Detachable wallboard component

By designing detachable wall panel components and utilizing a combination of supporting structures and flexible structures, the problem of low installation and replacement efficiency of prefabricated wall panels is solved, flexible installation and disassembly of wall panels are achieved, and decoration efficiency and aesthetics are improved.

CN120649633APending Publication Date: 2025-09-16重庆集凯科技服务有限公司
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Patent Information

Application Number
CN202511040769.0
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-07-25
Publication Date
2025-09-16

AI Technical Summary

Technical Problem

The installation and replacement of existing prefabricated wall panels are inefficient, require professional workers to operate, and are prone to installation errors, which affects the popularization and promotion of wall panels in the field of interior decoration.

Method used

A detachable wall panel component is designed, which adopts a combination of a supporting structure and a flexible structure. The supporting structure is connected to the wall panel plug-in slot through a clamping piece. The flexible structure allows the wall panel to bend and deform during the installation and removal process, thereby realizing the independent installation and removal of the wall panel.

Benefits of technology

It realizes flexible installation and disassembly of wall panels, reduces dependence on professional workers, improves replacement efficiency, avoids installation errors, and enhances the convenience and aesthetics of the decoration process.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention provides a detachable wallboard component which is characterized in that inserting grooves are formed in the opposite adjacent ends of two adjacent wallboards respectively, the detachable wallboard component is arranged between the adjacent ends of the two adjacent wallboards, and the detachable wallboard component comprises a supporting structure connected to the outer surface of a wall body, the supporting structure is provided with a clamping piece extending in the direction away from the wall body along the gap between the two adjacent ends, and the end, away from the wall body, of the clamping piece is clamped in the inserting groove of one wall plate. One end of the flexible structure is connected with the end, away from the wall body, of the clamping piece, and the other end of the flexible structure extends from the clamping piece to the direction close to the other wall plate to be connected with the inserting groove of the other wall plate in an inserted mode. The flexible structure can be bent and deformed in the direction away from the wall body in a recoverable mode. The problems that in the existing indoor wallboard decoration field, wallboard replacement is limited by the wallboard installation sequence, the replacement efficiency is low, and installation errors are easily generated are solved.
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Description

Technical Field

[0001] The present disclosure relates to the technical field of interior decoration, and in particular to a detachable wall panel component. Background Art

[0002] In the field of interior decoration, prefabricated decoration is becoming increasingly popular among consumers due to its advantages such as convenience, speed, greenness and pollution-freeness. Wall panels, as a key product in prefabricated decoration, are also widely used.

[0003] However, the prefabricated wall panels commonly found on the market need to be connected to the wall in prefabricated decoration, but the installation of the wall panels needs to be continuous to form a complete wall surface. Therefore, the installation process of the existing wall panels on the market usually involves setting connectors at one end of the wall panel close to the wall, and installing them through common connectors such as bolts, and strictly limiting the installation order of the wall panels. For example, for the installation of a wall surface, priority is given to installing the wall panels from the end located at the inner corner of the wall, and then installing the wall panels on the wall in sequence. In this way, workers can perform operations such as tightening bolts from the side of the gap between the wall panel and the wall to achieve the installation of the wall panel, and gradually install it to the end of the wall located at the outer corner, which is convenient for workers to perform edge sealing. Operation, so the entire wall panel installation process is carried out strictly in a certain order. However, with the increase of living time, especially the wall panels located in the bathroom and other places are easily affected by moisture, discoloration and deformation, or the wall panels are easily damaged by bumps. If you consider replacing the wall panels, you need to contact the manufacturer's installation workers, and remove the wall panels step by step from the positive corner of the wall in reverse order until you remove the wall panels that need to be replaced, and then replace them accordingly and install the wall panels step by step in the forward direction. Each replacement and installation requires professional and skilled workers to install with high precision to avoid error accumulation. The efficiency is extremely low, which seriously affects the popularization and promotion of wall panels in the field of interior decoration.

