WO2025015652A1 - 空调器节能模式自动控制方法、装置及电子设备 - Google Patents

空调器节能模式自动控制方法、装置及电子设备 Download PDF

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Publication number
WO2025015652A1
WO2025015652A1 PCT/CN2023/113015 CN2023113015W WO2025015652A1 WO 2025015652 A1 WO2025015652 A1 WO 2025015652A1 CN 2023113015 W CN2023113015 W CN 2023113015W WO 2025015652 A1 WO2025015652 A1 WO 2025015652A1
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WIPO (PCT)
Prior art keywords
air conditioner
energy
saving mode
receiving module
power grid
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Pending
Application number
PCT/CN2023/113015
Other languages
English (en)
French (fr)
Inventor
罗荣邦
崔俊
魏伟
杨文钧
李传坤
于金朋
李玉强
何振华
薛冬旺
王明强
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Qingdao Haier Air Conditioner Gen Corp Ltd
Qingdao Haier Smart Technology R&D Co Ltd
Qingdao Haier Air Conditioning Electric Co Ltd
Haier Smart Home Co Ltd
Original Assignee
Qingdao Haier Air Conditioner Gen Corp Ltd
Qingdao Haier Smart Technology R&D Co Ltd
Qingdao Haier Air Conditioning Electric Co Ltd
Haier Smart Home Co Ltd
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Qingdao Haier Air Conditioner Gen Corp Ltd, Qingdao Haier Smart Technology R&D Co Ltd, Qingdao Haier Air Conditioning Electric Co Ltd, Haier Smart Home Co Ltd filed Critical Qingdao Haier Air Conditioner Gen Corp Ltd
Publication of WO2025015652A1 publication Critical patent/WO2025015652A1/zh
Anticipated expiration legal-status Critical
Pending legal-status Critical Current

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Classifications

    • 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
    • F24F11/46Improving electric energy efficiency or saving
    • 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
    • F24F11/50Control or safety arrangements characterised by user interfaces or communication
    • F24F11/61Control or safety arrangements characterised by user interfaces or communication using timers
    • 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
    • F24F11/00Control or safety arrangements
    • F24F11/70Control systems characterised by their outputs; Constructional details thereof
    • 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
    • F24F11/88Electrical aspects, e.g. circuits

Definitions

  • the present application relates to the technical field of air conditioners, and in particular to an automatic control method, device and electronic equipment for an energy-saving mode of an air conditioner.
  • the power grid is unstable and power outages often occur.
  • community generators or small household generators can be used to compensate for power outages in the target power grid, such as the mains.
  • the present application provides an air conditioner energy-saving mode automatic control method, device and electronic equipment, which can control the air conditioner to automatically enter the energy-saving mode when it is detected that the target power grid is not supplying power normally, thereby improving the user experience and satisfaction during use.
  • the present application provides an automatic control method for energy-saving mode of an air conditioner, the method comprising: determining whether a target power grid is normally powered based on a reception status of a transmission signal received by a receiving module, wherein the receiving module has the ability to receive the transmission signal; when the target power grid normally supplies power to the transmission module, the transmission module has the ability to transmit the transmission signal; when the target power grid does not normally supply power, controlling the air conditioner to automatically enter energy-saving mode.
  • the air conditioner includes an indoor unit, and the indoor unit is communicatively connected to the receiving module; when the target power grid has abnormal power supply, the air conditioner is controlled to automatically enter the energy-saving mode, specifically comprising: when the target power grid has abnormal power supply, an energy-saving instruction is sent to the indoor unit based on the receiving module; when the indoor unit receives the energy-saving instruction, the air conditioner is controlled to automatically enter the energy-saving mode.
  • the method further includes: controlling the air conditioner to continue operating in the current operating mode when the target power grid is supplying power normally.
  • the determination of whether the target power grid is powered normally is based on the reception status of the transmission signal received by the receiving module, specifically including: if the receiving module receives the transmission signal within a preset time period, determining that the target power grid is powered normally; if the receiving module does not receive the transmission signal within the preset time period, determining that the target power grid is not powered normally.
  • the following method is used to determine whether the receiving module has received the transmitting signal: when it is detected that the receiving module has a signal connected, the signal is encoded and parsed to obtain a parsed signal; when a target coding value is detected in the parsed signal, it is determined that the signal received by the receiving module is the transmitting signal.
  • the transmission signal is generated in the following manner: based on the transmission module, a preset frequency band signal in the target power grid is collected; based on the preset frequency band signal, the transmission signal is generated.
  • the present application also provides an automatic control device for energy-saving mode of an air conditioner, the device comprising: a judgment module, used to determine whether the target power grid is normally powered based on the reception status of the transmission signal received by the receiving module, wherein the receiving module has the ability to receive the transmission signal; when the target power grid normally supplies power to the transmission module, the transmission module has the ability to transmit the transmission signal; and a control module, used to control the air conditioner to automatically enter the energy-saving mode when the target power grid does not supply power normally.
  • a judgment module used to determine whether the target power grid is normally powered based on the reception status of the transmission signal received by the receiving module, wherein the receiving module has the ability to receive the transmission signal; when the target power grid normally supplies power to the transmission module, the transmission module has the ability to transmit the transmission signal
  • a control module used to control the air conditioner to automatically enter the energy-saving mode when the target power grid does not supply power normally.
  • the present application also provides an electronic device, including a memory, a processor, and a computer program stored in the memory and executable on the processor, wherein the processor executes the program to implement the above Any of the above-described automatic control methods for energy-saving mode of an air conditioner.
  • the present application also provides a non-transitory computer-readable storage medium on which a computer program is stored.
  • the computer program is executed by a processor, the automatic control method of the energy-saving mode of the air conditioner as described in any one of the above is implemented.
  • the present application also provides a computer program product, including a computer program, wherein when the computer program is executed by a processor, the automatic control method for the energy-saving mode of the air conditioner as described in any one of the above is implemented.
  • the air conditioner energy-saving mode automatic control method, device and electronic device provided in the present application have the ability to transmit the transmission signal when the target power grid normally supplies power to the transmission module. Therefore, it is possible to determine whether the target power grid is normally powered based on the reception status of the transmission signal received by the receiving module, and control the air conditioner to automatically enter the energy-saving mode when it is determined that the target power grid is not normally powered. Therefore, the energy-saving mode operation of the air conditioner can be automatically controlled based on the reception status of the transmission signal received by the receiving module at a low cost, thereby improving the user experience and satisfaction during use while ensuring the normal operation of other electrical appliances.
  • FIG1 is a flow chart of one of the automatic control methods for energy-saving mode of an air conditioner provided in the present application
  • FIG2 is a flow chart of controlling an air conditioner to automatically enter an energy-saving mode when a target power grid does not supply power normally, as provided by the present application;
  • FIG3 is a second flow chart of the automatic control method of the air conditioner energy-saving mode provided by the present application.
  • FIG4 is a schematic diagram of a process of determining that a receiving module receives a transmission signal provided by the present application
  • FIG5 is a schematic diagram of a flow chart of generating a transmission signal provided by the present application.
  • FIG6 is a schematic diagram of the application scenario structure of the air conditioner energy-saving mode automatic control method provided by the present application.
  • FIG. 7 is a schematic diagram of the structure of the air conditioner energy-saving mode automatic control device provided by the present application.
