Modularized glass fiber plate quick connection structure

By using the self-locking component design of the modular fiberglass board quick-connect structure, the problems of low installation efficiency, poor stability and high material waste of existing fiberglass board connection structures are solved, realizing an efficient and economical connection method that meets the rapid assembly needs of modern buildings.

CN224133923UActive Publication Date: 2026-04-17GAUNGLIN SUZHOU CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
GAUNGLIN SUZHOU CO LTD
Filing Date
2025-04-21
Publication Date
2026-04-17

AI Technical Summary

Technical Problem

Existing fiberglass board connection structures suffer from low installation efficiency, poor connection stability, high maintenance costs, and high material waste, making it difficult to meet the demands of modern buildings for lightweight, rapid assembly, and environmentally friendly construction.

Method used

The modular fiberglass board quick-connect structure is adopted, and a two-way self-locking structure is formed by self-locking components, including a self-locking block, slider, pull rod, compression spring and limit ring. Stable connection is achieved through the cooperation of slider and limit ring, simplifying the installation process.

Benefits of technology

It improves connection stability, simplifies the installation process, shortens the construction period, reduces maintenance costs, and reduces material waste.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of glass fiber plate installation, in particular to a modularized glass fiber plate quick connecting structure which comprises a hanging rod connected with a ceiling, a hanging piece connected to the bottom of the hanging rod, a hanging sectional material connected to the hanging piece, and a glass fiber plate connected to the hanging sectional material. The hoisting piece comprises a first transverse plate, a first vertical plate, a second transverse plate and a second vertical plate, the first transverse plate is connected with the first vertical plate, the end, away from the first transverse plate, of the first vertical plate is connected with the second transverse plate, the second transverse plate is connected with the second vertical plate, the first vertical plate and the second vertical plate are penetrated by the connecting rod, and the two ends of the connecting rod are connected with self-locking pieces. The two self-locking pieces abut against the opposite faces of the first vertical plate and the second vertical plate respectively. The bidirectional self-locking structure is formed by the two self-locking pieces, the connection stability is improved, meanwhile, the installation process is simplified, a traditional welding and bolt combination mode is replaced, installation tools are saved, the construction efficiency is improved, and the construction period is greatly shortened.
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Description

Technical Field

[0001] This utility model relates to the field of fiberglass board technology, and in particular to a modular fiberglass board quick connection structure. Background Technology

[0002] Traditional installation methods for fiberglass board connection structures typically involve welding combined with bolts. This method suffers from problems such as low installation efficiency (installation time for a single board is ≥15 minutes), poor connection stability (susceptible to deformation due to temperature and humidity), and high maintenance costs (disassembly requires destructive operations).

[0003] Meanwhile, non-standard connections result in material waste rates as high as 12%-18%, making it difficult to meet the demands of modern buildings for lightweight, rapid assembly, and environmentally friendly construction. Therefore, there is an urgent need for a new type of installation technology that is efficient, economical, and sustainable. Utility Model Content

[0004] The technical problem to be solved by this utility model is: in order to solve the technical problems in the prior art, this utility model provides a modular fiberglass board quick connection structure.

[0005] The technical solution adopted by this utility model to solve its technical problem is: a modular fiberglass board quick connection structure, including a suspension rod connected to the ceiling, a hanging component connected to the bottom of the suspension rod, a suspension profile connected to the hanging component, and a fiberglass board connected to the suspension profile; the hanging component includes a first horizontal plate, a first vertical plate, a second horizontal plate, and a second vertical plate, the first horizontal plate is connected to the first vertical plate, the end of the first vertical plate away from the first horizontal plate is connected to the second horizontal plate, the end of the second horizontal plate away from the first vertical plate is connected to the second vertical plate, and a placement groove for placing the suspension profile is formed between the first vertical plate, the second horizontal plate, and the second vertical plate; the first vertical plate and the second vertical plate are passed through by a connecting rod, and both ends of the connecting rod are connected to self-locking components, the two self-locking components respectively abutting against the opposite sides of the first vertical plate and the second vertical plate.