[0004] It should be noted that the above technical background is merely provided to provide a clear and complete description of the technical solutions of the present invention and to facilitate understanding by those skilled in the art. Simply because these solutions are described in the technical background section of the present invention, it should not be assumed that the above technical solutions are well known to those skilled in the art. Summary of the Invention

[0005] In view of the above problems, the present disclosure provides a detachable wall panel component, which solves the problem in the existing indoor wall panel decoration field that wall panel replacement is limited by the wall panel installation sequence, resulting in low replacement efficiency and easy installation errors.

[0006] An embodiment of the present disclosure provides a detachable wall panel component, wherein adjacent ends of two adjacent wall panels facing each other are respectively formed with plug-in grooves, and the detachable wall panel component is arranged between the adjacent ends of the two adjacent wall panels, and the detachable wall panel component includes: a supporting structure, which is connected to the outer surface of the wall, and the supporting structure has a clamping piece extending away from the wall along the gap between the two adjacent ends, and the end of the clamping piece away from the wall is clamped in the plug-in groove of one of the wall panels; a flexible structure, one end of the flexible structure is connected to the end of the clamping piece away from the wall, and the other end of the flexible structure extends from the clamping piece toward the other wall panel to be plugged into the plug-in groove of the other wall panel, and when the other wall panel moves in the direction away from the wall, the flexible structure can be bent and deformed in a recoverable manner in the direction away from the wall.

[0007] In some exemplary embodiments, the connecting member includes: a vertical arm section, which extends along the gap between the two adjacent ends in a direction away from the wall; an inserting strip section, one end of which is connected to the end of the vertical arm section away from the wall, and the other end of the inserting strip section extends from the vertical arm section in a direction close to one of the wall panels to be clamped in the inserting slot of one of the wall panels.

[0008] In some exemplary embodiments, a mortise and tenon portion is formed at one end of the flexible structure, a mortise and tenon groove is provided on the side of the vertical arm section facing the other wall panel, an inner groove width of the mortise and tenon groove is smaller than a groove opening width of the mortise and tenon groove, and the flexible structure is connected to the vertical arm section through the mortise and tenon joints of the mortise and tenon groove of the mortise and tenon portion.

[0009] In some exemplary embodiments, the inner groove width of the mortise groove gradually increases from the groove opening of the mortise groove toward a direction away from the other wall panel.

[0010] In some exemplary embodiments, a clamping portion is provided at the other end of the flexible structure, and the clamping portion protrudes from the flexible structure toward the wall to clamp the plug-in slot of the other wall panel.

[0011] In some exemplary embodiments, the clamping portion is formed by extending from the other end of the flexible structure toward one side of the wall toward the wall.

[0012] In some exemplary embodiments, a connection between the clamping portion and the flexible structure on a side facing the wall is provided with a rounded corner.

[0013] In some exemplary embodiments, the flexible structure further includes a flexible section, which is formed between the clamping portion and the mortise portion. The flexible section has a curved portion formed on a side facing the wall, and the curved portion is arc-shaped and concave in a direction away from the wall.

[0014] In some exemplary embodiments, the curvature radius of the concave curved portion gradually increases from the tenon portion toward the clamping portion.

[0015] In some exemplary embodiments, the support structure further includes: a fixing seat, which is connected to one end of the vertical arm section close to the wall, and the fixing seat extends along the outer surface of the wall to support two adjacent wall panels. The fixing seat is provided with a connecting position, and the fixing seat is connected to the wall through the connecting position. BRIEF DESCRIPTION OF THE DRAWINGS

[0016] The above contents and other objects, features and advantages of the present disclosure will become more apparent through the following description of the embodiments of the present disclosure with reference to the accompanying drawings, in which:

[0017] Figure 1 Schematically shows a top view of a removable wall panel component after installation according to an embodiment of the present disclosure;

[0018] Figure 2 Schematically shows a top view of a detachable wall panel component during disassembly according to an embodiment of the present disclosure;

[0019] Figure 3 The figure schematically shows a structural diagram of the connection between the supporting structure and the flexible structure of the detachable wall panel component according to an embodiment of the present disclosure.