  • FIG8 is a schematic diagram of the structure of an electronic device provided by the present application.
  • FIG. 1 is a flow chart of one of the automatic control methods for the energy-saving mode of an air conditioner provided in the present application.
  • the automatic control method of the energy-saving mode of the air conditioner may include step 110 and step 120 , and each step will be introduced below.
  • step 110 based on the reception status of the transmission signal received by the receiving module, it is determined whether the target power grid is supplying power normally.
  • the receiving module has the ability to receive the transmission signal; when the target power grid supplies power to the transmission module normally, the transmission module has the ability to transmit the transmission signal.
  • step 120 when the target power grid is not supplying power normally, the air conditioner is controlled to automatically enter the energy-saving mode.
  • the receiving module can be installed beside the indoor unit of the air conditioner or built inside the indoor unit.
  • the power source of the receiving module can be the power supply from the indoor unit, and a signal line connects the receiving module and the computer board of the indoor unit, so that the signal can be transmitted to the indoor unit based on the receiving module.
  • the transmitting module when the target power grid can supply power to the transmitting module normally, can have the ability to transmit the transmitting signal. In other words, the transmitting module is powered by the target power grid, and if the target power grid can supply power to it, the transmitting module can transmit the transmitting signal. Further, since the receiving module has the ability to receive the transmitting signal, when the transmitting module can transmit the transmitting signal, the receiving module can receive the transmitting signal. Furthermore, when the target power grid supplies power to the transmitting module normally, in other words, the target power grid can supply power to the electrical appliance normally, in this scenario, the receiving module can receive the transmitting signal. When the target power grid cannot supply power to the transmitting module normally, in other words, the target power grid cannot supply power to the electrical appliance normally, in this scenario, the receiving module cannot receive the transmitting signal.
  • the air conditioner can be controlled to automatically enter the energy-saving mode. Through this embodiment, it is possible to automatically determine whether the target power grid is normally powered at a relatively low cost.
  • the target power grid can be the mains electricity in areas with insufficient power supply.
  • the target power grid can also be a simple function power grid that does not have the ability to transmit signals or information, nor does it have the ability to obtain external information, such as power restriction information.
  • the transmitting module when it is detected that the target power grid, such as the mains electricity, can supply power normally, the transmitting module has a power supply to power it, and then can normally transmit the transmission signal to the receiving module.
  • the receiving module does not issue an energy-saving command to the air conditioner, but controls the air conditioner to operate in the manner set by the user.
  • the target power grid such as the mains
  • other power sources are used to supply power to the home, and the power source connected to the mains becomes powerless.
  • the transmitting module has no power to supply power to it, and thus cannot normally transmit the transmission signal to the receiving module.
  • an energy-saving command can be sent to the air conditioner to control the air conditioner to automatically enter the energy-saving mode.
  • the power supply of the air conditioner comes from an indoor standing power socket, wherein the indoor standing power socket can be powered by the mains to ensure the continuous and effective operation of the air conditioner.
  • the transmitting module can be powered by the mains.
  • a receiving module can be set next to the indoor unit of each air conditioner, or the indoor units of multiple air conditioners can share one receiving module. The number of receiving modules is not specifically limited in this application.
  • transmitting modules there may be one or more transmitting modules, and the number of transmitting modules is not specifically limited in the present application.
  • the automatic control method for the energy-saving mode of an air conditioner provided in the present application has the ability to transmit the transmission signal when the target power grid normally supplies power to the transmission module. Therefore, it is possible to determine whether the target power grid is normally powered based on the reception status of the transmission signal received by the receiving module, and control the air conditioner to automatically enter the energy-saving mode when it is determined that the target power grid is not normally powered. Therefore, the energy-saving mode operation of the air conditioner can be automatically controlled based on the reception status of the transmission signal received by the receiving module at a low cost, thereby improving the user experience and satisfaction during use while ensuring the normal operation of other electrical appliances.
  • FIG. 2 is a diagram of a method for controlling the air conditioner to automatically Flow chart of automatically entering energy saving mode.
  • the air conditioner may include an indoor unit, and the indoor unit may be connected to the receiving module for communication.
  • controlling the air conditioner to automatically enter the energy-saving mode may include steps 210 to 220, and each step will be described below.
  • step 210 when the target power grid does not supply power normally, an energy-saving instruction is sent to the indoor unit based on the receiving module.
  • step 220 when the indoor unit receives the energy-saving instruction, the air conditioner is controlled to automatically enter the energy-saving mode.
  • the receiving module when the receiving module cannot receive the transmission signal, it can be determined that the transmitting module cannot obtain normal power supply from the target power grid, and thus it can be determined that the target power grid cannot be powered normally. Further, when the target power grid cannot be powered normally, an energy-saving instruction can be sent to the indoor unit based on the receiving module, and when the indoor unit receives the energy-saving instruction, the air conditioner is controlled to automatically enter the energy-saving mode. In this embodiment, it is possible to automatically determine whether the target power grid is powered normally without the need for other hardware devices, and when it is determined that the target power grid cannot be powered normally, the air conditioner is automatically controlled to enter the energy-saving mode, thereby ensuring that other electrical appliances can operate under limited power supply capacity.
  • the indoor unit can be connected to the receiving module for communication, thereby ensuring that the indoor unit can receive the energy-saving instruction sent by the receiving module.
  • the indoor unit can be connected to the receiving module for communication based on a signal line connecting the receiving module and the indoor unit.
  • FIG. 3 is a second flow chart of the automatic control method of the air conditioner energy-saving mode provided in the present application.
  • the air conditioner energy-saving mode automatic control method may include steps 310 to 330, wherein steps 310 and 320 are the same or similar to steps 210 and 220. Please refer to the previous description for its specific implementation and beneficial effects, which will not be repeated in this embodiment. Step 330 will be introduced below.
  • step 330 when the target power grid is normally powered, the air conditioner is controlled to operate according to the current Run mode continues to run.
  • the target power grid when it is detected that the target power grid can supply power normally, it means that the local power grid has sufficient power supply. In this scenario, there is no need to adjust the air conditioner to the energy-saving mode, but the air conditioner can still be controlled to operate according to the current operating mode. Through this embodiment, it can be ensured that when the power grid has sufficient power supply, the air conditioner can operate according to the user's settings, thereby improving the user's experience and satisfaction.
  • determining whether the target power grid is supplying power normally can be implemented in the following manner:
  • the receiving module When the receiving module receives the transmission signal within the preset time period, it is determined that the target power grid is supplying power normally;
  • the receiving module When the receiving module does not receive the transmission signal within the preset time period, it is determined that the target power grid is not supplying power normally.
  • the transmission module since the transmission signal is transmitted by the transmission module, if the target power grid can supply power normally, then the transmission module can transmit the transmission signal, and then the receiving module can receive the transmission signal within the preset time period. Therefore, if the receiving module can receive the transmission signal within the preset time period, then it can be said that the target power grid can supply power normally; if the receiving module cannot receive the transmission signal within the preset time period, then it can be said that the target power grid cannot supply power normally. In this embodiment, it is possible to determine whether the target power grid can supply power normally without adding additional costs, and then the operation mode of the air conditioner can be automatically controlled at a low cost, thereby improving the user experience and satisfaction during use.
  • FIG. 4 is a schematic diagram of a flow chart of determining that a receiving module has received a transmission signal provided in the present application.
  • determining whether the receiving module has received the transmission signal may include step 410 and step 420 , and each step will be described below.
