Air conditioning intelligent control method and device based on humidity and resistance value parameters
Through an intelligent control method based on humidity and resistance value parameters, combined with linkage equipment, the problem of air output of air conditioners being affected by humidity and resistance factors in different scenarios is solved, achieving more efficient wind speed control and improving user comfort.
Patent Information
- Application Number
- CN202411442575.9
- 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
The air output effect of air conditioners in different scenarios is affected by humidity and resistance factors, resulting in a decline in user experience.
Through an intelligent control method based on humidity and resistance value parameters, it is determined whether the air conditioner meets the conditions for overcoming the air transmission resistance. If not, coordinated control is carried out through linkage equipment such as humidity control equipment and air outlet equipment to overcome the resistance factor.
It improves the air conditioner's ability to overcome resistance factors, enhances the consistency of wind speed and airflow diffusion, and improves user comfort and experience.
Smart Images

Figure CN119103688B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of air conditioning, and in particular to an intelligent air conditioning control method and device based on humidity and resistance value parameters. Background Art
[0002] With the continuous improvement of people's living standards and the rapid development of science and technology, smart home appliances have gradually entered thousands of households, bringing convenience to people's lives. As people's demand for indoor comfort and living experience continues to increase, smart air conditioners have become an indispensable smart appliance in many families.
[0003] In real life, air conditioners often face obstacles in their environment, such as high humidity or other objects, which can affect their airflow and, in turn, the user experience. Therefore, it is crucial to develop a technical solution that can improve an air conditioner's ability to overcome these obstacles. Summary of the Invention
[0004] The present invention provides an intelligent air conditioning control method and device based on humidity and resistance value parameters, which can help improve the ability of the air conditioner to overcome resistance factors.
[0005] In order to solve the above technical problems, the first aspect of the present invention discloses an intelligent air conditioning control method based on humidity and resistance value parameters, the method comprising:
[0006] Determining the humidity of a scene in which a target air conditioner is located, and determining a first resistance of the humidity to air outlet of the target air conditioner;
[0007] determining whether the target air conditioner satisfies a preset air outlet resistance overcoming condition based on the predetermined resistance overcoming capability of the target air conditioner and the first resistance condition;
[0008] When the target air conditioner meets the condition for overcoming the air flow propagation resistance, determining a first control parameter for the target air conditioner according to the air flow demand corresponding to the scenario, and controlling the target air conditioner to perform a first air flow operation according to the first control parameter;
[0009] When the target air conditioner does not meet the condition for overcoming the air outlet propagation resistance, the linkage control parameters of the linkage device corresponding to the target air conditioner are determined according to the humidity condition and the first resistance condition, and the second control parameters for the target air conditioner are determined according to the linkage control parameters and the air outlet demand corresponding to the scene. The target air conditioner is controlled to perform the second air outlet operation according to the second control parameters, and the linkage device is controlled to perform the resistance overcoming operation according to the linkage control parameters.
[0010] As an optional embodiment, in the first aspect of the present invention, when the target air conditioner does not meet the condition for overcoming the airflow propagation resistance, determining the linkage control parameters of the linkage device corresponding to the target air conditioner based on the humidity condition and the first resistance condition includes:
[0011] Determining linkage devices associated with the target air conditioner in the scene, the linkage devices including humidity adjustment devices;
[0012] When the target air conditioner does not meet the condition for overcoming the airflow propagation resistance, determining a humidity adjustment requirement corresponding to the scenario based on the humidity condition and the first resistance condition, the humidity adjustment requirement including a humidity adjustment range requirement and a humidity adjustment amount requirement;
[0013] Determine humidity adjustment parameters for the humidity adjustment device according to the humidity adjustment requirement, and determine the humidity adjustment parameters as linkage control parameters of the linkage device.
[0014] As an optional implementation, in the first aspect of the present invention, the linkage device further includes an air outlet device, and the method further includes:
[0015] Determining device capability information of the linkage device, the device capability information including a maximum humidity adjustment capability of the humidity adjustment device;
[0016] After determining the humidity adjustment parameter for the humidity adjustment device according to the humidity adjustment requirement, judging whether the maximum humidity adjustment capacity of the humidity adjustment device meets the humidity adjustment requirement according to the humidity adjustment parameter, and when the maximum humidity adjustment capacity of the humidity adjustment device meets the humidity adjustment requirement, determining the humidity adjustment parameter as the linkage control parameter of the linkage device;
[0017] When the maximum humidity adjustment capacity of the humidity adjustment device does not meet the humidity adjustment requirement, the first auxiliary air outlet control parameter for the air outlet device is determined according to the first resistance condition, and the humidity adjustment parameter and the first auxiliary air outlet control parameter are determined as the linkage control parameters of the linkage device.
[0018] As an optional embodiment, in the first aspect of the present invention, when the target air conditioner satisfies the condition for overcoming the airflow propagation resistance, the method further includes:
[0019] determining an air outlet obstruction on an air outlet path of the target air conditioner in the scenario, and determining a second resistance condition of the air outlet obstruction to the air outlet of the target air conditioner;
[0020] determining, based on the second resistance condition, whether the air output of the target air conditioner meets the air output demand corresponding to the scenario; and triggering, when the air output of the target air conditioner meets the air output demand corresponding to the scenario, executing the operation of determining the first control parameter for the target air conditioner based on the air output demand corresponding to the scenario;
[0021] When the air outlet of the target air conditioner does not meet the air outlet demand corresponding to the scenario, a second auxiliary air outlet control parameter for the air outlet device is determined according to the air outlet demand and the second resistance condition.
[0022] As an optional embodiment, in the first aspect of the present invention, the air outlet demand corresponding to the scene includes an air outlet wind speed demand and an air outlet air flow diffusion demand, and the first resistance condition includes a regional resistance condition of the humidity condition to the air outlet of the target air conditioner in at least one target area in the scene;
[0023] When the target air conditioner satisfies the air outlet propagation resistance overcoming condition, determining a first control parameter for the target air conditioner according to the air outlet demand corresponding to the scenario includes:
[0024] determining, according to the outlet wind speed requirement and the outlet air flow diffusion requirement, a regional control parameter of the target air conditioner in each target area;
[0025] For each target area, determining a sub-control parameter for the target air conditioner in the target area based on the regional resistance of the target air conditioner to the air outlet of the target air conditioner in the target area according to the humidity condition and the regional control parameter of the target air conditioner in the target area;
[0026] A first control parameter for the target air conditioner is determined according to the sub-control parameter for the target air conditioner in each target area.
[0027] As an optional embodiment, in the first aspect of the present invention, the method further comprises:
[0028] Determine at least one target user in the scenario and user information of each target user, wherein the user information includes location information corresponding to the target user;
[0029] For each target user, obtaining a user air outlet requirement of the target user for the target air conditioner, wherein the user air outlet requirement includes at least one of a user air outlet wind force requirement, a user air outlet distance requirement, and a user air outlet angle requirement;
[0030] When the target air conditioner satisfies the air outlet propagation resistance overcoming condition, determining a first control update parameter for the target air conditioner according to the air outlet demand of each target user, and updating the first control parameter according to the first control update parameter;
[0031] When the target air conditioner does not meet the condition for overcoming the airflow propagation resistance, determining relative position information between each target user and the linkage device based on the user information of each target user, the relative position information including relative distance information and relative orientation information;
[0032] According to the user air outlet demand of each target user and the relative position information, a second control update parameter for the target air conditioner is determined, and the linkage control parameter and the second control parameter are updated according to the second control update parameter.
[0033] As an optional implementation, in the first aspect of the present invention, the user information further includes health information of the target user, and the method further includes:
[0034] Determining somatosensory information of each target user, wherein the somatosensory information includes somatosensory wind force;
[0035] For each target user, determining the target user's blowing comfort level based on the target user's health information and the perceived wind force, and judging whether the blowing comfort level is within a preset comfort level range;
[0036] For each of the target users, when the blowing comfort of the target user is not within the comfort range, the wind force control parameters for the target air conditioner are determined based on the health information of the target user and the perceived wind force, and the target air conditioner is controlled to perform wind force control operations based on the wind force control parameters.