[0020] Figure Numbers

[0021] 100, support structure; 110, clamping member; 111, vertical arm section; 1111, mortise and tenon groove; 112, insert section; 120, fixing seat; 121, connection position;

[0022] 200, flexible structure; 210, mortise and tenon joint; 220, clamping joint; 230, flexible section; 231, bending portion;

[0023] 300. Wall panel; 310. Socket. DETAILED DESCRIPTION

[0024] In order to enable those skilled in the art to better understand the technical solutions of the present disclosure, the technical solutions in the embodiments of the present disclosure will be clearly and completely described below in conjunction with the accompanying drawings of the embodiments of the present disclosure. Obviously, the described embodiments are only part of the embodiments of the present disclosure, not all of the embodiments. Based on the embodiments of the present disclosure, all other embodiments obtained by ordinary technicians in this field without making any creative efforts should fall within the scope of protection of the present disclosure.

[0025] The terms used herein are only for describing specific embodiments and are not intended to limit the present disclosure. The terms "comprise," "include," etc. used herein indicate the presence of the features, steps, operations, and / or components, but do not exclude the presence or addition of one or more other features, steps, operations, or components.

[0026] All terms used herein (including technical and scientific terms) have the meanings commonly understood by those skilled in the art unless otherwise defined. It should be noted that the terms used herein should be interpreted as having a meaning consistent with the context of this specification and should not be interpreted in an idealized or overly rigid manner.

[0027] When expressions such as “at least one of A, B, and C, etc.” are used, they should generally be interpreted in accordance with the meaning commonly understood by those skilled in the art. For example, “a system having at least one of A, B, and C” should include but is not limited to systems having A alone, B alone, C alone, A and B, A and C, B and C, and / or A, B, and C, etc. When expressions such as “at least one of A, B, or C, etc.” are used, they should generally be interpreted in accordance with the meaning commonly understood by those skilled in the art. For example, “a system having at least one of A, B, or C” should include but is not limited to systems having A alone, B alone, C alone, A and B, A and C, B and C, and / or A, B, and C, etc.

[0028] As one aspect of the embodiments of the present disclosure, Figures 1 to 3 As shown, a detachable wall panel component is provided. The adjacent ends of two adjacent wall panels 300 facing each other are respectively formed with a plug-in groove 310. The detachable wall panel component is arranged between the adjacent ends of the two adjacent wall panels 300. The detachable wall panel component includes: a support structure 100, which is connected to the outer surface of the wall. The support structure 100 has a clamping member 110 extending away from the wall along the gap between the two adjacent ends. The end of the clamping member 110 away from the wall is clamped on one of the wall panels 30 0 in the plug-in slot 310; a flexible structure 200, one end of the flexible structure 200 is connected to the end of the clamping member 110 away from the wall, and the other end of the flexible structure 200 extends from the clamping member 110 toward the other wall panel 300 to be plugged into the plug-in slot 310 of the other wall panel 300. When the other wall panel 300 moves away from the wall, the flexible structure 200 can be bent and deformed in a recoverable manner in the direction away from the wall.