  • step 410 when it is detected that a signal is connected to the receiving module, the signal is coded and parsed to obtain a parsed signal;
  • step 420 when the target code value is detected in the parsed signal, it is determined that the signal received by the receiving module is a transmission signal.
  • the signal in order to ensure that the received signal is determined to be a transmission signal, and then accurately determine the normal power supply condition of the target power grid, during the application process, when it is detected that the receiving module has a signal access, the signal can be coded and parsed, so that the parsed signal can be obtained. Further, it is determined whether the parsed signal contains the target coding value. When it is detected that the parsed signal contains the target coding value, it is determined that the signal received by the receiving module is a transmission signal.
  • the target code value may be adjusted according to actual conditions and is not specifically limited in this embodiment.
  • FIG5 is a schematic diagram of a flow chart of generating a transmission signal provided in the present application.
  • generating a transmission signal may include step 510 and step 520 , and each step will be described separately below.
  • step 510 based on the transmitting module, a preset frequency band signal in the target power grid is collected;
  • step 520 a transmission signal is generated based on the preset frequency band signal.
  • the transmitting signal in order to ensure effective signal transmission between the transmitting module and the receiving module, can be determined based on the signal transmissibility.
  • the preset frequency band signal in the target power grid can be collected based on the transmitting module, and the transmitting signal can be generated based on the preset frequency band signal.
  • the generation process and the transmission process of the transmission signal can be established only with the target power grid without being interfered by other factors.
  • the transmission signal can be generated based on the power line carrier between the transmitting module and the receiving module, or the transmission signal can be transmitted based on the power line carrier communication between the transmitting module and the receiving module, so as to ensure that the generation and/or transmission of the transmission signal is only related to the normal power supply of the target power grid, and will not be affected by whether the WIFI communication signal is good or whether the infrared transmission distance is close enough.
  • the transmitting module and the receiving module can also transmit signals by wireless signal transmission, including but not limited to Wifi, NB-IOT, LoRa, and ZigBee.
  • the transmitting module transmits the transmission signal
  • the receiving module receives the transmission signal, and the two are transmitted by wireless signals, which can realize multi-node control and cover It has a wide coverage range, low power consumption, and little influence from grid operation fluctuations. It avoids the transmission signal being affected by voltage fluctuations and causing signal transmission distortion, and can realize the transmission of transmission signals independently of the grid operation conditions.
  • high voltage power lines, medium voltage power lines or low voltage power distribution lines can be used as information transmission media instead of WIFI or infrared transmission.
  • the transmitting module Before the transmitting module transmits the transmission signal, it can collect the preset frequency band signal in the target power grid, modulate the preset frequency band signal to obtain the transmission signal, and load the transmission signal to the current for transmission on the power line.
  • the received signal can be filtered to obtain a signal, and the obtained signal can be demodulated to determine whether the demodulated signal contains the target code value.
  • the receiving module end determines that the demodulated signal contains the target code value, it can be determined that the received signal is a transmission signal.
  • the transmission signal may also be generated in the following manner:
  • the modulated signal is loaded onto the power line for transmission.
  • the power line has the ability to transmit signals.
  • the modulated signal can be used as a transmission signal.
  • the following method can be used to determine whether the receiving module receives the transmission signal:
  • the modulated signal is demodulated based on the signal receiving module to obtain a demodulated signal
  • the receiving module receives the transmission signal.
  • high-voltage power lines, medium-voltage power lines or low-voltage power distribution lines are used as information transmission media instead of WIFI and infrared transmission.
  • the preset frequency band signal in the target power grid can be collected based on the transmitting module, and the preset frequency band signal can be modulated to obtain a modulated signal.
  • the modulated signal is then loaded onto the power line for transmission. It should be noted that when the target power grid is powered normally, the power line has the ability to transmit signals. In other words, when the target power grid is powered normally, the receiving module can receive the signal sent by the transmitting module.
  • the modulated signal can be demodulated again based on the receiving module to obtain the demodulated signal, and it is determined whether the demodulated signal includes the preset frequency band signal. If the demodulated signal includes the preset frequency band signal, it means that the target power grid can supply power normally.
  • the accuracy of determining whether the target power grid is supplying power normally based on the reception of the transmission signal received by the receiving module can be ensured, thereby laying the foundation for automatically controlling the operation of the air conditioner.
  • FIG6 is a schematic diagram of the application scenario structure of the air conditioner energy-saving mode automatic control method provided in the present application.
  • each family can be equipped with an electric control adapter box (corresponding to the power conversion device in Figure 6) placed outdoors, and the electric control adapter box can be divided into an input end and an output end.
  • the input end is composed of personal power generation, community power generation and city power.
  • the output end can be connected to the standby power supply 1 to the standby power supply N.
  • the input end power supply can come from respective power sources, such as city power, community power generation, personal generator, etc., and the output end power supply is connected to the household standby power socket.
  • the city power is directly connected to the household city power socket for non-essential continuous electrical appliances.
  • the indoor unit 1 of the present application can be powered by the standby power supply N.
  • N in FIG6 represents a neutral line
  • L represents a live line
  • S represents a signal connection line between the indoor unit and the outdoor unit.
  • the indoor unit 1 and the receiving module (corresponding to the receiving module of the present application) can be connected via a signal line to ensure signal transmission between the two.
  • the transmitter module can be installed in a three-pin plug form.
  • the transmitter module can be powered by the mains.
  • the receiving module is installed next to the indoor unit 1 or built inside it. Its power supply comes from the indoor unit power supply, and a signal line connects the receiving module and the indoor unit computer board to ensure its signal transmission.
  • the power supply of the air conditioner can come from the indoor permanent power socket to ensure its continuous operation.
  • the transmitting module is plugged into the indoor AC power socket, and the receiving module is installed on or next to the indoor unit.
  • the number of receiving modules is not limited to 1. It depends on the number of air conditioners installed in the home.
  • the number of receiving modules can be equal to the number of indoor units. There can be only one transmitting module or more.
  • the transmitter module when the mains power supply is normal, the transmitter module has power to supply it. It can transmit signals to the receiving module normally, the power line carrier communication is normal, the receiving module only performs signal analysis and does not issue energy-saving commands.
  • the air conditioner can operate according to the user settings.
  • the mains power socket becomes powerless, and the transmitting module cannot transmit signals to the receiving module.
  • the receiving module is programmed to send a command to the computer version of the air conditioner to put the air conditioner into energy-saving mode, control the air conditioner to run in energy-saving mode, and ensure that other electrical appliances can operate under limited power capacity. In this way, the operation of the air conditioner can be automatically controlled to meet the actual power supply situation. Under the premise of ensuring the normal operation of other electrical appliances, the user experience and satisfaction during use are improved.
  • the air conditioner energy-saving mode automatic control method since the transmitting module has the ability to transmit the transmitting signal when the target power grid normally supplies power to the transmitting module, it can determine whether the target power grid is normally powered based on the receiving status of the transmitting signal received by the receiving module, and control the air conditioner to automatically enter the energy-saving mode when it is determined that the target power grid is not normally powered. Therefore, the energy-saving mode operation of the air conditioner can be automatically controlled based on the receiving status of the transmitting signal received by the receiving module at a low cost, thereby improving the user experience and satisfaction during use while ensuring the normal operation of other electrical appliances.
