Adjusting assembly and display device
By using a slider and limiting structure in the adjustment component of the display device, the problem of inconvenient angle adjustment in the prior art is solved, realizing convenient, accurate and stable angle adjustment and optimizing space utilization.
Patent Information
- Application Number
- CN202423184328.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-20
- Publication Date
- 2025-11-14
- Estimated Expiration
- 2034-12-20
AI Technical Summary
In the prior art, adjusting the angle between the adjustable component and the fixed component in a display device requires the use of specific mounting components, which leads to inconvenient and imprecise operation.
An adjustment component is adopted, including a mounting component, a sliding component, and an adjusting component. The sliding component moves along a preset curve within the limited space, and the adjusting component drives the sliding component to adjust the included angle. The sliding component is equipped with a driving structure that contacts the inner wall surface of the limited space to ensure sliding stability and accuracy.
It enables convenient and precise adjustment of the angle between the adjustable part and the fixed part, improving operational stability and space utilization efficiency, and reducing component volume.
Smart Images

Figure CN223550180U_ABST
Abstract
Description
Technical Field
[0001] This application belongs to the field of display device technology, and more specifically, relates to an adjustment component and a display device. Background Technology
[0002] A display device is a device used to display various visual information such as images, text, and videos. In related technologies, to meet specific usage requirements, some display devices require a certain degree of angle between some adjustable components (such as the adjustable screen) and fixed components (such as the fixed screen).
[0003] To achieve a specific angle between the component to be adjusted (e.g., the screen to be adjusted) and the fixed component (e.g., the fixed screen), specific mounting components are typically used to assemble the component to be adjusted (e.g., the screen to be adjusted). However, this traditional assembly method has certain limitations, namely, the need to use specific mounting components to adjust the angle between the component to be adjusted (e.g., the screen to be adjusted) and the fixed component (e.g., the fixed screen). Utility Model Content
[0004] The purpose of this application is to provide an adjustment component and a display device, which aims to solve the technical problem in the related art that requires the use of specific mounting components to adjust the angle between the component to be adjusted and the fixed component.
[0005] To achieve the above objectives, according to one aspect of this application, an adjustment assembly is provided for adjusting the angle between a component to be adjusted and a fixed component. The adjustment assembly includes: a mounting member for being disposed on the fixed component and having a limiting space; a sliding member for being disposed on the component to be adjusted and capable of sliding along a preset curve within the limiting space; and an adjustment member for adjusting the position of the sliding member by driving the sliding member to slide within the limiting space.
[0006] In this application, when it is necessary to adjust the angle between the adjustable component and the fixed component, an adjusting component drives a sliding component to move along a preset curve within a limited space. As the sliding component moves, the angle between the adjustable component and the fixed component changes continuously. When the sliding component reaches the expected target position, the adjusting component stops driving the sliding component to move; at this point, the required angle is achieved between the adjustable component and the fixed component. On the one hand, this structural design allows users to adjust the angle between the adjustable component and the fixed component at any time according to actual needs, without the need for specific mounting components, thus improving the convenience of the adjustment operation. It also allows for precise control of the sliding component's position within the limited space, thereby achieving precise angle adjustment and helping to meet the usage requirements in different scenarios. On the other hand, the limited space not only makes the sliding component move more smoothly during adjustment, helping to ensure the stability of the angle, but also effectively saves space, optimizes the layout, and reduces the overall size of the adjusting component.
[0007] Optionally, the limiting space has two limiting inner wall surfaces spaced apart along a first direction, the limiting inner wall surfaces extending along a preset curve, and two surfaces on the slider that are arranged opposite to each other along the first direction respectively contacting the two limiting inner wall surfaces.
[0008] The two limiting inner wall surfaces not only provide precise guidance for the slider, ensuring it can only slide along a preset curve within the limiting space, effectively preventing deviation from the preset trajectory during movement and guaranteeing the accuracy and reliability of the adjustment operation, but also restrict the slider from opposite sides in the first direction, thus preventing it from wobbling within the limiting space along the first direction.
[0009] Optionally, the adjusting member has an adjusting body that can slide on the mounting member along a first direction; the adjusting body is provided with a first driving structure, and the sliding member is provided with a second driving structure, the direction from the first end to the second end of the second driving structure is the second direction, and the second direction has an angle greater than 0° and less than 90° with the first direction; one of the first driving structure and the second driving structure is a driving protrusion, and the other is a driving groove, the adjusting body is inserted into the driving groove through the driving protrusion and contacts the groove wall of the driving groove, driving the sliding member to slide within the limiting space.
