Control methods, devices, equipment, media and procedures for air conditioning equipment
By using a linkage control method for air conditioning equipment, the problem of low efficiency in controlling multiple adjustment dimensions individually is solved, and multi-dimensional coordinated adjustment is achieved, improving user experience and control efficiency.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- FOSHAN SHUNDE MIDEA ELECTRONICS TECH CO LTD
- Filing Date
- 2022-06-10
- Publication Date
- 2026-05-26
AI Technical Summary
Existing air conditioning equipment can only control multiple adjustment dimensions such as temperature, fan speed, humidity, purification, and fresh air separately, resulting in low control efficiency and a poor user experience.
A linkage control method is proposed. When entering the linkage mode, in response to the control command of the first adjustment dimension, multiple other activated adjustment dimensions are controlled according to the target value and coefficient of the first adjustment dimension, so as to realize the linkage adjustment of multiple adjustment dimensions.
It improves the control efficiency of air conditioning equipment, enhances the user experience, and effectively adjusts multiple dimensions through linkage control, thereby improving user comfort.
Smart Images

Figure CN117249541B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of air conditioning technology, and more specifically, to a control method, apparatus, equipment, medium, and program product for air conditioning equipment. Background Technology
[0002] Currently, users can adjust various aspects of air conditioning equipment, such as temperature, fan speed, humidity, air purification, and fresh air intake, to provide a comfortable environment. However, these multiple adjustment dimensions can only be controlled individually, resulting in low control efficiency and a less than ideal user experience. Summary of the Invention
[0003] The present invention aims to at least partially solve one of the technical problems in the related art.
[0004] Therefore, the first objective of this invention is to provide a control method for an air conditioning device. Upon entering a linkage mode, in response to a control command for a first adjustment dimension among multiple adjustment dimensions of the air conditioning device, the method controls all other activated adjustment dimensions while controlling the first adjustment dimension. This improves control efficiency and, consequently, enhances the user experience. Furthermore, the air conditioning device can control the activated adjustment dimensions based on adjustment coefficients; this control method is more rational and effective, further improving the user experience.
[0005] The second objective of this invention is to provide a control device for an air conditioning system.
[0006] The third objective of this invention is to provide an electronic device.
[0007] The fourth objective of this invention is to provide a computer-readable storage medium.
[0008] The fifth objective of this invention is to provide a computer program product.
[0009] To achieve the above objectives, a first aspect of the present invention provides a control method for an air conditioning device, comprising the following steps: activating the linkage mode of the air conditioning device; in the linkage mode, in response to a control command for a first adjustment dimension among multiple adjustment dimensions of the air conditioning device, while controlling the first adjustment dimension, determining a target value for the first adjustment dimension, determining a first adjustment coefficient based on the time interval between the most recent user-initiated control of the second adjustment dimension and the current time, and controlling the second adjustment dimension based on the target value of the first adjustment dimension and the first adjustment coefficient; wherein, the second adjustment dimension is an activated adjustment dimension other than the first adjustment dimension among multiple adjustment dimensions.
[0010] According to one embodiment of the present invention, controlling a second adjustment dimension based on a target value of a first adjustment dimension and a first adjustment coefficient includes: determining a first amount to be adjusted in the second adjustment dimension based on the target value of the first adjustment dimension; determining a second amount to be adjusted in the second adjustment dimension based on the first amount to be adjusted in the second adjustment dimension and the first adjustment coefficient; and adjusting the second adjustment dimension according to the second amount to be adjusted in the second adjustment dimension.
[0011] According to one embodiment of the present invention, determining a target value of the first adjustment dimension while controlling the first adjustment dimension includes: when the first adjustment dimension is enabled, determining the current enabled value of the first adjustment dimension as the target value of the first adjustment dimension; or, when the first adjustment dimension is adjusted, determining the adjusted value of the first adjustment dimension as the target value of the first adjustment dimension.
[0012] According to one embodiment of the present invention, determining a first adjustable value of a second adjustment dimension based on a target value of a first adjustment dimension includes: determining a first mapping relationship between a target value of the first adjustment dimension and an adjusted value corresponding to the second adjustment dimension; determining an adjusted value corresponding to the second adjustment dimension based on the target value of the first adjustment dimension and the first mapping relationship; and determining a first adjustable value 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.
[0013] According to one embodiment of the present invention, determining a target value of the first adjustment dimension while controlling the first adjustment dimension includes: determining the adjustment amount of the first adjustment dimension as the target value of the first adjustment dimension while adjusting the first adjustment dimension.
[0014] According to one embodiment of the present invention, determining a first adjustable amount of a second adjustment dimension based on a target value of a first adjustment dimension includes: determining a second mapping relationship between the adjustment amount of the first adjustment dimension and the first adjustable amount of the second adjustment dimension; and determining the first adjustable amount of the second adjustment dimension based on the adjustment amount of the first adjustment dimension and the second mapping relationship.
[0015] According to one embodiment of the present invention, determining the second adjustable quantity of the second adjustment dimension based on the first adjustable quantity and the first adjustment coefficient of the second adjustment dimension includes: calculating the product of the first adjustable quantity and the first adjustment coefficient of the second adjustment dimension to obtain the second adjustable quantity of the second adjustment dimension.
[0016] According to one embodiment of the present invention, determining a second adjustable amount of a second adjustment dimension based on a first adjustable amount and a first adjustment coefficient of a second adjustment dimension includes: determining a second adjustable amount of a second adjustment dimension based on a first adjustable amount of a second adjustment dimension, a first adjustment coefficient, and a second adjustment coefficient from the first adjustment dimension to the second adjustment dimension.
[0017] According to one embodiment of the present invention, determining the second adjustable quantity of the second adjustment dimension based on the first adjustable quantity of the second adjustment dimension, the first adjustment coefficient, and the second adjustment coefficient from the first adjustment dimension to the second adjustment dimension includes: if the second adjustment coefficient is zero, then determining the second adjustable quantity of the second adjustment dimension to be zero; if the second adjustment coefficient is greater than zero, then calculating the product of the first adjustable quantity of the second adjustment dimension, the first adjustment coefficient, and the second adjustment coefficient to obtain the second adjustable quantity of the second adjustment dimension.
[0018] According to one embodiment of the present invention, determining a first adjustment coefficient based on the time interval between the most recent user-initiated control of the second adjustment dimension and the current time includes: calculating the ratio of the time interval to a preset time; and determining the smaller of the ratio and 1 as the first adjustment coefficient.
[0019] According to one embodiment of the present invention, activating the linkage mode of an air conditioning device includes: activating the linkage mode of the air conditioning device in response to a power-on command or a linkage command.
[0020] According to one embodiment of the present invention, the method further includes: in response to a power-on command or a linkage command, activating at least one of the multiple adjustment dimensions.
[0021] According to one embodiment of the present invention, at least one adjustment dimension is any one of the following: an adjustment dimension that the system needs to enable by default; an adjustment dimension that has been enabled historically in linkage mode; or an adjustment dimension that needs to be enabled based on the current environment.
[0022] According to one embodiment of the present invention, when the air conditioning device switches from normal mode to linkage mode in response to a linkage command, at least one adjustment dimension is any one of the following: an adjustment dimension that the system defaults to be enabled; an adjustment dimension that has been enabled in the linkage mode in the past; an adjustment dimension enabled in normal mode; or an adjustment dimension that needs to be enabled based on the current environment; wherein, normal mode is a mode in which multiple adjustment dimensions are controlled independently.
[0023] According to one embodiment of the present invention, activating the linkage mode of an air conditioning device includes: activating the linkage mode of the air conditioning device in response to a selection command and a linkage command for at least one of a plurality of adjustment dimensions.
[0024] According to one embodiment of the present invention, the method further includes: activating at least one adjustment dimension in response to a selection command and a linkage command for at least one adjustment dimension.
[0025] To achieve the above objectives, a second aspect of the present invention provides a control device for an air conditioning device, comprising: an activation module and a control module. The activation module is used to activate the linkage mode of the air conditioning device. The control module is used, in the linkage mode, in response to a control command for a first adjustment dimension among multiple adjustment dimensions of the air conditioning device, to determine a target value for the first adjustment dimension while controlling the first adjustment dimension, to determine a first adjustment coefficient based on the time interval between the most recent user-initiated control of the second adjustment dimension and the current time, and to control the second adjustment dimension based on the target value and the first adjustment coefficient. The second adjustment dimension is an activated adjustment dimension other than the first adjustment dimension among the multiple adjustment dimensions.
[0026] To achieve the above objectives, a third aspect of the present invention provides an electronic device, including a processor and a memory, wherein the memory is used to store a computer program, and the processor is used to call and run the computer program stored in the memory to execute the control method of the air conditioning device described above.
[0027] To achieve the above objectives, a fourth aspect of the present invention provides a computer-readable storage medium for storing a computer program that causes a computer to execute the control method of the air conditioning device described above.
