Air conditioning control method, device, and air conditioner indoor machine
The air conditioning control method and device convert operation commands to ensure compatibility between new and old air conditioners, reducing development costs by enabling older units to recognize new functions.
Patent Information
- Application Number
- JP2024181502
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2024-01-25
- Filing Date
- 2024-10-17
- Publication Date
- 2025-08-06
- Estimated Expiration
- 2044-10-17
AI Technical Summary
Existing air conditioners face high development costs due to incompatibility between new and old indoor units, requiring new development for each added function.
An air conditioning control method and device that converts operation commands from new controllers to be recognized by older units, using a conversion module to generate compatible function adjustment commands.
Enables compatibility between new and old air conditioners, reducing development costs by allowing older units to recognize new functions.
Smart Images

Figure 2025115358000001_ABST
Abstract
Description
[Technical Field]
[0001] The present application belongs to the field of air conditioning technology, and in particular to an air conditioning control method, device, and air conditioner indoor unit. [Background technology]
[0002] An air conditioner is a device that uses artificial means to adjust and control parameters such as temperature, humidity, and flow rate of the ambient air within a building or structure.
[0003] The main types of air conditioners are cabinet air conditioners, wall-mounted air conditioners, water-cooled air conditioners, window air conditioners (half indoor and half outdoor), central air conditioners, and twin-type air conditioners (one outdoor unit controls two indoor units at the same time).
[0004] Air conditioners are an essential part of modern life, providing people with both coolness and warmth. With the development of science and technology, air conditioners are constantly being updated with new functions. However, air conditioner indoor units (i.e., indoor units), wired remote controls, and wireless remote controls / receivers that do not have the same built-in functions are not compatible. Therefore, every time a new function is added, a new development is required, which requires a great deal of effort and cost. Summary of the Invention [Problem to be solved by the invention]
[0005] The embodiments of the present application provide an air conditioning control method, device, and air conditioner indoor unit that can reduce the development cost of new functions for air conditioners. [Means for solving the problem]
[0006] In order to solve the above technical problems, the present invention is realized as follows.
[0007] According to a first aspect, an embodiment of the present application provides an air conditioning control method including: receiving a first operation command including a target command for adjusting at least one target function state of an air conditioner indoor unit; and converting the first operation command into a second operation command that includes at least one function adjustment command corresponding to one target function state and is an operation command recognizable by the air conditioner indoor unit.
[0008] Optionally, converting the first operation command into the second operation command includes: obtaining an operation information set corresponding to the first operation command, including at least one adjusted parameter value corresponding to at least one target functional state of the air conditioner indoor unit; obtaining function adjustment commands corresponding to each of the at least one target functional state based on the operation information set and a first value corresponding to the at least one target functional state of the air conditioner indoor unit; and determining the function adjustment commands corresponding to the at least one target functional state as a second operation command.
[0009] Optionally, the method further includes sending the second operation command to a first controller that is an initial controller of the air conditioner indoor unit and corresponds to the air conditioner indoor unit.
[0010] Optionally, the method further includes, when the first operation command includes a real-time adjustment command, acquiring environmental state information; determining target function states associated with the real-time adjustment command; and generating third operation commands including function adjustment commands corresponding to each of the target function states associated with the real-time adjustment command based on the environmental state information and a second value corresponding to at least one target function state of the air conditioner indoor unit.
[0011] Optionally, said environmental condition information includes at least one of environmental temperature, environmental humidity and airflow.
[0012] According to a second aspect, an embodiment of the present application further provides an air conditioning control device including: a receiving module for receiving a first operation command including a target command for adjusting at least one target function state of an air conditioner indoor unit; and a conversion module for converting the first operation command into a second operation command that includes at least one function adjustment command corresponding to one target function state and is an operation command recognizable by the air conditioner indoor unit.
[0013] Optionally, the conversion module includes: a first acquisition unit for acquiring an operation information set corresponding to the first operation command, the operation information set including at least one adjusted parameter value corresponding to at least one target function state of the air conditioner indoor unit; a second acquisition unit for acquiring function adjustment commands corresponding to each of the at least one target function state based on the operation information set and a first value corresponding to the at least one target function state of the air conditioner indoor unit; and a determination unit for determining the function adjustment commands corresponding to the at least one target function state as a second operation command.
