Interface display method, air treatment equipment and electronic equipment

By setting up a supply air adjustment area and a supply air visualization area in the operation interface of the air treatment equipment, the problem that users find it difficult to perceive the air supply effect is solved, and higher adjustment accuracy and user experience are achieved.

CN120101272APending Publication Date: 2025-06-06DREAM INNOVATION TECH (SUZHOU) CO LTD +1
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Patent Information

Application Number
CN202510329440.X
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-03-19
Publication Date
2025-06-06

AI Technical Summary

Technical Problem

The operating interface of existing air treatment equipment is difficult for users to clearly and intuitively perceive the adjusted air supply effect, making it difficult for users to accurately set the air supply status of the equipment, reducing the accuracy of adjustment and user experience.

Method used

An interface display method is provided, including setting a air supply adjustment area and a air supply visualization area in the operation interface. The user performs a air supply adjustment operation on the equipment simulation control through the air supply adjustment area, and the corresponding air supply effect is displayed in the air supply visualization area in real time.

Benefits of technology

This allows users to clearly and intuitively perceive the adjusted air supply effect during the adjustment process, improves users' precise control over the air supply status, and enhances the accuracy of adjustment and overall user experience.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention provides an interface display method, air treatment equipment and electronic equipment. Relates to the technical field of interface display. The interface display method comprises the following steps: displaying an operation interface comprising an equipment simulation control corresponding to the air treatment equipment; wherein the operation interface comprises an air supply adjusting area and an air supply visualization area; the air supply adjusting area is used for responding to air supply adjusting operation on the equipment simulation control; the air supply visual area is used for presenting the air supply effect of the equipment simulation control; and in response to an air supply adjustment operation on the air supply adjustment area, displaying an air supply effect corresponding to the air supply adjustment operation in the air supply visualization area. According to the technical scheme, a user can visually sense the air supply effect of the equipment in the adjusting process in real time through the air supply visual area provided in the operation interface, the convenience of air supply adjustment of the equipment is improved, and then the user experience feeling is improved.
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Description

Technical Field

[0001] The present application relates to the technical field of interface display, and in particular to an interface display method, air handling equipment and electronic equipment. Background Art

[0002] With the advancement of technology and the improvement of people's living standards, air treatment equipment such as air conditioners and air purifiers have become more and more common in daily life. These devices can improve the user's comfort by adjusting the indoor temperature. In order to better meet the needs of users.

[0003] Modern air handling equipment is usually equipped with an application for controlling the air handling equipment, so that users can adjust the equipment through an operation interface in the smart application. In the prior art, the operation interface provides multiple adjustment controls for adjusting the equipment, and users can adjust the air supply settings of the equipment through these controls.

[0004] However, the user may not be able to clearly and intuitively perceive the adjusted air supply effect during the adjustment process, which makes it difficult for the user to accurately set the air supply state of the device, thereby reducing the accuracy of the adjustment and the overall user experience. Summary of the invention

[0005] The present application provides an interface display method, an air handling device, and an electronic device. Through the air supply visualization area provided in the operation interface, the user can perceive the air supply effect of the device during the adjustment process in real time and intuitively, thereby improving the convenience of the air supply adjustment of the device and thus enhancing the user experience.

[0006] In a first aspect, the present application provides an interface display method for controlling an air treatment device; comprising: displaying an operation interface including a device simulation control corresponding to the air treatment device; wherein the operation interface comprises: an air supply adjustment area and an air supply visualization area; the air supply adjustment area is used to respond to the air supply adjustment operation of the device simulation control; the air supply visualization area is used to present the air supply effect of the device simulation control;

[0007] In response to an air supply adjustment operation on the air supply adjustment area, an air supply effect corresponding to the air supply adjustment operation is displayed in the air supply visualization area.

[0008] The interface display method for controlling air handling equipment provided in the present application will display an operation interface with a device simulation control, an air supply adjustment area, and an air supply visualization area after the application is started. The air supply adjustment area is used to respond to the air supply adjustment operation of the device simulation control; the air supply visualization area is used to present the air supply effect of the device simulation control; and when the user performs an air supply adjustment operation on the device simulation control through the air supply adjustment area, the corresponding air supply effect can be displayed in the air supply visualization area according to the operation content. In this way, the user can clearly and intuitively perceive the adjusted air supply effect during the adjustment process, so that the user can accurately set the air supply status of the device, thereby improving the accuracy of the adjustment and the overall user experience.

[0009] According to one embodiment of the present application, the air supply adjustment operation includes: a sliding operation along the length direction of the air outlet in the device simulation control; the sliding operation is used to adjust the air supply range of the device simulation control.

[0010] In the interface display method for controlling air handling equipment provided in this embodiment, the air supply adjustment operation is specifically a sliding operation along the length direction of the air outlet in the device simulation control, so that when the user needs to adjust the air supply range, on the one hand, he can adjust the air supply range simply and flexibly by sliding back and forth along the length direction of the air outlet, without complicated operation steps, thereby improving the user's operation efficiency. On the other hand, the sliding operation allows the user to accurately adjust the air supply range, that is, the user can fine-tune the air supply range as needed to achieve the ideal air flow effect, thereby realizing personalized settings according to user needs, improving the applicability of the equipment, and at the same time helping to improve user satisfaction.

[0011] According to one embodiment of the present application, the air supply adjustment area partially overlaps or completely overlaps with the air supply visualization area;

[0012] The air supply adjustment operation is a sliding operation within the air supply adjustment area.

[0013] In this embodiment, by partially or completely overlapping the air supply adjustment area with the air supply visualization area, the interface design is made more concise, can adapt to different devices and screen sizes, and has high flexibility and scope of application; at the same time, it can enable users to complete viewing and adjustment operations in the same interface area, reducing interface switching and operation steps, thereby simplifying the user's operation process and improving the user's operation efficiency. In addition, by adjusting and displaying in the same area, users can see their operation effects more clearly and promptly, which is conducive to reducing misoperation.

[0014] According to one embodiment of the present application, the air supply adjustment area includes an air supply adjustment control;

[0015] The sliding operation is a sliding operation on the air supply adjustment control.

[0016] By setting up a dedicated air supply adjustment control in the air supply adjustment area, users can adjust the air supply range with more precise sliding operations. This design allows users to make detailed adjustments to the air supply, improving the controllability of the device and the user's control over the device functions. In addition, the air supply adjustment control provides a clear interaction point, which enables users to understand how to operate more intuitively, reduces the possibility of misoperation, and improves the overall user experience. On the other hand, it can concentrate sliding operations on specific adjustment controls, reducing interference elements on the interface, making the user interface clearer and easier to navigate.

[0017] According to an embodiment of the present application, in response to an air supply adjustment operation on the air supply adjustment area, displaying an air supply effect corresponding to the air supply adjustment operation in the air supply visualization area includes:

[0018] In response to the sliding operation toward the edge of the air outlet, the air supply range displayed in the air supply visualization area increases accordingly;

[0019] or,

[0020] In response to the sliding operation toward the center side of the air outlet, the air supply range displayed in the air supply visualization area is correspondingly reduced.

[0021] Through the above settings, when the user slides toward the edge of the air outlet, the corresponding air supply range increases, and when the user slides toward the center of the air outlet, the corresponding air supply range decreases. The corresponding relationship between the sliding operation and the air supply range enables the user to intuitively control the size of the air supply range by sliding the distance, providing precise control capabilities. In addition, the corresponding relationship between the sliding operation and the air supply range conforms to the adjustment logic of the air supply range, thereby effectively avoiding misoperation.

[0022] According to an embodiment of the present application, the operation interface further includes: a control visualization area; the control visualization area is used to present the control state of the device simulation control;

[0023] The method further comprises:

[0024] In response to the air supply adjustment operation, a control state corresponding to the air supply adjustment operation is displayed in the control visualization area.

[0025] In the method provided in this embodiment, the graphical control status display can enable the user to more intuitively understand the current status and operation results of the device, improve the user's operation efficiency, and help improve user satisfaction.

[0026] According to one embodiment of the present application, the device simulation control includes a wind guide control;

[0027] The control visualization area includes: an air guide visualization area; correspondingly, the control state also includes the control state of the air guide control in the device simulation control.

[0028] By including the wind guide control in the refined device simulation control and including its corresponding visualization area in the interface, the user can intuitively view and adjust the status of the wind guide control, thereby achieving more precise air flow control.

[0029] According to one embodiment of the present application, the wind guide control includes a carrier plate sub-control;

[0030] The wind guide visualization area includes: a carrier plate visualization area; correspondingly, the control state also includes the extended state of the carrier plate sub-control relative to the air outlet.

[0031] By including the carrier plate visualization area in the air guide visualization area, the user can intuitively view and adjust the extension status of the carrier plate sub-controls relative to the air outlet, thereby achieving more precise air flow management.

[0032] According to one embodiment of the present application, in response to the air supply adjustment operation, displaying a control state corresponding to the air supply adjustment operation in the control visualization area includes:

[0033] In response to the sliding operation toward the edge of the air outlet, the extension degree of the carrying plate sub-control displayed in the visual area of ​​the carrying plate relative to the air outlet increases accordingly;

[0034] or,

[0035] In response to the sliding operation toward the center side of the air outlet, the extension degree of the carrier board sub-control displayed in the carrier board visualization area relative to the air outlet is correspondingly reduced.

[0036] Through the above settings, when the user performs a sliding operation, the sub-controls of the carrier board in the visual area of ​​the carrier board can be updated in real time, so that the user can intuitively see the changing state of the air handling device through the sub-controls of the carrier board, and accurately adjust the extension degree of the sub-controls of the carrier board through the sliding operation, so as to accurately control the air supply range. In addition, in this embodiment, the position of the visual area of ​​the carrier board can be flexibly set, which increases the scope of use of the design.

[0037] According to one embodiment of the present application, the wind guide control includes a blade sub-control;

[0038] The wind guide visualization area also includes: a blade visualization area; accordingly, the control state includes the rotation state of the blade sub-control.

[0039] By integrating the blade visualization area into the wind guide visualization area, users can intuitively view and adjust the rotation status of the blade sub-controls, thereby achieving more precise control of the air flow direction.

[0040] According to one embodiment of the present application, in response to the air supply adjustment operation, displaying a control state corresponding to the air supply adjustment operation in the control visualization area includes:

[0041] In response to the sliding operation toward the edge of the air outlet, the rotation angle of the blade sub-control displayed in the blade visualization area increases accordingly;

[0042] or,

[0043] In response to the sliding operation toward the center side of the air outlet, the rotation angle of the blade sub-control displayed in the blade visualization area decreases accordingly.

[0044] Through the above settings, when the user performs a sliding operation, the blade sub-control in the blade visualization area can be updated in real time, so that the user can intuitively see the changing state of the air handling device through the blade sub-control, and accurately adjust the rotation angle of the blade sub-control through the sliding operation, thereby accurately controlling the air supply range. In addition, in this embodiment, the position of the blade visualization area can be flexibly set, which increases the scope of use of the design.

[0045] According to one embodiment of the present application, the device simulation control comprises a first air guide structure and a second air guide structure arranged at intervals along an extension direction of the air outlet;

[0046] Correspondingly, the air supply adjustment area includes a first air supply adjustment area and a second air supply adjustment area; wherein the first air supply adjustment area is used to adjust the air supply of the first air guide structure, and the second air supply adjustment area is used to adjust the air supply of the second air guide structure;

[0047] The air supply visualization area includes a first air supply visualization area and a second air supply visualization area; wherein the first air supply visualization area is used to display the air supply effect of the first air guide structure, and the second air supply visualization area is used to display the air supply effect of the second air guide structure;

[0048] The control visualization area includes a first control visualization area and a second control visualization area; wherein the first control visualization area is used to display the control state of the first air guide structure, and the second control visualization area is used to display the control state of the second air guide structure.

[0049] In this way, the first and second air guide controls are arranged at intervals in the length direction of the air outlet, and the user can independently adjust the air supply to different areas, allowing the user to flexibly adjust the airflow direction and intensity of different areas according to the room layout or personal preference, thereby improving the flexibility of adjustment. In addition, an independent air supply adjustment area and a visualization area are provided for each air guide control, allowing the user to operate more intuitively, and during the operation, the status and air supply effect of each air guide control are displayed in real time in its corresponding visualization area, allowing the user to instantly see the effect of the adjustment, thereby improving the accuracy and efficiency of the adjustment.

[0050] According to one embodiment of the present application, the blade visualization area includes a first blade visualization area and a second blade visualization area;

[0051] The method further comprises:

[0052] In response to a user operation on a target blade visualization area, a card for adjusting the air supply sensation of the target air guide blade is displayed; wherein the target blade visualization area is the first blade visualization area or the second blade visualization area.

[0053] In this way, by displaying the adjustment card after the user's operation, an intuitive and easy-to-understand interface is provided, and the user can adjust the air supply sensation through simple operations without going into complex menus or setting options, and the user can quickly call the adjustment card for adjustment, thereby improving the overall operating efficiency.

[0054] According to one embodiment of the present application, the card further includes: a wind sensation adjustment control; the wind sensation adjustment control is used to adjust the air supply sensation of the device simulation control.

[0055] In this application, the wind sense adjustment control provides an intuitive and direct way to adjust the air supply feeling, which improves the user experience and makes the operation more natural and convenient. And through the wind sense adjustment control, the user can accurately adjust the air supply intensity and direction, which helps to optimize the use effect of the device and improve user satisfaction.

[0056] According to one embodiment of the present application, the wind sense adjustment control comprises: a wind sense adjustment bar;

[0057] The method further comprises:

[0058] In response to a sliding operation on the wind sense adjustment bar in a first direction, the wind effect corresponding to the wind sense displayed in the wind visual area is enhanced accordingly;

[0059] or,

[0060] In response to a sliding operation on the wind sensation adjustment bar toward a second direction, the air supply effect corresponding to the air supply sensation displayed in the air supply visualization area is weakened accordingly; wherein, the first direction and the second direction are opposite directions.

[0061] In the present application, the wind sense adjustment bar provides an intuitive interactive method. Users can adjust the air supply sensation through simple sliding operations. Sliding in one direction can enhance the effect, and sliding in the opposite direction can weaken the effect. It is convenient and fast, and users can make subtle adjustments through the sliding bar to achieve precise control of the air supply effect, thereby improving control accuracy. Finally, when the user slides the adjustment bar, the air supply visualization area immediately reflects the adjustment result, thereby improving the efficiency of the adjustment.

