Heat pump system regulation and control method and device based on scene information
By using a scenario-based heat pump system control method, the environmental changes in the target area are dynamically analyzed and control parameters are generated. This solves the problem of overheating or overcooling in traditional heat pump systems when facing regional differences in control, and achieves more efficient environmental regulation and improved user comfort.
Patent Information
- Application Number
- CN202511563426.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-10-29
- Publication Date
- 2026-01-23
AI Technical Summary
Traditional heat pump systems lack the ability to dynamically sense and differentiate their control when faced with changes in environmental parameters in different functional areas of a building, leading to overheating or overcooling in some areas and affecting user comfort.
By using a heat pump system control method based on scenario information, the radiation and convection analysis results of the target area are determined. Combined with real-time environmental parameters and environmental regulation requirements, control parameters are generated to dynamically adjust the operation mode of the heat pump system to adapt to regional changes.
It improves the control flexibility and accuracy of the heat pump system, enhances user comfort, and improves the user experience of the heat pump system.
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Figure CN121383344A_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the technical field of intelligent control, and in particular to a heat pump system regulation method and device based on scene information. BACKGROUND
[0002] With the increasing demand for building energy saving and comfort, heat pump systems are widely used in indoor scenes such as residential and commercial buildings due to their advantages of high efficiency, energy saving, and environmental friendliness.
[0003] However, most traditional heat pump systems use unified setting and extensive regulation methods, which do not fully consider the differences in ventilation structure and use scenarios of different functional areas inside the building, especially for areas where environmental parameters may change significantly in a short time (such as the kitchen). The conventional regulation strategy has a lagging response and lacks dynamic perception and differentiated regulation capability for regional environmental parameters, making it difficult to achieve timely and fine-tuned adjustment of the indoor environment, resulting in problems such as overheating and overcooling in some areas, which affects the user's thermal comfort.
[0004] Therefore, it is particularly important to propose a technical solution that can dynamically analyze the characteristics of indoor areas, thereby improving the control flexibility and accuracy of the heat pump system, and further improving the user's thermal comfort. SUMMARY
[0005] The present application provides a heat pump system regulation method and device based on scene information, which can dynamically analyze the characteristics of indoor areas, thereby improving the control flexibility and accuracy of the heat pump system, and further improving the user's thermal comfort.
[0006] To solve the above technical problems, the present application discloses a heat pump system regulation method based on scene information, which comprises: determining system information corresponding to the heat pump system, scene information of a target area, and environmental regulation requirements corresponding to the target area; wherein the target area is one of the indoor areas that the heat pump system can regulate environmental parameters; the scene information includes scene type and scene use information; collecting real-time environmental parameters of the target area; the real-time environmental parameters include one or more of real-time environmental temperature, real-time environmental humidity, and real-time air quality; determining the radiation convection analysis result corresponding to the target area according to the system information; generating the regulation parameters corresponding to the heat pump system according to the real-time environmental parameters, the radiation convection analysis result, the scene information, and the environmental regulation requirements; controlling the heat pump system to perform indoor environmental regulation operations according to the regulation parameters.
[0007] As an optional implementation, in the first aspect of the present application, the determining the radiation convection analysis result corresponding to the target area according to the system information comprises: calculating an actual radiation convection ratio corresponding to the target area according to the system information; determining a target radiation convection ratio interval corresponding to the target area according to the scene information; comparing the actual radiation convection ratio with the target radiation convection ratio interval corresponding to the target area to obtain a comparison result; when the comparison result indicates that the actual radiation convection ratio is not in the target radiation convection ratio interval, determining that the radiation convection analysis result corresponding to the target area is that the target area has a radiation convection ratio adjustment demand; when the comparison result indicates that the actual radiation convection ratio is in the target radiation convection ratio interval, determining that the radiation convection analysis result corresponding to the target area is that the target area has no radiation convection ratio adjustment demand.
[0008] As an optional implementation, in the first aspect of the present application, the calculating the actual radiation convection ratio corresponding to the target area according to the system information comprises: calculating a radiation convection ratio corresponding to the target area according to the system information; evaluating an influence coefficient of the real-time environmental parameter on the radiation convection of the target area according to the real-time environmental parameter; the influence coefficient of the real-time environmental parameter on the radiation convection of the target area is used to indicate the influence degree of the real-time environmental parameter on the radiation and / or convection of the target area; correcting the radiation convection ratio according to the influence coefficient of the real-time environmental parameter on the radiation convection to obtain the actual radiation convection ratio corresponding to the target area.
[0009] As an optional implementation, in the first aspect of the present application, the determining the target radiation convection ratio interval corresponding to the target area according to the scene information comprises: analyzing environmental parameter variation characteristics corresponding to the target area according to the scene type; the environmental parameter variation characteristics are used to indicate the variation characteristics of the environmental temperature and / or environmental humidity in the target area; determining the target radiation convection ratio interval corresponding to the target area according to the environmental parameter variation characteristics.
[0010] As an optional implementation, in the first aspect of the present application, the determining the scene use information of the target area comprises: collecting multi-modal data of the target area; wherein the multi-modal data comprises a combination of one or more of image data, video data, audio data, and infrared sensing data; determining a scene usage state of the target area according to the multi-modal data; wherein the scene usage state comprises a usage state or a current non-usage state; obtaining a scene usage history record corresponding to the target area; when the scene usage state is the usage state, counting a scene continuous usage duration corresponding to the target area; and estimating an estimated remaining usage duration corresponding to the target area according to the scene usage history record and the scene continuous usage duration; when the scene usage state is the current non-usage state, estimating an estimated usage time period corresponding to the target area; wherein the scene usage information at least comprises the scene usage state; the scene usage information further comprises the scene continuous usage duration and the estimated remaining usage duration, or further comprises the estimated usage time period.
[0011] As an optional implementation, in the first aspect of the present application, the generating the control parameter corresponding to the heat pump system according to the real-time environmental parameter, the radiation convection analysis result, the scene information, and the environmental regulation requirement comprises: determining a to-be-controlled device of the heat pump system for the target area according to the radiation convection analysis result; the to-be-controlled device at least comprises a fan disc and / or floor heating in the heat pump system; judging whether a scene type corresponding to the target area belongs to one of special scene types; wherein the special scene types comprise a kitchen type and a bathroom type; when it is judged that the scene type corresponding to the target area belongs to one of the special scene types, analyzing a parameter change analysis result corresponding to the real-time environmental parameter under the scene type and the scene usage information; and generating a first control parameter corresponding to the to-be-controlled device according to the parameter change analysis result and the environmental regulation requirement; when it is judged that the scene type corresponding to the target area does not belong to one of the special scene types, generating a second control parameter corresponding to the to-be-controlled device according to the real-time environmental parameter and the environmental regulation requirement; wherein the control parameter corresponding to the heat pump system comprises the first control parameter or the second control parameter.
[0012] As an optional implementation, in the first aspect of the present application, the analyzing the parameter change analysis result corresponding to the real-time environmental parameter under the scene type and the scene usage information comprises: when the scene usage information is used to indicate that the target area is in a current non-using state, according to the real-time environment parameter, the estimated use time period and the scene usage history record, predicted is the estimated environment parameter change information corresponding to the target area in the estimated use time period; wherein, when the scene type corresponding to the target area is the kitchen type, the estimated environment parameter change information includes first estimated temperature change information, first estimated humidity change information and first estimated oil smoke change information; when the scene type corresponding to the target area is the bathroom type, the estimated environment parameter change information includes second estimated temperature change information and second estimated temperature change information; when the scene usage information is used to indicate that the target area is in a current non-using state, according to the real-time environment parameter, the estimated use time period and the scene usage history record, predicted is the estimated environment parameter change information corresponding to the target area in the estimated use time period; wherein, when the scene type corresponding to the target area is the kitchen type, the estimated environment parameter change information includes first estimated temperature change information, first estimated humidity change information and first estimated oil smoke change information; when the scene type corresponding to the target area is the bathroom type, the estimated environment parameter change information includes second estimated temperature change information and second estimated temperature change information; wherein, the parameter change analysis result includes the actual environment parameter change information or the estimated environment parameter change information.