[0006] The modular fiberglass board quick-connect structure of this utility model uses two self-locking components to form a bidirectional self-locking structure, which improves connection stability, simplifies the installation process, improves construction efficiency, and greatly shortens the construction period.

[0007] Furthermore, the self-locking component includes a self-locking block, which abuts against the first or second vertical plate. The self-locking block has a self-locking hole, and the self-locking block is fitted onto the connecting rod through the self-locking hole. A sliding groove is provided on the side wall of the self-locking hole, and a slider slides in the sliding groove. A pull rod is connected to the end of the slider away from the self-locking hole. The end of the pull rod away from the slider extends out of the self-locking block and is connected to a stop block. A compression spring is fitted on the pull rod, with one end abutting against the slider and the other end abutting against the end of the sliding groove away from the self-locking hole. The connecting rod has a limiting ring, and multiple limiting rings are provided along the axial direction of the connecting rod. An annular groove for the slider to be inserted is formed between adjacent limiting rings.

[0008] Furthermore, an elastic pad is connected to the side of the self-locking block facing the first vertical plate or the second vertical plate.

[0009] Furthermore, the end of the slider away from the stop is provided with a first inclined surface. When the self-locking block moves toward the first vertical plate or the second vertical plate, the first inclined surface abuts against the limiting ring, so that the slider overcomes the spring force and retracts into the groove.

[0010] Furthermore, the end of the limiting ring away from the first vertical plate or the second vertical plate is provided with a second inclined surface, which is used to abut against the first inclined surface.

[0011] Furthermore, the boom and the first horizontal plate are connected by a locking device.

[0012] Furthermore, the locking component includes a first locking plate and a first hook. The rod is provided with a locking hole through which the first locking plate passes. The first locking plate is used to abut against the first horizontal plate to support the first horizontal plate.

[0013] Furthermore, a support plate is connected to the first horizontal plate, a rotating shaft is rotatably connected to the support plate, a first hook is rotatably connected to the rotating shaft, the end of the first locking piece away from the first horizontal plate is provided with a slot for the first hook to engage, a torsion spring is sleeved on the rotating shaft, one end of the torsion spring is connected to the first hook, and the other end is connected to the support plate, so as to apply a torque to the first hook to rotate toward the slot.

[0014] The beneficial effects of this utility model are:

[0015] 1. By using two self-locking components to form a bidirectional self-locking structure, the connection stability is improved, while the installation process is simplified, construction efficiency is increased, and the construction period is greatly shortened;

[0016] 2. When locking, place the locking hole of the locking block onto the connecting rod, and then continuously move the locking block toward the first or second vertical plate. During the movement, the first inclined surface on the slider abuts against multiple second inclined surfaces in sequence. Each time the first inclined surface abuts against the second inclined surface, the slider retracts into the groove once, and the slider passes over a limit ring and enters a new ring groove until the elastic pad abuts against the first or second vertical plate. At this time, the first or second vertical plate will be pressed and will exert a reaction force. The elastic pad will also generate a force due to the elasticity of its own material due to being squeezed. The two act together on the self-locking block, so that the slider abuts against the corresponding limit ring, thereby achieving the locking of the first or second vertical plate. Attached Figure Description

[0017] The present invention will be further described below with reference to the accompanying drawings and embodiments.

[0018] Figure 1 This is a schematic diagram of the overall structure of the modular fiberglass board quick-connect structure in this utility model.

[0019] Figure 2 This is a three-dimensional structural diagram illustrating the self-locking component in this utility model.

[0020] Figure 3 This is a cross-sectional structural diagram illustrating the self-locking component in this utility model.

[0021] Figure 4 yes Figure 3 A magnified view of part A in the middle.

[0022] Figure 5 This is a three-dimensional structural diagram illustrating the locking component in this utility model.

[0023] Figure 6 This is a cross-sectional structural diagram illustrating the locking component in this utility model.