[0062] According to one embodiment of the present application, the wind sensation adjustment control further includes: at least two gear position controls; any gear position control is used to indicate the air supply sensation corresponding to a preset air supply effect.

[0063] The above implementation method provides a preset gear control so that the user can quickly select the desired air supply effect and improve the selection efficiency. Each gear control corresponds to a specific air supply sensation, so the user can get a consistent experience in different usage scenarios, making it easier for the user to predict and understand the behavior of the device and enhance the user experience.

[0064] According to one embodiment of the present application, the method further includes:

[0065] In response to the user operation, the operation interface further displays: an enlarged image of the target leaf visualization area; wherein the enlarged image changes accordingly according to the display content of the target leaf visualization area.

[0066] In this way, by magnifying the image, the user can observe the details of the target wind guide visualization area more clearly, thereby enabling the user to operate and adjust more accurately and reduce the possibility of misoperation.

[0067] According to an embodiment of the present application, the operation interface further includes: an air volume adjustment control; the air volume adjustment control is used to adjust the air supply volume of the device simulation control.

[0068] According to one embodiment of the present application, the air volume adjustment control comprises: an air volume adjustment bar;

[0069] The method further comprises:

[0070] In response to a sliding operation on the air volume adjustment bar in a third direction, the air supply effect corresponding to the air supply volume displayed in the air supply visualization area is enhanced accordingly;

[0071] or,

[0072] In response to a sliding operation on the air volume adjustment bar toward a fourth direction, the air supply effect corresponding to the air supply volume displayed in the air supply visualization area is weakened accordingly; wherein the third direction and the fourth direction are opposite directions.

[0073] In the method provided in this embodiment, by setting air volume adjustment controls (such as air volume adjustment bars and list controls, etc.), users are provided with a variety of convenient ways to adjust the air volume, which increases the interactivity between the user and the operation interface, allowing the user to flexibly adjust the air volume according to their own needs. In addition, the effect of the air volume is characterized by the difference between the color of the fill area in the air supply visualization area and the background color of the operation interface or the color transparency, so that the user can intuitively see the changes brought about by the air volume adjustment, which improves the user's understanding and control of the operating status of the equipment.

[0074] According to an embodiment of the present application, the operation interface further includes: a switch control;

[0075] The method further comprises:

[0076] In response to a shutdown operation on the switch control, other controls in the operation interface except the switch control are in an unadjustable state, and the air supply visualization area displays the effect of the device simulation control when it is in a non-air supply state.

[0077] By integrating the switch control in the operation interface, when the user performs the shutdown operation, other controls in the interface except the switch control become unadjustable. At the same time, the air supply visualization area displays the effect of the device simulation control in the non-air supply state, thereby providing clear device status feedback and preventing misoperation.

[0078] In a second aspect, an embodiment of the present application provides an electronic device, the electronic device comprising: one or more processors and a memory;

[0079] The memory is coupled to the one or more processors, and the memory is used to store computer program code, wherein the computer program code includes computer instructions, and the one or more processors call the computer instructions to enable the electronic device to perform the method as described in any one of the first aspects.

[0080] In a third aspect, an embodiment of the present application provides an air treatment device, comprising: adjusting the device state of the air treatment device according to a control instruction from an electronic device; the control instruction is generated by the electronic device according to the adjustment operation indicated in the interface displayed by the interface display method for controlling the air treatment device described in any one of the first aspects.

[0081] In addition to the technical problems solved by the embodiments of the present application described above, the technical features that constitute the technical solutions, and the beneficial effects brought about by the technical features of these technical solutions, the power-on control method of the device simulation control and other technical problems that can be solved by the device simulation control provided by the embodiments of the present application, other technical features included in the technical solutions, and the beneficial effects brought about by these technical features will be further described in detail in the specific implementation methods. BRIEF DESCRIPTION OF THE DRAWINGS

[0082] The accompanying drawings, which are incorporated in and constitute a part of this specification, illustrate embodiments consistent with the present application and, together with the description, serve to explain the principles of the present application.

[0083] Figure 1 A schematic diagram of the structure of an air treatment device provided in an embodiment of the present application;

[0084] Figure 2 A schematic diagram of a three-dimensional structure of an air guide structure provided in an embodiment of the present application;

[0085] Figure 3 A schematic diagram of a driving method of the air guide structure provided in an embodiment of the present application;

[0086] Figure 4 A schematic diagram of another driving method of the air guide structure provided in an embodiment of the present application;

[0087] Figure 5 is a block diagram of an electronic device provided in an embodiment of the present application;

[0088] Figure 6 A flow chart of a method for controlling an interface display of an air treatment device provided in an embodiment of the present application;

[0089] Figure 7 A schematic diagram of an air supply adjustment operation interface provided in an embodiment of the present application Figure 1 ;

[0090] Figure 8 A schematic diagram of an air supply adjustment operation interface provided in an embodiment of the present application Figure 2 ;

[0091] Fig. 9 A schematic diagram of an air supply adjustment operation interface provided in an embodiment of the present application Figure 3 .

[0092] Description of reference numerals:

[0093] 1- Air handling equipment;

[0094] 10- Equipment body;

[0095] 11-air outlet; 12-basic air duct wall;

[0096] 20-Air guide plate

[0097] 30- air guide structure;

[0098] 100-adjustment component; 200-driving component;

[0099] 110-bearing plate; 120-wind guide blade;

[0100] 210-driving motor; 220-transmission member;

[0101] 2101-first drive motor; 2102-second drive motor.

[0102] The above drawings have shown clear embodiments of the present application, which will be described in more detail later. These drawings and text descriptions are not intended to limit the scope of the present application in any way, but to illustrate the concept of the present application to those skilled in the art by referring to specific embodiments. DETAILED DESCRIPTION

[0103] Exemplary embodiments will be described in detail herein, examples of which are shown in the accompanying drawings. When the following description refers to the drawings, unless otherwise indicated, the same numbers in different drawings represent the same or similar elements. The implementation methods described in the following exemplary embodiments do not represent all implementation methods consistent with the present application. On the contrary, they are merely examples of devices and methods consistent with some aspects of the present application as detailed in the attached claims. Obviously, the described embodiments are part of the embodiments of the present application, not all of the embodiments. Based on the embodiments in the present application, all other embodiments obtained by ordinary technicians in this field without making creative work are within the scope of protection of the present application.

[0104] Air handling equipment, such as air conditioning equipment, usually has an air guide plate and air guide blades at the air outlet. The air guide plate is connected to the air outlet in a rotating manner, and the air supply direction is adjusted by changing its opening angle relative to the air outlet. The air supply angle adjustment mainly relies on the air guide blades, which are generally fixed in a local area of ​​the air outlet and can be pulled by a pull rod to achieve one-dimensional rotation, thereby achieving left and right air sweeping.

[0105] However, there are many disadvantages in adjusting the air supply direction and angle. On the one hand, the area of ​​the air supply area is positively correlated with the area of ​​the air outlet, which limits the adjustable air supply angle, making the air supply coverage area of ​​the air conditioning equipment small and difficult to meet the air supply needs of large areas. On the other hand, since the blades are located in the air duct and can only be deflected at the same rotation angle, when adjusting the air supply angle, it is easy to have an air supply blind spot, which in turn causes a significant indoor temperature difference, greatly affecting comfort.

[0106] Based on the above technical problems, the present application improves the equipment structure of the existing air handling equipment. In the embodiment of the present application, the improved air handling equipment includes: an air guide plate movably arranged at the air outlet of the air handling equipment and a plurality of air guide controls; each air guide control is used to adjust the air supply angle of the air handling equipment; any air guide control includes a bearing plate and a plurality of air guide blades movably connected to the bearing plate; the bearing plate extends along the length direction of the air outlet, and each air guide blade is sequentially arranged along the plate surface of the bearing plate.

[0107] In the process of using the above-mentioned air treatment equipment for air supply, the position of the carrier plate in the air guide control unit can be driven to change relative to the air outlet, and the deflection angle of the carrier plate can be changed to adjust the air supply angle. In addition, the air guide blades on the carrier plate can be driven to move, so that the position of each air guide blade relative to the carrier plate changes, and the air supply angle is adjusted by changing the deflection angle of the air guide blades. In this way, the air supply angle can be adjusted simultaneously in two dimensions, and the direction of the airflow can be more accurately controlled to reduce the air supply blind area and increase the air supply coverage area, which helps to optimize the air distribution according to the room layout and user needs to adapt to different room shapes and sizes, provide more uniform temperature distribution, and improve indoor comfort.

[0108] It should be understood that since the air treatment equipment provided in the embodiment of the present application has been improved in structure, the applicant has also made corresponding adjustments to its control method to achieve effective control of the improved equipment. Optionally, the user can generate control instructions corresponding to the equipment through a remote control, mobile application or smart home system, and then control the equipment to adjust based on the control instructions.

[0109] In a certain scenario, an application for controlling the above-mentioned air treatment device can be installed in the electronic device, and the air treatment device can be configured to be online in the application to facilitate the transmission of control instructions to it. Furthermore, the operation interface corresponding to the application can be presented on the display interface of the electronic device, so that the user can adjust the device through the operation interface, thereby realizing the control of the air supply of the device.

[0110] Specifically, after receiving the adjustment operation, the electronic device generates corresponding control instructions and sends these instructions to the control module of the air handling device. Subsequently, the control module adjusts the state of the air handling device accordingly according to the received control instructions.

[0111] However, in the prior art, the operation interface is generally only provided with a plurality of adjustment controls for adjusting the device, and the user can adjust the air supply setting of the device through these controls. However, the user may not be able to clearly and intuitively perceive the adjusted air supply effect during the adjustment process, which makes it difficult for the user to accurately set the air supply state of the device, thereby reducing the accuracy of the adjustment and the overall experience of the user. In addition, the user may need to try multiple times to achieve the desired effect, which not only wastes time, but also may affect the user's satisfaction with the device.

[0112] Based on this, an embodiment of the present application provides an interface display method for controlling air handling equipment; specifically, after the application is started, an operation interface with a device simulation control, an air supply adjustment area, and an air supply visualization area will be displayed. Among them, the air supply adjustment area is used to respond to the air supply adjustment operation of the device simulation control; the air supply visualization area is used to present the air supply effect of the device simulation control; and when the user performs the air supply adjustment operation on the device simulation control through the air supply adjustment area, the corresponding air supply effect can be displayed in the air supply visualization area according to the operation content. In this way, the user can clearly and intuitively perceive the adjusted air supply effect during the adjustment process, so that the user can accurately adjust the air supply of the device, thereby improving the accuracy of the adjustment and the overall user experience.

[0113] In order to more clearly understand how the adjustment operation involved in the interface display method in the present application realizes the state change of the air treatment equipment, the improved air treatment equipment structure will be described in detail below.

[0114] The embodiment of the present application provides an air treatment device, which includes but is not limited to air conditioning equipment, humidifiers, dehumidifiers, ventilation equipment, heat recovery ventilation systems, air purifiers, and fresh air equipment. In the embodiment of the present application, the air treatment device is an air conditioning device as an example for description. Since the air conditioning device may include a wall-mounted air conditioner, a vertical air conditioner, a central air conditioner, a duct unit, etc. The following specifically takes the air treatment device as a wall-mounted air conditioner as an example for description.

[0115] In order to make the purpose, technical solutions and advantages of the embodiments of the present application clearer, the specific structure of the air treatment equipment provided in the embodiments of the present application will be clearly and completely described below in combination with the drawings in the embodiments of the present application.

[0116] Figure 1 This is a schematic diagram of the structure of an air treatment device provided in an embodiment of the present application. Figure 1As shown, the air treatment device 1 includes a device body 10, and the device body 10 has an air outlet 11, and the air treatment device 1 supplies air to the outside through the air outlet 11. Taking a wall-mounted air conditioner as an example, the air treatment device 1 is installed on a wall in the room, and the air outlet 11 can be set on the front side (the side surface facing away from the wall) of the device body 10 and close to the lower part. For example, the air outlet 11 can be set tilted downward, and the air supply area of ​​the air treatment device 1 is more appropriate.

[0117] In the device body 10, the air guide plate 20 is a plate-shaped structure installed at the air outlet and capable of covering the air outlet. On this basis, a plurality of air guide structures 30 are further provided at the air outlet 11 of the device body 10; specifically, the air supply direction and air supply angle of the air treatment device 1 can be adjusted by the air guide plate 20 and the air guide structure 30, so that the air treatment device 1 can flexibly supply air.

[0118] Figure 2 This is a schematic diagram of a three-dimensional structure of a wind guide structure provided in an embodiment of the present application. Figure 2 As shown, the wind guide structure 30 includes an adjustment assembly 100 , and the adjustment assembly 100 may include a carrying plate 110 and a plurality of wind guide blades 120 .

[0119] Combination Figure 1 and Figure 2 , the adjustment component 100 can be installed in the air duct of the device body 10. Specifically, the air duct includes an air duct wall. For the convenience of explanation, this embodiment predefines the wall surface of one side of the air duct close to the wall as the basic air duct wall 12. On the basis of the above, the adjustment component 100 can be installed on the basic air duct wall 12. Correspondingly, the supporting plate 110 can be installed on the basic air duct wall 12. Moreover, the plate surface of the supporting plate 110 can be parallel to the wall surface of the basic air duct wall 12. Furthermore, the supporting plate 110 can also extend along the length direction of the air outlet 11 so that the adjustment component 100 can cover the air outlet 11. Each air guide blade 120 is arranged in sequence along the plate surface of the supporting plate 110, and each air guide blade 120 is movably connected to the supporting plate 110.

[0120] In the present application, the carrier plate 110 is close to the basic air duct wall 12, so that the adjustment assembly 100 can be installed on the basic air duct wall 12 through the carrier plate 110. The air guide blade 120 can be located on a side of the carrier plate 110 away from the basic air duct wall 12, and the air guide blade 120 faces the air outlet 11, and the air guide blade 120 extends toward the air outlet 11. In this way, the airflow in the air duct can be blown out from the air outlet 11 after passing through the air guide blade 120, so that the airflow is guided by the air guide blade 120.

