Aluminum gusset plate structure for keel ceiling
By setting specific structures and components inside the keel frame of the keel ceiling and using elastic plug-in, the problems of insecure installation and disassembly inconvenient disassembly are solved, and the firm installation and convenient disassembly of the aluminum buckle plate are achieved.
Patent Information
- Application Number
- CN202421724616.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-07-22
- Publication Date
- 2025-06-10
- Estimated Expiration
- 2034-07-22
AI Technical Summary
The aluminum buckle plate in the existing keel ceiling is not installed firmly, easy to fall off, and inconvenient to disassemble.
By setting evenly distributed aluminum plates, inner cavity, locking seats, rectangular seats, control seats, oblique seats and locking grooves inside the keel, the complete installation limit between the aluminum buckle plates and the keel is achieved through elastic plugging.
It realizes the firm installation of the aluminum buckle plate, which is not easy to fall off, and is convenient to disassemble and operate in later stages.
Smart Images

Figure CN222962322U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of keel ceilings, in particular to an aluminum gusset plate structure for keel ceilings. Background Technique
[0002] Aluminum gusset plates are the most common type in metal ceilings. They are a new type of home decoration ceiling material that emerged in the 1990s. Since the entire project of aluminum gusset plates is made of all metal, in terms of service life and environmental protection ability, they are more superior to PVC materials and plastic steel materials. Aluminum gusset plates are installed on the ceiling through a keel frame. When installing some aluminum gusset plates, first install the triangular keel, and then align the side of the aluminum gusset plate with the gap of the triangular keel and force it in. Use the clamping force generated by the deformation of the triangular keel to fix the aluminum gusset plate. However, when installing aluminum gusset plates in this way, it is impossible to ensure the installation firmness of the aluminum gusset plates. The aluminum gusset plates are easily detached from the keel frame, and it is not easy to find a force application point to remove the aluminum gusset plates during disassembly. Content of the Utility Model
[0003] The technical problem to be solved by the utility model is to overcome the existing defects and provide an aluminum gusset plate structure for keel ceilings. This device realizes the complete installation limit between the aluminum gusset plate and the keel frame through elastic insertion. The aluminum gusset plate is firmly installed, not easily detached, and the later disassembly operation is convenient, which can effectively solve the problems in the background technique.
[0004] To achieve the above purpose, the utility model provides the following technical solution: an aluminum gusset plate structure for keel ceilings, including a keel frame;
[0005] Keel frame: Uniformly distributed aluminum plates are installed inside it. Uniformly distributed inner cavities are opened in the aluminum plates. Locking seats are slidably connected in the first chutes opened on the side walls of the inner cavities. Rectangular seats are provided on the sides of the locking seats close to the center of the keel frame. Control seats are slidably connected in the second chutes opened on the bottom walls of the inner cavities. Oblique seats are provided on the upper sides of the control seats. The oblique seats are cooperatively installed with the adjacent rectangular seats. Uniformly distributed locking grooves are opened inside the keel frame. One ends of the locking seats far from the center of the keel frame are inserted into the adjacent locking grooves. This device realizes the complete installation limit between the aluminum gusset plate and the keel frame through elastic insertion. The aluminum gusset plate is firmly installed, not easily detached, and the later disassembly operation is convenient.
[0006] Further, uniformly distributed vertical movement limit seats are provided inside the keel frame. The vertical movement limit seats are cooperatively installed with the aluminum plates to limit the height of the upward vertical movement of the aluminum plates along the installation grooves inside the keel frame, so that the locking seats are horizontally aligned with the adjacent locking grooves at this time.
[0007] Further, uniformly distributed hoisting frames are provided on the upper side of the keel frame, which is convenient to install the keel frame at the corresponding position on the roof.
[0008] Further, uniformly distributed first telescopic columns and first springs are provided between the inner cavity and the adjacent rectangular seats. The first springs are movably sleeved on the outer ends of the adjacent first telescopic columns. When the rectangular seats are not extruded by the inclined seats, the locking seats can be retracted into the corresponding inner cavities by the compression elastic force of the first springs.
[0009] Further, uniformly distributed second telescopic columns and second springs are provided between the inclined seats and the adjacent inner cavities. The second springs are movably sleeved on the outer ends of the adjacent second telescopic columns. The inclined seats can be automatically lifted upward after moving downward through the compression elastic force of the second springs, so as to indirectly push the locking seats into the corresponding locking grooves.