  • the present application also provides an automatic control device for energy-saving mode of an air conditioner.
  • the air conditioner energy-saving mode automatic control device provided in the present application is described below.
  • the air conditioner energy-saving mode automatic control device described below and the air conditioner energy-saving mode automatic control method described above can refer to each other.
  • FIG. 7 is a schematic structural diagram of an automatic control device for energy-saving mode of an air conditioner provided in the present application.
  • the air conditioner energy-saving mode automatic control device may include a judgment module 710 and a control module 720 , and each module will be described below.
  • the judgment module 710 may be configured to determine whether the target power grid is normally powered based on the reception of the transmission signal received by the receiving module, wherein the receiving module has the ability to receive the transmission signal; when the target power grid normally supplies power to the transmission module, the transmission module has the ability to transmit the transmission signal;
  • the control module 720 may be configured to control the air conditioner to automatically enter the energy-saving mode when the target power grid fails to supply power normally.
  • the air conditioner may include an indoor unit, and the indoor unit may be connected to the receiving module for communication.
  • the control module 720 may be implemented in the following manner when the target power grid is abnormal. When the power supply is always on, the air conditioner is controlled to automatically enter the energy-saving mode:
  • an energy-saving instruction is sent to the indoor unit based on the receiving module
  • the air conditioner is controlled to automatically enter the energy-saving mode.
  • control module 720 may also be configured to:
  • the air conditioner is controlled to continue to operate according to the current operation mode.
  • the judgment module 710 can determine whether the target power grid is supplying power normally based on the reception status of the transmission signal received by the receiving module in the following manner:
  • the receiving module When the receiving module receives the transmission signal within the preset time period, it is determined that the target power grid is supplying power normally;
  • the receiving module When the receiving module does not receive the transmission signal within the preset time period, it is determined that the target power grid is not supplying power normally.
  • the judgment module 710 may determine whether the receiving module receives the transmission signal in the following manner:
  • the signal When it is detected that a signal is connected to the receiving module, the signal is encoded and parsed to obtain a parsed signal;
  • the target code value is detected in the parsed signal, it is determined that the signal received by the receiving module is a transmission signal.
  • the determination module 710 may generate a transmission signal in the following manner:
  • the preset frequency band signal in the target power grid is collected
  • a transmission signal is generated.
  • FIG8 illustrates a schematic diagram of the physical structure of an electronic device.
  • the electronic device may include: a processor 810, a communications interface 820, a memory 830, and a communication bus 840, wherein the processor 810, the communications interface 820, and the memory 830 communicate with each other via the communication bus 840.
  • the processor 810 may call the logic instructions in the memory 830 to execute the automatic control method of the air conditioner energy-saving mode, the method comprising: determining whether the target power grid is normally powered based on the reception of the transmission signal received by the receiving module, wherein the receiving module has the ability to receive the transmission signal; When the target power grid supplies power to the transmitting module normally, the transmitting module has the ability to transmit the transmitting signal; when the target power grid does not supply power normally, the air conditioner is controlled to automatically enter the energy-saving mode.
  • the logic instructions in the above-mentioned memory 830 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 technical solution of the present application can be essentially or partly embodied in the form of a software product that contributes to the prior art.
  • the computer software product is stored in a storage medium, including several instructions for a computer device (which can be a personal computer, server, or network device, etc.) to perform all or part of the steps of the method described in each embodiment of the present application.
  • the aforementioned storage medium includes: U disk, mobile hard disk, read-only memory (ROM, Read-Only Memory), random access memory (RAM, Random Access Memory), disk or optical disk, etc.
  • the present application also provides a computer program product, which includes a computer program, which can be stored on a non-transitory computer-readable storage medium.
  • the computer program When the computer program is executed by a processor, the computer can execute the air conditioner energy-saving mode automatic control method provided by the above-mentioned methods, the method including: based on the reception status of the transmission signal received by the receiving module, determining whether the target power grid is normally powered, wherein the receiving module has the ability to receive the transmission signal; when the target power grid normally supplies power to the transmission module, the transmission module has the ability to transmit the transmission signal; when the target power grid does not normally supply power, controlling the air conditioner to automatically enter the energy-saving mode.
  • the present application also provides a non-transitory computer-readable storage medium having a computer program stored thereon.
  • the computer program When the computer program is executed by a processor, it is implemented to execute the air conditioner energy-saving mode automatic control method provided by the above-mentioned methods.
  • the method includes: based on the reception status of the transmission signal received by the receiving module, determining whether the target power grid is normally powered, wherein the receiving module has the ability to receive the transmission signal; when the target power grid normally supplies power to the transmission module, the transmission module has the ability to transmit the transmission signal; when the target power grid does not normally supply power, controlling the air conditioner to automatically enter the energy-saving mode.
  • the device embodiments described above are merely illustrative, wherein the units described as separate components may or may not be physically separate, and the components shown as units may or may not be physical units, i.e., may be located in one place or may be distributed to multiple locations.
  • a network unit. Some or all of the modules may be selected according to actual needs to achieve the purpose of the solution of this embodiment. A person skilled in the art may understand and implement the solution without creative work.
  • each implementation method can be implemented by means of software plus a necessary general hardware platform, and of course, it can also be implemented by hardware.
  • the above technical solution is essentially or the part that contributes to the prior art can be embodied in the form of a software product, and the computer software product can be stored in a computer-readable storage medium, such as ROM/RAM, a disk, an optical disk, etc., including a number of instructions for a computer device (which can be a personal computer, a server, or a network device, etc.) to execute the methods described in each embodiment or some parts of the embodiments.