[0014] Optionally, the device further includes a sending module for sending the second operation command to a first controller which is an initial controller of the air conditioner indoor unit and corresponds to the air conditioner indoor unit.
[0015] Optionally, when the first operation command includes a real-time adjustment command, the device further includes: an acquisition module for acquiring environmental state information; a determination module for determining target function states associated with the real-time adjustment command; and a generation module for generating third operation commands including function adjustment commands corresponding to each of the target function states associated with the real-time adjustment commands based on the environmental state information and a second value corresponding to at least one target function state of the air conditioner indoor unit.
[0016] According to a third aspect, an embodiment of the present application further provides an air conditioner indoor unit including the above air conditioning control device. [Effects of the Invention]
[0017] In the embodiment of the present application, adjustment of the air conditioner indoor unit is realized by converting a first operation command into a second operation command that can be recognized by the regulator of the air conditioner indoor unit, thereby realizing compatibility between new and old air conditioners and reducing the development costs of new air conditioner functions. [Brief explanation of the drawings]
[0018] [Figure 1] 2 is a flowchart of an air conditioning control method according to an embodiment of the present application. [Figure 2] 1 is a block diagram of an air conditioning control device according to an embodiment of the present invention; [Figure 3] 1 is a configuration diagram of an air conditioning control device according to an embodiment of the present invention. [Figure 4] 1 is a schematic diagram of the configuration and application architecture of an air conditioner indoor unit according to an embodiment of the present application; DETAILED DESCRIPTION OF THE INVENTION
[0019] The following clearly and completely describes the technical aspects of the embodiments of the present application in connection with the accompanying drawings in the embodiments of the present application. Obviously, the described embodiments are only some of the embodiments of the present application, but not all of the embodiments. All other embodiments obtained by those skilled in the art based on the embodiments of the present application without creative work fall within the scope of protection of the present application.
[0020] The terms "first," "second," and the like used in the specification and claims of this application are intended to distinguish between similar objects, rather than to describe a particular order or priority. It should be understood that data used in this manner is interchangeable, where appropriate, so that embodiments of this application can be implemented in orders other than those illustrated or described herein. Furthermore, objects distinguished by terms such as "first," "second," and the like are generally of the same type. The number of objects is not limited. For example, a first object may be one or more. Furthermore, the term "and / or" in the specification and claims represents at least one of the connected objects. The character " / " generally indicates that the related objects before and after it are in an "or" relationship.
[0021] Hereinafter, the air conditioning control method, device, and air conditioner indoor unit provided by the embodiments of the present application will be described in detail with reference to the accompanying drawings through specific examples and application scenarios.
[0022] As shown in Fig. 1, an embodiment of the present application provides an air conditioning control method, including: receiving a first operation command in step 101; the first operation command includes a target command for adjusting at least one target function state of an air conditioner indoor unit; optionally, the target function state includes, but is not limited to, temperature, humidity, wind speed, wind volume, etc.
[0023] The target command can be understood as a command set for instructing at least one adjustment command, and each adjustment command correspondingly adjusts one target functional state. Optionally, the command set can be represented by a command ID. For example, the command ID is a number, an index, or a command name. For example, the first operation command is a sleep mode on command, a comfort mode on command, etc.
[0024] In step 102, the first operation command is converted into a second operation command, which includes at least one function adjustment command, each of which corresponds to one target function state, and wherein the second operation command is an operation command that can be recognized by the air conditioner indoor unit.
[0025] The air conditioner indoor unit can adjust the air conditioner functions based on the second operation command.
[0026] In addition, the embodiment of the present application converts a first operation command that cannot be recognized by the air conditioner indoor unit into a second operation command that can be recognized by the air conditioner indoor unit, allowing even older air conditioner indoor units to recognize new functions, thereby achieving compatibility between new and old air conditioners.