[0028] To achieve the above objectives, a fifth aspect of the present invention provides a computer program product, including a computer program / instructions, characterized in that the computer program / instructions, when executed by a processor, implement the control method of the air conditioning device described above. Attached Figure Description
[0029] Figure 1 This is a schematic diagram of an application scenario provided by an embodiment of the present invention;
[0030] Figure 2 This is a schematic diagram illustrating another application scenario provided by an embodiment of the present invention;
[0031] Figure 3 This is a schematic diagram illustrating another application scenario provided by an embodiment of the present invention;
[0032] Figure 4 A flowchart illustrating a control method for an air conditioning device provided in an embodiment of the present invention;
[0033] Figure 5 A schematic diagram of an interface provided for an embodiment of the present invention;
[0034] Figure 6 This is another schematic diagram of an interface provided in an embodiment of the present invention;
[0035] Figure 7 This is another schematic diagram of an interface provided in an embodiment of the present invention;
[0036] Figure 8 This is another schematic diagram of an interface provided in an embodiment of the present invention;
[0037] Figure 9 A schematic diagram of an interface provided for an embodiment of the present invention;
[0038] Figure 10 This is another schematic diagram of an interface provided in an embodiment of the present invention;
[0039] Figure 11 This is another schematic diagram of an interface provided in an embodiment of the present invention;
[0040] Figure 12 A flowchart illustrating another control method for an air conditioning device provided in an embodiment of the present invention;
[0041] Figure 13 A flowchart illustrating another control method for an air conditioning device provided in an embodiment of the present invention;
[0042] Figure 14 A flowchart illustrating another control method for an air conditioning device provided in an embodiment of the present invention;
[0043] Figure 15 A schematic diagram illustrating the second adjustment coefficient among multiple adjustment dimensions provided in this embodiment of the invention;
[0044] Figure 16 A flowchart illustrating another control method for an air conditioning device provided in an embodiment of the present invention;
[0045] Figure 17 A flowchart illustrating another control method for an air conditioning device provided in an embodiment of the present invention;
[0046] Figure 18 A schematic diagram of a control device 1800 for an air conditioning equipment provided in an embodiment of the present invention;
[0047] Figure 19 This is a schematic block diagram of the electronic device 1900 provided in an embodiment of the present invention. Detailed Implementation
[0048] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0049] It should be noted that the terms "first," "second," etc., in the specification, claims, and accompanying drawings of this invention are used to distinguish similar objects and are not necessarily used to describe a specific order or sequence. It should be understood that such data can be interchanged where appropriate so that the embodiments of the invention described herein can be implemented in orders other than those illustrated or described herein. Furthermore, the terms "comprising" and "having," and any variations thereof, are intended to cover non-exclusive inclusion; for example, a process, method, system, product, or server that comprises a series of steps or units is not necessarily limited to those steps or units explicitly listed, but may include other steps or units not explicitly listed or inherent to such processes, methods, products, or devices.
[0050] As mentioned above, currently, the multiple adjustment dimensions of air conditioning equipment can only be controlled individually, resulting in low control efficiency and a poor user experience.
[0051] To solve the above-mentioned technical problems, the embodiments of the present invention provide a linkage control scheme. Specifically, when entering the linkage mode, in response to the control command for the first adjustment dimension among the multiple adjustment dimensions of the air conditioning device, the activated adjustment dimensions other than the first adjustment dimension among the multiple adjustment dimensions are controlled while controlling the first adjustment dimension.
[0052] For example, the technical solution of the present invention can be applied to the following scenarios, but is not limited thereto:
[0053] Figure 1 This is a schematic diagram illustrating an application scenario provided by an embodiment of the present invention. For example... Figure 1 As shown, 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 remotely control the air conditioning device 110.
[0054] Optionally, the remote control 120 can be an infrared remote control, which has an infrared transmitting unit. The air conditioning device 110 can have an infrared receiving unit. The infrared remote control transmits infrared signals to the air conditioning device 110 through the infrared transmitting unit, and the air conditioning device 110 receives the infrared signals through the infrared receiving unit, thereby realizing remote control of the air conditioning device 110.
[0055] Figure 2 This is a schematic diagram illustrating another application scenario provided by an embodiment of the present invention. For example... Figure 2 As shown, the application scenario may include an air conditioning device 210 and a terminal device 220. The terminal device 220 may have an application (APP) installed on it for controlling the air conditioning device 210. Users can operate the APP to remotely control the air conditioning device 210.
[0056] Optionally, the terminal device can be a mobile phone, computer, etc., but is not limited to these.
[0057] It should be understood that, Figure 1 and Figure 2 The air conditioning equipment can be wall-mounted or cabinet-type.
[0058] Figure 3 This is a schematic diagram illustrating another application scenario provided by an embodiment of the present invention. For example... Figure 3 As shown, this application scenario can include: an air conditioning device equipped with a touch panel, which allows users to control the air conditioning device through operations on the touch panel.
[0059] It should be understood that the present invention is also applicable to scenarios such as voice or gesture control of air conditioning equipment.
[0060] The technical solution of this invention will be described in detail below:
[0061] Figure 4 This is a flowchart illustrating a control method for an air conditioning device according to an embodiment of the present invention. This method can be executed by the air conditioning device, which can be a cabinet-type air conditioning device or a wall-mounted air conditioning device, etc. Figure 4 As shown, the method may include:
[0062] S410: Activate the linkage mode of the air conditioning equipment;
[0063] S420: In response to a control command for a first adjustment dimension among multiple adjustment dimensions of an air conditioning device, while controlling the first adjustment dimension, a target value for the first adjustment dimension is determined;
[0064] S430: Determine the first adjustment coefficient based on the time interval between the most recent user-initiated control of the second adjustment dimension and the current time;
[0065] S440: Control the second adjustment dimension based on the target value of the first adjustment dimension and the first adjustment coefficient.
[0066] It should be understood that S420 to S430 are performed in linkage mode.
[0067] It should be understood that the linkage mode refers to the air conditioning device controlling other activated adjustment dimensions among the multiple adjustment dimensions when it receives a control command for a first adjustment dimension among multiple adjustment dimensions. The first adjustment dimension can be any one of the multiple adjustment dimensions. The aforementioned second adjustment dimension can be any activated adjustment dimension among the multiple adjustment dimensions other than the first adjustment dimension. For example, it can be any activated adjustment dimension among the multiple adjustment dimensions other than the first adjustment dimension, or it can be an activated adjustment dimension among the multiple adjustment dimensions other than the first adjustment dimension with a lower priority than the first adjustment dimension.
[0068] Optionally, the control commands mentioned above can be start commands, stop commands, or adjustment commands.
[0069] Optionally, the adjustment command is used to adjust the size of the corresponding adjustment dimension, such as adjusting the temperature, wind speed, humidity, fresh air, and purification level.
[0070] Optionally, in a linkage mode, the air conditioning device may, in response to an activation command for the first adjustment dimension, control the second adjustment dimension to change while controlling the first adjustment dimension, when the priority of the second adjustment dimension is lower than that of the first adjustment dimension.
[0071] For example, suppose there are five adjustment dimensions: temperature, wind speed, humidity, purification, and fresh air. All of these adjustment dimensions are enabled, and temperature adjustment is the first adjustment dimension, which has higher priority than the other adjustment dimensions. Then, when the user adjusts the temperature adjustment dimension, the air conditioning device can adjust the wind speed, humidity, purification, and fresh air adjustment dimensions in conjunction.
[0072] Optionally, in linkage mode, the air conditioning equipment can respond to an adjustment command for the first adjustment dimension and control the second adjustment dimension to change accordingly.
[0073] For example, suppose there are five adjustment dimensions: temperature, wind speed, humidity, purification, and fresh air. All of these adjustment dimensions are enabled. When the user adjusts the temperature adjustment dimension, the air conditioning device can adjust the wind speed, humidity, purification, and fresh air adjustment dimensions in conjunction.
[0074] The linkage mode can be illustrated with the following examples: For instance, when a user adjusts the temperature setting, the fan speed setting, which is already enabled, will also be automatically adjusted. Similarly, when a user enables the fan speed setting, the humidity setting, which is already enabled, will also be automatically adjusted. Furthermore, when a user disables the humidity setting, the enabled settings will remain unchanged.
[0075] Optionally, the linkage mode applies to multiple adjustment dimensions, which can be system defaults. These multiple adjustment dimensions can all have linkage relationships, or they can have partial linkage relationships and partial non-linkage relationships.
[0076] Optionally, the multiple adjustment dimensions may include, but are not limited to, temperature, fan speed, humidity, purification, and fresh air adjustment dimensions. The fan speed adjustment dimension here may include situations where there is no wind. The humidity adjustment dimension may include humidification and dehumidification.
[0077] Optionally, activating the linkage mode of the air conditioning equipment includes, but is not limited to, the following situations:
[0078] Scenario 1: The air conditioning unit receives a power-on command and, in response, activates its linkage mode. For example, when the user turns on the air conditioning unit, it automatically enters linkage mode.
[0079] Optionally, the power-on command can be generated based on the user's operation of the power 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 command can be a voice command, gesture or posture command, etc.
[0080] Scenario 2: The air conditioning unit receives a linkage command and, in response, activates its linkage mode. For example, after a user turns on the air conditioning unit, the user can click the linkage icon or button to automatically put the air conditioning unit into linkage mode.
[0081] Optionally, the linkage command 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 command can be a voice command, gesture or posture command, etc.
[0082] Scenario 3: The air conditioning device receives a selection command and a linkage command for at least one adjustment dimension. In response to these commands, the air conditioning device activates its linkage mode. For example, after a user turns on the air conditioning device, they can select five adjustment dimensions: temperature, fan speed, humidity, purification, and fresh air. The user then clicks the linkage icon or button to put the air conditioning device into linkage mode.
[0083] Optionally, in scenario three, assuming the user selects multiple adjustment dimensions, the air conditioning device can determine whether the maximum interval between the selection instructions for the multiple adjustment dimensions is less than a preset duration. If it is less than the preset duration, the air conditioning device will activate its linkage mode in response to the selection instructions and linkage instructions.
[0084] Optionally, the preset duration can be 5 seconds or 10 seconds, etc., and the present invention does not limit it.
