WO2023236419A1 - 空气调节设备的控制方法、装置、设备、介质及程序产品 - Google Patents

空气调节设备的控制方法、装置、设备、介质及程序产品 Download PDF

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Publication number
WO2023236419A1
WO2023236419A1 PCT/CN2022/127082 CN2022127082W WO2023236419A1 WO 2023236419 A1 WO2023236419 A1 WO 2023236419A1 CN 2022127082 W CN2022127082 W CN 2022127082W WO 2023236419 A1 WO2023236419 A1 WO 2023236419A1
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Prior art keywords
adjustment
dimension
adjustment dimension
adjusted
dimensions
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PCT/CN2022/127082
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English (en)
French (fr)
Inventor
黄刚
樊其锋
尚喆
Original Assignee
佛山市顺德区美的电子科技有限公司
广东美的制冷设备有限公司
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Publication of WO2023236419A1 publication Critical patent/WO2023236419A1/zh

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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
    • F24F11/62Control 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
    • F24F2110/00Control inputs relating to air properties
    • F24F2110/50Air quality properties
    • F24F2110/64Airborne particle content
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F24HEATING; RANGES; VENTILATING
    • F24FAIR-CONDITIONING; AIR-HUMIDIFICATION; VENTILATION; USE OF AIR CURRENTS FOR SCREENING
    • F24F2110/00Control inputs relating to air properties
    • F24F2110/50Air quality properties
    • F24F2110/65Concentration of specific substances or contaminants
    • 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

Definitions

  • the present disclosure relates to the technical field of air conditioning, and specifically to a control method, device, equipment, medium and program product for air conditioning equipment.
  • the present disclosure aims to solve one of the technical problems in the related art, at least to a certain extent.
  • the first purpose of the present disclosure is to propose a control method for air conditioning equipment. After entering the linkage mode, in response to a control instruction for the first adjustment dimension among the multiple adjustment dimensions of the air conditioning equipment, when controlling the first adjustment dimension, In the case of one adjustment dimension, control the opened adjustment dimensions among multiple adjustment dimensions except the first adjustment dimension. This can improve control efficiency and thus improve user experience.
  • the air conditioning equipment can control the opened adjustment dimension according to the adjustment coefficient. This control method is more reasonable and effective, which can further improve the user experience.
  • the second object of the present disclosure is to provide a control device for air conditioning equipment.
  • the third object of the present disclosure is to provide an electronic device.
  • a fourth object of the present disclosure is to provide a computer-readable storage medium.
  • a fifth object of the present disclosure is to provide a computer program product.
  • the first embodiment of the present disclosure proposes a control method for an air conditioning equipment, which includes the following steps: turning on the linkage mode of the air conditioning equipment; in the linkage mode, responding to multiple adjustments for the air conditioning equipment
  • the control instruction of the first adjustment dimension in the dimension when controlling the first adjustment dimension, determines the target value of the first adjustment dimension, and adjusts the first adjustment dimension from the first adjustment dimension to the second adjustment dimension based on the target value of the first adjustment dimension.
  • the coefficient controls the second adjustment dimension; wherein the second adjustment dimension is an opened adjustment dimension among the plurality of adjustment dimensions except the first adjustment dimension.
  • controlling the second adjustment dimension according to the target value of the first adjustment dimension and the adjustment coefficient from the first adjustment dimension to the second adjustment dimension includes: determining the second adjustment dimension according to the target value of the first adjustment dimension. the first amount to be adjusted; determine the second amount to be adjusted in the second adjustment dimension according to the first amount to be adjusted and the adjustment coefficient; and adjust the second adjustment dimension according to the second amount to be adjusted in the second adjustment dimension.
  • determining the target value of the first adjustment dimension includes: in the case of turning on the first adjustment dimension, determining the current opening value of the first adjustment dimension as The target value of the first adjustment dimension; or, in the case of adjusting the first adjustment dimension, the adjusted value of the first adjustment dimension is determined as the target value of the first adjustment dimension.
  • determining the first amount to be adjusted in the second adjustment dimension based on the target value of the first adjustment dimension includes: determining the relationship between the target value of the first adjustment dimension and the adjusted value corresponding to the second adjustment dimension. the first mapping relationship; determine the adjusted value corresponding to the second adjustment dimension according to the target value of the first adjustment dimension and the first mapping relationship; determine the adjusted value corresponding to the second adjustment dimension according to the current value of the second adjustment dimension and the adjusted value corresponding to the second adjustment dimension. The first amount to be adjusted in the second adjustment dimension.
  • determining the target value of the first adjustment dimension includes: in the case of adjusting the first adjustment dimension, determining the adjustment amount of the first adjustment dimension as a third A target value for the adjustment dimension.
  • determining the first amount to be adjusted in the second adjustment dimension based on the target value of the first adjustment dimension includes: determining the difference between the adjustment amount in the first adjustment dimension and the first amount to be adjusted in the second adjustment dimension.
  • the second mapping relationship determines the first to-be-adjusted amount of the second adjustment dimension according to the adjustment amount of the first adjustment dimension and the second mapping relationship.
  • determining the second amount to be adjusted in the second adjustment dimension based on the first amount to be adjusted and the adjustment coefficient of the second adjustment dimension includes: if the adjustment coefficient is zero, determining the first amount to be adjusted in the second adjustment dimension. The second amount to be adjusted is zero; if the adjustment coefficient is greater than zero, the product of the first amount to be adjusted in the second adjustment dimension and the adjustment coefficient is calculated to obtain the second amount to be adjusted in the second adjustment dimension.
  • turning on the linkage mode of the air-conditioning equipment includes: turning on the linkage mode of the air-conditioning equipment in response to a start-up instruction or a linkage instruction.
  • the method further includes: in response to a power-on instruction or a linkage instruction, turning on at least one adjustment dimension among the plurality of adjustment dimensions.
  • At least one adjustment dimension is any of the following: an adjustment dimension that needs to be turned on by default by the system; an adjustment dimension that has been turned on historically in the linkage mode; and an adjustment dimension that needs to be turned on based on the current environment.
  • At least one adjustment dimension is any of the following: the adjustment dimension that needs to be turned on by default by the system; the history in the linkage mode The adjustment dimensions that are turned on; the adjustment dimensions that are turned on in normal mode; the adjustment dimensions that need to be turned on are determined according to the current environment; among them, the normal mode is a mode in which multiple adjustment dimensions are independently controlled.
  • turning on the linkage mode of the air conditioning device includes: in response to a selection instruction and a linkage instruction for at least one adjustment dimension among the plurality of adjustment dimensions, turning on the linkage mode of the air conditioning device.
  • the method further includes: in response to the selection instruction and the linkage instruction for the at least one adjustment dimension, turning on at least one adjustment dimension.
  • the second embodiment of the present disclosure proposes a control device for air conditioning equipment, including: an opening module and a control module.
  • the opening module is used to activate the linkage mode of the air conditioning equipment;
  • the control module is used to activate the linkage mode of the air conditioning equipment.
  • the target value of the first adjustment dimension is determined, and according to the target value of the first adjustment dimension and the adjustment coefficient from the first adjustment dimension to the second adjustment dimension controls the second adjustment dimension; wherein the second adjustment dimension is an opened adjustment dimension among the plurality of adjustment dimensions except the first adjustment dimension.
  • a third embodiment of the present disclosure provides an electronic device, including a processor and a memory.
  • the memory is used to store a computer program.
  • the processor is used to call and run the computer program stored in the memory to perform the above-mentioned air conditioning. Device control methods.
  • a fourth embodiment of the present disclosure provides a computer-readable storage medium for storing a computer program, and the computer program causes the computer to execute the above control method of the air conditioning equipment.
  • the fifth embodiment of the present disclosure proposes a computer program product, which includes a computer program/instruction, which is characterized in that when the computer program/instruction is executed by a processor, the above control method of the air conditioning device is implemented.
  • Figure 1 is a schematic diagram of an application scenario provided by an embodiment of the present disclosure
  • Figure 2 is a schematic diagram of another application scenario provided by an embodiment of the present disclosure.
  • Figure 3 is a schematic diagram of yet another application scenario provided by an embodiment of the present disclosure.
  • Figure 4 is a flow chart of a control method for air conditioning equipment provided by an embodiment of the present disclosure
  • Figure 5 is a schematic diagram of an interface provided by an embodiment of the present disclosure.
  • Figure 6 is another schematic diagram of an interface provided by an embodiment of the present disclosure.
  • Figure 7 is a schematic diagram of yet another interface provided by an embodiment of the present disclosure.
  • Figure 8 is another schematic diagram of an interface provided by an embodiment of the present disclosure.
  • Figure 9 is a schematic diagram of an interface provided by an embodiment of the present disclosure.
  • Figure 10 is a schematic diagram of yet another interface provided by an embodiment of the present disclosure.
  • Figure 11 is another schematic diagram of an interface provided by an embodiment of the present disclosure.
  • Figure 12 is a schematic diagram showing adjustment coefficients between multiple adjustment dimensions provided by an embodiment of the present disclosure.
  • Figure 13 is a flow chart of another control method of air conditioning equipment provided by an embodiment of the present disclosure.
  • Figure 14 is a flow chart of yet another control method for air conditioning equipment provided by an embodiment of the present disclosure.
  • Figure 15 is a flow chart of yet another control method for air conditioning equipment provided by an embodiment of the present disclosure.
  • Figure 16 is a flow chart of yet another control method for air conditioning equipment provided by an embodiment of the present disclosure.
  • FIG. 17 is a schematic diagram of a control device 1700 of an air conditioning equipment provided by an embodiment of the present disclosure
  • Figure 18 is a schematic block diagram of an electronic device 1800 provided by an embodiment of the present disclosure.
  • embodiments of the present disclosure provide a linkage control solution. Specifically, after entering the linkage mode, in response to the control instruction for the first adjustment dimension among the multiple adjustment dimensions of the air conditioning equipment, the first adjustment is controlled. In the case of dimensions, control the opened adjustment dimensions among multiple adjustment dimensions except the first adjustment dimension.
  • Figure 1 is a schematic diagram of an application scenario provided by an embodiment of the present disclosure.
  • the application scenario may include: an air conditioning device 110 and a remote control 120 , wherein the user can operate the remote control 120 to realize remote control of the air conditioning device 110 .
  • the remote control 120 may be an infrared remote control with an infrared transmitting unit.
  • the air conditioning device 110 may be provided with an infrared receiving unit.
  • the infrared remote control transmits infrared signals to the air conditioning device 110 through the infrared transmitting unit.
  • the air conditioning device 110 receives infrared signals through the infrared receiving unit, thereby achieving remote control of the air conditioning device 110 .
  • FIG 2 is a schematic diagram of another application scenario provided by an embodiment of the present disclosure.
  • the application scenario may include: an air conditioning device 210 and a terminal device 220.
  • the terminal device 220 may be installed with an application (Application, APP) for controlling the air conditioning device 210, and the user may operate the APP. Remote control of the air conditioning equipment 210 is realized.
  • Application Application, APP
  • Remote control of the air conditioning equipment 210 is realized.
  • the terminal device can be a mobile phone, a computer, etc., but is not limited to this.
  • air-conditioning equipment in Figures 1 and 2 may be a hanging air-conditioning equipment or a cabinet-type air-conditioning equipment.
  • FIG 3 is a schematic diagram of yet another application scenario provided by an embodiment of the present disclosure.
  • the application scenario may include: air conditioning equipment, the air conditioning equipment is equipped with a touch panel, and the user can control the air conditioning equipment through operations on the touch panel.
  • FIG 4 is a flow chart of a control method for air conditioning equipment provided by an embodiment of the present disclosure.
  • the method can be executed by the air conditioning equipment.
  • the air conditioning equipment can be a cabinet air conditioning equipment or a hanging air conditioning equipment, etc., such as As shown in Figure 4, the method may include:
  • S420 In response to the control instruction for the first adjustment dimension among the plurality of adjustment dimensions of the air conditioning equipment, when controlling the first adjustment dimension, determine the target value of the first adjustment dimension;
  • S430 Control the second adjustment dimension according to the target value of the first adjustment dimension and the adjustment coefficient from the first adjustment dimension to the second adjustment dimension.
  • the linkage mode means that when the air-conditioning device obtains a control instruction for the first adjustment dimension among multiple adjustment dimensions, the air-conditioning device controls the first adjustment dimension except for the third adjustment dimension.
  • the first adjustment dimension may be any adjustment dimension among multiple adjustment dimensions.
  • the above-mentioned second adjustment dimension may be an opened adjustment dimension among the plurality of adjustment dimensions except the first adjustment dimension. For example, it may be any opened adjustment dimension among the plurality of adjustment dimensions except the first adjustment dimension, or it may be It is an opened adjustment dimension among multiple adjustment dimensions other than the first adjustment dimension and has a lower priority than the first adjustment dimension.
  • control instruction may be an opening instruction, a closing instruction or an adjustment instruction.
  • the adjustment instruction is used to adjust the size of the corresponding adjustment dimension, for example, used to adjust the temperature, wind speed, humidity, fresh air, purification size, etc.
  • the air conditioning device may, in the linkage mode, respond to the opening instruction for the first adjustment dimension and control the first adjustment dimension when the priority of the second adjustment dimension is lower than the priority of the first adjustment dimension. Lower control changes in the second regulatory dimension.
  • the multiple adjustment dimensions are temperature, wind speed, humidity, purification, and fresh air. These adjustment dimensions are all turned on, and the temperature adjustment dimension is the first adjustment dimension, and its priority is higher than other adjustment dimensions. , then when the user adjusts the temperature adjustment dimension, the air conditioning equipment can linkage adjust the four adjustment dimensions of wind speed, humidity, purification, and fresh air.