[0027] Optionally, the first operation command may be transmitted from a second controller. Note that the second controller referred to in the embodiments of the present application refers to a controller that performs function enhancement. For example, the second controller refers to a new controller later installed for an older model air conditioner indoor unit. The new controller is applied to a newer model air conditioner indoor unit. For example, the second controller may be a wireless remote control.
[0028] Optionally, in one implementation, a specific implementation of converting the first operation command into the second operation command includes: in step 1021, obtaining an operation information set corresponding to the first operation command, the operation information set including at least one adjusted parameter value corresponding to at least one target functional state of the air conditioner indoor unit, each adjusted parameter value corresponding to one target functional state;
[0029] Since the regulator of the air conditioner indoor unit needs to make adjustments for each air conditioner function, it is necessary to set in advance the parameter values to be adjusted for the functional states corresponding to different first operation commands. Optionally, a correspondence relationship between the first operation command and the operation information set is set in advance. The correspondence relationship can be stored in the air conditioning control device as a matching relationship table. The matching relationship table includes operation information sets corresponding to multiple different first operation commands. Different first operation commands are represented by different command IDs. When the air conditioning control device receives a first operation command, it simply finds the corresponding operation information set in the matching relationship table based on the command ID corresponding to the first operation command.
[0030] In step 1022, a function adjustment command corresponding to each of at least one target functional state is obtained based on the operation information set and a first value corresponding to at least one target functional state of the air conditioner indoor unit. The first value can be understood as a current value corresponding to the target functional state. After obtaining the current value corresponding to the target functional state and the parameter value to be adjusted for the target functional state, it is possible to determine what adjustment needs to be made to adjust the target functional state to the corresponding parameter value. That is, the function adjustment command includes an adjustment method and a specific value to be adjusted. For example, if the target functional state is temperature, its adjusted parameter value is 25 degrees, and the current temperature of the air conditioner indoor unit is 28 degrees, the temperature needs to be lowered by 3 degrees to achieve the corresponding parameter value. That is, the adjustment method corresponding to this adjustment is to lower the temperature, and the specific adjustment value is 3 degrees.
[0031] In step 1023, a function adjustment command corresponding to the at least one target function state is determined as a second operation command.
[0032] Note that the second controller may be a controller added later for the air conditioner indoor unit or a controller corresponding to another air conditioner, and the air conditioner indoor unit may also previously be associated with an initial controller (also referred to as an original controller), and to ensure that the status of the air conditioner indoor unit is consistent with the display content of the initial controller, optionally, in one embodiment, the method further includes sending the second operation command to a first controller corresponding to the air conditioner indoor unit, where the first controller is the initial controller of the air conditioner indoor unit.
[0033] Here, after receiving the second operation command, the first controller adjusts its display value and the state of the controller based on the instructions of the second operation command to ensure that its state matches the state of the air conditioner indoor unit.
[0034] For example, if the first operation command is a sleep mode ON command, the temperature in sleep mode is preset to 26 degrees and the airflow rate to minimum. When the air conditioning control device receives a sleep mode ON command transmitted from the second controller, it must analyze this command and analyzes that the adjusted parameter value corresponding to the temperature is 26 degrees and the adjusted parameter value corresponding to the airflow rate is minimum. For example, if the air conditioning control device obtains that the current corresponding temperature value is 28 degrees and the current corresponding airflow rate is maximum, it determines that the second control command includes lowering the temperature by 2 degrees and changing the airflow rate to minimum. Also, if the air conditioning control device obtains that the current corresponding temperature value is 24 degrees and the current corresponding airflow rate is minimum, it determines that the second control command includes raising the temperature by 2 degrees. In this case, it may be understood that the second control command includes raising the temperature by 2 degrees and maintaining a constant airflow rate.
[0035] Optionally, the first controller is connected to the air conditioner indoor unit by wire or wirelessly.
[0036] Furthermore, the above implementation allows the first operation command to be accurately converted into the second operation command, and the conversion accuracy of the air conditioning control device can be guaranteed.