[0029] In this embodiment, the clamping member 110 is a vertical structure extending away from the wall along the gap between the two adjacent ends. When the end of the clamping member 110 away from the wall is clamped in the plug-in slot 310 of one of the wall panels 300, the flexible structure 200 can be clamped in the plug-in slot 310 of the other wall panel 300; that is, when installing one of the wall panels 300, the plug-in slot 310 of one of the wall panels 300 is first clamped with the end of the clamping member 110 away from the wall to fix the connection between one of the wall panels 300 and the wall, thereby realizing one of the wall panels 300. The wall panel 300 is installed and fixed. Further, during the process of installing another adjacent wall panel 300, the other adjacent wall panel 300 moves toward the wall, and the flexible structure 200 is pressed and bent by the side edge of the other adjacent wall panel 300 close to the wall. When the other adjacent wall panel 300 continues to move toward the wall until it abuts against the supporting structure 100, the flexible structure 200 just falls into the insertion groove 310 area of ​​the other adjacent wall panel 300, and the flexible structure 200 switches from the bent state to the state of restoring its original state. The flexible structure 200 0 and the plug-in slot 310 of another wall panel 300 are plugged into each other, thereby connecting two adjacent wall panels 300 to the wall. At the same time, since the two adjacent wall panels 300 are connected to the wall through the same supporting structure 100, the outer surfaces of the two adjacent wall panels 300 can be made flush, achieving the flatness and aesthetics of the outer surfaces, and avoiding the occurrence of misalignment of the outer surfaces of the two adjacent wall panels 300. Furthermore, when removing another adjacent wall panel 300, by driving the other wall panel 300 to move away from the wall, the outer surfaces of the two adjacent wall panels 300 can be softly connected. The flexible structure 200 is abutted by the slot wall of the plug-in slot 310 of the other wall panel 300 close to the wall, and the end of the flexible structure 200 connected to the other wall panel 300 is bent and deformed in a recoverable manner in the direction away from the wall until the other wall panel 300 is separated from the wall, and the end of the flexible structure 200 connected to the other wall panel 300 is restored to an extended state. In the embodiment of the present disclosure, the flexible structure 200 can directly remove or install the wall panel 300 with the detachable wall panel component from the wall as needed, thereby realizing a separately detachable connection between the wall panel 300 and the wall.

[0030] In some embodiments, when two adjacent wall panels 300 are installed on the wall, the surfaces of the two adjacent wall panels 300 away from the wall are flush and abut against each other, and the surfaces of the two adjacent wall panels 300 close to the wall are separated to form a gap between the adjacent ends of the two adjacent wall panels 300 facing each other, so as to facilitate the installation of the support structure 100 in the gap. In this embodiment, the flexible structure 200 is detachably connected to the clip 110. In other embodiments, the flexible structure 200 can also be fixedly connected to the clip 110, and there is no specific limitation on this.

[0031] like Figure 2 and Figure 3As shown, in some exemplary embodiments, the clamping member 110 includes: a vertical arm section 111, which extends along the gap between the two adjacent ends in a direction away from the wall; an inserting strip section 112, one end of which is connected to the end of the vertical arm section 111 away from the wall, and the other end of the inserting strip section 112 extends from the vertical arm section 111 in a direction close to one of the wall panels 300 to be clamped in the inserting slot 310 of one of the wall panels 300. Specifically in this embodiment, the vertical arm section 111 extends outward as a rigid support body in a direction perpendicular to the wall surface, and the insertion strip section 112 extends from the top of the vertical arm section 111 away from the wall in a direction close to one of the wall panels 300 and is embedded in the insertion groove 310 on the side of the wall panel 300, forming a stable L-shaped clamping structure; the vertical arm section 111 and the insertion strip section 112 are designed in sections so that the vertical load is transmitted to the wall through the vertical arm section 111, and the horizontal direction is provided by the engagement between the insertion strip section 112 and the groove wall of the insertion groove 310 of the wall panel 300 to provide anti-displacement constraint, thereby significantly improving the overall stability of the wall panel 300 after installation. In these embodiments, the insertion strip segment 112 can be designed to have a progressive locking structure, for example, an anti-slip flange protruding toward the wall is added to one end of the insertion strip segment 112 inserted into the insertion slot 310, or an arc-shaped inverted angle transition is used at the connection between the insertion strip segment 112 and the vertical arm segment 111 to disperse stress; in addition, the thickness of the insertion strip segment 112 in the direction perpendicular to the wall surface can be adapted to the slot width of the insertion slot 310 in the direction perpendicular to the wall surface, so that the insertion strip segment 112 can be seamlessly inserted into the insertion slot 310, avoiding shaking of the wall panel 300 after installation.

