Mounting system and display device
By using the first and second limiting structures of the limiting member for contact limiting in the installation system of the display device, the problem of concentrated stress caused by direct pressure on the installation member in a bent state is solved, and the integrity and bending flexibility of the installation member are improved.
Patent Information
- Application Number
- CN202510859654.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-06-24
- Publication Date
- 2025-09-05
AI Technical Summary
In the prior art, when the mounting assembly of the display device is in a bent state and is pressed and limited by adjacent mounting parts, concentrated stress is easily generated at the pressed part, causing damage.
An installation system is adopted, including multiple limit members. Adjacent installation members are contact-limited by the first limit structure and the second limit structure on the limit members, avoiding direct contact, dispersing stress, and intervening in the limit when the active gap is reduced to a critical value.
Effectively avoid damage to mounting parts, extend service life, improve bending flexibility, reduce friction and extrusion, and ensure that mounting parts can bend freely within the limit range.
Smart Images

Figure CN120593151A_ABST
Abstract
Description
Technical Field
[0001] The present application belongs to the technical field of electronic equipment, and more specifically, relates to a mounting system and a display device. Background Art
[0002] In the related art, some display devices include a mounting assembly and a flexible display module disposed on the mounting assembly. The mounting assembly can switch between a straight state and a curved state, thereby driving the flexible display module to achieve posture adjustment.
[0003] The mounting assembly includes multiple mounting parts connected in sequence. When the mounting assembly is in a bent state, two adjacent mounting parts press against each other to stop the mounting assembly from bending further. However, this limiting method is prone to generate concentrated stress at the pressing position, causing damage to the mounting parts. Summary of the Invention
[0004] The purpose of the embodiments of the present application is to provide a mounting system and a display device, aiming to solve the technical problem in the related art that the mounting assembly needs to be in an extreme bending state by being pressed against two adjacent mounting parts.
[0005] To achieve the above-mentioned purpose, according to one aspect of the present application, there is provided a mounting system, including a mounting assembly, the mounting assembly including a plurality of mounting parts connected in sequence and a plurality of limiting parts, the number of limiting parts is the same as the number of mounting parts, the plurality of limiting parts are respectively arranged corresponding to the plurality of mounting parts, one of two adjacent limiting parts is provided with a first limiting structure, and the other is provided with a second limiting structure; the mounting assembly has a bending state, and when the mounting assembly is in the bending state, there is a movable gap between two surfaces close to each other on two adjacent mounting parts, and the two surfaces close to each other on two adjacent mounting parts stop approaching each other through contact between the first limiting structure of one and the second limiting structure of the other, so that the movable gap stops decreasing.
[0006] According to another aspect of the present application, a display device is provided, comprising a plurality of flexible display modules and a plurality of the above-mentioned mounting systems, wherein the flexible display modules are arranged on the mounting assembly.
[0007] The beneficial effects of the installation system provided by the present application are: on the one hand, when the installation component is in a bent state, the two adjacent installation parts are limited by the contact of the first limiting structure and the second limiting structure on the two limiting parts, rather than the two adjacent installation parts directly pressing against each other to achieve limitation; the above-mentioned structural design disperses the contact stress to the first limiting structure and the second limiting structure, thereby avoiding damage to the installation parts due to concentrated stress generated by direct pressing, reducing the risk of damage, ensuring the integrity of the installation parts, and extending the service life of the installation parts.
[0008] On the other hand, the existence of the movable gap enables the two adjacent mounting parts to maintain non-rigid contact throughout the bending process, and the first limiting structure and the second limiting structure used in conjunction with each other only intervene to limit the position when the movable gap is reduced to a critical value; this limiting mechanism not only reduces the friction and extrusion between the two adjacent mounting parts, but also ensures that the mounting parts can bend freely within the limiting range, avoiding movement jamming caused by rigid pressure and improving bending flexibility. BRIEF DESCRIPTION OF THE DRAWINGS
[0009] In order to more clearly illustrate the technical solutions in the embodiments of the present application, the following briefly introduces the drawings required for use in the embodiments or descriptions of the prior art. Obviously, the drawings described below are only some embodiments of the present application. For ordinary technicians in this field, other drawings can be obtained based on these drawings without any creative work.