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Abstract

本申请提供一种空调器节能模式自动控制方法、装置及电子设备,其中,所述方法包括:基于接收模块接收的发射信号接收情况,确定目标电网是否正常供电,其中,所述接收模块具备接收所述发射信号的能力;在所述目标电网为发射模块正常供电的情况下,所述发射模块具备发射所述发射信号的能力;在所述目标电网未正常供电的情况下,控制所述空调器自动进入节能模式。实现了可以在低成本的情况下,基于接收模块接收的发射信号接收情况自动控制空调器的节能模式运行,在保证其他电器正常运行的前提下,提升了用户在使用过程中的体验感和满意度。

Description

空调器节能模式自动控制方法、装置及电子设备
相关申请的交叉引用
本申请要求于2023年07月14日提交的申请号为2023108711049,名称为“空调器节能模式自动控制方法、装置及电子设备”的中国专利申请的优先权,其通过引用方式全部并入本文。
技术领域
本申请涉及空调器技术领域,尤其涉及一种空调器节能模式自动控制方法、装置及电子设备。
背景技术
对于供电量匮乏地区,其电网不稳定,往往会出现断电情况。在实际应用中,可以用社区发电机或家庭小型发电机补偿目标电网例如市电断电的情况。
然而,社区发电机和家庭小型发电机的发电容量有限,不能保证家庭所有电器按照满负荷运行,而往往首选急需使用的电器例如照明、电视等电器的运行。对于空调器需要人为操作执行节能模式,这将为用户带来不小的负担。
当前,寻找一种能够自动控制空调器进入节能模式的控制方法成为研究热点。
发明内容
本申请提供一种空调器节能模式自动控制方法、装置及电子设备,实现了在检测到目标电网未正常供电的情况下,可以控制空调器自动进入节能模式,从而可以提升用户在使用过程中的体验感和满意度。
本申请提供一种空调器节能模式自动控制方法,所述方法包括:基于接收模块接收的发射信号接收情况,确定目标电网是否正常供电,其中,所述接收模块具备接收所述发射信号的能力;在所述目标电网为发射模块正常供电的情况下,所述发射模块具备发射所述发射信号的能力;在所述目标电网未正常供电的情况下,控制所述空调器自动进入节能模式。
根据本申请提供的一种空调器节能模式自动控制方法,所述空调器包括室内机,所述室内机与所述接收模块通信连接;所述在所述目标电网不正常供电的情况下,控制所述空调器自动进入节能模式,具体包括:在所述目标电网不正常供电的情况下,基于所述接收模块向所述室内机发送节能指令;在所述室内机接收到所述节能指令的情况下,控制所述空调器自动进入节能模式。
根据本申请提供的一种空调器节能模式自动控制方法,在所述确定目标电网是否正常供电之后,所述方法还包括:在所述目标电网正常供电的情况下,控制所述空调器按照当前运行模式继续运行。
根据本申请提供的一种空调器节能模式自动控制方法,所述基于接收模块接收的发射信号接收情况,确定目标电网是否正常供电,具体包括:在预设时间段内所述接收模块接收到所述发射信号的情况下,确定所述目标电网正常供电;在预设时间段内所述接收模块未接收到所述发射信号的情况下,确定所述目标电网未正常供电。
根据本申请提供的一种空调器节能模式自动控制方法,采用以下方式确定所述接收模块接收到所述发射信号:在检测到所述接收模块有信号接入的情况下,对所述信号进行编码解析处理,以得到解析后信号;在所述解析后信号内检测到目标编码值的情况下,确定所述接收模块接收到的所述信号为所述发射信号。
根据本申请提供的一种空调器节能模式自动控制方法,所述发射信号采用以下方式生成:基于所述发射模块,采集所述目标电网内的预设频段信号;基于所述预设频段信号,生成所述发射信号。
本申请还提供一种空调器节能模式自动控制装置,所述装置包括:判断模块,用于基于接收模块接收的发射信号接收情况,确定目标电网是否正常供电,其中,所述接收模块具备接收所述发射信号的能力;在所述目标电网为发射模块正常供电的情况下,所述发射模块具备发射所述发射信号的能力;控制模块,用于在所述目标电网未正常供电的情况下,控制所述空调器自动进入节能模式。
本申请还提供一种电子设备,包括存储器、处理器及存储在存储器上并可在处理器上运行的计算机程序,所述处理器执行所述程序时实现如上 述任一种所述的空调器节能模式自动控制方法。
本申请还提供一种非暂态计算机可读存储介质,其上存储有计算机程序,该计算机程序被处理器执行时实现如上述任一种所述的空调器节能模式自动控制方法。
本申请还提供一种计算机程序产品,包括计算机程序,所述计算机程序被处理器执行时实现如上述任一种所述的空调器节能模式自动控制方法。
本申请提供的空调器节能模式自动控制方法、装置及电子设备,由于在目标电网为发射模块正常供电的情况下,发射模块具备发射所述发射信号的能力,因此,可以基于接收模块接收的发射信号接收情况,确定目标电网是否正常供电,并在判断出目标电网未正常供电的情况下,控制空调器自动进入节能模式,从而可以在低成本的情况下,基于接收模块接收的发射信号接收情况自动控制空调器的节能模式运行,在保证其他电器正常运行的前提下,提升了用户在使用过程中的体验感和满意度。
附图说明
为了更清楚地说明本申请或现有技术中的技术方案,下面将对实施例或现有技术描述中所需要使用的附图作一简单地介绍,显而易见地,下面描述中的附图是本申请的一些实施例,对于本领域普通技术人员来讲,在不付出创造性劳动的前提下,还可以根据这些附图获得其他的附图。
图1是本申请提供的空调器节能模式自动控制方法的流程示意图之一;
图2是本申请提供的在目标电网不正常供电的情况下,控制空调器自动进入节能模式的流程示意图;
图3是本申请提供的空调器节能模式自动控制方法的流程示意图之二;
图4是本申请提供的确定接收模块接收到发射信号的流程示意图;
图5是本申请提供的生成发射信号的流程示意图;
图6是本申请提供的空调器节能模式自动控制方法的应用场景结构示意图;
图7是本申请提供的空调器节能模式自动控制装置的结构示意图;
图8是本申请提供的电子设备的结构示意图。
具体实施方式
为使本申请的目的、技术方案和优点更加清楚,下面将结合本申请中的附图,对本申请中的技术方案进行清楚、完整地描述,显然,所描述的实施例是本申请一部分实施例,而不是全部的实施例。基于本申请中的实施例,本领域普通技术人员在没有作出创造性劳动前提下所获得的所有其他实施例,都属于本申请保护的范围。
图1是本申请提供的空调器节能模式自动控制方法的流程示意图之一。
为了进一步介绍本申请提供的空调器节能模式自动控制方法,下面将结合图1进行说明。
在本申请一示例性实施例中,结合图1可知,空调器节能模式自动控制方法可以包括步骤110和步骤120,下面将分别介绍各步骤。
在步骤110中,基于接收模块接收的发射信号接收情况,确定目标电网是否正常供电。
其中,接收模块具备接收发射信号的能力;在目标电网为发射模块正常供电的情况下,发射模块具备发射发射信号的能力。
在步骤120中,在目标电网未正常供电的情况下,控制空调器自动进入节能模式。
在一种实施例中,接收模块可以安装在空调器的室内机的旁边或者内置在室内机的内部。其中,接收模块的电力来源可以是来自室内机的电源,并且有信号线连接接收模块和室内机的电脑板,从而可以基于接收模块向室内机进行信号传输。