[0085] It should be understood that the reason for setting this preset duration is to reduce misjudgments by the air conditioning device. For example, suppose there is no preset duration, and the user selects the fresh air adjustment dimension at time t, and half an hour later, the user selects the temperature, humidity, and fan speed adjustment dimensions. Then the user can click or touch the linkage button or icon, etc. In fact, the user expects the temperature, humidity, and fan speed adjustment dimensions to be linked. However, without a preset duration, the air conditioning device may link all four adjustment dimensions (fresh air, temperature, humidity, and fan speed).
[0086] The following example illustrates the maximum interval for selection commands: Suppose a user selects three adjustment dimensions: temperature, humidity, and wind speed, and their corresponding selection times are t, t+1s, and t+2s, respectively. Then, the maximum interval for selection commands for these three adjustment dimensions is t+2-t=2s.
[0087] It should be understood that there are two scenarios in situations two and three. In one scenario, when the air conditioning unit is turned on, it defaults to normal mode. If it receives a linkage command, or a selection command and linkage command for at least one adjustment dimension, it can switch from normal mode to linkage mode. In the other scenario, when the air conditioning unit is turned on, it does not enter any mode; this mode can be called idle mode, or this state can be called idle state. When the air conditioning unit receives a linkage command, or a selection command and linkage command for at least one adjustment dimension, it can enter linkage mode.
[0088] It should be understood that the normal mode can also be called the non-linked mode, which refers to a mode in which multiple adjustment dimensions are controlled independently. That is, when the user controls any one adjustment dimension, the other adjustment dimensions are not controlled in conjunction.
[0089] It should be understood that the linkage command is used to activate the linkage mode of the air conditioning equipment.
[0090] When an air conditioning unit enters the linkage mode, it will activate at least one adjustment dimension. The following explains the activation of at least one adjustment dimension in the three scenarios described above when the linkage mode is activated:
[0091] Optionally, in Case 1 above, or in Case 2 above, when the air conditioning unit directly enters the linkage mode after being turned on, the at least one adjustment dimension activated by the air conditioning unit can be any of the following, but not limited to: the adjustment dimension that the system defaults to activating; the adjustment dimension that has been historically activated in the linkage mode; or the adjustment dimension that needs to be activated based on the current environment.
[0092] For example, the system defaults to enabling five adjustment dimensions: temperature, humidity, fan speed, purification, and fresh air. Based on this, when the air conditioning device receives a power-on command or linkage command, it can automatically enable these five adjustment dimensions.
[0093] For example, the system defaults to enabling the temperature and fan speed adjustment dimensions. Based on this, when the air conditioning device receives a power-on command or linkage command, it can automatically enable these two adjustment dimensions.
[0094] For example, suppose the user last activated the three adjustment dimensions of temperature, humidity, and fan speed in the linkage mode. Based on this, when the air conditioning device receives the power-on command or linkage command, it can automatically activate these three adjustment dimensions.
[0095] For example, air conditioning equipment can collect current environmental data, such as temperature, humidity, and pollution index. Furthermore, the air conditioning equipment can determine the adjustment dimensions that need to be activated based on this current environmental data. Based on this, when the air conditioning equipment receives a power-on command or linkage command, it can automatically activate these adjustment dimensions that need to be activated.
[0096] Optionally, when the air conditioning unit has not been used, upon receiving a power-on command or linkage command, the air conditioning unit can activate the system's default adjustment dimension or an adjustment dimension determined based on the current environment. When the air conditioning unit has been used, upon receiving a power-on command or linkage command, the air conditioning unit can activate the system's default adjustment dimension, a previously activated adjustment dimension in linkage mode, or an adjustment dimension determined based on the current environment.
[0097] Optionally, in the above-mentioned second scenario, when the air conditioning device switches from normal mode to linkage mode, the at least one adjustment dimension activated by the air conditioning device can be any of the following, but not limited to: the adjustment dimension that the system defaults to activating; the adjustment dimension that was historically activated in linkage mode; the adjustment dimension activated in normal mode; or the adjustment dimension that needs to be activated based on the current environment.
[0098] For example, suppose that after the air conditioning equipment is turned on, it first enters the normal mode. In the normal mode, suppose the user turns on both the temperature and fan speed. When the air conditioning equipment receives the linkage command, it can automatically turn on both the temperature and fan speed.
[0099] Optionally, in case three above, the air conditioning device can be activated based on at least one adjustment dimension selected by the user.
[0100] For example, users can select at least one adjustment dimension via remote control, APP, or touch panel, such as temperature and fan speed. Then, users can click or touch the linked button or icon to activate these two adjustment dimensions.
[0101] Optionally, the air conditioning unit may push a first notification message to inform the user that the air conditioning unit has entered the linkage mode.
[0102] It should be understood that the aforementioned first prompt message is used to inform the user that the air conditioning device has entered the linkage mode.
[0103] Optionally, the first prompt message may be any of the following, but not limited to: the indicator light corresponding to the linkage mode is lit; the indicator light corresponding to the linkage mode is constantly lit for a first preset duration; the indicator light corresponding to the linkage mode displays a first preset color; the indicator light corresponding to the linkage mode displays a first preset color and is constantly lit for a first preset duration; the indicator light corresponding to the linkage mode flashes according to a first preset mode, and a voice message is sent.
[0104] Optionally, the indicator light corresponding to the linkage mode can be set in the cabinet touch panel or the wall-mounted display panel.
[0105] Optionally, there may be one or more indicator lights corresponding to the linkage mode.
[0106] Optionally, the first preset duration can be 10 minutes, 30 minutes, etc.
[0107] Optionally, the first preset color can be blue, green, or red, etc.
[0108] Optionally, the first preset flashing mode can be flashing once every N seconds, where N is a positive integer, or the interval between two adjacent flashes can be 1s, 2s, 1s, 2s, etc.
[0109] For example, such as Figure 5 As shown, this interface displays the icon corresponding to the linkage mode. This icon indicates that the indicator light for the linkage mode is lit, meaning that the linkage mode has been activated. Of course, only one of these two icons needs to be present. Figure 6As shown, the icon for the linkage mode is not displayed on this interface, indicating that the linkage mode has been turned off.
[0110] For example, if the indicator light corresponding to the linkage mode stays on for 10 minutes, it means that the linkage mode has been turned on; if the indicator light corresponding to the linkage mode goes out, it means that the linkage mode has been turned off.
[0111] For example, if the indicator light corresponding to the linkage mode is green, it means that the linkage mode has been turned on; if the indicator light corresponding to the linkage mode is off or red, it means that the linkage mode has been turned off.
[0112] For example, if the indicator light corresponding to the linkage mode is green and lasts for 10 minutes, it means that the linkage mode has been turned on. If the indicator light corresponding to the linkage mode is off or turns red, it means that the linkage mode has been turned off.
[0113] For example, the indicator light corresponding to the linkage mode flashes once every 2 seconds to indicate that the linkage mode has been turned on, and the indicator light corresponding to the linkage mode is off or turns red to indicate that the linkage mode has been turned off.
[0114] For example, air conditioning equipment can also use voice broadcast to announce to users: "Linkage mode is activated" indicates that the linkage mode is activated.
[0115] To help users distinguish which adjustment dimensions are on and which are off, in this embodiment of the invention, the air conditioning device can push a third or fourth prompt message for each of the multiple adjustment dimensions. The third prompt message is used to inform the user that the corresponding adjustment dimension is on, and the fourth prompt message is used to inform the user that the corresponding adjustment dimension is off.
[0116] Optionally, for any one of the multiple adjustment dimensions, the corresponding third prompt information can be any of the following, but not limited to: the indicator light corresponding to the adjustment dimension displays a third preset color; the indicator light corresponding to the adjustment dimension displays a third preset color and remains on for a third preset duration; the indicator light corresponding to the adjustment dimension flashes according to a third preset mode.
[0117] Optionally, the indicator light corresponding to this adjustment dimension can be set in the cabinet touch panel or the wall-mounted display panel.
[0118] Optionally, there may be one or more indicator lights corresponding to this adjustment dimension.
[0119] Optionally, the third preset duration can be 1 second or 2 seconds, etc.
[0120] Optionally, the third preset color can be white, blue, green, or red, etc.
[0121] Optionally, the third preset flashing mode can be flashing once every P seconds, where P is a positive integer, or the interval between two adjacent flashes can be 2s, 1s, 2s, 1s, etc.
[0122] Optionally, for any one of the multiple adjustment dimensions, the corresponding fourth prompt message is any one of the following, but not limited to: the indicator light corresponding to the adjustment dimension is off; the indicator light corresponding to the adjustment dimension displays a fourth preset color.
[0123] Optionally, the fourth preset color can be red, purple, etc.
[0124] For example, such as Figure 5 As shown, the striped box indicates that the indicator light is white, meaning the corresponding adjustment dimension is on; the blank box indicates that the indicator light is off, meaning the corresponding adjustment dimension is off. Therefore, we can conclude that... Figure 5 The results show that the current temperature and fan speed adjustment dimensions are on, while the humidity, purification, and fresh air adjustment dimensions are off.
[0125] Optionally, to facilitate users in knowing the progress of each of the multiple adjustment dimensions, the air conditioning device can also display the current progress of any one of the adjustment dimensions when that adjustment dimension is in the on state.
[0126] For example, such as Figure 7 As shown, the white stripe indicates that the corresponding adjustment dimension is on, and the length of the stripe indicates the current progress of the adjustment dimension.
[0127] It should be understood that, in Figure 7 The system uses a single indicator light to simultaneously show the on / off status and current progress of an adjustment dimension. However, different indicator lights can also be used to indicate the on / off status and current progress of an adjustment dimension.