[0010] Figure 1 A schematic diagram of the structure of the installation system provided in an embodiment of the present application from a first perspective;
[0011] Figure 2 A schematic front view of the installation system provided in an embodiment of the present application;
[0012] Figure 3 A schematic diagram of the structure of the installation system provided in an embodiment of the present application from a second viewing angle;
[0013] Figure 4 A schematic diagram of the structure of the installation system provided in an embodiment of the present application after some of the structures are hidden;
[0014] Figure 5 for Figure 1 A magnified schematic diagram of point A in the middle;
[0015] Figure 6 for Figure 2 The enlarged schematic diagram of point C in the middle;
[0016] Figure 7 A schematic diagram of the structure of the limiter provided in an embodiment of the present application;
[0017] Figure 8 for Figure 4 The enlarged schematic diagram of point F in the middle;
[0018] Figure 9 for Figure 4 Enlarged schematic diagram of point G in the middle;
[0019] Figure 10 A schematic diagram of the structure of a flexible display module installed in an inwardly bent state of an installation assembly provided in an embodiment of the present application;
[0020] Figure 11A schematic top view of a flexible display module mounted on a mounting assembly in an inwardly bent state provided in an embodiment of the present application;
[0021] Figure 12 A schematic front view of the mounting assembly in an inwardly bent state provided by an embodiment of the present application;
[0022] Figure 13 A schematic diagram of the structure of a flexible display module installed in an installation assembly in an outwardly bent state provided by an embodiment of the present application;
[0023] Figure 14 A schematic top view of a mounting assembly with a flexible display module installed in an outwardly bent state provided in an embodiment of the present application;
[0024] Figure 15 A schematic front view of the mounting assembly in an outwardly bent state provided in an embodiment of the present application;
[0025] Figure 16 for Figure 11 The enlarged schematic diagram of H in the middle;
[0026] Figure 17 for Figure 12 The enlarged schematic diagram of J in the middle;
[0027] Figure 18 for Figure 14 Enlarged schematic diagram of K in the middle;
[0028] Figure 19 for Figure 15 Enlarged schematic diagram of L in the middle;
[0029] Figure 20 A schematic diagram of the structure of the mounting member provided in an embodiment of the present application;
[0030] Figure 21 A schematic diagram of the structure of the positioning assembly provided in an embodiment of the present application;
[0031] Figure 22 for Figure 3 The enlarged schematic diagram of point D in the middle;
[0032] Figure 23 for Figure 3 The enlarged schematic diagram of point E in the middle;
[0033] Figure 24 for Figure 1 A magnified schematic diagram of point B in the middle;
[0034] Figure 25 for Figure 21 The enlarged schematic diagram of the M in the middle;
[0035] The reference numerals used in the above drawings are as follows:
[0036] 100, mounting assembly; 110, mounting member; 111, mounting body; 112, connecting structure; 113, connecting groove; 114, first avoidance surface; 115, second avoidance surface; 116, first surface; 1161, mounting groove; 1162, limiting groove; 117, second surface; 118, positioning hole; 119, through-hole;
[0037] 120, limiting member; 121, mounting body; 1211, accommodating groove; 122, first limiting structure; 1221, limiting body; 1222, connecting body; 123, second limiting structure; 1231, mounting opening; 1232, limiting opening; 1233, limiting surface; 130, first mounting surface; 140, second mounting surface; 150, connecting member; 151, movable slide;
[0038] 200, flexible display module; 300, positioning assembly; 310, positioning member; 311, positioning structure; 312, first driving structure; 313, connecting piece; 320, driving member; 321, second driving structure; 322, transmission structure; 323, limiting boss. DETAILED DESCRIPTION
[0039] In order to make the technical problems, technical solutions and beneficial effects to be solved by this application more clearly understood, this application is further described in detail below with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are only used to explain this application and are not intended to limit this application.
[0040] It should be noted that when an element is referred to as being "fixed to" or "disposed on" another element, it may be directly on the other element or indirectly on the other element. When an element is referred to as being "connected to" another element, it may be directly connected to the other element or indirectly connected to the other element. The embodiments and features in the embodiments of this application may be combined with each other unless there is a conflict. The present application will be described in detail below with reference to the accompanying drawings and in conjunction with the embodiments.
[0041] It should be understood that the terms "length", "width", "up", "down", "front", "back", "left", "right", "vertical", "horizontal", "top", "bottom", "inside", "outside", etc., indicating the orientation or position relationship, are based on the orientation or position relationship shown in the accompanying drawings, and 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, be constructed and operated in a specific orientation, and therefore cannot be understood as a limitation on this application.
[0042] 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 the technical features being referred to. Thus, a feature identified as "first" or "second" may explicitly or implicitly include one or more of the features. Throughout the description of this application, "plurality" means more than two, unless otherwise specifically defined.
[0043] As described in the background, some display devices include a mounting assembly and a flexible display module mounted on the mounting assembly. The mounting assembly can switch between a straight state and a curved state, thereby driving the flexible display module to adjust its posture. The mounting assembly includes multiple sequentially connected mounting parts. When the mounting assembly is in the curved state, two adjacent mounting parts abut against each other to prevent further bending of the mounting assembly. However, this limiting method can easily generate concentrated stress at the abutting locations, causing damage to the mounting parts.
[0044] Reference Figures 1 to 9 In order to solve the above problems, according to one aspect of the present application, an embodiment of the present application provides a mounting system, which includes a mounting assembly 100, and the mounting assembly 100 includes a plurality of mounting parts 110 and a plurality of limiting parts 120 connected in sequence. The number of limiting parts 120 is the same as the number of mounting parts 110, and the plurality of limiting parts 120 are respectively arranged corresponding to the plurality of mounting parts 110, one of two adjacent limiting parts 120 is provided with a first limiting structure 122, and the other is provided with a second limiting structure 123; the mounting assembly 100 has a bent state, and when the mounting assembly 100 is in the bent state, there is a movable gap between the two surfaces of the two adjacent mounting parts 110 that are close to each other, and the two surfaces of the two adjacent mounting parts 110 that are close to each other stop approaching each other through the first limiting structure 122 of one and the second limiting structure 123 of the other, so that the movable gap stops decreasing.
[0045] In an embodiment of the present application, the mounting system is used for a display device, which also includes a flexible display module 200. The mounting assembly 100 is a mounting box for carrying the flexible display module 200, and the flexible display module 200 is arranged on the mounting assembly 100 along the width direction of the mounting assembly 100; it can be understood that the mounting system can also be other components that can be bent, such as the hinge structure of a laptop computer or tablet computer, the folding axis structure of a folding screen mobile phone, the flexible joint of an industrial robot arm, and the bendable arm of a service robot.
[0046] Multiple mounting members 110 are sequentially connected along the width of the mounting assembly 100, which is parallel to its length. The mounting assembly 100 has a first mounting surface 130 and a second mounting surface 140 spaced apart along its thickness. When the mounting assembly 100 is in a bent state, the first and second mounting surfaces 130, 140 are curved, with a clearance greater than zero. Furthermore, the mounting assembly 100 also has a straight state, in which the first and second mounting surfaces 130, 140 are flat.
