Acrylic plate splicing structure

By using the T-block and T-slot snap-fit ​​structure of the assembly components, the problem of acrylic panels being unable to be replaced individually after assembly is solved, enabling rapid replacement and cost savings.

CN223767850UActive Publication Date: 2026-01-06CHAOZHOU HUARONG HOME DECORATION
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Patent Information

Application Number
CN202520266412.3
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-02-19
Publication Date
2026-01-06
Estimated Expiration
2035-02-19

AI Technical Summary

Technical Problem

The existing acrylic sheets cannot be replaced individually after being spliced ​​together, which increases the cost of use.

Method used

The acrylic panels are spliced ​​using modular components, including a snap-fit ​​structure of T-blocks and T-slots, as well as a design of pivots and limiting slots, enabling quick disassembly and replacement of the acrylic panels.

Benefits of technology

It enables quick replacement of acrylic sheets, reduces replacement costs, and avoids material waste caused by replacing the entire sheet.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses an acrylic plate splicing structure which comprises a first acrylic plate and a second acrylic plate which are symmetrically arranged, a splicing assembly is connected between the first acrylic plate and the second acrylic plate, a T-shaped block is arranged in the middle of the inner side face of the first acrylic plate, and a T-shaped groove is formed in the middle of the inner side face of the second acrylic plate. Mounting grooves are formed in the bottoms of the inner side faces of the first acrylic plate and the second acrylic plate, the two ends of the splicing assembly are mounted in the mounting grooves, the outer portions of the mounting grooves are of T-shaped structures, limiting grooves are formed in the mounting grooves in an inward extending mode, the limiting grooves are of L-shaped structures, the splicing assembly comprises a horizontally-arranged splicing plate, and connecting plates are symmetrically arranged at the two ends of the splicing plate; the acrylic plates are assembled, connected and fixed through rotation and superposition of the connecting plates and the assembling plates on the assembling assemblies, meanwhile, the acrylic plates can be movably detached from the connecting plates, the acrylic plates can be conveniently replaced, rapid replacement can be achieved, the replacement efficiency can be improved, and meanwhile the replacement cost can be saved.
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Description

Technical Field

[0001] This utility model belongs to the field of acrylic sheet splicing technology, specifically an acrylic sheet splicing structure. Background Technology

[0002] Acrylic sheets, as a new type of material, can be used as a substitute for glass. They are more stable and perform better than glass during use. However, acrylic sheets need to be spliced ​​together during use. Currently, most acrylic sheets are spliced ​​together by adhesive, which makes it impossible to replace individual sheets in subsequent replacements. This requires replacing the entire sheet, resulting in waste of raw materials and increased costs. Utility Model Content

[0003] In view of the shortcomings of the existing technology, the purpose of this utility model is to provide an acrylic sheet splicing structure to solve the problem that the existing acrylic sheets cannot be replaced individually after splicing, which is not conducive to subsequent continuous use and increases the cost of use.

[0004] To achieve the above objectives, this utility model provides the following technical solution: an acrylic sheet splicing structure, comprising a first acrylic sheet and a second acrylic sheet symmetrically arranged, with an assembly component connecting the first and second acrylic sheets. A T-shaped block is provided in the center of the inner side of the first acrylic sheet, and a T-shaped groove is provided in the center of the inner side of the second acrylic sheet. Mounting grooves are provided at the bottom of the inner sides of the first and second acrylic sheets. The assembly component is installed in the mounting grooves at both ends. The mounting grooves have a T-shaped structure on the outside and an L-shaped limiting groove extending inward from the mounting grooves. The assembly component includes a horizontally arranged assembly plate, with connecting plates symmetrically arranged at both ends. A rotating shaft is rotatably connected to the connection position between the connecting plate and the assembly plate. The acrylic sheets are assembled, connected, and fixed by rotating and overlapping the connecting plate and the assembly plate on the assembly component. Simultaneously, the acrylic sheets can be detached from the connecting plates, facilitating replacement and enabling rapid replacement, improving replacement efficiency and saving replacement costs.

[0005] The preferred structure of this solution includes a connecting plate with a length that is half the length of the assembly plate. The two connecting plates are flipped over to cover the assembly plate, which also facilitates the assembly and connection of the two acrylic plates.

[0006] The preferred structure of this solution also includes a bushing horizontally arranged at the outer end of the connecting plate, an installation shaft rotatably connected inside the bushing, the two ends of the installation shaft extending to the two ends of the bushing, a bearing connected between the inner side of the bushing and the installation shaft, the installation shaft being installed into the limiting groove, and the bushing being installed into the installation groove, which facilitates the connection and disassembly of the acrylic sheet.

[0007] As another preferred structure of this solution, T-slots are symmetrically arranged on the inner side of the second acrylic plate, and the pivots are symmetrically arranged at the ends of the connecting plate and the assembly plate. The connecting plate can be rotated onto the assembly plate, and the acrylic plates are connected to each other through T-blocks and T-slots.

[0008] As another preferred structure of this solution, the height of the mounting groove is the same as the diameter of the bushing, and the diameter of the mounting shaft is the same as the width of the limiting groove. The bushing is inserted into the mounting groove, and the mounting shaft is simultaneously engaged in the limiting groove to limit the mounting shaft, which facilitates the engagement between the acrylic plate and the connecting plate.