[0037] Furthermore, the first operation command may not only include performing a one-time adjustment, but may also indicate that real-time adjustment is required. In this case, optionally, in one embodiment, the method further includes: in step a1, if the first operation command includes a real-time adjustment command, acquiring environmental state information. Optionally, in one embodiment, the environmental state information includes, but is not limited to, at least one of environmental temperature, environmental humidity, and airflow.
[0038] Whether the real-time adjustment command is included in the first operation command can be determined from the command ID of the first operation command. For example, if the first operation command is a comfort mode on command to allow the user to always be in a comfortable environment, it can be determined that the first operation command includes a real-time adjustment command. Typically, whether the real-time adjustment command is included in the first operation command can be set in advance.
[0039] In step a2, a target functional state associated with the real-time adjustment command is determined. Note that the first operation command may be associated with multiple target functional states, but the real-time adjustment command may not need to adjust all of the target functional states associated with the first operation command. In this case, it is determined which target functional state the real-time adjustment command is specifically associated with, that is, which target functional state needs to be adjusted. Typically, the target functional state associated with the real-time adjustment command can be set in advance.
[0040] In step a3, a third operation command is generated based on the environmental state information and a second value corresponding to at least one target functional state of the air conditioner indoor unit. The third operation command includes a function adjustment command corresponding to each target functional state associated with the real-time adjustment command. Note that this second value can be understood as a current value corresponding to the target functional state. Optionally, when generating the third operation command, an adjustment gradient of the target functional state can be determined based on a difference between the environmental state information and the current value corresponding to the target functional state and an adjustment direction. Specifically, the method includes one of the following forms: Mode 1: When the difference between the environmental state information and the second value corresponding to the target functional state is greater than or equal to a first predetermined value and the adjustment direction is to adjust to a value lower than the second value, the adjustment step length of the functional adjustment command is set to the first step length. Mode 2: When the difference between the environmental state information and the second value corresponding to the target functional state is greater than or equal to a first predetermined value and the adjustment direction is a direction higher than the second value, the adjustment step length of the functional adjustment command is set to the second step length. Mode 3: When the difference between the environmental state information and the second value corresponding to the target functional state is less than a second predetermined value and the adjustment direction is to adjust to a value lower than the second value, the adjustment step length of the functional adjustment command is set to a third step length. Mode 4: When the difference between the environmental state information and the second value corresponding to the target functional state is less than or equal to a second predetermined value and the adjustment direction is a direction higher than the second value, the adjustment step length of the functional adjustment command is set to the fourth step length.
[0041] Typically, when the difference between the environmental state information and the second value corresponding to the target functional state is large, a large step length is required for adjustment in order to reach a temperature that meets the needs as quickly as possible. When the difference between the environmental state information and the second value corresponding to the target functional state is small, a small step length is required for adjustment. For example, the third step length mentioned above is equal to or less than the first step length, and the fourth step length is equal to or less than the second step length.
[0042] For example, if the target function state is temperature, and the current temperature is 28°C, the ambient temperature is 30°C, and the ambient temperature needs to be lowered to 26°C, the temperature is lowered to 24°C. If the current temperature is 19°C, the ambient temperature is 30°C, and the ambient temperature needs to be lowered to 26°C, the temperature is lowered to 17°C in order to lower the ambient temperature as quickly as possible.
[0043] In the above, we have simply given an example of the target functional state being temperature and the environmental state information being environmental temperature, but for other target functional states and environmental state information, the processing principles adopted are similar and will not be described here.
[0044] Optionally, upon obtaining the third operation command, the air conditioner indoor unit can adjust the function state based on the third operation command.
[0045] Optionally, in another embodiment of the present embodiment, the method further includes sending the third operation command to a first controller corresponding to the air conditioner indoor unit, so as to ensure that the display content of the initial controller is consistent with the state of the air conditioner indoor unit.
[0046] In this case, the first operation command is a series of commands that not only realize the current adjustment but also require real-time adjustment based on the real-time environmental conditions. For example, the first operation command is a comfort mode on command, and in comfort mode, the ambient temperature needs to be maintained at 26 degrees. The temperature after the initial adjustment is set to 26 degrees. After a certain period of operation, the ambient temperature is acquired and it is found that the ambient temperature is 28 degrees, which does not meet the needs. If the temperature is lowered to reach 26 degrees, the next time the ambient temperature is monitored after the temperature adjustment, it is found that the ambient temperature is 24 degrees. If the temperature is raised to reach 26 degrees to meet the needs.