[0047] The limiting member 120 located in the middle position among the multiple limiting members 120 has both the first limiting structure 122 and the second limiting structure 123; the limiting members 120 located at the two side positions only have the first limiting structure 122 or the second limiting structure 123; one of the first limiting structure 122 and the second limiting structure 123 can be a limiting surface 1233, and the other is a limiting contact that relies on threaded cooperation to achieve linear movement. The limiting surface 1233 is one of the two surfaces close to each other on two adjacent mounting members 110, and the limiting contact slides on the limiting member 120 in the direction approaching or away from the limiting surface 1233. Before the mounting assembly 100 is in a bent state, the limit contact is first driven to move toward the limit surface 1233, and stops moving after the limit contact is located between two surfaces close to each other on two adjacent mounting parts 110. When the mounting assembly 100 is in a bent state, the two adjacent mounting parts 110 stop approaching each other through the limit contact on one limit part 120 contacting the limit surface 1233 on the other limit part 120. At this time, there is a movable gap between the two surfaces close to each other on the two adjacent mounting parts 110.
[0048] On the one hand, when the mounting assembly 100 is in a bent state, two adjacent mounting parts 110 are limited by contact between the first limiting structure 122 and the second limiting structure 123 on the two limiting parts 120, rather than two adjacent mounting parts 110 directly pressing against each other to achieve limitation; the above-mentioned structural design disperses the contact stress to the first limiting structure 122 and the second limiting structure 123, thereby avoiding damage to the mounting part 110 due to concentrated stress generated by direct pressing, reducing the risk of damage, ensuring the integrity of the mounting part 110, and extending the service life of the mounting part 110.
[0049] On the other hand, the existence of the movable gap enables the two adjacent mounting parts 110 to maintain non-rigid contact throughout the bending process, and the first limiting structure 122 and the second limiting structure 123 used in conjunction with each other only intervene to limit the position when the movable gap is reduced to a critical value; this limiting mechanism not only reduces the friction and extrusion of the two adjacent mounting parts 110, but also ensures that the mounting parts 110 can bend freely within the limiting range, avoiding movement jamming caused by rigid pressure and improving bending flexibility.
[0050] Reference Figures 1 to 9 In one embodiment, the limiting member 120 also includes a mounting body 121, the mounting body 121 is arranged on the mounting member 110, the first limiting structure 122 is arranged on the mounting body 121, the second limiting structure 123 is a limiting groove, and the first limiting structure 122 of one of the two adjacent limiting members 120 is inserted into the second limiting structure 123 of the other; when the mounting assembly 100 is in a bent state, the two surfaces on the two adjacent mounting members 110 that are close to each other stop approaching each other through the first limiting structure 122 on one and the inner wall surface of the second limiting structure 123 on the other.
[0051] In this embodiment, the mounting body 121 is fixedly mounted on the mounting member 110 by connecting screws, the first limiting structure 122 can be a limiting protrusion, and the second limiting structure 123 can be a limiting groove that is narrow at both ends and wide in the middle, so that when the mounting assembly 100 is in two different bending states (inward bending state and outward bending state), the two surfaces on the two adjacent mounting members 110 that are close to each other stop approaching each other by the first limiting structure 122 on one of them contacting the inner wall surface of the second limiting structure 123 on the other.
[0052] The provided retaining grooves guide the insertion of the first retaining structure 122, ensuring that two adjacent mounting members 110 remain connected during bending, thus improving the stability of the movement. Furthermore, the contact area between the inner wall of the retaining groove and the first retaining structure 122 is greater than that of a flat surface, helping to disperse the retaining stress across the inner wall of the retaining groove, reducing localized concentrated stress. Furthermore, the shape of the inner wall of the retaining grooves mitigates the impact of bending and retaining, reducing the risk of damage to the mounting members 110.
[0053] Reference Figures 1 to 9In one embodiment, the second limiting structure 123 is arranged on the surface of the mounting body 121 away from the mounting part 110, and passes through the surface of the first limiting structure 122 on the mounting body 121 close to another limiting part 120; the second limiting structure 123 has a mounting opening 1231 and a limiting opening 1232, the mounting opening 1231 is arranged on the surface of the mounting body 121 away from the mounting part 110, and the first limiting structure 122 is passed into the second limiting structure 123 through the mounting opening 1231; the limiting opening 1232 is arranged on the surface of the first limiting structure 122 on the mounting body 121 close to another limiting part 120, and the limiting opening 1232 is used to limit the first limiting structure 122 from detaching from the second limiting structure 123 through the limiting opening 1232.
[0054] In this embodiment, the mounting opening 1231 and the limiting opening 1232 are arranged adjacent to each other and are connected to each other; the limiting opening 1232 can limit the first limiting structure 122 from detaching from the second limiting structure 123 through the limiting opening 1232 by having a diameter smaller than the maximum diameter of the first limiting structure 122; the structure in which the diameter of the limiting opening 1232 is smaller than the maximum diameter of the first limiting structure 122 can be achieved through its own structure, or by providing a limiting protrusion in the limiting opening 1232.
[0055] The provided mounting opening 1231 allows the first limiting structure 122 to pass through the second limiting structure 123, while the provided limiting opening 1232 constrains the first limiting structure 122 from disengaging from the second limiting structure 123. This structural design creates a two-way restriction for insertion and restraint, preventing the first limiting structure 122 from disengaging from the second limiting structure 123 during bending. Furthermore, the mounting opening 1231 and limiting opening 1232 enable self-locking of the first limiting structure 122 and the second limiting structure 123 on two adjacent limiting members 120, eliminating the need for additional connectors 150 such as screws or clips, simplifying the assembly process and reducing costs.
[0056] Furthermore, the mounting opening 1231 and the limiting opening 1232 are disposed on different surfaces, limiting the movement of the first limiting structure 122 within the second limiting structure 123 to a predetermined range, ensuring that the first limiting structure 122 is limited to a specific direction during bending. Furthermore, the plug-in design of the first limiting structure 122 and the second limiting structure 123 facilitates assembly of two adjacent limiting members 120, reducing assembly difficulty.