  • the air conditioning device may linkage control the second adjustment dimension to change in response to an adjustment instruction for the first adjustment dimension.
  • the multiple adjustment dimensions are temperature, wind speed, humidity, purification, and fresh air. These adjustment dimensions are all turned on.
  • the air conditioning equipment can linkage to adjust wind speed, humidity, purification, The size of these four adjustment dimensions of fresh air.
  • the linkage mode can be explained through the following example: for example, when the user adjusts the temperature dimension, the enabled wind speed adjustment dimension can also be automatically adjusted. For another example, when the user turns on the wind speed adjustment dimension, the turned on humidity adjustment dimension can also be automatically adjusted. For another example, when the user turns off the humidity adjustment dimension, the turned on adjustment dimension can remain unchanged.
  • the linkage mode is for multiple adjustment dimensions.
  • These adjustment dimensions may be system defaults.
  • the multiple adjustment dimensions may all have linkage relationships, or some may have linkage relationships and some may not. Have a linkage relationship.
  • multiple adjustment dimensions may include: temperature, wind speed, humidity, purification, fresh air and other adjustment dimensions, but are not limited to this.
  • the wind speed adjustment dimension here can include situations where there is no wind feeling.
  • Humidity adjustment dimensions can include humidification and dehumidification conditions.
  • turning on the linkage mode of the air conditioning equipment includes the following situations, but is not limited to these:
  • the air-conditioning equipment obtains a power-on command, and in response to the power-on command, turns on the linkage mode of the air-conditioning device. For example, when the user turns on the air-conditioning equipment, the air-conditioning equipment automatically enters the linkage mode.
  • the power-on instruction may be generated based on the user's operation of the power-on button on the remote control or touch panel, or based on the user's operation of the power-on icon on the APP, or the power-on instruction may be a voice command. , gestures or posture instructions, etc.
  • the air-conditioning equipment obtains the linkage instruction, responds to the linkage instruction, and turns on the linkage mode of the air-conditioning equipment. For example, after the user turns on the air-conditioning equipment, the user can click the linkage icon or button to cause the air-conditioning equipment to automatically enter the linkage mode.
  • the linkage instruction can be generated based on the user's operation of the linkage button on the remote control or touch panel, or based on the user's operation of the linkage icon on the APP, or the linkage instruction can be a voice instruction. , gestures or posture instructions, etc.
  • the air-conditioning equipment obtains a selection instruction and a linkage instruction for at least one adjustment dimension, and in response to the selection instruction and linkage instruction, the linkage mode of the air-conditioning equipment is turned on. For example, when the user turns on the air-conditioning equipment, the user can select five adjustment dimensions: temperature, wind speed, humidity, purification, and fresh air. Then the user clicks on the linkage icon or button to put the air-conditioning equipment into linkage mode.
  • the air conditioning device can determine whether the maximum interval time of the selection instructions among the selection instructions of multiple adjustment dimensions is less than the preset time length. If it is less than the preset time length, In response to the selection command and the linkage command, the linkage mode of the air conditioning equipment is turned on.
  • the preset time period may be 5s or 10s, etc., and this disclosure does not limit this.
  • the preset time period is set so as to reduce misjudgments of the air conditioning equipment. For example, assuming that the preset duration is not set, the user selects the fresh air adjustment dimension at time t, and half an hour later, the user selects the three-dimensional adjustment dimension of temperature, humidity, and wind speed, and then the user can click or touch the linkage button or icon, etc. In fact, users expect to link the three adjustment dimensions of temperature, humidity, and wind speed. However, if the preset duration is not set, the air conditioning equipment may link the four adjustment dimensions of fresh air, temperature, humidity, and wind speed.
  • the air-conditioning equipment After the air-conditioning equipment is turned on, the air-conditioning equipment enters the normal mode by default. At this time, if the air-conditioning equipment obtains the linkage instruction, or obtains the corresponding After at least one adjustment dimension selection command and linkage command, the air conditioning equipment can switch from the normal mode to the linkage mode.
  • Another scenario is that when the air-conditioning equipment is turned on, the air-conditioning equipment does not enter any mode. This mode can be called idle mode, or this state can be called idle state.
  • the air-conditioning equipment obtains the linkage After receiving the instruction, or obtaining the selection instruction and linkage instruction for at least one adjustment dimension, the air conditioning equipment can enter the linkage mode.
  • the normal mode can also be called a non-linked mode, which refers to a mode in which multiple adjustment dimensions are independently controlled. That is, when the user controls any adjustment dimension, other adjustment dimensions are not controlled in a coordinated manner.
  • linkage instruction is used to turn on the linkage mode of the air conditioning equipment.
  • the air-conditioning equipment When the air-conditioning equipment enters the linkage mode, the air-conditioning equipment will turn on at least one adjustment dimension.
  • the following is a description of at least one adjustment dimension turned on in the above three cases of turning on the linkage mode:
  • At least one adjustment dimension turned on by the air conditioning device may be any of the following, but is not limited to This: The adjustment dimensions that need to be turned on by default in the system; the adjustment dimensions that have been turned on historically in linkage mode; the adjustment dimensions that need to be turned on are determined based on the current environment.
  • the system enables the five adjustment dimensions of temperature, humidity, wind speed, purification, and fresh air by default. Based on this, when the air conditioning equipment obtains a power-on command or a linkage command, it can automatically enable these five adjustment dimensions.
  • the system turns on the two adjustment dimensions of temperature and wind speed by default. Based on this, when the air conditioning equipment obtains the power-on command or linkage command, these two adjustment dimensions can be automatically turned on.
  • the last adjustment dimension enabled by the user in the linkage mode is the three adjustment dimensions of temperature, humidity, and wind speed. Based on this, when the air conditioning equipment obtains the power-on command or the linkage command, it can automatically open these three adjustment dimensions. .
  • the air-conditioning equipment can collect current environmental data, such as temperature, humidity, pollution index, etc. Further, the air-conditioning equipment can determine the adjustment dimensions that need to be turned on based on these current environmental data. Based on this, when the air-conditioning equipment obtains the power-on instruction Or after linking instructions, these adjustment dimensions that need to be turned on can be automatically turned on.
  • the air-conditioning equipment when the air-conditioning equipment is not in use, when the air-conditioning equipment obtains a power-on instruction or a linkage instruction, the air-conditioning equipment can turn on the adjustment dimensions that need to be turned on by default by the system or turn on the adjustment dimensions that need to be turned on based on the current environment.
  • the air-conditioning equipment when the air-conditioning equipment has been used, when the air-conditioning equipment obtains a power-on command or a linkage command, the air-conditioning equipment can turn on the adjustment dimension that the system needs to turn on by default, or turn on the adjustment dimension that has been turned on in the linkage mode, or turn on Determine the adjustment dimensions that need to be enabled based on the current environment.
  • At least one adjustment dimension turned on by the air-conditioning equipment can be any of the following, but is not limited to this:
  • the system needs to be turned on by default Adjustment dimension; the adjustment dimension that is turned on historically in linkage mode; the adjustment dimension that is turned on in normal mode; the adjustment dimension that needs to be turned on is determined based on the current environment.
  • the air-conditioning equipment For example, suppose that after the air-conditioning equipment is started, it first enters the normal mode. In the normal mode, it is assumed that the user turns on the two adjustment dimensions of temperature and wind speed. At this time, when the air-conditioning equipment obtains the linkage instruction, it can automatically turn on the temperature and wind speed. Two dimensions of regulation.
  • the air conditioning device may turn on at least one adjustment dimension based on the user's selection.
  • the user can select at least one adjustment dimension through the remote control, APP or touch panel, for example, select the two adjustment dimensions of temperature and wind speed, and then the user can click or touch the linkage button or icon, etc., so that these two adjustment dimensions can be turned on. Dimensions regulate dimensions.
  • the air conditioning device can push the first prompt information to prompt the user that the air conditioning device has entered the linkage mode.
  • first prompt information is used to prompt the user that the air conditioning device has entered the linkage mode.
  • the first prompt information is any of the following, but is not limited to: the indicator light corresponding to the linkage mode lights up; the indicator light corresponding to the linkage mode stays on for the first preset duration; the indicator light corresponding to the linkage mode displays the first A preset color; the indicator light corresponding to the linkage mode presents the first preset color and is always on for the first preset duration; the indicator light corresponding to the linkage mode flashes and sends voice information according to the first preset mode.
  • the indicator light corresponding to the linkage mode can be set in the cabinet touch panel or the on-hook display panel.
  • the first preset time length may be 10 minutes, 30 minutes, etc.
  • the first preset color may be blue, green, red, etc.
  • the first preset mode of flashing may flash once every N seconds, where N is a positive integer, or the intervals between two adjacent flashes may be 1s, 2s, 1s, 2s, etc. in sequence.
  • the icon corresponding to the linkage mode is displayed in the interface.
  • the icon indicates that the indicator light corresponding to the linkage mode is lit, indicating that the linkage mode has been turned on.
  • only one of these two icons may exist. That’s it.
  • the icon corresponding to the linkage mode is not displayed in the interface, which means that the linkage mode has been turned off.
  • the indicator light corresponding to the linkage mode is always on for 10 minutes, it can mean that the linkage mode has been turned on, and if the indicator light corresponding to the linkage mode goes out, it can mean that the linkage mode has been turned off.
  • the indicator light corresponding to the linkage mode turns green, it means that the linkage mode has been turned on. If the indicator light corresponding to the linkage mode goes out or turns red, it means that the linkage mode has been turned off.
  • the indicator light corresponding to the linkage mode turns green and lasts for 10 minutes, it means that the linkage mode is turned on. If the indicator light corresponding to the linkage mode goes out or turns red, it means that the linkage mode has been turned off.
  • the indicator light corresponding to the linkage mode flashes once every 2 seconds, it means that the linkage mode is turned on. If the indicator light corresponding to the linkage mode goes out or turns red, it means that the linkage mode has been turned off.
  • the air-conditioning equipment can also use voice broadcasting to report to the user: "The linkage mode is on” means that the linkage mode is on.
  • the air conditioning device can push the third prompt information or the fourth prompt information respectively for multiple adjustment dimensions.
  • the third prompt information The fourth prompt information is used to prompt the user that the corresponding adjustment dimension is in an open state, and the fourth prompt information is used to prompt the user that the corresponding adjustment dimension is in a closed state.
  • its corresponding third prompt information may be any of the following, but is not limited to: the indicator light corresponding to the adjustment dimension presents a third preset color; The indicator light corresponding to the adjustment dimension presents a third preset color and is always on for a third preset duration; the indicator light corresponding to the adjustment dimension flashes according to the third preset mode.
  • the indicator light corresponding to the adjustment dimension can be set in the cabinet touch panel or the on-hook display panel.
  • the third preset time length may be 1s or 2s, etc.
  • the third preset color may be white, blue, green or red, etc.
  • the third preset mode of flashing may flash once every P seconds, where P is a positive integer, or the intervals between two adjacent flashes may be 2s, 1s, 2s, 1s, etc. in sequence.
  • the corresponding fourth prompt information is any of the following, but is not limited to: the indicator light corresponding to the adjustment dimension goes out; the indicator light corresponding to the adjustment dimension Presents the fourth preset color.
  • the fourth preset color may be red, purple, etc.
  • a striped box indicates that the indicator light is white, indicating that the corresponding adjustment dimension is on, and a blank box indicates that the indicator light is off, indicating that the corresponding adjustment dimension is off. It can be seen that the result shown in Figure 5 is that the current temperature and wind speed adjustment dimensions are in the on state, while the humidity, purification and fresh air adjustment dimensions are in the off state.
  • the air conditioning device can also display the current progress of the adjustment dimension.
  • the striped box indicates that the indicator light is white, indicating that the corresponding adjustment dimension is on, and the length of the striped box indicates the current progress of the adjustment dimension.
  • the striped box indicates that the indicator light is white, indicating that the corresponding adjustment dimension is on, and the height of the shadow indicates the current progress of the adjustment dimension.
  • the indicator light represented by the striped box in Figure 8 indicates the on/off state of the adjustment dimension
  • the indicator light represented by the shaded area indicates the current progress of the adjustment dimension.
  • the indicator light represented by the shaded area can also be used to indicate the on/off status of the adjustment dimension
  • the indicator light represented by the striped box can be used to indicate the current progress of the adjustment dimension.
  • both lights can simultaneously indicate the on/off status of the adjustment dimension as well as the current progress.
  • the above-mentioned first adjustment dimension may be called the main adjustment dimension
  • the second adjustment dimension may be called the auxiliary adjustment dimension
  • the temperature adjustment dimension can be called the main adjustment dimension.
  • the turned-on wind speed, humidity, fresh air, and purification adjustment dimensions controlled by the air conditioning equipment can be called the second adjustment dimension.
  • the air conditioning device can push second prompt information for the first adjustment dimension to prompt the user that the first adjustment dimension is the main adjustment dimension.
  • the second prompt information is any of the following, but is not limited thereto: the indicator light corresponding to the first adjustment dimension presents a second preset color; the indicator light corresponding to the first adjustment dimension presents a second preset color and is often The indicator light corresponding to the first adjustment dimension flashes according to the second preset mode.
  • the indicator light corresponding to the first adjustment dimension can be set in the cabinet touch panel or the on-hook display panel.
  • the second preset time length may be 3s or 5s, etc.
  • the second preset color may be blue, green, red, etc.