在又一种实施例中,当目标电网可以为发射模块正常供电的情况下,发射模块可以具备发射发射信号的能力。换句话说,发射模块是通过目标电网为其供电的,若目标电网能够为其供电,发射模块就可以发射发射信号。进一步的,由于接收模块具备接收发射信号的能力,当发射模块可以发射发射信号时,接收模块是可以接收到发射信号的。又由于当目标电网为发射模块正常供电,换句话说,目标电网可以为电器进行正常供电时,在该场景下,接收模块是可以接收到发射信号的。当目标电网不能为发射模块正常供电,换句话说,目标电网不可以为电器进行正常供电时,在该场景下,接收模块是不可以接收到发射信号的。
基于此,可以基于接收模块接收的发射信号接收情况,确定目标电网是否正常供电。进一步的,在目标电网未正常供电的情况下,可以控制空调器自动进入节能模式。通过本实施例,可以在较低成本下可以自动判断出目标电网是否正常供电。
其中,目标电网可以是供电量匮乏地区的市电。目标电网也可是简单功能的电网,不具备发射信号或信息的能力,也不具备获取外界信息,例如限电信息的能力。在应用过程中,当检测到目标电网例如市电可以正常供电时,发射模块有电源为其供电,进而可以正常发射发射信号至接收模块。在该场景下,接收模块不为空调器下达节能命令,而是控制空调按照用户设置的方式进行运行。
在又一种实施例中,当检测到目标电网例如市电不可以正常供电时,其他电源形式的电源为家庭供电,与市电连接的电源变成了无电状态,此时发射模块没有电源为其供电,进而不可以正常发射发射信号至接收模块。当接收模块无法接收到发射信号时,可以向空调器下发节能命令,控制空调器自动进入节能模式。
在又一种实施例中,空调器的电源来自室内常备电源插座,其中室内常备电源插座可以基于市电进行供电,以保证空调器的持续有效运行。发射模块可以通过市电进行供电。在应用过程中,可以在每一个空调器的室内机旁边设置一个接收模块,也可以是多个空调器的室内机共用一个接收模块,在本申请中不对接收模块的数量作具体限定。
在又一示例中,发射模块可以是一个,也可以是多个,在本申请中不对发射模块的数量作具体限定。
本申请提供的空调器节能模式自动控制方法,由于在目标电网为发射模块正常供电的情况下,发射模块具备发射所述发射信号的能力,因此,可以基于接收模块接收的发射信号接收情况,确定目标电网是否正常供电,并在判断出目标电网未正常供电的情况下,控制空调器自动进入节能模式,从而可以在低成本的情况下,基于接收模块接收的发射信号接收情况自动控制空调器的节能模式运行,在保证其他电器正常运行的前提下,提升了用户在使用过程中的体验感和满意度。
图2是本申请提供的在目标电网不正常供电的情况下,控制空调器自 动进入节能模式的流程示意图。
为了进一步介绍本申请提供的空调器节能模式自动控制方法,下面将结合图2进行说明。
在本申请一示例性实施例中,空调器可以包括室内机,室内机可以与接收模块通信连接。结合图2可知,在目标电网不正常供电的情况下,控制空调器自动进入节能模式可以包括步骤210至步骤220,下面将分别介绍各步骤。
在步骤210中,在目标电网不正常供电的情况下,基于接收模块向室内机发送节能指令。
在步骤220中,在室内机接收到节能指令的情况下,控制空调器自动进入节能模式。
在一种实施例中,在接收模块无法接收的发射信号的情况下,可以确定发射模块无法得到目标电网的正常供电,从而可以确定目标电网无法正常供电。进一步的,在目标电网无法正常供电的情况下,可以基于接收模块向室内机发送节能指令,并在室内机接收到节能指令的情况下,控制空调器自动进入节能模式。在本实施例中,无需其他硬件设备即可自动判断出目标电网是否正常供电,并在判断出目标电网无法正常供电的情况下,自动控制空调器进入节能模式,确保了其他电器在有限的供电容量下能够运行。
在又一种实施例中,室内机可以与接收模块通信连接,进而可以确保室内机能够接收到接收模块下发的节能指令。在应用过程中,可以基于连接接收模块和室内机的信号线实现室内机与接收模块的通信连接。
图3是本申请提供的空调器节能模式自动控制方法的流程示意图之二。
为了进一步介绍本申请提供的又一种空调器节能模式自动控制方法,下面将结合图3进行说明。
在本申请又一示例性实施例中,结合图3可知,空调器节能模式自动控制方法可以包括步骤310至步骤330,其中,步骤310和步骤320与步骤210和步骤220相同或相似,其具体实施方式和有益效果请参照前文描述,在本实施例中不再赘述,下面将介绍步骤330。
在步骤330中,在目标电网正常供电的情况下,控制空调器按照当前 运行模式继续运行。
在一种实施例中,当检测到目标电网可以正常供电的情况下,说明当地的电网供电充足。在该场景下,无需调节空调器进行节能模式,而是依然控制空调器按照当前的运行模式进行运行即可。通过本实施例,可以确保在电网供电充足的情况下,令空调器可以按照用户的设置进行运行,从而可以提高用户的体验感和满意度。
在本申请又一示例性实施例中,继续以前文所述的实施例为例进行说明。其中,基于接收模块接收的发射信号接收情况,确定目标电网是否正常供电,可以采用以下方式实现:
在预设时间段内接收模块接收到发射信号的情况下,确定目标电网正常供电;
在预设时间段内接收模块未接收到发射信号的情况下,确定目标电网未正常供电。
在一种实施例中,由于发射信号是由发射模块发射的,若目标电网可以正常供电,那么发射模块可以发射发射信号,进而在预设时间段内接收模块是可以接收的发射信号的。因此,若在预设时间段内接收模块可以接收到发射信号,那么,可以说明目标电网能够正常供电;若在预设时间段内接收模块无法接收到发射信号,那么,说明目标电网不能够正常供电。在本实施例中,无需增加额外的成本即可判断出目标电网是否可以正常供电,进而可以在低成本下自动控制空调器的运行方式,从而可以提升用户在使用过程中的体验感和满意度。
图4是本申请提供的确定接收模块接收到发射信号的流程示意图。
为了进一步介绍本申请提供的空调器节能模式自动控制方法,下面将结合图4进行说明。
在本申请一示例性实施例中,结合图4可知,确定接收模块接收到发射信号可以包括步骤410和步骤420,下面将分别介绍各步骤。
在步骤410中,在检测到接收模块有信号接入的情况下,对信号进行编码解析处理,以得到解析后信号;
在步骤420中,在解析后信号内检测到目标编码值的情况下,确定接收模块接收到的信号为发射信号。
在一种实施例中,为了确保接收到的信号确定为发射信号,进而可以准确判断目标电网的正常供电情况,在应用过程中,可以在检测到接收模块有信号接入的情况下,可以对信号进行编码解析处理,从而可以得到解析后信号。进一步的,再判断解析后信号内是否包含目标编码值。在检测到解析后信号内包含目标编码值的情况下,确定接收模块接收到的信号为发射信号。
其中,目标编码值可以根据实际情况进行调整,在本实施例中不作具体限定。
图5是本申请提供的生成发射信号的流程示意图。
下面将结合图5对生成发射信号的过程进行说明。
在本申请一示例性实施例中,结合图5可知,生成发射信号可以包括步骤510和步骤520,下面将分别接受各步骤。
在步骤510中,基于发射模块,采集目标电网内的预设频段信号;
在步骤520中,基于预设频段信号,生成发射信号。
在一种实施例中,为了确保发射模块和接收模块之间的有效信号传输,进而可以基于信号的可传输性确定出发射信号,在应用过程中,可以基于发射模块采集目标电网内的预设频段信号,并基于预设频段信号生产发射信号。
可以理解的是,为了确保能够准确的基于接收模块接收的发射信号接收情况,确定目标电网是否正常供电,在应用过程中,可以将发射信号的生成过程与传输过程只与目标电网建立关系,而不需要受其他因素的干扰。在一示例中,可以基于发射模块和接收模块之间通过电力线载波的方式生成发射信号,或者,可以基于发射模块和接收模块之间的电力线载波通信方式传递发射信号,从而可以确保发射信号的生成和\或传递仅与目标电网的正常供电情况有关,而不会受到WIFI通信信号是否良好、红外传输距离是否足够近的影响。