[0037] The second aspect of the present invention discloses an intelligent air conditioning control device based on humidity and resistance value parameters, the device comprising:
[0038] A first determining module is configured to determine the humidity of a scene in which a target air conditioner is located, and determine a first resistance of the humidity to air outlet of the target air conditioner;
[0039] a judgment module, configured to judge whether the target air conditioner satisfies a preset air outlet propagation resistance overcoming condition based on a predetermined resistance overcoming capability of the target air conditioner and the first resistance condition;
[0040] The first determining module is further configured to, when the target air conditioner satisfies the air outlet propagation resistance overcoming condition, determine a first control parameter for the target air conditioner according to the air outlet demand corresponding to the scenario, and control the target air conditioner to perform a first air outlet operation according to the first control parameter;
[0041] The first determination module is also used to determine the linkage control parameters of the linkage device corresponding to the target air conditioner according to the humidity condition and the first resistance condition when the target air conditioner does not meet the condition for overcoming the air outlet propagation resistance, and determine the second control parameters for the target air conditioner according to the linkage control parameters and the air outlet demand corresponding to the scene, control the target air conditioner to perform the second air outlet operation according to the second control parameters, and control the linkage device to perform the resistance overcoming operation according to the linkage control parameters.
[0042] As an optional embodiment, in the second aspect of the present invention, when the target air conditioner does not meet the condition for overcoming the airflow propagation resistance, the first determination module determines the linkage control parameters of the linkage device corresponding to the target air conditioner based on the humidity condition and the first resistance condition, specifically including:
[0043] Determining linkage devices associated with the target air conditioner in the scene, the linkage devices including humidity adjustment devices;
[0044] When the target air conditioner does not meet the condition for overcoming the airflow propagation resistance, determining a humidity adjustment requirement corresponding to the scenario based on the humidity condition and the first resistance condition, the humidity adjustment requirement including a humidity adjustment range requirement and a humidity adjustment amount requirement;
[0045] Determine humidity adjustment parameters for the humidity adjustment device according to the humidity adjustment requirement, and determine the humidity adjustment parameters as linkage control parameters of the linkage device.
[0046] As an optional embodiment, in the second aspect of the present invention, the linkage device further includes an air outlet device, and the apparatus further includes:
[0047] a second determining module, configured to determine device capability information of the linkage device, wherein the device capability information includes a maximum humidity adjustment capability of the humidity adjustment device;
[0048] The judgment module is further configured to, after determining the humidity adjustment parameter for the humidity adjustment device according to the humidity adjustment requirement, determine, based on the humidity adjustment parameter, whether the maximum humidity adjustment capacity of the humidity adjustment device meets the humidity adjustment requirement, and determine the humidity adjustment parameter as the linkage control parameter of the linkage device when the maximum humidity adjustment capacity of the humidity adjustment device meets the humidity adjustment requirement;
[0049] The second determination module is also used to determine the first auxiliary air outlet control parameter for the air outlet device according to the first resistance condition when the maximum humidity adjustment capacity of the humidity adjustment device does not meet the humidity adjustment requirement, and determine the humidity adjustment parameter and the first auxiliary air outlet control parameter as the linkage control parameter of the linkage device.
[0050] As an optional embodiment, in the second aspect of the present invention, the device further includes:
[0051] a third determining module configured to, when the target air conditioner satisfies the air outlet propagation resistance overcoming condition, determine an air outlet obstruction on the air outlet path of the target air conditioner in the scenario, and determine a second resistance condition of the air outlet obstruction to the air outlet of the target air conditioner;
[0052] The judgment module is further configured to judge, based on the second resistance condition, whether the air output of the target air conditioner meets the air output demand corresponding to the scenario, and trigger the first determination module to execute the operation of determining the first control parameter for the target air conditioner based on the air output demand corresponding to the scenario when the air output of the target air conditioner meets the air output demand corresponding to the scenario;
[0053] The third determination module is further configured to determine a second auxiliary air outlet control parameter for the air outlet device according to the air outlet demand and the second resistance condition when the air outlet of the target air conditioner does not meet the air outlet demand corresponding to the scene.
[0054] As an optional embodiment, in the second aspect of the present invention, the air outlet demand corresponding to the scene includes an air outlet wind speed demand and an air outlet air flow diffusion demand, and the first resistance condition includes a regional resistance condition of the humidity condition to the air outlet of the target air conditioner in at least one target area in the scene;
[0055] When the target air conditioner satisfies the condition for overcoming the air propagation resistance, the first determining module determines the first control parameter for the target air conditioner according to the air demand corresponding to the scenario, specifically including:
[0056] determining, according to the outlet wind speed requirement and the outlet air flow diffusion requirement, a regional control parameter of the target air conditioner in each target area;
[0057] For each target area, determining a sub-control parameter for the target air conditioner in the target area based on the regional resistance of the target air conditioner to the air outlet of the target air conditioner in the target area according to the humidity condition and the regional control parameter of the target air conditioner in the target area;
[0058] A first control parameter for the target air conditioner is determined according to the sub-control parameter for the target air conditioner in each target area.
[0059] As an optional embodiment, in the second aspect of the present invention, the device further includes:
[0060] a fourth determining module, configured to determine at least one target user in the scenario and user information of each target user, wherein the user information includes location information corresponding to the target user;
[0061] an acquisition module, configured to acquire, for each target user, a user air outlet requirement of the target user for the target air conditioner, the user air outlet requirement including at least one of a user air outlet wind force requirement, a user air outlet distance requirement, and a user air outlet angle requirement;
[0062] The fourth determining module is further configured to, when the target air conditioner satisfies the air outlet propagation resistance overcoming condition, determine a first control update parameter for the target air conditioner based on the air outlet demand of each target user, and update the first control parameter based on the first control update parameter;
[0063] The fourth determining module is further configured to, when the target air conditioner does not meet the condition for overcoming the airflow propagation resistance, determine relative position information between each target user and the linkage device based on the user information of each target user, the relative position information including relative distance information and relative orientation information;
[0064] The fourth determination module is further used to determine the second control update parameter for the target air conditioner according to the user air outlet demand of each target user and the relative position information, and update the linkage control parameter and the second control parameter according to the second control update parameter.
[0065] As an optional implementation, in the second aspect of the present invention, the user information further includes health information of the target user, and the apparatus further includes:
[0066] A fifth determining module is configured to determine somatosensory information of each target user, wherein the somatosensory information includes somatosensory wind force;
[0067] The fifth determination module is further configured to determine, for each target user, a blowing comfort level of the target user based on the health information of the target user and the perceived wind force, and determine whether the blowing comfort level is within a preset comfort level range;
[0068] The fifth determination module is also used to determine the wind force control parameters for the target air conditioner for each target user when the blowing comfort of the target user is not within the comfort range, based on the health information of the target user and the perceived wind force, and control the target air conditioner to perform wind force control operations according to the wind force control parameters.
[0069] The third aspect of the present invention discloses another intelligent air conditioning control device based on humidity and resistance value parameters, the device comprising:
[0070] a memory storing executable program code;
[0071] a processor coupled to the memory;
[0072] The processor calls the executable program code stored in the memory to execute the intelligent air conditioning control method based on humidity and resistance value parameters disclosed in the first aspect of the present invention.
[0073] The 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 intelligent air conditioning control method based on humidity and resistance value parameters disclosed in the first aspect of the present invention.
[0074] Compared with the prior art, the embodiments of the present invention have the following beneficial effects:
[0075] In an embodiment of the present invention, the resistance to the airflow of a target air conditioner due to the humidity in a scene is used to determine whether the target air conditioner meets a preset condition for overcoming the airflow propagation resistance. If so, a first control parameter for the target air conditioner is determined based on the airflow demand corresponding to the scene. If not, a linkage control parameter for the linkage device corresponding to the target air conditioner is determined, and a second control parameter for the target air conditioner is determined based on the linkage control parameter and the airflow demand corresponding to the scene. Thus, the implementation of the present invention enables intelligent regulation of the target air conditioner based on the humidity and resistance value parameters in the scene, improving the accuracy and intelligence of the regulation of the target air conditioner, enhancing the air conditioner's ability to overcome resistance factors, and improving the consistency of wind speed and airflow diffusion in the target air conditioner's operating scenario, thereby enhancing user comfort and the air conditioning experience. BRIEF DESCRIPTION OF THE DRAWINGS
[0076] 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.
[0077] Figure 1 This is a schematic diagram of an application scenario of an intelligent air conditioning control method based on humidity and resistance value parameters disclosed in an embodiment of the present invention;
[0078] Figure 2 This is a flow chart of an intelligent air conditioning control method based on humidity and resistance value parameters disclosed in an embodiment of the present invention;
[0079] Figure 3 This is a flow chart of another intelligent air conditioning control method based on humidity and resistance value parameters disclosed in an embodiment of the present invention;
[0080] Figure 4 This is a schematic structural diagram of an intelligent air conditioning control device based on humidity and resistance value parameters disclosed in an embodiment of the present invention;
[0081] Figure 5 This is a structural diagram of another intelligent air conditioning control device based on humidity and resistance value parameters disclosed in an embodiment of the present invention;
[0082] Figure 6 This is a structural diagram of another intelligent air-conditioning control device based on humidity and resistance value parameters disclosed in an embodiment of the present invention. DETAILED DESCRIPTION
[0083] 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.