  • the second preset mode of flashing may flash once every M seconds, where M is a positive integer, or the intervals between two adjacent flashes may be 1s, 3s, 1s, 3s, etc. in sequence.
  • the temperature adjustment dimension is the main adjustment dimension
  • its corresponding indicator light can appear blue and last for 1s.
  • the indicator light is represented by a black dot box in Figure 9 Appears blue.
  • the air conditioning device may also display the control progress of the first adjustment dimension in response to the control instruction.
  • the temperature adjustment dimension is the main adjustment dimension
  • its corresponding indicator light can appear blue and last for 1s.
  • the indicator light is represented by a black dot box in Figure 10 Appears in blue, and the length change of the black dot box represents the control progress of the temperature regulation dimension.
  • the temperature adjustment dimension is the main adjustment dimension
  • its corresponding indicator light can appear blue and last for 1s.
  • the indicator light is represented by a black dot box in Figure 11 Appears blue, and the height changes in the shaded portion represent the control progress of the thermoregulatory dimension.
  • the black dot box in Figure 11 indicates that the temperature adjustment dimension is the main adjustment dimension, and the shaded area indicates the control progress of the temperature adjustment dimension.
  • the shaded part can also be used to indicate that the temperature adjustment dimension is the main adjustment dimension, and the length change of the stripe frame can be used to indicate the control progress of the temperature adjustment dimension.
  • both parts can simultaneously indicate the control progress of the temperature adjustment dimension as the main adjustment dimension and the temperature adjustment dimension.
  • the target value of the first adjustment dimension is used to determine the first amount to be adjusted in the second adjustment dimension.
  • the priority of the first adjustment dimension may determine the adjustment coefficient from the first adjustment dimension to the second adjustment dimension.
  • the higher the priority of the first adjustment dimension the higher the priority of the first adjustment dimension.
  • the greater the adjustment coefficient to the second adjustment dimension conversely, the lower the priority of the first adjustment dimension, the smaller its adjustment coefficient to the second adjustment dimension.
  • the adjustment coefficient from the temperature adjustment dimension to the humidity adjustment dimension can be 1,
  • the adjustment coefficient from the humidity adjustment dimension to the temperature adjustment dimension can be 0.5
  • the adjustment coefficient from the temperature adjustment dimension to the wind speed adjustment dimension can be 1
  • the adjustment coefficient from the wind speed adjustment dimension to the temperature adjustment dimension can be 0.5
  • the adjustment coefficient from the humidity adjustment dimension to The adjustment coefficient of the wind speed adjustment dimension can be 0.5
  • the adjustment coefficient from the wind speed adjustment dimension to the humidity adjustment dimension can also be 0.5.
  • the priorities of multiple adjustment dimensions can be set when the air conditioning equipment leaves the factory, or the user can set the priorities of these adjustment dimensions through the remote control, APP or touch panel. This disclosure does not limit this. .
  • the air conditioning device can control the second adjustment dimension according to the second amount to be adjusted.
  • the air conditioning device can turn on the linkage mode of the air conditioning device; in the linkage mode, in response to a control instruction for the first adjustment dimension among the multiple adjustment dimensions of the air conditioning device, in controlling the first adjustment dimension In the case of controlling the opened adjustment dimensions among multiple adjustment dimensions except the first adjustment dimension.
  • This linkage control method can improve control efficiency and thus improve user experience.
  • the air conditioning equipment can control the second adjustment dimension according to the adjustment coefficient. This control method is more reasonable and effective, which can further improve the user experience.
  • the air-conditioning equipment can also push the first prompt information to prompt the user that the air-conditioning equipment has entered the linkage mode, which can also improve the user experience.
  • the air conditioning device can also push third prompt information or fourth prompt information respectively for multiple adjustment dimensions so that users can distinguish which adjustment dimensions are on and which are off, thereby improving user experience.
  • Air conditioning equipment can also display the current progress of each adjustment dimension, which can also improve user experience.
  • the air conditioning device can also push second prompt information for the main adjustment dimension so that the user knows which main adjustment dimension is, thereby further improving the user experience.
  • the above S430 may include:
  • S1310 Determine the first amount to be adjusted in the second adjustment dimension based on the target value of the first adjustment dimension
  • S1320 Determine the second amount to be adjusted in the second adjustment dimension based on the first amount to be adjusted and the adjustment coefficient in the second adjustment dimension;
  • S1330 Adjust the second adjustment dimension according to the second to-be-adjusted amount of the second adjustment dimension.
  • the target value of the first adjustment dimension may be the current turning on of the first adjustment dimension. numerical value. For example, when the temperature adjustment dimension is turned on and the current value of the temperature is 25 degrees, then the target value here is 25 degrees. In the case of adjusting the first adjustment dimension, the target value of the first adjustment dimension may be the adjusted value of the first adjustment dimension. For example, when the user adjusts the temperature from 25 degrees to 22 degrees, the target value here is 22 degrees. Based on this, as shown in Figure 14, the above S1310 may include:
  • S1410 Determine the first mapping relationship between the target value of the first adjustment dimension and the adjusted value corresponding to the second adjustment dimension
  • S1420 Determine the adjusted value corresponding to the second adjustment dimension according to the target value of the first adjustment dimension and the first mapping relationship;
  • S1430 Determine the first amount to be adjusted in the second adjustment dimension based on the current value of the second adjustment dimension and the adjusted value corresponding to the second adjustment dimension.
  • the first adjustment dimension is the temperature adjustment dimension
  • the second adjustment dimension is the wind speed adjustment dimension.
  • the adjusted temperature is 25 degrees
  • the wind speed corresponding to 25 degrees should be 1st gear. If the current wind speed of the air conditioning equipment is 3rd gear , then the air-conditioning equipment can reduce the wind speed by 2 levels.
  • the 2-level reduction here is the first amount of wind speed to be adjusted.
  • the target value of the first adjustment dimension may be the adjustment amount of the first adjustment dimension.
  • the first adjustment dimension is the temperature adjustment dimension
  • the second adjustment dimension is the wind speed adjustment dimension.
  • the air conditioning equipment determines that the temperature adjustment amount is -3 degrees, where - 3 degrees is the target value for the temperature regulation dimension. Based on this, as shown in Figure 15, the above S1310 may include:
  • S1510 Determine the second mapping relationship between the adjustment amount of the first adjustment dimension and the first to-be-adjusted amount of the second adjustment dimension;
  • S1520 Determine the first to-be-adjusted amount of the second adjustment dimension based on the adjustment amount of the first adjustment dimension and the second mapping relationship.
  • the air conditioning device determines that the temperature adjustment amount is -3 degrees. Assuming that the wind speed adjustment amount corresponding to -3 degrees is to increase the wind speed by 1 gear, then the wind speed increase by 1 gear here is the first amount to be adjusted corresponding to the wind speed adjustment dimension.
  • the adjustment granularity is different for different adjustment dimensions.
  • the temperature can be adjusted in degrees Celsius, or even the adjustment granularity can be 0.5 degrees, but the wind speed, humidity, fresh air and purification can all be adjusted according to the gears. Adjustment is performed one gear at a time. Therefore, the mapping relationship between the adjustment amount in the first adjustment dimension and the first to-be-adjusted amount in the second adjustment dimension may be the corresponding relationship between the temperature adjustment amount interval and the gear adjustment amount, for example , when the temperature adjustment amount is below -10 degrees, the wind speed adjustment amount is increased by 3 levels. When the temperature adjustment amount is between -10 degrees and -5 degrees, the wind speed adjustment amount is increased by 2 levels.
  • the wind speed adjustment amount is increased by one gear.
  • the wind speed adjustment amount is decreased by one gear.
  • the wind speed adjustment amount is reduced by one gear.
  • the adjustment amount is reduced by 2 gears.
  • the wind speed adjustment amount is reduced by 3 gears.
  • the mapping relationship between the adjustment amount in the first adjustment dimension and the first to-be-adjusted amount in the second adjustment dimension may be the mapping relationship between the gear adjustment amount and the gear adjustment amount. For example, when the wind speed is increased by 1 gear , the humidity is also linked to increase by 1 level. When the wind speed increases by 2 levels, the humidity is also linked to increase by 2 levels.
  • the air conditioning equipment determines the adjustment amount of the first adjustment dimension, according to the second
  • the corresponding relationship between the adjustment amount in the first adjustment dimension and the temperature adjustment amount interval in the second adjustment dimension determines the temperature adjustment amount interval.
  • the air conditioning equipment can select a temperature in the temperature adjustment amount interval according to certain preset rules.
  • the adjustment amount for example, selects the maximum value, the minimum value or the middle value in the interval, etc. This disclosure does not limit this.
  • the air-conditioning device can determine the second value of the second adjustment dimension.
  • the amount to be adjusted is zero; if the adjustment coefficient is greater than zero, the product of the first amount to be adjusted in the second adjustment dimension and the adjustment coefficient is calculated to obtain the second amount to be adjusted in the second adjustment dimension.
  • the adjustment coefficient from any one of the plurality of adjustment modes to any other adjustment mode is greater than zero.
  • the above-mentioned multiple adjustment modes include adjustment modes with and without linkage relationships.
  • the adjustment coefficients between them are greater than zero.
  • the two adjustment modes without linkage relationships they The adjustment coefficient between is equal to zero.
  • the adjustment coefficient from the temperature adjustment temperature to the wind speed adjustment dimension is 1. Assume that the user adjusts the temperature from 25 degrees to 23 degrees. The corresponding wind speed value of 23 degrees is 1st gear, assuming that the current wind speed gear is 2nd gear, it can be determined that the first amount to be adjusted for the required wind speed is to decrease by 1 gear. Further, the air conditioning equipment can calculate the first amount to be adjusted and the dimensions from the temperature adjustment temperature to the wind speed adjustment dimension. By multiplying the adjustment coefficients, the second amount to be adjusted is reduced by 1 gear. Assume that there is no linkage relationship between wind speed and purification. In this case, the adjustment coefficient from the wind speed adjustment dimension to the purification adjustment dimension is 0. Based on this, when the user adjusts the wind speed, the purification adjustment dimension can remain unchanged.
  • the air conditioning device can adjust the second adjustment dimension in the following manner, but is not limited to this:
  • the air conditioning device may adjust the second adjustment dimension by the second adjustment amount, if the second adjustment dimension The second amount to be adjusted is greater than the maximum adjustable amount of the second adjustment dimension, then adjust the second adjustment dimension to the maximum adjustable amount.
  • the determined second to-be-adjusted amount of the second adjustment dimension is greater than the maximum adjustable amount of the second adjustment dimension, adjust the second adjustment dimension according to the maximum adjustable amount of the second adjustment dimension, and continue the cycle to the second adjustment.
  • the minimum value of the dimension starts to be adjusted until the adjustment amount reaches the second amount to be adjusted determined based on the mapping relationship.
  • each adjustment dimension has a maximum and minimum numerical limit, for example, assuming that the wind speed is the highest at 5 gears, and the current wind speed is at 3 gears, then if it is assumed that the wind speed needs to be increased by 3 gears according to the above mapping relationship, it is obviously exceeded.
  • the maximum value of the wind speed can be raised to the 5th gear at this time.
  • the wind speed adjustment is a cyclic adjustment process. After the wind speed is raised to the 5th gear, you can continue to enter the 1st gear.
  • the air conditioning equipment obtains the first to-be-adjusted amount of the second adjustment dimension according to different conditions of the target value of the first adjustment dimension. Further, if the adjustment coefficient from the first adjustment dimension to the second adjustment dimension is zero, then the second amount to be adjusted in the second adjustment dimension is zero; if the adjustment coefficient from the first adjustment dimension to the second adjustment dimension is greater than zero, calculate the product of the first amount to be adjusted and the adjustment coefficient in the second adjustment dimension , the second amount to be adjusted in the second adjustment dimension can be obtained. Based on this, the second adjustment dimension can be adjusted according to the second amount to be adjusted. This method of controlling the second adjustment dimension based on the adjustment coefficient is more reasonable and effective, which can further improve the user experience.
  • Figure 16 is a flow chart of yet another control method for air conditioning equipment provided by an embodiment of the present disclosure. As shown in Figure 16, on the basis of Figure 4, after S430, it may also include:
  • the mode switching instruction may be generated based on the closing operation of the linkage mode, or the mode switching instruction may be generated based on the opening instruction of the normal mode, or the mode switching instruction may be generated based on the mode switching identification or key press. Generated by a click or touch operation, the mode switching logo or button can be set on the remote control or APP or touch panel.
  • the air conditioning device after the air conditioning device is switched to the normal mode, it can be switched to the linkage mode again. After entering the linkage mode, the air conditioning device can control multiple adjustment dimensions according to the control method provided by the present disclosure.
  • the air conditioning device can flexibly switch between the linkage mode and the normal mode, thereby improving the user experience.
  • control method provided by the present disclosure can be exemplified below through several examples:
  • Example 1 The user turns on the air-conditioning equipment.
  • the air-conditioning equipment automatically turns on the linkage mode and turns on the two adjustment dimensions of temperature and wind speed by default.
  • the air-conditioning equipment can prompt the user that the two adjustment dimensions of temperature and wind speed are on, and notify the user that the two adjustment dimensions of temperature and wind speed are on.
  • the user is prompted that humidity, purification and fresh air are turned off, and the current progress of the two adjustment dimensions of temperature and wind speed can also be displayed.
  • the air conditioning equipment can adjust the wind speed based on temperature changes and the adjustment coefficient from temperature to wind speed, and can display the progress changes in temperature and wind speed, and can also prompt that the temperature adjustment dimension is the main adjustment dimension.