[0010] The design of an angle greater than 0° and less than 90° between the first and second directions not only allows the driving force of the adjustment body to be decomposed into an effective component along the sliding component's movement direction and a component perpendicular to the movement direction, thus making the adjustment process smoother and more efficient, reducing the difficulty of adjustment, and improving the response speed and accuracy of adjustment. It also reduces the impact and vibration experienced by the sliding component during movement, improving the precision and stability of adjustment.
[0011] Optionally, the driving protrusion is provided on the adjusting body and forms a first driving structure; the driving groove is provided on the sliding member and forms a second driving structure.
[0012] The above structural design not only reduces the volume of the driving protrusion, thereby reducing costs and improving the smoothness of sliding of the slider, but also facilitates the assembly of adjustment components.
[0013] Optionally, the preset curve is an arc, and the direction from the first end to the second end of the preset curve has an angle greater than 0° with the first direction; the driving groove is a straight groove or an arc groove.
[0014] On the one hand, the preset curve is an arc. This structural design not only allows the slider to slide smoothly, thus enabling continuous adjustment of the angle between the adjustable part and the fixed part, but also allows the slider to have a longer sliding stroke within the limiting space, thereby expanding the angle adjustment range. On the other hand, the drive groove is a straight groove. This structural design facilitates processing and manufacturing.
[0015] On the one hand, the arc-shaped drive groove allows the drive protrusion to slide better along the groove wall, reducing jamming caused by shape mismatch and improving the smoothness and response speed of the adjustment operation. On the other hand, during the adjustment process, the driving force of the adjustment body is transmitted to the groove wall of the drive groove through the drive protrusion. Since the drive groove is arc-shaped, the direction of the driving force transmission can change uniformly with the curvature and direction of the arc groove, making the distribution of the driving force on the sliding component more uniform. This helps to reduce local stress concentration and avoid deformation or wear of the drive protrusion and sliding component due to uneven force, thus improving the mechanical stability and reliability of the adjustment component.
[0016] Optionally, the adjusting component further includes an adjusting screw, the length direction of which is parallel to the first direction, and the adjusting screw is rotatably mounted on the mounting component; the adjusting body is an adjusting nut, which is sleeved on the adjusting screw and threadedly engaged with it; the sliding component has an installation space communicating with the driving groove, and the adjusting body restricts rotation by contacting the inner surface of the installation space.
[0017] On the one hand, the aforementioned structural design quantifies the movement of the adjusting body on the adjusting screw by the number of rotations or angles of the adjusting screw, thus facilitating subsequent adjustment operations and recording. On the other hand, this structural design allows operators to adjust the position of the adjusting body with only a small amount of torque, thereby moving the sliding component, reducing operational difficulty and improving adjustment efficiency. Furthermore, the adjusting body restricts rotation by contacting the inner surface of the installation space. This structural design ensures that the adjusting body can only move along the axial direction of the adjusting screw, preventing unnecessary rotation. During adjustment, stable linear motion helps improve the accuracy and reliability of the adjustment, avoiding positional displacement of the sliding component or loss of adjustment control due to accidental rotation of the adjusting body, thus ensuring the stability of the adjustment process.
[0018] Optionally, the mounting component includes a detachably connected first mounting shell and a second mounting shell. The first mounting shell has a first mounting groove, and the second mounting shell has a second mounting groove. The first mounting groove and the second mounting groove are connected and form a limiting space. Two limiting inner wall surfaces are respectively provided on the first mounting shell and the second mounting shell. And / or, the sliding component is provided with a connecting member, which is used to connect with the component to be adjusted through the connecting member.
[0019] The aforementioned structural design not only facilitates the assembly of adjustment components but also the manufacturing and processing of installation parts. On one hand, the connecting parts make repair or replacement of the sliding parts or the components to be adjusted easier; simply disassembling the connecting parts separates the two components, allowing for individual handling of the faulty part and reducing maintenance costs and time. On the other hand, by designing standardized connecting parts, the sliding parts can be connected to components of different models and specifications, improving their versatility and compatibility and reducing design and production cost increases caused by component differences.
[0020] Optionally, one of the sliding member and the mounting member is provided with a plurality of limiting grooves spaced apart along a preset curve, and the other is provided with an elastic member that can enter and exit any one of the plurality of limiting grooves. The sliding member is inserted into the limiting groove and limited on the mounting member by the elastic member.
[0021] Multiple limit slots spaced along a preset curve provide multiple clear adjustment levels. Operators can quickly position the slider to different target positions according to actual needs, achieving different angle adjustments and meeting diverse usage requirements.
[0022] Optionally, the slider is provided with multiple identification marks, which are spaced apart along a preset curve, and the mounting part is provided with an observation port for observing the identification marks.
[0023] The above structural design allows operators to directly observe the identification marks through the observation port on the mounting component, thereby quickly and intuitively determining the position of the sliding component on the mounting component without the need for additional measuring tools or complex judgment processes, thus improving the adjustment efficiency of the angle between the component to be adjusted and the fixed component.