[0084] 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.
[0085] 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.
[0086] The present invention discloses a method and device for intelligently controlling an air conditioner based on humidity and resistance parameters. This method can intelligently control a target air conditioner based on the humidity and resistance parameters in a given scenario, improving the accuracy and intelligence of the control, enhancing the air conditioner's ability to overcome resistance factors, and improving the consistency of wind speed and airflow diffusion in the target air conditioner's operating scenario, thereby enhancing user comfort and the air conditioner's user experience. These are described in detail below.
[0087] In order to better understand the intelligent air conditioning control method and device based on humidity and resistance value parameters described in the present invention, the scenario to which the intelligent air conditioning control method based on humidity and resistance value parameters is applicable is first described. Specifically, the scenario can be as follows: Figure 1 As shown, Figure 1 This is a schematic diagram of an application scenario of an intelligent air conditioning control method based on humidity and resistance parameters disclosed in an embodiment of the present invention. Figure 1 As shown, the scenario diagram may include a user (Xiao Ming), a target air conditioner, linked devices (including humidity control devices such as dehumidifiers and air outlet devices such as fans), and air outlet obstructions (such as chairs). The scenario may include home scenes, office scenes, etc. The target air conditioner can intelligently determine the humidity, air outlet obstructions and other information in the scene, and then determine the air outlet resistance of the air conditioner in the scene, and then intelligently control the target air conditioner and linked devices.
[0088] It should be noted that Figure 1 The scenario diagram shown is only for the purpose of illustrating the applicable scenarios of the intelligent air conditioning control method based on humidity and resistance parameters. The users, linkage devices, and air flow obstructions involved are also only schematically shown. Figure 1 The above describes the scenarios to which the intelligent air conditioning control method based on humidity and resistance parameters is applicable. The following describes the intelligent air conditioning control method and device based on humidity and resistance parameters in detail.
[0089] Example 1
[0090] See also Figure 2 , Figure 2This is a flow chart of an intelligent air conditioning control method based on humidity and resistance parameters disclosed in an embodiment of the present invention. Figure 2 The described intelligent air conditioning control method based on humidity and resistance value parameters can be applied to an intelligent air conditioning control device based on humidity and resistance value parameters, wherein the intelligent air conditioning control device based on humidity and resistance value parameters may include any one of a user device, an intelligent server or an intelligent platform, and the user device includes but is not limited to at least one of a smart home (such as: smart air conditioner, smart fan, etc.), a smart phone (Android phone, iOS phone, etc.) and a smart phone watch, etc., and the smart server includes a local server or a cloud server, which is not limited in the embodiment of the present invention. Figure 2 As shown, the intelligent air conditioning control method based on humidity and resistance value parameters may include the following operations:
[0091] 101. Determine the humidity of the scene where the target air conditioner is located, and determine the first resistance of the humidity to the air outlet of the target air conditioner.
[0092] In an embodiment of the present invention, optionally, the scene in which the target air conditioner is located may include at least one of a home scene, an office scene, a public scene, etc., the humidity condition of the scene in which the target air conditioner is located may include at least one of the humidity size and humidity change conditions of each area in the scene, and the first resistance condition of the humidity condition to the air outlet of the target air conditioner may include the regional resistance condition of at least one target area in the humidity condition scene to the air outlet of the target air conditioner, that is, the ability of the humidity condition to weaken the air outlet of the target air conditioner. The greater the humidity, the stronger the weakening ability, which is not limited by the present invention.
[0093] 102. Based on the predetermined resistance overcoming capability of the target air conditioner and the first resistance condition, determine whether the target air conditioner meets a preset air outlet propagation resistance overcoming condition.
[0094] In an embodiment of the present invention, optionally, the resistance overcoming capability of the target air conditioner may represent the ability of the target air conditioner's air outlet to overcome or offset the resistance conditions in the scene. When the first resistance condition is greater than the resistance overcoming capability of the target air conditioner, it may be determined that the target air conditioner does not meet the preset air outlet propagation resistance overcoming conditions. When the first resistance condition is less than the resistance overcoming capability of the target air conditioner, it may be determined that the target air conditioner meets the preset air outlet propagation resistance overcoming conditions. The present invention does not impose any limitation thereto.
[0095] 103. When the target air conditioner meets the condition of overcoming the air propagation resistance, determine a first control parameter for the target air conditioner according to the air demand corresponding to the scene, and control the target air conditioner to perform a first air operation according to the first control parameter.
[0096] In the embodiment of the present invention, optionally, the first control parameter may be used to control the target air conditioner to perform a first air outlet operation, so that the air outlet of the target air conditioner overcomes or offsets the first resistance.
[0097] 104. When the target air conditioner does not meet the condition for overcoming the air outlet propagation resistance, the linkage control parameters of the linkage equipment corresponding to the target air conditioner are determined according to the humidity conditions and the first resistance conditions, and the second control parameters for the target air conditioner are determined according to the linkage control parameters and the air outlet demand corresponding to the scene. The target air conditioner is controlled to perform the second air outlet operation according to the second control parameters, and the linkage equipment is controlled to perform the resistance overcoming operation according to the linkage control parameters.
[0098] In an embodiment of the present invention, optionally, the linkage device may include a humidity adjustment device and may also include an air outlet device. The second control parameter may be used to control the target air conditioner to perform a second air outlet operation. The linkage control parameter may include a control parameter for the humidity adjustment device to control the linkage device to perform a resistance overcoming operation, such as a dehumidification operation, to reduce the first resistance condition in the scene, and cooperate with the target air conditioner to perform the second air outlet operation, so that the air outlet of the target air conditioner overcomes or offsets the first resistance condition.
[0099] In an embodiment of the present invention, optionally, the target air conditioner may be equipped with a built-in wireless communication module, such as a WiFi module and / or a Bluetooth module. The target air conditioner may access the network based on the WiFi module and communicate wirelessly with other linked devices in the scene that are connected to the network or in the same wireless local area network. Alternatively, the target air conditioner may communicate wirelessly with other linked devices with Bluetooth functions connected to the scene based on the Bluetooth module, and then control the linked devices to perform resistance overcoming operations according to the linked control parameters. The present invention does not limit this.
[0100] In an embodiment of the present invention, optionally, the target air conditioner may be equipped with a built-in voice module, and the target air conditioner may automatically control the linkage device to perform the resistance overcoming operation according to the linkage control parameters, or may perform voice interaction with the user based on the voice module, modify the linkage control parameters based on the instructions triggered by the user, and then control the linkage device to perform the resistance overcoming operation according to the linkage control parameters. The user may also perform voice control on one or more of the other functions or parameters of the target air conditioner such as turning on, off, working mode, working temperature, etc. based on the voice module, or perform voice control on one or more of the other functions or parameters of the linkage device corresponding to the target air conditioner such as turning on, off, working mode, etc. based on the voice module. The present invention does not limit this.
[0101] It can be seen that implementation Figure 2The described intelligent air-conditioning control method based on humidity and resistance value parameters can determine whether the target air-conditioner meets the preset air-propagation resistance overcoming conditions based on the resistance of the target air-conditioner's air outlet according to the humidity conditions in the scene. If the conditions are met, the first control parameters for the target air-conditioner are determined according to the air-outlet requirements corresponding to the scene, and the target air-conditioner can be intelligently controlled based on the humidity and resistance value parameters in the scene, thereby improving the control accuracy and intelligence of the target air-conditioner. If the conditions are not met, the linkage control parameters of the linkage equipment corresponding to the target air-conditioner are determined, and the second control parameters for the target air-conditioner are determined according to the linkage control parameters and the air-outlet requirements corresponding to the scene, thereby further improving the control accuracy and intelligence of the target air-conditioner, and can improve the ability of the air-conditioner to overcome the resistance factor, and improve the consistency of the wind speed and airflow diffusion degree in the target air-conditioner operation scene, thereby improving the user's comfort and air-conditioning usage experience.