  • the air conditioning equipment can adjust the wind speed change according to the adjustment coefficient from humidity to wind speed, and can also display the wind speed. progress changes.
  • Example 2 The user turns on the air-conditioning equipment.
  • the air-conditioning equipment automatically turns on the linkage mode and determines that the most recent linkage mode is the four adjustment dimensions of temperature, wind speed, humidity, and fresh air.
  • the air-conditioning equipment can prompt the user for these four adjustment dimensions.
  • each adjustment dimension is on and purification is off, the current progress of these four adjustment dimensions can also be displayed.
  • the air-conditioning equipment can adjust the wind speed based on the change in temperature and the adjustment coefficient from temperature to wind speed.
  • the air-conditioning equipment can adjust the two adjustment dimensions of humidity and fresh air, and can display these four adjustments.
  • the progress change of the dimension can also indicate that the temperature adjustment dimension is the main adjustment dimension.
  • the air conditioning equipment controls other adjustment dimensions to remain unchanged.
  • Example 3 The user turns on the air-conditioning equipment.
  • the air-conditioning equipment first enters the normal mode. Assume that in the normal mode, the user turns on the temperature, fresh air and wind speed, and then the user turns on the linkage mode.
  • the air-conditioning equipment determines to change all the parameters in the normal mode.
  • the turned-on temperature, fresh air and wind speed are used as the turned-on adjustment mode.
  • the air-conditioning equipment can prompt the user that these three adjustment dimensions are on and purification and humidity are off. It can also display the current progress of these three adjustment dimensions.
  • the air conditioning equipment can adjust the wind speed adjustment dimension based on the temperature change and the adjustment coefficient from temperature to wind speed. A similar method can adjust the fresh air.
  • Example 4 The user turns on the air-conditioning equipment. At this time, the user selects the five adjustment dimensions of temperature, wind speed, humidity, purification, and fresh air. Then the user clicks the linkage icon or button to put the air-conditioning equipment into linkage mode.
  • the air conditioning equipment can prompt the user that these five adjustment dimensions are on, and can also display the current progress of these five adjustment dimensions.
  • the air conditioning equipment can adjust the other four adjustment dimensions based on the changes in temperature and the adjustment coefficients from the temperature to the other four dimensions, and can display the progress changes of these five adjustment dimensions, and can also prompt the temperature adjustment Dimension is the main regulating dimension.
  • FIG 17 is a schematic diagram of a control device 1700 of an air conditioning device provided by an embodiment of the present disclosure.
  • the control device 1700 of the air conditioning device may include: an opening module 1710 and a control module 1720.
  • the opening module 1710 is used to open the air conditioning device.
  • Linkage mode; the control module 1720 is configured to, in the linkage mode, respond to a control instruction for a first adjustment dimension among multiple adjustment dimensions of the air conditioning equipment, and determine a target of the first adjustment dimension when controlling the first adjustment dimension. value, and controls the second adjustment dimension according to the target value of the first adjustment dimension and the adjustment coefficient from the first adjustment dimension to the second adjustment dimension; wherein, the second adjustment dimension is the existing adjustment dimension other than the first adjustment dimension among the multiple adjustment dimensions. Turn on the adjustment dimension.
  • control module 1720 is specifically configured to: determine the first amount to be adjusted in the second adjustment dimension based on the target value of the first adjustment dimension; determine the second adjustment dimension based on the first amount to be adjusted and the adjustment coefficient in the second adjustment dimension. the second amount to be adjusted; adjust the second adjustment dimension according to the second amount to be adjusted in the second adjustment dimension.
  • control module 1720 is specifically configured to: in the case of turning on the first adjustment dimension, determine the current turned-on value of the first adjustment dimension as the target value of the first adjustment dimension; or, in the case of adjusting the first adjustment dimension Next, the adjusted value of the first adjustment dimension is determined as the target value of the first adjustment dimension.
  • control module 1720 is specifically configured to: determine a first mapping relationship between the target value of the first adjustment dimension and the adjusted value corresponding to the second adjustment dimension; according to the target value of the first adjustment dimension and the first mapping relationship Determine the adjusted value corresponding to the second adjustment dimension; determine the first to-be-adjusted amount of the second adjustment dimension based on the current value of the second adjustment dimension and the adjusted value corresponding to the second adjustment dimension.
  • control module 1720 is specifically configured to: when adjusting the first adjustment dimension, determine the adjustment amount of the first adjustment dimension as the target value of the first adjustment dimension.
  • control module 1720 is specifically configured to: determine a second mapping relationship between the adjustment amount of the first adjustment dimension and the first to-be-adjusted amount of the second adjustment dimension; determine based on the adjustment amount of the first adjustment dimension and the second mapping relationship. The first amount to be adjusted in the second adjustment dimension.
  • control module 1720 is specifically configured to: if the adjustment coefficient is zero, determine that the second amount to be adjusted in the second adjustment dimension is zero; if the adjustment coefficient is greater than zero, calculate the first amount to be adjusted in the second adjustment dimension. and the product of the adjustment coefficient to obtain the second amount to be adjusted in the second adjustment dimension.
  • the opening module 1710 is specifically configured to: respond to a start-up instruction or a linkage instruction, start the linkage mode of the air conditioning device.
  • the opening module 1710 is also configured to: respond to a power-on instruction or a linkage instruction, open at least one adjustment dimension among the plurality of adjustment dimensions.
  • At least one adjustment dimension is any of the following:
  • At least one adjustment dimension is any of the following:
  • the normal mode is a mode in which multiple adjustment dimensions are independently controlled.
  • the opening module 1710 is specifically configured to: respond to the selection instruction and the linkage instruction of at least one adjustment dimension among the plurality of adjustment dimensions, start the linkage mode of the air conditioning device.
  • the opening module 1710 is also configured to: respond to the selection instruction and the linkage instruction for the at least one adjustment dimension, open the at least one adjustment dimension.
  • the device embodiments and the method embodiments may correspond to each other, and similar descriptions may refer to the method embodiments. To avoid repetition, they will not be repeated here.
  • the device 1700 shown in Figure 17 can execute the above method embodiments, and the foregoing and other operations and/or functions of each module in the device 1700 are respectively to implement the corresponding processes in each of the above methods. For the sake of brevity, they are not mentioned here. Again.
  • the device 1700 of the embodiment of the present disclosure is described above from the perspective of functional modules in conjunction with the accompanying drawings. It should be understood that this functional module can be implemented in the form of hardware, can also be implemented through instructions in the form of software, or can also be implemented through a combination of hardware and software modules. Specifically, each step of the method embodiments in the embodiments of the present disclosure can be completed through integrated logic circuits of hardware in the processor and/or instructions in the form of software. The steps of the methods disclosed in conjunction with the embodiments of the present disclosure can be directly embodied in hardware. The execution of the decoding processor is completed, or the execution is completed using a combination of hardware and software modules in the decoding processor.
  • the software module may be located in a mature storage medium in the field such as random access memory, flash memory, read-only memory, programmable read-only memory, electrically erasable programmable memory, register, etc.
  • the storage medium is located in the memory, and the processor reads the information in the memory and completes the steps in the above method embodiment in combination with its hardware.
  • Figure 18 is a schematic block diagram of an electronic device 1800 provided by an embodiment of the present disclosure.
  • the electronic device 1800 may include:
  • Memory 1810 and processor 1820 are used to store computer programs and transmit the program code to the processor 1820.
  • the processor 1820 can call and run the computer program from the memory 1810 to implement the method in the embodiment of the present disclosure.
  • the processor 1820 may be configured to execute the above method embodiments according to instructions in the computer program.
  • the processor 1820 may include, but is not limited to:
  • DSP Digital Signal Processor
  • ASIC Application Specific Integrated Circuit
  • FPGA Field Programmable Gate Array
  • the memory 1810 includes, but is not limited to:
  • Non-volatile memory can be read-only memory (Read-Only Memory, ROM), programmable read-only memory (Programmable ROM, PROM), erasable programmable read-only memory (Erasable PROM, EPROM), electrically removable memory. Erase programmable read-only memory (Electrically EPROM, EEPROM) or flash memory. Volatile memory may be Random Access Memory (RAM), which is used as an external cache.
  • RAM Random Access Memory
  • RAM static random access memory
  • DRAM dynamic random access memory
  • DRAM synchronous dynamic random access memory
  • SDRAM double data rate synchronous dynamic random access memory
  • Double Data Rate SDRAM DDR SDRAM
  • ESDRAM enhanced synchronous dynamic random access memory
  • SLDRAM synchronous link dynamic random access memory
  • Direct Rambus RAM Direct Rambus RAM
  • the computer program can be divided into one or more modules, and the one or more modules are stored in the memory 1810 and executed by the processor 1820 to complete the tasks provided by the present disclosure.
  • the one or more modules may be a series of computer program instruction segments capable of completing specific functions. The instruction segments are used to describe the execution process of the computer program in the electronic device.
  • the electronic device may also include:
  • Transceiver 1830 which may be connected to the processor 1820 or the memory 1810.
  • the processor 1820 can control the transceiver 1830 to communicate with other devices. Specifically, it can send information or data to other devices, or receive information or data sent by other devices.
  • Transceiver 1830 may include a transmitter and a receiver.
  • the transceiver 1830 may further include an antenna, and the number of antennas may be one or more.
  • bus system where in addition to the data bus, the bus system also includes a power bus, a control bus and a status signal bus.
  • the present disclosure also provides a computer storage medium on which a computer program is stored.
  • the computer program When the computer program is executed by a computer, the computer can perform the method of the above method embodiment.
  • embodiments of the present disclosure also provide a computer program product containing instructions, which when executed by a computer causes the computer to perform the method of the above method embodiments.
  • the computer program product includes one or more computer instructions.
  • the computer may be a general purpose computer, a special purpose computer, a computer network, or other programmable device.
  • the computer instructions may be stored in or transmitted from one computer-readable storage medium to another computer-readable storage medium, for example, the computer instructions may be transmitted over a wired connection from a website, computer, server, or data center (such as coaxial cable, optical fiber, digital subscriber line (DSL)) or wireless (such as infrared, wireless, microwave, etc.) to another website, computer, server or data center.
  • the computer-readable storage medium can be any available medium that can be accessed by a computer or a data storage device such as a server or data center integrated with one or more available media.
  • the available media may be magnetic media (such as floppy disks, hard disks, magnetic tapes), optical media (such as digital video discs (DVD)), or semiconductor media (such as solid state disks (SSD)), etc.
  • the disclosed systems, devices and methods can be implemented in other ways.
  • the device embodiments described above are only illustrative.
  • the division of the modules is only a logical function division. In actual implementation, there may be other division methods.
  • multiple modules or components may be combined or may be Integrated into another system, or some features can be ignored, or not implemented.
  • the coupling or direct coupling or communication connection between each other shown or discussed may be through some interfaces, indirect coupling or communication connection of devices or modules, and may be in electrical, mechanical or other forms.
  • Modules described as separate components may or may not be physically separated, and components shown as modules may or may not be physical modules, that is, they may be located in one place, or they may be distributed to multiple network units. Some or all of the modules can be selected according to actual needs to achieve the purpose of the solution of this embodiment. For example, each functional module in various embodiments of the present disclosure may be integrated into one processing module, or each module may exist physically alone, or two or more modules may be integrated into one module.

