Regional temperature control method and device based on heat source compensation model
Through the regional temperature control method based on the heat source compensation model, the outdoor heat flow and building information are determined, the temperature control area is divided and the air supply of the air conditioner is controlled, which solves the problem of low temperature control accuracy and reliability of the intelligent air conditioning area and achieves higher temperature control accuracy and comfort.
Patent Information
- Application Number
- CN202411442546.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-15
- Publication Date
- 2025-10-03
- Estimated Expiration
- 2044-10-15
AI Technical Summary
The existing smart air conditioning zone temperature control method has low accuracy and reliability, and users need to manually operate the remote control to adjust the air outlet temperature/air outlet level to change the zone temperature.
A regional temperature control method based on a heat source compensation model is adopted. By determining the outdoor heat flow, the internal and external surfaces of the building, and the indoor heat exchange information, the outdoor heat transfer is analyzed, and the indirect temperature control and direct temperature control areas are divided. The air conditioner is controlled to perform air supply temperature control operations. The indirect temperature control area achieves regional temperature control through convection radiation.
It improves the accuracy and reliability of regional temperature control, enhances the comprehensiveness and rationality of air-conditioning air supply temperature control, and improves the temperature fit and comfort of different areas.
Smart Images

Figure CN119123590B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of intelligent devices, and in particular to a regional temperature control method and device based on a heat source compensation model. Background Art
[0002] With the rapid development of technology and the improvement of people's living standards, controlling ambient temperature through air conditioning has become very common. However, in practical applications, existing regional temperature control methods using smart air conditioners mostly rely on manual remote control of the smart air conditioner to achieve regional temperature control. For example, users use the remote control to adjust the air outlet temperature or air level to change the temperature of the area they are in. This existing regional temperature control method using smart air conditioners can lead to low regional temperature control accuracy and reliability. Therefore, it is particularly important to provide a regional temperature control method that improves the accuracy and reliability of regional temperature control. Summary of the Invention
[0003] The present invention provides a regional temperature control method and device based on a heat source compensation model, which can improve the accuracy and reliability of regional temperature control.
[0004] In order to solve the above technical problems, the first aspect of the present invention discloses a regional temperature control method based on a heat source compensation model, the method comprising:
[0005] Determine the outdoor heat flow information, building interior and exterior surface information, and indoor heat exchange information of the current scene area where the target air conditioner and temperature control object are located;
[0006] Inputting the outdoor heat flow information, the building interior and exterior surface information, and the indoor heat exchange related information into the trained and converged heat source compensation model for analysis to obtain the outdoor heat transfer result of the current scene area;
[0007] Determining an indirect temperature control area and its corresponding temperature control boundary in the current scene area, and determining a direct temperature control area in the current scene area;
[0008] Controlling the target air conditioner to perform corresponding air supply and temperature control operations on the directly controlled area based on the determined object radiation heat result and object convection heat result of the temperature controlled object, the outdoor heat transfer result, the indirect temperature control area and its corresponding temperature control boundary, and the directly controlled area;
[0009] The indirect temperature control area performs its own convection and radiation operation based on the temperature control phenomenon of the direct temperature control area to achieve regional temperature control.
[0010] As an optional embodiment, in the first aspect of the present invention, controlling the target air conditioner to perform corresponding air supply and temperature control operations on the directly temperature controlled area based on the determined object radiation heat result and object convection heat result of the temperature controlled object, the outdoor heat transfer result, the indirect temperature controlled area and its corresponding temperature control boundary, and the direct temperature controlled area includes:
[0011] Dividing the direct temperature control area into a primary temperature control area and / or a secondary temperature control area according to the indirect temperature control area and its corresponding temperature control boundary, the direct temperature control area, the object radiation heat result, and the outdoor heat transfer result;
[0012] Determining a first temperature control parameter result corresponding to the target air conditioner based on the determined object radiation heat result and object convection heat result of the temperature control object, determining a second temperature control parameter result corresponding to the target air conditioner based on the outdoor heat transfer result, and determining a third temperature control parameter result corresponding to the target air conditioner based on the determined object radiation heat result and object convection heat result of the temperature control object and the outdoor heat transfer result;
[0013] For the primary temperature control area, performing corresponding air supply and temperature control operations on the primary temperature control area according to the third temperature control parameter result;
[0014] For the secondary temperature control area, performing corresponding air supply and temperature control operations on the secondary temperature control area according to the second temperature control parameter result or the first temperature control parameter result;
[0015] Among them, the first-level temperature control area is the area in the direct temperature control area that meets the preset multi-side heat influence conditions; the second-level temperature control area is the area in the direct temperature control area that meets the preset single-side heat influence conditions.
[0016] As an optional embodiment, in the first aspect of the present invention, the outdoor heat flow information, the building interior and exterior surface information, and the indoor heat exchange related information are input into the trained and converged heat source compensation model for analysis to obtain the outdoor heat transfer result of the current scene area, including:
[0017] Determining the outdoor temperature and heat transfer coefficient corresponding to the current scene area according to the outdoor heat flow information;
[0018] Determining, based on the indoor heat exchange related information, indoor airflow information of the current scene area and surface material information of objects in direct contact with the gas in the current scene area, and determining, based on the indoor airflow information and the surface material information of the contact objects, indoor heat exchange coefficient information corresponding to the current scene area;
[0019] Determine, based on the building's internal and external surface information, the heated area information, partition wall thickness information, and building material information of the building partition wall corresponding to the current scene area, and determine, based on the partition wall thickness information and the building material information, the thermal conductivity coefficient information of the building partition wall;
[0020] Determine the indoor temperature information of the current scene area according to the indoor heat exchange related information;
[0021] Determining an outdoor heat transfer result for the current scene area based on the outdoor temperature information, the outdoor heat transfer coefficient information, the heated area information, the indoor temperature information, the outdoor heat transfer coefficient information, the indoor heat transfer coefficient information, the partition wall thickness information, and the thermal conductivity coefficient information;
[0022] And, the outdoor heat transfer result of the current scene area is obtained by the following formula:
[0023] W=B(t f1 -t f2 ) / (1 / h1+a / b+1 / h2);
[0024] Wherein, W is the outdoor heat transfer result; B is the heated area information; t f1 is the outdoor temperature information; t f2 is the indoor temperature information; h1 is the outdoor heat transfer coefficient information; h2 is the indoor heat transfer coefficient information; a is the partition wall thickness information; b is the thermal conductivity information.
[0025] As an optional embodiment, in the first aspect of the present invention, the outdoor heat flow information, the building interior and exterior surface information, and the indoor heat exchange related information are input into the trained and converged heat source compensation model for analysis to obtain the outdoor heat transfer result of the current scene area, including:
[0026] Determining, based on the building's internal and external surface information, outer surface area information and outer surface material information of a building partition wall corresponding to the current scene area, and determining, based on the outer surface area information and the outer surface material information, first heat transfer reduction information of the building partition wall;
[0027] Determining, based on the building's internal and external surface information, insulation material information and insulation thickness information of the building's partition wall, and determining, based on the insulation material information and the insulation thickness information, second heat transfer reduction information of the building's partition wall;
[0028] Determining inner surface area information and inner surface material information of the building partition wall based on the inner and outer surface information of the building, and determining third heat transfer reduction information of the building partition wall based on the inner surface area information and the inner surface material information;
[0029] The outdoor heat transfer result of the current scene area is determined according to the outdoor heat flow information, the first heat transfer attenuation information, the second heat transfer attenuation information, the third heat transfer attenuation information, the indoor temperature heat information and the preset heat difference influence mode.
[0030] As an optional embodiment, in the first aspect of the present invention, determining the indirect temperature control area and its corresponding temperature control boundary in the current scene area, and determining the direct temperature control area in the current scene area, includes:
[0031] Determining a first temperature stratification area and a corresponding first temperature distribution in the current scene area according to the outdoor heat transfer result;
[0032] Determining a second temperature stratification area in the current scene area and a corresponding second temperature distribution according to the temperature-controlled object being at a target position in the current scene area and the determined object radiation heat result of the temperature-controlled object;
[0033] Determining an indirect temperature control area and a corresponding temperature control boundary in the current scene area according to the first temperature stratification area and its corresponding first temperature distribution, and the second temperature stratification area and its corresponding second temperature distribution;
[0034] A direct temperature control area in the current scene area is determined according to the indirect temperature control area and its corresponding temperature control boundary.
[0035] As an optional embodiment, in the first aspect of the present invention, the method further comprises:
[0036] Determining a blackness value parameter and a blackbody radiation constant parameter corresponding to the temperature-controlled object based on the collected human body parameter information of the temperature-controlled object, and determining a human body surface area parameter and a surface temperature parameter of the temperature-controlled object based on the collected human body surface information of the temperature-controlled object;
[0037] determining an object radiation heat result of the temperature-controlled object according to the blackness value parameter, the blackbody radiation constant parameter, the human body surface area parameter, and the surface temperature parameter;
[0038] And, the object radiation heat result of the temperature-controlled object is obtained by the following formula:
[0039] Q=KAcT 4 ;
[0040] Among them, Q is the radiation heat result of the object; K is the black value parameter; A is the human body surface area parameter; c is the blackbody radiation constant parameter; T is the surface temperature parameter.
[0041] As an optional embodiment, in the first aspect of the present invention, the method further comprises:
[0042] Determining wall surface area information corresponding to the indirect temperature control area according to the indirect temperature control area and its corresponding temperature control boundary;
[0043] Determine the temperature gradient result of the current scene area according to a preset temperature gradient analysis method, and determine the wall temperature information corresponding to the indirect temperature control area according to the temperature gradient result;
[0044] Determining the wall temperature information and convection heat transfer coefficient information corresponding to the indirect temperature control area;
[0045] Determining a convection heat result of the temperature-controlled object according to the wall surface area information, the wall temperature information, the wall internal temperature information, and the convection heat transfer coefficient information;
[0046] And, the object convection heat result of the temperature-controlled object is obtained by the following formula:
[0047] E=hC(t w -t f );
[0048] Wherein, E is the object convection heat result; h is the convection heat transfer coefficient information; C is the wall surface area information; t w is the wall temperature information; t f is the wall temperature information.