[0013] The second aspect of the present application discloses a heat pump system regulation and control device based on scene information, the device comprises: A determination module is configured to determine system information corresponding to a heat pump system, scene information of a target area, and environmental regulation requirements corresponding to the target area; wherein, the target area is one of the indoor areas whose environmental parameters can be adjusted by the heat pump system; the scene information includes a scene type and scene usage information; An acquisition module is configured to acquire real-time environment parameters of the target area; the real-time environment parameters include one or more of real-time environment temperature, real-time environment humidity and real-time air quality; The determination module is further configured to determine a radiation convection analysis result corresponding to the target area according to the system information; A generation module is configured to generate regulation and control parameters corresponding to the heat pump system according to the real-time environment parameters, the radiation convection analysis result, the scene information and the environmental regulation requirements; A control module is configured to control the heat pump system to perform indoor environmental regulation operation according to the regulation and control parameters.
[0014] As an optional implementation, in the second aspect of the present application, the specific manner in which the determining module determines the radiation convection analysis result corresponding to the target area according to the system information comprises: calculating an actual radiation convection ratio corresponding to the target area according to the system information; determining a target radiation convection ratio interval corresponding to the target area according to the scene information; comparing the actual radiation convection ratio with the target radiation convection ratio interval corresponding to the target area to obtain a comparison result; when the comparison result indicates that the actual radiation convection ratio is not in the target radiation convection ratio interval, determining that the radiation convection analysis result corresponding to the target area is that the target area has a radiation convection ratio adjustment demand; when the comparison result indicates that the actual radiation convection ratio is in the target radiation convection ratio interval, determining that the radiation convection analysis result corresponding to the target area is that the target area has no radiation convection ratio adjustment demand.
[0015] As an optional implementation, in the second aspect of the present application, the specific manner in which the determining module calculates the actual radiation convection ratio corresponding to the target area according to the system information comprises: calculating a radiation convection ratio corresponding to the target area according to the system information; evaluating an influence coefficient of the real-time environmental parameter on radiation convection of the target area according to the real-time environmental parameter; the influence coefficient of the real-time environmental parameter on radiation convection is used to indicate the influence degree of the real-time environmental parameter on radiation and / or convection of the target area; correcting the radiation convection ratio according to the influence coefficient of the real-time environmental parameter on radiation convection to obtain the actual radiation convection ratio corresponding to the target area.
[0016] As an optional implementation, in the second aspect of the present application, the specific manner in which the determining module determines the target radiation convection ratio interval corresponding to the target area according to the scene information comprises: analyzing environmental parameter variation characteristics corresponding to the target area according to the scene type; the environmental parameter variation characteristics are used to indicate the variation characteristics of environmental temperature and / or environmental humidity in the target area; determining the target radiation convection ratio interval corresponding to the target area according to the environmental parameter variation characteristics.
[0017] As an optional implementation, in the second aspect of the present application, the specific manner in which the determining module determines the scene use information of the target area comprises: collecting multi-modal data of the target area; wherein the multi-modal data comprises a combination of one or more of image data, video data, audio data, and infrared sensing data; determining a scene usage state of the target area according to the multi-modal data; wherein the scene usage state comprises a usage state or a current non-usage state; obtaining a scene usage history record corresponding to the target area; when the scene usage state is the usage state, counting a scene continuous usage duration corresponding to the target area; and estimating an estimated remaining usage duration corresponding to the target area according to the scene usage history record and the scene continuous usage duration; when the scene usage state is the current non-usage state, estimating an estimated usage time period corresponding to the target area; wherein the scene usage information at least comprises the scene usage state; the scene usage information further comprises the scene continuous usage duration and the estimated remaining usage duration, or further comprises the estimated usage time period.
[0018] As an optional implementation, in the second aspect of the present application, the generation module generates the specific manner of the control parameter corresponding to the heat pump system according to the real-time environmental parameter, the radiation convection analysis result, the scene information, and the environmental regulation requirement, which comprises: determining a to-be-controlled device of the heat pump system for the target area according to the radiation convection analysis result; the to-be-controlled device at least comprises a fan disc and / or floor heating in the heat pump system; judging whether a scene type corresponding to the target area belongs to one of special scene types; wherein the special scene types comprise a kitchen type and a bathroom type; when it is judged that the scene type corresponding to the target area belongs to one of the special scene types, analyzing a parameter change analysis result corresponding to the real-time environmental parameter under the scene type and the scene usage information; and generating a first control parameter corresponding to the to-be-controlled device according to the parameter change analysis result and the environmental regulation requirement; when it is judged that the scene type corresponding to the target area does not belong to one of the special scene types, generating a second control parameter corresponding to the to-be-controlled device according to the real-time environmental parameter and the environmental regulation requirement; wherein the control parameter corresponding to the heat pump system comprises the first control parameter or the second control parameter.
[0019] As an optional implementation, in the second aspect of the present application, the specific manner in which the generation module analyzes the parameter change analysis result corresponding to the real-time environmental parameter under the scene type and the scene use information comprises: When the scene use information is used to indicate that the target area is in a state of being used, actual environmental parameter change information corresponding to the target area is determined according to the real-time environmental parameter; when the scene type corresponding to the target area is the kitchen type, the actual environmental parameter change information comprises first actual temperature change information, first actual humidity change information and first actual oil smoke change information in a user cooking process; when the scene type corresponding to the target area is the bathroom type, the actual environmental parameter change information comprises second actual temperature change information and second actual temperature change information in a user bathing process. When the scene use information is used to indicate that the target area is in a state of being currently unused, estimated environmental parameter change information corresponding to the target area in the estimated use time period is predicted according to the real-time environmental parameter, the estimated use time period and the scene use history record; when the scene type corresponding to the target area is the kitchen type, the estimated environmental parameter change information comprises first estimated temperature change information, first estimated humidity change information and first estimated oil smoke change information; when the scene type corresponding to the target area is the bathroom type, the estimated environmental parameter change information comprises second estimated temperature change information and second estimated temperature change information. The parameter change analysis result comprises the actual environmental parameter change information or the estimated environmental parameter change information.
[0020] The third aspect of the present application discloses another scene information-based heat pump system regulation and control device, which comprises: a memory in which executable program codes are stored; a processor coupled with the memory; The processor invokes the executable program codes stored in the memory to execute part or all of the steps of the scene information-based heat pump system regulation and control method disclosed in the first aspect of the present application.
[0021] The fourth aspect of the present application discloses a computer storage medium which stores computer instructions, and the computer instructions are used to execute part or all of the steps of the scene information-based heat pump system regulation and control method disclosed in the first aspect of the present application when invoked.
[0022] Compared with the prior art, the present application has the following beneficial effects: In the present application, the system information corresponding to the heat pump system, the scene information of the target area and the environmental regulation demand corresponding to the target area are determined; wherein the target area is one of the indoor areas whose environmental parameters can be regulated by the heat pump system; the scene information includes scene type and scene use information; the real-time environmental parameters of the target area are collected; the real-time environmental parameters include one or more of real-time environmental temperature, real-time environmental humidity and real-time air quality; the radiation convection analysis result corresponding to the target area is determined according to the system information; the control parameter corresponding to the heat pump system is generated according to the real-time environmental parameters, the radiation convection analysis result, the scene information and the environmental regulation demand; and the heat pump system is controlled to perform indoor environmental regulation operation according to the control parameter. It can be seen that, by implementing the present application, the radiation convection analysis result corresponding to the target area can be determined according to the system information corresponding to the heat pump system, and then the control parameter corresponding to the heat pump system can be generated according to the collected real-time environmental parameters, the radiation convection analysis result, the determined scene information of the target area and the corresponding environmental regulation demand, so as to control the heat pump system to perform indoor environmental regulation operation. The use condition of the target area and the actual change condition of the indoor environment can be comprehensively analyzed, so as to realize dynamic analysis of the change characteristics of the indoor area, and then the generation flexibility and accuracy of the control parameter of the heat pump system for the target area are improved, and then the control flexibility and accuracy of the heat pump system are improved, so as to more flexibly and accurately regulate the environmental parameters, and then the environmental comfort of the target area is improved, and then the somatosensory comfort of the user is improved, so as to improve the use experience of the user for the heat pump system. BRIEF DESCRIPTION OF DRAWINGS
[0023] In order to more clearly illustrate the technical solutions in the embodiments of the present application, the drawings needed to be used in the embodiments will be briefly introduced. Obviously, the drawings in the following description are only some embodiments of the present application, and other drawings can be obtained by those skilled in the art without any creative effort.