[0128] For example, such as Figure 8 As shown, the striped frame indicates that the indicator light is white, meaning that the corresponding adjustment dimension is in the active state, while the shadow height indicates the current progress of the adjustment dimension.
[0129] It should be understood that, Figure 8 The indicator lights, represented by striped boxes, indicate the on / off status of the adjustment dimension, while the shaded areas indicate the current progress of the adjustment. Alternatively, the shaded areas could indicate the on / off status, and the striped boxes could indicate the current progress. Or, both indicators could simultaneously indicate the on / off status and the current progress.
[0130] It should be understood that, in the embodiments of the present invention, for the linkage mode, the first adjustment dimension can be referred to as the main adjustment dimension, and the second adjustment dimension can be referred to as the auxiliary adjustment dimension.
[0131] For example, if a user controls the temperature adjustment dimension via a remote control, app, or touch panel, then that temperature adjustment dimension can be called the primary adjustment dimension. Based on the control of the temperature adjustment dimension, the activated fan speed, humidity, fresh air, and purification adjustment dimensions of the air conditioning equipment can all be called secondary adjustment dimensions.
[0132] In order to allow users to intuitively feel the adjustment dimension they are controlling, in this embodiment of the invention, the air conditioning device can push a second prompt message for the first adjustment dimension, so as to remind the user that the first adjustment dimension is the main adjustment dimension.
[0133] Optionally, the second prompt message may be any of the following, but not limited to: the indicator light corresponding to the first adjustment dimension displays a second preset color; the indicator light corresponding to the first adjustment dimension displays a second preset color and remains on for a second preset duration; the indicator light corresponding to the first adjustment dimension flashes according to a second preset mode.
[0134] Optionally, the indicator light corresponding to the first adjustment dimension can be set in the cabinet touch panel or the wall-mounted display panel.
[0135] Optionally, there may be one or more indicator lights corresponding to the first adjustment dimension.
[0136] Optionally, the second preset duration can be 3 seconds or 5 seconds, etc.
[0137] Optionally, the second preset color can be blue, green, or red, etc.
[0138] Optionally, the second preset flashing mode can be flashing once every M seconds, where M is a positive integer, or the interval between two adjacent flashes can be 1s, 3s, 1s, 3s, etc.
[0139] For example, such as Figure 9 As shown, assuming temperature adjustment is the primary adjustment dimension, when the user is currently controlling this dimension, its corresponding indicator light can turn blue and remain so for 1 second. Figure 9 The indicator light is highlighted in blue by a black dot box.
[0140] Optionally, the air conditioning equipment may also respond to control commands by displaying the control progress of the first regulation dimension.
[0141] For example, such as Figure 10As shown, assuming temperature adjustment is the primary adjustment dimension, when the user is currently controlling this dimension, its corresponding indicator light can turn blue and remain so for 1 second. Figure 10 The indicator light is blue, indicated by a black dot box, and the length of the black dot box indicates the control progress of the temperature adjustment dimension.
[0142] For example, such as Figure 11 As shown, assuming temperature adjustment is the primary adjustment dimension, when the user is currently controlling this dimension, its corresponding indicator light can turn blue and remain so for 1 second. Figure 11 The indicator light is highlighted in blue by a black dot box, and the height of the shaded area indicates the progress of temperature adjustment.
[0143] It should be understood that, Figure 11 In the diagram, a black dotted box represents the primary control dimension for temperature regulation, and a shaded area represents the control progress of that dimension. Alternatively, the shaded area could represent the primary control dimension, and the length variation of the striped box could indicate the control progress. Or, both elements could simultaneously indicate whether the temperature regulation dimension is the primary control dimension or the control progress of that dimension.
[0144] It should be understood that the target value of the first adjustment dimension is used to determine the first adjustment quantity of the second adjustment dimension.
[0145] It should be understood that, considering any one of multiple adjustment dimensions, if the adjustment dimension has just been actively adjusted by the user, then if the adjustment dimension is subsequently controlled in conjunction with other controls, the user does not actually expect the adjustment amount of that adjustment dimension to be excessive. Conversely, if the adjustment dimension was actively adjusted by the user a relatively long time ago, then if the adjustment dimension is subsequently controlled in conjunction with other controls, the user actually expects that adjustment dimension to be adjusted in conjunction with other controls. Based on this, a first adjustment coefficient is introduced in this embodiment of the invention. This first adjustment coefficient can be determined based on the time interval between the most recent time when the user actively controlled the second adjustment dimension and the current time. The longer the time interval, the weaker the attenuation of the conjunction control on the second adjustment dimension, and the corresponding first adjustment coefficient gradually returns from 0 to 1, where 0 represents full attenuation and 1 represents no attenuation.
[0146] Optionally, the air conditioning device can calculate the ratio of the time interval between the most recent user-initiated control of the second adjustment dimension and the current time to a preset time; the smaller of this ratio and 1 is determined as the first adjustment coefficient.
[0147] Optionally, the preset time can be 30 minutes, 40 minutes, etc., and the present invention does not limit it.
[0148] For example, assume that the air conditioning device is turned on at the 0th minute. The user adjusts the wind speed to the 4th gear at the 6th minute, adjusts the humidity to the 4th gear at the 9th minute, adjusts the temperature from 26 degrees to 25 degrees at the 30th minute, and adjusts the temperature from 25 degrees to 24 degrees at the 39th minute. Then when the user adjusts the temperature from 26 degrees to 25 degrees at the 30th minute, the wind speed will be controlled in a linked manner. The user's most recent active adjustment of the wind speed was at the 6th minute. The time interval between the current time, which is the 30th minute, and the 6th minute is 24 minutes. Assuming the preset time is 30 minutes, then the first adjustment coefficient at this time is 24 / 30 = 0.8. Then when the user adjusts the temperature from 25 degrees to 24 degrees at the 39th minute, the wind speed will also be controlled in a linked manner. The user's most recent active adjustment of the wind speed was at the 6th minute. The time interval between the current time, which is the 39th minute, and the 6th minute is 33 minutes. Assuming the preset time is 30 minutes, then the first adjustment coefficient at this time is min{33 / 30, 1} = 1.
[0149] It should be understood that the above first adjustment coefficient and the first quantity to be adjusted are used to determine the second quantity to be adjusted in the second adjustment dimension. Ultimately, the air conditioning device can control the second adjustment dimension according to the second quantity to be adjusted.
[0150] In an embodiment of the present invention, the air conditioning device can activate the linked mode of the air conditioning device; in the linked mode, in response to a control instruction for the first adjustment dimension among multiple adjustment dimensions of the air conditioning device, when controlling the first adjustment dimension, the activated adjustment dimensions other than the first adjustment dimension among the multiple adjustment dimensions are controlled. This enables the user not to separately control other adjustment dimensions. This linked control method can improve the control efficiency, thereby improving the user experience. In addition, the air conditioning device can control the second adjustment dimension according to the first adjustment coefficient. This control method is more reasonable and effective, thereby further improving the user experience.
[0151] Furthermore, the air conditioning device can also push a first prompt message to prompt the user that the air conditioning device has entered the linked mode, which can also improve the user experience. The air conditioning device can also separately push a third prompt message or a fourth prompt message for multiple adjustment dimensions, so that the user can distinguish which adjustment dimensions are in the activated state and which adjustment dimensions are in the closed state, thereby improving the user experience. The air conditioning device can also display the current progress of each adjustment dimension, which can also improve the user experience. The air conditioning device can also push a second prompt message for the main adjustment dimension to enable the user to know which is the main adjustment dimension, thereby further improving the user experience.
[0152] Next, the control method of the air conditioning device will be further described in detail:
[0153] As Figure 12As shown, the above S440 may include:
[0154] S1210: Determine the first adjustable quantity of the second adjustment dimension based on the target value of the first adjustment dimension;
[0155] S1220: Determine the second variable to be adjusted in the second adjustment dimension based on the first variable to be adjusted and the first adjustment coefficient in the second adjustment dimension;
[0156] S1230: Adjust the second adjustment dimension according to the second adjustable quantity of the second adjustment dimension.
[0157] In one possible implementation, when the first adjustment dimension is enabled—that is, when the aforementioned control command is an enable command—the target value of the first adjustment dimension can be its currently enabled value. For example, if the temperature adjustment dimension is enabled and the current temperature is 25 degrees Celsius, then the target value here is 25 degrees Celsius. When adjusting the first adjustment dimension, the target value of the first adjustment dimension can be its adjusted value. For example, when the user adjusts the temperature from 25 degrees Celsius to 22 degrees Celsius, then the target value here is 22 degrees Celsius. Based on this, as... Figure 13 As shown, the above S1210 may include:
[0158] S1310: Determine the first mapping relationship between the target value of the first adjustment dimension and the adjusted value corresponding to the second adjustment dimension;
[0159] S1320: Determine the adjusted value corresponding to the second adjustment dimension based on the target value of the first adjustment dimension and the first mapping relationship;
[0160] S1330: Determine the first adjustment quantity 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.
[0161] For example, suppose the first adjustment dimension is the temperature adjustment dimension and the second adjustment dimension is the wind speed adjustment dimension. The adjusted temperature is 25 degrees, and the corresponding wind speed for 25 degrees should be level 1. If the current wind speed of the air conditioning device is level 3, then the air conditioning device can reduce the wind speed by 2 levels. This reduction of 2 levels is the first adjustment amount of the wind speed.