[0121] Continue to refer to Figure 2The air guide structure 30 further includes a driving assembly 200, and the driving assembly 200 is connected to the adjusting assembly 100. The driving assembly 200 drives the adjusting assembly 100 to move, so that the adjusting assembly 100 can adjust the air supply angle.

[0122] In the present application, when the driving assembly 200 drives the adjusting assembly 100 to move, it can drive the bearing plate 110 to move, and can also drive the air guide blades 120 on the bearing plate 110 to move. Of course, the bearing plate 110 and the air guide blades 120 can also be driven to move at the same time.

[0123] It can be understood that by driving the movement of each air guide blade 120 on the supporting plate 110 through the driving component 200, the position of each air guide blade 120 relative to the supporting plate 110 can be changed. At this time, the angle between each air guide blade 120 and a certain direction of the plate surface of the supporting plate 110 changes, so that each air guide blade 120 is uniformly deflected toward one side of the air outlet 11, thereby achieving the effect of adjusting the air supply angle of the air guide structure 30.

[0124] It can also be understood that, when the driving assembly 200 drives the carrier plate 110 to move, the position of the carrier plate 110 relative to the air outlet 11 changes, and the distance between the carrier plate 110 and the basic air duct wall 12 changes. In addition, since the air guide blades 120 are arranged on the carrier plate 110, each air guide blade 120 on the carrier plate 110 also moves with the carrier plate 110. At this time, even if the position of the air guide blade 120 relative to the carrier plate does not change, the position of the air guide blade 120 relative to the air outlet 11 is changed, and the effect of adjusting the air supply angle of the air guide structure 30 can also be achieved.

[0125] Of course, when the position of the carrier plate 110 changes relative to the air outlet 11, if the air guide blade 120 also changes relative to the carrier plate 110, the position change at this time can weaken or even eliminate the deflection angle restriction of the air duct on the air guide blade 120. The deflection angle range of the air guide blade 120 relative to the carrier plate 110 is increased. When the deflection angle of the carrier plate 110 relative to the air outlet 11 is adjustable, the deflection angle of the air guide blade 120 relative to the carrier plate 110 is adjusted on the basis of changing the deflection angle of the carrier plate 110, which can further increase the deflection angle range of the air guide blade 120 relative to the air outlet 11, thereby increasing the air supply angle of the air guide structure 30, thereby expanding the air supply angle range of the air guide structure 30, so that the air treatment equipment can cover a larger air supply area.

[0126] As for the plurality of air guide structures 30 in the device body 1, the number includes two or more. As an optional embodiment, the number of air guide structures 30 can be two, and the two air guide structures 30 can be arranged at intervals along the length direction of the air outlet 11. Matching the air guide structure 30, the number of driving components 200 can also be two. The two driving components 200 are respectively connected to the adjustment components 100 in the two air guide structures 30, and each driving component 200 drives the corresponding adjustment component 100 to move.

[0127] In this way, the two adjustment components 100 can supply air to different areas respectively, and the two adjustment components 100 have different air supply areas respectively, which can expand the air supply area of ​​the air guide structure 30 and expand the air supply coverage area of ​​the air treatment device 1. In addition, the two adjustment components 100 are independently driven by two driving components 200 respectively, and the air supply areas of the two adjustment components 100 can be adjusted independently, and there is no linkage relationship between the two. In this way, the air treatment device 1 can be suitable for different indoor layouts and usage requirements, and users can flexibly adjust the air supply areas of the two adjustment components 100 according to actual conditions. In order to meet the needs of different environments for different air supply areas, the airflow blown out by the air treatment device 1 can be fully and effectively utilized to avoid waste.

[0128] Figure 3 A schematic diagram of a driving method of the air guide structure provided in an embodiment of the present application. Figure 3 As shown, in the present application, the driving assembly 200 used to drive the adjustment assembly 100 to move includes a driving motor 210 and a transmission member 220, and the transmission member 220 is transmission-connected between the driving motor 210 and the adjustment assembly 100. The driving motor 210 is used to provide driving force, and the driving motor 210 can be electrically connected to the control member to control the operation of the driving motor 210 through the control member. The transmission member 220 is used to transmit the power of the driving motor 210 to the adjustment assembly 100 to drive the adjustment assembly 100 to move.

[0129] The carrier plate 110 may be in transmission connection with the transmission member 220. The driving assembly 200 transmits the driving force to the transmission member 220, and drives the carrier plate 110 to move through the transmission member 220. Each wind guide blade 120 on the carrier plate 110 may be directly connected to the output end of the driving motor 210, and each wind guide blade 120 may be directly driven to rotate by the driving motor 210. Alternatively, each wind guide blade 120 may also be connected to the transmission member 220, and each wind guide blade 120 may be driven to rotate by the transmission member 220.

[0130] With such a configuration, only one drive motor 210 cooperates with the transmission member 220 to drive the air guide blades 120 on the carrier plate 110 to rotate and the carrier plate 110 to move. The structure of the drive assembly 200 is simpler, which simplifies the driving method of the adjustment assembly 100. In addition, there are no other drive components in the drive assembly 200, and the drive assembly 200 as a whole occupies a smaller space and is lighter in weight, which can save space for the air guide structure 30, facilitate the layout design of other components in the air treatment device 1, and is conducive to the lightweight of the entire air treatment device 1. In addition, only one drive motor 210 is used to drive the adjustment assembly 100 to move, which minimizes the number of drive motors 210 used and can reduce the energy consumption of the air guide structure 30.

[0131] Figure 4 This is a schematic diagram of another driving method of the air guide structure provided in the embodiment of the present application. Figure 4 As shown, in another embodiment, the drive motor 210 may be two drive motors, namely a first drive motor 2101 and a second drive motor 2102. The first drive motor 2101 is transmission-connected to the air guide blade 12, and the first drive motor 2101 is used to drive the air guide blade 12 to swing toward both ends of the extension direction of the carrier plate 11. The second drive motor 2102 is transmission-connected to the carrier plate 11, and the second drive motor 2102 is used to drive the carrier plate 11 to move.

[0132] By including the first drive motor 2101 and the second drive motor 2102 in the drive motor 210, the air guide blade 12 and the carrier plate 11 can be controlled separately, which is beneficial to improve the accuracy of airflow regulation. The user can adjust the air supply angle range of the air guide blade 12 or the carrier plate 11 separately as needed. The combination of the first drive motor 2101 and the second drive motor 2102 provides a larger adjustment range and flexibility to achieve complex airflow patterns to adapt to different room layouts and usage scenarios. By adjusting the angles of the air guide blade 12 and the carrier plate 11 respectively, a more uniform and effective airflow distribution can be achieved. Accurate airflow control can reduce the operating time and energy consumption of the air handling device 200 (for example, air conditioning equipment) using the air guide control 100, thereby improving overall energy efficiency. Since the first drive motor 2101 and the second drive motor 2102 are independently arranged, a single drive motor can be replaced or adjusted as needed during later maintenance without large-scale adjustments to the entire system, thereby reducing maintenance costs.

[0133] Based on the above implementation, the air treatment equipment further includes a storage component (not shown in the figure), an interaction component (not shown in the figure) and a control module (not shown in the figure).

[0134] Specifically, the control component is used to store data, such as user preferences, fault codes and diagnostic information during device operation, sensor data, firmware versions, and configuration files.

[0135] Specifically, the interactive component is used to interact with external devices. Optionally, the interactive component may include a wireless communication module, a voice control interface, an infrared remote control interface, and a cloud service interface. Specifically, it can be realized to interact with different external devices. For example, it is connected to a smartphone, tablet computer or smart home system through wireless communication technologies such as Wi-Fi, Bluetooth or Zigbee; another example is integrated with an intelligent voice assistant to support voice command control; another example is to communicate with a traditional remote control through infrared; and it can also exchange data and remotely manage with a cloud service platform through the Internet. In this application, it is used to communicate with external devices through different interactive components to achieve intelligent control and enhance user experience.

[0136] In order to more clearly understand how the interface display method in the present application adjusts the displayed content in the operation interface according to the operation content when responding to the adjustment operation triggered by the user, the electronic device that executes the interface display method will be described in detail below.

[0137] The electronic device of the embodiment of the present application may include a handheld device, a vehicle-mounted device, etc. with an image processing function. For example, some electronic devices are: mobile phones, tablet computers, PDAs, laptop computers, mobile internet devices (MIDs), wearable devices (e.g., smart watches, smart glasses, smart bracelets or smart jewelry, etc.), virtual reality (VR) devices, augmented reality (AR) devices, wireless terminals in industrial control, wireless terminals in self driving, wireless terminals in remote medical surgery, wireless terminals in smart grids, wireless terminals in transportation safety, wireless terminals in smart cities, wireless terminals in smart homes, cellular phones, cordless phones, session initiation protocol (SIP) phones, wireless local loop (WLL) stations, personal digital assistants (PDAs), handheld devices with wireless communication capabilities, computing devices or other processing devices connected to wireless modems, vehicle-mounted devices, Internet of Things (IoT), etc. The present invention may include terminal devices in an Internet of Things (IoT) system, terminal devices in a 5G network, or terminal devices in a future evolved public land mobile network (PLMN), etc. The embodiments of the present application are not limited to this.

[0138] Figure 5 Optionally, the device 500 may include one or more of the following components: a processing component 502, a memory 504, a power component 506, a multimedia component 508, an audio component 510, an input / output interface 512, a sensor component 514, and a communication component 516.

[0139] The processing component 502 generally controls the overall operation of the device 500, such as operations associated with display, phone calls, data communications, camera operations, and recording operations. The processing component 502 may include one or more processors 820 to execute instructions to complete all or part of the steps of the above-mentioned method. In addition, the processing component 502 may include one or more modules to facilitate the interaction between the processing component 502 and other components. For example, the processing component 502 may include a multimedia module to facilitate the interaction between the multimedia component 508 and the processing component 502.

[0140] The memory 504 is configured to store various types of data to support operations on the device 500. Examples of such data include instructions for any application or method operating on the device 500, contact data, phone book data, messages, pictures, videos, etc. The memory 504 can be implemented by any type of volatile or non-volatile storage device or a combination thereof, such as static random access memory (SRAM), electrically erasable programmable read-only memory (EEPROM), erasable programmable read-only memory (EPROM), programmable read-only memory (PROM), read-only memory (ROM), magnetic memory, flash memory, magnetic disk or optical disk.

[0141] Power supply component 506 provides power to various components of device 500. Power supply component 506 may include a power management system, one or more power supplies, and other components associated with generating, managing, and distributing power to device 500.

[0142] The multimedia component 508 includes a screen that provides an output interface between the device 500 and the user. In some embodiments, the screen may include a liquid crystal display (LCD) and a touch panel (TP). If the screen includes a touch panel, the screen may be implemented as a touch screen to receive input signals from the user. The touch panel includes one or more touch sensors to sense touch, slide, and gestures on the touch panel. The touch sensor may not only sense the boundaries of the touch or slide action, but also detect the duration and pressure associated with the touch or slide operation. In some embodiments, the multimedia component 508 includes a front camera and / or a rear camera. When the device 500 is in an operating mode, such as a shooting mode or a video mode, the front camera and / or the rear camera may receive external multimedia data. Each front camera and rear camera may be a fixed optical lens system or have a focal length and optical zoom capability.

[0143] The audio component 510 is configured to output and / or input audio signals. For example, the audio component 510 includes a microphone (MIC), and when the device 500 is in an operating mode, such as a call mode, a recording mode, and a speech recognition mode, the microphone is configured to receive an external audio signal. The received audio signal can be further stored in the memory 504 or sent via the communication component 516. In some embodiments, the audio component 510 also includes a speaker for outputting audio signals.

[0144] The input / output interface 512 provides an interface between the processing component 502 and the peripheral interface modules, which may be keyboards, click wheels, buttons, etc. These buttons may include but are not limited to: a home button, a volume button, a start button, and a lock button.

[0145] The sensor assembly 514 includes one or more sensors for providing various aspects of status assessment for the device 500. For example, the sensor assembly 514 can detect the open / closed state of the device 500, the relative positioning of components, such as the display and keypad of the device 500, and the sensor assembly 514 can also detect the position change of the device 500 or a component of the device 500, the presence or absence of user contact with the device 500, the orientation or acceleration / deceleration of the device 500, and the temperature change of the device 500. The sensor assembly 514 may include a proximity sensor configured to detect the presence of nearby objects without any physical contact. The sensor assembly 514 may also include an optical sensor, such as a solid image (Complementary Metal Oxide Semiconductor, CMOS) sensor or a semiconductor image (Charge-coupled Device, CCD) sensor, for use in imaging applications. In some embodiments, the sensor assembly 514 may also include an acceleration sensor, a gyroscope sensor, a magnetic sensor, a pressure sensor, or a temperature sensor.

[0146] The communication component 516 is configured to facilitate wired or wireless communication between the device 500 and other devices. The device 500 can access a wireless network based on a communication standard, such as WiFi, 4G or 5G, or a combination thereof. In an exemplary embodiment, the communication component 516 receives a broadcast signal or broadcast-related information from an external broadcast management system via a broadcast channel. In an exemplary embodiment, the communication component 516 also includes a near field communication (NFC) module to facilitate short-range communication. For example, the NFC module can be based on Radio Frequency Identification (RFID) technology, Infrared Data Association (IrDA) technology, Ultra Wide Band (UWB) technology, Bluetooth (BT) technology and other technologies.

[0147] In an exemplary embodiment, the device 500 can be implemented by one or more application-specific integrated circuits (ASIC), digital signal processors (DSP), digital signal processing devices (DSPD), programmable logic devices (PLD), field programmable gate arrays (FPGA), controllers, microcontrollers, microprocessors or other electronic components to perform the above method.

[0148] On the basis of the above implementation manner, the specific implementation process of the interface display method is described in detail with reference to the accompanying drawings and in combination with specific embodiments.

[0149] Figure 6 A flowchart of an interface display method for controlling air handling equipment provided in an embodiment of the present application. Figure 6 As shown, the interface display method includes the following steps:

[0150] S610: Display an operation interface including a device simulation control corresponding to the air handling device.

[0151] Figure 7 A schematic diagram of an air supply adjustment operation interface provided in an embodiment of the present application Figure 1 . Reference Figure 7 As shown, the operation interface includes a device simulation control corresponding to the air handling device, which can be interpreted as an interactive element in the operation interface, which is intended to simulate and control the functions and operations of the air handling device. As a virtual way, the control allows users to manage various functions of the device in the application corresponding to the operation interface.