[0057] Reference Figures 1 to 9In one embodiment, the first limiting structure 122 includes a limiting body 1221 and a connecting body 1222. The limiting body 1221 is set on the mounting body 121 through the connecting body 1222. The projection surface of the limiting body 1221 projected to the plane where the limiting opening 1232 is located covers the projection surface of the connecting body 1222 projected to the plane where the limiting opening 1232 is located.
[0058] In this embodiment, the connecting body 1222 is located between the mounting body 121 and the limiting body 1221 . The connecting body 1222 is provided on the mounting body 121 , and the limiting body 1221 is provided on the connecting body 1222 .
[0059] The projection of the limiting body 1221 covers the projection of the connecting body 1222, so that the limiting body 1221 forms a locking step at the limiting opening 1232, preventing the connecting body 1222 from falling out of the limiting opening 1232. At the same time, the limiting body 1221 directly bears the friction of the limiting opening 1232, and its larger projected area can distribute the wear and tear, thereby protecting the connecting body 1222.
[0060] Reference Figures 1 to 9 In one embodiment, the limiting body 1221, the connecting body 1222 and the mounting body 121 are an integrally formed part.
[0061] In this embodiment, the limiting member 120 can be a metal member or a plastic member. The above structural design not only enhances the structural strength and reliability of the limiting member 120, but also simplifies the manufacturing process.
[0062] Reference Figures 1 to 9 In one embodiment, the projection surface of the limiting body 1221 onto the surface of the mounting body 121 away from the mounting member 110 is a circular surface, and the projection surface of the connecting body 1222 onto the surface of the mounting body 121 away from the mounting member 110 is a square surface.
[0063] In this embodiment, the shape of the limiting body 1221 is cylindrical, and the shape of the connecting body 1222 is a rectangular parallelepiped; it can be understood that the shape of the limiting body 1221 can also be a rectangular parallelepiped or other three-dimensional shapes, and the shape of the connecting body 1222 can also be cylindrical or other three-dimensional shapes.
[0064] The circular projection of the retaining member 1221 not only facilitates alignment with the mounting opening 1231, serving as a guide and facilitating rapid insertion into the second retaining structure 123, but also allows for a certain degree of swing, ensuring smooth implementation of the curved state of the mounting assembly 100. The square projection of the connecting member 1222 allows for contact with the inner wall of the second retaining structure 123 via its corners upon insertion, preventing circumferential rotation.
[0065] At the same time, the difference in projection between the limiting body 1221 projected as a circular surface and the connecting body 1222 projected as a square surface can prevent the limiting member 120 from being installed in reverse, ensuring that the first limiting structure 122 is inserted into the second limiting structure 123 in a set direction.
[0066] Reference Figures 5 to 19 In one embodiment, the mounting assembly 100 has two bending states, which are an inner bending state and an outer bending state; when the mounting assembly 100 is in the inner bending state, the connecting body 1222 is located outside the second limiting structure 123, and the two surfaces on the two adjacent mounting parts 110 that are close to each other stop approaching each other by contacting the limiting opening 1232 of the other through the limiting body 1221 of one; when the mounting assembly 100 is in the outer bending state, part of the structure of the connecting body 1222 is located inside the second limiting structure 123, and the inner wall surface of the second limiting structure 123 that is opposite to the limiting opening 1232 is the limiting surface 1233, and the two surfaces on the two adjacent mounting parts 110 that are close to each other stop approaching each other by contacting the limiting surface 1233 of the other through the limiting body 1221 of one.
[0067] In this embodiment, when the mounting assembly 100 is in the inward bending state, the middle portion of the mounting assembly 100 is concave inward, and the two sides are relatively outwardly expanded. The inner side refers to the direction of the internal space after bending, that is, the side toward which the curved concave surface of the mounting assembly 100 faces. When the mounting assembly 100 is in the outward bending state, the middle portion of the mounting assembly 100 is convex outward, and the two sides are relatively inwardly contracted. The outer side refers to the direction of the external space after bending, that is, the side toward which the curved convex surface of the mounting assembly 100 faces. In addition, when the mounting assembly 100 is in the outward bending state, another portion of the connector 1222 is located outside the second limiting structure 123.
[0068] By allowing the limiting body 1221 to contact different parts of the mounting assembly 100, such as the limiting opening 1232 and the limiting surface 1233, the mounting assembly 100 can freely switch between the two bending states. This not only broadens the scope of use of the mounting assembly 100, but also eliminates the need for multiple additional limiting components. A bidirectional limiting function can be achieved through the same structure, saving cost and space. Furthermore, when the mounting assembly 100 is in the inward bending state, the limiting body 1221 contacts the limiting opening 1232; when the mounting assembly 100 is in the outward bending state, the limiting body 1221 contacts the limiting surface 1233, thereby preventing a single part from bearing a long-term unidirectional load.
[0069] Reference Figures 5 to 9 In one embodiment, the mounting assembly 100 further includes a connecting member 150 , and two adjacent mounting members 110 are connected to each other by connecting to the connecting member 150 .
[0070] In this embodiment, the connecting member 150 is a connecting bar; the mounting member 110 includes a mounting body 111 and a connecting structure 112, the mounting body 111 is a plastic part, the connecting structure 112 is a connecting copper column, the connecting structure 112 and the mounting body 111 are integrally injection molded, and the mounting body 121 is screwed into the connecting structure 112 by connecting screws and installed on the mounting member 110; to ensure that the connecting member 150 and the connecting structure 112 do not interfere when the mounting assembly 100 switches between a straight state and a bent state, a movable slide groove 151 is provided on the connecting member 150, and the movable slide groove 151 is arranged along the width direction of the mounting assembly 100, and the connecting structure 112 is passed through the movable slide groove 151 and can move back and forth along the width direction of the mounting assembly 100.