在又一种实施例中,在发射模块被正常供电的情况下,发射模块和接收模块之间还可以通过无线信号传输的方式进行发射信号传输,包括但不限于Wifi、NB-IOT、LoRa、ZigBee。发射模块发射发射信号,接收模块接收发射信号,两者之间通过无线信号进行传输,可以实现多节点控制,覆 盖范围广,功率消耗低,电网运行波动影响小,避免发射信号受到电压波动影响而导致信号传输失真,能独立于电网运行情况实现发射信号的传输。
在一种实施例中,可以利用高压电力线、中压电力线或低压配电线作为信息传输媒介而不是WIFI、红外传输作为信息传输媒介。在发射模块发射发射信号之前,可以采集目标电网内的预设频段信号,并对预设频段信号进行调制,得到发射信号,并将发射信号加载于电流,在电力线上进行传输。
进一步的,在接收模块端,可以对接收到的信号进行滤波处理,得到信号,在对得到的信号进行解调处理,判断解调后的信号中是否包含目标编码值。在接收模块端确定出解调后的信号中包含目标编码值的情况下,可以确定接收到的信号为发射信号。通过本实施例,可以确保基于接收模块接收的发射信号接收情况确定目标电网是否正常供电的准确性,进而为自动控制空调器的运行打下基础。
在又一种实施例中,发射信号还可以采用以下方式生成:
基于发射模块采集目标电网中的预设频段信号;
对预设频段信号进行调制,得到调制后信号;
将调制后信号加载至电力线进行传输,其中,在目标电网正常供电的情况下,电力线具备传输信号能力;在应用过程中,可以将调制后信号作为发射信号。
进一步的,还可以采用以下方式确定接收模块接收到发射信号:
在接收模块基于电力线接收到调制后信号的情况下,基于信号接收模块对调制后信号进行解调,得到解调后信号;
在检测到解调后信号包括预设频段信号的情况下,确定接收模块接收到发射信号。
在一种实施例中,以利用高压电力线、中压电力线或低压配电线作为信息传输媒介而不是WIFI、红外传输作为信息传输媒介。可以基于发射模块采集目标电网中的预设频段信号,并对预设频段信号进行调制,得到调制后信号。再将调制后信号加载至电力线上进行传输。需要说明的是,在目标电网正常供电的情况下,电力线具备传输信号能力。换句话说,在目标电网正常供电的情况下,接收模块可以接收到发射模块发送的信号。
进一步的,在接收模块端,在接收模块基于电力线接收到调制后信号的情况下,可以再次基于接收模块对调制后信号进行解调,得到解调后信号,并判断解调后信号中是否包括预设频段信号。若解调后信号中包括预设频段信号,说明目标电网可以正常供电。通过本实施例,可以确保基于接收模块接收的发射信号接收情况确定目标电网是否正常供电的准确性,进而为自动控制空调器的运行打下基础。
图6是本申请提供的空调器节能模式自动控制方法的应用场景结构示意图。
为了进一步介绍本申请提供的空调器节能模式自动控制方法,下面将结合图6进行说明。
在本申请一示例性实施例中,结合图6可知,对于供电匮乏的地区,每个家庭可以配置一个电控转接盒子(对应图6中的电源转换装置)置于室外,电控转接盒子可以分为输入端和输出端。结合图6可知,输入端由个人发电、社区发电和市电构成。输出端可以连接又常备电源1至常备电源N。在应用过程中,输入端电源可以来自各自电源,如市电、社区发电、个人发电机等,输出端电源接入家庭常备电源插座。另外还有市电直接接入家庭市电插座,供非必须持续电器使用。其中,本申请的室内机1可以通过常备电源N进行供电。
需要说明的是,图6中的N表示零线,L表示火线。S表示室内机和室外机之间的信号连接线。室内机1和接受模块(对应本申请的接收模块)可以通过信号线连接,以保证两者之间的信号传输。
在一示例中,发射模块安装形式可以为三插插头形式。可以通过市电为发射模块进行供电。接受模块安装在室内机1旁边或者内置其内部,其供电形式来自于室内机电源,并有信号线连接接受模块和室内机电脑板,保证其信号传输。
空调器电源可以来自于室内常备电源插座,保证其持续运行,发射模块插在室内市电插座上,接受模块安装在室内机上或者旁边,接受模块数量不限于1个,根据家庭安装空调数量而定,接受模块的数量可以与内机数量相当,发射模块只有一个即可,也可以多个。
在应用过程中,当市电正常供电情况下,发射模块有电源给其供电, 能正常发射信号给接受模块,电力线载波通信正常,接受模块只做信号解析,不下达节能命令,空调器可以按照用户设置运行。
当市电无的情景下,其他电源形式给家庭供电,市电电源插座变成无电状态,发射模块无法发射信号给接受模块,程序设置接受模块给空调器内机电脑版下发命令使空调器进入节能模式,控制空调器节能运转,确保其它电器在有限其电源容量下能够运行。从而可以实现自动控制空调器的运行,以满足供电实际情况,在保证其他电器正常运行的前提下,提升了用户在使用过程中的体验感和满意度。
根据上述描述可知,本申请提供的空调器节能模式自动控制方法,由于在目标电网为发射模块正常供电的情况下,发射模块具备发射所述发射信号的能力,因此,可以基于接收模块接收的发射信号接收情况,确定目标电网是否正常供电,并在判断出目标电网未正常供电的情况下,控制空调器自动进入节能模式,从而可以在低成本的情况下,基于接收模块接收的发射信号接收情况自动控制空调器的节能模式运行,在保证其他电器正常运行的前提下,提升了用户在使用过程中的体验感和满意度。
基于相同的构思,本申请还提供一种空调器节能模式自动控制装置。
下面对本申请提供的空调器节能模式自动控制装置进行描述,下文描述的空调器节能模式自动控制装置与上文描述的空调器节能模式自动控制方法可相互对应参照。
图7是本申请提供的空调器节能模式自动控制装置的结构示意图。
在本申请一示例性实施例中,结合图7可知,空调器节能模式自动控制装置可以包括判断模块710和控制模块720,下面将分别介绍各模块。
判断模块710,可以被配置为用于基于接收模块接收的发射信号接收情况,确定目标电网是否正常供电,其中,接收模块具备接收发射信号的能力;在目标电网为发射模块正常供电的情况下,发射模块具备发射发射信号的能力;
控制模块720,可以被配置为用于在目标电网未正常供电的情况下,控制空调器自动进入节能模式。
在本申请一示例性实施例中,空调器可以包括室内机,室内机可以与接收模块通信连接。控制模块720可以采用以下方式实现在目标电网不正 常供电的情况下,控制空调器自动进入节能模式:
在目标电网不正常供电的情况下,基于接收模块向室内机发送节能指令;
在室内机接收到节能指令的情况下,控制空调器自动进入节能模式。
在本申请一示例性实施例中,控制模块720还可以被配置为用于:
在目标电网正常供电的情况下,控制空调器按照当前运行模式继续运行。
在本申请一示例性实施例中,判断模块710可以采用以下方式实现基于接收模块接收的发射信号接收情况,确定目标电网是否正常供电:
在预设时间段内接收模块接收到发射信号的情况下,确定目标电网正常供电;
在预设时间段内接收模块未接收到发射信号的情况下,确定目标电网未正常供电。
在本申请一示例性实施例中,判断模块710可以采用以下方式实现确定接收模块接收到发射信号:
在检测到接收模块有信号接入的情况下,对信号进行编码解析处理,以得到解析后信号;
在解析后信号内检测到目标编码值的情况下,确定接收模块接收到的信号为发射信号。
在本申请一示例性实施例中,判断模块710可以采用以下方式生成发射信号:
基于发射模块,采集目标电网内的预设频段信号;
基于预设频段信号,生成发射信号。
