WO2022227525A1 - Procédé et dispositif de commande de climatiseurs enfants et parents, et climatiseur intelligent - Google Patents

Procédé et dispositif de commande de climatiseurs enfants et parents, et climatiseur intelligent Download PDF

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Publication number
WO2022227525A1
WO2022227525A1 PCT/CN2021/132751 CN2021132751W WO2022227525A1 WO 2022227525 A1 WO2022227525 A1 WO 2022227525A1 CN 2021132751 W CN2021132751 W CN 2021132751W WO 2022227525 A1 WO2022227525 A1 WO 2022227525A1
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WIPO (PCT)
Prior art keywords
air conditioner
candidate
parent
operation mode
child
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PCT/CN2021/132751
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English (en)
Chinese (zh)
Inventor
王文博
刘光朋
Original Assignee
青岛海尔空调器有限总公司
青岛海尔空调电子有限公司
海尔智家股份有限公司
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Publication of WO2022227525A1 publication Critical patent/WO2022227525A1/fr

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    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F24HEATING; RANGES; VENTILATING
    • F24FAIR-CONDITIONING; AIR-HUMIDIFICATION; VENTILATION; USE OF AIR CURRENTS FOR SCREENING
    • F24F11/00Control or safety arrangements
    • F24F11/62Control or safety arrangements characterised by the type of control or by internal processing, e.g. using fuzzy logic, adaptive control or estimation of values
    • F24F11/63Electronic processing
    • F24F11/65Electronic processing for selecting an operating mode
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F24HEATING; RANGES; VENTILATING
    • F24FAIR-CONDITIONING; AIR-HUMIDIFICATION; VENTILATION; USE OF AIR CURRENTS FOR SCREENING
    • F24F11/00Control or safety arrangements
    • F24F11/30Control or safety arrangements for purposes related to the operation of the system, e.g. for safety or monitoring
    • F24F11/32Responding to malfunctions or emergencies
    • F24F11/38Failure diagnosis
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F24HEATING; RANGES; VENTILATING
    • F24FAIR-CONDITIONING; AIR-HUMIDIFICATION; VENTILATION; USE OF AIR CURRENTS FOR SCREENING
    • F24F11/00Control or safety arrangements
    • F24F11/62Control or safety arrangements characterised by the type of control or by internal processing, e.g. using fuzzy logic, adaptive control or estimation of values
    • F24F11/63Electronic processing
    • F24F11/64Electronic processing using pre-stored data
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F24HEATING; RANGES; VENTILATING
    • F24FAIR-CONDITIONING; AIR-HUMIDIFICATION; VENTILATION; USE OF AIR CURRENTS FOR SCREENING
    • F24F2120/00Control inputs relating to users or occupants
    • F24F2120/10Occupancy
    • F24F2120/12Position of occupants

Definitions

  • the present application relates to the technical field of intelligent air conditioners, for example, to a method, a device and an intelligent air conditioner for controlling a parent-child air conditioner.
  • the temperature in the environment can be adjusted jointly by multiple air conditioners.
  • the air conditioner in the bedroom can adjust the temperature in the bedroom
  • the air conditioner in the living room can adjust the temperature in the living room, and in the case of a large living room area
  • the temperature in the living room can also be adjusted through two air conditioners; in the venue scenario, the temperature in the venue can be adjusted through the air conditioners distributed in the venue.
  • one of the multiple air conditioners can be designated as the parent air conditioner, and the other air conditioners can be used as child air conditioners.
  • the child air conditioners and the parent air conditioner can communicate with each other, and the parent air conditioner can display the environment of each child air conditioner.
  • the existing parent-child air conditioners are relatively dependent on the parent air conditioner. If the parent air conditioner fails, the logical relationship of the incapable parent-child air conditioner will be invalid, and the user cannot conveniently control other multiple child air conditioners.
  • the embodiments of the present disclosure provide a method, a device and an intelligent air conditioner for controlling a master air conditioner, so as to solve the technical problem in the prior art that once the master air conditioner fails, the user cannot conveniently control other multiple child air conditioners.
  • each child air conditioner is connected in communication with a parent air conditioner, the parent air conditioner is used for interacting with a user, each air conditioner includes a child air conditioner operating mode and a parent air conditioner operating mode, and the method for controlling the child parent air conditioner includes:
  • a target air conditioner that is convenient for the user to operate is determined among the multiple candidate air conditioners;
  • the operation mode of the target air conditioner is switched from the sub air conditioner operation mode to the parent air conditioner operation mode.