[0071] The provided connecting member 150 not only connects the multiple mounting members 110 to each other, thereby assembling the multiple mounting members 110 into the mounting assembly 100; at the same time, the connecting member 150 acts as an intermediate medium to disperse the force to the adjacent mounting members 110 to avoid single-point force overload.
[0072] Reference Figures 5 to 9 as well as Figure 20 In one embodiment, the mounting member 110 is provided with a connecting groove 113 along the first direction, the two connecting grooves 113 on two adjacent mounting members 110 are connected to each other, and the connecting member 150 is passed through the multiple connecting grooves 113 on the mounting assembly 100.
[0073] In this embodiment, the first direction is parallel to the width direction of the mounting member 110, and the width direction of the mounting member 110 is parallel to the length direction of the mounting assembly 100; it can be understood that the first direction can also be parallel to the length direction or other directions of the mounting member 110; the connecting groove 113 is provided on the mounting body 121.
[0074] Adjacent connecting grooves 113 communicate along the first direction, allowing the connector 150 to penetrate multiple connecting grooves 113 of multiple mounting members 110 simultaneously, thereby connecting multiple mounting members 110. This reduces the tedious process of securing each member individually. Furthermore, the unidirectional design of the connecting grooves 113 ensures that the positions of two adjacent mounting members 110 are fixed in the first direction, preventing operational delays caused by misalignment. Furthermore, by inserting the connecting member 150 within multiple connecting grooves 113, it protects the connecting member 150 and reduces the size of the mounting assembly 100.
[0075] Reference Figures 5 to 9 as well as Figure 20In one embodiment, part of the structure of the mounting body 121 is embedded in the connecting groove 113 and contacts the bottom of the connecting groove 113. A receiving groove 1211 is provided on the surface of the mounting body 121 close to the bottom of the connecting groove 113, and the connecting member 150 is embedded in the receiving groove 1211.
[0076] In this embodiment, the connecting groove 113 is provided on the surface of the mounting member 110 close to the mounting body 121 , most of the structure of the mounting body 121 is embedded in the connecting groove 113 , and the entire structure of the connecting member 150 is embedded in the accommodating groove 1211 .
[0077] By embedding part of the structure of the mounting body 121 into the connecting groove 113, not only does it protect the mounting body 121, but it also effectively reduces the size of the mounting assembly 100. Simultaneously, by embedding the connector 150 into the accommodating groove 1211, it not only accommodates the connector 150, thereby further reducing the size of the mounting assembly 100, but also prevents the connector 150 from shaking.
[0078] Reference Figures 5 to 20 In one embodiment, the two surfaces close to each other on two adjacent mounting members 110 are a first avoidance surface 114 and a second avoidance surface 115, and the mounting member 110 has a first surface 116 and a second surface 117 arranged opposite to each other along the second direction; the first avoidance surface 114 and the second avoidance surface 115 are inclined surfaces, and the first avoidance surface 114 is inclined from the first surface 116 to the second surface 117 toward the direction approaching the second avoidance surface 115, and the second avoidance surface 115 is inclined from the first surface 116 to the second surface 117 toward the direction approaching the first avoidance surface 114.
[0079] In this embodiment, the second direction is parallel to the thickness direction of the mounting member 110, and the thickness direction of the mounting member 110 is parallel to the thickness direction of the mounting assembly 100; the multiple first surfaces 116 on the multiple mounting members 110 together constitute a first mounting surface 130, and the multiple second surfaces 117 on the multiple mounting members 110 together constitute a second mounting surface 140.
[0080] The first and second avoidance surfaces 114, 115 provide a clearance function, effectively reducing the risk of collision between adjacent mounting members 110 during the bending process of the mounting assembly 100, thereby improving the safety and reliability of the movement of the mounting members 110. Furthermore, the inclined arrangement of the first and second avoidance surfaces 114, 115 effectively compensates for gaps caused by machining errors, thereby improving the fit between adjacent mounting members 110.
[0081] Reference Figures 5 to 20In one embodiment, the first avoidance surface 114 and the second avoidance surface 115 are symmetrically arranged with respect to a preset symmetry line, and the preset symmetry line is parallel to a line segment arranged along the second direction.
[0082] The first avoidance surface 114 and the second avoidance surface 115 are symmetrically arranged, which not only effectively improves the avoidance effect, but also can be processed by the same mold or tool, reducing processing costs and difficulty; in addition, it can also produce an automatic centering effect, reducing shaking and noise during operation; in addition, it also helps to maintain the center of gravity of the two adjacent mounting parts 110 stable during the bending process, thereby improving the overall movement accuracy.
[0083] Reference Figures 1 to 4 as well as Figures 21 to 25 In one embodiment, the plurality of mounting members 110 of the mounting assembly 100 are arranged in sequence along the first direction; the mounting system further includes a plurality of positioning assemblies 300, and the plurality of positioning assemblies 300 are arranged at intervals along the first direction; the positioning assembly 300 includes a plurality of positioning members 310 connected in sequence along the first direction, the mounting member 110 is provided with a positioning member 310, and the plurality of positioning members 310 are respectively slidably arranged on the plurality of mounting members 110 along a third direction, and the third direction is perpendicular to the first direction; the mounting member 110 is provided with a positioning hole 118, and two mounting assemblies 100 arranged along the third direction are positioned by inserting the positioning member 310 of one into the positioning hole 118 of the other.
[0084] In this embodiment, two groups of positioning components 300 are provided, the third direction is parallel to the length direction of the mounting member 110, and the length direction of the mounting member 110 is parallel to the width direction of the mounting component 100; the positioning member 310 can be a positioning rod or a positioning column.
