Indoor decoration plate with multiple splicing modes
Through the innovative design of horizontal and vertical splicing components, the problem of traditional decorative panels being difficult to remove has been solved, achieving seamless splicing and simplified installation, thus improving the practicality and adaptability of decorative panels.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- SHENZHEN RIGHT ANGLE DESIGN ENG CO LTD
- Filing Date
- 2025-05-16
- Publication Date
- 2026-04-17
AI Technical Summary
Traditional decorative panels are difficult to dismantle due to their splicing method, resulting in resource waste and damage to the base structure. Furthermore, the installation process relies on glue or nails, causing serious pollution.
It adopts horizontal and vertical splicing components, including a combination of connecting grooves and positioning blocks, and a locking strip and wedge-shaped locking structure, to achieve rapid horizontal and vertical positioning and avoid the use of glue and nails.
Seamless splicing is achieved, simplifying the installation process, reducing pollution, facilitating later disassembly and reassembly, and improving the practicality and adaptability of the decorative panels.
Smart Images

Figure CN224134119U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of interior decoration technology, and in particular to an interior decoration panel with multiple splicing methods. Background Technology
[0002] Interior decoration refers to the process of designing, renovating and decorating the interior space of a building. It aims to improve the use value, comfort and aesthetics of the space by rationally planning the space, optimizing the functional layout, selecting decorative materials and matching style elements, so as to meet the needs of users for living, working and entertainment. In order to adapt to interior decoration in different occasions, there is a special need for an interior decoration panel with multiple splicing methods.
[0003] However, traditional decorative panels are often spliced together using methods such as glue, nails, or cement mortar. Once installed, the panels are tightly bonded to the walls and floors, forming an integral structure that is difficult to separate. Removal requires the use of professional tools to pry and chisel forcefully, which can easily damage the tiles and the base layer. This leads to the need to level the ground again for subsequent reinstallation, resulting in a large amount of construction waste and a waste of resources. Utility Model Content
[0004] The purpose of this utility model is to provide an interior decoration panel with multiple splicing methods. Different splicing methods are used for different directions of the interior decoration panel, which solves the problems of the shortcomings of traditional splicing methods.
[0005] To achieve the above objectives, the present invention provides the following technical solution: an interior decoration panel with multiple splicing methods, comprising a decoration panel, wherein the surface of the decoration panel is provided with an arc-shaped strip, the horizontal side of the decoration panel is provided with a horizontal splicing component, and the vertical side of the decoration panel is provided with a vertical splicing component;
[0006] The vertical splicing assembly includes a slot formed on the vertical side surface of the decorative panel. A strip is provided on the other vertical surface of the decorative panel. A telescopic tube is connected inside the decorative panel on one side of the strip. A guide groove is formed on the inner side of the telescopic tube. A telescopic rod is slidably connected inside the telescopic tube. Guide blocks are connected to both sides of the bottom of the telescopic rod. A second telescopic spring is wound around the outer side of the telescopic rod. Connecting blocks are connected to the outer ends of both the telescopic rod and the second telescopic spring. A sliding groove is formed on the surface of the connecting block. A return spring is connected to one end of the inner side of the sliding groove. A slider is fixedly connected to one end of the return spring. A wedge block is connected above the slider. A card hole is formed on the surface of the decorative panel on one side of the slot. A wedge groove is formed on the inner side of the card hole.
[0007] Preferably, multiple identical sets of arc-shaped strips are provided on the surface of the decorative panel, and the arc-shaped strips in each set are distributed at equal intervals.
[0008] Preferably, the transverse splicing assembly includes a connecting groove, which is formed on the transverse surface of the decorative panel. A splicing plate is installed on the surface of the decorative panel, and a connecting block is connected to the surface of the splicing plate. A telescopic hole is formed inside the connecting block, and a first telescopic spring is connected to the inner end of the telescopic hole. A limit plate is connected to the outer side of the first telescopic spring, and a positioning block is connected to the outer side of the limit plate. A positioning hole is formed on the inner side of the connecting groove.
[0009] Preferably, the splicing panel is connected to the decorative panel via a connecting block and a connecting groove, and the outer wall size of the connecting block matches the inner wall size of the connecting groove.
[0010] Preferably, the limiting plate and the positioning block cooperate to form a telescopic structure, and the size of the positioning block is adapted to the size of the positioning hole.