  • a target air conditioner that is convenient for the user to operate is determined among the multiple candidate air conditioners, including:
  • determining the first candidate air conditioner corresponding to the current rate of change with a negative value further comprising:
  • a candidate air conditioner corresponding to a negative current rate of change and a current distance less than or equal to the first preset distance is determined as the first candidate air conditioner.
  • the method before switching the operation mode of the target air conditioner from the sub air conditioner operation mode to the parent air conditioner operation mode, the method further includes:
  • the target air conditioner fails the fault self-check, the target air conditioner is eliminated from the multiple candidate air conditioners, and a new target air conditioner is re-determined;
  • the operation mode of the target air conditioner is switched from the sub air conditioner operation mode to the mother air conditioner operation mode.
  • determining a target air conditioner that is convenient for the user to operate among the multiple candidate air conditioners further comprising:
  • each candidate air conditioner determines the sequence of the multiple candidate air conditioners, and determine the first candidate air conditioner as the target air conditioner;
  • the second candidate air conditioner is determined to be the new target air conditioner.
  • multiple candidate air conditioners include the child air conditioner; or, multiple candidate air conditioners include the child air conditioner and the parent air conditioner; switching the operation mode of the target air conditioner from the child air conditioner operation mode to the The parent air conditioner operation mode includes: if the target air conditioner is different from the parent air conditioner, switching the operation mode of the target air conditioner from the child air conditioner operation mode to the parent air conditioner operation mode.
  • each child air conditioner is communicatively connected to a parent air conditioner, the parent air conditioner is used for interacting with a user, each air conditioner includes a child air conditioner operating mode and a parent air conditioner operating mode, and the device for controlling the child parent air conditioner includes:
  • an obtaining module configured to obtain the current distance between each candidate air conditioner and the user when the operation mode of the air conditioner needs to be switched
  • a determining module configured to determine a target air conditioner that is convenient for the user to operate from among the plurality of candidate air conditioners according to the current distance corresponding to each candidate air conditioner;
  • the control module is configured to switch the operation mode of the target air conditioner from the sub air conditioner operation mode to the parent air conditioner operation mode.
  • the determining module includes a first determining unit or a second determining unit, wherein the first determining unit is configured to determine a candidate air conditioner corresponding to the shortest distance among multiple current distances as the target air conditioner; the second determining The unit is configured to obtain the current rate of change of the current distance corresponding to each candidate air conditioner; determine the first candidate air conditioner corresponding to the current rate of change with a negative value; determine the first candidate air conditioner corresponding to the current rate of change with the largest absolute value as the Target Air Conditioning.
  • an apparatus for controlling a master air conditioner includes a processor and a memory storing program instructions, the processor is configured to, when executing the program instructions, execute the control method provided in the foregoing embodiments.
  • the smart air conditioner includes the device for controlling the master-slave air conditioner provided in the foregoing embodiments.
  • the method, device and intelligent air conditioner for controlling a mother-in-law air conditioner provided by the embodiments of the present disclosure can achieve the following technical effects:
  • Each air conditioner includes a sub air conditioner operation mode and a parent air conditioner and operation mode. Once the parent air conditioner fails, a sub air conditioner that is convenient for the user to operate can be determined from the multiple candidate air conditioners according to the distance between the user and other candidate air conditioners as a new one. Master air conditioner, so that users can easily control multiple sub air conditioners through the new master air conditioner.
  • FIG. 1 is a schematic diagram of an implementation environment of a parent-child air conditioner provided by an embodiment of the present disclosure
  • FIG. 2 is a schematic diagram of a method for controlling a parent-child air conditioner provided by an embodiment of the present disclosure
  • FIG. 3a is a schematic diagram of an application scenario provided by an embodiment of the present disclosure.
  • 3b is a schematic diagram of an application scenario provided by an embodiment of the present disclosure.
  • FIG. 4 is a schematic diagram of an apparatus for controlling a master-slave air conditioner provided by an embodiment of the present disclosure
  • FIG. 5 is a schematic diagram of an apparatus for controlling a parent-child air conditioner provided by an embodiment of the present disclosure.
  • A/B means: A or B.
  • a and/or B means: A or B, or, A and B three relationships.