[0152] Optionally, the control style of the device simulation control can be consistent with the style of the real air handling equipment, so that users can more intuitively observe the functions and status of the equipment. Of course, in some other cases, the control can also adopt other styles, which is not specifically limited.

[0153] Of course, in order to comprehensively observe the control status of the device simulation control during the adjustment process, it can be set to be located in the central area of ​​the operation interface. Of course, the actual position of the real air handling equipment in the room can also be imitated, and the position of the device simulation control in the operation interface can be arranged accordingly. There is no specific limitation on this.

[0154] Continue to refer to Figure 7The operation interface provided in this application also includes an air supply adjustment area; wherein the air supply adjustment area is used to respond to the air supply adjustment operation of the device simulation control.

[0155] It can be explained that the air supply adjustment area can be an entire area of ​​a preset position in the operation interface, or it can be an area composed of multiple areas, and there is no limit on the number of air supply adjustment areas. In addition, the air supply adjustment area can be located at any position in the operation interface. For example, in order to facilitate the user's one-handed operation, the air supply adjustment area can also be set at the edge of the operation interface; it can also be set at the center of the operation interface to prevent the user from accidentally touching it. Of course, the user can also set the position of the air supply adjustment area in the operation interface according to actual conditions. This application does not specifically limit its setting position.

[0156] Continue to refer to Figure 7 The operation interface provided in this application also includes an air supply visualization area; wherein the air supply visualization area is used to present the air supply effect of the device simulation control.

[0157] It can be explained that, in order to facilitate the air supply visualization area to present the air supply effect intuitively, the air supply visualization area and the device simulation control can be set accordingly in the operation interface. For example, Figure 7 In the example, the air supply visualization area is set to the area below the air outlet in the device simulation control. Of course, the user can also set the position of the air supply visualization area in the operation interface according to the actual situation, and this application does not make specific restrictions on its setting position.

[0158] Optionally, the user can find the icon of the application corresponding to the air handling device on the electronic device, directly click the icon to start the application, and enter the operation interface. If the device supports a voice assistant, the user can open the application through voice commands. For example, taking the air handling device as an air conditioner as an example, saying "open the air conditioning application" can open the application corresponding to the air conditioner. In addition, some applications may provide quick access options in the notification bar or control center of the device, and users can quickly start the application by pulling down the notification bar or opening the control center.

[0159] In some scenarios, if the application can control multiple air handling devices, after starting the application, you will first enter the device list interface, and then after clicking the air handling device to be controlled, you will enter the operation interface corresponding to the air handling device to be controlled.

[0160] S620: In response to an air supply adjustment operation on the air supply adjustment area, display an air supply effect corresponding to the air supply adjustment operation in the air supply visualization area.

[0161] In the present application, the user can perform adjustment operations in the air supply adjustment area preset in the operation interface. Accordingly, the corresponding electronic device can respond to the air supply adjustment operation in the air supply adjustment area and generate a corresponding interface display instruction, and then control the display of the air supply effect corresponding to the air supply adjustment operation in the air supply visualization area of ​​the operation interface according to the interface display instruction. For example, if the user increases the wind speed, the air supply visualization area will display an animation of faster wind flow; if the user changes the air supply angle, the visualization area will present a picture of wind flowing at the new angle.

[0162] In this way, users can easily adjust the air supply function of the air handling equipment and see the adjusted effect in real time.

[0163] The interface display method for controlling air handling equipment provided in the embodiment of the present application will display an operation interface with a device simulation control, an air supply adjustment area, and an air supply visualization area after the application is started. Among them, the air supply adjustment area is used to respond to the air supply adjustment operation of the device simulation control; the air supply visualization area is used to present the air supply effect of the device simulation control; and when the user performs the air supply adjustment operation on the device simulation control through the air supply adjustment area, the corresponding air supply effect can be displayed in the air supply visualization area according to the operation content. In this way, the user can clearly and intuitively perceive the adjusted air supply effect during the adjustment process, so that the user can accurately set the air supply status of the device, thereby improving the accuracy of the adjustment and the overall user experience.

[0164] Next, the air supply adjustment area included in the operation interface involved in the interface display method in the embodiment of the present application will be introduced in detail.

[0165] In a possible implementation, the air supply adjustment area included in the operation interface partially or completely overlaps with the air supply visualization area.

[0166] Optionally, since the air supply visualization area and the air supply adjustment area can be located anywhere in the operation interface, the present application does not limit the relative position of the air supply adjustment area and the air supply display area. The air supply adjustment area can completely overlap with the air supply display area, partially overlap, or not overlap.

[0167] For example, continue to refer to Figure 7, the device simulation control is located in the upper middle of the operation interface, and the air supply visualization area is set at the lower position of the device simulation control, so that sufficient effect display area can be reserved for the air supply visualization area, so that users can clearly observe the air supply effects corresponding to various air supply adjustment operations. On this basis, the air supply adjustment area can also be set at the lower position of the device simulation control. In this case, the area size and position of the air supply adjustment area and the air supply visualization area in the operation interface can be set to the same parameter to achieve complete overlap of the two areas; this can achieve seamless experience and intuitive feedback for users when operating. In this way, users can more easily understand and control the air supply settings because the adjustment and visualization effects are unified and consistent on the interface. This design not only improves the user's operating efficiency, but also enhances the fluency and consistency of the overall user experience.

[0168] For another example, the size and position of the air supply adjustment area can be adjusted based on the size and position of the air supply visualization area to achieve partial coverage of the two areas; or the air supply adjustment area can be set in the preset area below the operation interface, so that the two areas are completely non-overlapping. This is convenient for users to operate with one hand. The two settings in the above other scenarios can achieve unobstructed observation of the air supply effect of the device simulation control when performing adjustment operations in the air supply adjustment area.

[0169] In this way, through overlapping design, air supply adjustment and air supply effect display can be performed simultaneously in a limited screen space, the interface utilization controls are optimized, and while adjusting the air supply, the air supply effect feedback can be intuitively seen in the same or adjacent areas. Users can more intuitively understand the relationship between the adjustment operation and the actual effect, thereby improving user operating efficiency and satisfaction.

[0170] Optionally, the user may utilize the gesture recognition function of the touch screen during the air supply adjustment operation in the air supply adjustment area, and the user may adjust the air supply effect by performing gestures such as sliding and pinching in the air supply adjustment area.

[0171] In this way, gesture recognition utilizes the user's natural hand movements, such as sliding and pinching, to make the interaction process more intuitive and in line with human natural behavior habits. By eliminating traditional controls, the interface design can be more concise and reduce visual clutter, allowing users to focus more on core functions and improve user experience.

[0172] On the basis of the above implementation, the air supply adjustment area provided in the embodiment of the present application further includes an air supply adjustment control; the air supply adjustment control is used to adjust the air supply effect of the device simulation control. That is, the user can adjust the air supply effect of the device simulation control by operating the air supply adjustment control in the air supply adjustment area.

[0173] Among them, the air supply adjustment control can be any control that can adjust the air supply effect of the device simulation control, and the present application does not limit the specific form of the air supply adjustment control.

[0174] In an exemplary embodiment, the air supply adjustment control can be a graphical control, and different icons or graphics represent different air supply effects. The air supply effect can be switched or adjusted by clicking the icon, or by sliding the icon or graphic in different directions to adjust different air supply states.

[0175] In another example, the air supply adjustment control can be one or more sliding bars, for example, including a horizontal sliding bar and a vertical sliding bar; wherein, sliding the horizontal sliding bar left and right is used to adjust the air supply angle range in the horizontal direction, and sliding the vertical sliding bar up and down is used to adjust the air supply angle in the vertical direction.

[0176] Based on the above implementation, as an exemplary introduction, the air supply adjustment control may include at least one of the following: a floating control or a control bar.

[0177] Among them, the floating control is used to suspend the interactive elements displayed on the operation interface. The floating control may not be fixed in a specific position, and may appear when the user needs it and hide when it is not needed. For example, it may be a floating button, a floating menu, etc.

[0178] The control bar is used to indicate a bar-shaped control fixed at a certain position of the operation interface, and is usually used to provide a continuous or discrete adjustment function. For example, it can be a slider, and the user can make fine adjustments by dragging the slider.

[0179] Specifically, the air supply adjustment control may include only a floating control, or only a control bar, or may include both a floating control and a control bar.

[0180] In this way, the floating control can be hidden when not in use, thus saving interface space, and through the dynamic display and hiding mechanism, the interface clutter is reduced and the user's visual experience is improved. The control bar can effectively utilize the space at the edge of the interface through a fixed layout, without interfering with the main display area, and the user can adjust it by simply sliding or clicking, which is easy to understand and use.

[0181] On the basis of the above-mentioned implementation, the operation interface displayed by the interface display method provided in the implementation of the present application also includes: the control visualization area is used to present the control state of the device simulation control. On this basis, the method of this embodiment also includes: in response to the air supply adjustment operation, the control state corresponding to the air supply adjustment operation is displayed in the control visualization area.

[0182] Specifically, a control visualization area is defined on the operation interface, and the control visualization area can be an independent panel or integrated with other functional areas, which is not limited in this embodiment. In addition, in this application, graphical elements (such as icons, progress bars, color changes, etc.) are used to represent different states of controls, and different states correspond to corresponding icons or visual effects.

[0183] More specifically, in the present application, the update of the control state is achieved by the following contents: an event listener is set in the air supply adjustment area to capture the user's adjustment operation. When a sliding operation is detected, the state display in the space visualization area is updated according to the result of the sliding operation.

[0184] In the method provided in this embodiment, the graphical control status display can enable the user to more intuitively understand the current status and operation results of the device, improve the user's operation efficiency, and help improve user satisfaction.

[0185] In this application, the device simulation control can be understood as an integral control integrated by multiple controls. On this basis, in this application, the device simulation control includes an air guide control. The control visualization area includes the air guide control visualization area, and accordingly, the control state includes the control state of the air guide control in the device simulation control.

[0186] Specifically, the wind guide control is a control corresponding to the wind guide control that can affect the air supply range, such as a control corresponding to the carrier plate, or a control corresponding to the blades on the carrier plate. By setting a wind guide control visualization area on the operation interface, the user can more intuitively know the adjustment status of each part of the wind guide control.

[0187] Optionally, the air guide control includes a bearing plate sub-control; the air guide control visualization area includes a bearing plate visualization area, and accordingly, the control state also includes an extension state of the bearing plate sub-control relative to the air outlet. It should be understood that the bearing plate sub-control corresponds to the bearing plate in the air guide control of the air handling device, and the greater the extension degree of the bearing plate relative to the air outlet, the larger the corresponding air supply range.

[0188] In this application, the carrier plate visualization area is specifically the location of the carrier plate sub-control on the device simulation control, and the user can intuitively see the extension state of the carrier plate sub-control by observing the device simulation control. In actual applications, in order to enable the user to observe the carrier plate sub-control more clearly, the carrier plate visualization area can also be set in other areas of the operation interface, and accordingly, the carrier plate sub-control is represented in the form of an icon, which is not limited in this application.

[0189] Optionally, the wind guide control includes a blade sub-control; the wind guide control visualization area includes a blade visualization area; accordingly, the control state includes the rotation state of the blade sub-control.

[0190] In this application, the blade visualization area is an area outside the area where the device simulation control is located, and a blade icon is set in the blade visualization area to represent the blade sub-control. In actual applications, the blade visualization area can also be the area where the blade sub-control is located on the device simulation control, which is not limited in this application.

[0191] In the present application, the blade visualization area is made inconsistent with the area where the device simulation control is located, and an additional leaf icon is used to represent the blade sub-control, so that the user can observe the changing status of the blade sub-control more clearly. At the same time, there is no need to enlarge the area where the device simulation control is located, which provides more possibilities for the design of the operation interface.

[0192] On the basis of the above implementation, the wind guide control of the device simulation control in the present application may be a plurality of wind guide controls, and the plurality of wind guide controls may be a first wind guide control and a second wind guide control spaced apart along the length direction of the air outlet;

[0193] Correspondingly, the air supply adjustment area includes a first air supply adjustment area and a second air supply adjustment area; wherein the first air supply adjustment area is used to adjust the air supply of the first air guide control unit, and the second air supply adjustment area is used to adjust the air supply of the second air guide control unit;

[0194] The air supply visualization area includes a first air supply visualization area and a second air supply visualization area; wherein the first air supply visualization area is used to display the air supply effect of the first air guide control, and the second air supply visualization area is used to display the air supply effect of the second air guide control;

[0195] The control visualization area includes a first control visualization area and a second control visualization area; wherein the first control visualization area is used to display the control state of the first wind guide control, and the second control visualization area is used to display the control state of the second wind guide control.

[0196] Continue to refer Figure 7 In the operation interface, the shape of the air outlet of the device simulation control is displayed as a rectangular shape in the operation interface. Therefore, the length direction of the air outlet can be interpreted as the horizontal direction in the operation interface, and the width direction of the air outlet can be interpreted as the vertical direction in the operation interface.

[0197] Furthermore, a first air guide control and a second air guide control are arranged at intervals in the length direction of the air outlet, and the first air guide control and the second air guide control are located on the left and right sides respectively.

[0198] Correspondingly, the air supply adjustment area is also divided into two, namely the first air supply adjustment area and the second air supply adjustment area. The first air supply adjustment area corresponds to the first air guide control unit, and is used to adjust the air supply of the first air guide control. The second air supply adjustment area corresponds to the second air guide control unit, and is used to adjust the air supply of the second air guide control.

[0199] The air supply visualization area for displaying the air supply effect is also divided into two, namely the first air supply visualization area and the second air supply visualization area. The first air supply visualization area corresponds to the first air guide control, and the air supply effect of the first air guide control can be displayed in the first air supply visualization area. The second air supply visualization area corresponds to the second air guide control, and the air supply effect of the second air guide control can be displayed in the second air supply visualization area.

[0200] In this way, the first and second air guide controls are arranged at intervals in the length direction of the air outlet, and the user can independently adjust the air supply to different areas, allowing the user to flexibly adjust the airflow direction and intensity of different areas according to the room layout or personal preference, thereby improving the flexibility of adjustment. In addition, an independent air supply adjustment area and a visualization area are provided for each air guide control, allowing the user to operate more intuitively, and during the operation, the status and air supply effect of each air guide control are displayed in real time in its corresponding visualization area, allowing the user to instantly see the effect of the adjustment, thereby improving the accuracy and efficiency of the adjustment.