[0009] The advantages of this utility model are that the acrylic sheet can be spliced ​​by the assembly components without the need for adhesive bonding. At the same time, the acrylic sheet and the assembly components can be quickly disassembled, which facilitates the replacement of damaged acrylic sheets, improves replacement efficiency and saves production costs. The specific implementation method is further described in the following embodiments. Attached Figure Description

[0010] Figure 1 This is a schematic diagram of the overall structure of this utility model;

[0011] Figure 2 This is a schematic diagram of the first acrylic sheet structure;

[0012] Figure 3 This is a schematic diagram of the structure on the other side of the whole;

[0013] In the diagram: 1 First acrylic sheet, 2 Second acrylic sheet, 3 Assembly plate, 4 Connecting plate, 5 T-block, 6 T-slot, 7 Mounting slot, 8 Limiting slot, 9 Bushing, 10 Mounting shaft; Detailed Implementation

[0014] To make the technical means, creative features, objectives and effects of this utility model easier to understand, the present utility model will be further described below in conjunction with specific embodiments.

[0015] See Figures 1 to 3The assembly includes a first acrylic sheet and a second acrylic sheet arranged symmetrically. An assembly component connects the first and second acrylic sheets. A T-shaped block is located in the center of the inner side of the first acrylic sheet, and a T-shaped groove is located in the center of the inner side of the second acrylic sheet. Mounting grooves are located at the bottom of the inner sides of both the first and second acrylic sheets. The assembly component is installed in the mounting grooves at both ends. The mounting grooves have a T-shaped outer structure and an L-shaped limiting groove extending inward from the mounting groove. The assembly component includes a horizontally arranged assembly plate with connecting plates symmetrically arranged at both ends. A rotating shaft connects the connecting plates to the assembly plates. The acrylic sheets are assembled and fixed by rotating and stacking the connecting plates and assembly plates on the assembly component. The acrylic sheets can be detached from the connecting plates for easy replacement, enabling quick replacement, improving replacement efficiency, and saving on replacement costs. The connecting plate is half the length of the assembly plate. The two connecting plates flip over and cover the assembly plate, facilitating the assembly and connection of the two acrylic sheets. A bushing is horizontally installed at the outer end of the connecting plate, and an installation shaft is rotatably connected inside the bushing. The two ends of the installation shaft extend to the two ends of the bushing. A bearing is installed between the inner side of the bushing and the installation shaft. The installation shaft is installed into the limiting groove, and the bushing is installed into the installation groove, facilitating the connection and disassembly of the acrylic sheets. T-slots are symmetrically arranged on the inner side of the second acrylic sheet, and rotating shafts are symmetrically arranged at the ends of the connecting plate and the assembly plate. The connecting plate can rotate onto the assembly plate, and the acrylic sheets are connected to each other by T-blocks and T-slots. The height of the installation groove is the same as the diameter of the bushing, and the diameter of the installation shaft is the same as the width of the limiting groove. The bushing is inserted into the installation groove, and the installation shaft is locked into the limiting groove to limit the installation shaft, facilitating the connection between the acrylic sheet and the connecting plate.

[0016] During implementation, the mounting shaft is inserted into the limiting groove, and the L-shaped limiting groove limits the mounting shaft. At the same time, the bushing is inserted into the mounting groove to facilitate the rotational connection between the connecting plate and the acrylic plate. After the connection is completed, the connecting plates at both ends of the assembly plate are rotated on the assembly plate to rotate the connecting plate onto the assembly plate. The acrylic plate is then brought close together, and the acrylic plate is connected by inserting the T-shaped block into the T-shaped groove. When the acrylic plate needs to be replaced, the mounting shaft is removed from the limiting groove, and a new acrylic plate is installed on the connecting plate for subsequent connection operations. This method is highly efficient and saves production costs.

Claims

1. An acrylic sheet splicing structure, characterized in that: The utility model relates to a first acrylic plate (1) and second acrylic plate (2) are arranged symmetrically, and the first acrylic plate and second acrylic plate are connected and are provided with assembling components, the middle part of the inside of first acrylic plate is provided with T -shaped block (5), the middle part of the inside of second acrylic plate is provided with T -shaped groove (6), the bottom of the inside of first acrylic plate and second acrylic plate is provided with mounting groove (7), and the both ends of assembling components are installed and are provided in mounting groove, the outside of mounting groove is T -shaped structure, the mounting groove is provided with limit slot (8) and extends to the inside, the limit slot is L -shaped structure, and the assembling component includes horizontally arranged assembling plate (3), and the both ends of assembling plate are symmetrically provided with connecting plate (4), and the connecting plate is rotatably connected with the connecting position of assembling plate and is provided with rotating shaft.

2. The structure as claimed in claim 1, wherein: The length of the connecting plate (4) is half of the length of the assembling plate (3).

3. The structure as claimed in claim 1, wherein: The outer end of the connecting plate (4) is horizontally provided with a shaft sleeve (9), the shaft sleeve is rotatably connected with an installation shaft (10) inside, the installation shaft is extended to both ends of the shaft sleeve, and a bearing is connected between the inner side of the shaft sleeve and the installation shaft.

4. The structure as claimed in claim 1, wherein: The T-shaped groove (6) is symmetrically arranged on the inner side of the second acrylic plate (2), and the rotating shaft is symmetrically arranged on the end of the connecting plate (4) and the assembling plate (3).

5. The structure as claimed in claim 3, wherein: The height of the mounting groove (7) is the same as the diameter size of the shaft sleeve (9), and the diameter size of the installation shaft (10) is the same as the width size of the limit slot (8).