[0024] Figure 1 is a flow diagram of a heat pump system control method based on scene information disclosed by the embodiments of the present application; Figure 2 is a flow diagram of another heat pump system control method based on scene information disclosed by the embodiments of the present application; Figure 3 is a structural diagram of a heat pump system control device based on scene information disclosed by the embodiments of the present application; Figure 4 is a structural diagram of another heat pump system control device based on scene information disclosed by the embodiments of the present application. DETAILED DESCRIPTION
[0025] In the following, the technical solutions in the embodiments of the present application will be described clearly and completely with reference to the drawings in the embodiments of the present application. Obviously, the described embodiments are only a part but not all of the embodiments of the present application. Based on the embodiments in the present application, all other embodiments obtained by a person of ordinary skill in the art without creative effort should fall into the scope of the present application.
[0026] The terms "first", "second", and the like in the description and claims of the present application and the above drawings are used to distinguish different objects, and are not used to describe a particular order. In addition, the terms "include" and "have" and any variations thereof are intended to cover non-exclusive inclusion. For example, a process, method, device, product, or end including a series of steps or units is not limited to the listed steps or units, but can optionally include other steps or units not listed or can optionally include other steps or units inherent to the process, method, product, or end.
[0027] Reference herein to "an embodiment" means that a particular feature, structure, or characteristic described in connection with the embodiment can be included in at least one embodiment of the application. The appearance of the phrase in various places in the specification does not necessarily all refer to the same embodiment, nor is it necessarily mutually exclusive of other embodiments. It is explicitly and implicitly understood by those skilled in the art that the embodiments described herein can be combined with other embodiments.
[0028] The present application discloses a kind of based on scene information's heat pump system regulation and control method and device, can determine the radiation convection analysis result of target area corresponding according to the system information of heat pump system corresponding system, again according to the real-time environmental parameter collected, radiation convection analysis result, the scene information of determined target area and corresponding environmental regulation demand, generate the regulation and control parameter of heat pump system corresponding, to control heat pump system executes indoor environment regulation operation, can comprehensively analyze the use of target area and the actual change of indoor environment, to realize dynamic analysis indoor area variation characteristic, further improve the generation flexibility and generation accuracy of the regulation and control parameter of heat pump system for target area, further improve the control flexibility and control accuracy of heat pump system, to more flexible and accurately adjust environmental parameter, further improve the environmental comfort of target area, further be conducive to improving the body comfort of user, to improve the use experience of user to heat pump system. The following are described in detail respectively.
[0029] Embodiment one Please refer to Figure 1 , Figure 1 It is a flowchart of the heat pump system regulation and control method based on scene information disclosed in the embodiments of the present application. Among them, Figure 1The scene information based heat pump system regulation method described can be applied to a scene information based heat pump system regulation device, which can include one of a regulation equipment, a regulation terminal, a regulation system and a server, wherein the server is a local server or a cloud server, and embodiments of the present application are not limited. As shown in Figure 1 The scene information based heat pump system regulation method can include the following operations: 101. Determine the system information corresponding to the heat pump system, the scene information of the target area and the environmental regulation demand corresponding to the target area.
[0030] In embodiments of the present application, the target area is one of the indoor areas that can be regulated by the environmental parameters of the heat pump system.
[0031] In the embodiment of the present application, optionally, the heat pump system can include a heat pump host, a pipeline, an air disc, a radiation module, a heat preservation distribution water tank and a control device. Further optionally, the heat pump host can be a multi-water temperature heat pump host, for example, the heat pump host can be a double-water temperature heat pump host or a triple-water temperature heat pump host, which is not limited in the embodiment of the present application. The double-water temperature heat pump can provide two different water outlet temperatures (for example, low temperature water outlet 7℃ and high temperature water outlet 17℃), and the corresponding return water temperature corresponding to the different water outlet temperatures of the heat pump host can also be different (for example, the return water temperature corresponding to the low temperature water outlet is 12℃, and the return water temperature corresponding to the high temperature water outlet is 21℃). Further, the air disc can correspond to one of the water outlet temperatures of the heat pump host, and the floor heating can correspond to the other water outlet temperature of the heat pump host, which is not limited in the embodiment of the present application. The pipeline can include the water inlet pipe and the return water pipe corresponding to the different water temperatures of the heat pump host, and the heat preservation main pipe and the exhaust vertical pipe. Further optionally, the air disc can include a dry air disc for a dining room and a cold wall air disc for a bathroom, and can also include other types of air discs suitable for other scene types, which is not limited in the embodiment of the present application. Further optionally, the radiation module can include a top surface radiation module and a floor heating. For example, the top surface radiation module can be a powder-coated type assembled far infrared radiation module, which is not limited in the embodiment of the present application. For example, the floor heating can include a rust-proof type dry floor heating, which is not limited in the embodiment of the present application. Further optionally, the control device can include a main control board, an air disc controller and a dew point controller. The main control board can include an air disc main control board and a radiation main control board. It should be noted that the air disc main control board can be used for unified regulation and control of all air discs, and the air disc controller can be used for controlling the air disc matched with the controller, which is not limited in the embodiment of the present application. Further optionally, the heat pump system can further include an air detection device, which is not limited in the embodiment of the present application. The air detection device can include one or a combination of temperature detection equipment, humidity detection equipment and air quality detection equipment. For example, the air quality detection equipment can be a negative oxygen ion air detector and / or an oil smoke monitoring device, which is not limited in the embodiment of the present application.
[0032] In the embodiment of the present application, optionally, the system information corresponding to the heat pump system can include system configuration information corresponding to the heat pump system and current running information corresponding to the heat pump system. The system configuration information can be used to describe the equipment configuration of the heat pump system, and the current running information can be used to describe the current running situation of the heat pump system.
[0033] In the embodiment of the present application, the scene information can include a scene type and scene use information; wherein, for example, the scene type can include but is not limited to one of a living room type, a bedroom type, a study type, a gym type, a kitchen type, and a bathroom type, and the present application is not limited thereto; wherein, the scene use information is used to indicate whether there is a person in the target area during a certain period of time in the future, and the present application is not limited thereto.
[0034] In the embodiment of the present application, optionally, the environmental regulation requirement can include one or a combination of a required environmental temperature, a required environmental humidity, and a required environmental quality, and the present application is not limited thereto.
[0035] 102, collect real-time environmental parameters of the target area.
[0036] In the embodiment of the present application, the real-time environmental parameters can include one or more of real-time environmental temperature, real-time environmental humidity, and real-time air quality, and the present application is not limited thereto. Further, the real-time environmental parameters can include data collected at multiple collection times, and the present application is not limited thereto.
[0037] 103, determine a radiation convection analysis result corresponding to the target area according to the system information.
[0038] 104, generate a control parameter corresponding to the heat pump system according to the real-time environmental parameters, the radiation convection analysis result, the scene information, and the environmental regulation requirement.
[0039] In the embodiment of the present application, the control parameter corresponding to the heat pump system can include one or more of a running mode of the heat pump system, an air outlet control parameter corresponding to the air disc, and a floor heating control parameter corresponding to the floor heating. Optionally, the air outlet control parameter corresponding to the air disc can include but is not limited to one or more of an air outlet mode, an air outlet direction, an air outlet angle, an air outlet speed, and an air outlet temperature, and the floor heating control parameter corresponding to the floor heating can include but is not limited to one or more of a floor heating running mode, a floor heating temperature, and a floor heating water supply flow rate, and the present application is not limited thereto; wherein, for example, the floor heating running mode can include one of a normal mode, a sleep mode, and a leave-home mode (for anti-freezing operation), and the present application is not limited thereto; wherein, optionally, the floor heating temperature can include but is not limited to a floor heating water supply temperature and / or a floor heating water supply and return temperature difference, wherein the floor heating water supply and return temperature difference is used to indicate a difference between the water outlet temperature and the water return temperature, and the present application is not limited thereto. Further optionally, the control parameter corresponding to the heat pump system can also include a control duration corresponding to each control sub-parameter, and the present application is not limited thereto.