[0102] In an optional embodiment, the air outlet requirement corresponding to the scene includes an air outlet wind speed requirement and an air outlet air flow diffusion requirement, and the first resistance condition includes a regional resistance condition of humidity to the air outlet of the target air conditioner in at least one target area in the scene;
[0103] When the target air conditioner satisfies the condition for overcoming the air propagation resistance, determining the first control parameter for the target air conditioner according to the air demand corresponding to the scene may include the following operations:
[0104] Determine the regional control parameters of the target air conditioner in each target area based on the outlet wind speed requirements and outlet air flow diffusion requirements;
[0105] For each target area, determining the sub-control parameters for the target air conditioner in the target area based on the regional resistance to the air outlet of the target air conditioner in the target area due to the humidity and the regional control parameters of the target air conditioner in the target area;
[0106] A first control parameter for the target air conditioner is determined according to the sub-control parameters for the target air conditioner in each target area.
[0107] In this optional embodiment, optionally, the air outlet demand corresponding to the scene may include an air outlet wind speed demand and an air outlet air flow diffusion demand, and the first resistance condition may include the regional resistance condition of the humidity condition to the air outlet of the target air conditioner in at least one target area in the scene. The target area in the scene can be set by the user himself, or automatically circled according to the user's position, or automatically delineated according to the functional zoning of the scene. The sizes and shapes of different target areas may be the same or different, and this embodiment does not limit this.
[0108] In this optional embodiment, optionally, based on the outlet wind speed requirement and the outlet air flow diffusion requirement, the regional control parameters of the target air conditioner in each target area are determined. The regional control parameters may include one or more of the outlet size, outlet duration, outlet temperature, outlet pitch angle, etc. of the target air conditioner in the target area. Based on the regional resistance to the outlet of the target air conditioner in the target area due to humidity conditions and the regional control parameters of the target air conditioner in the target area, the sub-control parameters for the target air conditioner in the target area are determined. The sub-control parameters corresponding to the target air conditioner in each target area can be expressed as control parameters for controlling the target air conditioner to overcome the regional resistance conditions based on the regional control parameters, which are not limited in this embodiment.
[0109] It can be seen that the implementation of this optional embodiment can determine the regional control parameters of the target air conditioner in each target area according to the outlet wind speed requirement and the outlet air flow diffusion requirement. For each target area, the sub-control parameters for the target air conditioner in the target area are determined according to the regional resistance to the outlet air of the target air conditioner in the target area under the humidity conditions, and the regional control parameters of the target air conditioner in the target area. Based on the sub-control parameters for the target air conditioner in each target area, the first control parameters for the target air conditioner are determined, which can improve the accuracy of the determined first control parameters, and the control of the target air conditioner in each target area is different, thereby improving the operation intelligence and accuracy of the target air conditioner in each target area, improving the control intelligence and accuracy of the target air conditioner, and thereby improving the user experience.
[0110] In another optional embodiment, the intelligent air conditioning control method based on humidity and resistance value parameters may further include the following operations:
[0111] Determine at least one target user in the scene and user information of each target user, where the user information includes location information corresponding to the target user;
[0112] For each target user, obtaining the target user's air outlet requirements for the target air conditioner, where the user air outlet requirements include at least one of the user's air outlet wind speed requirements, the user's air outlet distance requirements, and the user's air outlet angle requirements;
[0113] When the target air conditioner satisfies the condition for overcoming the air propagation resistance, determining a first control update parameter for the target air conditioner according to the air outlet demand of each target user, and updating the first control parameter according to the first control update parameter;
[0114] When the target air conditioner does not meet the condition for overcoming the air propagation resistance, the relative position information between each target user and the linkage device is determined based on the user information of each target user, where the relative position information includes relative distance information and relative orientation information;
[0115] According to the user air outlet demand and relative position information of each target user, a second control update parameter for the target air conditioner is determined, and the linkage control parameter and the second control parameter are updated according to the second control update parameter.
[0116] In this optional embodiment, optionally, the user information of the target user may include the location information of the target user, which may specifically include one or more of the target area where the target user is located, the relative angle between the target user and the target air conditioner, the direction of the target user relative to the target air conditioner, etc. The user air outlet demand of the target user for the target air conditioner may include at least one of the user air outlet wind force demand, the user air outlet distance demand, and the user air outlet angle demand, which is not limited in this embodiment.
[0117] In this optional embodiment, optionally, when the target air conditioner meets the condition of overcoming the air propagation resistance, the first control update parameter can be used to update the first control parameter so that the target air conditioner can meet the user air outlet demand of the target user when operating according to the updated first control parameter. When the target air conditioner does not meet the condition of overcoming the air propagation resistance, the relative position information between each target user and the linkage device is determined. The relative position information may include relative distance information and relative orientation information. According to the user air outlet demand and relative position information of each target user, the second control update parameter for the target air conditioner is determined. The second control update parameter can be used to update the linkage control parameter and the second control parameter so that the target air conditioner can operate according to the updated second control parameter, and the associated device can meet the user air outlet demand of the target user when operating according to the updated linkage control parameter. This embodiment does not limit this.
[0118] It can be seen that the implementation of this optional embodiment can determine the first control update parameter for the target air conditioner according to the user air outlet demand of each target user when the target air conditioner meets the condition for overcoming the air outlet propagation resistance, and update the first control parameter according to the first control update parameter, which can improve the matching degree between the operation of the target air conditioner and the target user. When the target air conditioner does not meet the condition for overcoming the air outlet propagation resistance, the relative position information between each target user and the linkage device is determined according to the user information of each target user, and the second control update parameter for the target air conditioner is determined according to the user air outlet demand and relative position information of each target user, and the linkage control parameter and the second control parameter are updated according to the second control update parameter. The linkage device and the target air conditioner can be linked to operate to adapt to the target user, improve the control accuracy of the target air conditioner, and thereby improve the user's comfort and air-conditioning usage experience.
[0119] In another optional embodiment, the user information further includes health information of the target user, and the intelligent air conditioning control method based on humidity and resistance value parameters may further include the following operations:
[0120] Determine the somatosensory information of each target user, the somatosensory information including the somatosensory wind force;
[0121] For each target user, determine the target user's blowing comfort based on the target user's health information and perceived wind speed, and judge whether the blowing comfort is within a preset comfort range;
[0122] For each target user, when the target user's blowing comfort is not within the comfort range, the wind control parameters for the target air conditioner are determined based on the target user's health information and perceived wind force, and the target air conditioner is controlled to perform wind control operations based on the wind control parameters.
[0123] In this optional embodiment, the user information may also include the health information of the target user, and the target user's somatosensory information may include the somatosensory wind force and the somatosensory wind outlet angle, etc. For each target user, when the target user's blowing comfort is not within the comfort range, the wind force control parameters for the target air conditioner are determined based on the target user's health information and somatosensory wind force, and the wind force control parameters are used to control the air outlet size of the target air conditioner.
[0124] It can be seen that the implementation of this optional embodiment can determine the target user's blowing comfort based on the target user's health information and perceived wind force, and judge whether the blowing comfort is within the preset comfort range. For each target user, when the target user's blowing comfort is not within the comfort range, the wind force control parameters for the target air conditioner are determined based on the target user's health information and perceived wind force, and the target air conditioner is controlled to perform wind force control operations based on the wind force control parameters. The target air conditioner can be adjusted according to the target user's perceived wind force to adapt to the target user, thereby improving the control accuracy of the target air conditioner, and thereby improving the user's usage comfort and air conditioning usage experience.
[0125] Example 2
[0126] See also Figure 3 , Figure 3 This is a flow chart of an intelligent air conditioning control method based on humidity and resistance parameters disclosed in an embodiment of the present invention. Figure 3 The described intelligent air conditioning control method based on humidity and resistance value parameters can be applied to an intelligent air conditioning control device based on humidity and resistance value parameters, wherein the intelligent air conditioning control device based on humidity and resistance value parameters may include any one of a user device, an intelligent server or an intelligent platform, and the user device includes but is not limited to at least one of a smart home (such as: smart air conditioner, smart fan, etc.), a smart phone (Android phone, iOS phone, etc.) and a smart phone watch, etc., and the smart server includes a local server or a cloud server, which is not limited in the embodiment of the present invention. Figure 3As shown, the intelligent air conditioning control method based on humidity and resistance value parameters may include the following operations:
[0127] 201. Determine the humidity of a scene where a target air conditioner is located, and determine a first resistance of the humidity to air outlet of the target air conditioner.
[0128] 202. Determine whether the target air conditioner meets a preset air outlet resistance overcoming condition based on the predetermined resistance overcoming capability of the target air conditioner and the first resistance condition.