[0011] Preferably, the position of the card strip corresponds to the position of the card slot, and the outer wall size of the card strip matches the inner wall size of the card slot.
[0012] Preferably, the telescopic rod slides inside the telescopic tube via a guide block and a guide groove, and the size of the guide block is precisely matched with the size of the guide groove.
[0013] Compared with existing technologies, the beneficial effects of this utility model are as follows: This interior decoration panel with multiple splicing methods, through the setting of horizontal splicing components and vertical splicing components, achieves rapid horizontal docking by using a combination of connecting grooves and positioning blocks in the horizontal splicing components, ensuring that adjacent panels are tightly attached to the same plane and effectively preventing lateral displacement. The vertical splicing components rely on the locking strips and wedge-shaped locking structure to ensure accurate positioning and firm connection of the panels in the vertical direction, avoiding detachment due to gravity or external pulling. With the synergistic effect of both, the decoration panel can easily meet the splicing needs of complex spaces. Whether it is a regular rectangular area or an irregular space with corners and concave and convex surfaces, seamless splicing can be achieved. At the same time, the elastic locking design of the dual components means that the decoration panel does not need to use glue, nails or other auxiliary materials during installation, which can reduce decoration pollution and facilitate partial disassembly and reassembly according to changes in space function, greatly improving the practicality and application scenario adaptability of the decoration panel. Attached Figure Description
[0014] Figure 1 This is a side view of the structure of the present utility model;
[0015] Figure 2 This is a schematic diagram of the horizontal splicing component structure of this utility model;
[0016] Figure 3 This is a schematic diagram of the vertical splicing component structure of this utility model;
[0017] Figure 4 This utility model Figure 2 Enlarged structural diagram at point A in the middle;
[0018] Figure 5 This utility model Figure 3 Enlarged structural diagram at point B.
[0019] In the diagram: 1. Decorative panel; 2. Curved strip; 3. Horizontal splicing component; 301. Connecting groove; 302. Splicing plate; 303. Connecting block; 304. Telescopic hole; 305. First telescopic spring; 306. Limiting plate; 307. Positioning block; 308. Positioning hole; 4. Vertical splicing component; 401. Slot; 402. Slot strip; 403. Telescopic tube; 404. Guide groove; 405. Telescopic rod; 406. Guide block; 407. Second telescopic spring; 408. Connecting block; 409. Slide groove; 410. Return spring; 411. Slider; 412. Wedge block; 413. Slot; 414. Wedge groove. Detailed Implementation
[0020] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.
[0021] Please see Figure 1-5 This utility model provides a technical solution: an interior decoration panel with multiple splicing methods, including a decoration panel 1, an arc strip 2 on the surface of the decoration panel 1, a horizontal splicing component 3 on the horizontal side of the decoration panel 1, and a vertical splicing component 4 on the vertical side of the decoration panel 1.
[0022] The vertical splicing component 4 includes a slot 401, which is formed on the vertical side surface of the decorative panel 1. A strip 402 is provided on the other vertical surface of the decorative panel 1. A telescopic tube 403 is connected inside the decorative panel 1 on one side of the strip 402. A guide groove 404 is formed on the inner side of the telescopic tube 403. A telescopic rod 405 is slidably connected inside the telescopic tube 403. Guide blocks 406 are connected to both sides of the bottom of the telescopic rod 405. A second telescopic spring 407 is wound around the outer side of the telescopic rod 405. The telescopic rod 405 and the second... Each of the outer ends of the telescopic spring 407 is connected to a connecting block 408. A groove 409 is formed on the surface of the connecting block 408. A return spring 410 is connected to one end of the inner side of the groove 409. A slider 411 is fixedly connected to one end of the return spring 410. A wedge block 412 is connected above the slider 411. A locking hole 413 is formed on the surface of the decorative panel 1 on one side of the locking slot 401. A wedge groove 414 is formed on the inner side of the locking hole 413. Through the vertical splicing component 4, when two decorative panels 1 are vertically spliced, a locking strip will be attached. One side of decorative panel 1 of 402 is aligned with the slot 401 of another decorative panel 1. During the insertion of the clip 402 into the slot 401, the wedge block 412 first contacts the inclined inner wall of the slot 401. After being squeezed, the wedge block 412 drives the slider 411 to slide in the slide groove 409 and compress the return spring 410. At the same time, it pushes the connecting block 408 to move into the telescopic tube 403. The telescopic rod 405 then slides in the telescopic tube 403 and compresses the second telescopic spring 407. When the clip 402 is fully inserted into the slot 401, the wedge block 412... When block 412 is aligned with the locking hole 413, the elastic force of the second telescopic spring 407 and the return spring 410 is released, pushing the wedge block 412 into the wedge groove 414 in the locking hole 413, so that the two decorative panels are tightly locked. When disassembling, simply overcome the elastic force of the return spring 410 to make the wedge block 412 exit the wedge groove 414 and retract into the locking hole 413. At the same time, the second telescopic spring 407 is compressed, and the locking strip 402 can be easily pulled out from the locking groove 401, realizing the quick separation of the decorative panels and facilitating the later adjustment of the layout.