[0049] A second aspect of the present invention discloses a regional temperature control device based on a heat source compensation model, the device comprising:
[0050] An information determination module is used to determine the outdoor heat flow information, building interior and exterior surface information, and indoor heat exchange related information of the current scene area where the target air conditioner and temperature control object are located;
[0051] A heat source compensation model is used to input the outdoor heat flow information, the building interior and exterior surface information, and the indoor heat exchange related information into the trained and converged heat source compensation model for analysis to obtain the outdoor heat transfer result of the current scene area;
[0052] a determination module, configured to determine an indirect temperature control area in the current scene area and its corresponding temperature control boundary, and determine a direct temperature control area in the current scene area;
[0053] a temperature control module, configured to control the target air conditioner to perform corresponding air supply and temperature control operations on the directly controlled area based on the determined object radiation heat result and object convection heat result of the temperature controlled object, the outdoor heat transfer result, the indirect temperature control area and its corresponding temperature control boundary, and the directly controlled area;
[0054] The indirect temperature control area performs its own convection and radiation operation based on the temperature control phenomenon of the direct temperature control area to achieve regional temperature control.
[0055] As an optional embodiment, in the second aspect of the present invention, the temperature control module controls the target air conditioner to perform the corresponding air supply and temperature control operation on the direct temperature control area based on the determined object radiation heat result and object convection heat result of the temperature control object, the outdoor heat transfer result, the indirect temperature control area and its corresponding temperature control boundary, and the direct temperature control area, specifically including:
[0056] Dividing the direct temperature control area into a primary temperature control area and / or a secondary temperature control area according to the indirect temperature control area and its corresponding temperature control boundary, the direct temperature control area, the object radiation heat result, and the outdoor heat transfer result;
[0057] Determining a first temperature control parameter result corresponding to the target air conditioner based on the determined object radiation heat result and object convection heat result of the temperature control object, determining a second temperature control parameter result corresponding to the target air conditioner based on the outdoor heat transfer result, and determining a third temperature control parameter result corresponding to the target air conditioner based on the determined object radiation heat result and object convection heat result of the temperature control object and the outdoor heat transfer result;
[0058] For the primary temperature control area, performing corresponding air supply and temperature control operations on the primary temperature control area according to the third temperature control parameter result;
[0059] For the secondary temperature control area, performing corresponding air supply and temperature control operations on the secondary temperature control area according to the second temperature control parameter result or the first temperature control parameter result;
[0060] Among them, the first-level temperature control area is the area in the direct temperature control area that meets the preset multi-side heat influence conditions; the second-level temperature control area is the area in the direct temperature control area that meets the preset single-side heat influence conditions.
[0061] As an optional embodiment, in the second aspect of the present invention, the heat source compensation module inputs the outdoor heat flow information, the building interior and exterior surface information, and the indoor heat exchange related information into the trained and converged heat source compensation model for analysis, and obtains the outdoor heat transfer result of the current scene area in a manner specifically including:
[0062] Determining the outdoor temperature and heat transfer coefficient corresponding to the current scene area according to the outdoor heat flow information;
[0063] Determining, based on the indoor heat exchange related information, indoor airflow information of the current scene area and surface material information of objects in direct contact with the gas in the current scene area, and determining, based on the indoor airflow information and the surface material information of the contact objects, indoor heat exchange coefficient information corresponding to the current scene area;
[0064] Determine, based on the building's internal and external surface information, the heated area information, partition wall thickness information, and building material information of the building partition wall corresponding to the current scene area, and determine, based on the partition wall thickness information and the building material information, the thermal conductivity coefficient information of the building partition wall;
[0065] Determine the indoor temperature information of the current scene area according to the indoor heat exchange related information;
[0066] Determining an outdoor heat transfer result for the current scene area based on the outdoor temperature information, the outdoor heat transfer coefficient information, the heated area information, the indoor temperature information, the outdoor heat transfer coefficient information, the indoor heat transfer coefficient information, the partition wall thickness information, and the thermal conductivity coefficient information;
[0067] And, the outdoor heat transfer result of the current scene area is obtained by the following formula:
[0068] W=B(t f1 -t f2 ) / (1 / h1+a / b+1 / h2);
[0069] Wherein, W is the outdoor heat transfer result; B is the heated area information; t f1 is the outdoor temperature information; t f2 is the indoor temperature information; h1 is the outdoor heat transfer coefficient information; h2 is the indoor heat transfer coefficient information; a is the partition wall thickness information; b is the thermal conductivity information.
[0070] As an optional embodiment, in the second aspect of the present invention, the heat source compensation module inputs the outdoor heat flow information, the building interior and exterior surface information, and the indoor heat exchange related information into the trained and converged heat source compensation model for analysis, and obtains the outdoor heat transfer result of the current scene area in a manner specifically including:
[0071] Determining, based on the building's internal and external surface information, outer surface area information and outer surface material information of a building partition wall corresponding to the current scene area, and determining, based on the outer surface area information and the outer surface material information, first heat transfer reduction information of the building partition wall;
[0072] Determining, based on the building's internal and external surface information, insulation material information and insulation thickness information of the building's partition wall, and determining, based on the insulation material information and the insulation thickness information, second heat transfer reduction information of the building's partition wall;
[0073] Determining inner surface area information and inner surface material information of the building partition wall based on the inner and outer surface information of the building, and determining third heat transfer reduction information of the building partition wall based on the inner surface area information and the inner surface material information;
[0074] The outdoor heat transfer result of the current scene area is determined according to the outdoor heat flow information, the first heat transfer attenuation information, the second heat transfer attenuation information, the third heat transfer attenuation information, the indoor temperature heat information and the preset heat difference influence mode.
[0075] As an optional embodiment, in the second aspect of the present invention, the determination module determines the indirect temperature control area in the current scene area and its corresponding temperature control boundary, and determines the direct temperature control area in the current scene area in a manner specifically including:
[0076] Determining a first temperature stratification area and a corresponding first temperature distribution in the current scene area according to the outdoor heat transfer result;
[0077] Determining a second temperature stratification area in the current scene area and a corresponding second temperature distribution according to the temperature-controlled object being at a target position in the current scene area and the determined object radiation heat result of the temperature-controlled object;
[0078] Determining an indirect temperature control area and a corresponding temperature control boundary in the current scene area according to the first temperature stratification area and its corresponding first temperature distribution, and the second temperature stratification area and its corresponding second temperature distribution;
[0079] A direct temperature control area in the current scene area is determined according to the indirect temperature control area and its corresponding temperature control boundary.
[0080] As an optional embodiment, in the second aspect of the present invention, the device further includes:
[0081] a radiant heat determination module, configured to determine a black value parameter and a blackbody radiation constant parameter corresponding to the temperature-controlled object based on the collected human body parameter information of the temperature-controlled object, and to determine a human body surface area parameter and a surface temperature parameter of the temperature-controlled object based on the collected human body surface information of the temperature-controlled object; and to determine an object radiant heat result of the temperature-controlled object based on the black value parameter, the blackbody radiation constant parameter, the human body surface area parameter, and the surface temperature parameter;
[0082] And, the object radiation heat result of the temperature-controlled object is obtained by the following formula:
[0083] Q=KAcT 4 ;
[0084] Among them, Q is the radiation heat result of the object; K is the black value parameter; A is the human body surface area parameter; c is the blackbody radiation constant parameter; T is the surface temperature parameter.
[0085] As an optional embodiment, in the second aspect of the present invention, the device further includes:
[0086] a convection heat determination module, configured to determine, based on the indirect temperature control area and its corresponding temperature control boundary, wall surface area information corresponding to the indirect temperature control area; determine, based on a preset temperature gradient analysis method, a temperature gradient result of the current scene area, and determine, based on the temperature gradient result, wall temperature information corresponding to the indirect temperature control area; determine inner wall temperature information and convection heat transfer coefficient information corresponding to the indirect temperature control area; and determine, based on the wall surface area information, the wall temperature information, the inner wall temperature information, and the convection heat transfer coefficient information, an object convection heat result of the temperature control object;
[0087] And, the object convection heat result of the temperature-controlled object is obtained by the following formula:
[0088] E=h3C(t w -t f );
[0089] Wherein, E is the object convection heat result; h3 is the convection heat transfer coefficient information; C is the wall surface area information; t w is the wall temperature information; t f is the wall temperature information.
[0090] The third aspect of the present invention discloses another regional temperature control device based on a heat source compensation model, the device comprising:
[0091] a memory storing executable program code;
[0092] a processor coupled to the memory;
[0093] The processor calls the executable program code stored in the memory to execute a regional temperature control method based on a heat source compensation model disclosed in the first aspect of the present invention.
[0094] The fourth aspect of the present invention discloses a computer storage medium, which stores computer instructions. When the computer instructions are called, they are used to execute the regional temperature control method based on the heat source compensation model disclosed in the first aspect of the present invention.
[0095] Compared with the prior art, the embodiments of the present invention have the following beneficial effects:
[0096] In an embodiment of the present invention, the outdoor heat flow information, the interior and exterior surface information of the building, and the indoor heat exchange related information of the current scene area where the target air conditioner and the temperature control object are located are determined; the outdoor heat flow information, the interior and exterior surface information of the building, and the indoor heat exchange related information are input into a trained and converged heat source compensation model for analysis to obtain the outdoor heat transfer result of the current scene area; the indirect temperature control area in the current scene area and its corresponding temperature control boundary are determined, and the direct temperature control area in the current scene area is determined; based on the determined object radiation heat result and object convection heat result of the temperature control object, the outdoor heat transfer result, the indirect temperature control area and its corresponding temperature control boundary, and the direct temperature control area, the target air conditioner is controlled to perform corresponding air supply temperature control operations on the direct temperature control area; wherein, the indirect temperature control area performs its own convection radiation operation based on the temperature control phenomenon of the direct temperature control area to achieve regional temperature control. It can be seen that the present invention can obtain the outdoor heat transfer results based on the heat source compensation model, and determine the indirect temperature control area and the direct temperature control area, and control the air conditioner to perform air supply temperature control operations on the direct temperature control area. The indirect temperature control area performs its own convection radiation based on the temperature control phenomenon of the indirect temperature control area to achieve regional control, which is conducive to improving the comprehensiveness and rationality of the regional temperature control method based on the heat source compensation model, and then helps to improve the accuracy and reliability of the air supply temperature control of the air conditioner, thereby helping to improve the regional temperature control accuracy and reliability of the current scene area, and further helps to improve the temperature fit and comfort of different areas. BRIEF DESCRIPTION OF THE DRAWINGS
[0097] In order to more clearly illustrate the technical solutions in the embodiments of the present invention, the following briefly introduces the drawings required for use in the description of the embodiments. Obviously, the drawings described below are only some embodiments of the present invention. For ordinary technicians in this field, other drawings can be obtained based on these drawings without creative work.