[0040] 105, control the heat pump system to perform an indoor environment regulation operation according to the control parameter.
[0041] In the embodiment of the present application, the indoor environment regulation operation is used to regulate the environment parameters of the target area to meet the environment regulation requirement.
[0042] It can be seen that the method described in the embodiment of the present application can determine the radiation convection analysis result corresponding to the target area according to the system information corresponding to the heat pump system, and generate the control parameter corresponding to the heat pump system according to the real-time environment parameters collected, the radiation convection analysis result, the determined scene information of the target area, and the corresponding environment regulation requirement, to control the heat pump system to perform the indoor environment regulation operation. The use of the target area and the actual change of the indoor environment can be comprehensively analyzed, so as to realize dynamic analysis of the change characteristics of the indoor area, and further improve the generation flexibility and accuracy of the control parameter of the heat pump system for the target area, and further improve the control flexibility and accuracy of the heat pump system, to more flexibly and accurately regulate the environment parameters, and further improve the environmental comfort of the target area, and further improve the user's thermal comfort, to improve the user's experience of using the heat pump system.
[0043] In an optional embodiment, according to the system information, the radiation convection analysis result corresponding to the target area can include the following operations: According to the system information, the actual radiation convection ratio corresponding to the target area is calculated; According to the scene information, the target radiation convection ratio interval corresponding to the target area is determined; The actual radiation convection ratio is compared with the target radiation convection ratio interval corresponding to the target area to obtain a comparison result; When the comparison result is used to indicate that the actual radiation convection ratio is not in the target radiation convection ratio interval, the radiation convection analysis result corresponding to the target area is determined to be that the target area has a radiation convection ratio regulation requirement; When the comparison result is used to indicate that the actual radiation convection ratio is in the target radiation convection ratio interval, the radiation convection analysis result corresponding to the target area is determined to be that the target area has no radiation convection ratio regulation requirement.
[0044] Optionally, the target radiation convection ratio interval can include the maximum radiation convection ratio and / or the minimum radiation convection ratio, which is not limited in the embodiment of the present application. Further optionally, when the actual radiation convection ratio is higher than the maximum radiation convection ratio, the radiation convection ratio regulation requirement can be a radiation convection ratio down-regulation requirement; when the actual radiation convection ratio is lower than the minimum radiation convection ratio, the radiation convection ratio regulation requirement can be a radiation convection ratio up-regulation requirement, which is not limited in the embodiment of the present application.
[0045] It can be seen that the optional embodiment can calculate the actual radiation convection ratio corresponding to the target area according to the system information, determine the target radiation convection ratio interval corresponding to the target area according to the scene information, and then compare the actual radiation convection ratio with the target radiation convection ratio interval corresponding to the target area. If the actual radiation convection ratio is not in the target radiation convection ratio interval, it is determined that the radiation convection analysis result corresponding to the target area is that the target area has a radiation convection ratio adjustment requirement, otherwise it is determined that the radiation convection analysis result is that the target area does not have a radiation convection ratio adjustment requirement. The actual radiation convection ratio of the target area and the target radiation convection ratio interval can be accurately analyzed, the accuracy of the radiation convection analysis result is improved, and the generation accuracy of the subsequent heat pump system control parameters is improved.
[0046] In the optional embodiment, the calculation of the actual radiation convection ratio corresponding to the target area according to the system information can include the following operations: According to the system information, the radiation convection ratio corresponding to the target area is calculated. According to the real-time environmental parameter, the real-time environmental parameter influence coefficient of the target area is evaluated. The radiation convection influence coefficient is used to represent the influence degree of the real-time environmental parameter on the radiation and / or convection of the target area. According to the radiation convection influence coefficient, the radiation convection ratio is corrected to obtain the actual radiation convection ratio corresponding to the target area.
[0047] More specifically, the radiation convection ratio corresponding to the target area can be calculated according to the system configuration information (such as the area of the radiation module, the installation position, and the installation position and specification of the air disc) and the current running information (such as the air disc outflow condition and / or the floor heating running condition) of the heat pump system, which is not limited by the embodiments of the present application.
[0048] For example, it is assumed that the real-time air quality in the real-time environmental parameter collected is used to represent that the oil smoke content in the target area is high and the real-time environmental humidity is used to represent that the humidity in the target area is high. It can be understood that the oil smoke belongs to an aerosol, and the heat radiated by the radiation module is blocked by a part of the oil smoke, thereby weakening the effective radiation heat transfer. In a high humidity environment, the air heat capacity is increased, thereby enhancing the effective convection heat transfer. According to the above characteristics, it can be known that under the influence of the real-time environmental parameter, the effective radiation convection ratio will be reduced. Therefore, the actual radiation convection ratio obtained after correction can be understood as being closer to the radiation convection ratio perceived by the human body.
[0049] It can be seen that the optional embodiment can also calculate the radiation convection ratio corresponding to the target area according to the configuration and operation of the heat pump system, evaluate the radiation convection influence coefficient of the real-time environment parameter on the target area according to the real-time environment parameter, correct the radiation convection ratio according to the radiation convection influence coefficient, obtain the actual radiation convection ratio, improve the analysis accuracy of the current environment adjustment capability of the heat pump system, improve the analysis accuracy of the influence degree of the actual environment of the target area on the environment adjustment capability of the heat pump system, further improve the calculation accuracy of the actual radiation convection ratio, and thus facilitate to improve the accuracy of the subsequent radiation convection analysis result.
[0050] In the optional embodiment, optionally, according to the scene information, the target radiation convection ratio range corresponding to the target area can include the following operations: According to the scene type, analyze the environment parameter variation characteristic corresponding to the target area; the environment parameter variation characteristic is used to represent the variation characteristics of the environment temperature and / or the environment humidity in the target area; According to the environment parameter variation characteristic, determine the target radiation convection ratio range corresponding to the target area.
[0051] For example, assuming that the scene type is a kitchen type or a bathroom type, the environment parameter variation characteristic corresponding to the target area can be that when the target area is in a use state, the environment parameter will mutate in a short time, and when the target area is in a non-use state, the environment parameter will restore to a stable value, that is, the environment parameter variation amplitude is large; assuming that the scene type is a living room type or a bedroom type, the environment parameter variation characteristic corresponding to the target area is that the environment parameter variation amplitude is small and tends to be stable, which is not limited by the embodiment of the present application.
[0052] Further, when the environment parameter variation characteristic is used to represent that the environment parameter variation amplitude is large, different target radiation convection ratio ranges corresponding to different scene use states and / or the valley value and the peak value of the environment parameter of the target area can be determined; when the environment parameter variation characteristic is used to represent that the environment parameter variation amplitude is small, the target radiation convection ratio range can be determined according to the average value of the environment parameter and the current operation information (such as heating / cooling, or starting the floor heating and / or the air disc) of the heat pump system, which is not limited by the embodiment of the present application.
[0053] It can be seen that the optional embodiment can also analyze the environmental parameter change characteristics corresponding to the target area according to the scene type, and determine the target radiation convection ratio interval corresponding to the target area according to the environmental parameter change characteristics. The target radiation convection ratio interval corresponding to different scene types can be determined according to different environmental change characteristics, so as to improve the determination accuracy of the target radiation convection ratio interval, and then improve the radiation convection ratio after subsequent environmental regulation, so as to improve the user's sense of comfort.