  • FIG. 1 is a schematic diagram of an implementation environment of a parent-child air conditioner provided by an embodiment of the present disclosure.
  • the number of master air conditioners 10 is one, and the number of sub air conditioners 20 is multiple (in extreme cases, the number of sub air conditioners 20 may also be one, which is not shown in FIG. 1 ), and the number of master air conditioners 10 and Each of the sub-air conditioners 20 is communicatively connected, and each of the sub-air conditioners 20 is communicatively connected, for example, through a network cable, WiFi, and Bluetooth.
  • Each air conditioner (the main air conditioner 10 and the sub air conditioner 20 ) can be installed in different positions to adjust the temperature of the environment in which they are located.
  • the parent air conditioner 10 can display the actual temperature of the environment where the parent air conditioner 10 is located and the operating parameters of the parent air conditioner 10, such as wind speed, set temperature, etc. Operating parameters, such as wind speed, set temperature, etc.
  • the user can control the parent air conditioner 10 and the child air conditioners 20 through the parent air conditioner 10: the parent air conditioner 10 can receive the control parameters sent by the user through the control terminal for controlling the parent air conditioner 10, such as set wind speed, set temperature, etc.
  • the air conditioner 10 adjusts its own operating parameters; the parent air conditioner 10 can also receive control parameters sent by the user through the terminal for controlling the child air conditioner 20, such as set wind speed, set temperature, etc., the parent air conditioner 10 will be used to control the child air conditioner 20
  • the corresponding control parameters are sent to the corresponding sub-air conditioner 20, and then the sub-air conditioner 20 can adjust its own operating parameters.
  • the manner in which the user sends various control parameters to the parent air conditioner 10 may include: sending various control parameters to the parent air conditioner 10 through an infrared remote control, or, for a vertical air conditioner, the user may also send various control parameters to the parent air conditioner 10 through an infrared remote controller. On the control panel of the air conditioner 10, various control parameters are input.
  • the air conditioners involved in the embodiments of the present disclosure can all have two operating modes: a parent air conditioner operating mode and a sub air conditioner operating mode.
  • a parent air conditioner operating mode When an air conditioner is in the parent air conditioner operating mode, the air conditioner is a “parent air conditioner”, and when an air conditioner is in a sub air conditioner In the running mode, the air conditioner is the "sub-air conditioner”.
  • a part of the air conditioners can be used as both the parent air conditioner 10 and the sub air conditioners 20 ; another part of the air conditioners can only be used as the sub air conditioners 20 .
  • each child air conditioner is connected in communication with the parent air conditioner, the parent air conditioner is used to interact with the user, the child air conditioner is
  • Each air conditioner in the parent air conditioner includes a child air conditioner operation mode and a parent air conditioner operation mode.
  • the method for controlling the child parent air conditioner can be executed in the server of the parent child air conditioner (if a server is set), and can be used for controlling the parent child air conditioner. It can be executed in the terminal of , and can also be executed in any one of the air conditioners.
  • the method for controlling the parent-child air conditioner includes:
  • the failure of the parent air conditioner makes it impossible for the user to control the child air conditioners through the parent air conditioner, that is, the operation mode of the air conditioner needs to be switched.
  • the operation mode of a candidate air conditioner needs to be switched from the operation mode of the child air conditioner to the operation mode of the parent air conditioner.
  • the candidate air conditioner includes one or more sub air conditioners that can switch the operation mode.
  • the current distance between each candidate air conditioner and the user can be obtained through the distance detection device set on the candidate air conditioner, for example, the current distance between each candidate air conditioner and the user can be detected by the radar set on the candidate air conditioner;
  • the position of the air conditioner in the environment is fixed. In this case, the position of the user in the environment can also be obtained, and the distance between the position of each air conditioner in the environment and the position of the user in the environment can be obtained as each air conditioner.
  • determining the target air conditioner that is convenient for the user to operate among the multiple candidate air conditioners may be implemented as: determining the candidate air conditioner corresponding to the shortest distance among the multiple current distances as the target air conditioner.
  • the target air conditioner determined in this way is easily accessible to the user. After the operation mode of the target air conditioner is switched from the operation mode of the sub air conditioner to the operation mode of the main air conditioner, the user can conveniently control other sub air conditioners through the new main air conditioner.