[0032] like Figure 2 and Figure 3As shown, in some exemplary embodiments, a mortise and tenon joint 210 is formed at one end of the flexible structure 200, and a mortise and tenon joint 1111 is formed on the side of the vertical arm section 111 facing the other wall panel 300. The inner groove width of the mortise and tenon joint 1111 is smaller than the slot width of the mortise and tenon joint 1111. The flexible structure 200 is connected to the vertical arm section 111 through the mortise and tenon joints of the mortise and tenon joints 1111. Specifically, in this embodiment, the cooperation between the mortise and tenon joint 210 and the mortise and tenon joint 1111 forms a self-locking soft-hard connection: when the mortise and tenon joint 210 of the flexible material is inserted into the mortise and tenon joint 1111 of the vertical arm section 111, its elastic deformation allows the mortise and tenon joint 210 to pass through the narrow slot and enter the wide cavity area, then recover its deformation. Because the slot cavity width is larger than the slot opening, a mechanical interlock is formed, ensuring a reliable connection between the flexible structure 200 and the rigid vertical arm section 111 without the need for additional fasteners. In these embodiments, the mortise and tenon groove 1111 can be designed into various variations such as a dovetail shape, a T shape or a wedge shape, wherein the dovetail groove realizes bidirectional limitation through the inclined walls on both sides; in another embodiment, the inner wall of the mortise and tenon groove 1111 can be provided with continuous tooth patterns or local protrusions, which engage with the grooves on the surface of the tenon joint 210 to enhance the anti-slip ability.

[0033] like Figure 2 and Figure 3 As shown, in some exemplary embodiments, the inner groove width of the mortise groove 1111 gradually increases from the notch of the mortise groove 1111 toward the direction away from the other wall panel 300. Specifically in this embodiment, the gradually expanding mortise groove 1111 forms a tapered guide cavity. The structure of its gradually increasing inner width not only guides the tenon portion 210 to slide smoothly into the deep groove of the groove cavity, but also utilizes the inclined surface extrusion effect to cause the flexible material of the tenon portion 210 to flow toward the wide area of ​​the groove cavity, generating a radial expansion locking force. This can prevent the flexible structure 200 from detaching when removing or installing another adjacent wall panel 300, thereby ensuring a tight connection between the flexible structure 200 and the clamping member 110.

[0034] like Figure 2 and Figure 3As shown, in some exemplary embodiments, the other end of the flexible structure 200 is provided with a snap-on portion 220. The snap-on portion 220 protrudes from the flexible structure 200 toward the wall to engage with the insertion slot 310 of the other wall panel 300. Specifically, in this embodiment, the snap-on portion 220 forms a structure protruding toward the wall. The side of the end of the flexible structure 200 that is adjacent to the other wall panel 300, away from the wall, extends along the inner wall of the insertion slot 310 that is away from the wall and abuts against the inner wall of the insertion slot 310 that is away from the wall. Simultaneously, the protruding structure of the snap-on portion 220 forms a wedge-shaped engagement with the inner wall of the insertion slot 310 that is adjacent to the wall. When the other wall panel 300 is lifted by an external force, the inner wall of the insertion slot 310 that is adjacent to the wall squeezes the protruding structure of the snap-on portion 220, forcing the flexible structure 200 to elastically bend away from the wall until the snap-on portion 220 slides out of the insertion slot 310, thereby achieving controllable separation of the flexible structure 200 from the other wall panel 300.

[0035] like Figure 2 and Figure 3 As shown, in some exemplary embodiments, the clamping portion 220 is formed by extending from the other end of the flexible structure 200 toward one side of the wall toward the wall. Specifically in this embodiment, the clamping portion 220 and the main body of the flexible structure 200 are integrally formed in an L-shaped corner. The corner structure produces a bidirectional mechanical effect: the branch of the flexible structure 200 provides a bearing surface for the pressure of the wall panel 300 in the direction of approaching the wall, and the branch of the clamping portion 220 forms an anti-pullout hook; when the wall panel 300 is installed and pressed down, the L-shaped corner converts the load in the direction of approaching the wall into deformation energy in the extension direction of the flexible structure 200, which is stored in the flexible structure 200. After the wall panel 300 is in place, the deformation energy is released to make the clamping portion 220 spring into the plug-in slot 310, generating a clear feedback sound indicating that the clamping is completed, which is convenient for on-site quick inspection of whether the installation is in place.