[0098] Figure 1 This is a schematic diagram of a scenario applicable to a regional temperature control method based on a heat source compensation model disclosed in an embodiment of the present invention;
[0099] Figure 2 This is a flow chart of a regional temperature control method based on a heat source compensation model disclosed in an embodiment of the present invention;
[0100] Figure 3 This is a flow chart of another regional temperature control method based on a heat source compensation model disclosed in an embodiment of the present invention;
[0101] Figure 4 1 is a schematic structural diagram of a regional temperature control device based on a heat source compensation model disclosed in an embodiment of the present invention;
[0102] Figure 5 2 is a schematic structural diagram of another regional temperature control device based on a heat source compensation model disclosed in an embodiment of the present invention;
[0103] Figure 6 This is a structural schematic diagram of another regional temperature control device based on a heat source compensation model disclosed in an embodiment of the present invention. DETAILED DESCRIPTION
[0104] In order to enable those skilled in the art to better understand the solutions of the present invention, the technical solutions in the embodiments of the present invention will be clearly and completely described below in conjunction with the accompanying drawings of the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. All other embodiments obtained by ordinary technicians in this field based on the embodiments of the present invention without making any creative efforts shall fall within the scope of protection of the present invention.
[0105] The terms "first," "second," and so on, in the description and claims of the present invention and the accompanying drawings are used to distinguish between different items, not to describe a specific order. Furthermore, the terms "including," "having," and any variations thereof, are intended to cover non-exclusive inclusions. For example, a process, method, apparatus, product, or end comprising a series of steps or elements is not limited to the listed steps or elements but may optionally include steps or elements not listed therein, or may optionally include other steps or elements inherent to such process, method, product, or end.
[0106] References herein to "embodiments" mean that a particular feature, structure, or characteristic described in connection with the embodiments may be included in at least one embodiment of the present invention. The appearance of this phrase in various places in the specification does not necessarily refer to the same embodiment, nor does it constitute a separate or alternative embodiment that is mutually exclusive of other embodiments. It is understood, both explicitly and implicitly, by those skilled in the art that the embodiments described herein may be combined with other embodiments.
[0107] The present invention discloses a regional temperature control method and device based on a heat source compensation model. The method and device can obtain outdoor heat transfer results based on the heat source compensation model, and determine indirect temperature control areas and direct temperature control areas. The air conditioner is controlled to perform air supply and temperature control operations on the direct temperature control area. The indirect temperature control area performs self-convection and radiation based on the temperature control phenomenon of the indirect temperature control area to achieve regional control. This is conducive to improving the comprehensiveness and rationality of the regional temperature control method based on the heat source compensation model, and further conducive to improving the accuracy and reliability of the air supply and temperature control of the air conditioner, thereby improving the accuracy and reliability of the regional temperature control in the current scene area, and further conducive to improving the temperature fit and comfort of different areas. The following are detailed descriptions.
[0108] In order to better understand the regional temperature control method and device based on the heat source compensation model described in the present invention, the scenario architecture applicable to the regional temperature control method based on the heat source compensation model is first described. Specifically, the scenario architecture can be as follows: Figure 1 As shown, the applicable scenarios of the regional temperature control method based on the heat source compensation model may include users and smart air conditioners. Specifically, based on the outdoor heat flow information, the internal and external surface information of the building and the indoor heat exchange related information, the outdoor heat transfer result of the current scene area is determined by the heat source compensation model, and the indirect temperature control area in the current scene area (i.e. Figure 1 The inner wall area in the Figure 1 The object radiation heat result and object convection heat result of the temperature-controlled object can also be determined through the heat source compensation model or preset formula, and then the smart air conditioner is controlled to perform corresponding air supply and temperature control operations on the direct temperature control area according to the object radiation heat result, object convection heat result and outdoor heat transfer result. In addition, the indirect temperature control area realizes regional temperature control through convection and radiation within the wall, thereby realizing the current scene regional temperature control function based on the heat source compensation model.
[0109] It should be noted that Figure 1 The scenario diagram shown is only intended to illustrate a scenario in which a regional temperature control method based on a heat source compensation model is applicable. The various smart devices involved are only shown schematically. The specific structure / size / shape / location / installation method, as well as the communication method between the various smart devices, can be adaptively adjusted according to the actual scenario. Figure 1The scenario shown is not limiting in this regard.
[0110] Example 1
[0111] See also Figure 2 , Figure 2 This is a flow chart of a regional temperature control method based on a heat source compensation model disclosed in an embodiment of the present invention. Figure 2 The described method can be applied to a regional temperature control device based on a heat source compensation model, wherein the device may include a server, wherein the server includes a local server or a cloud server, which is not limited in the embodiment of the present invention. Figure 2 As shown, the regional temperature control method based on the heat source compensation model includes the following operations:
[0112] 101. Determine the outdoor heat flow information, building interior and exterior surface information, and indoor heat exchange related information of the current scene area where the target air conditioner and temperature control object are located.
[0113] Optionally, the temperature control object may include but is not limited to one or more of a user, a device requiring temperature control, and other objects requiring temperature control, etc., and the embodiment of the present invention does not limit this.
[0114] Optionally, outdoor heat flow information may include, but is not limited to, one or more of outdoor temperature information, outdoor heat flux density information, outdoor heat flow rate information, outdoor heat generation rate information, outdoor thermal physical parameter information, outdoor convection boundary condition information, outdoor heat flux density boundary condition information, outdoor air flow velocity information and other information that can reflect the outdoor heat flow situation, and is not limited in the embodiments of the present invention.
[0115] Optionally, the information on the internal and external surfaces of the building may include, but is not limited to, one or more of the following: information on the material of the internal and external surfaces of the building, information on the thickness of the building, information on the temperature of the internal and external surfaces of the building, information on the heated area of the internal and external surfaces of the building, information on the thermal conductivity of the internal and external surfaces of the building, information on the temperature of the internal and external surfaces of the building, information on the heat transfer coefficient of the internal and external surfaces of the building, information on the material inside the building partition walls, information on the thermal conductivity inside the building partition walls, information on the temperature inside the building partition walls, and other information related to the internal and external surfaces of the building, and is not limited in the embodiments of the present invention.
[0116] Optionally, indoor heat exchange related information may include but is not limited to one or more of indoor heat exchange coefficient information, indoor temperature information, indoor humidity information, indoor gas particle information, indoor airflow density information, indoor airflow velocity information, indoor related object material information, indoor object information and other information related to indoor heat exchange, etc., and is not limited in the embodiments of the present invention.
[0117] Further optionally, before determining the outdoor heat flow information, building interior and exterior surface information, and indoor heat exchange related information of the current scene area where the target air conditioner and the temperature-controlled object are located, the method may further include the following operations:
[0118] Determining whether a target trigger instruction corresponding to a target user for triggering operation of a regional temperature control mode based on a heat source compensation model for a target air conditioner is received;
[0119] When it is determined that a target trigger instruction has been received, the steps of determining the outdoor heat flow information, the internal and external surface information of the building, and the indoor heat exchange related information of the current scene area where the target air conditioner and the temperature control object are located are performed;
[0120] When it is determined that a target trigger instruction is received, the above step of determining whether a target trigger instruction corresponding to the target user for triggering the operation of the regional temperature control mode based on the heat source compensation model for the target air conditioner is received is performed again.
[0121] Further optionally, the target trigger instruction can be a trigger instruction generated by voice interaction between the user and the voice module corresponding to the target air conditioner. For example, the voice module corresponding to the target air conditioner recognizes the user's words "Please run the regional temperature control and regulation mode based on the heat source compensation model corresponding to the target air conditioner" as the target trigger instruction; the target trigger instruction can also be a message signal sent to it by the target user through the smart terminal and received by the WiFi module corresponding to the target air conditioner. For example, the target user clicks on the smart terminal a related button for running the regional temperature control and regulation mode based on the heat source compensation model corresponding to the target air conditioner, and the smart terminal communicates with the WiFi module corresponding to the target air conditioner to obtain the target trigger instruction. The embodiment is not limited to this; further optionally, the voice module corresponding to the target air conditioner can be set in the target air conditioner, or in the control device corresponding to the target air conditioner (such as: a remote control, a control module, a regional temperature control device based on a heat source compensation model, etc.), or in a smart device associated with the target air conditioner (such as: a smart terminal that can control the target air conditioner, other smart home appliances in a smart home system, and smart devices that have a joint operation relationship with the target air conditioner, etc.), and the embodiment of the present invention is not limited to this; further optionally, when the voice module is set in a related device other than the target air conditioner, the target air conditioner can receive the voice instructions recognized by the voice module sent by the above-mentioned related device through the WiFi module, and the embodiment of the present invention is not limited to this.
[0122] 102. Input the outdoor heat flow information, the building's internal and external surface information, and the indoor heat exchange related information into the trained and converged heat source compensation model for analysis to obtain the outdoor heat transfer results for the current scene area.
[0123] Optionally, the outdoor heat transfer results of the current scene area can be used to represent the heat transfer of outdoor heat flow to the outer surface of the building partition wall in the current scene area, the heat transfer of the outer surface of the building partition wall in the current scene area to the inner surface, and the heat transfer of the inner surface of the building partition wall in the current scene area to the scene air of the current scene area. The embodiments of the present invention are not limited to this.