  • the method for controlling the parent air conditioner further includes: controlling the target air conditioner to enter the fault self-checking mode; If the target air conditioner passes the fault self-check, the operation mode of the target air conditioner is switched from the child air conditioner operation mode to the parent air conditioner operation mode. Eliminating the target air conditioner from the multiple candidate air conditioners means that the air conditioner that has passed the fault self-check is no longer considered when determining a new target air conditioner. In this way, a target air conditioner that can normally be used as the parent air conditioner can be selected from the multiple candidate air conditioners.
  • the aforementioned process can be performed once, that is, obtaining the current distance between each candidate air conditioner and the user, and determining among the multiple candidate air conditioners is convenient for the user according to the current distance corresponding to each candidate air conditioner. Operate the target air conditioner.
  • determining a target air conditioner that is convenient for the user to operate among the multiple candidate air conditioners including: determining the sequence of the multiple candidate air conditioners according to the current distance corresponding to each candidate air conditioner, and determining the most suitable air conditioner.
  • the first candidate air conditioner is the target air conditioner; if the target air conditioner fails the fault self-check, the second first candidate air conditioner is determined as the new target air conditioner. This allows for faster determination of the target air conditioner.
  • the first candidate air conditioner refers to the candidate air conditioner with the shortest current distance from the user
  • the second first candidate air conditioner refers to the current distance to the user.
  • determining the sequence of the multiple candidate air conditioners may include: determining the radial direction of the user among the multiple candidate air conditioners The speed points to one or more second candidate air conditioners of the air conditioner, and then the sequence of the one or more second candidate air conditioners is determined according to the current distance corresponding to the one or more second candidate air conditioners.
  • the current distance between each second candidate air conditioner and the user can be sorted in ascending order.
  • the first candidate air conditioner refers to the second candidate air conditioner with the shortest current distance from the user
  • the second first candidate air conditioner refers to the second candidate air conditioner with the shortest current distance from the user. is the second candidate air conditioner with the penultimate shortest distance from the current user.
  • Each air conditioner includes a sub air conditioner operation mode and a parent air conditioner and operation mode. Once the parent air conditioner fails, a sub air conditioner that is convenient for the user to operate can be determined from the multiple candidate air conditioners according to the distance between the user and other candidate air conditioners as a new one. Master air conditioner, so that users can easily control multiple sub air conditioners through the new master air conditioner.
  • determining a target air conditioner that is convenient for the user to operate among the multiple candidate air conditioners may include: obtaining the current rate of change of the current distance corresponding to each candidate air conditioner; determining that the value is negative. For the first candidate air conditioner corresponding to the current change rate, the first candidate air conditioner corresponding to the current change rate with the largest absolute value is determined as the target air conditioner.
  • the current rate of change of the current distance corresponding to each candidate air conditioner can reflect the radial velocity of the user relative to the candidate air conditioner, and the current rate of change corresponding to the first candidate air conditioner is negative, indicating that the radial velocity of the user relative to the first candidate air conditioner points
  • the first candidate air conditioner that is, indicates that the user has a tendency to select the first candidate air conditioner as the target air conditioner.
  • the number of the first candidate air conditioners is one or more.
  • the current rate of change of the user's current distance relative to the first air conditioner is the first rate of change
  • the current rate of change of the user's current distance to the second air conditioner is the first rate of change second rate of change
  • the first air conditioner is determined as the target air conditioner
  • the absolute value of the first rate of change is greater than the absolute value of the second rate of change
  • the second air conditioner is determined as the target air conditioner.
  • the target air conditioner selected by comparing the absolute value of the current rate of change corresponding to the first candidate air conditioner can more accurately reflect the movement tendency of the user, and the operation mode of such a target air conditioner can be switched from the sub air conditioner operation mode to the main air conditioner operation mode, which is more convenient for users to control other sub-air conditioners through the target air conditioner.
  • the candidate air conditioners include but are not limited to the first air conditioner 21 and the second air conditioner 22 , the parent air conditioner 10 , the first air conditioner 21 and the second air conditioner 22 are arranged in sequence, and the user moves the path (as shown in FIGS. 3 a and 3 b ). (shown by the wavy line) does not coincide with the location of the parent air conditioner 10 and the multiple candidate air conditioners.
  • the line connecting the first air conditioner 21 and the user forms line segment a
  • the line connecting the second air conditioner 22 and the user forms line segment b
  • line segment c is the angle bisector of the angle formed by line segment a and line segment b.