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Abstract

本公开公开了一种空气调节设备的控制方法、装置、设备、介质及程序产品,该方法包括:开启空气调节设备的联动模式(S410);在联动模式下,响应于针对空气调节设备的多个调节维度中第一调节维度的控制指令,在控制第一调节维度的情况下,确定第一调节维度的目标数值(S420),并根据第一调节维度的目标数值和第一调节维度到第二调节维度的调节系数控制第二调节维度(S430)。

Description

空气调节设备的控制方法、装置、设备、介质及程序产品
相关申请的交叉引用
本公开要求于2022年06月10日提交的申请号为202210658348.4,名称为“空气调节设备的控制方法、装置、设备、介质及程序产品”的中国专利申请的优先权,其全部内容通过引用结合在本公开中。
技术领域
本公开涉及空气调节技术领域,具体而言,涉及一种空气调节设备的控制方法、装置、设备、介质及程序产品。
背景技术
目前用户可以调节空气调节设备的温度、风速、湿度、净化、新风等维度,使得空气调节设备可以为用户提供舒适环境。然而,目前针对空气调节设备的温度、风速、湿度、净化、新风等多个调节维度只能单独分别进行控制,导致控制效率较低,从而导致用户体验感并不高。
公开内容
本公开旨在至少在一定程度上解决相关技术中的技术问题之一。
为此,本公开的第一个目的在于提出一种空气调节设备的控制方法,当进入联动模式之后,响应于针对空气调节设备的多个调节维度中第一调节维度的控制指令,在控制第一调节维度的情况下控制多个调节维度中除第一调节维度以外的已开启调节维度。从而可以提高控制效率,进而提高用户体验感。此外,空气调节设备可以根据调节系数控制已开启调节维度,这种控制方式更加合理有效,从而可以进一步地提高用户体验感。
本公开的第二个目的在于提出一种空气调节设备的控制装置。
本公开的第三个目的在于提出一种电子设备。
本公开的第四个目的在于提出一种计算机可读存储介质。
本公开的第五个目的在于提出一种计算机程序产品。
为达上述目的,本公开第一方面实施例提出了一种空气调节设备的控制方法,包括以下步骤:开启空气调节设备的联动模式;在联动模式下,响应于针对空气调节设备的多个调节维度中第一调节维度的控制指令,在控制第一调节维度的情况下,确定第一调节维度的目标数值,并根据第一调节维度的目标数值和第一调节维度到第二调节维度的调节系数控制第二调节维度;其中,第二调节维度是多个调节维度中除第一调节维度以外的已开启调节维度。
根据本公开的一个实施例,根据第一调节维度的目标数值和第一调节维度到第二调节维度的调节系数控制第二调节维度,包括:根据第一调节维度的目标数值确定第二调节维度的第一待调节量;根据第二调节维度的第一待调节量和调节系数确定第二调节维度的第二待调节量;按照第二调节维度的第二待调节量调节第二调节维度。
根据本公开的一个实施例,在控制第一调节维度的情况下,确定第一调节维度的目标数值,包括:在开启第一调节维度的情况下,将第一调节维度的当前开启数值确定为第一调节维度的目标数值;或者,在调节第一调节维度的情况下,将第一调节维度的调节后数值确定为第一调节维度的目标数值。
根据本公开的一个实施例,根据第一调节维度的目标数值确定第二调节维度的第一待调节量,包括:确定第一调节维度的目标数值与第二调节维度对应的调节后数值之间的第 一映射关系;根据第一调节维度的目标数值和第一映射关系确定第二调节维度对应的调节后数值;根据第二调节维度的当前数值和第二调节维度对应的调节后数值确定第二调节维度的第一待调节量。
根据本公开的一个实施例,在控制第一调节维度的情况下,确定第一调节维度的目标数值,包括:在调节第一调节维度的情况下,将第一调节维度的调节量确定为第一调节维度的目标数值。
根据本公开的一个实施例,根据第一调节维度的目标数值确定第二调节维度的第一待调节量,包括:确定第一调节维度的调节量与第二调节维度的第一待调节量的第二映射关系;根据第一调节维度的调节量和第二映射关系确定第二调节维度的第一待调节量。
根据本公开的一个实施例,根据第二调节维度的第一待调节量和调节系数确定第二调节维度的第二待调节量,包括:若调节系数为零,则确定第二调节维度的第二待调节量为零;若调节系数大于零,则计算第二调节维度的第一待调节量和调节系数的乘积,得到第二调节维度的第二待调节量。
根据本公开的一个实施例,开启空气调节设备的联动模式,包括:响应于开机指令或联动指令,开启空气调节设备的联动模式。
根据本公开的一个实施例,方法还包括:响应于开机指令或联动指令,开启多个调节维度中的至少一维调节维度。
根据本公开的一个实施例,至少一维调节维度为以下任一项:系统默认需要开启的调节维度;在联动模式下历史开启的调节维度;根据当前环境确定需要开启的调节维度。
根据本公开的一个实施例,当响应于联动指令,空气调节设备从普通模式切换至联动模式时,至少一维调节维度为以下任一项:系统默认需要开启的调节维度;在联动模式下历史开启的调节维度;在普通模式下开启的调节维度;根据当前环境确定需要开启的调节维度;其中,普通模式是多个调节维度被独立控制的模式。
根据本公开的一个实施例,开启空气调节设备的联动模式,包括:响应于对多个调节维度中的至少一维调节维度的选择指令和联动指令,开启空气调节设备的联动模式。
根据本公开的一个实施例,方法还包括:响应于对至少一维调节维度的选择指令和联动指令,开启至少一维调节维度。
为达上述目的,本公开第二方面实施例提出了一种空气调节设备的控制装置,包括:开启模块和控制模块,开启模块用于开启空气调节设备的联动模式;控制模块用于在联动模式下,响应于针对空气调节设备的多个调节维度中第一调节维度的控制指令,在控制第一调节维度的情况下,确定第一调节维度的目标数值,并根据第一调节维度的目标数值和第一调节维度到第二调节维度的调节系数控制第二调节维度;其中,第二调节维度是多个调节维度中除第一调节维度以外的已开启调节维度。
为达上述目的,本公开第三方面实施例提出了一种电子设备,包括处理器和存储器,存储器用于存储计算机程序,处理器用于调用并运行存储器中存储的计算机程序,以执行上述空气调节设备的控制方法。
为了实现上述目的,本公开第四方面实施例提出了一种计算机可读存储介质,用于存储计算机程序,计算机程序使得计算机执行上述空气调节设备的控制方法。
为了实现上述目的,本公开第五方面实施例提出了一种计算机程序产品,包括计算机程序/指令,其特征在于,该计算机程序/指令被处理器执行时实现上述空气调节设备的控制方法。
附图说明
图1为本公开实施例提供的一种应用场景示意图;
图2为本公开实施例提供的另一种应用场景示意图;
图3为本公开实施例提供的再一种应用场景示意图;
图4为本公开实施例提供的一种空气调节设备的控制方法的流程图;
图5为本公开实施例提供的一种界面示意图;
图6为本公开实施例提供的另一种界面示意图;
图7为本公开实施例提供的再一种界面示意图;
图8为本公开实施例提供的又一种界面示意图;
图9为本公开实施例提供的一种界面示意图;
图10为本公开实施例提供的再一种界面示意图;
图11为本公开实施例提供的又一种界面示意图;
图12为本公开实施例提供的多个调节维度之间的调节系数展示示意图;
图13为本公开实施例提供的另一种空气调节设备的控制方法的流程图;
图14为本公开实施例提供的再一种空气调节设备的控制方法的流程图;
图15为本公开实施例提供的又一种空气调节设备的控制方法的流程图;
图16为本公开实施例提供的再一种空气调节设备的控制方法的流程图;
图17为本公开实施例提供的一种空气调节设备的控制装置1700的示意图;
图18是本公开实施例提供的电子设备1800的示意性框图。
具体实施方式
下面将结合本公开实施例中的附图,对本公开实施例中的技术方案进行清楚、完整地描述,显然,所描述的实施例仅仅是本公开一部分实施例,而不是全部的实施例。基于本公开中的实施例,本领域普通技术人员在没有做出创造性劳动的前提下所获得的所有其他实施例,都属于本公开保护的范围。
需要说明的是,本公开的说明书和权利要求书及上述附图中的术语“第一”、“第二”等是用于区别类似的对象,而不必用于描述特定的顺序或先后次序。应该理解这样使用的数据在适当情况下可以互换,以便这里描述的本公开的实施例能够以除了在这里图示或描述的那些以外的顺序实施。此外,术语“包括”和“具有”以及他们的任何变形,意图在于覆盖不排他的包含,例如,包含了一系列步骤或单元的过程、方法、系统、产品或服务器不必限于清楚地列出的那些步骤或单元,而是可包括没有清楚地列出的或对于这些过程、方法、产品或设备固有的其它步骤或单元。
如上所述,目前针对空气调节设备的多个调节维度只能单独分别进行控制,导致控制效率较低,从而导致用户体验感并不高。
为了解决上述技术问题,本公开实施例提供了联动控制方案,具体地,当进入联动模式之后,响应于针对空气调节设备的多个调节维度中第一调节维度的控制指令,在控制第一调节维度的情况下控制多个调节维度中除第一调节维度以外的已开启调节维度。
示例性地,本公开技术方案可以应用于如下场景,但不限于此:
图1为本公开实施例提供的一种应用场景示意图。如图1所示,该应用场景可以包括:空气调节设备110和遥控器120,其中,用户可以操作遥控器120实现对空气调节设备110的遥控。
可选地,该遥控器120可以是红外遥控器,该红外遥控器具有红外发射单元,空气调节设备110上可以具有红外接收单元,红外遥控器通过红外发单元向空气调节设备110发射红外信号,空气调节设备110通过红外接收单元接收红外信号,从而实现对空气调节设备110的遥控。
图2为本公开实施例提供的另一种应用场景示意图。如图2所示,该应用场景可以包括:空气调节设备210和终端设备220,其中,该终端设备220上可以安装有用于控制空气调节设备210的应用(Application,APP),用户可以操作该APP实现对空气调节设备210的遥控。
可选地,该终端设备可以是手机、电脑等,但不限于此。
应理解的是,图1和图2中的空气调节设备可以是挂式空气调节设备,也可以是柜式空气调节设备。
图3为本公开实施例提供的再一种应用场景示意图。如图3所示,该应用场景可以包括:空气调节设备,该空气调节设备具备触控面板,用户可以通过在触控面板上的操作来实现对空气调节设备的控制。
应理解的是,本公开还适用于对空气调节设备的语音或者手势控制场景等。
下面将对本公开技术方案进行详细阐述:
图4为本公开实施例提供的一种空气调节设备的控制方法的流程图,该方法可以由空气调节设备执行,该空气调节设备可以是柜式空气调节设备或者挂式空气调节设备等,如图4所示,该方法可以包括:
S410:开启空气调节设备的联动模式;
S420:响应于针对空气调节设备的多个调节维度中第一调节维度的控制指令,在控制第一调节维度的情况下,确定第一调节维度的目标数值;
S430:根据第一调节维度的目标数值和第一调节维度到第二调节维度的调节系数控制第二调节维度。
应理解的是,S420和S430是在联动模式下进行的。
应理解的是,联动模式指的当空气调节设备获取到针对多个调节维度中第一调节维度的控制指令时,空气调节设备在控制第一调节维度的情况下控制多个调节维度中除第一调节维度以外的已开启调节维度,该第一调节维度可以是多个调节维度中的任一个调节维度。上述第二调节维度可以是多个调节维度中除第一调节维度以外的已开启调节维度,例如,可以是多个调节维度中除第一调节维度以外的任一个已开启调节维度,或者,可以是多个调节维度中除第一调节维度以外的且优先级低于第一调节维度的已开启调节维度。
可选地,上述控制指令可以为开启指令、关闭指令或者调节指令。
可选地,调节指令用于调节对应的调节维度的大小,例如,用于调节温度、风速、湿度、新风、净化的大小等。
可选地,空气调节设备可以在联动模式下,响应于针对第一调节维度的开启指令,在第二调节维度优先级低于第一调节维度的优先级时,在控制第一调节维度的情况下控制第二调节维度发生变化。
例如,假设多个调节维度是温度、风速、湿度、净化、新风五个调节维度,这些维度调节维度均已开启,并且温度调节维度是第一调节维度,它的优先级高于其他维度调节维度,那么当用户调节温度调节维度时,空气调节设备可以联动调节风速、湿度、净化、新风这四个调节维度。
可选地,空气调节设备可以在联动模式下,响应于针对第一调节维度的调节指令,联动控制第二调节维度发生变化。
例如,假设多个调节维度是温度、风速、湿度、净化、新风五个调节维度,这些维度调节维度均已开启,当用户调节温度调节维度时,空气调节设备可以联动调节风速、湿度、净化、新风这四个调节维度的大小。
关于联动模式可以通过如下示例进行说明:例如,当用户调节温度维度时,已开启的风速调节维度也可以自动被调节。再例如,当用户开启风速调节维度时,已开启的湿度调节维度也可以自动被调节。又例如,当用户关闭湿度调节维度时,已开启的调节维度可以维持不变。
可选地,联动模式是针对多个调节维度而言的,这些调节维度可以是系统默认的,其中,这多个调节维度之间可以均具有联动关系,或者,可以部分具有联动关系,部分不具有联动关系。
可选地,多个调节维度可以包括:温度、风速、湿度、净化、新风等调节维度,但不限于此。这里的风速调节维度可以包括无风感情况。湿度调节维度可以包括加湿和除湿情况。
可选地,开启空气调节设备的联动模式包括以下若干情况,但不限于此:
情况一,空气调节设备获取开机指令,响应于开机指令,开启空气调节设备的联动模式。例如,当用户开启空气调节设备时,空气调节设备自动进入联动模式。
可选地,该开机指令可以是基于用户对遥控器或者触控面板上的开机按键的操作生成,或者,基于用户对APP上的开机图标的操作生成,又或者,该开机指令可以是语音指令、手势或者姿态指令等。
情况二,空气调节设备获取联动指令,响应于联动指令,开启空气调节设备的联动模式。例如,当用户开启空气调节设备后,用户可以点击联动图标或按键,以使空气调节设备自动进入联动模式。