[0201] On the basis of the above-mentioned embodiments, in the embodiments of the present application, in response to the air supply adjustment operation on the air supply adjustment area, the air supply effect corresponding to the air supply adjustment operation is displayed in the air supply visualization area, including:

[0202] In response to a first air supply adjustment operation on a first air supply adjustment area, and / or a second air supply adjustment operation on a second air supply adjustment area, an air supply effect corresponding to the first air supply adjustment operation is displayed in a first air supply visualization area, and / or an air supply effect corresponding to the second air supply adjustment operation is displayed in a second air supply visualization area.

[0203] Among them, the first air supply adjustment operation and the second air supply adjustment operation in the present application can be performed separately or simultaneously, and the present application does not limit this.

[0204] When the first air supply adjustment operation and the second air supply adjustment operation are performed separately, that is, the user performs the first air supply adjustment operation in the first air supply adjustment area, and accordingly, the air supply effect corresponding to the first air supply adjustment operation is displayed in the first air supply visualization area. Alternatively, the user performs the second air supply adjustment operation in the second air supply adjustment area, and accordingly, the air supply effect corresponding to the second air supply adjustment operation is displayed in the second air supply visualization area.

[0205] When the first air supply adjustment operation and the second air supply adjustment operation are performed simultaneously, that is, the user performs the first air supply adjustment operation in the first air supply adjustment area at the same time, and the user performs the second air supply adjustment operation in the second air supply adjustment area; accordingly, while the air supply effect corresponding to the first air supply adjustment operation is displayed in the first air supply visualization area, the air supply effect corresponding to the second air supply adjustment operation is displayed in the second air supply visualization area.

[0206] In this way, users can choose to perform the first and second air supply adjustment operations separately or simultaneously as needed. Users can flexibly adjust according to specific environmental needs and personal preferences, which improves the user experience. When performing adjustment operations, the real-time display of the air supply effect helps users immediately see the results of the adjustment, which helps users quickly confirm whether the adjustment has achieved the expected effect, reduces the time for repeated adjustments, and improves adjustment efficiency.

[0207] On this basis, in an embodiment of the present application, in response to an air supply adjustment operation, a control state corresponding to the air supply adjustment operation is displayed in a control visualization area, including: in response to a first air supply adjustment operation on a first air supply adjustment area, and / or, a second air supply adjustment operation on a second air supply adjustment area, the control state corresponding to the first air supply adjustment operation is displayed in the first control visualization area, and / or, the control state corresponding to the second air supply adjustment operation is displayed in the second control visualization area.

[0208] Specifically, when the first air supply adjustment operation is performed alone in the first air supply adjustment area, the state of the corresponding sub-control in the device simulation control will change accordingly. At each moment, the control state corresponding to the first air supply adjustment operation is displayed in the first control visualization area.

[0209] When the second air supply adjustment operation is performed in the second air supply adjustment area alone, the state of the corresponding sub-control in the device simulation control will change accordingly. At each moment, the control state corresponding to the second air supply adjustment operation is displayed in the second control visualization area.

[0210] When the first air supply adjustment operation and the second air supply operation are performed simultaneously, at each moment, the control state corresponding to the first air supply adjustment operation is displayed in the first control visualization area, while the control state corresponding to the second air supply adjustment operation is displayed in the second control visualization area.

[0211] In this way, by processing the feedback of the first and second air supply adjustment operations separately, users can independently adjust and monitor different areas, helping users to more accurately understand the changes in the control status of each area. Users can choose to perform the first and second air supply adjustment operations separately or simultaneously, and the control status corresponding to each operation has independent visual feedback, which improves the user experience.

[0212] Based on the above embodiments, it can be understood that the blade visualization area in the present application may include a first blade visualization area and a second blade visualization area; the two blade visualization areas respectively correspond to the control status display areas of the two blade sub-controls in the device simulation control.

[0213] On this basis, the interface display method provided in the present application also includes: in response to user operations on the target blade visualization area, displaying a card for adjusting the air supply sensation of the target blade sub-control.

[0214] The target blade visualization area is the first blade visualization area or the second blade visualization area. In other words, the blade visualization area includes the first blade visualization area and the second blade visualization area. When the user performs air supply adjustment operation, the two blade visualization areas in the operation interface are both in an operable state. When the user operates the first blade visualization area, the first blade visualization area is the target blade visualization area. When the user operates the second blade visualization area, the second blade visualization area is the target blade visualization area.

[0215] Specifically, when the user operates the target leaf visualization area, the operation interface will display a corresponding card.

[0216] In this application, the displayed card can be displayed based on the top, bottom or middle position of the operation interface, or it can be displayed on the side of the operation page. Of course, the user can also customize the display position and display form of the card. This application does not impose any restrictions on the display form and position of the card.

[0217] It can be explained that the displayed card can be used to adjust the air supply sensation corresponding to the target blade sub-control. Specifically, the card may include a preset adjustment area or adjustment control, so that the user can adjust the air supply experience in the card.

[0218] In this way, by displaying the adjustment card after the user's operation, an intuitive and easy-to-understand interface is provided, and the user can adjust the air supply sensation through simple operations without going into complex menus or setting options, and the user can quickly call the adjustment card for adjustment, thereby improving the overall operating efficiency.

[0219] On the basis of the above-mentioned implementation mode, the card displayed in the operation interface in the present application also includes: a wind sense adjustment control; wherein the wind sense adjustment control is used to adjust the air supply sensation of the device simulation control.

[0220] It can be understood that the wind sense adjustment control is any control that can adjust the air supply sensation of the device simulation control, and the present application does not limit the specific form of the wind sense adjustment control.

[0221] In one example, the wind feeling adjustment control may be a slider control, and the user may increase or decrease the air supply intensity by dragging the slider.

[0222] In another example, the wind sense adjustment control may be a knob control, and the user may adjust the wind sense by rotating a virtual knob. This form simulates the operation of a traditional physical knob and is suitable for touch screen devices.

[0223] In another example, the wind feeling adjustment control may be a button control, using "+" and "-" buttons to gradually increase or decrease the air supply intensity. The button control is simple and easy to use, and is suitable for fine adjustment.

[0224] In this way, the wind sense adjustment control provides an intuitive and direct way to adjust the air supply feeling, improving the user experience and making the operation more natural and convenient. And through the wind sense adjustment control, the user can accurately adjust the air supply intensity and direction, which helps to optimize the use effect of the device and improve user satisfaction.

[0225] In a possible implementation, the wind sense adjustment control may be a wind sense adjustment bar. On this basis, the interface display method provided by the present application further includes: in response to a sliding operation on the wind sense adjustment bar in a first direction, the wind supply effect corresponding to the wind supply sensation displayed in the wind supply visualization area is enhanced accordingly; or, in response to a sliding operation on the wind sense adjustment bar in a second direction, the wind supply effect corresponding to the wind supply sensation displayed in the wind supply visualization area is weakened accordingly; wherein the first direction and the second direction are opposite directions.

[0226] The first direction and the second direction can be understood as directions defined relative to the direction of the wind sense adjustment strip, and the first direction and the second direction are opposite.

[0227] In one example, the wind sense adjustment strip is located in a horizontal direction, and the first direction is to the left or to the right, and correspondingly, the second direction is to the right or to the left.

[0228] In another example, the wind sense adjustment strip is located in a vertical direction, and the first direction is upward or downward, and correspondingly, the second direction is downward or upward.

[0229] When the wind sense adjustment bar is slid in the first direction, the air supply effect displayed in the air supply visualization area will be enhanced, wherein the enhancement of the air supply effect can be achieved by increasing the number, density or flow speed of air flow lines to make them look denser and faster, thereby indicating a stronger air supply effect.

[0230] When the wind sense adjustment bar is slid in the second direction, the air supply effect displayed in the air supply visualization area will be weakened, wherein the weakening of the air supply effect can be achieved by reducing the number, density or flow speed of air flow lines to make them look more sparse and slow, thereby indicating a weaker air supply effect.

[0231] In this way, the wind sense adjustment bar provides an intuitive interactive method. Users can adjust the air supply sensation through simple sliding operations. Sliding in one direction enhances the effect, and sliding in the opposite direction weakens the effect. It is convenient and fast, and users can make subtle adjustments through the sliding bar to achieve precise control of the air supply effect, thereby improving control accuracy. Finally, when the user slides the adjustment bar, the air supply visualization area immediately reflects the adjustment result, thereby improving the efficiency of the adjustment.

[0232] It can also be explained that since the target blade visualization area corresponds to the control status display area of ​​the blade sub-control in the device simulation control, during the air supply somatosensory adjustment process, the rotation change status of the blade sub-control in the target blade visualization area will be displayed accordingly.

[0233] For example, in response to a sliding operation on the wind sense adjustment bar in a first direction, the rotation angle of the blade sub-control in the blade visualization area increases accordingly. For another example, in response to a sliding operation on the wind sense adjustment bar in a second direction, the rotation angle of the blade sub-control in the blade visualization area relative to the carrier board sub-control decreases accordingly.

[0234] As an example, when the plane where the blade sub-control is located is parallel to the length direction of the carrier board sub-control, the rotation angle of the blade sub-control relative to the carrier board sub-control is the smallest, and the amount of air blowing out of the outlet after passing through the blade sub-control is the smallest.

[0235] When the plane where the blade subcontrol is located is perpendicular to the length direction of the carrier board subcontrol, the rotation angle of the blade subcontrol relative to the carrier board subcontrol is the largest, and at this time, the air volume blowing out of the air outlet after passing through the blade subcontrol is the largest.

[0236] In this way, the rotation of the blades simulates the blade adjustment process in actual physical devices, providing users with a more realistic interactive experience and helping to improve user operational satisfaction. The rotation angle of the blade subcontrol changes instantly with the sliding of the wind adjustment bar, providing real-time feedback, which can help users quickly confirm whether the adjustment has achieved the expected effect and improve adjustment efficiency.

[0237] On the basis of the above implementation, the wind sense adjustment control included in the card displayed on the operation interface may also be at least two gear controls; any gear control is used to indicate the air supply sensation corresponding to the preset air supply effect.

[0238] Among them, the air supply sensation corresponding to each of the at least two gear controls is different.

[0239] In one example, the wind sense adjustment control includes two gear controls, namely, a weak wind control and a strong wind control. When the user clicks the weak wind control, the wind effect displayed in the wind visualization area is weaker than the wind effect when the user clicks the strong wind control. And when the user clicks the weak wind control, the rotation angle of the blade sub-control in the blade visualization area relative to the carrier board sub-control is a first preset angle, and when the user clicks the strong wind control, the rotation angle of the blade sub-control in the blade visualization area relative to the carrier board sub-control is a second preset angle, wherein the first preset angle is smaller than the second preset angle.

[0240] In another example, the wind sense adjustment control includes three gear controls, namely, no wind control, light breeze control, and strong wind control. When the user clicks the no wind control, light breeze control, and strong wind control respectively, the air supply effect displayed in the air supply visualization area gradually increases, and when the user clicks the no wind control, the rotation angle of the blade sub-control in the blade visualization area relative to the carrier board sub-control is 0 degrees, when the user clicks the strong wind control, the rotation angle of the blade sub-control in the blade visualization area relative to the carrier board sub-control is 90 degrees, and when the user clicks the light breeze control, the rotation angle of the blade sub-control in the blade visualization area relative to the carrier board sub-control is a fixed value between 0 degrees and 90 degrees.

[0241] In another example, the wind sense adjustment control includes four gear controls, namely, no wind control, light wind control, strong wind control and strong wind control. When the user clicks the no wind control, light wind control, strong wind control and strong wind control respectively, the change of the air supply effect displayed in the air supply visualization area and the change of the rotation angle of the blade sub-control relative to the carrier board sub-control in the blade visualization area refer to the above examples and will not be repeated here.

[0242] In this way, by providing preset gear controls, users can quickly select the desired air supply effect and improve selection efficiency. Each gear control corresponds to a specific air supply sensation, and users can get a consistent experience in different usage scenarios, making it easier for users to predict and understand the behavior of the device and enhance the user experience.

[0243] Optionally, the wind sense adjustment control also includes: at least two gear controls and a wind sense adjustment bar, and any gear control is used to indicate the air supply sensation corresponding to a preset air supply effect, wherein the air supply sensation corresponding to each gear control of at least two gear controls is different.

[0244] For any gear control, when the gear control is operated, the slider on the wind sense adjustment bar slides to a position corresponding to the gear control, and each gear control corresponds to a position of the slider on the wind sense adjustment bar.

[0245] When the wind sense adjustment bar is adjusted, the corresponding gear control is highlighted according to the position of the slider in the wind sense adjustment bar, wherein each gear control corresponds to a position range of the slider on the wind sense adjustment bar.

[0246] In this way, by corresponding each gear control to a specific position or position range on the adjustment bar, the user can select and adjust the air supply sensation more accurately.

[0247] In some scenarios, during the air supply somatosensory adjustment operation, the card displayed on the operation interface will block the target blade visualization area, resulting in the user being unable to intuitively feel the changing state of the blade sub-control during the adjustment process.

[0248] Based on this, the interface display method provided in the present application also includes: in response to user operation, the operation interface also displays: an enlarged image of the target wind guide visualization area; wherein the enlarged image changes accordingly according to the display content of the target wind guide visualization area.

[0249] Specifically, the display content of the target wind guide visualization area is any corresponding blade, and the rotation angle of the blade relative to the carrier plate will change with the user's air supply adjustment operation on the device simulation control or the operation on the card for adjusting the air supply sensation of the target wind guide blade. In response to the user's operation on the target wind guide visualization area, an enlarged image of the target wind guide visualization area will also be displayed on the operation page, wherein the enlarged image is an image after the target wind guide visualization area is enlarged, so the enlarged image will change accordingly according to the display content of the target wind guide visualization area, that is, the enlarged image will change according to the change in the rotation angle of the blade relative to the carrier plate.

[0250] In this way, by magnifying the image, the user can observe the details of the target wind guide visualization area more clearly, thereby enabling the user to operate and adjust more accurately and reduce the possibility of misoperation.