  • the radial velocity of the user relative to the first air conditioner 21 is the first radial velocity V1
  • the value of the first radial velocity V1 is the absolute value of the current rate of change of the current distance between the first air conditioner 21 and the user
  • the radial velocity of the air conditioner 22 is the second radial velocity V2
  • the value of the second radial velocity V2 is the absolute value of the current rate of change of the current distance between the second air conditioner 22 and the user.
  • the actual moving velocity V0 of the user points to the upper side of the line segment c, indicating that the user is more inclined to move toward the first air conditioner 21, and it is determined at this time
  • the first air conditioner 21 is the target air conditioner.
  • the actual moving velocity V0 of the user points to the lower side of the line segment c, indicating that the user is more inclined to move toward the second air conditioner 22, and it is determined at this time
  • the second air conditioner 22 is a target air conditioner.
  • the target air conditioner determined in this way can better reflect the user's selection tendency, and the operation mode of the target air conditioner is switched from the sub air conditioner operation mode to the parent air conditioner operation mode, so that the user can control other sub air conditioners more conveniently.
  • determining a target air conditioner that is convenient for the user to operate among the multiple candidate air conditioners may further include: obtaining the current rate of change of the current distance corresponding to each candidate air conditioner, and determining that the value is negative. For the first candidate air conditioner corresponding to the current rate of change, determine the order of the first candidate air conditioners according to the absolute value of the current rate of change from large to small; determine the first candidate air conditioner as the target air conditioner; if the target air conditioner fails to pass The fault self-checking is performed, and the first candidate air conditioner in the second place is determined as the new target air conditioner. This allows for faster determination of the target air conditioner.
  • the first candidate air conditioner refers to the first candidate air conditioner corresponding to the current change rate with the largest absolute value
  • the second first candidate air conditioner refers to the first candidate air conditioner corresponding to the current change rate with the second largest absolute value.
  • a candidate air conditioner corresponding to a negative current rate of change and a current distance less than or equal to the first preset distance is the first candidate air conditioner, that is, the current rate of change corresponding to the first candidate air conditioner is negative, and The current distance corresponding to a candidate air conditioner is less than or equal to the first preset distance.
  • the target air conditioner that the user tends to choose is distinguished.
  • determining a target air conditioner that is convenient for the user to operate among the multiple candidate air conditioners may further include: obtaining the current rate of change of the current distance of each candidate air conditioner, and determining the current value with a negative value.
  • the candidate air conditioner whose rate of change and the current distance are less than or equal to the first preset distance is the first candidate air conditioner, and the order of the first candidate air conditioners is determined according to the absolute value of the current rate of change in descending order; the first candidate air conditioner is determined;
  • a candidate air conditioner is the target air conditioner; if the target air conditioner fails the fault self-check, the second first candidate air conditioner is determined as the new target air conditioner. This allows for faster determination of the target air conditioner.
  • the first candidate air conditioner refers to the first candidate air conditioner corresponding to the current change rate with the largest absolute value
  • the second first candidate air conditioner refers to the first candidate air conditioner corresponding to the current change rate with the second largest absolute value.
  • the candidate air conditioners include child air conditioners, and when the parent air conditioner fails, the target air conditioner is determined from the candidate air conditioners, and the operation mode of the target air conditioner is switched from the child air conditioner operation mode to the parent air conditioner operation mode.
  • the parent air conditioner if the parent air conditioner is not faulty, after the user moves, or after a set period of time, it is determined that the operation mode of the air conditioner needs to be switched, and the candidate air conditioners include a child air conditioner and a parent air conditioner.
  • the method includes: obtaining the current distance between each candidate air conditioner and the user; according to the current distance corresponding to each candidate air conditioner, determining a target air conditioner that is convenient for the user to operate among the multiple candidate air conditioners, and if the target air conditioner is different from the parent air conditioner, the target air conditioner is If the target air conditioner is the same as the candidate air conditioner, it is determined that switching the operation mode of the air conditioner fails, and the The operating mode of each air conditioner remains unchanged, and the next time it is determined that the operating mode of the air conditioner needs to be switched.
  • the parent air conditioner can follow the user's position during the user's movement, so that the user can control the child air conditioners through the parent air conditioner.
  • FIG. 4 is a schematic diagram of an apparatus for controlling a master-slave air conditioner provided by an embodiment of the present disclosure.
  • the device implements the method for controlling the master-slave air conditioner provided by the foregoing embodiments in software, hardware or a combination of the two.