[0129] 203. When the target air conditioner meets the condition of overcoming the air propagation resistance, determine a first control parameter for the target air conditioner according to the air demand corresponding to the scene, and control the target air conditioner to perform a first air operation according to the first control parameter.
[0130] 204. Determine linkage devices associated with the target air conditioner in the scene, where the linkage devices include humidity control devices.
[0131] In an embodiment of the present invention, optionally, the linkage device may include a humidity adjustment device, which may be operated in conjunction with the target air conditioner. When the target air conditioner does not meet the conditions for overcoming the air propagation resistance, a dehumidification operation is performed to reduce the humidity in the scene to ensure the normal operation of the target air conditioner. The linkage device may also include an air outlet device, which may be operated in conjunction with the target air conditioner to discharge air.
[0132] 205. When the target air conditioner does not meet the condition for overcoming the air outlet propagation resistance, the humidity adjustment requirement corresponding to the scene is determined according to the humidity condition and the first resistance condition. The humidity adjustment requirement includes a humidity adjustment range requirement and a humidity adjustment amount requirement.
[0133] In an embodiment of the present invention, optionally, the humidity adjustment requirement may include a humidity adjustment range requirement and a humidity adjustment amount requirement. The humidity adjustment range requirement may indicate the humidity adjustment requirement for a certain range or area within the scene. For example, when there is a target user in a certain area of the scene and the humidity in the area is high, the humidity adjustment device is controlled to dehumidify the area to ensure the target user's air-conditioning experience in the area. The humidity adjustment amount requirement may indicate the overall humidity adjustment amount requirement for the scene, or it may indicate the humidity adjustment amount requirement for a certain area in the scene. The present invention does not limit this.
[0134] 206. Determine humidity adjustment parameters for the humidity adjustment device according to the humidity adjustment requirement, and determine the humidity adjustment parameters as linkage control parameters of the linkage device.
[0135] In the embodiment of the present invention, optionally, the humidity adjustment parameter may include a humidity adjustment range parameter and a humidity adjustment amount parameter.
[0136] 207. Determine a second control parameter for the target air conditioner based on the linkage control parameter and the air outlet demand corresponding to the scene, control the target air conditioner to perform a second air outlet operation based on the second control parameter, and control the linkage device to perform a resistance overcoming operation based on the linkage control parameter.
[0137] In the embodiment of the present invention, for other descriptions of steps 201 to 203 and step 207, please refer to the detailed description of steps 101 to 104 in the first embodiment, which will not be repeated in the embodiment of the present invention.
[0138] It can be seen that implementation Figure 3 The described intelligent air conditioning control method based on humidity and resistance value parameters can determine whether the target air conditioner meets the preset air outlet propagation resistance overcoming conditions based on the resistance of the target air conditioner's air outlet according to the humidity conditions in the scene. If the conditions are met, the first control parameter for the target air conditioner is determined according to the air outlet demand corresponding to the scene. The target air conditioner can be intelligently controlled based on the humidity and resistance value parameters in the scene, thereby improving the control accuracy and intelligence of the target air conditioner, and determining the linkage device associated with the target air conditioner in the scene. If the conditions are not met, the humidity adjustment demand corresponding to the scene is determined according to the humidity conditions and the first resistance conditions, and the humidity adjustment parameter for the humidity adjustment device is determined according to the humidity adjustment demand, and the humidity adjustment parameter is determined as the linkage control parameter of the linkage device, and the second control parameter for the target air conditioner is determined according to the linkage control parameter and the air outlet demand corresponding to the scene, further improving the control accuracy and intelligence of the target air conditioner, and can improve the ability of the air conditioner to overcome the resistance factor, improve the consistency of the wind speed and air flow diffusion degree in the target air conditioner operation scene, and thereby improve the user's comfort and air conditioning usage experience.
[0139] In an optional embodiment, the linkage device further includes an air outlet device, and the intelligent air conditioning control method based on humidity and resistance value parameters may further include the following operations:
[0140] Determine device capability information of the linkage device, the device capability information including the maximum humidity adjustment capability of the humidity adjustment device;
[0141] After determining a humidity adjustment parameter for the humidity adjustment device according to the humidity adjustment requirement, determining whether a maximum humidity adjustment capacity of the humidity adjustment device meets the humidity adjustment requirement based on the humidity adjustment parameter, and determining the humidity adjustment parameter as a linkage control parameter of the linkage device when the maximum humidity adjustment capacity of the humidity adjustment device meets the humidity adjustment requirement;
[0142] When the maximum humidity adjustment capacity of the humidity adjustment device does not meet the humidity adjustment requirements, the first auxiliary air outlet control parameter for the air outlet device is determined according to the first resistance condition, and the humidity adjustment parameter and the first auxiliary air outlet control parameter are determined as the linkage control parameters of the linkage device.
[0143] In this optional embodiment, optionally, the linkage device may include a humidity control device and may also include an air outlet device. The device capability information of the linkage device may include the maximum humidity control capability of the humidity control device. Specifically, it may include the maximum humidity control range and the maximum humidity control amount of the humidity control device. It is judged whether the maximum humidity control capability of the humidity control device meets the humidity control requirements. The maximum humidity control capability of the humidity control device not meeting the humidity control requirements may include that the maximum humidity control range of the humidity control device does not meet the humidity control range requirements and / or the maximum humidity control amount of the humidity control device does not meet the humidity control amount requirements. When the maximum humidity control capability of the humidity control device meets the humidity control requirements, the humidity control parameter is determined as the linkage control parameter of the linkage device. This embodiment does not limit this.
[0144] In this optional embodiment, optionally, when the maximum humidity adjustment capacity of the humidity adjustment device does not meet the humidity adjustment requirements, a first auxiliary air outlet control parameter for the air outlet device is determined, and the first auxiliary air outlet control parameter can be used to control the air outlet device to perform an auxiliary air outlet operation, which is used to assist in supplementing the target air-conditioning outlet, and determine the humidity adjustment parameter and the first auxiliary air outlet control parameter as the linkage control parameters of the linkage device.
[0145] It can be seen that the implementation of this optional embodiment can determine whether the maximum humidity adjustment capacity of the humidity adjustment device meets the humidity adjustment requirements based on the humidity adjustment parameters. When the maximum humidity adjustment capacity of the humidity adjustment device meets the humidity adjustment requirements, the humidity adjustment parameters are determined as the linkage control parameters of the linkage device. When the maximum humidity adjustment capacity of the humidity adjustment device does not meet the humidity adjustment requirements, the first auxiliary air outlet control parameters for the air outlet device are determined according to the first resistance situation, and the humidity adjustment parameters and the first auxiliary air outlet control parameters are determined as the linkage control parameters of the linkage device. The air outlet device can assist the target air conditioner to discharge air, thereby improving the consistency of the wind speed and air flow diffusion degree of the target air conditioner operation scenario, thereby improving the user's comfort and air conditioning usage experience.
[0146] In another optional embodiment, when the target air conditioner meets the condition of overcoming the air flow propagation resistance, the air conditioner intelligent control method based on humidity and resistance value parameters may further include the following operations:
[0147] Determine an air outlet obstruction on an air outlet path of a target air conditioner in the scene, and determine a second resistance condition of the air outlet obstruction to the air outlet of the target air conditioner;
[0148] determining, based on the second resistance condition, whether the air output of the target air conditioner meets the air output demand corresponding to the scene; and triggering an operation of determining a first control parameter for the target air conditioner based on the air output demand corresponding to the scene when the air output of the target air conditioner meets the air output demand corresponding to the scene;
[0149] When the air output of the target air conditioner does not meet the air output demand corresponding to the scene, a second auxiliary air output control parameter for the air output device is determined according to the air output demand and the second resistance condition.
[0150] In this optional embodiment, the air outlet obstacles may optionally include items in the air outlet path of the target air conditioner that block, weaken, or change the direction of the air outlet of the target air conditioner, and may specifically include furniture, screens, curtains and other items. The second resistance condition may indicate the ability of the air outlet obstacle to block, weaken, or change the direction of the air outlet of the target air conditioner, which is not limited in this embodiment.
[0151] In this optional embodiment, it is optional to judge whether the air outlet of the target air conditioner meets the air outlet demand corresponding to the scene. When the second resistance situation corresponding to the air outlet obstacle has a low impact on the air outlet of the target air conditioner, it is determined that the air outlet of the target air conditioner meets the air outlet demand corresponding to the scene, and the operation of determining the first control parameter for the target air conditioner according to the air outlet demand corresponding to the scene is executed. When the second resistance situation corresponding to the air outlet obstacle has a high impact on the air outlet of the target air conditioner, the second auxiliary air outlet control parameter for the air outlet device is determined according to the air outlet demand and the second resistance situation. The second auxiliary air outlet control parameter can be used to control the air outlet device to assist the target air conditioner in air outlet, which is not limited in this embodiment.
