligent air conditioner according to any one of claims 1 to 7.

10. A computer storage medium, characterized in that The computer storage medium stores computer instructions, and when the computer instructions are called, they are used to execute the jet control method applied to the intelligent air conditioner according to any one of claims 1 to 7.

Citation Information

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