[0162] In another possible implementation, when adjusting the first adjustment dimension, i.e., when the aforementioned control command is an adjustment command, the target value of the first adjustment dimension can be the adjustment amount of the first adjustment dimension. For example, assuming the first adjustment dimension is the temperature adjustment dimension and the second adjustment dimension is the fan speed adjustment dimension, when the user adjusts the temperature from 25 degrees to 22 degrees, the air conditioning device determines that the temperature adjustment amount is -3 degrees, where -3 degrees is the target value of the temperature adjustment dimension.
[0163] Based on this, such as Figure 14 As shown, the above S1210 may include:
[0164] S1410: Determine the second mapping relationship between the regulation amount of the first regulation dimension and the first regulation amount of the second regulation dimension;
[0165] S1420: Determine the first adjustable quantity of the second adjustment dimension based on the adjustment amount of the first adjustment dimension and the second mapping relationship.
[0166] For example, suppose the first adjustment dimension is temperature adjustment and the second adjustment dimension is fan speed adjustment. When the user adjusts the temperature from 25 degrees to 22 degrees, the air conditioning device determines the temperature adjustment to be -3 degrees. If -3 degrees corresponds to an increase of one fan speed level, then this increase of one fan speed level is the first adjustable value corresponding to the fan speed adjustment dimension.
[0167] It should be understood that the granularity of adjustment varies for different adjustment dimensions. For example, temperature can be adjusted in degrees Celsius, or even in increments of 0.5 degrees. However, wind speed, humidity, fresh air intake, and purification can all be adjusted in gears. Therefore, the mapping relationship between the adjustment amount of the first adjustment dimension and the first adjustable amount of the second adjustment dimension can be a correspondence between the temperature adjustment range and the gear adjustment amount. For example, when the temperature adjustment is below -10 degrees Celsius, the wind speed adjustment is increased by 3 gears; when the temperature adjustment is between -10 and -5 degrees Celsius, the wind speed adjustment is increased by 2 gears; when the temperature adjustment is between -5 and -1 degrees Celsius, the wind speed adjustment is increased by 1 gear; when the temperature adjustment is between 1 and 5 degrees Celsius, the wind speed adjustment is decreased by 1 gear; when the temperature adjustment is between 5 and 10 degrees Celsius, the wind speed adjustment is decreased by 2 gears; and when the temperature adjustment is above 10 degrees Celsius, the wind speed adjustment is decreased by 3 gears. Alternatively, the mapping relationship between the adjustment amount of the first adjustment dimension and the first adjustment amount of the second adjustment dimension can be a mapping relationship between the gear adjustment amount and the gear adjustment amount. For example, when the wind speed is increased by 1 level, the humidity is also increased by 1 level, and when the wind speed is increased by 2 levels, the humidity is also increased by 2 levels.
[0168] It should be understood that if the first adjustment dimension is wind speed, humidity, purification, or fresh air, and the second adjustment dimension is temperature, since temperature is a continuous value, after the air conditioning device determines the adjustment amount of the first adjustment dimension, it determines the temperature adjustment range according to the correspondence between the adjustment amount of the first adjustment dimension and the temperature adjustment range of the second adjustment dimension. At this time, the air conditioning device can select a temperature adjustment amount in the temperature adjustment range according to certain preset rules, such as selecting the maximum value, minimum value, or median value in the range. This invention does not limit this.
[0169] Optionally, in the two possible implementations described above, after the air conditioning device obtains the first adjustable quantity and the first adjustment coefficient, the air conditioning device can calculate the product of the first adjustable quantity and the first adjustment coefficient in the second adjustment dimension to obtain the second adjustable quantity in the second adjustment dimension.
[0170] The control method of the air conditioning equipment provided in the embodiments of the present invention is illustrated below by way of example:
[0171] For example, suppose the air conditioner is turned on at minute 0, the user adjusts the fan speed to level 4 at minute 6, the user adjusts the humidity to level 4 at minute 9, the user adjusts the temperature from 26 degrees to 25 degrees at minute 30, and the user adjusts the temperature from 25 degrees to 24 degrees at minute 39.
[0172] When the user adjusts the temperature from 26 degrees to 25 degrees at the 30-minute mark, the fan speed will be controlled accordingly. The user last actively adjusted the fan speed at the 6-minute mark. The time interval between the current 30-minute mark and the 6-minute mark is 24 minutes. Assuming the preset time is 30 minutes, the first adjustment coefficient for the fan speed at this time is 24 / 30 = 0.8. Assuming the adjusted fan speed value for a temperature of 25 degrees should be 60, and the current fan speed value is 40, we know that the first adjustment value for the fan speed is 60 - 40 = 20. Based on this, the second adjustment value for the fan speed at this time should be 20 * 0.8 = 16. Furthermore, the actual fan speed at the 30-minute mark should be adjusted to 40 + 16 = 56.
[0173] When the user adjusts the temperature from 26 degrees to 25 degrees at the 30-minute mark, the humidity will be controlled accordingly. The user last actively adjusted the humidity at the 9-minute mark. The time interval between the current 30-minute mark and the 9-minute mark is 21 minutes. Assuming the preset time is 30 minutes, the first adjustment coefficient for the fan speed at this time is 21 / 30 = 0.7. Assuming the humidity value after adjustment should be 60 at a temperature of 25 degrees, and the current humidity value is 40, then the first amount to be adjusted for humidity is 60 - 40 = 20. Based on this, the second amount to be adjusted for humidity at this time should be 20 * 0.7 = 14. Furthermore, the humidity should actually be adjusted to 40 + 14 = 54 at the 30-minute mark.
[0174] When the user adjusts the temperature from 25 degrees to 24 degrees at the 39th minute, the fan speed will also be controlled accordingly. The user last actively adjusted the fan speed at the 6th minute. The time interval between the current 39th minute and the 6th minute is 33 minutes. Assuming the preset time is 30 minutes, the first adjustment coefficient at this time is min{33 / 30, 1} = 1. Assuming the adjusted fan speed value corresponding to a temperature of 24 degrees should be 80, and the fan speed value at the 39th minute is 56, we know that the first adjustment value of the fan speed is 80 - 56 = 24. Based on this, we can obtain the second adjustment value of the fan speed at this time as 24 * 1 = 24. Furthermore, the actual fan speed at the 39th minute should be adjusted to 56 + 24 = 80.
[0175] When the user adjusts the temperature from 25 degrees to 24 degrees at the 39th minute, the humidity will also be controlled accordingly. The user last actively adjusted the humidity at the 9th minute. The time interval between the current 39th minute and the 9th minute is 30 minutes. Assuming the preset time is 30 minutes, the first adjustment coefficient at this time is min{30 / 30, 1} = 1. Assuming the humidity value after adjustment should be 90 for a temperature of 24 degrees, and assuming the humidity value at the 39th minute is 60, we know that the first amount to be adjusted for humidity is 90 - 60 = 30. Based on this, we can obtain the second amount to be adjusted for humidity at this time as 30 * 1 = 30. Furthermore, the wind speed should actually be adjusted to 60 + 30 = 90 at the 39th minute.
[0176] Considering that the second adjustable value may exceed the maximum adjustable value of the second adjustment dimension, the air conditioning equipment can adjust the second adjustment dimension in the following ways, but is not limited to:
[0177] Optionally, if the second adjustable value of the second adjustment dimension is less than or equal to the maximum adjustable value of the second adjustment dimension, the air conditioning device can adjust the second adjustment dimension to the second adjustable value. If the second adjustable value of the second adjustment dimension is greater than the maximum adjustable value of the second adjustment dimension, the second adjustment dimension can be adjusted to the maximum adjustable value. Alternatively, if the determined second adjustable value of the second adjustment dimension is greater than the maximum adjustable value of the second adjustment dimension, the second adjustment dimension is adjusted according to the maximum adjustable value of the second adjustment dimension, and this process continues until the minimum value of the second adjustment dimension is reached, until the adjustment value reaches the second adjustable value determined based on the mapping relationship.
[0178] For example, since each adjustment dimension has a maximum and minimum value limit, for example, suppose the maximum wind speed is 5 and the current wind speed is 3. If we assume that according to the above mapping relationship and the first adjustment coefficient, we need to increase the wind speed by another 3 levels, it is obviously beyond the maximum wind speed value. In this case, we can increase it to 5 levels. Alternatively, wind speed adjustment is a cyclical adjustment process. After increasing to 5 levels, we can continue to enter 1 levels.
[0179] In this embodiment of the invention, the air conditioning device obtains a first adjustable value for a second adjustment dimension based on different target values of the first adjustment dimension. Further, the air conditioning device can calculate the product of the first adjustable value and a first adjustment coefficient to obtain a second adjustable value for the second adjustment dimension. Based on this, the second adjustment dimension can be adjusted according to the second adjustable value. This method of controlling the second adjustment dimension based on the first adjustment coefficient is more reasonable and effective, thereby further improving the user experience.
[0180] It should be understood that, considering that multiple adjustment dimensions have their own priorities, the priority of the first adjustment dimension can determine the second adjustment coefficient from the first adjustment dimension to the second adjustment dimension. The higher the priority of the first adjustment dimension, the larger its second adjustment coefficient to the second adjustment dimension; conversely, the lower the priority of the first adjustment dimension, the smaller its second adjustment coefficient to the second adjustment dimension.
[0181] For example, assuming that temperature has a higher priority than wind speed and humidity, and that humidity and wind speed have the same priority, based on this, such as Figure 15 As shown, the second adjustment coefficient from the temperature adjustment dimension to the humidity adjustment dimension can be 1, the second adjustment coefficient from the humidity adjustment dimension to the temperature adjustment dimension can be 0.5, the second adjustment coefficient from the temperature adjustment dimension to the wind speed adjustment dimension can be 1, the second adjustment coefficient from the wind speed adjustment dimension to the temperature adjustment dimension can be 0.5, the second adjustment coefficient from the humidity adjustment dimension to the wind speed adjustment dimension can be 0.5, and the second adjustment coefficient from the wind speed adjustment dimension to the humidity adjustment dimension can also be 0.5.