图8示例了一种电子设备的实体结构示意图,如图8所示,该电子设备可以包括:处理器(processor)810、通信接口(Communications Interface)820、存储器(memory)830和通信总线840,其中,处理器810,通信接口820,存储器830通过通信总线840完成相互间的通信。处理器810可以调用存储器830中的逻辑指令,以执行空调器节能模式自动控制方法,该方法包括:基于接收模块接收的发射信号接收情况,确定目标电网是否正常供电,其中,所述接收模块具备接收所述发射信号的能力;在所述目 标电网为发射模块正常供电的情况下,所述发射模块具备发射所述发射信号的能力;在所述目标电网未正常供电的情况下,控制所述空调器自动进入节能模式。
此外,上述的存储器830中的逻辑指令可以通过软件功能单元的形式实现并作为独立的产品销售或使用时,可以存储在一个计算机可读取存储介质中。基于这样的理解,本申请的技术方案本质上或者说对现有技术做出贡献的部分或者该技术方案的部分可以以软件产品的形式体现出来,该计算机软件产品存储在一个存储介质中,包括若干指令用以使得一台计算机设备(可以是个人计算机,服务器,或者网络设备等)执行本申请各个实施例所述方法的全部或部分步骤。而前述的存储介质包括:U盘、移动硬盘、只读存储器(ROM,Read-Only Memory)、随机存取存储器(RAM,Random Access Memory)、磁碟或者光盘等各种可以存储程序代码的介质。
另一方面,本申请还提供一种计算机程序产品,所述计算机程序产品包括计算机程序,计算机程序可存储在非暂态计算机可读存储介质上,所述计算机程序被处理器执行时,计算机能够执行上述各方法所提供的空调器节能模式自动控制方法,该方法包括:基于接收模块接收的发射信号接收情况,确定目标电网是否正常供电,其中,所述接收模块具备接收所述发射信号的能力;在所述目标电网为发射模块正常供电的情况下,所述发射模块具备发射所述发射信号的能力;在所述目标电网未正常供电的情况下,控制所述空调器自动进入节能模式。
又一方面,本申请还提供一种非暂态计算机可读存储介质,其上存储有计算机程序,该计算机程序被处理器执行时实现以执行上述各方法提供的空调器节能模式自动控制方法,该方法包括:基于接收模块接收的发射信号接收情况,确定目标电网是否正常供电,其中,所述接收模块具备接收所述发射信号的能力;在所述目标电网为发射模块正常供电的情况下,所述发射模块具备发射所述发射信号的能力;在所述目标电网未正常供电的情况下,控制所述空调器自动进入节能模式。
以上所描述的装置实施例仅仅是示意性的,其中所述作为分离部件说明的单元可以是或者也可以不是物理上分开的,作为单元显示的部件可以是或者也可以不是物理单元,即可以位于一个地方,或者也可以分布到多 个网络单元上。可以根据实际的需要选择其中的部分或者全部模块来实现本实施例方案的目的。本领域普通技术人员在不付出创造性的劳动的情况下,即可以理解并实施。
通过以上的实施方式的描述,本领域的技术人员可以清楚地了解到各实施方式可借助软件加必需的通用硬件平台的方式来实现,当然也可以通过硬件。基于这样的理解,上述技术方案本质上或者说对现有技术做出贡献的部分可以以软件产品的形式体现出来,该计算机软件产品可以存储在计算机可读存储介质中,如ROM/RAM、磁碟、光盘等,包括若干指令用以使得一台计算机设备(可以是个人计算机,服务器,或者网络设备等)执行各个实施例或者实施例的某些部分所述的方法。
进一步可以理解的是,本申请实施例中尽管在附图中以特定的顺序描述操作,但是不应将其理解为要求按照所示的特定顺序或是串行顺序来执行这些操作,或是要求执行全部所示的操作以得到期望的结果。在特定环境中,多任务和并行处理可能是有利的。
最后应说明的是:以上实施例仅用以说明本申请的技术方案,而非对其限制;尽管参照前述实施例对本申请进行了详细的说明,本领域的普通技术人员应当理解:其依然可以对前述各实施例所记载的技术方案进行修改,或者对其中部分技术特征进行等同替换;而这些修改或者替换,并不使相应技术方案的本质脱离本申请各实施例技术方案的精神和范围。

Claims (10)

  1. 一种空调器节能模式自动控制方法,包括:
    基于接收模块接收的发射信号接收情况,确定目标电网是否正常供电,其中,所述接收模块具备接收所述发射信号的能力;在所述目标电网为发射模块正常供电的情况下,所述发射模块具备发射所述发射信号的能力;
    在所述目标电网未正常供电的情况下,控制所述空调器自动进入节能模式。
  2. 根据权利要求1所述的空调器节能模式自动控制方法,其中,所述空调器包括室内机,所述室内机与所述接收模块通信连接;所述在所述目标电网不正常供电的情况下,控制所述空调器自动进入节能模式,具体包括:
    在所述目标电网不正常供电的情况下,基于所述接收模块向所述室内机发送节能指令;
    在所述室内机接收到所述节能指令的情况下,控制所述空调器自动进入节能模式。
  3. 根据权利要求1所述的空调器节能模式自动控制方法,其中,在所述确定目标电网是否正常供电之后,所述方法还包括:
    在所述目标电网正常供电的情况下,控制所述空调器按照当前运行模式继续运行。
  4. 根据权利要求1至3中任意一项所述的空调器节能模式自动控制方法,其中,所述基于接收模块接收的发射信号接收情况,确定目标电网是否正常供电,具体包括:
    在预设时间段内所述接收模块接收到所述发射信号的情况下,确定所述目标电网正常供电;
    在预设时间段内所述接收模块未接收到所述发射信号的情况下,确定所述目标电网未正常供电。
  5. 根据权利要求4所述的空调器节能模式自动控制方法,其中,采用以下方式确定所述接收模块接收到所述发射信号:
    在检测到所述接收模块有信号接入的情况下,对所述信号进行编码解析处理,以得到解析后信号;
    在所述解析后信号内检测到目标编码值的情况下,确定所述接收模块接收到的所述信号为所述发射信号。
  6. 根据权利要求1或5所述的空调器节能模式自动控制方法,其中,所述发射信号采用以下方式生成:
    基于所述发射模块,采集所述目标电网内的预设频段信号;
    基于所述预设频段信号,生成所述发射信号。
  7. 一种空调器节能模式自动控制装置,包括:
    判断模块,用于基于接收模块接收的发射信号接收情况,确定目标电网是否正常供电,其中,所述接收模块具备接收所述发射信号的能力;在所述目标电网为发射模块正常供电的情况下,所述发射模块具备发射所述发射信号的能力;
    控制模块,用于在所述目标电网未正常供电的情况下,控制所述空调器自动进入节能模式。
  8. 一种电子设备,包括存储器、处理器及存储在所述存储器上并可在所述处理器上运行的计算机程序,其中,所述处理器执行所述程序时实现如权利要求1至6任一项所述的空调器节能模式自动控制方法。
  9. 一种非暂态计算机可读存储介质,其上存储有计算机程序,其中,所述计算机程序被处理器执行时实现如权利要求1至6任一项所述的空调器节能模式自动控制方法。
  10. 一种计算机程序产品,包括计算机程序,其中,所述计算机程序被处理器执行时实现如权利要求1至6任一项所述的空调器节能模式自动控制方法。
PCT/CN2023/113015 2023-07-14 2023-08-15 空调器节能模式自动控制方法、装置及电子设备 Pending WO2025015652A1 (zh)

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