[0054] Embodiment two Please refer to Figure 2 , Figure 2 is a flowchart of a heat pump system regulation method based on scene information disclosed by the embodiment of the present application. Among them, Figure 2 The heat pump system regulation method based on scene information described can be applied to a heat pump system regulation device based on scene information. The device can include one of a regulation device, a regulation terminal, a regulation system and a server, wherein the server is a local server or a cloud server, and the embodiment of the present application does not limit it. As shown in Figure 2 The heat pump system regulation method based on scene information can include the following operations: 201, determine the system information corresponding to the heat pump system, the scene information of the target area, and the environmental regulation demand corresponding to the target area.
[0055] In the embodiment of the present application, the target area is one of the indoor areas whose environmental parameters can be adjusted by the heat pump system; the scene information includes scene type and scene use information.
[0056] 202, collect real-time environmental parameters of the target area.
[0057] In the embodiment of the present application, the real-time environmental parameters include one or more of real-time environmental temperature, real-time environmental humidity and real-time air quality.
[0058] 203, determine the radiation convection analysis result corresponding to the target area according to the system information.
[0059] 204, determine the to-be-regulated device of the heat pump system for the target area according to the radiation convection analysis result.
[0060] In the embodiment of the present application, the to-be-controlled device at least includes the air disc and / or the floor heating in the heat pump system; optionally, the air disc included in the to-be-controlled device can include the first air disc installed in the target area and / or the second air disc having an intersection with the target area in the air outlet influencing range, and the floor heating included in the to-be-controlled device can include the area floor heating installed in the target area, which is not limited in the embodiment of the present application. Further optionally, the to-be-controlled device can further include other intelligent devices in the target area capable of adjusting the actual radiation convection condition of the target area, such as the extractor hood, which is not limited in the embodiment of the present application.
[0061] 205. Determine whether the scene type corresponding to the target area belongs to one of the special scene types.
[0062] In the embodiment of the present application, the special scene type can be a scene in which the environmental parameter value changes suddenly in a short time, and the special scene type can include the kitchen type and the bathroom type.
[0063] In the embodiment of the present application, when the step 205 determines that the scene type corresponding to the target area belongs to one of the special scene types, that is, when the determination result of the step 205 is yes, the operations of the steps 206-207 are executed; when the step 205 determines that the scene type corresponding to the target area does not belong to one of the special scene types, that is, when the determination result of the step 205 is no, the step 208 is executed.
[0064] 206. Analyze the parameter change analysis result corresponding to the real-time environmental parameter under the scene type and the scene use information.
[0065] 207. Generate the first control parameter corresponding to the to-be-controlled device according to the parameter change analysis result and the environmental regulation requirement.
[0066] 208. Generate the second control parameter corresponding to the to-be-controlled device according to the real-time environmental parameter and the environmental regulation requirement.
[0067] 209. Control the heat pump system to execute the indoor environmental regulation operation according to the control parameter.
[0068] In the embodiment of the present application, the control parameter corresponding to the heat pump system can include the first control parameter or the second control parameter.
[0069] In the embodiment of the present application, for the other detailed description of the steps 201-203 and the step 209, please refer to the detailed description of the steps 101-103 and the step 105 in the embodiment one, and the embodiment of the present application will not be repeated here.
[0070] It can be seen that the method described in the embodiment of the present application can determine the radiation convection analysis result corresponding to the target area according to the system information corresponding to the heat pump system, and then generate the control parameter corresponding to the heat pump system according to the real-time environmental parameters collected, the radiation convection analysis result, the determined scene information of the target area, and the corresponding environmental regulation requirement, so as to control the heat pump system to perform the indoor environmental regulation operation. The use of the target area and the actual change of the indoor environment can be comprehensively analyzed, so as to realize the dynamic analysis of the change characteristics of the indoor area, and then improve the generation flexibility and accuracy of the control parameter of the heat pump system for the target area, and further improve the control flexibility and accuracy of the heat pump system, so as to more flexibly and accurately regulate the environmental parameters, and further improve the environmental comfort of the target area, and further improve the user's thermal comfort, so as to improve the user's experience of using the heat pump system. In addition, the equipment to be controlled by the heat pump system for the target area can be determined according to the radiation convection analysis result, and then it is determined whether the scene type corresponding to the target area is a special scene type. If yes, the parameter change analysis result corresponding to the real-time environmental parameters under the scene type and scene use information is analyzed, and the first control parameter is generated according to the parameter change analysis result and the environmental regulation requirement. Otherwise, the second control parameter is directly generated according to the real-time environmental parameters and the environmental regulation requirement. The generation mode of the control parameter of the heat pump system can be flexibly selected for the area of the special scene type and the non-feature scene type, so as to further improve the generation flexibility and accuracy of the control parameter of the heat pump system, and further improve the control flexibility and accuracy of the heat pump system.
[0071] In an optional embodiment, determining the scene use information of the target area can include the following operations: Collecting multi-modal data of the target area; wherein the multi-modal data includes one or a combination of more than one of image data, video data, audio data, and infrared sensing data; Determining the scene use state of the target area according to the multi-modal data; wherein the scene use state includes an in-use state or a current non-use state; Obtaining the scene use history record corresponding to the target area; When the scene use state is the in-use state, the scene continuous use duration corresponding to the target area is counted; the estimated remaining use duration corresponding to the target area is estimated according to the scene use history record and the scene continuous use duration; When the scene use state is the current non-use state, the estimated use time period corresponding to the target area is estimated.
[0072] The scene use information at least includes the scene use state; the scene use information further includes the scene continuous use duration and the estimated remaining use duration, or further includes the estimated use time period.
[0073] Optionally, the scene use history record corresponding to the target area can include a combination of one or more of a historical use time period of the at least one historical use sub-record, a historical use duration of each historical use sub-record, a total historical use frequency, and a historical environment parameter corresponding to each historical use sub-record, and embodiments of the present application are not limited thereto.
[0074] For example, if the scene use state corresponding to the target area is in use, and the statistical scene duration is 20 minutes, and the average / median / mode of all historical use durations determined based on the scene use history record is 30 minutes, then the estimated remaining use duration is 10 minutes. If the scene use state corresponding to the target area is not currently in use, and the historical use time period based on the scene use history record is usually 18:00-18:30, then the estimated use time period of the target area can be predicted to be 18:00-18:30, and embodiments of the present application are not limited thereto.
[0075] It can be seen that the optional embodiment can determine the scene use state of the target area according to the collected multi-modal data of the target area. If the scene use state is in use, the statistical scene duration corresponding to the target area is determined, and the estimated remaining use duration corresponding to the target area is estimated based on the obtained scene use history record and the scene duration. If the scene use state is not currently in use, the estimated use time period corresponding to the target area is estimated. The scene use state of the target area and the corresponding use duration related information can be more accurately determined, the remaining use duration or the future estimated use time period of the target area can be flexibly estimated, which is conducive to planning the heat pump system control parameters in the corresponding use time period in advance, and further improving the generation accuracy of the control parameters to more personalized control the heat pump system to adjust the environmental parameters.
[0076] In the optional embodiment, optionally, the parameter change analysis result corresponding to the real-time environmental parameter under the scene type and the scene use information can include the following operations: When the scene use information indicates that the target area is in use, the actual environmental parameter change information corresponding to the target area is determined based on the real-time environmental parameter. When the scene type corresponding to the target area is a kitchen type, the actual environmental parameter change information includes first actual temperature change information, first actual humidity change information, and first actual oil smoke change information in the user cooking process. When the scene type corresponding to the target area is a bathroom type, the actual environmental parameter change information includes second actual temperature change information and second actual temperature change information in the user bathing process. When the scene usage information indicates that the target area is in the current non-use state, the predicted environmental parameter change information corresponding to the target area in the predicted use time period is predicted according to the real-time environmental parameter, the predicted use time period and the scene usage history; when the scene type corresponding to the target area is the kitchen type, the predicted environmental parameter change information includes the first predicted temperature change information, the first predicted humidity change information and the first predicted oil smoke change information; when the scene type corresponding to the target area is the bathroom type, the predicted environmental parameter change information includes the second predicted temperature change information and the second predicted temperature change information.
[0077] The parameter change analysis result can include the actual environmental parameter change information or the predicted environmental parameter change information.