[0023] Furthermore, multiple sets of the same curved strips 2 are set on the surface of the decorative panel 1, and each set of curved strips 2 is evenly spaced. Through the setting of the curved strips 2, multiple sets of equally spaced curved strips 2 form a rhythmic combination of lines. When light and shadow are projected onto them, they will outline flowing and changing shadows on the wall or floor, adding an artistic atmosphere to the space. Whether it is used to create a light luxury style for the background wall of the living room or to decorate the commercial showroom to create a sense of technology, it can break the monotony of the flat surface. On the other hand, the structural design of the curved strips 2 effectively enhances the physical properties of the decorative panel 1. The curved surface disperses the impact of external forces on the panel, avoids local stress concentration, and improves the overall bending resistance and impact resistance. At the same time, it can also serve as an anti-collision buffer structure for wall or floor decoration, reducing the risk of damage caused by furniture collisions.
[0024] Furthermore, the transverse splicing component 3 includes a connecting groove 301, which is formed on the transverse surface of the decorative panel 1. A splicing plate 302 is installed on the surface of the decorative panel 1, and a connecting block 303 is connected to the surface of the splicing plate 302. A telescopic hole 304 is formed inside the connecting block 303, and a first telescopic spring 305 is connected to the inner end of the telescopic hole 304. A limit plate 306 is connected to the outer side of the first telescopic spring 305, and a positioning block 307 is connected to the outer side of the limit plate 306. A positioning hole 308 is formed on the inner side of the connecting groove 301. With the setting of the transverse splicing component 3, when two decorative panels 1 need to be spliced transversely, the splicing plate 302 of one decorative panel 1 is aligned with the connecting groove 301 of the other decorative panel 1. During the process of the connecting block 303 being inserted into the connecting groove 301, the inclined surface of the positioning block 307 first contacts the edge of the connecting groove 301, and after being squeezed, it moves towards the telescopic hole 308. 04. The inner contraction compresses the first telescopic spring 305 and drives the limiting plate 306 to slide along the telescopic hole 304. When the connecting block 303 is fully inserted into the connecting groove 301, the positioning block 307 aligns with the positioning hole 308. The elastic potential energy of the first telescopic spring 305 is released, pushing the limiting plate 306 and the positioning block 307 outward, so that the positioning block 307 is locked into the positioning hole 308, realizing the lateral locking of the two decorative panels 1. At this time, the splicing plate 302 is tightly attached to the inner wall of the connecting groove 301, ensuring the flatness and stability of the splicing point. If disassembly is required, the elastic force of the first telescopic spring 305 is overcome to make the positioning block 308 exit the telescopic hole 304, and the connecting block 303 can be pulled out from the connecting groove 301, realizing the lateral separation of the decorative panels 1. This design not only simplifies the installation process and improves construction efficiency, but also enables non-destructive disassembly when adjusting the layout later, facilitating the reuse of decorative panels.
[0025] Furthermore, the splicing panel 302 is connected to the decorative panel 1 via the connecting block 303 and the connecting groove 301. The outer wall size of the connecting block 303 matches the inner wall size of the connecting groove 301. Through the setting of the connecting groove 301 and the connecting block 303, a tight and precise fit is achieved between the decorative panel 1 and the splicing panel 302. The matching size of the two ensures that the surface is flat and seamless after splicing, effectively preventing dust, water stains, etc. from entering the splicing area, improving the overall aesthetics and ease of cleaning. At the same time, the tight connection structure enhances the stability of the horizontal splicing, preventing the panels from misaligning or loosening due to external impact or changes in environmental temperature and humidity.