[0251] On the basis that the above-mentioned device simulation controls can be independently controlled in partitions, next, taking any of the above-mentioned partitions as an example, a method for responding to air supply adjustment operations and displaying the air supply effect corresponding to the air supply adjustment operation in the air supply visualization area is described in detail.

[0252] As a possible implementation, when the air supply adjustment operation is a sliding operation along the length direction of the air outlet in the device simulation control, Figure 8 A schematic diagram of an air supply adjustment operation interface provided in an embodiment of the present application Figure 2 , the following combination Figure 8The interface display method for controlling the air handling device in response to the air supply adjustment operation is described in detail. It should be noted that when the user performs a sliding operation along the length direction of the air outlet in the device simulation control, the air supply range of the air handling device in the left and right directions can be adjusted.

[0253] In the present application, the air supply adjustment operation includes: a sliding operation along the length direction of the air outlet in the device simulation control, and the sliding operation is used to adjust the air supply range of the device simulation control.

[0254] It should be understood that the length direction of the air outlet is consistent with the length direction of the device simulation control, and the air supply range of the device simulation control increases or decreases along the length direction of the air outlet.

[0255] In the present application, the sliding operation can be performed by the user using a finger or a pointer device on the operation interface. When the user performs the sliding operation, the air supply visualization area of ​​the operation interface will update the visualization representation of the air supply range in real time. Figure 8 In the operation interface shown, the left and right boundaries of the air supply range expand or contract as the sliding operation proceeds. Figure 8 As shown, in this application, the air supply visualization area can be filled with a color that is different from the color of the operation interface to represent the air supply range. The larger the air supply range, the larger the filling range. Optionally, the air supply intensity is represented by the degree of color difference. The greater the degree of color difference, the stronger the air supply intensity.

[0256] Regarding the sliding operation, as a possible implementation, the air supply adjustment area includes an air supply adjustment control, and the sliding operation is a sliding operation on the air supply adjustment control. Specifically, the air supply adjustment control is at least one of the following forms: a floating control or a control bar. The user implements the sliding operation by sliding the floating control or the control bar.

[0257] More specifically, the air supply adjustment control can be always displayed in the air supply adjustment area of ​​the corresponding partition, or it can be awakened after the user's preset operation and displayed in the air supply adjustment area of ​​the operation interface. Among them, the preset operation can be a long press or click operation at any position in the air supply adjustment area, and it can also be a voice wake-up operation, which is not limited in this application. It should be understood that the long press or click operation can be performed by setting an event listener in the air supply adjustment area to listen to the user's long press or click operation. The voice wake-up operation can wake up the air supply adjustment control through a voice command by integrating voice recognition technology, such as using a voice recognition engine to monitor and recognize specific wake-up words or commands, and trigger the wake-up of the control when a preset voice command is recognized.

[0258] In this application, by setting a dedicated air supply adjustment control in the air supply adjustment area, the user can perform more precise sliding operations to adjust the air supply range. This design allows the user to make detailed adjustments to the air supply, improving the controllability of the device and the user's control over the device functions. In addition, the air supply adjustment control provides a clear interaction point, which enables users to understand how to operate more intuitively, reduce the possibility of misoperation, and improve the overall user experience. On the other hand, the ability to concentrate sliding operations on specific adjustment controls reduces interference elements on the interface, making the user interface clearer and easier to navigate.

[0259] Regarding the sliding operation, as another possible implementation manner, the sliding operation may specifically be a sliding gesture within the air supply adjustment area, and accordingly, the sliding operation is acquired using gesture recognition technology or the like.

[0260] In addition, in the present application, the sliding operation is specifically a sliding operation toward the edge of the air outlet, or a sliding operation toward the center of the air outlet. On this basis, if the sliding operation is implemented by a floating control, the user can implement the sliding operation by sliding the floating control toward the edge of the air outlet or toward the center of the air outlet. Figure 8 In the operation interface shown, the user implements the sliding operation by sliding the floating control to the right or left, and accordingly, the air supply range of the air supply visualization area increases or decreases.

[0261] Specifically, in the present application, in response to the air supply operation on the air supply adjustment area, the air supply effect corresponding to the air supply adjustment operation is displayed in the air supply visualization area, including: in response to the sliding operation toward the edge side of the air outlet, the air supply range displayed in the air supply visualization area increases accordingly; or, in response to the sliding operation toward the center side of the air outlet, the air supply range displayed in the air supply visualization area decreases accordingly.

[0262] It should be understood that in the present application, for any air supply adjustment area, the air supply range is specifically adjusted from the center side of the air outlet to the edge side of the air outlet, that is, the edge of the air supply range located on the center side of the air outlet is immutable, and the edge of the air supply range located on the edge side of the air outlet is variable. Therefore, the sliding operation in the present application is specifically relative to the edge of the air supply unit located on the edge side of the air outlet.

[0263] On this basis, the user adjusts the edge of the air supply range at the edge of the air outlet by sliding toward the edge of the air outlet. The longer the sliding distance is, the farther the edge is from the center of the air outlet, and the larger the air supply range is. The user adjusts the edge of the air supply range at the edge of the air outlet by sliding toward the center of the air outlet. The longer the sliding distance is, the closer the edge is to the center of the air outlet, and the smaller the air supply range is.

[0264] refer to Figure 8 ,exist Figure 8 In the operation interface shown, when the user slides to the left in the air supply adjustment area on the left, that is, slides toward the edge of the air outlet, the air supply range displayed in the air supply visualization area on the left will increase.

[0265] Through the above settings, when the user slides toward the edge of the air outlet, the corresponding air supply range increases, and when the user slides toward the center of the air outlet, the corresponding air supply range decreases. The corresponding relationship between the sliding operation and the air supply range enables the user to intuitively control the size of the air supply range by sliding the distance, providing precise control capabilities. In addition, the corresponding relationship between the sliding operation and the air supply range conforms to the adjustment logic of the air supply range, thereby effectively avoiding misoperation.

[0266] Optionally, in actual applications, the operation interface may also include a numerical display area, which may be a window or text box, for displaying the specific numerical value of the current air supply range, such as a percentage or a specific wind speed value. When the user performs a sliding operation, the numerical display area is updated in real time in response to the sliding operation to reflect the current air supply range in real time. It is understandable that this process can be implemented by programming, monitoring sliding events and calculating the corresponding numerical values ​​based on the sliding position. Further optionally, in order to improve readability, the numerical display in the numerical display area can use a larger font and a high-contrast color, which is not limited in this application.

[0267] In the present application, when the user performs a sliding operation in the air supply adjustment area, the control system of the corresponding air handling device captures the change of the sliding position in real time and synchronously applies the corresponding air supply range. That is, each sliding operation triggers a sliding event, and after receiving the sliding event, the air handling device responds to the sliding event and adjusts the air supply range.

[0268] Optionally, in actual applications, the operation interface may also include a sliding operation confirmation area. After the user completes the sliding operation in the air supply adjustment area, the user performs a confirmation operation in the sliding operation confirmation area to trigger a sliding event, so that the corresponding air treatment device responds to the sliding event and adjusts the air supply range. Specifically, the confirmation operation can be implemented by double-clicking, continuous single-clicking, and other gestures in the sliding operation confirmation area, or a confirmation button is set in the sliding operation confirmation area, and the user triggers the sliding event by clicking the confirmation button or long pressing the confirmation button. This is not limited in the present application. Accordingly, the sliding operation confirmation area can also be used through a window or text box to display a confirmation message after the air treatment device responds to the sliding event and completes the adjustment of the air supply range, to prompt the user that the air supply range adjustment has been successfully applied.

[0269] In the interface display method for controlling air handling equipment provided in this embodiment, the air supply adjustment operation is specifically a sliding operation along the length direction of the air outlet in the device simulation control, so that when the user needs to adjust the air supply range, on the one hand, he can adjust the air supply range simply and flexibly by sliding back and forth along the length direction of the air outlet, without complicated operation steps, thereby improving the user's operation efficiency. On the other hand, the sliding operation allows the user to accurately adjust the air supply range, that is, the user can fine-tune the air supply range as needed to achieve the ideal air flow effect, thereby realizing personalized settings according to user needs, improving the applicability of the equipment, and at the same time helping to improve user satisfaction.

[0270] like Figure 8 As shown, in the present application, the air supply adjustment area partially overlaps or completely overlaps with the air supply visualization area. On this basis, the sliding operation is a sliding operation within the air supply adjustment area. That is, the operation interface responds to the sliding operation triggered by the user within the air supply adjustment area, and displays the air supply effect corresponding to the sliding operation in the air supply visualization area.

[0271] In the present application, a visual air supply area is set on the operation interface, and the visual air supply area includes a partially or fully overlapping air supply adjustment area and an air supply visualization area. The user can adjust the air supply range by sliding in the visual air supply area, and the direction and distance of the sliding operation directly affect the air supply range.

[0272] In this application, by partially or completely overlapping the air supply adjustment area with the air supply visualization area, the interface design is made more concise, can adapt to different devices and screen sizes, and has high flexibility and scope of application; at the same time, it enables users to complete viewing and adjustment operations in the same interface area, reducing interface switching and operation steps, thereby simplifying the user's operation process and improving the user's operation efficiency. In addition, by adjusting and displaying in the same area, users can see their operation effects more clearly and promptly, which is conducive to reducing misoperation.

[0273] Optionally, in actual applications, the air supply adjustment area and the air supply display area may not overlap at all, which is not limited in the present application.

[0274] like Figure 8 As shown, in this application, the operation interface also includes a control visualization area for presenting the control state of the device simulation control. On this basis, the method of this embodiment also includes: in response to the air supply adjustment operation, displaying the control state corresponding to the air supply adjustment operation in the control visualization area.

[0275] Specifically, a control visualization area is defined on the operation interface, and the control visualization area can be an independent panel or integrated with other functional areas, which is not limited in this embodiment. In addition, in this application, graphical elements (such as icons, progress bars, color changes, etc.) are used to represent different states of controls, and different states correspond to corresponding icons or visual effects.

[0276] More specifically, in the present application, the update of the control state is achieved by the following contents: an event listener is set in the air supply adjustment area to capture the user's adjustment operation. When a sliding operation is detected, the state display in the space visualization area is updated according to the result of the sliding operation.

[0277] In the method provided in this embodiment, the graphical control status display can enable the user to more intuitively understand the current status and operation results of the device, improve the user's operation efficiency, and help improve user satisfaction.

[0278] like Figure 8 As shown, in the present application, the device simulation control includes an air guide control. The control visualization area includes an air guide control visualization area, and correspondingly, the control state includes the control state of the air guide control in the device simulation control.

[0279] Specifically, the wind guide control is a control corresponding to the wind guide control that can affect the air supply range, such as a control corresponding to the carrier plate, or a control corresponding to the blades on the carrier plate. By setting a wind guide control visualization area on the operation interface, the user can more intuitively know the adjustment status of each part of the wind guide control.

[0280] Optionally, the air guide control includes a bearing plate sub-control; the air guide control visualization area includes a bearing plate visualization area, and accordingly, the control state also includes an extension state of the bearing plate sub-control relative to the air outlet. It should be understood that the bearing plate sub-control corresponds to the bearing plate in the air guide control of the air handling device, and the greater the extension degree of the bearing plate relative to the air outlet, the larger the corresponding air supply range.

[0281] like Figure 8 As shown, in this application, the carrier board visualization area is specifically the location of the carrier board sub-control on the device simulation control, and the user can intuitively see the extension state of the carrier board sub-control by observing the device simulation control. In actual applications, in order to enable users to observe the carrier board sub-control more clearly, the carrier board visualization area can also be set in other areas of the operation interface, and accordingly, the carrier board sub-control is represented in the form of an icon, which is not limited in this application.

[0282] On this basis, in response to the air supply adjustment operation, the control state corresponding to the air supply adjustment operation is displayed in the control visualization area, including: in response to the sliding operation toward the edge side of the air outlet, the extension degree of the carrier board sub-control displayed in the carrier board visualization area relative to the air outlet increases accordingly; or, in response to the sliding operation toward the center side of the air outlet, the extension degree of the carrier board sub-control displayed in the carrier board visualization area relative to the air outlet decreases accordingly.

[0283] Specifically, in the present application, for a sliding operation toward the edge side of the air outlet, the extension degree of the carrier board sub-control displayed in the visualization area of ​​the carrier board relative to the air outlet increases accordingly, thereby increasing the air supply range; for a sliding operation toward the center side of the air outlet, the extension degree of the carrier board sub-control displayed in the visualization area of ​​the carrier board relative to the air outlet decreases accordingly, thereby reducing the air supply range.

[0284] Through the above settings, when the user performs a sliding operation, the sub-controls of the carrier board in the visualization area of ​​the carrier board can be updated in real time, so that the user can intuitively see the changing state of the air handling device through the sub-controls of the carrier board, and accurately adjust the extension degree of the sub-controls of the carrier board through the sliding operation, so as to accurately control the air supply range. In addition, in the present application, the position of the visualization area of ​​the carrier board can be flexibly set, which increases the scope of use of the design.

[0285] Optionally, the wind guide control includes a blade sub-control; the wind guide control visualization area includes a blade visualization area; accordingly, the control state includes the rotation state of the blade sub-control.

[0286] like Figure 8 As shown, in this application, the blade visualization area is an area outside the area where the device simulation control is located, and a blade icon is set in the blade visualization area to represent the blade sub-control. In actual applications, the blade visualization area can also be the area where the blade sub-control is located on the device simulation control, which is not limited in this application.

[0287] In the present application, the blade visualization area is made inconsistent with the area where the device simulation control is located, and an additional leaf icon is used to represent the blade sub-control, so that the user can observe the changing status of the blade sub-control more clearly. At the same time, there is no need to enlarge the area where the device simulation control is located, which provides more possibilities for the design of the operation interface.

[0288] On this basis, in response to the air supply adjustment operation, the control state corresponding to the air supply adjustment operation is displayed in the control visualization area, including: in response to the sliding operation toward the edge side of the air outlet, the rotation angle of the blade sub-control displayed in the blade visualization area increases accordingly; or, in response to the sliding operation toward the center side of the air outlet, the rotation angle of the blade sub-control displayed in the blade visualization area decreases accordingly.