[0036] like Figure 2 and Figure 3 As shown, in some exemplary embodiments, the connection between the clamping portion 220 and the side of the flexible structure 200 facing the wall is provided with a rounded corner. Specifically in this embodiment, the rounded corner forms a stress diffusion cavity on the inner side of the L-shaped corner. Its arc-shaped transition creates a gradual curvature of the flexible structure 200 when it bends. When the clamping portion 220 is squeezed and lifted by the insertion slot 310, the rounded corner area preferentially undergoes uniform elastic deformation, avoiding stress concentration and tearing at the right-angle connection. At the same time, the curved inner wall of the rounded corner guides the extrusion force during the removal of the wall panel 300 in a tangential direction, converting sliding friction into a rolling trend and avoiding stress concentration caused by the rounded corner.

[0037] like Figure 2 and Figure 3As shown, in some exemplary embodiments, the flexible structure 200 further includes a flexible section 230 formed between the clamping portion 220 and the mortise portion 210. A curved portion 231 is formed on the side of the flexible section 230 facing the wall, with the curved portion 231 being concavely curved away from the wall. Specifically, in this embodiment, the flexible section 230 serves as the core area for deformation energy storage. Positioning the curved portion 231 on the side of the flexible section 230 facing the wall creates a unique "concave compression-convex tension" deformation mode: when the wall panel 300 is removed, forcing the flexible structure 200 upward, the concave surface of the curved portion 231 expands under tensile stress, while the convex surface contracts under compressive stress. This fully utilizes the characteristic of the flexible material's higher compressive strength than tensile strength, avoiding fatigue fracture caused by unilateral stress concentration during straight bending. Furthermore, the curved profile guides stress to be continuously transferred along the tangential direction, forming a uniformly distributed stress field. Compared to solutions with curved portions 231 positioned away from the wall, this significantly reduces peak stress and extends fatigue life. In these embodiments, the curved portion 231 can be designed as a multi-curvature composite structure: the first section near the tenon portion 210 adopts a high-curvature shallow concave shape to provide initial deformation resistance, the middle section transitions to a medium-curvature deep groove to increase the deformation stroke, and the last section connecting the clamping portion 220 adopts a low-curvature gentle slope to suppress stress rebound oscillation.

[0038] like Figure 2 and Figure 3 As shown, in some exemplary embodiments, the curvature radius of the curved portion 231 gradually increases from the tenon joint 210 toward the clip joint 220. Specifically, in this embodiment, the gradual increase in the curvature radius creates a gradient stiffness effect: the small curvature radius region of the curved portion 231 near the tenon joint 210 forms a high-rigidity fulcrum, effectively transferring load and preventing loosening of the connection during the initial disassembly phase; while the large curvature radius region extending toward the clip joint 220 forms a low-rigidity deformation arm, gradually diffusing concentrated stress into distributed bending strain.

[0039] like Figure 2 and Figure 3As shown, in some exemplary embodiments, the support structure 100 further includes: a fixing seat 120, the fixing seat 120 being connected to one end of the vertical arm section 111 close to the wall, the fixing seat 120 extending along the outer surface of the wall to support two adjacent wall panels 300, the fixing seat 120 being provided with a connecting position 121, and the fixing seat 120 being connected to the wall through the connecting position 121. Specifically in this embodiment, the fixing seat 120 forms a continuous support plane away from the top surface of the wall, and the support plane simultaneously supports the bottom edges of the left and right wall panels 300 close to the wall. In other embodiments, the surface of the fixing seat 120 close to the wall can be designed with a support edge extending toward the wall, and the support edge can cooperate with the wall surface to support the wall panel 300; in some embodiments, the fixing seat 120 is provided with a specific recessed area, such as a nail groove, which constitutes the connecting position 121; the head of the connecting member can be sunk into the recessed area, so that the fixing seat 120 is firmly fixed to the supporting foundation on the wall surface (such as a leveling keel or directly fixed to the wall) through the connecting member; the design of the nail groove ensures that the head of the connecting member does not protrude from the top surface of the fixing seat 120, thereby avoiding interference with the wall panel 300 and ensuring that the wall panel 300 can be placed flatly on the fixed structure; the bottom of the fixed structure is usually directly attached to the surface of the wall or the leveling keel, providing a solid and flat installation foundation for the entire detachable wall panel component.