[0026] Furthermore, the limiting plate 306 forms a telescopic structure by cooperating with the first telescopic spring 305 and the positioning block 307. The size of the positioning block 307 is adapted to the size of the positioning hole 308. Through the setting of the positioning block 307 and the positioning hole 308, a reliable positioning and locking function is provided for the horizontal splicing of the decorative panels. When the positioning block 307 is inserted into the positioning hole 308, a mechanical limit is formed, which restricts the lateral displacement of the splicing panel 302. Together with the connecting groove 301 and the connecting block 303, it forms a double fixing mechanism to ensure that the spliced decorative panels remain firmly connected when subjected to daily use pressure or external impact, which greatly improves the overall structural strength.
[0027] Furthermore, the position of the clip 402 corresponds to the position of the slot 401, and the outer wall size of the clip 402 matches the inner wall size of the slot 401. Through the setting of the slot 401 and the clip 401, the vertical splicing of the decorative panels is quickly and accurately connected. The corresponding positions and matching dimensions of the two make it possible to directly insert the clip 402 into the slot 401 during installation without complicated measurement and adjustment, and quickly complete the initial positioning. The tight fit not only ensures that the splice is flat and beautiful, but also effectively disperses the vertical force and prevents the panels from shifting or deforming in the vertical direction, providing stable support for the overall wall and floor structure.
[0028] Furthermore, the telescopic rod 405 slides inside the telescopic tube 403 via the guide block 406 and the guide groove 404. The size of the guide block 406 is precisely matched with the size of the guide groove 404. The guide groove 404 and the guide block 406 provide precise guidance for the sliding of the telescopic rod 405 inside the telescopic tube 403. The precisely matched size ensures that the telescopic rod 405 extends and retracts smoothly along a fixed trajectory, avoiding shaking or deviation during the extension and retraction process. This ensures that the wedge block 412 can be accurately aligned and engaged with the locking hole 413 and the wedge groove 414. At the same time, the guide structure can also effectively share the external force on the telescopic rod 405, reduce component wear, extend the service life of the vertical splicing components, and ensure the long-term reliability of the vertical splicing of the decorative panels.
[0029] Working principle: In actual installation scenarios, the horizontal and vertical splicing of decorative panels can be freely combined according to the spatial layout. When splicing horizontally, the construction worker aligns the connecting block 303 of the splicing panel 302 with the connecting groove 301 of the adjacent decorative panel 1. Utilizing the elastic cooperation between the positioning block 307 and the first telescopic spring 305, "insert and lock" is achieved. During the insertion of the connecting block 303, the positioning block 307 automatically retracts, and after being inserted into place, it instantly pops out and locks into the positioning hole 308. At the same time, the tightly fitting connecting groove 301 and connecting block 303 ensure a flat and seamless splicing surface, forming a stable horizontal connection. When splicing vertically, the operation process is the same. The locking strip 402 is precisely inserted into the slot 401, and the wedge block 412 is in the first... Driven by the dual elastic force of the two telescopic springs 407 and the return spring 410, the panels automatically engage with the wedge-shaped groove 414, achieving a secure vertical lock. The organic combination of horizontal and vertical splicing methods allows for the rapid construction of complete wall and floor coverage with the decorative panels. Whether in rectangular or irregularly shaped spaces, seamless splicing can be achieved through flexible combinations, significantly improving construction efficiency. During use, the curved strip 2 and the splicing components jointly undertake structural reinforcement functions. The curved strip 2 enhances the overall deformation resistance of the panels by dispersing external impacts, while the horizontal and vertical splicing components, through a mechanical locking structure, tightly connect the panels to form an integrated force-bearing system. For example, when the floor decorative panel is subjected to pressure from heavy objects, the vertical locking strip... The 402 slot, 401, lateral positioning block 307, and positioning hole 308 work together to distribute pressure, preventing loosening or damage caused by single-point force and ensuring long-term stability. Simultaneously, the tight splicing structure effectively isolates external environmental influences, preventing dust and moisture from penetrating the splicing gaps, extending the board's lifespan and facilitating daily cleaning and maintenance. When users need to adjust the spatial layout, the detachable nature of this decorative board offers significant advantages. To disassemble the lateral splice, simply press the positioning block 307 to retract it into the telescopic hole 304, easily separating the connecting block 303 from the connecting groove 301. Vertical disassembly involves pressing the wedge block 412 to overcome the spring force and exit the wedge groove 414, achieving a locking mechanism. The separation of strip 402 from slot 401 allows for disassembly without damaging the board or base structure. The disassembled decorative board can be reused in other areas, significantly reducing secondary decoration costs and material waste. In addition, the precision guiding structure of each component ensures accurate fit even after multiple disassemblies and reassemblies, maintaining the stability and sealing of the splicing. Through the innovative design of curved strips, horizontal splicing components, and vertical splicing components, this decorative board not only achieves diversified and personalized decorative effects but also achieves a high degree of unity in structural strength, ease of installation, and sustainability, providing an efficient and flexible solution for modern interior decoration. This completes the process of using an interior decorative board with multiple splicing methods.