[0024] According to another aspect of this application, a display device is provided, including an adjustable screen, a fixed screen, and the aforementioned adjustment components. A mounting member is disposed on the fixed screen, and a sliding member is disposed on the adjustable screen. The adjustable screen is formed as an adjustable component, and the fixed screen is formed as a fixed component.
[0025] In this application, when it is necessary to adjust the angle between the component to be adjusted and the fixed component, the adjusting member drives the sliding member to move along a preset curve within a limited space; as the sliding member moves, the angle between the component to be adjusted and the fixed component changes continuously. When the sliding member reaches the expected target position, the adjusting member can stop driving the sliding member to move; at this time, the required angle state between the component to be adjusted and the fixed component can be achieved.
[0026] The beneficial effects of the adjustment component provided in this application are as follows: In this application, when it is necessary to adjust the included angle between the component to be adjusted and the fixed component, the adjusting member drives the sliding member to move along a preset curve within the limiting space; as the sliding member moves, the included angle between the component to be adjusted and the fixed component will change continuously. When the sliding member reaches the expected target position, the adjusting member can stop driving the sliding member to move; at this time, the required included angle state can be achieved between the component to be adjusted and the fixed component.
[0027] On the one hand, the aforementioned structural design allows users to adjust the angle between the adjustable and fixed components at any time according to actual needs, without the need for specific mounting parts, thus improving the convenience of adjustment operations. Simultaneously, it enables precise control of the slider's position within the limiting space, achieving accurate angle adjustment and helping to meet the needs of different scenarios. On the other hand, the defined limiting space not only ensures smoother movement of the slider during adjustment, helping to guarantee the stability of the angle, but also effectively saves space, optimizes the layout, and reduces the overall size of the adjustment components. Attached Figure Description
[0028] To more clearly illustrate the technical solutions in the embodiments of this application, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this application. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0029] Figure 1 This is a schematic diagram of the structure of the adjustment component provided in the embodiments of this application;
[0030] Figure 2 An exploded view of the adjustment component provided in the embodiments of this application;
[0031] Figure 3 This is a side view schematic diagram of the adjustment component provided in an embodiment of this application;
[0032] Figure 4 for Figure 3 Schematic diagram of the cross section of AA;
[0033] Figure 5 This is a schematic diagram of the assembled structure of the second mounting shell, sliding member, adjusting body, and adjusting screw provided in an embodiment of this application.
[0034] Figure 6 A schematic diagram of the assembled structure of the slider, adjusting member, and connecting member provided in the embodiments of this application;
[0035] Figure 7 This is a schematic diagram of the structure of the adjustment body and the adjustment screw after assembly, as provided in the embodiments of this application.
[0036] Figure 8 This is a schematic diagram of the structure of the slider provided in the embodiment of this application;
[0037] Figure 9 This is a schematic diagram of the structure of the first mounting shell provided in an embodiment of this application;
[0038] Figure 10 This is a schematic diagram of the structure of the second mounting shell provided in an embodiment of this application;
[0039] Figure 11 for Figure 2 Enlarged diagram of point A in the middle. Detailed Implementation
[0040] To make the technical problems, technical solutions, and beneficial effects to be solved by this application clearer, the following detailed description is provided in conjunction with the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are merely illustrative and are not intended to limit the scope of this application.
[0041] It should be noted that when an element is referred to as being "fixed to" or "set on" another element, it can be directly or indirectly on that other element. When an element is referred to as being "connected to" another element, it can be directly or indirectly connected to that other element. Unless otherwise specified, the embodiments and features described in this application can be combined with each other. This application will now be described in detail with reference to the accompanying drawings and embodiments.
[0042] It should be understood that the terms "length", "width", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are only for the convenience of describing this application and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this application.
[0043] Furthermore, the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of technical features indicated. Thus, a feature defined as "first" or "second" may explicitly or implicitly include one or more of that feature. In the description of this application, "multiple" means two or more, unless otherwise explicitly specified.
[0044] As described in the background section, a display device is a device used to display various visual information such as images, text, and video. In related technologies, to meet specific usage requirements, some display devices require a certain angle between adjustable components (such as the screen to be adjusted) and fixed components (such as the fixed screen). To achieve this angle, specific mounting components are typically used to assemble the adjustable components (such as the screen to be adjusted). However, this traditional assembly method has limitations; it requires the use of specific mounting components to adjust the angle between the adjustable components (such as the screen to be adjusted) and the fixed components (such as the fixed screen).