[0078] It can be seen that the optional embodiment can also determine the actual environmental parameter change information corresponding to the target area according to the real-time environmental parameter when the target area is in the use state, and predict the predicted environmental parameter change information corresponding to the target area in the predicted use time period according to the real-time environmental parameter, the predicted use time period and the scene usage history when the target area is in the current non-use state, so as to analyze different parameter change information for different use time periods for special scene areas where the environmental parameter is prone to sudden change, thereby improving the determination flexibility and accuracy of the parameter change analysis result, and further improving the generation accuracy of the subsequent control parameter.
[0079] In the optional embodiment, the generating the first control parameter corresponding to the to-be-controlled device according to the parameter change analysis result and the environmental regulation demand can include the following operations: According to the change information of each environmental parameter in the parameter change analysis result, the parameter value change trend of each environmental parameter is determined; For each environmental parameter, when the first parameter difference between the parameter value change trend of the environmental parameter and the required value of the environmental regulation demand is in the increasing state and the corresponding growth rate is greater than or equal to the preset growth rate, the environmental parameter is determined as the target adjustment environmental parameter; For each environmental parameter, when the first parameter difference between the parameter value change trend of the environmental parameter and the required value of the environmental regulation demand is not in the increasing state or the corresponding growth rate is less than the preset growth rate, the environmental parameter is determined as the non-target adjustment environmental parameter; According to all target adjustment environmental parameters and the environmental regulation demand, the first priority control parameter corresponding to the to-be-controlled device is generated; The first non-priority control parameter corresponding to the to-be-controlled device is generated according to all non-target adjustment environment parameters and environment adjustment requirements, wherein the control priority of the first priority control parameter is higher than that of the first non-priority control parameter. The first control parameter includes the first priority control parameter and the first non-priority control parameter.
[0080] It can be seen that the optional embodiment can also determine the parameter value change trend of each environment parameter according to the change information of each environment parameter in the parameter change analysis result, and determine the target adjustment environment parameter if the parameter value change trend of the environment parameter is in the increasing state compared with the first parameter difference of the required value of the environment parameter in the environment adjustment requirement and the corresponding growth rate is greater than or equal to the preset growth rate, otherwise, the non-target adjustment environment parameter is determined, and then the first priority control parameter corresponding to the to-be-controlled device is generated according to all target adjustment environment parameters and environment adjustment requirements, and then the first non-priority control parameter corresponding to the to-be-controlled device is generated according to all non-target adjustment environment parameters and environment adjustment requirements, which can focus on the type of environment parameter that needs to be adjusted urgently, so as to generate more accurate heat pump system control parameters, and further improve the adjustment accuracy and efficiency of the target adjustment environment parameter.
[0081] In the optional embodiment, the second control parameter corresponding to the to-be-controlled device is generated according to the real-time environment parameter and the environment adjustment requirement, which can include the following operations: The second parameter difference between the parameter value of the real-time environment parameter and the required value of the environment adjustment requirement is calculated. The second control parameter corresponding to the to-be-controlled device is generated according to the second parameter difference.
[0082] It can be seen that the optional embodiment can also calculate the second parameter difference between the parameter value of the real-time environment parameter and the required value of the environment adjustment requirement, and then generate the second control parameter corresponding to the to-be-controlled device according to the second parameter difference, which can improve the generation efficiency and accuracy of the control parameter for the non-special scene area, thereby further improving the adjustment efficiency and accuracy of the heat pump system for the environment.
[0083] Embodiment three Please refer to Figure 3 , Figure 3 is a structure diagram of a heat pump system control device based on scene information disclosed by the embodiment of the application. Wherein, Figure 3The scene information-based heat pump system regulation device can include one of a regulation device, a regulation terminal, a regulation system, and a server, wherein the server is a local server or a cloud server, and embodiments of the present application are not limited. As shown in the accompanying drawings, the scene information-based heat pump system regulation device can include: Figure 3 The scene information-based heat pump system regulation device can include: A determination module 301 is configured to determine system information corresponding to a heat pump system, scene information of a target area, and environmental regulation requirements corresponding to the target area; wherein the target area is one of indoor areas that can be regulated by the heat pump system; the scene information includes a scene type and scene use information; A collection module 302 is configured to collect real-time environmental parameters of the target area; the real-time environmental parameters include one or more of real-time environmental temperature, real-time environmental humidity, and real-time air quality; The determination module 301 is further configured to determine a radiation convection analysis result corresponding to the target area according to the system information; A generation module 303 is configured to generate regulation parameters corresponding to the heat pump system according to the real-time environmental parameters, the radiation convection analysis result, the scene information, and the environmental regulation requirements; A control module 304 is configured to control the heat pump system to perform an indoor environmental regulation operation according to the regulation parameters.
[0084] As can be seen, the device described in the embodiments of the present application can determine a radiation convection analysis result corresponding to a target area according to system information corresponding to a heat pump system, and then generate regulation parameters corresponding to the heat pump system according to collected real-time environmental parameters, the radiation convection analysis result, determined scene information of the target area, and corresponding environmental regulation requirements, to control the heat pump system to perform an indoor environmental regulation operation, which can comprehensively analyze the use of the target area and the actual changes of the indoor environment, thereby dynamically analyzing the change characteristics of the indoor area, and further improving the flexibility and accuracy of generating regulation parameters of the heat pump system for the target area, and further improving the control flexibility and accuracy of the heat pump system, to more flexibly and accurately regulate environmental parameters, and further improve the environmental comfort of the target area, and further improve the somatosensory comfort of the user, to improve the user experience of the heat pump system.
[0085] In an optional embodiment, the specific manner in which the determination module 301 determines a radiation convection analysis result corresponding to a target area according to system information can include: calculating an actual radiation convection ratio corresponding to the target area according to the system information; determining a target radiation convection ratio interval corresponding to the target area according to the scene information; comparing the actual radiation convection ratio with the determined target radiation convection ratio interval corresponding to the target area to obtain a comparison result; When the comparison result is used to indicate that the actual radiation convection ratio is not in the target radiation convection ratio interval, it is determined that the radiation convection analysis result corresponding to the target region indicates that the target region has a radiation convection ratio adjustment demand; When the comparison result is used to indicate that the actual radiation convection ratio is in the target radiation convection ratio interval, it is determined that the radiation convection analysis result corresponding to the target region indicates that the target region does not have a radiation convection ratio adjustment demand.
[0086] It can be seen that the device described in the optional embodiment can calculate the actual radiation convection ratio corresponding to the target region according to the system information, determine the target radiation convection ratio interval corresponding to the target region according to the scene information, and compare the actual radiation convection ratio with the determined target radiation convection ratio interval. If the actual radiation convection ratio is not in the target radiation convection ratio interval, it is determined that the radiation convection analysis result corresponding to the target region indicates that the target region has a radiation convection ratio adjustment demand, otherwise it is determined that the radiation convection analysis result indicates that the target region does not have a radiation convection ratio adjustment demand. The actual radiation convection ratio of the target region can be accurately analyzed and the accuracy of the radiation convection analysis result can be improved, thereby facilitating the generation of accurate control parameters for the subsequent heat pump system.
[0087] In the optional embodiment, the specific manner in which the determining module 301 calculates the actual radiation convection ratio corresponding to the target region according to the system information can include: calculating the radiation convection ratio corresponding to the target region according to the system information; evaluating the real-time environmental parameter radiation convection influence coefficient of the target region according to the real-time environmental parameter; the radiation convection influence coefficient is used to indicate the influence degree of the real-time environmental parameter on the radiation and / or convection of the target region; correcting the radiation convection ratio according to the radiation convection influence coefficient to obtain the actual radiation convection ratio corresponding to the target region.
[0088] It can be seen that the device described in the optional embodiment can also calculate the radiation convection ratio corresponding to the target region according to the configuration and operation of the heat pump system, evaluate the real-time environmental parameter radiation convection influence coefficient of the target region according to the real-time environmental parameter, and then correct the radiation convection ratio according to the radiation convection influence coefficient to obtain the actual radiation convection ratio. The analysis accuracy of the current environmental adjustment capability of the heat pump system can be improved, and the analysis accuracy of the influence degree of the actual environmental conditions of the target region on the environmental adjustment capability of the heat pump system can be improved, thereby further improving the calculation accuracy of the actual radiation convection ratio and facilitating the improvement of the accuracy of the subsequent radiation convection analysis result.