[0024] In the diagram: 1. Lifting rod; 2. Lifting component; 21. First horizontal plate; 22. First vertical plate; 23. Second horizontal plate; 24. Second vertical plate; 241. Placement groove; 25. Connecting rod; 251. Limiting ring; 252. Ring groove; 253. Second inclined plane; 3. Suspension profile; 4. Fiberglass board; 5. Self-locking component; 51. Self-locking block; 511. Self-locking hole; 512. Slide groove; 513. Sliding block; 514. Pull rod; 515. Stop block; 516. Compression spring; 517. First inclined plane; 52. Elastic pad; 6. Locking component; 61. First locking piece; 62. First hook; 63. Torsion spring; 64. Support plate; 65. Second locking piece; 66. Second hook; 67. Locking hole. Detailed Implementation

[0025] The present invention will now be described in further detail with reference to the accompanying drawings. These drawings are simplified schematic diagrams, illustrating only the basic structure of the present invention, and therefore only show the components relevant to the present invention.

[0026] In the description of this utility model, it should be understood that the terms "center," "longitudinal," "transverse," "length," "width," "thickness," "upper," "lower," "front," "rear," "left," "right," "vertical," "horizontal," "top," "bottom," "inner," "outer," "clockwise," "counterclockwise," "axial," "radial," and "circumferential," etc., indicating the orientation or positional relationship shown in the accompanying drawings, are only for the convenience of describing this utility model and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation, and therefore should not be construed as a limitation of this utility model. Furthermore, features defined with "first" or "second" may explicitly or implicitly include one or more of that feature. In the description of this utility model, unless otherwise stated, "a plurality of" means two or more. In the description of this utility model, it should be noted that, unless otherwise explicitly specified and limited, the terms "installation," "connection," and "joining" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; and they can refer to the internal connection of two components. Those skilled in the art can understand the specific meaning of the above terms in this utility model based on the specific circumstances.

[0027] This utility model discloses a modular fiberglass board quick connection structure.

[0028] Reference Figures 1 to 6 A modular fiberglass board quick-connect structure includes a suspension rod 1 connected to the ceiling, a lifting component 2 connected to the bottom of the suspension rod 1, a suspension profile 3 connected to the lifting component 2, and a fiberglass board 4 connected to the suspension profile 3.

[0029] Specifically, the lifting component 2 includes a first horizontal plate 21, a first vertical plate 22, a second horizontal plate 23, and a second vertical plate 24. The first horizontal plate 21 is connected to the first vertical plate 22. The end of the first vertical plate 22 away from the first horizontal plate 21 is connected to the second horizontal plate 23. The end of the second horizontal plate 23 away from the first vertical plate 22 is connected to the second vertical plate 24. A placement groove 241 for placing the suspended profile 3 is formed between the first vertical plate 22, the second horizontal plate 23, and the second vertical plate 24. The first vertical plate 22 and the second vertical plate 24 are passed through by a connecting rod 25. Both ends of the connecting rod 25 are connected to self-locking components 5. The two self-locking components 5 abut against the opposite sides of the first vertical plate 22 and the second vertical plate 24, respectively. The two self-locking components 5 form a bidirectional self-locking structure, which improves the connection stability, simplifies the installation process, improves construction efficiency, and greatly shortens the construction period.

[0030] More specifically, the self-locking component 5 includes a self-locking block 51, which abuts against the first vertical plate 22 or the second vertical plate 24. The self-locking block 51 is provided with a self-locking hole 511, through which the self-locking block 51 is fitted onto the connecting rod 25. A sliding groove 512 is provided on the side wall of the self-locking hole 511, and a slider 513 slides in the sliding groove 512. A pull rod 514 is connected to one end of the slider 513 away from the self-locking hole 511. The end of the pull rod 514 away from the slider 513 extends out of the self-locking block 51 and is connected to a stop block 515. A compression spring 516 is fitted on the pull rod 514, with one end of the compression spring 516 abutting against the slider 513 and the other end abutting against the end of the sliding groove 512 away from the self-locking hole 511. A limiting ring 251 is integrally formed on the connecting rod 25. Multiple limiting rings 251 are provided along the axial direction of the connecting rod 25. An annular groove 252 for inserting the slider 513 is formed between adjacent limiting rings 251.