[0045] Reference Figures 1 to 8To address the aforementioned problems, according to one aspect of this application, an embodiment of this application provides an adjustment assembly for adjusting the angle between a component to be adjusted and a fixed component. The adjustment assembly includes a mounting member 100, a sliding member 200, and an adjusting member 300. The mounting member 100 is mounted on the fixed component and has a limiting space 130. The sliding member 200 is mounted on the component to be adjusted and is capable of sliding along a preset curve within the limiting space 130. The adjusting member 300 is used to adjust the position of the sliding member 200 by driving the sliding member 200 to slide within the limiting space 130.
[0046] In this embodiment, the component to be adjusted is the screen to be adjusted in the display device, and the fixing component is the fixed screen in the display device; in other embodiments, the component to be adjusted may be other components that need to adjust the angle between themselves and the fixing component.
[0047] Mounting component 100 can be fixed to the fixed component using a plug-in method, screw connection method, snap-fit method, adhesive method, or welding method. Conversely, the fixed component can also be fixed to the mounting component 100 using the same methods. Sliding component 200 can be fixed to the component to be adjusted using a plug-in method, screw connection method, snap-fit method, adhesive method, or welding method. Similarly, the component to be adjusted can also be fixed to the sliding component 200 using the same methods.
[0048] Both ends of the limiting space 130 are open to avoid interference between the sliding member 200 and the mounting member 100. The preset curve is an arc segment; in other embodiments, the preset curve may also be other types of curve segments. In one specific embodiment, the inner wall surface of the limiting space 130 is provided with a limiting protrusion along the preset curve, and the sliding member 200 is provided with a limiting groove along the preset curve. The sliding member 200 is inserted into the limiting groove through the limiting protrusion and slides within the limiting space 130 along the preset curve. In another specific embodiment, the inner wall surface of the limiting space 130 is provided with a limiting groove along the preset curve, and the sliding member 200 is provided with a limiting protrusion along the preset curve. The sliding member 200 is inserted into the limiting groove through the limiting protrusion and slides within the limiting space 130 along the preset curve. The adjusting member 300 may be a gear and rack mechanism, a sprocket and chain mechanism, a crank and slider mechanism, or an adjusting rope.
[0049] In this application, when it is necessary to adjust the angle between the component to be adjusted and the fixed component, the adjusting member 300 drives the sliding member 200 to move along a preset curve within the limiting space 130; as the sliding member 200 moves, the angle between the component to be adjusted and the fixed component changes continuously. When the sliding member 200 reaches the expected target position, the adjusting member 300 can stop driving the sliding member 200 to move; at this time, the required angle state can be achieved between the component to be adjusted and the fixed component.
[0050] On the one hand, the aforementioned structural design not only allows users to adjust the angle between the adjustable and fixed components at any time according to actual needs, without the need for specific mounting parts, thus improving the convenience of adjustment operations; it also enables precise control of the position of the slider 200 within the limiting space 130, thereby achieving precise adjustment of the angle and helping to meet the usage needs in different scenarios. On the other hand, the limiting space 130 not only makes the movement of the slider 200 more stable during adjustment, helping to ensure the stability of the angle; it also effectively saves space, optimizes the layout, and reduces the overall size of the adjustment components.
[0051] Reference Figure 3 , Figure 4 , Figure 9 as well as Figure 10 In one embodiment, the limiting space 130 has two limiting inner wall surfaces 131 spaced apart along a first direction. The limiting inner wall surfaces 131 extend along a preset curve, and two surfaces on the slider 200 that are arranged opposite to each other along the first direction respectively contact the two limiting inner wall surfaces 131.
[0052] The two limiting inner wall surfaces 131 not only provide precise guidance for the slider 200, ensuring it can only slide along a preset curve within the limiting space 130, but also effectively prevent the slider 200 from deviating from the preset trajectory during movement, thus ensuring the accuracy and reliability of the adjustment operation. Simultaneously, they also restrict the slider 200 from opposite sides in the first direction, preventing it from wobbling within the limiting space 130 along that direction. Furthermore, to distribute the pressure exerted by the slider 200 on the limiting inner wall surfaces 131, in this embodiment, two surfaces of the slider 200 arranged opposite each other along the first direction are respectively kept in contact with the two limiting inner wall surfaces 131.
[0053] Reference Figure 2 as well as Figures 4 to 8In one embodiment, the adjusting member 300 has an adjusting body 310, which is slidable on the mounting member 100 along a first direction. The adjusting body 310 is provided with a first driving structure, and the sliding member 200 is provided with a second driving structure. The direction from the first end to the second end of the second driving structure is a second direction, and the second direction has an angle greater than 0° and less than 90° with the first direction. One of the first driving structure and the second driving structure is a driving protrusion 311, and the other is a driving groove 210. The adjusting body 310 is inserted into the driving groove 210 through the driving protrusion 311 and contacts the groove wall of the driving groove 210, thereby driving the sliding member 200 to slide within the limiting space 130.