[0085] Because the multiple positioning members 310 are connected to each other, when the multiple positioning members 310 of the positioning assembly 300 are inserted into the corresponding positioning holes 118, only one positioning member 310 in the positioning assembly 300 needs to be moved to cause all the positioning members 310 in the positioning assembly 300 to move synchronously, thereby achieving the overall positioning of the two installation assemblies 100. This positioning operation does not require the operator to move the multiple positioning members 310 one by one into the corresponding positioning holes 118, which not only reduces the number of operation steps, shortens the positioning time, and improves positioning efficiency; it also ensures the positioning accuracy between the two installation assemblies 100 through overall positioning, reducing the risk of deviation caused by individual positioning operations.
[0086] Reference Figures 1 to 4 as well as Figures 21 to 25In one embodiment, the positioning member 310 includes a positioning structure 311 and a first driving structure 312. The two mounting components 100 are inserted into the positioning hole 118 on the other through the positioning structure 311 on one of them for positioning; the first driving structure 312 is connected to the positioning structure 311 to drive the positioning structure 311 to slide on the mounting member 110; two adjacent first driving structures 312 are connected to each other to connect the two adjacent positioning members 310.
[0087] In this embodiment, the positioning structure 311 is a positioning rod or a positioning column, and the first driving structure 312 can be a driving handle, a driving block, or a driving rod. The first driving structure 312 is fixedly connected to the positioning structure 311 to drive the positioning structure 311 to slide along the third direction on the mounting member 110. Two adjacent first driving structures 312 are connected by a connecting strip. Two adjacent first driving structures 312 are connected to each other by a connecting piece 313, and the connecting piece 313 is arranged along the first direction; specifically, one of the two adjacent first driving structures 312 is connected to the connecting piece 313 by a connecting screw, and the other is also connected to the connecting piece 313 by a connecting screw.
[0088] In addition, the positioning structure 311 is fixedly installed on the first driving structure 312. Specifically, a retaining spring is sleeved on the positioning structure 311 and an annular groove is provided. The retaining spring on the positioning structure 311 is embedded in the annular groove on the positioning structure 311 through part of the structure of the retaining spring and is fixed on the positioning structure 311; a retaining groove is provided on the first driving structure 312, and the retaining spring on the positioning structure 311 is embedded in the retaining groove on the first driving structure 312 through part of the structure of the retaining spring located outside the annular groove and is fixed on the first driving structure 312.
[0089] On the one hand, the first drive structure 312 can directly drive the positioning structure 311 to slide on the mounting member 110, making the sliding operation of the positioning structure 311 more labor-saving and convenient. On the other hand, two adjacent first drive structures 312 are connected to each other, forming the multiple positioning members 310 into a linked whole, thus playing a connecting role.
[0090] Reference Figures 1 to 4 as well as Figures 21 to 25 In one embodiment, the positioning assembly 300 further includes a driving member 320, which is drivingly connected to one of the multiple positioning members 310 in the positioning assembly 300, and is used to drive one of the multiple positioning members 310 to slide on the mounting member 110, so that the multiple positioning members 310 in the positioning assembly 300 slide synchronously on the mounting member 110.
[0091] In this embodiment, the driving member 320 can be a driving motor, a driving cylinder, an electromagnetic push rod or a driving rod. The number of positioning members 310 in the positioning assembly 300 is three. It can be understood that the number of positioning members 310 in the positioning assembly 300 can also be two, four or more, and the number depends on actual needs.
[0092] The driving member 320 only needs to drive a single positioning member 310 in the positioning assembly 300 to slide, so as to drive all the positioning members 310 in the positioning assembly 300 to move synchronously; the above structural design does not require the operator to move multiple positioning members 310 one by one, which not only reduces the operating steps, shortens the assembly time, and improves the assembly efficiency; at the same time, it can also improve the positioning accuracy of the two installation components 100 through the overall movement of multiple positioning members 310; in addition, the number of driving members 320 is also reduced, and the complexity and manufacturing cost of the positioning assembly 300 are reduced.
[0093] Reference Figures 1 to 4 as well as Figures 21 to 25 In one embodiment, the positioning assembly 300 includes two driving members 320 and three positioning members 310. The driving members 320 are respectively connected to the mounting members 110 on both sides. The two driving members 320 improve the smoothness and stability of the drive, ensuring a smooth positioning operation.
[0094] Reference Figures 1 to 4 as well as Figures 21 to 25 In one embodiment, the positioning member 310 has a positioning state and an avoidance state. When the positioning member 310 is in the positioning state, the positioning member 310 can be inserted into the positioning hole 118; when the positioning member 310 is in the avoidance state, the positioning member 310 is located outside the positioning hole 118; the driving member 320 includes a second driving structure 321 and a transmission structure 322, the second driving structure 321 is driven and connected to the transmission structure 322, and the transmission structure 322 is driven and connected to one of the multiple positioning members 310, and is used to drive one of the multiple positioning members 310 to switch between the positioning state and the avoidance state, so that the multiple positioning members 310 in the positioning assembly 300 can switch between the positioning state and the avoidance state.
[0095] In this embodiment, the mounting member 110 is provided with a through-hole 119 through which the positioning structure 311 reciprocates. The driving member 320 is located on the side of the positioning member 310 in the third direction away from the through-hole 119, and the positioning hole 118 is located on the side of the driving member 320 in the third direction away from the positioning member 310. During the positioning of the two mounting assemblies 100, the positioning structure 311 on one mounting assembly 100 passes through the through-hole 119 along the third direction and into the positioning hole 118 on the other mounting assembly 100. During the separation of the two mounting assemblies 100, the positioning structure 311 on one mounting assembly 100 is withdrawn from the positioning hole 118 and then extends through the through-hole 119 to the side of the through-hole 119 closer to the driving member 320.