[0031] Furthermore, an elastic pad 52 is connected to the side of the self-locking block 51 facing the first vertical plate 22 or the second vertical plate 24. The elastic pad 52 can be made of rubber.

[0032] Furthermore, the end of the slider 513 away from the stop block 515 has a first inclined surface 517. When the self-locking block 51 moves toward the first vertical plate 22 or the second vertical plate 24, the first inclined surface 517 abuts against the limiting ring 251, so that the slider 513 overcomes the elastic force of the compression spring 516 and retracts into the slide groove 512. The end of the limiting ring 251 away from the first vertical plate 22 or the second vertical plate 24 has a second inclined surface 253, which abuts against the first inclined surface 517. The cooperation of the first inclined surface 517 and the second inclined surface 253 facilitates the pressing of the slider 513 back into the slide groove 512 while reducing wear on the first inclined surface 517.

[0033] When locking, the locking hole 67 of the locking block is fitted onto the connecting rod 25, and then the locking block is continuously moved toward the first vertical plate 22 or the second vertical plate 24. During the movement, the first inclined surface 517 on the slider 513 abuts against multiple second inclined surfaces 253 in sequence. Each time the first inclined surface 517 abuts against the second inclined surface 253, the slider 513 retracts into the slide groove 512 once, and the slider 513 passes over a limiting ring 251 and enters a new ring groove 252 until the elastic pad 52 abuts against the first vertical plate 22 or the second vertical plate 24. At this time, the first vertical plate 22 or the second vertical plate 24 will be pressed and will exert a reaction force. The elastic pad 52 will also generate a force due to the elasticity of its own material due to being squeezed. The two act together on the self-locking block 51, so that the slider 513 abuts against the corresponding limiting ring 251, thereby realizing the locking of the first vertical plate 22 or the second vertical plate 24.

[0034] The boom 1 is connected to the first horizontal plate 21 by a locking member 6.

[0035] Specifically, the locking component 6 includes a first locking plate 61 and a first hook 62. The boom 1 has a locking hole 67 through which the first locking plate 61 passes. The first locking plate 61 abuts against the bottom surface of the first horizontal plate 21 to support it. A support plate 64 is fixedly connected to the first horizontal plate 21, and a rotating shaft is rotatably connected to the support plate 64. The first hook 62 is rotatably connected to the rotating shaft. The end of the first locking plate 61 away from the first horizontal plate 21 has a groove for the first hook 62 to engage. A torsion spring 63 is sleeved on the rotating shaft. One end of the torsion spring 63 is connected to the first hook 62, and the other end is connected to the support plate 64, applying a torque to the first hook 62 to rotate towards the groove, thereby causing the first hook 62 to engage in the groove and preventing the first locking plate 61 from shifting.

[0036] More specifically, the locking component 6 also includes a second locking piece 65 and a second hook 66. The structure of the second locking piece 65 is the same as that of the first locking piece 61, and the structure of the second hook 66 is the same as that of the first hook 62. The only difference is that the second locking piece 65 abuts against the top surface of the first horizontal plate 21. The first locking piece 61 and the second locking piece 65 cooperate to achieve a stable connection between the boom 1 and the first horizontal plate 21. The locking hole 67 can be extended along the axial direction of the boom 1 so that both the first locking piece 61 and the second locking piece 65 are located within the locking hole 67.

[0037] Working principle: The two self-locking components 5 form a bidirectional self-locking structure, which improves connection stability and simplifies the installation process, replacing the traditional welding and bolting method. This saves installation tools, improves construction efficiency, and greatly shortens the construction period. In addition, the self-locking components 5 also facilitate disassembly and maintenance.

[0038] Based on the above-described preferred embodiments of this utility model, and through the foregoing description, those skilled in the art can make various changes and modifications without departing from the technical concept of this utility model. The technical scope of this utility model is not limited to the contents of the specification, but must be determined according to the scope of the claims.