  • the user controls the child air conditioners through the parent air conditioner, and each air conditioner includes a child air conditioner operation mode and a parent air conditioner operation mode.
  • the device for controlling the child and parent air conditioners includes an obtaining module 41 and a determining module.
  • the obtaining module 41 is configured to obtain the current distance between each candidate air conditioner and the user when the operating mode of the air conditioner needs to be switched;
  • the determining module 42 is configured to obtain the current distance corresponding to each candidate air conditioner according to the , a target air conditioner that is convenient for the user to operate is determined from the plurality of candidate air conditioners;
  • the control module 43 is configured to switch the operation mode of the target air conditioner from the sub air conditioner operation mode to the parent air conditioner operation mode.
  • Each air conditioner includes a sub air conditioner operation mode and a parent air conditioner and operation mode. Once the parent air conditioner fails, a sub air conditioner that is convenient for the user to operate can be determined from the multiple candidate air conditioners according to the distance between the user and other candidate air conditioners as a new one. Master air conditioner, so that users can easily control multiple sub air conditioners through the new master air conditioner.
  • the determination module 42 includes a first determination unit or a second determination unit, wherein the first determination unit is configured to determine the candidate air conditioner corresponding to the shortest distance among the multiple current distances as the target air conditioner; the second determination unit is configured In order to obtain the current change rate of the current distance corresponding to each candidate air conditioner; determine the first candidate air conditioner corresponding to the negative current change rate; determine the first candidate air conditioner corresponding to the current change rate with the largest absolute value as the target air conditioner.
  • determining the first candidate air conditioner corresponding to the negative current rate of change includes: determining the candidate air conditioner corresponding to the negative current rate of change and the current distance less than or equal to the first preset distance as the first candidate air conditioner.
  • the device for controlling the child and parent air conditioners further includes a self-checking module and a judging module, wherein the self-checking module is configured to control the target air conditioner before switching the operation mode of the target air conditioner from the child air conditioner operation mode to the parent air conditioner operation mode.
  • the air conditioner enters the fault self-check mode; the judgment module is configured to remove the target air conditioner from the multiple candidate air conditioners if the target air conditioner fails the fault self-check, and re-determine a new target air conditioner. If the target air conditioner passes the fault self-check, the aforementioned control module 43 Switch the operation mode of the target air conditioner from the sub air conditioner operation mode to the parent air conditioner operation mode.
  • the determining module 42 further includes a sorting unit and a third determining unit, wherein the sorting unit is configured to determine the sequence of multiple candidate air conditioners according to the current distance corresponding to each candidate air conditioner, and determine the first candidate air conditioner. is the target air conditioner; the third determination unit is configured to determine the second candidate air conditioner as the new target air conditioner if the target air conditioner fails the fault self-check.
  • determining the operation mode of the air conditioner to be switched includes: obtaining the current distance between the parent air conditioner and the user; determining the parent air conditioner as a candidate air conditioner; if the target air conditioner is different from the parent air conditioner, determining the operation mode of the air conditioner to be switched.
  • FIG. 5 is a schematic diagram of an apparatus for controlling a parent-child air conditioner provided by an embodiment of the present disclosure.
  • the device for controlling the mother-in-law air conditioner includes:
  • a processor (processor) 51 and a memory (memory) 52 may also include a communication interface (Communication Interface) 53 and a bus 54 .
  • the processor 51 , the communication interface 53 , and the memory 52 can communicate with each other through the bus 54 .
  • the communication interface 53 may be used for information transmission.
  • the processor 51 can invoke the logic instructions in the memory 52 to execute the method for controlling the master-slave air conditioner provided in the foregoing embodiments.
  • logic instructions in the memory 52 can be implemented in the form of software functional units and can be stored in a computer-readable storage medium when sold or used as an independent product.
  • the memory 52 can be used to store software programs and computer-executable programs, such as program instructions/modules corresponding to the methods in the embodiments of the present disclosure.
  • the processor 51 executes functional applications and data processing by running the software programs, instructions, and modules stored in the memory 52, ie, implements the methods in the above method embodiments.
  • the memory 52 may include a storage program area and a storage data area, wherein the storage program area may store an operating system, an application program required for at least one function; the storage data area may store data created according to the use of the terminal device, and the like. Additionally, memory 52 may include high-speed random access memory, and may also include non-volatile memory.
  • Embodiments of the present disclosure provide an intelligent air conditioner, including the device for controlling a master-slave air conditioner provided in the foregoing embodiments.