[0152] It can be seen that the implementation of this optional embodiment can determine the second resistance situation of the air outlet obstacle to the air outlet of the target air conditioner, and judge whether the air outlet of the target air conditioner meets the air outlet demand corresponding to the scene based on the second resistance situation. When the air outlet of the target air conditioner meets the air outlet demand corresponding to the scene, the operation of determining the first control parameter for the target air conditioner according to the air outlet demand corresponding to the scene is executed. When the air outlet of the target air conditioner does not meet the air outlet demand corresponding to the scene, the second auxiliary air outlet control parameter for the air outlet device is determined based on the air outlet demand and the second resistance situation. The air outlet device can assist the target air conditioner in outlet air discharge, overcome or offset the impact of the air outlet obstacle in the scene on the user, improve the consistency of the wind speed and air flow diffusion degree of the target air conditioner operation scene, and thereby improve the user's comfort and air conditioning usage experience.
[0153] Example 3
[0154] See also Figure 4 , Figure 4 This is a schematic diagram of the structure of an intelligent air conditioning control device based on humidity and resistance value parameters disclosed in an embodiment of the present invention. Figure 4 The described intelligent air conditioning control device based on humidity and resistance value parameters may include any one of user equipment, intelligent servers or intelligent platforms. User equipment includes but is not limited to at least one of smart homes (such as smart air conditioners, smart fans, etc.), smart phones (Android phones, iOS phones, etc.) and smart phone watches, etc. The intelligent server includes a local server or a cloud server, which is not limited in the embodiment of the present invention. Figure 3 As shown, the intelligent air conditioning control device based on humidity and resistance value parameters may include:
[0155] A first determining module 301 is configured to determine the humidity of a scene where a target air conditioner is located, and determine a first resistance to air flow from the target air conditioner caused by the humidity;
[0156] A determination module 302 is configured to determine whether the target air conditioner satisfies a preset air flow propagation resistance overcoming condition based on the predetermined resistance overcoming capability of the target air conditioner and the first resistance condition;
[0157] The first determining module 301 is further configured to determine a first control parameter for the target air conditioner according to the air demand corresponding to the scenario when the target air conditioner meets the condition for overcoming the air propagation resistance, and control the target air conditioner to perform a first air operation according to the first control parameter;
[0158] The first determination module 301 is also used to determine the linkage control parameters of the linkage equipment corresponding to the target air conditioner according to the humidity condition and the first resistance condition when the target air conditioner does not meet the condition for overcoming the air outlet propagation resistance, and determine the second control parameters for the target air conditioner according to the linkage control parameters and the air outlet demand corresponding to the scene, control the target air conditioner to perform the second air outlet operation according to the second control parameters, and control the linkage equipment to perform the resistance overcoming operation according to the linkage control parameters.
[0159] It can be seen that implementation Figure 4 The described intelligent air-conditioning control device based on humidity and resistance value parameters can adjust the resistance of the target air-conditioner's air outlet according to the humidity conditions in the scene, and judge whether the target air-conditioner meets the preset air-outlet propagation resistance overcoming conditions. If satisfied, the first control parameter for the target air-conditioner is determined according to the air-outlet demand corresponding to the scene, and the target air-conditioner can be intelligently controlled based on the humidity and resistance value parameters in the scene, thereby improving the control accuracy and intelligence of the target air-conditioner. If not satisfied, the linkage control parameters of the linkage equipment corresponding to the target air-conditioner are determined, and the second control parameters for the target air-conditioner are determined according to the linkage control parameters and the air-outlet demand corresponding to the scene, thereby further improving the control accuracy and intelligence of the target air-conditioner, and can improve the consistency of the wind speed and airflow diffusion degree of the target air-conditioner operation scene, thereby improving the user's comfort and air-conditioning usage experience.
[0160] In an optional embodiment, if Figure 5 As shown, when the target air conditioner does not meet the condition for overcoming the air flow propagation resistance, the first determining module 301 determines the linkage control parameters of the linkage device corresponding to the target air conditioner according to the humidity condition and the first resistance condition. The specific method includes:
[0161] Determining linkage devices associated with the target air conditioner in the scene, the linkage devices including humidity control devices;
[0162] When the target air conditioner does not meet the condition for overcoming the air propagation resistance, the humidity adjustment requirement corresponding to the scenario is determined based on the humidity condition and the first resistance condition. The humidity adjustment requirement includes the humidity adjustment range requirement and the humidity adjustment amount requirement.
[0163] Determine humidity adjustment parameters for the humidity adjustment device according to the humidity adjustment requirement, and determine the humidity adjustment parameters as linkage control parameters for the linkage device.
[0164] It can be seen that implementation Figure 5 The described intelligent air-conditioning control device based on humidity and resistance value parameters can adjust the resistance of the target air-conditioner's air outlet according to the humidity conditions in the scene, and judge whether the target air-conditioner meets the preset air outlet propagation resistance overcoming conditions. If it meets the conditions, the first control parameter for the target air-conditioner is determined according to the air outlet demand corresponding to the scene, and the target air-conditioner can be intelligently controlled based on the humidity and resistance value parameters in the scene, thereby improving the control accuracy and intelligence of the target air-conditioner, and determining the linkage device associated with the target air-conditioner in the scene. If it does not meet the conditions, the humidity adjustment demand corresponding to the scene is determined according to the humidity conditions and the first resistance conditions, and the humidity adjustment parameters for the humidity adjustment device are determined according to the humidity adjustment demand, and the humidity adjustment parameters are determined as the linkage control parameters of the linkage device, and the second control parameters for the target air-conditioner are determined according to the linkage control parameters and the air outlet demand corresponding to the scene, further improving the control accuracy and intelligence of the target air-conditioner, and being able to improve the consistency of the wind speed and airflow diffusion degree in the target air-conditioner operation scene, thereby improving the user's comfort and air-conditioning usage experience.
[0165] In another optional embodiment, Figure 5 As shown, the linkage device also includes an air outlet device. The air conditioning intelligent control device based on humidity and resistance value parameters may also include:
[0166] The second determining module 303 is used to determine the device capability information of the linkage device, where the device capability information includes the maximum humidity adjustment capability of the humidity adjustment device;
[0167] The judgment module 302 is further configured to, after determining the humidity adjustment parameter for the humidity adjustment device according to the humidity adjustment requirement, determine whether the maximum humidity adjustment capacity of the humidity adjustment device meets the humidity adjustment requirement based on the humidity adjustment parameter, and determine the humidity adjustment parameter as the linkage control parameter of the linkage device when the maximum humidity adjustment capacity of the humidity adjustment device meets the humidity adjustment requirement;
[0168] The second determination module 303 is also used to determine the first auxiliary air outlet control parameter for the air outlet device according to the first resistance condition when the maximum humidity adjustment capacity of the humidity adjustment device does not meet the humidity adjustment requirements, and determine the humidity adjustment parameter and the first auxiliary air outlet control parameter as the linkage control parameters of the linkage device.
[0169] It can be seen that implementation Figure 5 The described intelligent air-conditioning control device based on humidity and resistance value parameters can judge whether the maximum humidity adjustment capacity of the humidity adjustment device meets the humidity adjustment requirements according to the humidity adjustment parameters. When the maximum humidity adjustment capacity of the humidity adjustment device meets the humidity adjustment requirements, the humidity adjustment parameters are determined as the linkage control parameters of the linkage device. When the maximum humidity adjustment capacity of the humidity adjustment device does not meet the humidity adjustment requirements, the first auxiliary air outlet control parameters for the air outlet device are determined according to the first resistance situation, and the humidity adjustment parameters and the first auxiliary air outlet control parameters are determined as the linkage control parameters of the linkage device. The air outlet device can assist the target air conditioner to discharge air, thereby improving the consistency of the wind speed and air flow diffusion degree of the target air conditioner operation scenario, thereby improving the user's comfort and air-conditioning usage experience.