[0089] In the optional embodiment, the specific manner in which the determining module 301 determines the target radiant-convective ratio interval corresponding to the target region according to the scene information can comprise: According to the scene type, analyze the environmental parameter variation characteristic corresponding to the target region; the environmental parameter variation characteristic is used to represent the variation characteristic of the environmental temperature and / or the environmental humidity in the target region; According to the environmental parameter variation characteristic, determine the target radiant-convective ratio interval corresponding to the target region.
[0090] It can be seen that the apparatus described in the optional embodiment can also analyze the environmental parameter variation characteristic corresponding to the target region according to the scene type, and determine the target radiant-convective ratio interval corresponding to the target region according to the environmental parameter variation characteristic, which can determine a more suitable target radiant-convective ratio interval for different environmental variation characteristics corresponding to different scene types, thereby facilitating the determination accuracy of the target radiant-convective ratio interval, and further facilitating the subsequent environmental regulation to make the radiant-convective ratio more in line with the scene characteristics, and further facilitating the further improvement of the user's thermal comfort.
[0091] In another optional embodiment, the specific manner in which the determining module 301 determines the scene use information of the target region can comprise: Collect multi-modal data of the target region; wherein the multi-modal data comprises a combination of one or more of image data, video data, audio data, and infrared sensing data; According to the multi-modal data, determine the scene use state of the target region; wherein the scene use state comprises an in-use state or a current non-use state; Obtain the scene use history record corresponding to the target region; When the scene use state is the in-use state, count the scene continuous use duration corresponding to the target region; according to the scene use history record and the scene continuous use duration, estimate the estimated remaining use duration corresponding to the target region; When the scene use state is the current non-use state, estimate the estimated use time period corresponding to the target region; The scene use information at least comprises the scene use state; the scene use information further comprises the scene continuous use duration and the estimated remaining use duration, or further comprises the estimated use time period.
[0092] It can be seen that the device described in the optional embodiment can determine the scene use state of the target area according to the collected multi-modal data of the target area; if the scene use state is the use state, the scene continuous use duration corresponding to the target area is counted, and the estimated remaining use duration corresponding to the target area is estimated according to the obtained scene use history record and the scene continuous use duration; if the scene use state is the current non-use state, the estimated use time period corresponding to the target area is estimated, which can more accurately determine the scene use state of the target area and the related information of the use duration, realize flexible estimation of the remaining use duration or the future estimated use time period of the target area, and thus be beneficial to realize advance planning of the heat pump system regulation and control parameters in the corresponding area use time period, and further beneficial to further improve the generation accuracy of the regulation and control parameters to more personalized control of the heat pump system adjustment environmental parameters.
[0093] In the optional embodiment, optionally, the generation module 303 generates the specific mode of the regulation and control parameters corresponding to the heat pump system according to the real-time environmental parameters, the radiation convection analysis result, the scene information and the environmental regulation demand, which can include: determining the to-be-regulated device of the heat pump system for the target area according to the radiation convection analysis result; the to-be-regulated device at least includes the air disc and / or the floor heating in the heat pump system; judging whether the scene type corresponding to the target area belongs to one of the special scene types; wherein the special scene types include the kitchen type and the bathroom type; when it is judged that the scene type corresponding to the target area belongs to one of the special scene types, analyzing the parameter change analysis result corresponding to the real-time environmental parameters under the scene type and the scene use information; generating the first regulation and control parameter corresponding to the to-be-regulated device according to the parameter change analysis result and the environmental regulation demand; when it is judged that the scene type corresponding to the target area does not belong to one of the special scene types, generating the second regulation and control parameter corresponding to the to-be-regulated device according to the real-time environmental parameters and the environmental regulation demand; wherein the regulation and control parameters corresponding to the heat pump system include the first regulation and control parameter or the second regulation and control parameter.
[0094] It can be seen that the apparatus described in the optional embodiment can also determine the equipment to be regulated of the heat pump system for the target area according to the radiation convection analysis result, and then determine whether the scene type corresponding to the target area is a special scene type, if yes, analyze the parameter change analysis result corresponding to the real-time environment parameter under the scene type and scene use information, and generate the first regulation parameter according to the parameter change analysis result and the environmental regulation requirement, otherwise, directly generate the second regulation parameter according to the real-time environment parameter and the environmental regulation requirement, which can flexibly select a more appropriate generation method of the regulation parameter of the heat pump system for the special scene type and the non-feature scene type, thereby further improving the generation flexibility and accuracy of the regulation parameter of the heat pump system, and further improving the control flexibility and accuracy of the heat pump system.
[0095] In the optional embodiment, the specific manner in which the generation module 303 analyzes the parameter change analysis result corresponding to the real-time environment parameter under the scene type and the scene use information can include: When the scene use information is used to indicate that the target area is in a using state, the actual environment parameter change information corresponding to the target area is determined according to the real-time environment parameter; when the scene type corresponding to the target area is a kitchen type, the actual environment parameter change information includes first actual temperature change information, first actual humidity change information and first actual oil smoke change information in the user cooking process; when the scene type corresponding to the target area is a bathroom type, the actual environment parameter change information includes second actual temperature change information and second actual temperature change information in the user bathing process. When the scene use information is used to indicate that the target area is in a current non-using state, the estimated environment parameter change information corresponding to the target area in the estimated use time period is predicted according to the real-time environment parameter, the estimated use time period and the scene use history record; when the scene type corresponding to the target area is a kitchen type, the estimated environment parameter change information includes first estimated temperature change information, first estimated humidity change information and first estimated oil smoke change information; when the scene type corresponding to the target area is a bathroom type, the estimated environment parameter change information includes second estimated temperature change information and second estimated temperature change information. The parameter change analysis result includes the actual environment parameter change information or the estimated environment parameter change information.
[0096] It can be seen that the device described in the optional embodiment can also determine the actual environmental parameter change information corresponding to the target area according to the real-time environmental parameter when the target area is in the use state, and predict the estimated environmental parameter change information corresponding to the target area in the estimated use time period according to the real-time environmental parameter, the estimated use time period and the scene use history record when the target area is in the current non-use state, so as to analyze different parameter change information for different use time periods for the special scene area where the environmental parameter is prone to sudden change, thereby improving the determination flexibility and accuracy of the parameter change analysis result, and further improving the generation accuracy of the subsequent regulation parameter.
[0097] Embodiment four Please refer to Figure 4 , Figure 4 is another structure schematic diagram of the scene information-based heat pump system regulation device disclosed by the embodiment of the present application. As shown in the figure, Figure 4 The scene information-based heat pump system regulation device can include: a memory 401 storing executable program codes; a processor 402 coupled with the memory 401; The processor 402 calls the executable program codes stored in the memory 401 to execute part or all of the steps of the scene information-based heat pump system regulation method described in the embodiment one or the embodiment two of the present application.
[0098] Embodiment five The embodiment of the present application discloses a computer storage medium, which stores computer instructions. When the computer instructions are called, part or all of the steps of the scene information-based heat pump system regulation method described in the embodiment one or the embodiment two of the present application are executed.
[0099] Embodiment six The embodiment of the present application 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 make a computer execute part or all of the steps of the scene information-based heat pump system regulation method described in the embodiment one or the embodiment two.
[0100] The device embodiments described above are only schematic, wherein the modules illustrated as separate components can or can not be physically separated, and the components illustrated as modules can or can not be physical modules, i.e., they can be located in one place or distributed on multiple network modules. Part or all of the modules can be selected to achieve the purpose of the embodiment scheme according to actual needs. Those skilled in the art can understand and implement it without creative labor.