[0124] Optionally, the outdoor heat transfer result of the current scene area may also be used to represent the amount of heat transferred from the outdoor area of the current scene area to the current scene area, which is not limited in the embodiment of the present invention.
[0125] 103. Determine an indirect temperature control area in the current scene area and its corresponding temperature control boundary, and determine a direct temperature control area in the current scene area.
[0126] Optionally, the temperature control boundary of the indirect temperature control area may be a real wall boundary or a virtual boundary used to reflect obvious temperature stratification, which is not limited in the embodiment of the present invention.
[0127] Optionally, the difference between the direct temperature control area and the indirect temperature control area can be that the direct temperature control area is temperature controlled by direct air outlet of the target air conditioner, and the indirect temperature control area is temperature controlled by convection and radiation within the wall; there can also be obvious temperature stratification between the direct temperature control area and the indirect temperature control area; there can also be other temperature control areas between the direct temperature control area and the indirect temperature control area, which is not limited in the embodiments of the present invention.
[0128] 104. Based on the determined object radiation heat results and object convection heat results of the temperature-controlled object, the outdoor heat transfer results, the indirect temperature-controlled area and its corresponding temperature control boundary, and the direct temperature-controlled area, the target air conditioner is controlled to perform corresponding air supply and temperature control operations on the direct temperature-controlled area; wherein, the indirect temperature-controlled area performs its own convection and radiation operations based on the temperature control phenomenon of the direct temperature-controlled area to achieve regional temperature control.
[0129] Optionally, the object radiation heat result of the temperature-controlled object can be understood as the radiation heat released by the temperature-controlled object, which is not limited in the embodiment of the present invention.
[0130] Optionally, the object convection heat result of the temperature-controlled object may be understood as the convection heat information in the indirect temperature-controlled area where the temperature-controlled object is located, which is not limited in the embodiment of the present invention.
[0131] Optionally, the above-mentioned indirect temperature control area performs its own convection and radiation operations based on the temperature control phenomenon of the direct temperature control area to achieve regional temperature control. It can be understood that the indirect temperature control area uses the temperature control boundary as the wall surface, and only convection and radiation are used for temperature control within the wall surface. The embodiment of the present invention does not limit this.
[0132] Further optionally, the regional temperature control function of the current scene area can be realized by inputting relevant parameter information into the heat source compensation model for analysis, which is not limited in the embodiment of the present invention.
[0133] It can be seen that the regional temperature control method based on the heat source compensation model described in the embodiment of the present invention can obtain the outdoor heat transfer result based on the heat source compensation model, and determine the indirect temperature control area and the direct temperature control area, and control the air conditioner to perform air supply temperature control operations on the direct temperature control area. The indirect temperature control area performs its own convection radiation based on the temperature control phenomenon of the indirect temperature control area to achieve regional control, which is conducive to improving the comprehensiveness and rationality of the regional temperature control method based on the heat source compensation model, and thus is conducive to improving the accuracy and reliability of the air supply temperature control of the air conditioner, thereby improving the accuracy and reliability of the regional temperature control of the current scene area, and further is conducive to improving the temperature fit and comfort of different areas.
[0134] In an optional embodiment, controlling the target air conditioner to perform corresponding air supply and temperature control operations on the directly controlled area based on the determined object radiation heat result and object convection heat result of the temperature controlled object, the outdoor heat transfer result, the indirect temperature control area and its corresponding temperature control boundary, and the directly controlled area may include:
[0135] According to the indirect temperature control area and its corresponding temperature control boundary, the direct temperature control area, the object radiation heat result and the outdoor heat transfer result, the direct temperature control area is divided into the primary temperature control area and / or the secondary temperature control area;
[0136] Determine a first temperature control parameter result corresponding to the target air conditioner based on the determined object radiation heat result and object convection heat result of the temperature control object, determine a second temperature control parameter result corresponding to the target air conditioner based on the outdoor heat transfer result, and determine a third temperature control parameter result corresponding to the target air conditioner based on the determined object radiation heat result and object convection heat result of the temperature control object and the outdoor heat transfer result;
[0137] For the first-level temperature control area, according to the third temperature control parameter result, the corresponding air supply temperature control operation is performed on the first-level temperature control area;
[0138] For the secondary temperature control area, the corresponding air supply and temperature control operation is performed on the secondary temperature control area according to the second temperature control parameter result or the first temperature control parameter result;
[0139] Among them, the first-level temperature control area is the area in the direct temperature control area that meets the preset multi-side heat influence conditions; the second-level temperature control area is the area in the direct temperature control area that meets the preset single-side heat influence conditions.
[0140] Optionally, the first-level temperature control area and the second-level temperature control area, for example: at least two of the four directions of up, down, left and right in the first-level temperature control area can be heating surfaces, and only one direction or no direction of the four directions of up, down, left and right in the second-level temperature control area can be heating surfaces; the number of heating surfaces in the first-level temperature control area can be greater than the number of heating surfaces in the second-level temperature control area; the heating area of the first-level temperature control area can be greater than the heating area of the second-level temperature control area; the degree of heating in the first-level temperature control area can be higher than the degree of heating in the second-level temperature control area; the heat amount in the first-level temperature control area can be higher than the heat amount in the second-level temperature control area, etc., and the embodiments of the present invention do not limit this.
[0141] Optionally, the first temperature control parameter result can be understood as the temperature control parameter for the temperature control object with the heat source / heat influence source being the heat control object; the second temperature control parameter result can be understood as the temperature control parameter for the heat source / heat influence source being the outdoor heat flow; the third temperature control parameter result can be understood as the temperature control parameter for the heat source / heat influence source being the temperature control object and the outdoor heat flow, and the embodiments of the present invention do not limit this.
[0142] Further optionally, for the secondary temperature control area, performing corresponding air supply and temperature control operations on the secondary temperature control area according to the second temperature control parameter result or the first temperature control parameter result may include:
[0143] When the heat associated object of the secondary temperature control area is the temperature control object, the corresponding air supply temperature control operation is performed on the secondary temperature control area according to the first temperature control parameter result;
[0144] When the heat-associated object of the secondary temperature-controlled area is an outdoor heat transfer object, the corresponding air supply and temperature control operation is performed on the secondary temperature-controlled area according to the second temperature control parameter result.
[0145] Optionally, the above-mentioned heat-related object is an outdoor heat transfer object, which can be understood as the heat source / heat influence source is an outdoor heat flow; the above-mentioned heat-related object is a temperature control object, which can be understood as the heat source / heat influence source is a temperature control object, and the embodiment of the present invention does not limit this.
[0146] It can be seen that this optional embodiment can match the corresponding temperature control parameter result determination method and air supply temperature control operation for the determined first-level temperature control area and second-level temperature control area respectively, which is beneficial to improving the comprehensiveness, integrity and rationality of the temperature control parameter result determination method and air supply temperature control operation, and is also beneficial to improving the temperature control parameter result determination method and air supply temperature control operation. The pertinence, diversity and flexibility of the temperature control parameter result determination method and air supply temperature control operation are beneficial to improving the accuracy and reliability of the determined temperature control parameter results, and are also beneficial to improving the execution accuracy and reliability of the air supply temperature control operation, thereby helping to improve the regional temperature control accuracy and reliability of the current scene area.
[0147] In another optional embodiment, the outdoor heat flow information, the building interior and exterior surface information, and the indoor heat exchange related information are input into the trained and converged heat source compensation model for analysis to obtain the outdoor heat transfer result for the current scene area, which may include:
[0148] According to the outdoor heat flow information, determine the outdoor temperature information and outdoor heat transfer coefficient information corresponding to the current scene area;
[0149] Based on the indoor heat exchange information, determine the indoor airflow information of the current scene area and the surface material information of objects that will directly contact the gas in the current scene area. Then, determine the indoor heat exchange coefficient information corresponding to the current scene area based on the indoor airflow information and the surface material information of the contact objects.
[0150] Based on the internal and external surface information of the building, determine the heated area information, wall thickness information and building material information of the building partition wall corresponding to the current scene area, and determine the thermal conductivity coefficient information of the building partition wall based on the wall thickness information and building material information;
[0151] Determine the indoor temperature information of the current scene area based on the indoor heat exchange related information;
[0152] The outdoor heat transfer result of the current scene area is determined based on the outdoor temperature information, outdoor heat transfer coefficient information, heated area information, indoor temperature information, outdoor heat transfer coefficient information, indoor heat transfer coefficient information, partition wall thickness information and thermal conductivity coefficient information.
[0153] Optionally, the surface material information of the object in the current scene area that will come into direct contact with the gas, for example: the surface material information corresponding to the user / object in the current scene area that will come into direct contact with the gas, is not limited in this embodiment of the present invention.
[0154] Optionally, the indoor heat exchange coefficient information may be obtained through one or more of indoor airflow density, airflow velocity, material and other information, which is not limited in the embodiment of the present invention.
[0155] Optionally, the building partition wall corresponding to the current scene area can be understood as the building partition wall between the current scene area and the external area, which is not limited in this embodiment of the present invention.
[0156] Optionally, the heated area information of the building partition wall may include the heated area information of the inner surface and the heated area information of the outer surface of the building partition wall, which is not limited in the embodiment of the present invention.
[0157] Optionally, the building material information of the building partition wall may include the inner surface material information and the outer surface material information of the building partition wall, which is not limited in the embodiment of the present invention.
[0158] It can be seen that this optional embodiment can determine the outdoor heat transfer results of the current scene area based on a series of determined parameters such as outdoor temperature information, outdoor heat transfer coefficient information, heated area information, indoor temperature information, outdoor heat transfer coefficient information, indoor heat transfer coefficient information, partition wall thickness information and thermal conductivity information, which is conducive to improving the comprehensiveness and rationality of the method for determining the outdoor heat transfer results, and thus is conducive to improving the comprehensiveness, diversity and accuracy of the determination parameters used to determine the outdoor heat transfer results, thereby helping to improve the accuracy and reliability of the determined outdoor heat transfer results.