[0054] In this embodiment, the adjusting member 300 can be an adjusting cylinder, and the adjusting body 310 is the piston rod on the adjusting cylinder. The moving direction and length direction of the piston rod are both parallel to the first direction. The angle between the second direction and the first direction can be 30°, 45°, or other degrees greater than 0° and less than 90°. The driving protrusion 311 can be a driving protrusion, a driving protrusion post, or a driving protrusion strip, etc.
[0055] When the adjusting member 300 needs to move the sliding member 200 within the limiting space 130, the adjusting body 310 will first begin sliding along the first direction on the mounting member 100. Given that the angle between the second direction and the first direction is greater than 0° and less than 90°, and simultaneously the driving protrusion 311 is inserted into the driving groove 210 and contacts the groove wall of the driving groove 210, when the adjusting body 310 moves the sliding member 200, the driving force applied by the adjusting body 310 to the sliding member 200 will be decomposed into two components: one is an effective component along the moving direction of the sliding member 200 (i.e., the preset curve), which directly propels the sliding member 200 forward along the preset curve; the other is a component perpendicular to the moving direction. Under the combined action of these two components, the sliding member 200 slides smoothly along the preset curve within the limiting space 130.
[0056] The angle design between the first and second directions, greater than 0° and less than 90°, not only decomposes the driving force of the adjusting body 310 into an effective component force along the moving direction of the slider 200 and a component force perpendicular to the moving direction, thus making the adjustment process smoother and more efficient, reducing the difficulty of adjustment, and improving the response speed and accuracy of adjustment. At the same time, it also reduces the impact and vibration experienced by the slider 200 during movement, improving the precision and stability of adjustment.
[0057] Reference Figure 2 as well as Figures 4 to 8 In one embodiment, the driving protrusion 311 is provided on the adjusting body 310 and forms a first driving structure; the driving groove 210 is provided on the sliding member 200 and forms a second driving structure.
[0058] In this embodiment, the driving protrusion 311 is a driving post, which is mounted on the adjusting body 310 and can rotate on the adjusting body 310. This structural design converts sliding friction into rolling friction, thereby improving the smoothness of the adjustment operation. In other embodiments, the driving post can also be fixedly mounted on the adjusting body 310 by interference fit, threaded connection, welding, or integral molding. The driving groove 210 is provided on the surface of the slider 200 near the driving protrusion 311. The above structural design not only reduces the volume of the driving protrusion 311, thereby reducing costs and improving the smoothness of sliding of the slider 200, but also facilitates the assembly of the adjusting components.
[0059] Reference Figure 2 as well as Figures 4 to 8 In one embodiment, the preset curve is an arc, and the direction from the first end of the preset curve to the second end of the preset curve has an angle greater than 0° with the first direction; the driving groove 210 is a straight groove.
[0060] In this embodiment, the extension direction of the drive groove 210 is collinear with the second direction, and the direction from the first end of the preset curve to the second end of the preset curve has an angle greater than 0° and less than 90° with the second direction, and an angle greater than 0° and less than 90° with the first direction.
[0061] On the one hand, the preset curve is an arc. This structural design not only enables the slider 200 to slide smoothly, thus allowing continuous adjustment of the angle between the adjustable part and the fixed part, but also allows the slider 200 to have a longer sliding stroke within the limiting space 130, thereby expanding the angle adjustment range. On the other hand, the drive groove 210 is a straight groove. This structural design facilitates processing and manufacturing.
[0062] Reference Figure 2 as well as Figures 4 to 8 In one embodiment, the preset curve is an arc, and the direction from the first end of the preset curve to the second end of the preset curve has an angle greater than 0° with the first direction; the driving groove 210 is an arc groove.
[0063] In this embodiment, the extension direction of the driving groove 210 is parallel to the preset curve, and the direction from the first end to the second end of the preset curve has an angle greater than 0° and less than 90° with the first direction.
[0064] On the one hand, the aforementioned structural design allows the drive protrusion 311 to slide better along the groove wall of the drive groove 210, reducing jamming caused by shape mismatch and improving the smoothness and response speed of the adjustment operation. On the other hand, during the adjustment process, the driving force of the adjustment body 310 is transmitted to the groove wall of the drive groove 210 through the drive protrusion 311. Since the drive groove 210 is an arc groove, the direction of the driving force transmission can change uniformly with the curvature and direction of the arc groove, thereby making the distribution of the driving force on the slider 200 more uniform. This helps to reduce local stress concentration and avoid deformation or wear of the drive protrusion 311 and the slider 200 due to uneven force, thus improving the mechanical stability and reliability of the adjustment assembly.