[0040] Those skilled in the art will appreciate that the features described in the various embodiments of the present disclosure may be combined and / or coupled in various ways, even if such combinations or couplings are not explicitly described in the present disclosure. In particular, the features described in the various embodiments of the present disclosure may be combined and / or coupled in various ways without departing from the spirit and teachings of the present disclosure. All such combinations and / or couplings fall within the scope of the present disclosure.

[0041] The above describes the embodiments of the present disclosure. However, these embodiments are for illustrative purposes only and are not intended to limit the scope of the present disclosure. Although each embodiment has been described separately above, this does not mean that the measures in each embodiment cannot be advantageously used in combination. Without departing from the scope of the present disclosure, those skilled in the art may make various substitutions and modifications, which should all fall within the scope of the present disclosure.

Claims

1. A detachable wall panel component, characterized in that: The adjacent ends of two adjacent wall panels facing each other are respectively formed with plug-in grooves, and the removable wall panel component is arranged between the adjacent ends of the two adjacent wall panels, and the removable wall panel component includes: A support structure connected to the outer surface of the wall, the support structure having a clamping member extending away from the wall along the gap between two adjacent ends, the end of the clamping member away from the wall being clamped in the insertion slot of one of the wall panels; A flexible structure, one end of which is connected to the end of the clip away from the wall, and the other end of the flexible structure extends from the clip toward the other wall panel to be plugged into the plug-in slot of the other wall panel. When the other wall panel moves away from the wall, the flexible structure can be bent and deformed in a recoverable manner in the direction away from the wall.

2. The detachable wall panel component according to claim 1, characterized in that: The clamping member comprises: A vertical arm section, the vertical arm section extending along the gap between the two adjacent ends in a direction away from the wall; An inserting strip segment, one end of which is connected to an end of the vertical arm segment away from the wall, and the other end of which extends from the vertical arm segment toward one of the wall panels and is clamped in the inserting slot of one of the wall panels.

3. The detachable wall panel component according to claim 2, characterized in that: A mortise and tenon joint is formed at one end of the flexible structure, and a mortise and tenon groove is provided on the side of the vertical arm section facing the other wall panel. The inner groove width of the mortise and tenon groove is smaller than the groove width of the mortise and tenon groove. The flexible structure is connected to the vertical arm section through the mortise and tenon joints of the mortise and tenon joints in the mortise and tenon groove.

4. The detachable wall panel component according to claim 3, characterized in that: The inner groove width of the mortise groove gradually increases from the groove opening of the mortise groove toward a direction away from the other wallboard.

5. The detachable wall panel component according to claim 3, characterized in that: The other end of the flexible structure is provided with a clamping portion, which protrudes from the flexible structure toward the wall to clamp the plug-in slot of the other wall panel.

6. The detachable wall panel component according to claim 5, characterized in that: The clamping portion is formed by extending from the other end of the flexible structure toward one side of the wall toward the wall.

7. The detachable wall panel component according to claim 6, characterized in that: A chamfered corner is provided at a connection between the clamping portion and the flexible structure on a side facing the wall.

8. The detachable wall panel component according to claim 6, characterized in that: The flexible structure further includes a flexible section, which is formed between the clamping portion and the mortise portion. The flexible section is provided with a curved portion on a side facing the wall, and the curved portion is concave in an arc shape away from the wall.

9. The detachable wall panel component according to claim 8, characterized in that: The curvature radius of the concave curved portion increases gradually from the tenon portion toward the clamping portion.

10. The detachable wall panel component according to claim 8, characterized in that: The support structure further comprises: A fixing seat is connected to one end of the vertical arm section close to the wall, and the fixing seat extends along the outer surface of the wall to support two adjacent wall panels. The fixing seat is provided with a connecting position, and the fixing seat is connected to the wall through the connecting position.