[0096] When the positioning member 310 on one mounting assembly 100 is in the positioning state, the end of the positioning structure 311 on the positioning member 310 away from the driving member 320 passes through the through-hole 119 and can be inserted into the positioning hole 118 on the other mounting assembly 100; when the positioning member 310 on one mounting assembly 100 is in the avoidance state, the positioning structure 311 on the positioning member 310 is located on the side of the through-hole 119 close to the driving member 320. The second driving structure 321 and the transmission structure 322 can be respectively a gear and rack used in conjunction with each other or a screw and nut used in conjunction with each other; the transmission structure 322 is fixedly connected to one of the positioning members 310 in the positioning assembly 300. In addition, Figure 22 The state of the positioning structure 311 is shown when the positioning member 310 is in the positioning state. Figure 23 The state of the positioning structure 311 is shown when the positioning member 310 is in the avoidance state.
[0097] On the one hand, when the positioning member 310 is in the positioning state, the positioning member 310 on one mounting assembly 100 can be inserted into the positioning hole 118 on the other mounting assembly 100 for precise positioning. When the positioning member 310 is in the avoidance state, the positioning member 310 on one mounting assembly 100 is located outside the positioning hole 118 on the other mounting assembly 100, facilitating the installation, removal, or movement of the mounting assemblies 100 and reducing the risk of interference or collision between the two mounting assemblies 100. On the other hand, the second drive structure 321 is responsible for power output, while the transmission structure 322 is responsible for power transmission. The two have clear divisions of labor, facilitating independent manufacturing, maintenance, and replacement.
[0098] Reference Figures 1 to 4 as well as Figures 21 to 25 In one embodiment, the second driving structure 321 is a driving handle, the transmission structure 322 is a transmission rod, the second driving structure 321 is slidably disposed on the first surface 116 along the third direction, and the transmission structure 322 is slidably disposed on the second surface 117 along the third direction.
[0099] In this embodiment, the first surface 116 is provided with a mounting groove 1161 , and the second driving structure 321 is slidably disposed in the mounting groove 1161 ; the transmission structure 322 is fixedly connected to one of the plurality of positioning members 310 via a connecting screw.
[0100] The second drive structure 321 and the transmission structure 322 are located on opposite sides of the mounting member 110, avoiding the need for multiple components to be stacked, fully utilizing the three-dimensional space, and reducing the overall thickness. Furthermore, the independent installation of the second drive structure 321 and the transmission structure 322 on opposite sides of the mounting member 110 prevents interference between the second drive structure 321 and the transmission structure 322 during movement, ensuring smooth transmission. Furthermore, the mounting member 110 supports the second drive structure 321 and the transmission structure 322 on opposite sides, distributing the load, reducing localized stress concentration, and improving structural stability.
[0101] Reference Figures 1 to 4 as well as Figures 20 to 25 In one embodiment, one of the second driving structure 321 and the mounting member 110 is provided with two limiting bosses 323 spaced apart along the third direction, and the other is provided with two limiting grooves 1162 spaced apart along the third direction; when the positioning member 310 is in the positioning state, the second driving structure 321 is stopped from moving by inserting the limiting boss 323 into the limiting groove 1162; when the positioning member 310 is in the avoidance state, the second driving structure 321 is stopped from moving by inserting the limiting boss 323 into the limiting groove 1162.
[0102] In this embodiment, two limiting protrusions 323 are spaced apart along the third direction at the bottom of the mounting slot 1161. There is one limiting slot 1162, and both limiting slots 1162 are disposed along the third direction on the surface of the second drive structure 321 near the bottom of the mounting slot 1161. It is understood that the number of limiting protrusions 323 can be one and the number of limiting slots 1162 can be two, or the number of limiting protrusions 323 can be two and the number of limiting slots 1162 can be one. The limiting protrusion can be disposed on the surface of the second drive structure 321 near the bottom of the mounting slot 1161, while the limiting recess can be disposed at the bottom of the mounting slot 1161.
[0103] The limiting boss 323 and limiting groove 1162 used in conjunction with each other can not only limit the second driving structure 321 that cooperates with the positioning member 310 in the positioning state, but also limit the second driving structure 321 that cooperates with the positioning member 310 in the avoidance state, ensuring that the positioning member 310 can remain stable and motionless in both the positioning state and the avoidance state.
[0104] Reference Figures 1 to 25According to another aspect of the present application, an embodiment of the present application further provides a display device, which includes multiple flexible display modules 200 and multiple above-mentioned mounting systems, and the flexible display modules 200 are arranged in the mounting assembly 100.
[0105] In the embodiment of the present application, the flexible display module 200 is disposed on the mounting assembly 100 along the width direction of the mounting assembly 100 .
[0106] When the mounting assembly 100 is in a bent state, two adjacent mounting members 110 are restrained by contact between the first and second restraining structures 122 and 123 on the two restraining members 120, rather than by direct contact between the two adjacent mounting members 110. This structural design disperses the contact stress onto the first and second restraining structures 122 and 123, thereby preventing damage to the mounting members 110 caused by direct contact and generating concentrated stress, thereby reducing the risk of damage, ensuring the integrity of the mounting members 110, and extending the service life of the mounting members 110. It also reduces the risk of free movement of the flexible display module 200, enhances the rigidity of the flexible display module 200, and improves the curved effect of the flexible display module 200.