[0159] In yet another optional embodiment, the outdoor heat transfer result of the current scene area is obtained by the following formula:
[0160] W=B(t f1 -t f2 ) / (1 / h1+a / b+1 / h2);
[0161] Where W is the outdoor heat transfer result; B is the heated area information; t f1 is the outdoor temperature information; t f2 is the indoor temperature information; h1 is the outdoor heat transfer coefficient information; h2 is the indoor heat transfer coefficient information; a is the partition wall thickness information; b is the thermal conductivity information.
[0162] It can be seen that this optional embodiment can provide a calculation formula for the outdoor heat transfer results, which is conducive to improving the rationality, feasibility and creativity of the method for determining the outdoor heat transfer results, and thus is conducive to improving the accuracy and reliability of the determined outdoor heat transfer results and the subsequent regional temperature control effects determined based on the outdoor heat transfer results.
[0163] In another optional embodiment, the outdoor heat flow information, the building interior and exterior surface information, and the indoor heat exchange related information are input into the trained and converged heat source compensation model for analysis to obtain the outdoor heat transfer result for the current scene area, which may include:
[0164] Determine, based on the building's internal and external surface information, the external surface area information and external surface material information of the building partition wall corresponding to the current scene area, and determine, based on the external surface area information and external surface material information, the first heat transfer reduction information of the building partition wall;
[0165] Determine the insulation material information and insulation thickness information of the building partition wall according to the building internal and external surface information, and determine the second heat transfer reduction information of the building partition wall according to the insulation material information and insulation thickness information;
[0166] Determine inner surface area information and inner surface material information of the building partition wall based on the inner surface area information and inner surface material information, and determine third heat transfer reduction information of the building partition wall based on the inner surface area information and inner surface material information;
[0167] The outdoor heat transfer result of the current scene area is determined according to the outdoor heat flow information, the first heat transfer attenuation information, the second heat transfer attenuation information, the third heat transfer attenuation information, the indoor temperature heat information and the preset heat difference influence mode.
[0168] Optionally, the first heat transfer weakening information can be understood as the weakening of the influence of the building's outer surface on heat transfer; the second heat transfer weakening information can be understood as the weakening of the influence of the building's insulation on heat transfer; the third heat transfer weakening information can be understood as the weakening of the influence of the building's inner surface on heat transfer, which is not limited in the embodiments of the present invention.
[0169] Further optionally, determining the outdoor heat transfer result of the current scene area based on the outdoor heat flow information, the first heat transfer attenuation information, the second heat transfer attenuation information, the third heat transfer attenuation information, the indoor temperature heat information, and the preset heat difference influence mode may include:
[0170] determining a first heat transfer result according to the outdoor heat flow information and the first transferred heat weakening information;
[0171] determining a second heat transfer result according to the first heat transfer result and the second heat transfer attenuation information;
[0172] The outdoor heat transfer result of the current scene area is determined according to the second heat transfer result, the third heat transfer weakening information, the indoor temperature heat information and the preset heat difference influence mode.
[0173] Optionally, the outdoor heat transfer result of the current scene area may include heat information that the outdoor heat of the current scene area can finally reach the indoor space after passing through the building partition wall, which is not limited in the embodiment of the present invention.
[0174] It can be seen that this optional embodiment can provide corresponding methods for determining the heat transfer attenuation information for the three dimensions of the outer surface information, insulation information and inner surface information of the building partition wall, and then determine the outdoor heat transfer result, which is conducive to improving the comprehensiveness and rationality of the method for determining the outdoor heat transfer result, and is also conducive to improving the diversity, flexibility, pertinence and rationality of the method for determining the heat transfer attenuation information, and thus is conducive to improving the accuracy and reliability of the determined heat transfer attenuation information, thereby helping to improve the accuracy and reliability of the determined outdoor heat transfer result. In addition, it can also provide corresponding methods for determining the outdoor heat transfer result from different dimensions, which is conducive to improving the diversity, flexibility and selectivity of the method for determining the outdoor heat transfer result.
[0175] Example 2
[0176] See also Figure 3 , Figure 3 This is a flow chart of another regional temperature control method based on a heat source compensation model disclosed in an embodiment of the present invention. Figure 3 The described method can be applied to a regional temperature control device based on a heat source compensation model, wherein the device may include a server, wherein the server includes a local server or a cloud server, which is not limited in the embodiment of the present invention. Figure 3 As shown, the regional temperature control method based on the heat source compensation model includes the following operations:
[0177] 201. Determine the outdoor heat flow information, building interior and exterior surface information, and indoor heat exchange related information of the current scene area where the target air conditioner and temperature control object are located.
[0178] 202. Input the outdoor heat flow information, the building's internal and external surface information, and the indoor heat exchange related information into the trained and converged heat source compensation model for analysis to obtain the outdoor heat transfer results for the current scene area.
[0179] 203. Determine a first temperature stratification area and its corresponding first temperature distribution in the current scene area according to the outdoor heat transfer result.
[0180] Optionally, the first temperature distribution corresponding to the first temperature stratification region can be understood as the temperature conditions of different sub-regions in the first temperature stratification region, which is not limited in the embodiment of the present invention.
[0181] Further optionally, the determining of the first temperature stratified area and its corresponding first temperature distribution in the current scene area according to the outdoor heat transfer result may include:
[0182] Determine a first heat distribution and diffusion result and a first heat end area according to the outdoor heat transfer result and a preset heat distribution and diffusion analysis method;
[0183] According to the first heat end area, a first temperature stratification area in the current scene area is determined, and according to the first heat distribution diffusion result, a first temperature distribution corresponding to the first temperature stratification area is determined.
[0184] 204. Determine a second temperature layered area in the current scene area and its corresponding second temperature distribution according to the target position of the temperature-controlled object in the current scene area and the determined object radiation heat result of the temperature-controlled object.
[0185] Optionally, the second temperature distribution corresponding to the second temperature stratification region can be understood as the temperature conditions of different sub-regions in the second temperature stratification region, which is not limited in the embodiment of the present invention.
[0186] Further optionally, determining the second temperature stratified area in the current scene area and its corresponding second temperature distribution according to the target position of the temperature-controlled object in the current scene area and the determined object radiation heat result of the temperature-controlled object may include:
[0187] Determine a second heat distribution and diffusion result based on the determined object radiation heat result of the temperature-controlled object and a preset heat distribution and diffusion analysis method, and determine a second heat end area based on the target position of the temperature-controlled object in the current scene area and the second heat distribution and diffusion result;
[0188] According to the second heat end area, a second temperature stratification area in the current scene area is determined, and according to the second heat distribution diffusion result, a second temperature distribution corresponding to the second temperature stratification area is determined.
[0189] 205. Determine an indirect temperature control area and its corresponding temperature control boundary in the current scene area according to the first temperature stratification area and its corresponding first temperature distribution, the second temperature stratification area and its corresponding second temperature distribution.
[0190] Further optionally, determining the indirect temperature control area and its corresponding temperature control boundary in the current scene area based on the first temperature stratification area and its corresponding first temperature distribution, the second temperature stratification area and its corresponding second temperature distribution, may include:
[0191] Determine the second temperature stratification area as the indirect temperature control area in the current scene area, and determine the temperature control boundary corresponding to the indirect temperature control area according to the second temperature stratification area and its corresponding second temperature distribution; or,
[0192] An indirect temperature control area in the current scene area is determined according to the first temperature stratification area and the second temperature stratification area, and a temperature control boundary corresponding to the indirect temperature control area is determined according to the first temperature distribution and the second temperature distribution.
[0193] 206. Determine a direct temperature control area in the current scene area based on the indirect temperature control area and its corresponding temperature control boundary.
[0194] Further optionally, the above-mentioned determination of the direct temperature control area in the current scene area based on the indirect temperature control area and its corresponding temperature control boundary may include:
[0195] According to the temperature control boundary corresponding to the indirect temperature control area, the remaining area except the indirect temperature control area is determined from the current scene area, and the remaining area is determined as the direct temperature control area.
[0196] 207. Based on the determined object radiation heat results and object convection heat results of the temperature control object, the outdoor heat transfer results, the indirect temperature control area and its corresponding temperature control boundary, and the direct temperature control area, the target air conditioner is controlled to perform corresponding air supply temperature control operations on the direct temperature control area; wherein, the indirect temperature control area performs its own convection radiation operations based on the temperature control phenomenon of the direct temperature control area to achieve regional temperature control.
[0197] In the embodiment of the present invention, for other descriptions of steps 201 to 207, please refer to the other detailed descriptions of steps 101 to 104 in the first embodiment, which will not be repeated in the embodiment of the present invention.
[0198] It can be seen that the embodiment of the present invention can obtain the outdoor heat transfer result based on the heat source compensation model, and determine the indirect temperature control area and the direct temperature control area, control the air conditioner to perform air supply temperature control operation on the direct temperature control area, and the indirect temperature control area performs its own convection radiation based on the temperature control phenomenon of the indirect temperature control area to achieve regional control, which is conducive to improving the comprehensiveness and rationality of the regional temperature control method based on the heat source compensation model, and thus is conducive to improving the accuracy and reliability of the air supply temperature control of the air conditioner, thereby improving the accuracy and reliability of the regional temperature control of the current scene area, and further is conducive to improving the temperature fit and comfort of different areas; and, it can also provide corresponding temperature stratification areas and their temperature distribution determination methods for the outdoor heat level and the indoor object heat level, respectively, and then determine the indirect temperature control area and the direct temperature control area, which is conducive to improving the comprehensiveness, diversity, flexibility and pertinence of the temperature stratification area and its temperature distribution determination method, thereby improving the accuracy and reliability of the determined temperature stratification area and its temperature distribution, thereby improving the accuracy and reliability of the determined indirect temperature control area and the direct temperature control area.
[0199] In an optional embodiment, the method may further include the following operations:
[0200] Determine the blackness value parameter and blackbody radiation constant parameter corresponding to the temperature-controlled object based on the collected human body parameter information of the temperature-controlled object, and determine the human body surface area parameter and surface temperature parameter of the temperature-controlled object based on the collected human body surface information of the temperature-controlled object;
[0201] The object radiation heat result of the temperature control object is determined according to the black value parameter, the blackbody radiation constant parameter, the human body surface area parameter and the surface temperature parameter.