[0182] Optionally, the priority of multiple adjustment dimensions can be set at the factory of the air conditioning device, or the user can set the priority of these adjustment dimensions through a remote control, APP or touch panel. This invention does not limit this.
[0183] It should be understood that the first adjustment coefficient, the second adjustment coefficient, and the first adjustable quantity are used to determine the second adjustable quantity of the second adjustment dimension, and the air conditioning equipment can ultimately control the second adjustment dimension according to the second adjustable quantity.
[0184] The control methods for air conditioning equipment will be explained in further detail below:
[0185] like Figure 16 As shown, the above S1220 may include:
[0186] S1610: Determine the second variable to be adjusted in the second adjustment dimension based on the first variable to be adjusted in the second adjustment dimension, the first adjustment coefficient, and the second adjustment coefficient from the first adjustment dimension to the second adjustment dimension.
[0187] Optionally, if the second adjustment coefficient is zero, the air conditioning device determines that the second adjustable quantity of the second adjustment dimension is zero; if the second adjustment coefficient is greater than zero, the air conditioning device calculates the product of the first adjustable quantity of the second adjustment dimension, the first adjustment coefficient, and the second adjustment coefficient to obtain the second adjustable quantity of the second adjustment dimension.
[0188] It should be understood that, assuming there is a linkage between the aforementioned multiple adjustment modes, the second adjustment coefficient from any one adjustment mode to any other adjustment mode is greater than zero. Assuming the aforementioned multiple adjustment modes include those with and without linkage, for two adjustment modes with linkage, the second adjustment coefficient between them is greater than zero; for two adjustment modes without linkage, the second adjustment coefficient between them is equal to zero.
[0189] For example, suppose the air conditioner is turned on at minute 0, the user adjusts the fan speed to level 4 at minute 6, the user adjusts the humidity to level 4 at minute 9, the user adjusts the temperature from 26 degrees to 25 degrees at minute 30, and the user adjusts the temperature from 25 degrees to 24 degrees at minute 39.
[0190] When the user adjusts the temperature from 26 degrees to 25 degrees at the 30-minute mark, the fan speed will be controlled accordingly. The user last actively adjusted the fan speed at the 6-minute mark. The time interval between the current 30-minute mark and the 6-minute mark is 24 minutes. Assuming the preset time is 30 minutes, the first adjustment coefficient for the fan speed at this point is 24 / 30 = 0.8. Assuming the second adjustment coefficient for the fan speed from temperature to fan speed is 1, and assuming the adjusted fan speed value for a temperature of 25 degrees should be 60, and the current fan speed value is 40, then the first adjustment value for the fan speed is 60 - 40 = 20. Based on this, the second adjustment value for the fan speed at this point should be 20 * 0.8 * 1 = 16. Furthermore, the actual fan speed at the 30-minute mark should be adjusted to 40 + 16 = 56.
[0191] When the user adjusts the temperature from 26 degrees to 25 degrees at the 30-minute mark, the humidity will be controlled accordingly. The user last actively adjusted the humidity at the 9-minute mark. The time interval between the current 30-minute mark and the 9-minute mark is 21 minutes. Assuming the preset time is 30 minutes, the first adjustment coefficient for the fan speed is 21 / 30 = 0.7. Assuming the second adjustment coefficient for humidity is 1, and the humidity value after adjustment should be 60 for a temperature of 25 degrees, and the current humidity value is 40, then the first amount to be adjusted for humidity is 60 - 40 = 20. Based on this, the second amount to be adjusted for humidity at this time should be 20 * 0.7 * 1 = 14. Furthermore, the humidity should actually be adjusted to 40 + 14 = 54 at the 30-minute mark.
[0192] When the user adjusts the temperature from 25 degrees to 24 degrees at the 39th minute, the fan speed will also be controlled accordingly. The user last actively adjusted the fan speed at the 6th minute. The time interval between the current 39th minute and the 6th minute is 33 minutes. Assuming the preset time is 30 minutes, the first adjustment coefficient at this time is min{33 / 30, 1} = 1. Assuming the second adjustment coefficient from temperature to fan speed is 1, and assuming the adjusted fan speed value corresponding to a temperature of 24 degrees should be 80, and the fan speed value at the 39th minute is 56, we know that the first adjustment value of the fan speed is 80 - 56 = 24. Based on this, we can obtain the second adjustment value of the fan speed at this time as 24 * 1 * 1 = 24. Furthermore, the actual fan speed at the 39th minute should be adjusted to 56 + 24 = 80.
[0193] When the user adjusts the temperature from 25 degrees to 24 degrees at the 39th minute, the humidity will also be controlled accordingly. The user last actively adjusted the humidity at the 9th minute. The time interval between the current 39th minute and the 9th minute is 30 minutes. Assuming the preset time is 30 minutes, the first adjustment coefficient at this time is min{30 / 30, 1} = 1. Assuming the humidity value after adjustment should be 90 for a temperature of 24 degrees, and assuming the second adjustment coefficient from temperature to humidity is 1, and the humidity value at the 39th minute is 60, we know that the first amount to be adjusted for humidity is 90 - 60 = 30. Based on this, we can obtain the second amount to be adjusted for humidity at this time as 30 * 1 * 1 = 30. Furthermore, the fan speed should actually be adjusted to 60 + 30 = 90 at the 39th minute.
[0194] In this embodiment of the invention, the air conditioning device obtains a first adjustable value for a second adjustment dimension based on different target values of the first adjustment dimension. Further, if the second adjustment coefficient from the first adjustment dimension to the second adjustment dimension is zero, then the second adjustable value for the second adjustment dimension is zero; if the second adjustment coefficient from the first adjustment dimension to the second adjustment dimension is greater than zero, then the first adjustable value of the second adjustment dimension is calculated as the product of the first adjustment coefficient and the second adjustment coefficient to obtain the second adjustable value for the second adjustment dimension. Based on this, the second adjustment dimension can be adjusted according to the second adjustable value. This method of controlling the second adjustment dimension based on adjustment coefficients is more reasonable and effective, thereby further improving the user experience.
[0195] Figure 17 A flowchart of another control method for an air conditioning device provided in an embodiment of the present invention is shown below. Figure 17 As shown, in Figure 4 Based on this, S440 can also include:
[0196] S450: Obtain mode switching command;
[0197] S460: In response to a mode switching command, switch from linkage mode to normal mode.
[0198] Optionally, the mode switching command can be generated based on the operation of turning off the linkage mode, or the mode switching command can be generated based on the operation of turning on the normal mode, or the mode switching command can be generated based on the click or touch operation of the mode switching icon or button, which can be set on the remote control, APP or touch panel.
[0199] It should be understood that when the air conditioning equipment is switched to normal mode, the user can only control each adjustment dimension individually. For example, when the user adjusts the temperature, other adjustment dimensions such as fan speed, fresh air intake, and air purification will not be controlled in conjunction with the temperature adjustment.
[0200] Optionally, after the air conditioning device switches to normal mode, it can switch back to linkage mode. After entering linkage mode, the air conditioning device can control multiple adjustment dimensions according to the control method provided by the present invention.
[0201] In this embodiment of the invention, the air conditioning device can flexibly switch between linkage mode and normal mode, thereby improving the user experience.
[0202] The control method provided by this invention will be illustrated by several examples below:
[0203] Example 1: When a user turns on the air conditioner, the air conditioner automatically activates its linkage mode, defaulting to enabling temperature and fan speed adjustments. The air conditioner can notify the user that temperature and fan speed adjustments are enabled, while humidity, air purification, and fresh air intake are disabled. It can also display the current progress of temperature and fan speed adjustments. When the user adjusts the temperature, the air conditioner can adjust the fan speed based on the temperature change and the corresponding first adjustment coefficient and / or the temperature-to-fan speed adjustment coefficient, displaying the progress of temperature and fan speed changes and indicating that temperature adjustment is the primary adjustment dimension. Furthermore, when the user enables humidity, assuming temperature priority is higher than humidity priority, and humidity priority is higher than fan speed priority, the air conditioner can adjust the fan speed based on the corresponding first adjustment coefficient and / or the humidity-to-fan speed adjustment coefficient, also displaying the progress of fan speed changes.
[0204] Example 2: When a user turns on the air conditioner, it automatically activates the linkage mode and determines that the four most recently used linkage mode are temperature, fan speed, humidity, and fresh air. The air conditioner can notify the user that these four adjustment dimensions are on and purification is off, and can also display the current progress of these four adjustment dimensions. When the user adjusts the temperature, the air conditioner can adjust the fan speed based on the temperature change and the first adjustment coefficient corresponding to the fan speed and / or the temperature-to-fan speed first adjustment coefficient. Similarly, the air conditioner can adjust humidity and fresh air, and can display the progress of these four adjustment dimensions, and can also indicate that temperature adjustment is the primary adjustment dimension. Furthermore, when the user turns on purification, assuming purification has a lower priority than all other adjustment dimensions, the air conditioner will keep the other adjustment dimensions unchanged.