[0047] It should be noted that the above example does not constitute a limitation on the embodiments of the present application. The principle of the adjustment method when the first operation command is another command is similar to the above adjustment principle, and therefore, the description thereof will be omitted here.
[0048] Optionally, in one embodiment, the method further includes generating a fourth operation command when a set time is reached if it is determined that the first operation command includes a timing adjustment command.
[0049] The fourth operation command may include a command to adjust a specific function state. The specific function state is at least one target function state indicated by the first operation command. For example, the specific function state may be a temperature, which may be a function state associated with the timing adjustment command. For example, the specific function state may be turning off the air conditioner.
[0050] Optionally, in another embodiment of the present embodiment, the method further includes sending a fourth operation command to a corresponding first controller of the air conditioner indoor unit, so as to ensure that the display content of the initial controller is consistent with the state of the air conditioner indoor unit.
[0051] Whether the first operation command includes a timing adjustment command can be determined from the command ID of the first operation command. For example, the first operation command is a sleep mode, in which the air conditioner turns off automatically after operating for a specific time. In this case, it can be determined that the first operation command includes a timing adjustment command. Generally, whether the first operation command includes a timing adjustment command can be set in advance.
[0052] From the above, at least one embodiment of the present application achieves the purpose of enabling newly developed air conditioner functions to be recognized by both new and old air conditioners by converting new functions into basic functions that can be recognized by old air conditioners, thereby improving compatibility between air conditioners that support new functions and air conditioners that do not support new functions.
[0053] As shown in FIG. 2 , at least one embodiment of the present application further provides an air conditioning control device including: a receiving module 201 for receiving a first operation command including a target command for adjusting at least one target function state of an air conditioner indoor unit; and a conversion module 202 for converting the first operation command into a second operation command that includes at least one function adjustment command corresponding to one target function state and is recognizable by the air conditioner indoor unit.
[0054] Optionally, the conversion module 202 includes: a first acquisition unit for acquiring an operation information set corresponding to the first operation command, including at least one adjusted parameter value corresponding to at least one target function state of the air conditioner indoor unit; a second acquisition unit for acquiring function adjustment commands corresponding to each of the at least one target function state based on the operation information set and a first value corresponding to the at least one target function state of the air conditioner indoor unit; and a determination unit for determining the function adjustment commands corresponding to the at least one target function state as a second operation command.
[0055] Optionally, the device further includes a sending module for sending the second operation command to a first controller which is an initial controller of the air conditioner indoor unit and corresponds to the air conditioner indoor unit.
[0056] Optionally, when the first operation command includes a real-time adjustment command, the device further includes: an acquisition module for acquiring environmental state information; a determination module for determining target function states associated with the real-time adjustment command; and a generation module for generating third operation commands including function adjustment commands corresponding to each of the target function states associated with the real-time adjustment commands based on the environmental state information and a second value corresponding to at least one target function state of the air conditioner indoor unit.
[0057] Optionally, said environmental condition information includes at least one of environmental temperature, environmental humidity and airflow.
[0058] Note that the embodiments of this device correspond one-to-one to the embodiments of the air conditioning control method described above, and all of the implementation forms of the embodiments of the method described above can be applied to the embodiments of this device, and similar technical effects can be achieved.
[0059] As shown in FIG. 3 , an embodiment of the present application further provides an air conditioning control device including a processor 300, a transceiver 310, a memory 320, and a program stored in the memory 320 and executable on the processor 300. Here, the transceiver 310 is connected to the processor 300 and the memory 320 via a bus interface. Here, the processor 300 is used to read the program from the memory and execute the following operations: receive, via the transceiver, a first operation command including a target command for adjusting at least one target function state of the air conditioner indoor unit; and convert the first operation command into a second operation command that includes at least one function adjustment command corresponding to one target function state and is recognizable by the air conditioner indoor unit. The transceiver 310 is used to receive and transmit data under the control of the processor 300.