[0170] In another optional embodiment, Figure 5 As shown, the intelligent air conditioning control device based on humidity and resistance value parameters may also include:
[0171] The third determining module 304 is configured to, when the target air conditioner satisfies the air outlet propagation resistance overcoming condition, determine an air outlet obstruction on the air outlet path of the target air conditioner in the scene, and determine a second resistance condition of the air outlet obstruction to the air outlet of the target air conditioner;
[0172] The judgment module 302 is further configured to judge, based on the second resistance condition, whether the air output of the target air conditioner meets the air output demand corresponding to the scene, and when the air output of the target air conditioner meets the air output demand corresponding to the scene, trigger the first determination module 301 to execute an operation of determining a first control parameter for the target air conditioner based on the air output demand corresponding to the scene;
[0173] The third determining module 304 is further configured to determine a second auxiliary air outlet control parameter for the air outlet device according to the air outlet demand and the second resistance condition when the air outlet of the target air conditioner does not meet the air outlet demand corresponding to the scene.
[0174] It can be seen that implementation Figure 5 The described intelligent air-conditioning control device based on humidity and resistance value parameters can determine the second resistance situation of the air outlet obstacle to the air outlet of the target air-conditioner, and judge whether the air outlet of the target air-conditioner meets the air outlet demand corresponding to the scene according to the second resistance situation. When the air outlet of the target air-conditioner meets the air outlet demand corresponding to the scene, the operation of determining the first control parameter for the target air-conditioner according to the air outlet demand corresponding to the scene is executed. When the air outlet of the target air-conditioner does not meet the air outlet demand corresponding to the scene, the second auxiliary air outlet control parameter for the air outlet device is determined according to the air outlet demand and the second resistance situation. The air outlet device can assist the air outlet of the target air-conditioner, overcome or offset the impact of the air outlet obstacle in the scene on the user, improve the consistency of the wind speed and air flow diffusion degree of the target air-conditioner operation scene, and thereby improve the user's comfort and air-conditioning usage experience.
[0175] In another optional embodiment, Figure 5 As shown, the air outlet requirements corresponding to the scene include the air outlet wind speed requirement and the air outlet air flow diffusion requirement, and the first resistance condition includes the regional resistance condition of the humidity condition to the air outlet of the target air conditioner in at least one target area in the scene;
[0176] When the target air conditioner satisfies the condition for overcoming the air propagation resistance, the first determining module 301 determines the first control parameter for the target air conditioner according to the air demand corresponding to the scene. Specifically, the method includes:
[0177] Determine the regional control parameters of the target air conditioner in each target area based on the outlet wind speed requirements and outlet air flow diffusion requirements;
[0178] For each target area, determining the sub-control parameters for the target air conditioner in the target area based on the regional resistance to the air outlet of the target air conditioner in the target area due to the humidity and the regional control parameters of the target air conditioner in the target area;
[0179] A first control parameter for the target air conditioner is determined according to the sub-control parameters for the target air conditioner in each target area.
[0180] It can be seen that implementation Figure 5The described intelligent air-conditioning control device based on humidity and resistance value parameters can determine the regional control parameters of the target air-conditioner in each target area according to the outlet wind speed requirements and the outlet air flow diffusion requirements. For each target area, the sub-control parameters for the target air-conditioner in the target area are determined according to the regional resistance to the outlet air of the target air-conditioner in the target area based on the humidity conditions, and the regional control parameters of the target air-conditioner in the target area. Based on the sub-control parameters for the target air-conditioner in each target area, the first control parameters for the target air-conditioner are determined, which can improve the accuracy of the determined first control parameters, and the control of the target air-conditioner in each target area is different, thereby improving the operation intelligence and accuracy of the target air-conditioner in each target area, improving the control intelligence and accuracy of the target air-conditioner, and thereby improving the user experience.
[0181] In another optional embodiment, Figure 5 As shown, the intelligent air conditioning control device based on humidity and resistance value parameters may also include:
[0182] A fourth determining module 305 is configured to determine at least one target user in the scene and user information of each target user, where the user information includes location information corresponding to the target user;
[0183] An acquisition module 306 is configured to acquire, for each target user, a user air outlet requirement of the target user for the target air conditioner, where the user air outlet requirement includes at least one of a user air outlet wind force requirement, a user air outlet distance requirement, and a user air outlet angle requirement;
[0184] The fourth determining module 305 is further configured to determine a first control update parameter for the target air conditioner based on the air flow demand of each target user when the target air conditioner satisfies the condition for overcoming the air flow propagation resistance, and update the first control parameter based on the first control update parameter;
[0185] The fourth determining module 305 is further configured to determine relative position information between each target user and the linkage device based on the user information of each target user when the target air conditioner does not meet the condition for overcoming the airflow propagation resistance, where the relative position information includes relative distance information and relative orientation information;
[0186] The fourth determining module 305 is further configured to determine a second control update parameter for the target air conditioner according to the air outlet demand and relative position information of each target user, and update the linkage control parameter and the second control parameter according to the second control update parameter.
[0187] It can be seen that implementation Figure 5The described intelligent air-conditioning control device based on humidity and resistance value parameters can determine the first control update parameter for the target air-conditioner according to the user air outlet demand of each target user when the target air-conditioner meets the condition for overcoming the air outlet propagation resistance, and update the first control parameter according to the first control update parameter, which can improve the matching degree between the operation of the target air-conditioner and the target user. When the target air-conditioner does not meet the condition for overcoming the air outlet propagation resistance, the relative position information between each target user and the linkage device is determined according to the user information of each target user, and the second control update parameter for the target air-conditioner is determined according to the user air outlet demand and relative position information of each target user, and the linkage control parameter and the second control parameter are updated according to the second control update parameter. It can adapt to the target user through the linkage operation of the linkage device and the target air-conditioner, improve the control accuracy of the target air-conditioner, and thereby improve the user's comfort and air-conditioning usage experience.
[0188] In another optional embodiment, Figure 5 As shown, the user information also includes the health information of the target user. The intelligent air conditioning control device based on humidity and resistance value parameters may also include:
[0189] A fifth determining module 307 is configured to determine the somatosensory information of each target user, where the somatosensory information includes somatosensory wind force;
[0190] The fifth determining module 307 is further configured to determine, for each target user, the blowing comfort of the target user based on the health information and perceived wind force of the target user, and determine whether the blowing comfort is within a preset comfort range;
[0191] The fifth determination module 307 is also used to determine the wind control parameters for the target air conditioner for each target user when the target user's blowing comfort is not within the comfort range, based on the target user's health information and perceived wind force, and control the target air conditioner to perform wind control operations according to the wind control parameters.
[0192] It can be seen that implementation Figure 5 The described intelligent air-conditioning control device based on humidity and resistance value parameters can determine the target user's blowing comfort according to the target user's health information and perceived wind force, and judge whether the blowing comfort is within the preset comfort range. For each target user, when the target user's blowing comfort is not within the comfort range, the wind force control parameters for the target air-conditioner are determined according to the target user's health information and perceived wind force, and the target air-conditioner is controlled to perform wind force control operations according to the wind force control parameters. The target air-conditioner can be controlled according to the target user's perceived wind force to adapt to the target user, thereby improving the control accuracy of the target air-conditioner, and thereby improving the user's comfort and air-conditioning usage experience.
[0193] Example 4
[0194] See also Figure 6 , Figure 6 This is a structural diagram of another intelligent air conditioning control device based on humidity and resistance value parameters disclosed in an embodiment of the present invention. Figure 6 As shown, the intelligent air conditioning control device based on humidity and resistance value parameters may include:
[0195] A memory 401 storing executable program code;
[0196] a processor 402 coupled to the memory 401;
[0197] The processor 402 calls the executable program code stored in the memory 401 to execute the steps of the intelligent air conditioning control method based on humidity and resistance value parameters described in the first embodiment of the present invention or the second embodiment of the present invention.
[0198] Example 5
[0199] 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 intelligent air conditioning control method based on humidity and resistance value parameters described in Example 1 or Example 2 of the present invention.
[0200] Example 6
[0201] An embodiment of the present invention discloses a computer program product, which includes a non-transitory computer-readable storage medium storing a computer program, and the computer program is operable to enable a computer to execute the steps of the intelligent air conditioning control method based on humidity and resistance value parameters described in Example 1 or Example 2.
[0202] The device embodiments described above are merely illustrative, wherein the modules described as separate components may or may not be physically separate, and the 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. Those skilled in the art can understand and implement the present invention without inventive effort.
[0203] 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-readable 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.