[0065] Reference Figure 1 , Figure 2 as well as Figures 4 to 8 In one embodiment, the adjusting member 300 further includes an adjusting screw 320, the length direction of which is parallel to the first direction, and the adjusting screw 320 is rotatably mounted on the mounting member 100; the adjusting body 310 is an adjusting nut, which is sleeved on the adjusting screw 320 and threadedly engaged with the adjusting screw 320; the sliding member 200 has an installation space 220 communicating with the driving groove 210, and the adjusting body 310 restricts rotation by contacting the inner surface 221 of the installation space 220.
[0066] In this embodiment, the mounting component 100 is provided with mounting grooves and mounting through holes spaced apart along a first direction. The first end of the adjusting screw 320 passes through the mounting groove and can rotate around its own axis within the mounting groove. The second end of the adjusting screw 320 extends through the mounting through hole to the outside of the limiting space 130. To facilitate the rotation of the adjusting screw 320, a rotating cover 330 is fitted onto the second end of the adjusting screw 320. The rotating cover 330 is connected to the adjusting screw 320 by connecting screws, and a rubber ring 340 is fitted onto the rotating cover 330. Furthermore, to facilitate guidance for operators in rotating the adjusting screw 320, a rotation mark 331 is provided on the end face of the rotating cover 330 away from the adjusting screw 320.
[0067] The mounting space 220 has two inner surfaces 221 spaced apart along a third direction, which are perpendicular to the first direction and the second direction; the two surfaces of the slider 200 that are opposite to each other along the third direction are respectively in contact with the two inner surfaces 221.
[0068] On the one hand, the above-mentioned structural design can quantify the movement of the adjusting body 310 on the adjusting screw 320 by the number of rotations or angles of the adjusting screw 320, thus facilitating subsequent adjustment operations and recording. On the other hand, the above-mentioned structural design allows the operator to adjust the position of the adjusting body 310 by applying only a small torque, thereby moving the sliding member 200, reducing the difficulty of operation and improving the adjustment efficiency. Furthermore, the adjusting body 310 restricts rotation by contacting the inner surface 221 of the mounting space 220. This structural design ensures that the adjusting body 310 can only move along the axial direction of the adjusting screw 320, without unnecessary rotation. During the adjustment process, stable linear motion helps improve the accuracy and reliability of the adjustment, avoiding positional deviation of the sliding member 200 or loss of adjustment control due to accidental rotation of the adjusting body 310, thus ensuring the stability of the adjustment process.
[0069] In addition, to improve the smoothness of the adjustment operation, there are two driving protrusions 311. The two driving protrusions 311 are respectively provided on two surfaces of the adjustment body 310 that are opposite to each other along the third direction and are arranged back to back. There are also two driving grooves 210. The two driving protrusions 311 are respectively provided in one-to-one correspondence with the two driving grooves 210.
[0070] Reference Figures 1 to 10 In one embodiment, the mounting component 100 includes a first mounting shell 110 and a second mounting shell 120 that are detachably connected. The first mounting shell 110 is provided with a first mounting groove 111, and the second mounting shell 120 is provided with a second mounting groove 121. The first mounting groove 111 and the second mounting groove 121 are connected and form a limiting space 130. Two limiting inner wall surfaces 131 are respectively provided on the first mounting shell 110 and the second mounting shell 120.
[0071] In this embodiment, the first mounting shell 110 and the second mounting shell 120 are detachably connected by screws; in other embodiments, the first mounting shell 110 and the second mounting shell 120 can also be detachably connected by snap-fit or plug-in methods. Two limiting inner wall surfaces 131 are respectively provided on the groove wall of the first mounting groove 111 and the groove wall of the second mounting groove 121. The above structural design not only facilitates the assembly of the adjustment components but also facilitates the manufacturing and processing of the mounting part 100.
[0072] Reference Figure 1 , Figure 2 , Figure 4 as well as Figure 6 In one embodiment, the slider 200 is provided with a connector 500, and the slider 200 is used to connect with the component to be adjusted through the connector 500.
[0073] In this embodiment, the connector 500 is a locking sleeve, which is mounted on the sliding member 200 using connecting screws. The mounting member 100 has an opening communicating with the limiting space 130 and allowing the connector 500 to connect with the component to be adjusted. The locking sleeve can be directly connected to the component to be adjusted, or it can be connected to the component to be adjusted via a connecting handle or other connecting component. In other embodiments, the connector 500 can also be a connecting pin, connecting key, coupling, snap-fit, clip, or magnetic component.
[0074] On the one hand, when the slider 200 or the component to be adjusted needs repair or replacement, the connecting piece 500 makes this operation easier; at this time, only the connecting piece 500 needs to be disassembled to separate the two, thus allowing the faulty component to be handled individually, reducing maintenance costs and time. On the other hand, by designing a standardized connecting piece 500, the slider 200 can be connected to components of different models and specifications to be adjusted, improving the versatility and compatibility of the slider 200 and reducing the increase in design and production costs caused by component differences.