[0060] 3, the bus architecture may include any number of interconnected buses and bridges, linking various circuits, specifically one or more processors, represented by processor 300, and memory, represented by memory 320. The bus architecture may also link various other circuits, such as peripherals, voltage regulators, and power management circuits. These are known in the art and will not be further described herein. The bus interface provides an interface. The transceiver 310 may be multiple elements, including a transmitter and a receiver, providing a unit for communicating with various other devices over transmission media. These transmission media include transmission media such as wireless channels, wired channels, and optical cables.
[0061] Processor 300 manages the bus architecture and general processing. Memory 320 may store data used by processor 300 in performing operations.
[0062] Optionally, the processor 300 is a CPU (Central Processor), an ASIC (Application Specific Integrated Circuit), an FPGA (Field-Programmable Gate Array) or a CPLD (Complex Programmable Logic Device). The processor may also employ a multi-core architecture.
[0063] The processor is used to execute any of the methods provided by the embodiments of the present application in accordance with the executable instructions obtained by calling the computer program stored in the memory. The processor and the memory may be physically separated.
[0064] Optionally, the processor is used to execute the following operations by reading a computer program in the memory: obtaining an operation information set corresponding to the first operation command, including at least one adjusted parameter value corresponding to at least one target functional state of the air conditioner indoor unit; obtaining function adjustment commands corresponding to each of the at least one target functional state based on the operation information set and a first value corresponding to the at least one target functional state of the air conditioner indoor unit; and determining the function adjustment command corresponding to the at least one target functional state as a second operation command.
[0065] Optionally, the processor is further used to read a computer program in the memory to send the second operation command to a first controller that is an initial controller of the air conditioner indoor unit and corresponds to the air conditioner indoor unit.
[0066] Optionally, the processor is further used to read a computer program in the memory, and when the first operation command includes a real-time adjustment command, acquire environmental state information, determine target function states associated with the real-time adjustment command, and generate third operation commands including function adjustment commands corresponding to each of the target function states associated with the real-time adjustment command based on the environmental state information and a second value corresponding to at least one target function state of the air conditioner indoor unit.
[0067] Optionally, said environmental condition information includes at least one of environmental temperature, environmental humidity and airflow.
[0068] An embodiment of the present application further provides a computer-readable storage medium storing a computer program that, when executed by a processor, implements the steps of the air conditioning control method. The computer-readable storage medium may be any available medium or data storage device accessible by a processor, including, but not limited to, magnetic memory (e.g., floppy disks, hard disks, magnetic tapes, magneto-optical disks (MOs), etc.), optical memory (e.g., CDs, DVDs, BDs, HVDs, etc.), and semiconductor memory (e.g., ROM, EPROM, EEPROM, non-volatile memory (NAND FLASH), solid-state hard disks (SSDs), etc.).
[0069] As shown in FIG. 4, at least one embodiment of the present application further provides an air conditioner indoor unit 400 including an air conditioner main body 401, a regulator 402, and the above-mentioned air conditioning control device 403.
[0070] Optionally, the regulator 402 is installed inside the air conditioner main body 401 to realize the adjustment of the function state of the air conditioner main body.
[0071] Optionally, the air conditioning control device 403 may be provided in the air conditioner main body 401 or may be provided independently of the air conditioner main body 401. The air conditioning control device 403 communicates with the regulator 402 in the air conditioner main body 401 via wire or wirelessly.
[0072] Optionally, the first controller 404 and the regulator 402 of the air conditioner main body 401 are connected by wire or wirelessly. Optionally, the first controller 404 is a control device installed within a predetermined distance from the air conditioner main body 401. For example, the first controller 404 is a control device fixedly installed on a wall, and has a display interface and function adjustment buttons for adjusting the air conditioner main body 401.
[0073] Optionally, the air conditioner main body 401 is connected to an air conditioner outdoor unit 405 installed outdoors.