[0204] Finally, it should be noted that the intelligent air conditioning control method and device based on humidity and resistance value parameters disclosed in the embodiment of the present invention is only a preferred embodiment of the present invention, which is only used to illustrate the technical solution of the present invention, rather than to limit it. Although the present invention has been described in detail with reference to the aforementioned embodiments, ordinary technicians in this field should understand that it is still possible to modify the technical solutions recorded in the aforementioned embodiments, or to replace some of the technical features therein with 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. An intelligent air conditioning control method based on humidity and resistance value parameters, characterized in that: The method comprises: Determining the humidity of a scene in which a target air conditioner is located, and determining a first resistance of the humidity to air outlet of the target air conditioner; determining whether the target air conditioner satisfies a preset air outlet resistance overcoming condition based on the predetermined resistance overcoming capability of the target air conditioner and the first resistance condition; When the target air conditioner meets the condition for overcoming the air flow propagation resistance, determining a first control parameter for the target air conditioner according to the air flow demand corresponding to the scenario, and controlling the target air conditioner to perform a first air flow operation according to the first control parameter; When the target air conditioner does not meet the air outlet propagation resistance overcoming condition, determining a linkage control parameter for a linkage device corresponding to the target air conditioner based on the humidity condition and the first resistance condition, and determining a second control parameter for the target air conditioner based on the linkage control parameter and the air outlet demand corresponding to the scenario, controlling the target air conditioner to perform a second air outlet operation based on the second control parameter, and controlling the linkage device to perform a resistance overcoming operation based on the linkage control parameter; Furthermore, when the target air conditioner does not meet the condition for overcoming the airflow propagation resistance, determining the linkage control parameters of the linkage device corresponding to the target air conditioner according to the humidity condition and the first resistance condition includes: Determining linkage devices associated with the target air conditioner in the scene, the linkage devices including humidity adjustment devices; When the target air conditioner does not meet the condition for overcoming the airflow propagation resistance, determining a humidity adjustment requirement corresponding to the scenario based on the humidity condition and the first resistance condition, the humidity adjustment requirement including a humidity adjustment range requirement and a humidity adjustment amount requirement; Determine humidity adjustment parameters for the humidity adjustment device according to the humidity adjustment requirement, and determine the humidity adjustment parameters as linkage control parameters of the linkage device.
2. The intelligent air conditioning control method based on humidity and resistance parameters according to claim 1, characterized in that: The linkage device further includes an air outlet device, and the method further includes: Determining device capability information of the linkage device, the device capability information including a maximum humidity adjustment capability of the humidity adjustment device; After determining the humidity adjustment parameter for the humidity adjustment device according to the humidity adjustment requirement, judging whether the maximum humidity adjustment capacity of the humidity adjustment device meets the humidity adjustment requirement according to the humidity adjustment parameter, and when the maximum humidity adjustment capacity of the humidity adjustment device meets the humidity adjustment requirement, determining the humidity adjustment parameter as the linkage control parameter of the linkage device; When the maximum humidity adjustment capacity of the humidity adjustment device does not meet the humidity adjustment requirement, the first auxiliary air outlet control parameter for the air outlet device is determined according to the first resistance condition, and the humidity adjustment parameter and the first auxiliary air outlet control parameter are determined as the linkage control parameters of the linkage device.
3. The intelligent air conditioning control method based on humidity and resistance parameters according to claim 2, characterized in that: When the target air conditioner satisfies the condition for overcoming the air flow propagation resistance, the method further includes: determining an air outlet obstruction on an air outlet path of the target air conditioner in the scenario, and determining a second resistance condition of the air outlet obstruction to the air outlet of the target air conditioner; determining, based on the second resistance condition, whether the air output of the target air conditioner meets the air output demand corresponding to the scenario; and triggering, when the air output of the target air conditioner meets the air output demand corresponding to the scenario, executing the operation of determining the first control parameter for the target air conditioner based on the air output demand corresponding to the scenario; When the air outlet of the target air conditioner does not meet the air outlet demand corresponding to the scenario, a second auxiliary air outlet control parameter for the air outlet device is determined according to the air outlet demand and the second resistance condition.
4. The intelligent air conditioning control method based on humidity and resistance parameters according to any one of claims 1 to 3, characterized in that: The air outlet requirements corresponding to the scene include an air outlet wind speed requirement and an air outlet air flow diffusion requirement, and the first resistance condition includes a regional resistance condition of the humidity condition to the air outlet of the target air conditioner in at least one target area in the scene; When the target air conditioner satisfies the air outlet propagation resistance overcoming condition, determining a first control parameter for the target air conditioner according to the air outlet demand corresponding to the scenario includes: determining, according to the outlet wind speed requirement and the outlet air flow diffusion requirement, a regional control parameter of the target air conditioner in each target area; For each target area, determining a sub-control parameter for the target air conditioner in the target area based on the regional resistance of the target air conditioner to the air outlet of the target air conditioner in the target area according to the humidity condition and the regional control parameter of the target air conditioner in the target area; A first control parameter for the target air conditioner is determined according to the sub-control parameter for the target air conditioner in each target area.
5. The intelligent air conditioning control method based on humidity and resistance value parameters according to any one of claims 1 to 3, characterized in that: The method further comprises: Determine at least one target user in the scenario and user information of each target user, wherein the user information includes location information corresponding to the target user; For each target user, obtaining a user air outlet requirement of the target user for the target air conditioner, wherein the user air outlet requirement includes at least one of a user air outlet wind force requirement, a user air outlet distance requirement, and a user air outlet angle requirement; When the target air conditioner satisfies the air outlet propagation resistance overcoming condition, determining a first control update parameter for the target air conditioner according to the air outlet demand of each target user, and updating the first control parameter according to the first control update parameter; When the target air conditioner does not meet the condition for overcoming the airflow propagation resistance, determining relative position information between each target user and the linkage device based on the user information of each target user, the relative position information including relative distance information and relative orientation information; According to the user air outlet demand of each target user and the relative position information, a second control update parameter for the target air conditioner is determined, and the linkage control parameter and the second control parameter are updated according to the second control update parameter.
6. The intelligent air conditioning control method based on humidity and resistance parameters according to claim 5, characterized in that: The user information also includes health information of the target user, and the method further includes: Determining somatosensory information of each target user, wherein the somatosensory information includes somatosensory wind force; For each target user, determining the target user's blowing comfort level based on the target user's health information and the perceived wind force, and judging whether the blowing comfort level is within a preset comfort level range; For each of the target users, when the blowing comfort of the target user is not within the comfort range, the wind force control parameters for the target air conditioner are determined based on the health information of the target user and the perceived wind force, and the target air conditioner is controlled to perform wind force control operations based on the wind force control parameters.
7. An intelligent air conditioning control device based on humidity and resistance parameters, characterized in that: The device comprises: A first determining module is configured to determine the humidity of a scene in which a target air conditioner is located, and determine a first resistance of the humidity to air outlet of the target air conditioner; a judgment module, configured to judge whether the target air conditioner satisfies a preset air outlet propagation resistance overcoming condition based on a predetermined resistance overcoming capability of the target air conditioner and the first resistance condition; The first determining module is further configured to, when the target air conditioner satisfies the air outlet propagation resistance overcoming condition, determine a first control parameter for the target air conditioner according to the air outlet demand corresponding to the scenario, and control the target air conditioner to perform a first air outlet operation according to the first control parameter; The first determining module is further configured to, when the target air conditioner does not meet the air outlet propagation resistance overcoming condition, determine, based on the humidity condition and the first resistance condition, a linkage control parameter for a linkage device corresponding to the target air conditioner, and determine, based on the linkage control parameter and the air outlet demand corresponding to the scenario, a second control parameter for the target air conditioner, control the target air conditioner to perform a second air outlet operation according to the second control parameter, and control the linkage device to perform a resistance overcoming operation according to the linkage control parameter; Furthermore, when the target air conditioner does not meet the condition for overcoming the airflow propagation resistance, the first determining module determines, based on the humidity condition and the first resistance condition, a linkage control parameter for the linkage device corresponding to the target air conditioner, specifically including: Determining linkage devices associated with the target air conditioner in the scene, the linkage devices including humidity adjustment devices; When the target air conditioner does not meet the condition for overcoming the airflow propagation resistance, determining a humidity adjustment requirement corresponding to the scenario based on the humidity condition and the first resistance condition, the humidity adjustment requirement including a humidity adjustment range requirement and a humidity adjustment amount requirement; Determine humidity adjustment parameters for the humidity adjustment device according to the humidity adjustment requirement, and determine the humidity adjustment parameters as linkage control parameters of the linkage device.
8. An intelligent air conditioning control device based on humidity and resistance parameters, 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 intelligent air conditioning control method based on humidity and resistance value parameters as described in any one of claims 1 to 6.
9. 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 intelligent air conditioning control method based on humidity and resistance value parameters as described in any one of claims 1 to 6.
Citation Information
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