[0030] Although embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the present invention, the scope of which is defined by the appended claims and their equivalents.
Claims
1. An interior finishing panel having a plurality of assembly modes, comprising a finishing panel (1), characterized in that: The surface of the decorative panel (1) is provided with an arc strip (2), the horizontal side of the decorative panel (1) is provided with a horizontal splicing component (3), and the vertical side of the decorative panel (1) is provided with a vertical splicing component (4). The vertical splicing component (4) includes a slot (401) on the vertical side surface of the decorative panel (1). A strip (402) is provided on the other vertical surface of the decorative panel (1). A telescopic tube (403) is connected inside the decorative panel (1) on one side of the strip (402). A guide groove (404) is provided on the inner side of the telescopic tube (403). A telescopic rod (405) is slidably connected inside the telescopic tube (403). Guide blocks (406) are connected to the bottom two sides of the telescopic rod (405). A second extension is wound around the outer side of the telescopic rod (405). The telescopic rod (405) and the outer ends of the second telescopic spring (407) are both connected to connecting blocks (408). The surface of the connecting block (408) is provided with a sliding groove (409). One end of the inner side of the sliding groove (409) is connected to a return spring (410). One end of the return spring (410) is fixedly connected to a slider (411). A wedge block (412) is connected above the slider (411). A card hole (413) is provided on the surface of the decorative panel (1) on one side of the card slot (401). A wedge groove (414) is provided on the inner side of the card hole (413).
2. The interior decoration panel with multiple splicing methods according to claim 1, characterized in that: The arc-shaped strips (2) are arranged in multiple identical sets on the surface of the decorative panel (1), and the arc-shaped strips (2) are distributed at equal intervals between each set.
3. The interior decoration plate with multiple splicing modes according to claim 1, characterized in that: The horizontal splicing assembly (3) includes a connecting groove (301), which is formed on the horizontal surface of the decorative panel (1). A splicing plate (302) is installed on the surface of the decorative panel (1). A connecting block (303) is connected to the surface of the splicing plate (302). A telescopic hole (304) is formed inside the connecting block (303). A first telescopic spring (305) is connected to the inner end of the telescopic hole (304). A limit plate (306) is connected to the outer side of the first telescopic spring (305). A positioning block (307) is connected to the outer side of the limit plate (306). A positioning hole (308) is formed inside the connecting groove (301).
4. The interior decoration plate with multiple splicing modes according to claim 3, characterized in that: The splicing panel (302) is connected to the decorative panel (1) via a connecting block (303) and a connecting groove (301). The outer wall size of the connecting block (303) matches the inner wall size of the connecting groove (301).
5. The interior decoration plate with multiple splicing modes according to claim 3, characterized in that: The limiting plate (306) forms a telescopic structure by cooperating with the positioning block (307) through the first telescopic spring (305), and the size of the positioning block (307) is adapted to the size of the positioning hole (308).
6. The interior decoration plate with multiple splicing modes according to claim 1, characterized in that: The position of the card strip (402) corresponds to the position of the card slot (401), and the outer wall size of the card strip (402) matches the inner wall size of the card slot (401).
7. The interior decoration plate with multiple splicing modes according to claim 1, characterized in that: The telescopic rod (405) slides inside the telescopic tube (403) via the guide block (406) and the guide groove (404), and the size of the guide block (406) is precisely matched with the size of the guide groove (404).