  • the smart air conditioner here can be any one of the aforementioned mother-in-law air conditioners.
  • Embodiments of the present disclosure provide a computer-readable storage medium storing computer-executable instructions, where the computer-executable instructions are configured to execute the method for controlling a unit-child air conditioner provided by the foregoing embodiments.
  • Embodiments of the present disclosure provide a computer program product.
  • the computer program product includes a computer program stored on a computer-readable storage medium.
  • the computer program includes program instructions. When the program instructions are executed by a computer, the computer is made to execute the computer program provided by the foregoing embodiments.
  • the above-mentioned computer-readable storage medium may be a transient computer-readable storage medium, and may also be a non-transitory computer-readable storage medium.
  • the technical solutions of the embodiments of the present disclosure may be embodied in the form of software products, and the computer software products are stored in a storage medium and include one or more instructions to enable a computer device (which may be a personal computer, a server, or a network equipment, etc.) to execute all or part of the steps of the methods in the embodiments of the present disclosure.
  • the aforementioned storage medium can be a non-transitory storage medium, including: U disk, removable hard disk, read-only memory (Read-Only Memory, ROM), random access memory (Random Access Memory, RAM), magnetic disk or optical disk, etc.
  • the disclosed methods and products may be implemented in other ways.
  • the apparatus embodiments described above are only illustrative.
  • the division of units may only be a logical function division.
  • multiple units or components may be combined or may be Integration into another system, or some features can be ignored, or not implemented.
  • the shown or discussed mutual coupling or direct coupling or communication connection may be through some interfaces, indirect coupling or communication connection of devices or units, and may be in electrical, mechanical or other forms.
  • Units described as separate components may or may not be physically separated, and components shown as units may or may not be physical units, that is, may be located in one place, or may be distributed to multiple network units. This embodiment may be implemented by selecting some or all of the units according to actual needs.
  • each functional unit in the embodiment of the present disclosure may be integrated into one processing unit, or each unit may exist physically alone, or two or more units may be integrated into one unit.
  • each block in the flowchart or block diagrams may represent a module, segment, or portion of code, which comprises one or more executables for implementing the specified logical function(s) instruction.
  • the functions noted in the blocks may occur out of the order noted in the figures. For example, two blocks in succession may, in fact, be executed substantially concurrently, or the blocks may sometimes be executed in the reverse order, depending upon the functionality involved.
  • Each block of the block diagrams and/or flowchart illustrations, and combinations of blocks in the block diagrams and/or flowchart illustrations can be implemented in special purpose hardware-based systems that perform the specified functions or actions, or special purpose hardware implemented in combination with computer instructions.

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Abstract

La présente invention concerne un procédé de commande de climatiseurs enfants et parents. Dans les climatiseurs enfants et parents, chaque climatiseur enfant (20) est raccordé en communication à un climatiseur parent (10) ; le climatiseur parent (10) est utilisé pour interagir avec un utilisateur ; et chaque climatiseur comprend un mode de fonctionnement de climatiseur enfant (20) et un mode de fonctionnement de climatiseur parent (10). Le procédé de commande de climatiseurs enfants et parents comprend les étapes consistant à : dans le cas où les modes de fonctionnement des climatiseurs doivent être commutés, obtenir la distance actuelle entre chaque climatiseur candidat et un utilisateur ; en fonction de la distance actuelle correspondant à chaque climatiseur candidat, déterminer, parmi de multiples climatiseurs candidats, un climatiseur cible pratique à utiliser par l'utilisateur ; et commuter le mode de fonctionnement du climatiseur cible du mode de fonctionnement de climatiseur enfant (20) au mode de fonctionnement de climatiseur parent (10). La présente invention concerne en outre un dispositif de commande de climatiseurs enfants et parents, et un climatiseur intelligent. Dans le cas où le climatiseur parent tombe en panne, l'utilisateur peut facilement commander d'autres climatiseurs enfants en utilisant le procédé de commande des climatiseurs enfants et parents.
PCT/CN2021/132751 2021-04-25 2021-11-24 Procédé et dispositif de commande de climatiseurs enfants et parents, et climatiseur intelligent WO2022227525A1 (fr)

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CN113251620B (zh) * 2021-04-25 2022-11-18 青岛海尔空调器有限总公司 用于控制子母空调的方法、装置和智能空调

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