[0107] In summary, the mounting system and display device provided by this embodiment have at least the following beneficial technical effects: On the one hand, when the mounting assembly 100 is in a bent state, two adjacent mounting members 110 are limited by contact between the first limiting structures 122 and the second limiting structures 123 on the two limiting members 120, rather than by direct contact between the two adjacent mounting members 110. The above structural design disperses the contact stress to the first limiting structures 122 and the second limiting structures 123, thereby avoiding damage to the mounting members 110 caused by concentrated stress due to direct contact, reducing the risk of damage, ensuring the integrity of the mounting members 110, and extending the service life of the mounting members 110. At the same time, it also reduces the risk of free movement of the flexible display module 200, improves the rigidity of the flexible display module 200, and improves the curved effect of the flexible display module 200.
[0108] On the other hand, the existence of the movable gap enables the two adjacent mounting parts 110 to maintain non-rigid contact throughout the bending process, and the first limiting structure 122 and the second limiting structure 123 used in conjunction with each other only intervene to limit the position when the movable gap is reduced to a critical value; this limiting mechanism not only reduces the friction and extrusion of the two adjacent mounting parts 110, but also ensures that the mounting parts 110 can bend freely within the limiting range, avoiding movement jamming caused by rigid pressure and improving bending flexibility.
[0109] The above are only preferred embodiments of the present application and are not intended to limit the present application. Any modifications, equivalent replacements, and improvements made within the spirit and principles of the present application should be included in the scope of protection of the present application.
Claims
1. A mounting system, characterized in that: The mounting assembly includes a plurality of mounting members and a plurality of limiting members connected in sequence, wherein the number of the limiting members is the same as the number of the mounting members, the plurality of limiting members are respectively arranged on the plurality of mounting members, and one of two adjacent limiting members is provided with a first limiting structure, and the other is provided with a second limiting structure; The mounting assembly has a bent state. When the mounting assembly is in the bent state, there is a movable gap between two surfaces on two adjacent mounting parts that are close to each other. The two surfaces on two adjacent mounting parts that are close to each other stop approaching each other through the first limiting structure of one of them contacting the second limiting structure of the other, so that the movable gap stops decreasing.
2. The mounting system according to claim 1, wherein: The limiting member further includes a mounting body, the mounting body is arranged on the mounting member, the first limiting structure is arranged on the mounting body, and the second limiting structure is a limiting groove, and the first limiting structure of one of the two adjacent limiting members is inserted into the second limiting structure of the other; When the mounting assembly is in the bent state, the two surfaces on two adjacent mounting parts that are close to each other stop approaching each other due to the first limiting structure on one of them contacting the inner wall surface of the second limiting structure on the other.
3. The mounting system according to claim 2, wherein: The second limiting structure is provided on a surface of the mounting body away from the mounting member and passes through a surface of the first limiting structure on the mounting body close to another limiting member; The second limiting structure has a mounting opening and a limiting opening, the mounting opening is provided on a surface of the mounting body away from the mounting member, and the first limiting structure is passed through the mounting opening and into the second limiting structure; The limiting opening is provided on the surface of the first limiting structure of the mounting body close to the other limiting member, and the limiting opening is used to limit the first limiting structure from being separated from the second limiting structure through the limiting opening.
4. The mounting system according to claim 3, wherein: The first limiting structure includes a limiting body and a connecting body. The limiting body is arranged on the mounting body through the connecting body. The projection surface of the limiting body projected onto the plane where the limiting opening is located covers the projection surface of the connecting body projected onto the plane where the limiting opening is located.
5. The mounting system according to claim 4, wherein: The limiting body, the connecting body and the mounting body are an integrally formed part; and / or, The projection surface of the limiting body projected onto the surface of the mounting body away from the mounting member is a circular surface, and the projection surface of the connecting body projected onto the surface of the mounting body away from the mounting member is a square surface; and / or, The mounting assembly has two bending states, which are an inner bending state and an outer bending state. When the mounting assembly is in the inward bending state, the connecting body is located outside the second limiting structure, and the two surfaces of the two adjacent mounting parts that are close to each other stop approaching each other due to the contact between the limiting body of one and the limiting opening of the other. When the mounting assembly is in the outward bending state, part of the structure of the connecting body is located within the second limiting structure, and the inner wall surface of the second limiting structure opposite to the limiting opening is the limiting surface. The two surfaces on the two adjacent mounting parts that are close to each other stop approaching each other through the contact between the limiting body of one and the limiting surface of the other.
6. The mounting system according to claim 1, wherein: The installation assembly further includes a connecting piece, and two adjacent installation pieces are connected to each other by being connected to the connecting piece.
7. The mounting system according to claim 6, wherein: The mounting member is provided with a connecting groove along a first direction, the two connecting grooves on two adjacent mounting members are communicated with each other, and the connecting member is inserted into the plurality of connecting grooves on the mounting assembly.
8. The mounting system according to claim 1, wherein: The two surfaces close to each other on the two adjacent mounting members are the first avoidance surface and the second avoidance surface, and the mounting member has a first surface and a second surface arranged opposite to each other along the second direction; The first avoidance surface and the second avoidance surface are inclined surfaces. The first avoidance surface is inclined from the first surface to the second surface toward the second avoidance surface, and the second avoidance surface is inclined from the first surface to the second surface toward the first avoidance surface.
9. The mounting system according to any one of claims 1 to 8, characterized in that The plurality of mounting members of the mounting assembly are arranged sequentially along a first direction; The mounting system further includes a plurality of positioning assemblies, the plurality of positioning assemblies being spaced apart along the first direction; the positioning assemblies including a plurality of positioning members sequentially connected along the first direction, the mounting member being provided with one positioning member, the plurality of positioning members being slidably arranged on the plurality of mounting members along a third direction, the third direction being perpendicular to the first direction; The mounting member is provided with a positioning hole, and the two mounting components arranged along the third direction are positioned by inserting the positioning member of one into the positioning hole of the other.
10. A display device, characterized in that: The invention comprises a plurality of flexible display modules and a plurality of mounting systems according to any one of claims 1 to 9, wherein the flexible display modules are arranged on the mounting components.