[0101] Through the specific description of the above embodiments, those skilled in the art can clearly understand that each embodiment can be realized by means of software and the necessary general hardware platform, and of course, can also be realized by hardware. Based on such understanding, the above technical solutions can be embodied in the form of a software product in essence or in the form of a part of the prior art. The computer software product can be stored in a computer readable storage medium, and the storage medium includes 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 electrically erasable programmable read-only memory (EEPROM), a compact disc read-only memory (CD-ROM) or other optical disk storage, a magnetic disk storage, a magnetic tape storage, or any other computer readable medium that can be used to carry or store data.
[0102] Finally, it should be noted that: the hot pump system regulation and control method and device based on scene information disclosed by the embodiments of the present application are only the preferred embodiments of the present application, and are used to illustrate the technical solutions of the present application, but not to limit them; although the present application has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that: the technical solutions recorded in the foregoing embodiments can be modified, or some technical features can be replaced by equivalents; and these modifications or replacements do not make the corresponding technical solutions deviate from the spirit and scope of the technical solutions of the embodiments of the present application.
Claims
1. A method for controlling a heat pump system based on scene information, characterized in that, The method includes: The system information corresponding to the heat pump system, the scene information of the target area, and the environmental regulation requirements of the target area are determined; wherein, the target area is one of the indoor areas whose environmental parameters can be regulated by the heat pump system; the scene information includes scene type and scene usage information; Collect real-time environmental parameters of the target area; the real-time environmental parameters include one or more of real-time ambient temperature, real-time ambient humidity, and real-time air quality. Based on the system information, determine the radiation convection analysis results corresponding to the target area; Based on the real-time environmental parameters, the radiation convection analysis results, the scene information, and the environmental regulation requirements, the corresponding control parameters for the heat pump system are generated. Based on the aforementioned control parameters, the heat pump system is controlled to perform indoor environmental regulation operations.
2. The heat pump system control method based on scene information according to claim 1, characterized in that, The step of determining the radiation convection analysis results corresponding to the target area based on the system information includes: Based on the system information, calculate the actual radiative convection ratio corresponding to the target area; Based on the scene information, determine the target radiation-convection ratio range corresponding to the target area; By comparing the actual radiation-convection ratio with the determined target radiation-convection ratio range corresponding to the target area, a comparison result is obtained; When the comparison result indicates that the actual radiation convection ratio is not within the target radiation convection ratio range, the radiation convection analysis result corresponding to the target area is determined to indicate that the target area has a radiation convection ratio adjustment requirement. When the comparison result indicates that the actual radiation-convection ratio is within the target radiation-convection ratio range, the radiation-convection analysis result corresponding to the target area is determined to be that there is no need for radiation-convection ratio adjustment in the target area.
3. The heat pump system control method based on scene information according to claim 2, characterized in that, The step of calculating the actual radiative convection ratio corresponding to the target area based on the system information includes: Based on the system information, calculate the radiation convection ratio corresponding to the target area; Based on the real-time environmental parameters, evaluate the radiation-convection influence coefficient of the real-time environmental parameters on the target area; the radiation-convection influence coefficient is used to represent the degree of influence of the real-time environmental parameters on the radiation and / or convection of the target area. Based on the radiation convection influence coefficient, the radiation convection ratio is corrected to obtain the actual radiation convection ratio corresponding to the target area.
4. The heat pump system control method based on scene information according to claim 2, characterized in that, The step of determining the target radiative convection ratio range corresponding to the target area based on the scene information includes: Based on the scenario type, analyze the environmental parameter variation characteristics corresponding to the target area; the environmental parameter variation characteristics are used to represent the variation characteristics of ambient temperature and / or ambient humidity in the target area. Based on the characteristics of the changes in the environmental parameters, the target radiation-convection ratio range corresponding to the target area is determined.
5. The heat pump system control method based on scene information according to any one of claims 1-4, characterized in that, The scene usage information for determining the target area includes: Collect multimodal data of the target area; wherein, the multimodal data includes one or more combinations of image data, video data, audio data, and infrared sensor data; Based on the multimodal data, the scene usage status of the target area is determined; wherein, the scene usage status includes a currently in use state or a currently unused state; Obtain the scene usage history corresponding to the target area; When the scene is in the "current" state, the duration of continuous use of the scene corresponding to the target area is calculated; based on the scene usage history and the duration of continuous use of the scene, the estimated remaining usage time corresponding to the target area is estimated. When the usage status of the scenario is the current unused status, the estimated usage time period corresponding to the target area is estimated. The scenario usage information includes at least the scenario usage status; the scenario usage information also includes the continuous usage duration of the scenario and the estimated remaining usage duration, or it may also include the estimated usage time period.
6. The heat pump system control method based on scene information according to claim 5, characterized in that, The step of generating control parameters for the heat pump system based on the real-time environmental parameters, the radiation convection analysis results, the scene information, and the environmental control requirements includes: Based on the radiation convection analysis results, the controllable equipment of the heat pump system for the target area is determined; the controllable equipment includes at least the fan coil unit and / or underfloor heating in the heat pump system; Determine whether the scene type corresponding to the target area belongs to one of the special scene types; wherein, the special scene types include kitchen type and bathroom type; When it is determined that the scene type corresponding to the target area belongs to one of the special scene types, the parameter change analysis results corresponding to the real-time environmental parameters under the scene type and the scene usage information are analyzed; based on the parameter change analysis results and the environmental adjustment requirements, the first control parameter corresponding to the device to be controlled is generated; When it is determined that the scene type corresponding to the target area does not belong to one of the special scene types, a second control parameter corresponding to the device to be controlled is generated based on the real-time environmental parameters and the environmental adjustment requirements. The control parameters corresponding to the heat pump system include either the first control parameter or the second control parameter.
7. The heat pump system control method based on scene information according to claim 6, characterized in that, The analysis of parameter change results corresponding to the real-time environmental parameters under the scenario type and scenario usage information includes: When the scene usage information indicates that the target area is in use, the actual environmental parameter change information corresponding to the target area is determined based on the real-time environmental parameters; wherein, when the scene type corresponding to the target area is the kitchen type, the actual environmental parameter change information includes first actual temperature change information, first actual humidity change information, and first actual oil fume change information during the user's cooking process; when the scene type corresponding to the target area is the bathroom type, the actual environmental parameter change information includes second actual temperature change information and second actual temperature change information during the user's bathing process. When the scene usage information indicates that the target area is currently unused, the estimated environmental parameter changes for the target area within the estimated usage time period are predicted based on the real-time environmental parameters, the estimated usage time period, and the scene usage history. Specifically, when the scene type corresponding to the target area is the kitchen type, the estimated environmental parameter changes include first estimated temperature changes, first estimated humidity changes, and first estimated oil fume changes; when the scene type corresponding to the target area is the bathroom type, the estimated environmental parameter changes include second estimated temperature changes. The parameter change analysis results include either the actual environmental parameter change information or the estimated environmental parameter change information.
8. A heat pump system control device based on scene information, characterized in that, The device includes: The determination module is used to determine the system information corresponding to the heat pump system, the scene information of the target area, and the environmental regulation requirements corresponding to the target area; wherein, the target area is one of the indoor areas whose environmental parameters can be adjusted by the heat pump system; the scene information includes scene type and scene usage information; The acquisition module is used to acquire real-time environmental parameters of the target area; the real-time environmental parameters include one or more of real-time ambient temperature, real-time ambient humidity, and real-time air quality. The determining module is further configured to determine the radiation convection analysis results corresponding to the target area based on the system information; The generation module is used to generate the control parameters corresponding to the heat pump system based on the real-time environmental parameters, the radiation convection analysis results, the scene information, and the environmental control requirements. The control module is used to control the heat pump system to perform indoor environment adjustment operations according to the control parameters.
9. A heat pump system control device based on scene information, characterized in that, The device includes: Memory containing executable program code; A processor coupled to the memory; The processor calls the executable program code stored in the memory to execute the heat pump system control method based on scene information as described in any one of claims 1-7.
10. A computer storage medium, characterized in that, The computer storage medium stores computer instructions, which, when invoked, are used to execute the heat pump system control method based on scene information as described in any one of claims 1-7.
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CN116794989A