[0205] Example 3: When a user turns on the air conditioner, it first enters normal mode. In normal mode, the user sets the temperature, fresh air intake, and fan speed. Then, the user activates the linked mode. The air conditioner then determines that the temperature, fresh air intake, and fan speed set in normal mode are active. The air conditioner can notify the user that these three adjustment dimensions are active, while purification and humidity are deactivated. It can also display the current progress of these three adjustment dimensions. When the user adjusts the temperature, the air conditioner can adjust the fan speed adjustment dimension based on the temperature change and the first adjustment coefficient corresponding to the fan speed and / or the temperature-to-fan speed first adjustment coefficient. A similar method can be used to adjust the fresh air intake. The progress of the temperature, fan speed, and fresh air adjustment dimensions can be displayed, and it can also indicate that the temperature adjustment dimension is the primary adjustment dimension. Furthermore, when the user activates purification, assuming that purification has a lower priority than all other adjustment dimensions, the air conditioner keeps the other adjustment dimensions unchanged.
[0206] Example 4: A user turns on the air conditioner and selects five adjustment dimensions: temperature, fan speed, humidity, air purification, and fresh air intake. The user then clicks the linkage icon or button to put the air conditioner into linkage mode. The air conditioner can notify the user that these five adjustment dimensions are active and display their current progress. When the user adjusts the temperature, the air conditioner can adjust the fan speed based on the temperature change and the corresponding first adjustment coefficient and / or the temperature-to-fan speed first adjustment coefficient. A similar method can be used to adjust humidity, air purification, and fresh air intake, displaying the progress of these five adjustment dimensions and indicating that temperature adjustment is the primary adjustment dimension.
[0207] Figure 18 This is a schematic diagram of a control device 1800 for an air conditioning device according to an embodiment of the present invention. The control device 1800 may include an activation module 1810 and a control module 1820. The activation module 1810 is used to activate the linkage mode of the air conditioning device. The control module 1820 is used, in the linkage mode, in response to a control command for a first adjustment dimension among multiple adjustment dimensions of the air conditioning device, to determine a target value for the first adjustment dimension while controlling the first adjustment dimension, to determine a first adjustment coefficient based on the time interval between the most recent user-initiated control of the second adjustment dimension and the current time, and to control the second adjustment dimension based on the target value and the first adjustment coefficient. The second adjustment dimension is an activated adjustment dimension other than the first adjustment dimension among multiple adjustment dimensions.
[0208] Optionally, the control module 1820 is specifically used to: determine the first adjustable quantity of the second adjustment dimension based on the target value of the first adjustment dimension; determine the second adjustable quantity of the second adjustment dimension based on the first adjustable quantity of the second adjustment dimension and the first adjustment coefficient; and adjust the second adjustment dimension according to the second adjustable quantity of the second adjustment dimension.
[0209] Optionally, the control module 1820 is specifically used to: when the first adjustment dimension is enabled, determine the current enabled value of the first adjustment dimension as the target value of the first adjustment dimension; or, when the first adjustment dimension is adjusted, determine the adjusted value of the first adjustment dimension as the target value of the first adjustment dimension.
[0210] Optionally, the control module 1820 is specifically used 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; determine the adjusted value corresponding to the second adjustment dimension based on the target value of the first adjustment dimension and the first mapping relationship; and determine the first adjustment 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.
[0211] Optionally, the control module 1820 is specifically used to: determine the adjustment amount of the first adjustment dimension as the target value of the first adjustment dimension when adjusting the first adjustment dimension.
[0212] Optionally, the control module 1820 is specifically used to: determine a second mapping relationship between the adjustment amount of the first adjustment dimension and the first adjustment amount of the second adjustment dimension; and determine the first adjustment amount of the second adjustment dimension based on the adjustment amount of the first adjustment dimension and the second mapping relationship.
[0213] Optionally, the control module 1820 is specifically used to: calculate the product of the first adjustable quantity and the first adjustment coefficient of the second adjustment dimension to obtain the second adjustable quantity of the second adjustment dimension.
[0214] Optionally, the control module 1820 is specifically used to: determine the second adjustable quantity of the second adjustment dimension based on the first adjustable quantity of the second adjustment dimension, the first adjustment coefficient, and the second adjustment coefficient from the first adjustment dimension to the second adjustment dimension.
[0215] Optionally, the control module 1820 is specifically used to: if the second adjustment coefficient is zero, determine that the second adjustable quantity of the second adjustment dimension is zero; if the second adjustment coefficient is greater than zero, calculate the product of the first adjustable quantity of the second adjustment dimension, the first adjustment coefficient, and the second adjustment coefficient to obtain the second adjustable quantity of the second adjustment dimension.
[0216] Optionally, the control module 1820 is specifically used to: calculate the ratio of the time interval to the preset time; and determine the smaller of the ratio and 1 as the first adjustment coefficient.
[0217] Optionally, the activation module 1810 is also used to: activate the linkage mode of the air conditioning equipment in response to a power-on command or linkage command.
[0218] Optionally, the enabling module 1810 is also used to: enable at least one of the multiple adjustment dimensions in response to a power-on command or a linkage command.
[0219] Optionally, at least one adjustment dimension is any of the following:
[0220] The system default adjustment dimensions that need to be enabled;
[0221] Adjustment dimensions that were previously enabled in the linkage mode;
[0222] Determine the adjustment dimensions that need to be enabled based on the current environment.
[0223] Optionally, when the air conditioning unit switches from normal mode to linkage mode in response to a linkage command, at least one adjustment dimension is any of the following:
[0224] The system default adjustment dimensions that need to be enabled;
[0225] Adjustment dimensions that were previously enabled in the linkage mode;
[0226] Adjustment dimensions enabled in normal mode;
[0227] Determine the adjustment dimensions that need to be enabled based on the current environment;
[0228] The normal mode is a mode in which multiple adjustment dimensions are controlled independently.
[0229] Optionally, the activation module 1810 is also used to: activate the linkage mode of the air conditioning equipment in response to a selection command and a linkage command for at least one of the multiple adjustment dimensions.
[0230] Optionally, the enabling module 1810 is also used to: enable at least one adjustment dimension in response to a selection command and a linkage command for at least one adjustment dimension.
[0231] It should be understood that the device embodiments and method embodiments can correspond to each other, and similar descriptions can be referred to the method embodiments. To avoid repetition, further details will not be provided here. Specifically, Figure 18 The apparatus 1800 shown can execute the above-described method embodiments, and the aforementioned and other operations and / or functions of each module in the apparatus 1800 are respectively for implementing the corresponding processes in the above-described methods. For the sake of brevity, they will not be described in detail here.
[0232] The apparatus 1800 of this invention, in conjunction with the accompanying drawings, has been described above from the perspective of functional modules. It should be understood that this functional module can be implemented in hardware, in software instructions, or in a combination of hardware and software modules. Specifically, the steps of the method embodiments of this invention can be completed by integrated logic circuits in the processor's hardware and / or by software instructions. The steps of the method disclosed in this invention can be directly manifested as execution by a hardware decoding processor, or by a combination of hardware and software modules in the decoding processor. Optionally, the software module can reside in a mature storage medium in the art, such as random access memory, flash memory, read-only memory, programmable read-only memory, electrically erasable programmable memory, or registers. This storage medium is located in memory, and the processor reads information from the memory and, in conjunction with its hardware, completes the steps of the above method embodiments.
[0233] Figure 19 This is a schematic block diagram of the electronic device 1900 provided in an embodiment of the present invention.
[0234] like Figure 19 As shown, the electronic device 1900 may include:
[0235] The system includes a memory 1910 and a processor 1920. The memory 1910 stores computer programs and transfers the program code to the processor 1920. In other words, the processor 1920 can retrieve and run the computer program from the memory 1910 to implement the methods described in the embodiments of the present invention.
[0236] For example, the processor 1920 can be used to execute the above-described method embodiments according to instructions in the computer program.
[0237] In some embodiments of the present invention, the processor 1920 may include, but is not limited to:
[0238] General-purpose processors, digital signal processors (DSPs), application-specific integrated circuits (ASICs), field-programmable gate arrays (FPGAs), or other programmable logic devices, discrete gate or transistor logic devices, discrete hardware components, etc.
[0239] In some embodiments of the present invention, the memory 1910 includes, but is not limited to:
[0240] Volatile memory and / or non-volatile memory. Non-volatile memory can be read-only memory (ROM), programmable read-only memory (PROM), erasable programmable read-only memory (EPROM), electrically erasable programmable read-only memory (EEPROM), or flash memory. Volatile memory can be random access memory (RAM), which is used as an external cache. By way of example, but not limitation, many forms of RAM are available, such as Static RAM (SRAM), Dynamic RAM (DRAM), Synchronous DRAM (SDRAM), Double Data Rate SDRAM (DDR SDRAM), Enhanced Synchronous DRAM (ESDRAM), Synchronous Link DRAM (SLDRAM), and Direct Rambus RAM (DR RAM).
[0241] In some embodiments of the present invention, the computer program may be divided into one or more modules, which are stored in the memory 1910 and executed by the processor 1920 to perform the method provided by the present invention. The one or more modules may be a series of computer program instruction segments capable of performing a specific function, which describe the execution process of the computer program in the electronic device.
[0242] like Figure 19 As shown, the electronic device may also include:
[0243] Transceiver 1930, which can be connected to processor 1920 or memory 1910.
[0244] The processor 1920 can control the transceiver 1930 to communicate with other devices; specifically, it can send information or data to other devices or receive information or data sent by other devices. The transceiver 1930 may include a transmitter and a receiver. The transceiver 1930 may further include antennas, and the number of antennas may be one or more.
[0245] It should be understood that the various components in the electronic device are connected through a bus system, which includes a data bus, a power bus, a control bus, and a status signal bus.
[0246] The present invention also provides a computer storage medium storing a computer program thereon, which, when executed by a computer, enables the computer to perform the methods of the above-described method embodiments. Alternatively, embodiments of the present invention also provide a computer program product containing instructions that, when executed by a computer, cause the computer to perform the methods of the above-described method embodiments.