可选地,该联动指令可以是基于用户对遥控器或者触控面板上的联动按键的操作生成,或者,基于用户对APP上的联动图标的操作生成,又或者,该联动指令可以是语音指令、手势或者姿态指令等。
情况三,空气调节设备获取对至少一个调节维度的选择指令和联动指令,响应于该选择指令和联动指令,开启空气调节设备的联动模式。例如,当用户开启空气调节设备后,用户可以选择温度、风速、湿度、净化、新风五个调节维度,接着用户点击联动图标或按键,以使空气调节设备进入联动模式。
可选地,在情况三中,假设用户选择了多个调节维度,那么空气调节设备可以判断多个调节维度的选择指令中选择指令的最大间隔时间是否小于预设时长,若小于预设时长,则响应于选择指令和联动指令,开启空气调节设备的联动模式。
可选地,预设时长可以是5s或者10s等,本公开对此不做限制。
应理解的是,之所以设置该预设时长,其可以降低空气调节设备的误判。例如,假设不设置预设时长,用户在t时刻选择了新风调节维度,在半小时后,用户又选择了温度、湿度、风速这三维调节维度,接着用户可以点击或者触摸联动按键或者图标等,实际上,用户期望对温度、湿度、风速这三个调节维度进行联动,但是如果不设置预设时长,空气调节设备可能会对新风、温度、湿度、风速这四个调节维度进行联动。
下面对选择指令的最大间隔时间进行示例性说明:假设用户选择了温度、湿度和风速三个调节维度,而它们对应的选择时间分别是:t,t+1s,t+2s,那么针对这三个调节维度,对应的选择指令的最大间隔时间是t+2-t=2s。
应理解的是,在情况二和三中存在两种场景,一种场景是当空气调节设备被开启后,空气调节设备默认先进入普通模式,这时如果空气调节设备获取联动指令,或者获取针对至少一个调节维度的选择指令和联动指令后,空气调节设备可以从普通模式切换至联动模式。另一种场景是当空气调节设备被开启后,空气调节设备不进入任何模式,这种模式可以被称为空闲模式,或者,这种状态可以被称为空闲状态,当空气调节设备获取到联动指令,或者获取到针对至少一个调节维度的选择指令和联动指令后,那么空气调节设备可以进入联动模式。
应理解的是,普通模式也可以被称为非联动模式,指的是多个调节维度被独立控制的模式,即当用户控制任一个调节维度时,其他调节维度不被联动控制。
应理解的是,联动指令用于开启空气调节设备的联动模式。
当空气调节设备进入联动模式之后,空气调节设备将会开启至少一个调节维度,下面分别针对上述开启联动模式的三种情况下所开启的至少一个调节维度进行说明:
可选地,在上述情况一中,或者,在上述情况二中当空气调节设备在开机后直接进入联动模式时,空气调节设备所开启的至少一个调节维度可以是以下任一项,但不限于此:系统默认需要开启的调节维度;在联动模式下历史开启的调节维度;根据当前环境确定需要开启的调节维度。
例如,系统默认开启温度、湿度、风速、净化、新风这五个调节维度,基于此,当空气调节设备获取到开机指令或者联动指令后,可以自动开启这五个调节维度。
例如,系统默认开启温度和风速这两个调节维度,基于此,当空气调节设备获取到开机指令或者联动指令后,可以自动开启这两个调节维度。
例如,假设用户最近一次在联动模式下开启的调节维度是温度、湿度、风速这三个调节维度,基于此,当空气调节设备获取到开机指令或者联动指令后,可以自动开启这三个调节维度。
例如,空气调节设备可以采集当前环境数据,如温度、湿度、污染指数等,进一步地,空气调节设备可以根据这些当前环境数据确定需要开启的调节维度,基于此,当空气调节设备获取到开机指令或联动指令后,可以自动开启这些需要开启的调节维度。
可选地,当空气调节设备未被使用过时,当空气调节设备获取到开机指令或联动指令时,空气调节设备可以开启系统默认需要开启的调节维度或者开启根据当前环境确定需要开启的调节维度。当空气调节设备已被使用过时,当空气调节设备获取到开机指令或联动指令时,空气调节设备可以开启系统默认需要开启的调节维度,或者开启在联动模式下历史开启的调节维度,又或者开启根据当前环境确定需要开启的调节维度。
可选地,在上述情况二中,当空气调节设备从普通模式切换至联动模式时,空气调节设备所开启的至少一个调节维度可以是以下任一项,但不限于此:系统默认需要开启的调节维度;在联动模式下历史开启的调节维度;在普通模式下开启的调节维度;根据当前环境确定需要开启的调节维度。
例如,假设在空气调节设备启动后,其先进入普通模式,在普通模式下假设用户开启了温度和风速两个调节维度,这时当空气调节设备获取到联动指令后,可以自动开启温度和风速两个调节维度。
可选地,在上述情况三中,空气调节设备可以开启基于用户所选择的至少一个调节维度。
例如,用户可以通过遥控器、APP或者触控面板选择至少一维调节维度,例如,选择对温度、风速这两维调节维度,接着用户可以点击或者触摸联动按键或者图标等,从而可以开启这两维调节维度。
可选地,空气调节设备可以推送第一提示信息,以向用户提示空气调节设备已进入联动模式。
应理解的是,上述第一提示信息用于向用户提示所述空气调节设备已进入所述联动模式。
可选地,第一提示信息为以下任一项,但不限于此:联动模式对应的指示灯点亮;联动模式对应的指示灯常亮第一预设时长;联动模式对应的指示灯呈现第一预设颜色;联动模式对应的指示灯呈现第一预设颜色且常亮第一预设时长;联动模式对应的指示灯按照第一预设模式闪烁、语音信息。
可选地,联动模式对应的指示灯可以设置在柜机触控面板中或者挂机显示面板中。
可选地,联动模式对应的指示灯可以是一个或多个。
可选地,第一预设时长可以是10分钟、30分钟等。
可选地,第一预设颜色可以是蓝色、绿色或者红色等。
可选地,第一预设模式闪烁可以是每间隔N秒闪烁一次,N为正整数,或者,相邻两次闪烁间隔时间分别是1s,2s,1s,2s依次循环等。
例如,如图5所示,在该界面中显示联动模式对应的图标,该图标表示联动模式对应的指示灯被点亮,代表联动模式已被开启,当然,这两个图标也可以只存在一个即可。如图6所示,在该界面中未显示联动模式对应的图标,代表联动模式已被关闭。
例如,联动模式对应的指示灯常亮10分钟,可以表示联动模式已被开启,联动模式对应的指示灯熄灭可以表示联动模式已被关闭。
例如,联动模式对应的指示灯如果呈现绿色,表示联动模式已被开启,联动模式对应的指示灯熄灭或者呈现红色可以表示联动模式已被关闭。
例如,联动模式对应的指示灯如果呈现绿色并且持续时间为10分钟,表示联动模式已开启,联动模式对应的指示灯熄灭或者呈现红色可以表示联动模式已被关闭。
例如,联动模式对应的指示灯每间隔2秒闪烁一次,表示联动模式已开启,联动模式对应的指示灯熄灭或者呈现红色可以表示联动模式已被关闭。
例如,空气调节设备也可以采用语音播报方式,向用户播报:“联动模式已开启”表示联动模式已开启。
为了便于用户区分哪些调节维度处于开启状态,哪些调节维度处于关闭状态,在本公 开实施例中,空气调节设备可以针对多个调节维度分别推送第三提示信息或第四提示信息,第三提示信息用于向用户提示对应的调节维度处于开启状态,第四提示信息用于向用户提示对应的调节维度处于关闭状态。
可选地,对于多个调节维度中的任一个调节维度,它对应的第三提示信息可以为以下任一项,但不限于此:该调节维度对应的指示灯呈现第三预设颜色;该调节维度对应的指示灯呈现第三预设颜色且常亮第三预设时长;该调节维度对应的指示灯按照第三预设模式闪烁。
可选地,该调节维度对应的指示灯可以设置在柜机触控面板中或者挂机显示面板中。
可选地,该调节维度对应的指示灯可以是一个或多个。
可选地,第三预设时长可以是1s或者2s等。
可选地,第三预设颜色可以是白色、蓝色、绿色或者红色等。
可选地,第三预设模式闪烁可以是每间隔P秒闪烁一次,P为正整数,或者,相邻两次闪烁间隔时间分别是2s,1s,2s,1s依次循环等。
可选地,对于多个调节维度中的任一个调节维度,它对应的第四提示信息为以下任一项,但不限于此:该调节维度对应的指示灯熄灭;该调节维度对应的指示灯呈现第四预设颜色。
可选地,第四预设颜色可以是红色、紫色等。
例如,如图5所示,条纹框表示指示灯呈现白色,代表对应的调节维度处于开启状态,空白框表示指示灯熄灭,代表对应的调节维度处于关闭状态。由此可知,图5所显示的结果是当前温度和风速调节维度处于开启状态,而湿度、净化和新风调节维度处于关闭状态。
可选地,为了便于用户获知多个调节维度各自的进度,针对多个调节维度中的任一个调节维度,在该调节维度处于开启状态时,空气调节设备还可以显示该调节维度的当前进度。
例如,如图7所示,条纹框表示指示灯呈现白色,代表对应的调节维度处于开启状态,并且该条纹框的长度表示调节维度的当前进度。
应理解的是,在图7中是通过同一个指示灯同时指示一个调节维度的开启/关闭状态以及当前进度。实际上,也可以通过不同指示灯指示一个调节维度的开启/关闭状态以及当前进度。
例如,如图8所示,条纹框表示指示灯呈现白色,代表对应的调节维度处于开启状态,而阴影高度表示调节维度的当前进度。
应理解的是,图8中用条纹框代表的指示灯指示调节维度的开启/关闭状态,用阴影部分代表的指示灯指示调节维度的当前进度。实际上,也可以用阴影部分代表的指示灯指示调节维度的开启/关闭状态,用条纹框代表的指示灯指示调节维度的当前进度。或者,这两个指示灯都可以同时指示调节维度的开启/关闭状态以及当前进度。
应理解的是,在本公开实施例中,针对联动模式,可以将上述第一调节维度称为主调节维度,可以将第二调节维度称为辅调节维度。
例如,假设用户通过遥控器、APP或触控面板控制温度调节维度,那么该温度调节维度可以被称为主调节维度。而基于对温度调节维度的控制,空气调节设备联动控制的已开启的风速、湿度、新风、净化调节维度均可以被称为第二调节维度。
为了使得用户可以直观的感受自己所控制的调节维度,在本公开实施例中,空气调节设备可以针对第一调节维度推送第二提示信息,以向用户提示第一调节维度为主调节维度。
可选地,第二提示信息为以下任一项,但不限于此:第一调节维度对应的指示灯呈现第二预设颜色;第一调节维度对应的指示灯呈现第二预设颜色且常亮第二预设时长;第一调节维度对应的指示灯按照第二预设模式闪烁。
可选地,第一调节维度对应的指示灯可以设置在柜机触控面板中或者挂机显示面板中。
可选地,第一调节维度对应的指示灯可以是一个或多个。
可选地,第二预设时长可以是3s或者5s等。
可选地,第二预设颜色可以是蓝色、绿色或者红色等。
可选地,第二预设模式闪烁可以是每间隔M秒闪烁一次,M为正整数,或者,相邻两次闪烁间隔时间分别是1s,3s,1s,3s依次循环等。
例如,如图9所示,假设温度调节维度是主调节维度,当用户当前正在控制该调节维度时,它对应的指示灯可以呈现蓝色并且持续1s,图9中用黑点框表示指示灯呈现蓝色。
可选地,空气调节设备还可以响应于控制指令,显示第一调节维度的控制进度。
例如,如图10所示,假设温度调节维度是主调节维度,当用户当前正在控制该调节维度时,它对应的指示灯可以呈现蓝色并且持续1s,图10中用黑点框表示指示灯呈现蓝色,并且该黑点框的长度变化表示温度调节维度的控制进度。
例如,如图11所示,假设温度调节维度是主调节维度,当用户当前正在控制该调节维度时,它对应的指示灯可以呈现蓝色并且持续1s,图11中用黑点框表示指示灯呈现蓝色,并且阴影部分的高度变化表示温度调节维度的控制进度。
应理解的是,图11中用黑点框表示温度调节维度为主调节维度,用阴影部分表示温度调节维度的控制进度。实际上,也可以用阴影部分表示温度调节维度为主调节维度,用条纹框的长度变化表示温度调节维度的控制进度。或者,这两个部分都可以同时指示温度调节维度为主调节维度以及温度调节维度的控制进度。
应理解的是,第一调节维度的目标数值用于确定第二调节维度的第一待调节量。
应理解的是,考虑到多个调节维度具有各自的优先级,第一调节维度的优先级可以决定第一调节维度到第二调节维度的调节系数,第一调节维度的优先级越高,它到第二调节维度的调节系数越大,相反,第一调节维度的优先级越低,它到第二调节维度的调节系数越小。
例如,假设温度的优先级相对于风速、湿度的优先级更高,湿度和风速的优先级相同,基于此,如图12所示,从温度调节维度到湿度调节维度的调节系数可以是1,从湿度调节维度到温度调节维度的调节系数可以是0.5,从温度调节维度到风速调节维度的调节系数可以是1,从风速调节维度到温度调节维度的调节系数可以是0.5,从湿度调节维度到风速调节维度的调节系数可以是0.5,从风速调节维度到湿度调节维度的调节系数也可以是0.5。
可选地,多个调节维度的优先级可以是空气调节设备出厂时设置好的,或者,用户可以通过遥控器、APP或者触控面板设置这些调节维度的优先级,本公开对此不做限制。
应理解的是,上述调节系数和第一待调节量用于确定第二调节维度的第二待调节量,最终空气调节设备可以按照该第二待调节量控制第二调节维度。
在本公开实施例中,空气调节设备可以开启空气调节设备的联动模式;在联动模式下,响应于针对空气调节设备的多个调节维度中第一调节维度的控制指令,在控制第一调节维度的情况下控制多个调节维度中除第一调节维度以外的已开启调节维度。使得用户无需单独再控制其他调节维度,这种联动控制方式可以提高控制效率,从而可以提高用户体验感。此外,空气调节设备可以根据调节系数控制第二调节维度,这种控制方式更加合理有效,从而可以进一步地提高用户体验感。
进一步地,空气调节设备还可以推送第一提示信息,以向用户提示空气调节设备已进入联动模式,也可以提高用户体验感。空气调节设备还可以针对多个调节维度分别推送第三提示信息或第四提示信息,以便用户区分哪些调节维度处于开启状态,哪些调节维度处于关闭状态,从而可以提高用户体验感。空气调节设备还可以展示每个调节维度的当前进度,也可以提高用户体验感。空气调节设备还可以针对主调节维度推送第二提示信息,以使用户获知主调节维度是哪个,从而可以进一步地提高用户体验感。
下面将对空气调节设备的控制方法,进行进一步地详细说明:
如图13所示,上述S430可以包括:
S1310:根据第一调节维度的目标数值确定第二调节维度的第一待调节量;