[0075] Reference Figure 2 , Figure 6 , Figure 8 as well as Figure 11 In one embodiment, one of the sliding member 200 and the mounting member 100 is provided with a plurality of limiting grooves 230 spaced along a preset curve, and the other is provided with an elastic member 400 that can enter and exit any one of the plurality of limiting grooves 230. The sliding member 200 is inserted into the limiting groove 230 and limited on the mounting member 100 by the elastic member 400.
[0076] In this embodiment, multiple limiting grooves 230 are provided on the sliding member 200, and the elastic member 400 is a spring plunger, which is mounted on the mounting member 100. Of course, in other embodiments, the elastic member 400 may also be an elastic component capable of elastic deformation, such as a spring, a rubber column, or a silicone column. In addition, in other embodiments, multiple limiting grooves 230 may also be provided on the mounting member 100, and the elastic member 400 may be provided on the sliding member 200.
[0077] After the slider 200 slides to a position where it can be inserted into the corresponding limiting groove 230, the elastic element 400 will be inserted into the corresponding limiting groove 230 under its own elastic force; at this time, the elastic element 400 will precisely limit the slider 200 on the mounting part 100; this structural design can not only provide feedback to the user to clarify the offset state of the slider 200, but also prevent the slider 200 from moving unexpectedly due to external interference or vibration, ensuring the stability and reliability of the angle between the part to be adjusted and the fixed part after adjustment.
[0078] When the slider 200 needs to be adjusted in position on the mounting 100, a pulling force is directly applied to the slider 200. When the applied pulling force is greater than the elastic force applied to the slider 200 by the elastic member 400, the slider 200 can continue to move on the mounting 100. After the slider 200 slides into another limiting groove 230, the elastic member 400 will again insert into the corresponding limiting groove 230 under its own elastic force to limit the slider 200 on the mounting 100 again.
[0079] Multiple limiting grooves 230, spaced along a preset curve, provide multiple clear gear positions for adjustment. Operators can quickly position the slider 200 to different target positions according to actual needs, achieving different angle adjustments and meeting diverse usage requirements.
[0080] In addition, to ensure the stability of the sliding member 200 on the mounting member 100, there are two elastic members 400, which are spaced apart along a third direction; multiple limiting grooves 230 on the same surface are formed into a group, and there are also two groups of limiting grooves 230. The two elastic members 400 are respectively set in correspondence with the two groups of limiting grooves 230.
[0081] Reference Figure 1 , Figure 2 , Figure 4 , Figure 8 , Figure 9 as well as Figure 11 In one embodiment, the slider 200 is provided with a plurality of identification marks, which are spaced apart along a preset curve, and the mounting member 100 is provided with an observation port 140 for observing the identification marks.
[0082] In this embodiment, the identification mark 240 can be a text mark, a planar pattern mark, or a raised dot or groove mark; the observation port 140 is provided on the first mounting shell 110. The above structural design allows the operator to directly observe the identification mark through the observation port 140 on the mounting part 100, thereby quickly and intuitively determining the position of the slider 200 on the mounting part 100 without the need for additional measuring tools or complex judgment processes, thus improving the adjustment efficiency of the angle between the adjustable part and the fixed part.
[0083] Reference Figures 1 to 11 According to another aspect of this application, an embodiment of this application also provides a display device, which includes an adjustable screen, a fixed screen, and the aforementioned adjustment components. The mounting member 100 is disposed on the fixed screen, and the sliding member 200 is disposed on the adjustable screen. The adjustable screen is formed as an adjustable component, and the fixed screen is formed as a fixed component.
[0084] In this embodiment, the mounting component 100 can be fixedly mounted on the fixed component using a plug-in method, screw connection method, snap-fit method, adhesive method, or welding method. Similarly, the fixed component can be fixedly mounted on the mounting component 100 using the same methods. The sliding component 200 can be fixedly mounted on the component to be adjusted using a plug-in method, screw connection method, snap-fit method, adhesive method, or welding method. Likewise, the component to be adjusted can be fixedly mounted on the sliding component 200 using the same methods.
[0085] In this application, when it is necessary to adjust the angle between the component to be adjusted and the fixed component, the adjusting member 300 drives the sliding member 200 to move along a preset curve within the limiting space 130; as the sliding member 200 moves, the angle between the component to be adjusted and the fixed component changes continuously. When the sliding member 200 reaches the expected target position, the adjusting member 300 can stop driving the sliding member 200 to move; at this time, the required angle state can be achieved between the component to be adjusted and the fixed component.