[0247] When implemented using software, it can be implemented entirely or partially as a computer program product. This computer program product includes one or more computer instructions. When these computer program instructions are loaded and executed on a computer, all or part of the processes or functions described in the embodiments of the present invention are generated. The computer can be a general-purpose computer, a special-purpose computer, a computer network, or other programmable device. The computer instructions can be stored in a computer-readable storage medium or transmitted from one computer-readable storage medium to another. For example, the computer instructions can be transmitted from one website, computer, server, or data center to another via wired (e.g., coaxial cable, fiber optic, digital subscriber line (DSL)) or wireless (e.g., infrared, wireless, microwave, etc.) means. The computer-readable storage medium can be any available medium accessible to a computer or a data storage device such as a server or data center that integrates one or more available media. The available medium can be a magnetic medium (e.g., floppy disk, hard disk, magnetic tape), an optical medium (e.g., digital video disc (DVD)), or a semiconductor medium (e.g., solid-state disk (SSD)).
[0248] Those skilled in the art will recognize that the modules and algorithm steps of the various examples described in conjunction with the embodiments disclosed herein can be implemented in electronic hardware, or a combination of computer software and electronic hardware. Whether these functions are implemented in hardware or software depends on the specific application and design constraints of the technical solution. Those skilled in the art can use different methods to implement the described functions for each specific application, but such implementations should not be considered beyond the scope of this invention.
[0249] In the several embodiments provided by this invention, it should be understood that the disclosed systems, apparatuses, and methods can be implemented in other ways. For example, the apparatus embodiments described above are merely illustrative; for instance, the division of modules is only a logical functional division, and in actual implementation, there may be other division methods. For example, multiple modules or components may be combined or integrated into another system, or some features may be ignored or not executed. Furthermore, the coupling or direct coupling or communication connection shown or discussed may be through some interfaces; the indirect coupling or communication connection between devices or modules may be electrical, mechanical, or other forms.
[0250] The modules described as separate components may or may not be physically separate. The components shown as modules may or may not be physical modules; that is, they may be located in one place or distributed across multiple network units. Some or all of the modules can be selected to achieve the purpose of this embodiment according to actual needs. For example, the functional modules in the various embodiments of the present invention may be integrated into one processing module, or each module may exist physically separately, or two or more modules may be integrated into one module.
[0251] The above description is merely a specific embodiment of the present invention, but the scope of protection of the present invention is not limited thereto. Any variations or substitutions that can be easily conceived by those skilled in the art within the technical scope disclosed in the present invention should be included within the scope of protection of the present invention. Therefore, the scope of protection of the present invention should be determined by the scope of the claims.
Claims
1. A control method for an air conditioning device, characterized in that, include: Activate the linkage mode of the air conditioning equipment; In the linkage mode, in response to the control command for the first adjustment dimension among multiple adjustment dimensions of the air conditioning device, while controlling the first adjustment dimension, the target value of the first adjustment dimension is determined, the first adjustment coefficient is determined based on the time interval between the most recent user-initiated control of the second adjustment dimension and the current time, and the second adjustment dimension is controlled based on the target value of the first adjustment dimension and the first adjustment coefficient. The second adjustment dimension is an enabled adjustment dimension other than the first adjustment dimension among the plurality of adjustment dimensions.
2. The method according to claim 1, characterized in that, The step of controlling the second adjustment dimension based on the target value of the first adjustment dimension and the first adjustment coefficient includes: The first adjustment value of the second adjustment dimension is determined based on the target value of the first adjustment dimension. The second adjustment quantity of the second adjustment dimension is determined based on the first adjustment quantity of the second adjustment dimension and the first adjustment coefficient; Adjust the second adjustment dimension according to the second adjustment value of the second adjustment dimension.
3. The method according to claim 2, characterized in that, Determining the target value of the first adjustment dimension while controlling the first adjustment dimension includes: When the first adjustment dimension is enabled, the current enabled value of the first adjustment dimension is determined as the target value of the first adjustment dimension; or, When adjusting the first adjustment dimension, the adjusted value of the first adjustment dimension is determined as the target value of the first adjustment dimension.
4. The method according to claim 3, characterized in that, The step of determining the first adjustment quantity of the second adjustment dimension based on the target value of the first adjustment dimension includes: Determine a first mapping relationship between the target value of the first adjustment dimension and the adjusted value corresponding to the second adjustment dimension; The adjusted value corresponding to the second adjustment dimension is determined based on the target value of the first adjustment dimension and the first mapping relationship. The first adjustment value of the second adjustment dimension is determined based on the current value of the second adjustment dimension and the adjusted value of the second adjustment dimension.
5. The method according to claim 2, characterized in that, Determining the target value of the first adjustment dimension while controlling the first adjustment dimension includes: When adjusting the first adjustment dimension, the adjustment amount of the first adjustment dimension is determined as the target value of the first adjustment dimension.
6. The method according to claim 5, characterized in that, The step of determining the first adjustment quantity of the second adjustment dimension based on the target value of the first adjustment dimension includes: Determine a second mapping relationship between the adjustment amount of the first adjustment dimension and the first adjustment amount of the second adjustment dimension; The first adjustment amount of the second adjustment dimension is determined based on the adjustment amount of the first adjustment dimension and the second mapping relationship.
7. The method according to any one of claims 2-6, characterized in that, The step of determining the second adjustable quantity of the second adjustment dimension based on the first adjustable quantity of the second adjustment dimension and the first adjustment coefficient includes: The product of the first adjustable quantity of the second adjustment dimension and the first adjustment coefficient is calculated to obtain the second adjustable quantity of the second adjustment dimension.
8. The method according to any one of claims 2-6, characterized in that, The step of determining the second adjustable quantity of the second adjustment dimension based on the first adjustable quantity of the second adjustment dimension and the first adjustment coefficient includes: The second adjustment quantity of the second adjustment dimension is determined based on the first adjustment quantity of the second adjustment dimension, the first adjustment coefficient, and the second adjustment coefficient from the first adjustment dimension to the second adjustment dimension.
9. The method according to claim 8, characterized in that, The step of determining the second adjustable quantity of the second adjustment dimension based on the first adjustable quantity of the second adjustment dimension, the first adjustment coefficient, and the second adjustment coefficient from the first adjustment dimension to the second adjustment dimension includes: If the second adjustment coefficient is zero, then the second adjustment quantity of the second adjustment dimension is determined to be zero; If the second adjustment coefficient is greater than zero, then the product of the first adjustment quantity of the second adjustment dimension, the first adjustment coefficient, and the second adjustment coefficient is calculated to obtain the second adjustment quantity of the second adjustment dimension.
10. The method according to any one of claims 1-6, characterized in that, The step of determining the first adjustment coefficient based on the time interval between the most recent user-initiated control of the second adjustment dimension and the current time includes: Calculate the ratio of the time interval to the preset time; The smaller of the ratio and 1 is determined as the first adjustment coefficient.
11. The method according to any one of claims 1-6, characterized in that, The linkage mode for activating the air conditioning equipment includes: In response to a power-on command or linkage command, activate the linkage mode of the air conditioning equipment.
12. The method according to claim 11, characterized in that, Also includes: In response to the power-on command or the linkage command, at least one of the multiple adjustment dimensions is activated.
13. The method according to claim 12, characterized in that, The at least one adjustment dimension is any one of the following: The system defaults to enabling certain adjustment dimensions; The adjustment dimensions that were historically enabled under the aforementioned linkage mode; Determine the adjustment dimensions that need to be enabled based on the current environment.
14. The method according to claim 12, characterized in that, When the air conditioning device switches from normal mode to the linkage mode in response to the linkage command, the at least one adjustment dimension is any one of the following: The system defaults to enabling certain adjustment dimensions; The adjustment dimensions that were historically enabled under the aforementioned linkage mode; The adjustment dimensions enabled in the normal mode; Determine the adjustment dimensions that need to be enabled based on the current environment; The normal mode is a mode in which the multiple adjustment dimensions are controlled independently.
15. The method according to any one of claims 1-6, characterized in that, The linkage mode for activating the air conditioning equipment includes: In response to a selection command and a linkage command for at least one of the plurality of adjustment dimensions, the linkage mode of the air conditioning equipment is activated.
16. The method according to claim 12, characterized in that, Also includes: In response to the selection command and linkage command for the at least one adjustment dimension, the at least one adjustment dimension is activated.
17. A control device for an air conditioning equipment, characterized in that, include: The activation module is used to activate the linkage mode of the air conditioning equipment. The control module is configured to, in the linkage mode, respond to a control command for a first adjustment dimension among multiple adjustment dimensions of the air conditioning device, determine a target value for the first adjustment dimension while controlling the first adjustment dimension, determine a first adjustment coefficient based on the time interval between the most recent user-initiated control of the second adjustment dimension and the current time, and control the second adjustment dimension based on the target value of the first adjustment dimension and the first adjustment coefficient. The second adjustment dimension is an enabled adjustment dimension other than the first adjustment dimension among the plurality of adjustment dimensions.
18. An air conditioning device, characterized in that, include: A processor and a memory, the memory being used to store a computer program, the processor being used to invoke and run the computer program stored in the memory to perform the method of any one of claims 1 to 16.
19. A computer-readable storage medium, characterized in that, Used to store a computer program that causes a computer to perform the method as described in any one of claims 1 to 16.
20. A computer program product comprising a computer program / instructions, characterized in that, When the computer program / instructions are executed by the processor, they implement the method as described in any one of claims 1 to 16.