[0289] Specifically, in the present application, for a sliding operation toward the edge side of the air outlet, the rotation degree of the blade sub-control displayed in the blade visualization area relative to the air outlet increases accordingly, thereby increasing the air supply range; for a sliding operation toward the center side of the air outlet, the extension degree of the blade sub-control displayed in the blade visualization area relative to the air outlet decreases accordingly, thereby reducing the air supply range.

[0290] It should be understood that for the sliding operation toward the edge side of the air outlet, the rotation degree of the blade sub-control relative to the air outlet increases accordingly within the preset angle range. Specifically, the preset angle range is related to the angle of the current blade relative to the carrier plate. For example, when the angle of the blade relative to the carrier plate is 0° (if the carrier plate is not extended at this time, the wind delivered from the air outlet blows out vertically from between two adjacent blades), the preset angle range is 0°-45°.

[0291] Through the above settings, when the user performs a sliding operation, the blade sub-control in the blade visualization area can be updated in real time, so that the user can intuitively see the changing state of the air handling device through the blade sub-control, and accurately adjust the rotation angle of the blade sub-control through the sliding operation, thereby accurately controlling the air supply range. In addition, in the present application, the position of the blade visualization area can be flexibly set, which increases the scope of use of the design.

[0292] As a preferred embodiment, the wind guide control includes a carrier plate sub-control and a blade sub-control; the wind guide control visualization area includes a carrier plate visualization area and a blade visualization area, and accordingly, the control state includes the extended state of the carrier plate sub-control and the rotation state of the blade sub-control.

[0293] On this basis, in response to the air supply adjustment operation, the control state corresponding to the air supply adjustment operation is displayed in the control visualization area, including: in response to the sliding operation toward the edge side of the air outlet, the extension degree of the carrier plate sub-control displayed in the carrier plate visualization area relative to the air outlet increases accordingly, and the rotation angle of the blade sub-control displayed in the blade visualization area increases accordingly; or, in response to the sliding operation toward the center side of the air outlet, the extension degree of the carrier plate sub-control displayed in the carrier plate visualization area relative to the air outlet decreases accordingly, and the rotation angle of the blade sub-control displayed in the blade visualization area decreases accordingly.

[0294] It should be understood that, corresponding to the control logic of the carrier plate and blades of the air treatment equipment, the states of the carrier plate sub-control and the blade sub-control can change synchronously, or the state of the carrier plate sub-control can be changed first, and when the state of the carrier plate sub-control reaches the limit, the state of the blade sub-control can be changed, or vice versa. This is not limited in the present embodiment.

[0295] Through the above arrangement, on the one hand, the air supply range can be quickly adjusted in response to the user's sliding operation, and on the other hand, the user can clearly observe the current state of the carrier plate and the blades, which is convenient for the user to make precise adjustments.

[0296] As another possible implementation, when the air supply adjustment operation is a sliding operation along the width direction of the air outlet in the device simulation control, Fig. 9 A schematic diagram of an air supply adjustment operation interface provided in an embodiment of the present application Figure 3 , the following combination Fig. 9 The interface display method for controlling the air handling device in response to the air supply adjustment operation is described in detail. It should be noted that when the user performs a sliding operation along the width direction of the air outlet in the device simulation control, the air supply height of the air handling device can be adjusted.

[0297] In the present application, the air supply adjustment operation includes: a sliding operation along the width direction of the air outlet in the device simulation control, and the sliding operation is used to adjust the air supply height of the device simulation control. It should be understood that the width direction of the air outlet is consistent with the width direction of the device simulation control, and the air supply height of the device simulation control becomes higher or lower along the width direction of the air outlet.

[0298] In the present application, the sliding operation can be performed by the user using a finger or a pointer device on the operation interface. When the user performs the sliding operation, the air supply visualization area of ​​the operation interface will update the visualization representation of the air supply height in real time. Fig. 9 In the operation interface shown, the air supply height increases or decreases as the sliding operation proceeds. Fig. 9 As shown, in this application, the air supply visualization area can be filled with a color that is different from the color of the operation interface to represent the air supply height. The higher the air supply height, the smaller the filling range. Optionally, the air supply intensity can be represented by the degree of color difference. The greater the degree of color difference, the stronger the air supply intensity.

[0299] Regarding the sliding operation in the present application, as a possible implementation method, the air supply adjustment area includes an air supply adjustment control, and the sliding operation is a sliding operation on the air supply adjustment control. Specifically, the air supply adjustment control is at least one of the following forms: a floating control or a control bar. The user implements the sliding operation by sliding the floating control or the control bar.

[0300] More specifically, for the definition of the air supply adjustment control, please refer to the description in the aforementioned embodiment, which will not be repeated here. In the present application, by providing a special air supply adjustment control in the air supply adjustment area, the user can perform a more precise sliding operation to adjust the air supply height. This design allows the user to make detailed adjustments to the air supply, which improves the controllability of the device and the user's control over the device functions. In addition, the air supply adjustment control provides a clear interaction point. On the one hand, it enables the user to understand how to operate more intuitively, reduces the possibility of misoperation, and improves the overall user experience. On the other hand, it can concentrate the sliding operation on a specific adjustment control, reducing interference elements on the interface, making the user interface clearer and easier to navigate.

[0301] Referring to the aforementioned embodiments, in the present application, the sliding operation may also be implemented through other possible implementation methods, which are not limited in the present application.

[0302] In addition, in the present application, the sliding operation is specifically a sliding operation in a direction away from the device simulation control, or a sliding operation in a direction close to the device simulation control. On this basis, if the sliding operation is implemented by a floating control, the user can implement the sliding operation by sliding the floating control in a direction close to or away from the device simulation control. Fig. 9 In the operation interface shown, the user implements the sliding operation by sliding the floating control downward or upward, and accordingly, the air supply height in the air supply visualization area becomes lower or higher.

[0303] Specifically, in the present application, in response to the air supply operation on the air supply adjustment area, the air supply effect corresponding to the air supply adjustment operation is displayed in the air supply visualization area, including: in response to the sliding operation in the direction away from the device simulation control, the air supply height displayed in the air supply visualization area is correspondingly lowered; or, in response to the sliding operation in the direction close to the device simulation control, the air supply height displayed in the air supply visualization area is correspondingly increased.

[0304] As an example, for Fig. 9 In the operation interface shown, when the user slides the floating control downward, the air supply height displayed in the air supply visualization area decreases accordingly. When the user slides the floating control upward, the air supply height displayed in the air supply visualization area increases accordingly.

[0305] Through the above settings, when the user slides away from the device simulation control, the corresponding air supply height decreases, and when the user slides toward the device simulation control, the corresponding air supply height increases. The corresponding relationship between the sliding operation and the air supply height enables the user to intuitively control the height of the air supply by sliding the distance, providing precise control capabilities. In addition, the corresponding relationship between the sliding operation and the air supply height conforms to the adjustment logic of the air supply range, thereby effectively avoiding misoperation.

[0306] Optionally, in actual applications, the operation interface may further include a numerical display area for displaying the current air supply height. Specifically, the description of the numerical display area can refer to the definition of the aforementioned embodiment, which will not be repeated here.

[0307] In the present application, when the user performs a sliding operation in the air supply adjustment area, the control system of the corresponding air handling device captures the change of the sliding position in real time and synchronously applies the corresponding air supply height. That is, each sliding operation triggers a sliding event, and after receiving the sliding event, the air handling device responds to the sliding event and adjusts the air supply height.

[0308] Optionally, in actual applications, the operation interface may further include a sliding operation confirmation area, which is used to trigger a sliding event after the user performs a sliding operation and performs a confirmation operation in the sliding operation confirmation area, so that the corresponding air handling device adjusts the air supply height in response to the sliding event. Specifically, the description of the confirmation operation and other descriptions of the sliding operation confirmation area can be found in the aforementioned embodiment, which will not be repeated here.

[0309] In the interface display method for controlling air handling equipment provided in this embodiment, the air supply adjustment operation is specifically a sliding operation along the width direction of the air outlet in the device simulation control, so that when the user needs to adjust the air supply height, on the one hand, he can adjust the air supply height simply and flexibly by sliding back and forth along the width direction of the air outlet, without complicated operation steps, thereby improving the user's operation efficiency. On the other hand, the sliding operation allows the user to accurately adjust the air supply height, that is, the user can fine-tune the air supply height as needed to achieve the ideal air supply effect, thereby realizing personalized settings according to user needs, improving the applicability of the equipment, and at the same time helping to improve user satisfaction.

[0310] like Figure 8 As shown, in the present application, the air supply adjustment area partially overlaps or completely overlaps with the air supply visualization area. On this basis, the sliding operation is a sliding operation within the air supply adjustment area. That is, the operation interface responds to the sliding operation triggered by the user within the air supply adjustment area, and displays the air supply height corresponding to the sliding operation in the air supply visualization area.

[0311] More specifically, for the settings of the air supply adjustment area and the air supply visualization area and the corresponding technical effects, please refer to the aforementioned embodiments, which will not be repeated here.

[0312] like Fig. 9 As shown, in this application, the operation interface also includes a control visualization area for presenting the control state of the device simulation control. On this basis, the method of this embodiment also includes: in response to the air supply adjustment operation, displaying the control state corresponding to the air supply adjustment operation in the control visualization area.

[0313] Specifically, the limitation of the control visualization area and the control state and the corresponding technical effects can be specifically referred to in the aforementioned embodiments, which will not be described in detail here.

[0314] Unlike the above-mentioned embodiments, in the present application, the wind guide control is specifically a control corresponding to the wind guide control that can affect the air supply height, such as a control corresponding to the carrier plate and a control corresponding to the wind guide plate. By setting a wind guide control visualization area on the operation interface, the user can more intuitively know the adjustment status of each part of the wind guide control.

[0315] Optionally, in this embodiment, the wind guide control includes a carrier plate sub-control; the wind guide control visualization area includes a carrier plate visualization area, and accordingly, the control state includes the rotation state of the carrier plate sub-control relative to the air outlet. It should be understood that the carrier plate sub-control corresponds to the carrier plate in the wind guide control of the air handling device, and its rotation state relative to the air outlet can affect the air supply height of the air handling device. Among them, the definition of the carrier plate visualization area can be specifically referred to the aforementioned embodiment, and will not be repeated here.

[0316] On this basis, in response to the air supply adjustment operation, the control state corresponding to the air supply adjustment operation is displayed in the control visualization area, including: in response to the sliding operation in the direction away from the device simulation control, the rotation angle of the carrier board sub-control displayed in the carrier board visualization area relative to the air outlet increases accordingly; or, in response to the sliding operation in the direction close to the device simulation control, the rotation angle of the carrier board sub-control displayed in the carrier board visualization area relative to the air outlet decreases accordingly.

[0317] Specifically, in the present embodiment, for a sliding operation in a direction away from the device simulation control, the rotation angle of the carrier board sub-control displayed in the carrier board visualization area relative to the air outlet increases accordingly, thereby reducing the air supply height; for a sliding operation in a direction close to the device simulation control, the rotation angle of the carrier board sub-control displayed in the carrier board visualization area relative to the air outlet decreases accordingly, thereby increasing the air supply height.

[0318] Through the above settings, when the user performs a sliding operation, the sub-controls of the carrier board in the visualization area of ​​the carrier board can be updated in real time, so that the user can intuitively see the changing state of the air handling device through the sub-controls of the carrier board, and accurately adjust the rotation angle of the sub-controls of the carrier board through the sliding operation, so as to accurately control the air supply height. In addition, in this embodiment, the position of the visualization area of ​​the carrier board can be flexibly set, which increases the scope of use of the design.

[0319] Optionally, the wind deflector control includes an wind deflector sub-control; the wind deflector sub-control visualization area includes an wind deflector visualization area; accordingly, the control state includes the rotation state of the wind deflector sub-control.

[0320] like Fig. 9 As shown, in this embodiment, the air deflector visualization area is the area where the air deflector sub-control is located on the device simulation control, and can also be an area outside the area where the device simulation control is located, and a corresponding air deflector icon is set to represent the air deflector sub-control, which is not limited in this embodiment.

[0321] On this basis, in response to the air supply adjustment operation, the control state corresponding to the air supply adjustment operation is displayed in the control visualization area, including: in response to the sliding operation in the direction away from the device simulation control, the rotation angle of the air deflector sub-control displayed in the air deflector visualization area increases accordingly; or, in response to the sliding operation in the direction close to the device simulation control, the rotation angle of the air deflector sub-control displayed in the air deflector visualization area decreases accordingly.

[0322] Specifically, in this embodiment, for a sliding operation in a direction away from the device simulation control, the rotation angle of the air deflector sub-control displayed in the air deflector visualization area relative to the air outlet increases accordingly, thereby reducing the air supply height; for a sliding operation in a direction close to the device simulation control, the rotation angle of the air deflector sub-control displayed in the air deflector visualization area relative to the air outlet decreases accordingly, thereby increasing the air supply height.

[0323] Through the above settings, when the user performs a sliding operation, the air deflector sub-control in the air deflector visualization area can be updated in real time, so that the user can intuitively see the changing state of the air handling device through the air deflector sub-control, and accurately adjust the rotation angle of the air deflector sub-control through the sliding operation, thereby accurately controlling the air supply range. In addition, in this embodiment, the position of the air deflector visualization area can be flexibly set, which increases the scope of use of the design.

[0324] As a preferred embodiment, the wind guide control includes a carrier plate sub-control and an wind guide plate sub-control; the wind guide control visualization area includes a carrier plate visualization area and an wind guide plate visualization area, and accordingly, the control state includes the extended state of the carrier plate sub-control and the rotation state of the wind guide plate sub-control.

[0325] On this basis, in response to the air supply adjustment operation, the control state corresponding to the air supply adjustment operation is displayed in the control visualization area, including: in response to the sliding operation in the direction away from the device simulation control, the rotation angle of the carrier plate sub-control displayed in the carrier plate visualization area relative to the air outlet increases accordingly, and the rotation angle of the air guide plate sub-control displayed in the air guide plate visualization area increases accordingly; or, in response to the sliding operation in the direction close to the device simulation control, the rotation angle of the carrier plate sub-control displayed in the carrier plate visualization area relative to the air outlet decreases accordingly, and the rotation angle of the air guide plate sub-control displayed in the air guide plate visualization area decreases accordingly.

[0326] It should be understood that, corresponding to the control logic of the support plate and the air guide plate of the air handling equipment, the states of the support plate sub-control and the air guide plate sub-control can change synchronously, or the state of the support plate sub-control can be changed first, and when the state of the support plate sub-control reaches the limit, the state of the air guide plate sub-control can be changed, and vice versa. This is not limited in the present embodiment.