S1320:根据第二调节维度的第一待调节量和调节系数确定第二调节维度的第二待调节量;
S1330:按照第二调节维度的第二待调节量调节第二调节维度。
在一种可实现方式中,在开启第一调节维度的情况下,也就是说,上述控制指令是开 启指令,这种情况下,第一调节维度的目标数值可以是第一调节维度的当前开启数值。例如,当开启温度调节维度之后,温度当前数值是25度,那么这里的目标数值是25度。在调第一调节维度的情况下,第一调节维度的目标数值可以是第一调节维度的调节后数值。例如,当用户将温度从25度调节至22度时,那么这里的目标数值是22度。基于此,如图14所示,上述S1310可以包括:
S1410:确定第一调节维度的目标数值与第二调节维度对应的调节后数值之间的第一映射关系;
S1420:根据第一调节维度的目标数值和第一映射关系确定第二调节维度对应的调节后数值;
S1430:根据第二调节维度的当前数值和第二调节维度对应的调节后数值确定第二调节维度的第一待调节量。
例如,假设第一调节维度是温度调节维度,第二调节维度是风速调节维度,调节后的温度是25度,而25度对应的风速应该是1档,如果空气调节设备当前的风速就是3档,那么空气调节设备可以将风速降低2档,这里的降低2档就是风速的第一待调节量。
在另一种可实现方式中,在调节第一调节维度的情况下,即在上述控制指令是调节指令的情况下,第一调节维度的目标数值可以是第一调节维度的调节量。例如,假设第一调节维度是温度调节维度,第二调节维度是风速调节维度,当用户将温度从25度调节至22度时,空气调节设备确定温度的调节量是-3度,这里的-3度是温度调节维度的目标数值。基于此,如图15所示,上述S1310可以包括:
S1510:确定第一调节维度的调节量与第二调节维度的第一待调节量的第二映射关系;
S1520:根据第一调节维度的调节量和第二映射关系确定第二调节维度的第一待调节量。
例如,假设第一调节维度是温度调节维度,第二调节维度是风速调节维度,当用户将温度从25度调节至22度时,空气调节设备确定温度的调节量是-3度。假设-3度对应的风速调节量是升1档风速,那么这里的风速升1档就是风速调节维度对应的第一待调节量。
应理解的是,对于不同的调节维度,其调节粒度不尽相同,例如,温度可以按照摄氏度一度一度的调节,甚至调节粒度可以是0.5度,但是风速、湿度、新风和净化均可以按照档位一档一档的调节,因此,第一调节维度的调节量与第二调节维度的第一待调节量的映射关系之间可以是温度调节量区间与档位调节量之间的对应关系,例如,当温度调节量在-10度以下,风速调节量是提升3档,当温度调节量在-10度至-5度之间,风速调节量是提升2档,当温度调节量在-5度至-1度之间,风速调节量是提升1档,当温度调节量在1度至5度之间,风速调节量是降低1档,当温度调节量在5度至10度之间,风速调节量是降低2档,当温度的调节度在10度以上,风速调节量是降低3档。或者,第一调节维度的调节量与第二调节维度的第一待调节量的映射关系之间可以是档位调节量与档位调节量之间的映射关系,例如,当风速提升1档时,湿度也被联动提升1档,当风速提升2档时,湿度也被联动提升2档。
应理解的是,如果第一调节维度是风速、湿度、净化或新风,第二调节维度是温度,由于温度是连续数值,那么当空气调节设备确定了第一调节维度的调节量后,按照第一调节维度的调节量与第二调节维度的温度调节量区间的对应关系,确定出来的是温度调节量区间,这时空气调节设备可以按照一定的预设规则在温度调节量区间中选择一个温度调节量,例如,选择该区间中的最大值、最小值或者中间值等,本公开对此不做限制。
可选地,在上述两种可实现方式中,当空气调节设备获取到第一待调节量和调节系数之后,若该调节系数为零,则当空气调节设备可以确定第二调节维度的第二待调节量为零;若该调节系数大于零,则计算第二调节维度的第一待调节量和调节系数的乘积,得到第二调节维度的第二待调节量。
应理解的是,假设上述多个调节模式之间均具有联动关系,那么从多个调节模式中的任一个调节模式到其他任一个调节模式的调节系数大于零。假设上述多个调节模式包括具有联动关系和不具有联动关系的调节模式,对于具有联动关系的两个调节模式,它们之间 的调节系数大于零,对于不具有联动关系的两个调节模式,它们之间的调节系数等于零。
例如,假设温度调节维度与风速调节维度之间具有联动关系,从温度调节温度到风速调节维度的调节系数为1,假设用户将温度从25度调节至23度,该23度对应的风速数值是1档,假设当前风速档位是2档,可以确定需要风速的第一待调节量是降低1档,进一步地,空气调节设备可以计算第一待调节量与从温度调节温度到风速调节维度的调节系数的乘积,得到的第二待调节量是降低1档。假设风速和净化之间不具有联动关系,在这种情况下,风速调节维度到净化调节维度的调节系数是0,基于此,当用户调节风速时,净化调节维度可以保持不变。
考虑到第二待调节量可能会超出第二调节维度的最大可调节量,因此,空气调节设备可以通过如下方式调节第二调节维度,但不限于此:
可选地,若第二调节维度的第二待调节量小于或等于第二调节维度的最大可调节量,则空气调节设备可以将第二调节维度调节第二待调节量,若第二调节维度的第二待调节量大于第二调节维度的最大可调节量,则将第二调节维度调节至最大可调节量即可。或者,如果确定的第二调节维度的第二待调节量大于第二调节维度的最大可调节量,则按照第二调节维度的最大可调节量调节第二调节维度,并继续循环至第二调节维度的最小值开始调节,直到调节量达到基于该映射关系确定的第二待调节量为止。
例如,由于每个调节维度都有最高和最低数值的限制,例如,假设风速最高5档,并且当前风速处于3档位置,那么如果按照上述映射关系假设需要将风速再提升3档,显然已经超出风速最高数值,这时可以提升至5档即可,或者,风速调节是一个循环调节过程,当提升至5档后,可以继续再进入1档。
在本公开实施例中,空气调节设备根据第一调节维度的目标数值的不同情况,得到第二调节维度的第一待调节量,进一步地,若第一调节维度到第二调节维度的调节系数为零,则第二调节维度的第二待调节量为零;若第一调节维度到第二调节维度的调节系数大于零,则计算第二调节维度的第一待调节量和调节系数的乘积,可以得到第二调节维度的第二待调节量。基于此,可以按照第二待调节量调节第二调节维度。这种根据调节系数控制第二调节维度的方式更加合理有效,从而可以进一步地提高用户体验感。
图16为本公开实施例提供的再一种空气调节设备的控制方法的流程图,如图16所示,在图4的基础上,S430之后还可以包括:
S440:获取模式切换指令;
S450:响应于模式切换指令,从联动模式切换至普通模式。
可选地,模式切换指令可以是基于对联动模式的关闭操作生成的,或者,模式切换指令可以是基于对普通模式的开启指令生成的,又或者,模式切换指令是基于对模式切换标识或按键的点击或触摸操作生成的,该模式切换标识或按键可以设置在遥控器或者APP或者触控面板上。
应理解的是,当空气调节设备切换至普通模式之后,用户只能单独控制每一个调节维度,例如,当用户调节温度时,其他风速、新风和净化调节维度均不会被联动控制。
可选地,当空气调节设备切换至普通模式之后,还可以再次切换至联动模式,进入联动模式之后,空气调节设备可以按照本公开提供的控制方法对多个调节维度进行控制。
在本公开实施例中,空气调节设备可以灵活地进行联动模式与普通模式之间的切换,从而可以提高用户体验感。
下面可以通过若干示例对本公开提供的控制方法进行示例性阐述:
示例1,用户开启空气调节设备,这时空气调节设备自动开启联动模式,并默认开启温度和风速两个调节维度,空气调节设备可以向用户提示温度和风速两个调节维度处于开启状态,并向用户提示湿度、净化和新风处于关闭状态,还可以显示温度和风速这两个调节维度的当前进度。当用户调节温度时,空气调节设备可以依据于温度的变化以及温度至风速的调节系数来调节风速,并且可以显示温度和风速的进度变化,还可以提示温度调节维度是主调节维度。进一步地,当用户开启湿度时,假设温度优先级高于湿度优先级,湿度优先级高于风速优先级,这时空气调节设备可以根据湿度到风速的调节系数来调节风速变 化,还可以显示风速的进度变化。
示例2,用户开启空气调节设备,这时空气调节设备自动开启联动模式,并确定最近一次采用联动模式的是温度、风速、湿度、新风这四个调节维度,空气调节设备可以向用户提示这四个调节维度处于开启状态以及净化处于关闭状态,还可以显示这四个调节维度的当前进度。当用户调节温度时,空气调节设备可以依据于温度的变化以及温度至风速的调节系数来调节风速,类似的方法空气调节设备可以调节湿度、新风这两个调节维度,并且可以显示这四个调节维度的进度变化,还可以提示温度调节维度是主调节维度。进一步地,当用户开启净化时,假设净化优先级低于其他所有调节维度,这时空气调节设备控制其他调节维度保持不变。
示例3,用户开启空气调节设备,这时空气调节设备先进入普通模式,假设在普通模式下,用户开启了温度、新风和风速,接着用户开启联动模式,则空气调节设备确定将普通模式下所开启的温度、新风和风速作为开启调节模式,空气调节设备可以向用户提示这三个调节维度处于开启状态以及净化和湿度处于关闭状态,还可以显示这三个调节维度的当前进度。当用户调节温度时,空气调节设备可以依据于温度的变化以及温度至风速的调节系数来调节风速调节维度,类似的方法可以调节新风。并且可以显示温度、风速和新风调节维度的进度变化,还可以提示温度调节维度是主调节维度。进一步地,当用户开启净化时,假设净化优先级低于其他所有调节维度,这时空气调节设备控制其他调节维度保持不变。
示例4,用户开启空气调节设备,这时用户选择了温度、风速、湿度、净化、新风五个调节维度,接着用户点击联动图标或按键,以使空气调节设备进入联动模式。空气调节设备可以向用户提示这五个调节维度处于开启状态,还可以显示这五个调节维度的当前进度。当用户调节温度时,空气调节设备可以依据于温度的变化以及温度至其他四个维度的调节系数来调节其他四个调节维度,并且可以显示这五个调节维度的进度变化,还可以提示温度调节维度是主调节维度。
图17为本公开实施例提供的一种空气调节设备的控制装置1700的示意图,该空气调节设备的控制装置1700可以包括:开启模块1710和控制模块1720,开启模块1710用于开启空气调节设备的联动模式;控制模块1720用于在联动模式下,响应于针对空气调节设备的多个调节维度中第一调节维度的控制指令,在控制第一调节维度的情况下,确定第一调节维度的目标数值,并根据第一调节维度的目标数值和第一调节维度到第二调节维度的调节系数控制第二调节维度;其中,第二调节维度是多个调节维度中除第一调节维度以外的已开启调节维度。
可选地,控制模块1720具体用于:根据第一调节维度的目标数值确定第二调节维度的第一待调节量;根据第二调节维度的第一待调节量和调节系数确定第二调节维度的第二待调节量;按照第二调节维度的第二待调节量调节第二调节维度。
可选地,控制模块1720具体用于:在开启第一调节维度的情况下,将第一调节维度的当前开启数值确定为第一调节维度的目标数值;或者,在调节第一调节维度的情况下,将第一调节维度的调节后数值确定为第一调节维度的目标数值。
可选地,控制模块1720具体用于:确定第一调节维度的目标数值与第二调节维度对应的调节后数值之间的第一映射关系;根据第一调节维度的目标数值和第一映射关系确定第二调节维度对应的调节后数值;根据第二调节维度的当前数值和第二调节维度对应的调节后数值确定第二调节维度的第一待调节量。
可选地,控制模块1720具体用于:在调节第一调节维度的情况下,将第一调节维度的调节量确定为第一调节维度的目标数值。
可选地,控制模块1720具体用于:确定第一调节维度的调节量与第二调节维度的第一待调节量的第二映射关系;根据第一调节维度的调节量和第二映射关系确定第二调节维度的第一待调节量。
可选地,控制模块1720具体用于:若调节系数为零,则确定第二调节维度的第二待调节量为零;若调节系数大于零,则计算第二调节维度的第一待调节量和调节系数的乘积, 得到第二调节维度的第二待调节量。
可选地,开启模块1710具体用于:响应于开机指令或联动指令,开启空气调节设备的联动模式。
可选地,开启模块1710还用于:响应于开机指令或联动指令,开启多个调节维度中的至少一维调节维度。
可选地,至少一维调节维度为以下任一项:
系统默认需要开启的调节维度;
在联动模式下历史开启的调节维度;
根据当前环境确定需要开启的调节维度。
可选地,当响应于联动指令,空气调节设备从普通模式切换至联动模式时,至少一维调节维度为以下任一项:
系统默认需要开启的调节维度;
在联动模式下历史开启的调节维度;
在普通模式下开启的调节维度;
根据当前环境确定需要开启的调节维度;
其中,普通模式是多个调节维度被独立控制的模式。
可选地,开启模块1710具体用于:响应于对多个调节维度中的至少一维调节维度的选择指令和联动指令,开启空气调节设备的联动模式。
可选地,开启模块1710还用于:响应于对所述至少一维调节维度的选择指令和联动指令,开启所述至少一维调节维度。
应理解的是,装置实施例与方法实施例可以相互对应,类似的描述可以参照方法实施例。为避免重复,此处不再赘述。具体地,图17所示的装置1700可以执行上述方法实施例,并且装置1700中的各个模块的前述和其它操作和/或功能分别为了实现上述各个方法中的相应流程,为了简洁,在此不再赘述。
上文中结合附图从功能模块的角度描述了本公开实施例的装置1700。应理解,该功能模块可以通过硬件形式实现,也可以通过软件形式的指令实现,还可以通过硬件和软件模块组合实现。具体地,本公开实施例中的方法实施例的各步骤可以通过处理器中的硬件的集成逻辑电路和/或软件形式的指令完成,结合本公开实施例公开的方法的步骤可以直接体现为硬件译码处理器执行完成,或者用译码处理器中的硬件及软件模块组合执行完成。可选地,软件模块可以位于随机存储器,闪存、只读存储器、可编程只读存储器、电可擦写可编程存储器、寄存器等本领域的成熟的存储介质中。该存储介质位于存储器,处理器读取存储器中的信息,结合其硬件完成上述方法实施例中的步骤。