Claims

1. A modular fiberglass board quick connection structure, characterized by, Includes a hanger (1) connected to the ceiling, a hanging member (2) connected to the bottom of the hanger (1), a suspension profile (3) connected to the hanging member (2), and a fiberglass board (4) connected to the suspension profile (3); The hoisting component (2) includes a first horizontal plate (21), a first vertical plate (22), a second horizontal plate (23), and a second vertical plate (24). The first horizontal plate (21) is connected to the first vertical plate (22). The end of the first vertical plate (22) away from the first horizontal plate (21) is connected to the second horizontal plate (23). The end of the second horizontal plate (23) away from the first vertical plate (22) is connected to the second vertical plate (24). A placement groove (241) for placing the suspended profile (3) is formed between the first vertical plate (22), the second horizontal plate (23), and the second vertical plate (24). The first vertical plate (22) and the second vertical plate (24) are passed through by a connecting rod (25), and both ends of the connecting rod (25) are connected to self-locking parts (5). The two self-locking parts (5) respectively abut against the opposite sides of the first vertical plate (22) and the second vertical plate (24).

2. The modular fiberglass board quick connection structure according to claim 1, wherein, The self-locking component (5) includes a self-locking block (51), which abuts against the first vertical plate (22) or the second vertical plate (24). The self-locking block (51) has a self-locking hole (511), through which it is fitted onto the connecting rod (25). A groove (512) is provided on the side wall of the self-locking hole (511), and a slider (513) slides within the groove (512). The slider (513) is connected to a pull rod (514) at one end away from the self-locking hole (511). The pull rod (514) extends out of the self-locking block (51) and is connected to a stop block (515) at one end away from the slider (513). A compression spring (516) is sleeved on the pull rod (514). One end of the compression spring (516) abuts against the slider (513), and the other end abuts against the end of the slide groove (512) away from the self-locking hole (511). The connecting rod (25) is provided with a limiting ring (251), and multiple limiting rings (251) are provided along the axial direction of the connecting rod (25). An annular groove (252) for inserting a slider (513) is formed between adjacent limiting rings (251).

3. The modular fiberglass board quick connection structure according to claim 2, wherein, The side of the self-locking block (51) facing the first vertical plate (22) or the second vertical plate (24) is connected to an elastic pad (52).

4. The modular fiberglass board quick connection structure according to claim 3, wherein, The slider (513) has a first inclined surface (517) at one end away from the stop block (515). When the self-locking block (51) moves toward the first vertical plate (22) or the second vertical plate (24), the first inclined surface (517) abuts against the limiting ring (251) so that the slider (513) overcomes the elastic force of the compression spring (516) and retracts into the slide groove (512).

5. The modular fiberglass panel quick connection structure of claim 4, wherein, The limiting ring (251) has a second inclined surface (253) at one end away from the first vertical plate (22) or the second vertical plate (24), and the second inclined surface (253) is used to abut against the first inclined surface (517).

6. The modular fiberglass panel quick connection structure of claim 1, wherein, The boom (1) is connected to the first horizontal plate (21) by a locking member (6).

7. The modular fiberglass panel quick connection structure of claim 6, wherein, The locking member (6) includes a first locking piece (61) and a first hook (62). The rod (1) is provided with a locking hole (67) through which the first locking piece (61) passes. The first locking piece (61) is used to abut against the first horizontal plate (21) to support the first horizontal plate (21).

8. The modular fiberglass panel quick connection structure of claim 7, wherein, A support plate (64) is connected to the first horizontal plate (21). A rotating shaft is rotatably connected to the support plate (64). A first hook (62) is rotatably connected to the rotating shaft. The first locking piece (61) has a slot at one end away from the first horizontal plate (21) for the first hook (62) to be engaged. A torsion spring (63) is sleeved on the rotating shaft. One end of the torsion spring (63) is connected to the first hook (62), and the other end is connected to the support plate (64) to apply a torque to the first hook (62) to rotate toward the slot.