[0202] Further optionally, the object radiation heat result of the temperature-controlled object may be determined by a heat source compensation model, which is not limited in the embodiment of the present invention.
[0203] Optionally, it may also include:
[0204] The blackness value parameters, blackbody radiation constant parameters, human body surface area parameters and surface temperature parameters corresponding to the determined temperature control object are input into the heat source compensation model to obtain the object radiation heat result of the temperature control object.
[0205] It can be seen that this optional embodiment can determine the object radiation heat result of the temperature-controlled object based on the determined black value parameters, blackbody radiation constant parameters, human body surface area parameters and surface temperature parameters, which is beneficial to improving the comprehensiveness and rationality of the method for determining the object radiation heat result, and further beneficial to improving the comprehensiveness, diversity and rationality of the determination parameters used to determine the object radiation heat result, thereby helping to improve the accuracy and reliability of the determined object radiation heat result.
[0206] In another optional embodiment, the object radiation heat result of the temperature-controlled object is obtained by the following formula:
[0207] Q=KAcT 4 ;
[0208] Among them, Q is the object radiation heat result; K is the black value parameter; A is the human body surface area parameter; c is the blackbody radiation constant parameter; T is the surface temperature parameter.
[0209] Optionally, the black value parameter may be 0.6 to 0.8, or may be another value determined according to actual conditions, which is not limited in the embodiment of the present invention.
[0210] Optional, blackbody radiation constant parameter, can be 5.67×10 -8 (W / m 2 K 4 ), or may be determined as another value according to actual conditions, which is not limited in the embodiment of the present invention.
[0211] It can be seen that this optional embodiment can provide a calculation formula for the object radiation heat results, which is conducive to improving the rationality, feasibility and creativity of the method for determining the object radiation heat results, and thus is conducive to improving the accuracy and reliability of the determined object radiation heat results and the subsequent regional temperature control effects determined based on the outdoor heat transfer results.
[0212] In yet another optional embodiment, the method may further include the following operations:
[0213] Determine the wall surface area information corresponding to the indirect temperature control area according to the indirect temperature control area and its corresponding temperature control boundary;
[0214] According to the preset temperature gradient analysis method, the temperature gradient result of the current scene area is determined, and based on the temperature gradient result, the wall temperature information corresponding to the indirect temperature control area is determined;
[0215] Determine the wall temperature information and convection heat transfer coefficient information corresponding to the indirect temperature control area;
[0216] The object convection heat result of the temperature control object is determined according to the wall surface area information, wall temperature information, wall internal temperature information and convection heat transfer coefficient information.
[0217] Optionally, the wall temperature information may be obtained by calculating the temperature gradient of the current scene area using a heat exchange formula and then determining the wall temperature, or may be obtained through sensing technology, which is not limited in the embodiment of the present invention.
[0218] Optionally, the temperature gradient analysis method may refer to but is not limited to the above-mentioned method for determining the outdoor heat transfer result, and the embodiment of the present invention does not limit this.
[0219] Further optionally, the object convection heat result of the temperature-controlled object may be determined by a heat source compensation model, which is not limited in the embodiment of the present invention.
[0220] Optionally, it may also include:
[0221] The determined wall surface area information, wall temperature information, wall internal temperature information and convection heat transfer coefficient information are input into the heat source compensation model to obtain the object convection heat result of the temperature control object.
[0222] It can be seen that this optional embodiment can determine the object convective heat result of the temperature-controlled object based on the wall surface area information, wall temperature information, wall temperature information and convective heat transfer coefficient information, which is conducive to improving the comprehensiveness and rationality of the method for determining the object convective heat result, and further conducive to improving the comprehensiveness, diversity and rationality of the determination parameters used to determine the object convective heat result, thereby helping to improve the accuracy and reliability of the determined object convective heat result.
[0223] In yet another optional embodiment, the object convection heat result of the temperature-controlled object is obtained by the following formula:
[0224] E=h3C(t w -t f );
[0225] Where E is the object convective heat result; h3 is the convective heat transfer coefficient information; C is the wall surface area information; t w is the wall temperature information; t f is the wall temperature information.
[0226] It can be seen that this optional embodiment can provide a calculation formula for the object convection heat results, which is conducive to improving the rationality, feasibility and creativity of the method for determining the object convection heat results, and thus is conducive to improving the accuracy and reliability of the determined object convection heat results and the subsequent regional temperature control effects determined based on the outdoor heat transfer results.
[0227] Example 3
[0228] See also Figure 4 , Figure 4 This is a schematic diagram of the structure of a regional temperature control device based on a heat source compensation model disclosed in an embodiment of the present invention. Figure 4 The described device may include a server, wherein the server includes a local server or a cloud server, which is not limited in the embodiment of the present invention. Figure 4 As shown, the regional temperature control device based on the heat source compensation model may include:
[0229] The information determination module 301 is used to determine the outdoor heat flow information, the internal and external surface information of the building, and the indoor heat exchange related information of the current scene area where the target air conditioner and the temperature control object are located.
[0230] The heat source compensation module 302 is used to input outdoor heat flow information, building interior and exterior surface information, and indoor heat exchange related information into the trained and converged heat source compensation model for analysis to obtain the outdoor heat transfer result of the current scene area.
[0231] The determination module 303 is used to determine the indirect temperature control area in the current scene area and its corresponding temperature control boundary, and determine the direct temperature control area in the current scene area.
[0232] The temperature control module 304 is configured to control the target air conditioner to perform corresponding air supply and temperature control operations in the directly controlled area based on the determined object radiation heat result and object convection heat result of the temperature controlled object, the outdoor heat transfer result, the indirect temperature control area and its corresponding temperature control boundary, and the directly controlled area;
[0233] Among them, the indirect temperature control area performs its own convection and radiation operation based on the temperature control phenomenon of the direct temperature control area to achieve regional temperature control.
[0234] It can be seen that implementation Figure 4 The described regional temperature control device based on the heat source compensation model can obtain the outdoor heat transfer results based on the heat source compensation model, and determine the indirect temperature control area and the direct temperature control area, control the air conditioner to perform air supply temperature control operations on the direct temperature control area, and the indirect temperature control area performs its own convection radiation based on the temperature control phenomenon of the indirect temperature control area to achieve regional control, which is conducive to improving the comprehensiveness and rationality of the regional temperature control method based on the heat source compensation model, and thus is conducive to improving the accuracy and reliability of the air supply temperature control of the air conditioner, thereby improving the accuracy and reliability of the regional temperature control of the current scene area, and further is conducive to improving the temperature fit and comfort of different areas.
[0235] In an optional embodiment, the temperature control module 304 controls the target air conditioner to perform corresponding air supply and temperature control operations on the directly controlled area based on the determined object radiation heat result and object convection heat result of the temperature control object, the outdoor heat transfer result, the indirect temperature control area and its corresponding temperature control boundary, and the directly controlled area, specifically including:
[0236] According to the indirect temperature control area and its corresponding temperature control boundary, the direct temperature control area, the object radiation heat result and the outdoor heat transfer result, the direct temperature control area is divided into the primary temperature control area and / or the secondary temperature control area;
[0237] Determine a first temperature control parameter result corresponding to the target air conditioner based on the determined object radiation heat result and object convection heat result of the temperature control object, determine a second temperature control parameter result corresponding to the target air conditioner based on the outdoor heat transfer result, and determine a third temperature control parameter result corresponding to the target air conditioner based on the determined object radiation heat result and object convection heat result of the temperature control object and the outdoor heat transfer result;
[0238] For the first-level temperature control area, according to the third temperature control parameter result, the corresponding air supply temperature control operation is performed on the first-level temperature control area;
[0239] For the secondary temperature control area, the corresponding air supply and temperature control operation is performed on the secondary temperature control area according to the second temperature control parameter result or the first temperature control parameter result;
[0240] Among them, the first-level temperature control area is the area in the direct temperature control area that meets the preset multi-side heat influence conditions; the second-level temperature control area is the area in the direct temperature control area that meets the preset single-side heat influence conditions.
[0241] It can be seen that implementation Figure 5The described device can match the corresponding temperature control parameter result determination method and air supply temperature control operation for the determined first-level temperature control area and second-level temperature control area respectively, which is conducive to improving the comprehensiveness, integrity and rationality of the temperature control parameter result determination method and air supply temperature control operation, and is also conducive to improving the pertinence, diversity and flexibility of the temperature control parameter result determination method and air supply temperature control operation, thereby helping to improve the accuracy and reliability of the determined temperature control parameter results, and is also conducive to improving the execution accuracy and reliability of the air supply temperature control operation, thereby helping to improve the regional temperature control accuracy and reliability of the current scene area.
[0242] In another optional embodiment, the heat source compensation module 302 inputs outdoor heat flow information, building interior and exterior surface information, and indoor heat exchange related information into the trained and converged heat source compensation model for analysis. The method for obtaining the outdoor heat transfer result of the current scene area specifically includes:
[0243] According to the outdoor heat flow information, determine the outdoor temperature information and outdoor heat transfer coefficient information corresponding to the current scene area;
[0244] Based on the indoor heat exchange information, determine the indoor airflow information of the current scene area and the surface material information of objects that will directly contact the gas in the current scene area. Then, determine the indoor heat exchange coefficient information corresponding to the current scene area based on the indoor airflow information and the surface material information of the contact objects.
[0245] Based on the internal and external surface information of the building, determine the heated area information, wall thickness information and building material information of the building partition wall corresponding to the current scene area, and determine the thermal conductivity coefficient information of the building partition wall based on the wall thickness information and building material information;
[0246] Determine the indoor temperature information of the current scene area based on the indoor heat exchange related information;
[0247] The outdoor heat transfer result of the current scene area is determined based on the outdoor temperature information, outdoor heat transfer coefficient information, heated area information, indoor temperature information, outdoor heat transfer coefficient information, indoor heat transfer coefficient information, partition wall thickness information and thermal conductivity coefficient information.