[0327] Through the above arrangement, on the one hand, the air supply height can be quickly adjusted in response to the user's sliding operation, and on the other hand, the user can clearly observe the current status of the carrying plate and the air guide plate, which is convenient for the user to make precise adjustments.

[0328] like Figure 8 or Fig. 9 As shown, in this embodiment, the operation interface also includes an air volume adjustment control for adjusting the air volume of the device simulation control. Based on this setting, the user can adjust the air volume delivered by the air outlet of the air handling device.

[0329] As a design, the air volume adjustment control includes: an air volume adjustment bar; on this basis, as a possible implementation method, the operation interface responds to the user's sliding operation on the air volume adjustment bar in the third direction, and the air supply effect corresponding to the air supply air volume displayed in the air supply visualization area is increased or decreased accordingly. Among them, the third direction is the length direction of the air outlet. Figure 8 and Fig. 9 In the operation interface shown, the third direction is specifically the left and right direction.

[0330] In this embodiment, when sliding to the left, the air supply effect corresponding to the air supply volume is weakened, and when sliding to the right, the air supply effect of the air supply volume is enhanced, and vice versa. More specifically, in this embodiment, the effect of the air supply volume is characterized by the degree of difference between the color of the filled area in the air supply visualization area and the background color of the operation interface. The greater the degree of difference, the stronger the air supply volume. In actual applications, the effect of the air supply volume can also be characterized by the color transparency of the filled area. The lower the transparency, the stronger the air supply volume. Other methods can also be used to characterize the effect of the air supply volume, which is not limited in this embodiment.

[0331] As another possible implementation, in response to the user sliding the air volume adjustment bar in the fourth direction, the air supply effect corresponding to the air volume displayed in the air supply visualization area is increased or decreased accordingly. Figure 8 and Fig. 9 In the operation interface shown, the fourth direction is specifically the up and down direction.

[0332] In this embodiment, when sliding downward, the air supply effect corresponding to the air supply volume is weakened, and when sliding upward, the air supply effect corresponding to the air supply volume is enhanced, and vice versa.

[0333] Optionally, the operation interface may further include a data display area for responding to the user's air volume adjustment operation and displaying the current air volume.

[0334] As another design, the air volume adjustment control may also include a list control for displaying different air volumes, and the user selects the target air volume of the list control by clicking, double-clicking, or sliding, etc., to complete the air volume adjustment. In actual applications, the air volume adjustment control may also be implemented by other controls, which is not limited in this embodiment.

[0335] In the method provided in this embodiment, by setting air volume adjustment controls (such as air volume adjustment bars and list controls, etc.), users are provided with a variety of convenient ways to adjust the air volume, which increases the interactivity between the user and the operation interface, allowing the user to flexibly adjust the air volume according to their own needs. In addition, the effect of the air volume is characterized by the difference between the color of the fill area in the air supply visualization area and the background color of the operation interface or the color transparency, so that the user can intuitively see the changes brought about by the air volume adjustment, which improves the user's understanding and control of the operating status of the equipment.

[0336] On the basis of the above implementation, the operation interface provided in the embodiment of the present application also includes: a switch control.

[0337] The switch control is used to switch the device simulation control between the power-on state and the power-off state.

[0338] Specifically, the user can turn on or off the switch control to put the device simulation control in the turned-on state or the turned-off state.

[0339] Optionally, the user can power on or off the device by long pressing, short pressing, or pressing the device a preset number of times within a preset time.

[0340] In this way, the switch control provides a simple and direct way to turn the device on or off, simplifying the operation process and improving the user experience.

[0341] Optionally, after the user performs a shutdown operation, the wind shield control in the device simulation control is in a closed state, and all controls in the operation interface except the switch control are inoperable.

[0342] After the user turns on the device, the wind shield control in the device simulation control is in the open state, and all controls in the operation interface can be operated.

[0343] Optionally, the operation interface provided in the embodiment of the present application also includes: a temperature adjustment control, wherein the temperature adjustment control is used to adjust the air outlet temperature of the device.

[0344] Among them, the temperature adjustment control is any control that can adjust the air outlet temperature of the device, and the present application does not limit the specific form of the temperature adjustment control.

[0345] Optionally, the temperature adjustment control is a roller selector, and different temperatures are selected by sliding the roller.

[0346] It should be noted here that the numerical values ​​and numerical ranges involved in this application are approximate values. Due to the influence of the manufacturing process, there may be a certain range of errors, which can be considered negligible by those skilled in the art.

[0347] In the description of the embodiments of the present application, it should be noted that, unless otherwise clearly specified and limited, the terms "installed", "connected", and "connected" should be understood in a broad sense, for example, it can be a fixed connection, or it can be an indirect connection through an intermediate medium, it can be the internal connection of two elements or the interaction relationship between two elements. For ordinary technicians in this field, the specific meanings of the above terms in the embodiments of the present application can be understood according to specific circumstances.

[0348] In the description of the present application, it should be understood that the terms used, such as “center”, “length”, “width”, “thickness”, “top”, “bottom”, “up”, “down”, “left”, “right”, “front”, “back”, “vertical”, “horizontal”, “inside”, “outside”, “axial”, “circumferential”, etc., to indicate positions or positional relationships are based on the positions or positional relationships shown in the accompanying drawings, and are only for the convenience of describing the present invention and simplifying the description, and do not indicate or imply that the position or component referred to must have a specific orientation, a specific structure and operation, and therefore should not be understood as a limitation on the present invention.

[0349] In the embodiments of the present application, the devices or elements referred to or implied must have a specific orientation, be constructed and operated in a specific orientation, and therefore cannot be understood as limiting the embodiments of the present application. In the description of the embodiments of the present application, the meaning of "multiple" is two or more, unless otherwise precisely and specifically specified.

[0350] The terms "wind guide plate", "wind guide structure", "third", "fourth", etc. (if any) in the description and claims of the embodiments of the present application and the above drawings are used to distinguish similar objects, and are not necessarily used to describe a specific order or sequence. It should be understood that the terms used in this way can be interchangeable where appropriate, so that the embodiments of the present application described herein, for example, can be implemented in an order other than those illustrated or described herein.

[0351] In addition, the terms "comprises," "comprising," and "having," and any variations thereof, are intended to cover non-exclusive inclusions. For example, a process, method, system, product, or apparatus that includes a series of steps or elements is not necessarily limited to those steps or elements explicitly listed, but may include other steps or elements not explicitly listed or inherent to such process, method, product, or apparatus.

[0352] The term "plurality" in this article refers to two or more than two. The term "and / or" in this article is only a description of the association relationship of associated objects, indicating that there can be three relationships. For example, A and / or B can represent: A exists alone, A and B exist at the same time, and B exists alone. In addition, the character " / " in this article generally indicates that the previous and next associated objects are in an "or" relationship; in a formula, the character " / " indicates that the previous and next associated objects are in a "division" relationship.

[0353] It should be understood that the various numerical numbers involved in the embodiments of the present application are only used for the convenience of description and are not used to limit the scope of the embodiments of the present application.

[0354] It can be understood that in the embodiments of the present application, the size of the serial numbers of the above-mentioned processes does not mean the order of execution. The execution order of each process should be determined by its function and internal logic, and should not constitute any limitation on the implementation process of the embodiments of the present application.

Claims

1. An interface display method for controlling air handling equipment, characterized in that: include: Displaying an operation interface of a device simulation control corresponding to the device simulation control; wherein the operation interface includes: an air supply adjustment area and an air supply visualization area; the air supply adjustment area is used to respond to the air supply adjustment operation of the device simulation control; the air supply visualization area is used to present the air supply effect of the device simulation control; In response to an air supply adjustment operation on the air supply adjustment area, an air supply effect corresponding to the air supply adjustment operation is displayed in the air supply visualization area.

2. The method according to claim 1, characterized in that The air supply adjustment operation includes: a sliding operation along the length direction of the air outlet in the device simulation control; the sliding operation is used to adjust the air supply range of the device simulation control.

3. The method according to claim 1, characterized in that The air supply adjustment area partially or completely overlaps with the air supply visualization area; The air supply adjustment operation is a sliding operation within the air supply adjustment area.

4. The method according to claim 2, characterized in that: The air supply adjustment area includes an air supply adjustment control; The sliding operation is a sliding operation on the air supply adjustment control.

5. The method according to any one of claims 2 to 4, characterized in that: In response to an air supply adjustment operation on the air supply adjustment area, displaying an air supply effect corresponding to the air supply adjustment operation in the air supply visualization area includes: In response to the sliding operation toward the edge of the air outlet, the air supply range displayed in the air supply visualization area increases accordingly; or, In response to the sliding operation toward the center side of the air outlet, the air supply range displayed in the air supply visualization area is correspondingly reduced.

6. The method according to claim 1, characterized in that The operation interface further includes: a control visualization area; the control visualization area is used to present the control state of the device simulation control; The method further comprises: In response to the air supply adjustment operation, a control state corresponding to the air supply adjustment operation is displayed in the control visualization area.

7. The method according to claim 6, characterized in that The equipment simulation control includes an air guide control; The control visualization area includes: an air guide visualization area; correspondingly, the control state also includes the control state of the air guide control in the device simulation control.

8. The method according to claim 7, characterized in that The wind guide control includes a carrier plate sub-control; The wind guide visualization area includes: a carrier plate visualization area; correspondingly, the control state also includes the extended state of the carrier plate sub-control relative to the air outlet.

9. The method according to claim 8, characterized in that In response to the air supply adjustment operation, displaying a control state corresponding to the air supply adjustment operation in the control visualization area includes: In response to the sliding operation toward the edge of the air outlet, the extension degree of the carrying plate sub-control displayed in the visual area of ​​the carrying plate relative to the air outlet increases accordingly; or, In response to the sliding operation toward the center side of the air outlet, the extension degree of the carrier plate sub-control displayed in the carrier plate visualization area relative to the air outlet is correspondingly reduced.

10. The method according to claim 7, characterized in that The wind guide control includes a blade sub-control; The wind guide visualization area also includes: a blade visualization area; accordingly, the control state includes the rotation state of the blade sub-control.

11. The method according to claim 10, characterized in that In response to the air supply adjustment operation, displaying a control state corresponding to the air supply adjustment operation in the control visualization area includes: In response to the sliding operation toward the edge of the air outlet, the rotation angle of the blade sub-control displayed in the blade visualization area increases accordingly; or, In response to the sliding operation toward the center side of the air outlet, the rotation angle of the blade sub-control displayed in the blade visualization area decreases accordingly.

12. The method according to any one of claims 6 to 11, characterized in that: The device simulation control comprises a first air guide structure and a second air guide structure arranged at intervals along the extension direction of the air outlet; Correspondingly, the air supply adjustment area includes a first air supply adjustment area and a second air supply adjustment area; wherein the first air supply adjustment area is used to adjust the air supply of the first air guide structure, and the second air supply adjustment area is used to adjust the air supply of the second air guide structure; The air supply visualization area includes a first air supply visualization area and a second air supply visualization area; wherein the first air supply visualization area is used to display the air supply effect of the first air guide structure, and the second air supply visualization area is used to display the air supply effect of the second air guide structure; The control visualization area includes a first control visualization area and a second control visualization area; wherein the first control visualization area is used to display the control state of the first air guide structure, and the second control visualization area is used to display the control state of the second air guide structure.

13. The method according to claim 10, characterized in that The leaf visualization area includes a first leaf visualization area and a second leaf visualization area; The method further comprises: In response to a user operation on a target blade visualization area, a card for adjusting the air supply sensation of the target air guide blade is displayed; wherein the target blade visualization area is the first blade visualization area or the second blade visualization area.

14. The method according to claim 13, characterized in that The card also includes: a wind sense adjustment control; the wind sense adjustment control is used to adjust the air supply sensation of the device simulation control.

15. The method according to claim 14, characterized in that The wind sense adjustment control comprises: a wind sense adjustment bar; The method further comprises: In response to a sliding operation on the wind sense adjustment bar in a first direction, the wind effect corresponding to the wind sense displayed in the wind visual area is enhanced accordingly; or, In response to a sliding operation on the wind sensation adjustment bar toward a second direction, the air supply effect corresponding to the air supply sensation displayed in the air supply visualization area is weakened accordingly; wherein, the first direction and the second direction are opposite directions.

16. The method according to claim 14, characterized in that The wind sense adjustment control also includes: at least two gear controls; any gear control is used to indicate the air supply sensation corresponding to the preset air supply effect.

17. The method according to claim 13, characterized in that The method further comprises: In response to the user operation, the operation interface further displays: an enlarged image of the target leaf visualization area; wherein the enlarged image changes accordingly according to the display content of the target leaf visualization area.

18. The method according to any one of claims 1 to 4, characterized in that The operation interface also includes: an air volume adjustment control; the air volume adjustment control is used to adjust the air supply volume of the device simulation control.

19. The method according to claim 18, characterized in that The air volume adjustment control comprises: an air volume adjustment bar; The method further comprises: In response to a sliding operation on the air volume adjustment bar in a third direction, the air supply effect corresponding to the air supply volume displayed in the air supply visualization area is enhanced accordingly; or, In response to a sliding operation on the air volume adjustment bar toward a fourth direction, the air supply effect corresponding to the air supply volume displayed in the air supply visualization area is weakened accordingly; wherein the third direction and the fourth direction are opposite directions.

20. The method according to any one of claims 1 to 4, characterized in that The operation interface also includes: a switch control; The method further comprises: In response to a shutdown operation on the switch control, other controls in the operation interface except the switch control are in an unadjustable state, and the air supply visualization area displays the effect of the device simulation control when it is in a non-air supply state.

21. An electronic device, characterized in that: The electronic device comprises: one or more processors and a memory; The memory is coupled to the one or more processors, and the memory is used to store computer program codes, wherein the computer program codes include computer instructions, and the one or more processors call the computer instructions to enable the electronic device to execute the method according to any one of claims 1 to 20.

22. An air treatment device, characterized in that: The device state of the air treatment device is adjusted according to a control instruction from an electronic device; the control instruction is generated by the electronic device according to the adjustment operation indicated in the interface displayed by the interface display method for controlling the air treatment device according to any one of claims 1-20.

Citation Information

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