[0086] In summary, the adjustment component and display device provided in this embodiment have at least the following beneficial technical effects: In this application, when it is necessary to adjust the angle between the component to be adjusted and the fixed component, the adjusting member 300 drives the sliding member 200 to move along a preset curve within the limiting space 130; as the sliding member 200 moves, the angle between the component to be adjusted and the fixed component will change continuously. When the sliding member 200 reaches the expected target position, the adjusting member 300 can stop driving the sliding member 200 to move; at this time, the required angle state can be achieved between the component to be adjusted and the fixed component.
[0087] On the one hand, the aforementioned structural design not only allows users to adjust the angle between the adjustable and fixed components at any time according to actual needs, without the need for specific mounting parts, thus improving the convenience of adjustment operations; it also enables precise control of the position of the slider 200 within the limiting space 130, thereby achieving precise adjustment of the angle and helping to meet the usage needs in different scenarios. On the other hand, the limiting space 130 not only makes the movement of the slider 200 more stable during adjustment, helping to ensure the stability of the angle; it also effectively saves space, optimizes the layout, and reduces the overall size of the adjustment components.
[0088] The above are merely preferred embodiments of this application and are not intended to limit this application. Any modifications, equivalent substitutions, and improvements made within the spirit and principles of this application should be included within the protection scope of this application.
Claims
1. An adjustment assembly for adjusting the angle between a component to be adjusted and a fixed component, characterized in that, The adjustment component includes: Mounting component, for mounting on the fixed component, and having limiting space; A slider is provided on the component to be adjusted and is capable of sliding along a preset curve within the limiting space; An adjusting member is used to adjust the position of the sliding member by driving the sliding member to slide within the limiting space.
2. The adjustment component according to claim 1, characterized in that, The limiting space has two limiting inner wall surfaces spaced apart along a first direction. The limiting inner wall surfaces extend along the preset curve, and two surfaces on the slider that are arranged opposite to each other along the first direction respectively contact the two limiting inner wall surfaces.
3. The adjustment component according to claim 2, characterized in that, The adjusting member has an adjusting body that is capable of sliding on the mounting member along the first direction; The adjustment body is provided with a first driving structure, and the sliding member is provided with a second driving structure. The direction from the first end of the second driving structure to the second end of the second driving structure is a second direction, and the second direction has an angle greater than 0° and less than 90° with the first direction. One of the first driving structure and the second driving structure is a driving protrusion, and the other is a driving groove. The adjusting body is inserted into the driving groove through the driving protrusion and contacts the groove wall of the driving groove, thereby driving the sliding member to slide within the limiting space.
4. The adjustment component according to claim 3, characterized in that, The driving protrusion is provided on the adjusting body and forms the first driving structure; the driving groove is provided on the sliding member and forms the second driving structure.
5. The adjustment component according to claim 4, characterized in that, The preset curve is an arc, and the direction from the first end to the second end of the preset curve has an angle greater than 0° with the first direction; the driving groove is a straight groove or an arc groove.
6. The adjustment component according to claim 4, characterized in that, The adjusting component further includes an adjusting screw, the length direction of which is parallel to the first direction, and the adjusting screw is rotatably mounted on the mounting component; The adjusting body is an adjusting nut, which is sleeved on the adjusting screw and threadedly engaged with it; the sliding member has an installation space communicating with the driving groove, and the adjusting body restricts rotation by contacting the inner surface of the installation space.
7. The adjustment component according to claim 2, characterized in that, The mounting component includes a detachably connected first mounting shell and a second mounting shell. The first mounting shell has a first mounting groove, and the second mounting shell has a second mounting groove. The first mounting groove and the second mounting groove communicate with each other and form the limiting space. Two limiting inner wall surfaces are respectively provided on the first mounting shell and the second mounting shell; and / or, The slider is provided with a connector, and the slider is used to connect to the component to be adjusted through the connector.
8. The adjustment assembly according to any one of claims 1 to 7, characterized in that, One of the sliding member and the mounting member is provided with a plurality of limiting grooves spaced apart along the preset curve, and the other is provided with an elastic member that can enter and exit any one of the plurality of limiting grooves. The sliding member is inserted into the limiting groove and limited on the mounting member by the elastic member.
9. The adjustment assembly according to claim 8, characterized in that, The slider is provided with multiple identification marks, which are spaced apart along the preset curve. The mounting component is provided with an observation port for observing the identification marks.
10. A display device, characterized in that, The device includes a screen to be adjusted, a fixed screen, and an adjustment component as described in any one of claims 1 to 9. The mounting member is disposed on the fixed screen, the sliding member is disposed on the screen to be adjusted, the screen to be adjusted is formed as the component to be adjusted, and the fixed screen is formed as the fixed component.