[0248] It can be seen that implementation Figure 5The described device can also determine the outdoor heat transfer results of the current scene area based on a series of determination parameters such as outdoor temperature information, outdoor heat transfer coefficient information, heated area information, indoor temperature information, outdoor heat transfer coefficient information, indoor heat transfer coefficient information, partition wall thickness information and thermal conductivity information, which is conducive to improving the comprehensiveness and rationality of the method for determining the outdoor heat transfer results, and thus is conducive to improving the comprehensiveness, diversity and accuracy of the determination parameters used to determine the outdoor heat transfer results, thereby helping to improve the accuracy and reliability of the determined outdoor heat transfer results.
[0249] In yet another optional embodiment, the outdoor heat transfer result of the current scene area is obtained by the following formula:
[0250] W=B(t f1 -t f2 ) / (1 / h1+a / b+1 / h2);
[0251] Where W is the outdoor heat transfer result; B is the heated area information; t f1 is the outdoor temperature information; t f2 is the indoor temperature information; h1 is the outdoor heat transfer coefficient information; h2 is the indoor heat transfer coefficient information; a is the partition wall thickness information; b is the thermal conductivity information.
[0252] It can be seen that implementation Figure 5 The described device can also provide a calculation formula for outdoor heat transfer results, which is conducive to improving the rationality, feasibility and creativity of the method for determining the outdoor heat transfer results, and thus is conducive to improving the accuracy and reliability of the determined outdoor heat transfer results and the subsequent regional temperature control effects determined based on the outdoor heat transfer results.
[0253] In another optional embodiment, the heat source compensation module 302 inputs outdoor heat flow information, building interior and exterior surface information, and indoor heat exchange related information into the trained and converged heat source compensation model for analysis. The method for obtaining the outdoor heat transfer result of the current scene area specifically includes:
[0254] Determine, based on the building's internal and external surface information, the external surface area information and external surface material information of the building partition wall corresponding to the current scene area, and determine, based on the external surface area information and external surface material information, the first heat transfer reduction information of the building partition wall;
[0255] Determine the insulation material information and insulation thickness information of the building partition wall according to the building internal and external surface information, and determine the second heat transfer reduction information of the building partition wall according to the insulation material information and insulation thickness information;
[0256] Determine inner surface area information and inner surface material information of the building partition wall based on the inner surface area information and inner surface material information, and determine third heat transfer reduction information of the building partition wall based on the inner surface area information and inner surface material information;
[0257] The outdoor heat transfer result of the current scene area is determined according to the outdoor heat flow information, the first heat transfer attenuation information, the second heat transfer attenuation information, the third heat transfer attenuation information, the indoor temperature heat information and the preset heat difference influence mode.
[0258] It can be seen that implementation Figure 5 The described device can also provide corresponding methods for determining the heat transfer attenuation information for the three dimensions of the outer surface information, the insulation information and the inner surface information of the building partition wall, and then determine the outdoor heat transfer result, which is conducive to improving the comprehensiveness and rationality of the method for determining the outdoor heat transfer result, and is also conducive to improving the diversity, flexibility, pertinence and rationality of the method for determining the heat transfer attenuation information, and thus is conducive to improving the accuracy and reliability of the determined heat transfer attenuation information, thereby helping to improve the accuracy and reliability of the determined outdoor heat transfer result. In addition, it can also provide corresponding methods for determining the outdoor heat transfer result from different dimensions, which is conducive to improving the diversity, flexibility and selectivity of the method for determining the outdoor heat transfer result.
[0259] In another optional embodiment, the determination module 303 determines the indirect temperature control area and its corresponding temperature control boundary in the current scene area, and determines the direct temperature control area in the current scene area in a manner that specifically includes:
[0260] Determine the first temperature stratification area and its corresponding first temperature distribution in the current scene area according to the outdoor heat transfer result;
[0261] Determining a second temperature stratification area in the current scene area and its corresponding second temperature distribution according to the target position of the temperature-controlled object in the current scene area and the determined object radiation heat result of the temperature-controlled object;
[0262] Determine an indirect temperature control area and its corresponding temperature control boundary in the current scene area according to the first temperature stratification area and its corresponding first temperature distribution, the second temperature stratification area and its corresponding second temperature distribution;
[0263] According to the indirect temperature control area and its corresponding temperature control boundary, the direct temperature control area in the current scene area is determined.
[0264] It can be seen that implementation Figure 5The described device can also provide corresponding temperature stratification areas and their temperature distribution determination methods for the outdoor heat layer and the indoor object heat layer respectively, and then determine the indirect temperature control area and the direct temperature control area, which is conducive to improving the comprehensiveness, diversity, flexibility and pertinence of the temperature stratification areas and their temperature distribution determination methods, and thus is conducive to improving the accuracy and reliability of the determined temperature stratification areas and their temperature distribution, thereby helping to improve the accuracy and reliability of the determined indirect temperature control areas and direct temperature control areas.
[0265] In another optional embodiment, Figure 5 As shown, the device may also include:
[0266] The radiant heat determination module 305 is used to determine the black value parameters and blackbody radiation constant parameters corresponding to the temperature-controlled object based on the collected human body parameter information of the temperature-controlled object, and to determine the human body surface area parameters and surface temperature parameters of the temperature-controlled object based on the collected human body surface information of the temperature-controlled object; and to determine the object radiant heat result of the temperature-controlled object based on the black value parameters, blackbody radiation constant parameters, human body surface area parameters and surface temperature parameters.
[0267] It can be seen that implementation Figure 5 The described device can also determine the object radiation heat result of the temperature-controlled object based on the determined blackness value parameters, blackbody radiation constant parameters, human body surface area parameters and surface temperature parameters, which is conducive to improving the comprehensiveness and rationality of the method for determining the object radiation heat result, and further conducive to improving the comprehensiveness, diversity and rationality of the determination parameters used to determine the object radiation heat result, thereby facilitating improving the accuracy and reliability of the determined object radiation heat result.
[0268] In yet another optional embodiment, the object radiation heat result of the temperature-controlled object is obtained by the following formula:
[0269] Q=KAcT 4 ;
[0270] Among them, Q is the object radiation heat result; K is the black value parameter; A is the human body surface area parameter; c is the blackbody radiation constant parameter; T is the surface temperature parameter.
[0271] It can be seen that implementation Figure 5 The described device can also provide a calculation formula for the object radiation heat results, which is conducive to improving the rationality, feasibility and creativity of the method for determining the object radiation heat results, and thus is conducive to improving the accuracy and reliability of the determined object radiation heat results and the subsequent regional temperature control effects determined based on the outdoor heat transfer results.
[0272] In another optional embodiment, Figure 5 As shown, the device may also include:
[0273] The convective heat determination module 306 is used to determine the wall surface area information corresponding to the indirect temperature control area based on the indirect temperature control area and its corresponding temperature control boundary; determine the temperature gradient result of the current scene area according to a preset temperature gradient analysis method, and determine the wall temperature information corresponding to the indirect temperature control area based on the temperature gradient result; determine the wall temperature information and convective heat transfer coefficient information corresponding to the indirect temperature control area; and determine the object convective heat result of the temperature control object based on the wall surface area information, wall temperature information, wall temperature information and convective heat transfer coefficient information.
[0274] It can be seen that implementation Figure 5 The described device can also determine the object convective heat result of the temperature-controlled object based on the wall surface area information, wall temperature information, wall temperature information and convective heat transfer coefficient information, which is conducive to improving the comprehensiveness and rationality of the method for determining the object convective heat result, and thus is conducive to improving the comprehensiveness, diversity and rationality of the determination parameters used to determine the object convective heat result, thereby helping to improve the accuracy and reliability of the determined object convective heat result.
[0275] In yet another optional embodiment, the object convection heat result of the temperature-controlled object is obtained by the following formula:
[0276] E=h3C(t w -t f );
[0277] Where E is the object convective heat result; h3 is the convective heat transfer coefficient information; C is the wall surface area information; t w is the wall temperature information; t f is the wall temperature information.
[0278] It can be seen that implementation Figure 5 The described device can also provide a calculation formula for the object's convective heat results, which is conducive to improving the rationality, feasibility and creativity of the method for determining the object's convective heat results, and thus is conducive to improving the accuracy and reliability of the determined object's convective heat results and the subsequent regional temperature control effects determined based on the outdoor heat transfer results.
[0279] Example 4
[0280] See also Figure 6 , Figure 6 This is a schematic diagram of the structure of another regional temperature control device based on a heat source compensation model disclosed in an embodiment of the present invention. Figure 6 The described device may include a server, wherein the server includes a local server or a cloud server, which is not limited in the embodiment of the present invention. Figure 6 As shown, the device may include:
[0281] A memory 401 storing executable program code;
[0282] a processor 402 coupled to the memory 401;
[0283] Furthermore, it may also include an input interface 403 and an output interface 404 coupled to the processor 402;
[0284] The processor 402 calls the executable program code stored in the memory 401 to execute the steps of the regional temperature control method based on the heat source compensation model described in the first or second embodiment.
[0285] Example 5
[0286] An embodiment of the present invention discloses a computer storage medium storing a computer program for electronic data exchange, wherein the computer program enables a computer to execute the steps of the regional temperature control method based on the heat source compensation model described in the first or second embodiment.
[0287] Example 6
[0288] An embodiment of the present invention discloses a computer program product, which includes a non-transitory computer-readable storage medium storing a computer program, and the computer program is operable to enable a computer to execute the steps of the regional temperature control method based on the heat source compensation model described in Example 1 or Example 2.
[0289] The device embodiments described above are merely illustrative, wherein the modules described as separate components may or may not be physically separate, and the components shown as modules may or may not be physical modules, i.e., they may be located in one place or distributed across multiple network modules. Some or all of the modules may be selected based on actual needs to achieve the objectives of the present embodiment. Those skilled in the art can understand and implement the present invention without inventive effort.
[0290] Through the detailed description of the above embodiments, those skilled in the art can clearly understand that each embodiment can be implemented by means of software plus the necessary general hardware platform, or of course, by means of hardware. Based on this understanding, the above technical solution, in essence, or the portion that contributes to the prior art, can be embodied in the form of a software product. The computer software product can be stored in a computer-readable storage medium, including a read-only memory (ROM), a random access memory (RAM), a programmable read-only memory (PROM), an erasable programmable read-only memory (EPROM), a one-time programmable read-only memory (OTPROM), an electronically erasable programmable read-only memory (EEPROM), a compact disc read-only memory (CD-ROM) or other optical disc storage, magnetic disk storage, magnetic tape storage, or any other computer-readable medium capable of carrying or storing data.