[0074] Optionally, the second controller 406 is a control device configured based on a new function of the air conditioner, and the second controller 406 wirelessly communicates with the air conditioning control device 403 to realize control of the air conditioner main body 401.
[0075] In addition, an air conditioner indoor unit equipped with the air conditioning control device 403 can be compatible with controllers with new functions, and compatibility with different air conditioners can be achieved without making major changes to existing old air conditioners, thereby reducing the cost of developing new air conditioner functions.
[0076] Although the embodiments of the present application have been described above based on the accompanying drawings, the present application is not limited to the specific embodiments described above. The specific embodiments described above are merely illustrative and not limiting. Those skilled in the art can take many forms that fall within the scope of protection of the present application under the teachings of the present application without departing from the spirit of the present application and the scope protected by the claims.
Claims
1. An air conditioning control method, receiving a first operation command including a target command for adjusting at least one target functional state of the air conditioner indoor unit; and converting the first operation command into a second operation command that includes at least one function adjustment command corresponding to one target function state and is an operation command that can be recognized by the air conditioner indoor unit.
2. 10. The method of claim 1, Converting the first operation command into the second operation command includes: Obtaining an operation information set corresponding to the first operation command, the operation information set including at least one adjusted parameter value corresponding to at least one target functional state of the air conditioner indoor unit; obtaining a function adjustment command corresponding to each of at least one target functional state based on the operation information set and a first value corresponding to at least one target functional state of the air conditioner indoor unit; and determining a function adjustment command corresponding to the at least one target function state as a second operation command.
3. 10. The method of claim 1, The method further comprises transmitting the second operation command to a first controller that is an initial controller of the air conditioner indoor unit and corresponds to the air conditioner indoor unit.
4. The method according to any one of claims 1 to 3, If the first operation command includes a real-time adjustment command, acquiring environmental status information; determining a target functional state associated with the real-time adjustment command; generating third operation commands including function adjustment commands corresponding to each of the target function states associated with the real-time adjustment commands based on the environmental state information and a second value corresponding to at least one target function state of the air conditioner indoor unit.
5. 5. The method of claim 4, The environmental status information is The method includes at least one of environmental temperature, environmental humidity, and airflow.
6. An air conditioning control device, a receiving module for receiving a first operation command including a target command for adjusting at least one target functional state of the air conditioner indoor unit; and a conversion module for converting the first operation command into a second operation command that includes at least one function adjustment command corresponding to one target function state and is an operation command that can be recognized by the air conditioner indoor unit.
7. 7. The apparatus of claim 6, The conversion module: a first acquisition unit for acquiring an operation information set corresponding to the first operation command, the operation information set including at least one adjusted parameter value corresponding to at least one target functional state of the air conditioner indoor unit; a second acquisition unit for acquiring a function adjustment command corresponding to each of the at least one target functional state based on the operation information set and a first value corresponding to at least one target functional state of the air conditioner indoor unit; a determining unit for determining a function adjustment command corresponding to the at least one target function state as a second operation command.
8. 7. The apparatus of claim 6, The apparatus further comprises a transmitting module for transmitting the second operation command to a first controller that is an initial controller of the air conditioner indoor unit and corresponds to the air conditioner indoor unit.
9. The device according to any one of claims 6 to 8, an acquisition module for acquiring environmental status information when the first operation command includes a real-time adjustment command; a determination module for determining a target functional state associated with the real-time adjustment command; and a generation module for generating third operation commands including function adjustment commands corresponding to each of the target function states associated with the real-time adjustment commands, based on the environmental state information and a second value corresponding to at least one target function state of the air conditioner indoor unit.
10. An air conditioner indoor unit comprising the air conditioning control device according to any one of claims 6 to 8.
Citation Information
Patent Citations
Wireless remote controller for air conditioner
JP1996303845A
Wired remote controller for air conditioner
JP1998115449A
Air conditioner, and operation method of air conditioner
JP2004286245A
Controller, communication device for control, relay device, control system, control method, control program for realizing the control method, and computer readable recording medium recording the program
JP2004304520A
Indoor unit for air conditioning and data processing method of indoor unit for air conditioning
JP2014145523A