图18是本公开实施例提供的电子设备1800的示意性框图。
如图18所示,该电子设备1800可包括:
存储器1810和处理器1820,该存储器1810用于存储计算机程序,并将该程序代码传输给该处理器1820。换言之,该处理器1820可以从存储器1810中调用并运行计算机程序,以实现本公开实施例中的方法。
例如,该处理器1820可用于根据该计算机程序中的指令执行上述方法实施例。
在本公开的一些实施例中,该处理器1820可以包括但不限于:
通用处理器、数字信号处理器(Digital Signal Processor,DSP)、专用集成电路(Application Specific Integrated Circuit,ASIC)、现场可编程门阵列(Field Programmable Gate Array,FPGA)或者其他可编程逻辑器件、分立门或者晶体管逻辑器件、分立硬件组件等等。
在本公开的一些实施例中,该存储器1810包括但不限于:
易失性存储器和/或非易失性存储器。其中,非易失性存储器可以是只读存储器(Read-Only Memory,ROM)、可编程只读存储器(Programmable ROM,PROM)、可擦除可编程只读存储器(Erasable PROM,EPROM)、电可擦除可编程只读存储器(Electrically EPROM,EEPROM)或闪存。易失性存储器可以是随机存取存储器(Random Access Memory,RAM),其用作外部高速缓存。通过示例性但不是限制性说明,许多形式的RAM可用,例 如静态随机存取存储器(Static RAM,SRAM)、动态随机存取存储器(Dynamic RAM,DRAM)、同步动态随机存取存储器(Synchronous DRAM,SDRAM)、双倍数据速率同步动态随机存取存储器(Double Data Rate SDRAM,DDR SDRAM)、增强型同步动态随机存取存储器(Enhanced SDRAM,ESDRAM)、同步连接动态随机存取存储器(synch link DRAM,SLDRAM)和直接内存总线随机存取存储器(Direct Rambus RAM,DR RAM)。
在本公开的一些实施例中,该计算机程序可以被分割成一个或多个模块,该一个或者多个模块被存储在该存储器1810中,并由该处理器1820执行,以完成本公开提供的方法。该一个或多个模块可以是能够完成特定功能的一系列计算机程序指令段,该指令段用于描述该计算机程序在该电子设备中的执行过程。
如图18所示,该电子设备还可包括:
收发器1830,该收发器1830可连接至该处理器1820或存储器1810。
其中,处理器1820可以控制该收发器1830与其他设备进行通信,具体地,可以向其他设备发送信息或数据,或接收其他设备发送的信息或数据。收发器1830可以包括发射机和接收机。收发器1830还可以进一步包括天线,天线的数量可以为一个或多个。
应当理解,该电子设备中的各个组件通过总线系统相连,其中,总线系统除包括数据总线之外,还包括电源总线、控制总线和状态信号总线。
本公开还提供了一种计算机存储介质,其上存储有计算机程序,该计算机程序被计算机执行时使得该计算机能够执行上述方法实施例的方法。或者说,本公开实施例还提供一种包含指令的计算机程序产品,该指令被计算机执行时使得计算机执行上述方法实施例的方法。
当使用软件实现时,可以全部或部分地以计算机程序产品的形式实现。该计算机程序产品包括一个或多个计算机指令。在计算机上加载和执行该计算机程序指令时,全部或部分地产生按照本公开实施例该的流程或功能。该计算机可以是通用计算机、专用计算机、计算机网络、或者其他可编程装置。该计算机指令可以存储在计算机可读存储介质中,或者从一个计算机可读存储介质向另一个计算机可读存储介质传输,例如,该计算机指令可以从一个网站站点、计算机、服务器或数据中心通过有线(例如同轴电缆、光纤、数字用户线(digital subscriber line,DSL))或无线(例如红外、无线、微波等)方式向另一个网站站点、计算机、服务器或数据中心进行传输。该计算机可读存储介质可以是计算机能够存取的任何可用介质或者是包含一个或多个可用介质集成的服务器、数据中心等数据存储设备。该可用介质可以是磁性介质(例如,软盘、硬盘、磁带)、光介质(例如数字视频光盘(digital video disc,DVD))、或者半导体介质(例如固态硬盘(solid state disk,SSD))等。
本领域普通技术人员可以意识到,结合本文中所公开的实施例描述的各示例的模块及算法步骤,能够以电子硬件、或者计算机软件和电子硬件的结合来实现。这些功能究竟以硬件还是软件方式来执行,取决于技术方案的特定应用和设计约束条件。专业技术人员可以对每个特定的应用来使用不同方法来实现所描述的功能,但是这种实现不应认为超出本公开的范围。
在本公开所提供的几个实施例中,应该理解到,所揭露的系统、装置和方法,可以通过其它的方式实现。例如,以上所描述的装置实施例仅仅是示意性的,例如,该模块的划分,仅仅为一种逻辑功能划分,实际实现时可以有另外的划分方式,例如多个模块或组件可以结合或者可以集成到另一个系统,或一些特征可以忽略,或不执行。另一点,所显示或讨论的相互之间的耦合或直接耦合或通信连接可以是通过一些接口,装置或模块的间接耦合或通信连接,可以是电性,机械或其它的形式。
作为分离部件说明的模块可以是或者也可以不是物理上分开的,作为模块显示的部件可以是或者也可以不是物理模块,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。例如,在本公开各个实施例中的各功能模块可以集成在一个处理模块中,也可以是各个模块单独物理存在,也可以两个或两个以上模块集成在一个模块中。
以上仅为本公开的具体实施方式,但本公开的保护范围并不局限于此,任何熟悉本技术 领域的技术人员在本公开揭露的技术范围内,可轻易想到变化或替换,都应涵盖在本公开的保护范围之内。因此,本公开的保护范围应以该权利要求的保护范围为准。

Claims (17)

  1. 空气调节设备的控制方法,包括:
    开启空气调节设备的联动模式;
    在所述联动模式下,响应于针对所述空气调节设备的多个调节维度中第一调节维度的控制指令,在控制所述第一调节维度的情况下,确定所述第一调节维度的目标数值,并根据所述第一调节维度的目标数值和所述第一调节维度到第二调节维度的调节系数控制所述第二调节维度;
    其中,所述第二调节维度是所述多个调节维度中除所述第一调节维度以外的已开启调节维度。
  2. 根据权利要求1所述的方法,其中,所述根据所述第一调节维度的目标数值和所述第一调节维度到第二调节维度的调节系数控制所述第二调节维度,包括:
    根据所述第一调节维度的目标数值确定所述第二调节维度的第一待调节量;
    根据所述第二调节维度的第一待调节量和所述调节系数确定所述第二调节维度的第二待调节量;
    按照所述第二调节维度的第二待调节量调节所述第二调节维度。
  3. 根据权利要求2所述的方法,其中,所述在控制所述第一调节维度的情况下,确定所述第一调节维度的目标数值,包括:
    在开启所述第一调节维度的情况下,将所述第一调节维度的当前开启数值确定为所述第一调节维度的目标数值;或者,
    在调节所述第一调节维度的情况下,将所述第一调节维度的调节后数值确定为所述第一调节维度的目标数值。
  4. 根据权利要求3所述的方法,其中,所述根据所述第一调节维度的目标数值确定所述第二调节维度的第一待调节量,包括:
    确定所述第一调节维度的目标数值与所述第二调节维度对应的调节后数值之间的第一映射关系;
    根据所述第一调节维度的目标数值和所述第一映射关系确定所述第二调节维度对应的调节后数值;
    根据所述第二调节维度的当前数值和所述第二调节维度对应的调节后数值确定所述第二调节维度的第一待调节量。
  5. 根据权利要求2所述的方法,其中,所述在控制所述第一调节维度的情况下,确定所述第一调节维度的目标数值,包括:
    在调节所述第一调节维度的情况下,将所述第一调节维度的调节量确定为所述第一调节维度的目标数值。
  6. 根据权利要求5所述的方法,其中,所述根据所述第一调节维度的目标数值确定所述第二调节维度的第一待调节量,包括:
    确定所述第一调节维度的调节量与所述第二调节维度的第一待调节量的第二映射关系;
    根据所述第一调节维度的调节量和所述第二映射关系确定所述第二调节维度的第一待调节量。
  7. 根据权利要求2-6任一项所述的方法,其中,所述根据所述第二调节维度的第一待调节量和所述调节系数确定所述第二调节维度的第二待调节量,包括:
    若所述调节系数为零,则确定所述第二调节维度的第二待调节量为零;
    若所述调节系数大于零,则计算所述第二调节维度的第一待调节量和所述调节系数的乘积,得到所述第二调节维度的第二待调节量。
  8. 根据权利要求1-6任一项所述的方法,其中,所述开启空气调节设备的联动模式, 包括:
    响应于开机指令或联动指令,开启空气调节设备的联动模式。
  9. 根据权利要求8所述的方法,其中,还包括:
    响应于所述开机指令或所述联动指令,开启所述多个调节维度中的至少一维调节维度。
  10. 根据权利要求9所述的方法,其中,所述至少一维调节维度为以下任一项:
    系统默认需要开启的调节维度;
    在所述联动模式下历史开启的调节维度;
    根据当前环境确定需要开启的调节维度。
  11. 根据权利要求9所述的方法,其中,当响应于所述联动指令,所述空气调节设备从普通模式切换至所述联动模式时,所述至少一维调节维度为以下任一项:
    系统默认需要开启的调节维度;
    在所述联动模式下历史开启的调节维度;
    在所述普通模式下开启的调节维度;
    根据当前环境确定需要开启的调节维度;
    其中,所述普通模式是所述多个调节维度被独立控制的模式。
  12. 根据权利要求1-6任一项所述的方法,其中,所述开启空气调节设备的联动模式,包括:
    响应于对所述多个调节维度中的至少一维调节维度的选择指令和联动指令,开启空气调节设备的联动模式。
  13. 根据权利要求12所述的方法,其中,还包括:
    响应于对所述至少一维调节维度的选择指令和联动指令,开启所述至少一维调节维度。
  14. 空气调节设备的控制装置,包括:
    开启模块,用于开启空气调节设备的联动模式;
    控制模块,用于在所述联动模式下,响应于针对所述空气调节设备的多个调节维度中第一调节维度的控制指令,在控制所述第一调节维度的情况下,确定所述第一调节维度的目标数值,并根据所述第一调节维度的目标数值和所述第一调节维度到第二调节维度的调节系数控制所述第二调节维度;
    其中,所述第二调节维度是所述多个调节维度中除所述第一调节维度以外的已开启调节维度。
  15. 空气调节设备,包括:
    处理器和存储器,所述存储器用于存储计算机程序,所述处理器用于调用并运行所述存储器中存储的计算机程序,以执行权利要求1至13中任一项所述的方法。
  16. 计算机可读存储介质,用于存储计算机程序,所述计算机程序使得计算机执行如权利要求1至13中任一项所述的方法。
  17. 计算机程序产品,包括计算机程序/指令,该计算机程序/指令被处理器执行时实现如权利要求1至13中任一项所述的方法。
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Citations (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JP2009145033A (ja) * 2007-12-13 2009-07-02 Shijin Kogyo Sakushinkai 空調システムで所在環境の快適性を制御する方法
CN109595756A (zh) * 2018-11-30 2019-04-09 广东美的制冷设备有限公司 空调的控制方法及空调
CN111397131A (zh) * 2020-03-30 2020-07-10 广东美的制冷设备有限公司 空气调节设备及其控制方法、装置、电子设备
CN113124551A (zh) * 2021-04-20 2021-07-16 青岛海尔空调器有限总公司 用于联动空气调节设备的方法、系统、可读存储介质及服务器
JP2021148410A (ja) * 2020-03-24 2021-09-27 株式会社富士通ゼネラル 空気調和システム及び空気調和機

Patent Citations (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JP2009145033A (ja) * 2007-12-13 2009-07-02 Shijin Kogyo Sakushinkai 空調システムで所在環境の快適性を制御する方法
CN109595756A (zh) * 2018-11-30 2019-04-09 广东美的制冷设备有限公司 空调的控制方法及空调
JP2021148410A (ja) * 2020-03-24 2021-09-27 株式会社富士通ゼネラル 空気調和システム及び空気調和機
CN111397131A (zh) * 2020-03-30 2020-07-10 广东美的制冷设备有限公司 空气调节设备及其控制方法、装置、电子设备
CN113124551A (zh) * 2021-04-20 2021-07-16 青岛海尔空调器有限总公司 用于联动空气调节设备的方法、系统、可读存储介质及服务器

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