[0291] Finally, it should be noted that the regional temperature control method and device based on the heat source compensation model disclosed in the embodiment of the present invention is only a preferred embodiment of the present invention, which is only used to illustrate the technical solution of the present invention, rather than to limit it. Although the present invention has been described in detail with reference to the aforementioned embodiments, ordinary technicians in this field should understand that it is still possible to modify the technical solutions recorded in the aforementioned embodiments, or to replace some of the technical features therein by equivalents. However, these modifications or replacements do not cause the essence of the corresponding technical solutions to deviate from the spirit and scope of the technical solutions of the various embodiments of the present invention.
Claims
1. A regional temperature control method based on a heat source compensation model, characterized in that: The method comprises: Determine the outdoor heat flow information, building interior and exterior surface information, and indoor heat exchange information of the current scene area where the target air conditioner and temperature control object are located; Inputting the outdoor heat flow information, the building interior and exterior surface information, and the indoor heat exchange related information into the trained and converged heat source compensation model for analysis to obtain the outdoor heat transfer result of the current scene area; Determining an indirect temperature control area and its corresponding temperature control boundary in the current scene area, and determining a direct temperature control area in the current scene area; Controlling the target air conditioner to perform corresponding air supply and temperature control operations on the directly controlled area based on the determined object radiation heat result and object convection heat result of the temperature controlled object, the outdoor heat transfer result, the indirect temperature control area and its corresponding temperature control boundary, and the directly controlled area; Wherein, the indirect temperature control area performs its own convection and radiation operation based on the temperature control phenomenon of the direct temperature control area to achieve regional temperature control; Furthermore, controlling the target air conditioner to perform corresponding air supply and temperature control operations on the direct temperature control area based on the determined object radiation heat result and object convection heat result of the temperature control object, the outdoor heat transfer result, the indirect temperature control area and its corresponding temperature control boundary, and the direct temperature control area includes: Dividing the direct temperature control area into a primary temperature control area and / or a secondary temperature control area according to the indirect temperature control area and its corresponding temperature control boundary, the direct temperature control area, the object radiation heat result, and the outdoor heat transfer result; Determining a first temperature control parameter result corresponding to the target air conditioner based on the determined object radiation heat result and object convection heat result of the temperature control object, determining a second temperature control parameter result corresponding to the target air conditioner based on the outdoor heat transfer result, and determining a third temperature control parameter result corresponding to the target air conditioner based on the determined object radiation heat result and object convection heat result of the temperature control object and the outdoor heat transfer result; For the primary temperature control area, performing corresponding air supply and temperature control operations on the primary temperature control area according to the third temperature control parameter result; For the secondary temperature control area, performing corresponding air supply and temperature control operations on the secondary temperature control area according to the second temperature control parameter result or the first temperature control parameter result; Among them, the first-level temperature control area is the area in the direct temperature control area that meets the preset multi-side heat influence conditions; the second-level temperature control area is the area in the direct temperature control area that meets the preset single-side heat influence conditions.
2. The regional temperature control method based on the heat source compensation model according to claim 1, characterized in that: The outdoor heat flow information, the building interior and exterior surface information, and the indoor heat exchange related information are input into the trained and converged heat source compensation model for analysis to obtain the outdoor heat transfer result of the current scene area, including: Determining the outdoor temperature and heat transfer coefficient corresponding to the current scene area according to the outdoor heat flow information; Determining, based on the indoor heat exchange related information, indoor airflow information of the current scene area and surface material information of objects in direct contact with the gas in the current scene area, and determining, based on the indoor airflow information and the surface material information of the contact objects, indoor heat exchange coefficient information corresponding to the current scene area; Determine, based on the building's internal and external surface information, the heated area information, partition wall thickness information, and building material information of the building partition wall corresponding to the current scene area, and determine, based on the partition wall thickness information and the building material information, the thermal conductivity coefficient information of the building partition wall; Determine the indoor temperature information of the current scene area according to the indoor heat exchange related information; Determining an outdoor heat transfer result for the current scene area based on the outdoor temperature information, the outdoor heat transfer coefficient information, the heated area information, the indoor temperature information, the outdoor heat transfer coefficient information, the indoor heat transfer coefficient information, the partition wall thickness information, and the thermal conductivity coefficient information; And, the outdoor heat transfer result of the current scene area is obtained by the following formula: W=B(t f1 -t f2 ) / (1 / h1+a / b+1 / h2); Wherein, W is the outdoor heat transfer result; B is the heated area information; t f1 is the outdoor temperature information; t f2 is the indoor temperature information; h1 is the outdoor heat transfer coefficient information; h2 is the indoor heat transfer coefficient information; a is the partition wall thickness information; b is the thermal conductivity information.
3. The regional temperature control method based on the heat source compensation model according to claim 1, characterized in that: The outdoor heat flow information, the building interior and exterior surface information, and the indoor heat exchange related information are input into the trained and converged heat source compensation model for analysis to obtain the outdoor heat transfer result of the current scene area, including: Determining, based on the building's internal and external surface information, outer surface area information and outer surface material information of a building partition wall corresponding to the current scene area, and determining, based on the outer surface area information and the outer surface material information, first heat transfer reduction information of the building partition wall; Determining, based on the building's internal and external surface information, insulation material information and insulation thickness information of the building's partition wall, and determining, based on the insulation material information and the insulation thickness information, second heat transfer reduction information of the building's partition wall; Determining inner surface area information and inner surface material information of the building partition wall based on the inner and outer surface information of the building, and determining third heat transfer reduction information of the building partition wall based on the inner surface area information and the inner surface material information; The outdoor heat transfer result of the current scene area is determined according to the outdoor heat flow information, the first heat transfer attenuation information, the second heat transfer attenuation information, the third heat transfer attenuation information, the indoor temperature heat information and the preset heat difference influence mode.
4. The regional temperature control method based on the heat source compensation model according to any one of claims 1 to 3, characterized in that: The determining of the indirect temperature control area and its corresponding temperature control boundary in the current scene area, and determining the direct temperature control area in the current scene area, includes: Determining a first temperature stratification area and a corresponding first temperature distribution in the current scene area according to the outdoor heat transfer result; Determining a second temperature stratification area in the current scene area and a corresponding second temperature distribution according to the temperature-controlled object being at a target position in the current scene area and the determined object radiation heat result of the temperature-controlled object; Determining an indirect temperature control area and a corresponding temperature control boundary in the current scene area according to the first temperature stratification area and its corresponding first temperature distribution, and the second temperature stratification area and its corresponding second temperature distribution; A direct temperature control area in the current scene area is determined according to the indirect temperature control area and its corresponding temperature control boundary.
5. The regional temperature control method based on the heat source compensation model according to claim 4, characterized in that: The method further comprises: Determining a blackness value parameter and a blackbody radiation constant parameter corresponding to the temperature-controlled object based on the collected human body parameter information of the temperature-controlled object, and determining a human body surface area parameter and a surface temperature parameter of the temperature-controlled object based on the collected human body surface information of the temperature-controlled object; determining an object radiation heat result of the temperature-controlled object according to the blackness value parameter, the blackbody radiation constant parameter, the human body surface area parameter, and the surface temperature parameter; And, the object radiation heat result of the temperature-controlled object is obtained by the following formula: Q=KAcT 4 ; Among them, Q is the radiation heat result of the object; K is the black value parameter; A is the human body surface area parameter; c is the blackbody radiation constant parameter; T is the surface temperature parameter.
6. The regional temperature control method based on the heat source compensation model according to claim 4, characterized in that: The method further comprises: Determining wall surface area information corresponding to the indirect temperature control area according to the indirect temperature control area and its corresponding temperature control boundary; Determine the temperature gradient result of the current scene area according to a preset temperature gradient analysis method, and determine the wall temperature information corresponding to the indirect temperature control area according to the temperature gradient result; Determining the wall temperature information and convection heat transfer coefficient information corresponding to the indirect temperature control area; Determining a convection heat result of the temperature-controlled object according to the wall surface area information, the wall temperature information, the wall internal temperature information, and the convection heat transfer coefficient information; And, the object convection heat result of the temperature-controlled object is obtained by the following formula: E=h3C(t w -t f ); Wherein, E is the object convection heat result; h3 is the convection heat transfer coefficient information; C is the wall surface area information; t w is the wall temperature information; t f is the wall temperature information.
7. A regional temperature control device based on a heat source compensation model, characterized in that: The device is used to execute the regional temperature control method based on the heat source compensation model according to any one of claims 1 to 6, and the device includes: An information determination module is used to determine the outdoor heat flow information, building interior and exterior surface information, and indoor heat exchange related information of the current scene area where the target air conditioner and temperature control object are located; A heat source compensation model is used to input the outdoor heat flow information, the building interior and exterior surface information, and the indoor heat exchange related information into the trained and converged heat source compensation model for analysis to obtain the outdoor heat transfer result of the current scene area; a determination module, configured to determine an indirect temperature control area in the current scene area and its corresponding temperature control boundary, and determine a direct temperature control area in the current scene area; a temperature control module, configured to control the target air conditioner to perform corresponding air supply and temperature control operations on the directly controlled area based on the determined object radiation heat result and object convection heat result of the temperature controlled object, the outdoor heat transfer result, the indirect temperature control area and its corresponding temperature control boundary, and the directly controlled area; The indirect temperature control area performs its own convection and radiation operation based on the temperature control phenomenon of the direct temperature control area to achieve regional temperature control.
8. A regional temperature control device based on a heat source compensation model, characterized in that: The device comprises: a memory storing executable program code; a processor coupled to the memory; The processor calls the executable program code stored in the memory to execute the regional temperature control method based on the heat source compensation model according to any one of claims 1 to 6.
9. A computer storage medium, characterized in that The computer storage medium stores computer instructions, and when the computer instructions are called, they are used to execute the regional temperature control method based on the heat source compensation model according to any one of claims 1 to 6.
Citation Information
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