[0010] Further, uniformly distributed anti-slip patterns are provided at the lower ends of the left and right sides of the control seat, which is convenient for construction workers to apply a downward pulling force to the control seat of the aluminum gusset plate structure for keel ceiling.
[0011] Further, epoxy phenolic resin coatings are provided on the lower sides of the aluminum plates to improve the corrosion resistance of the aluminum gusset plates for keel ceiling themselves.
[0012] Compared with the prior art, the beneficial effects of the present utility model are as follows: The aluminum gusset plate structure for keel ceiling has the following advantages:
[0013] When installing the aluminum gusset plate for keel ceiling, move the aluminum plate vertically upward along the installation grooves equidistantly distributed inside the keel frame. The installation grooves are sized to fit the aluminum plate, so as to horizontally limit the installation of the aluminum plate through the installation grooves. At the same time, when the aluminum plate moves upward along the installation grooves, pull the control seat downward to make the inclined seat move vertically downward. The telescopic ends of the second telescopic columns and the second springs contract, and the horizontal extrusion force of the inclined surface of the inclined seat on the rectangular seat disappears. Then, through the compression elastic force of the first springs, the rectangular seat drives the locking seat into the inner cavity, preventing the locking seat from protruding outside the aluminum plate and hindering the upward movement of the aluminum plate along the installation grooves. When the aluminum plate moves upward along the installation grooves until it contacts the lower side of the vertical limiting seat, at this time, the locking seat is horizontally aligned with the corresponding locking groove on the keel frame. Then, release the downward pulling force applied to the control seat. Through the compression elastic force of the second springs, the inclined seat moves upward. The contact pressure of the inclined surface of the inclined seat overcomes the compression elastic force of the first springs, making the rectangular seat drive the locking seat to be inserted into the adjacent locking groove, thereby vertically connecting and fixing the aluminum plate and the keel frame. The later disassembly steps of the aluminum plate are the same. The aluminum gusset plate for keel ceiling is firmly installed. This aluminum gusset plate structure for keel ceiling realizes complete installation and limitation between the aluminum gusset plate and the keel frame through elastic insertion. The aluminum gusset plate is firmly installed, not easy to fall off, and the later disassembly operation is convenient. BRIEF DESCRIPTION OF THE DRAWINGS
[0014] Figure 1 is a schematic structural diagram of the present utility model;
[0015] Figure 2 is a schematic diagram of the internal structure of the aluminum plate of the present utility model;
[0016] Figure 3 This is the schematic diagram of the upward view structure of the aluminum plate of the present utility model;
[0017] Figure 4 This is the enlarged schematic diagram of the structure at position A of the present utility model;
[0018] Figure 5 This is the enlarged schematic diagram of the structure at position B of the present utility model.
[0019] In the figure: 1 keel frame, 2 vertical movement limit seat, 3 hoisting frame, 4 aluminum plate, 5 inner cavity, 6 locking seat, 7 rectangular seat, 8 first telescopic column, 9 first spring, 10 control seat, 11 inclined seat, 12 second telescopic column, 13 second spring, 14 anti-slip pattern, 15 epoxy phenolic resin coating. Specific embodiments
[0020] Next, the technical solutions in the embodiments of the present utility model will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present utility model. Obviously, the described embodiments are only a part of the embodiments of the present utility model, rather than all the embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present utility model.
[0021] Please refer to Figures 1-5 , this embodiment provides a technical solution: an aluminum gusset plate structure for a keel ceiling, including a keel frame 1;
[0022] Dragon skeleton 1: Aluminum plates 4 are evenly installed inside it. Uniformly distributed inner cavities 5 are opened in each aluminum plate 4. Locking seats 6 are slidably connected to the first sliding grooves opened on the side walls of the inner cavities 5. Rectangular seats 7 are provided on the sides of the locking seats 6 close to the center of the dragon skeleton 1. Control seats 10 are slidably connected to the second sliding grooves opened on the bottom walls of the inner cavities 5. Inclined seats 11 are provided on the upper sides of the control seats 10. The inclined seats 11 are cooperatively installed with the adjacent rectangular seats 7. Uniformly distributed locking grooves are opened inside the dragon skeleton 1. One ends of the locking seats 6 far from the center of the dragon skeleton 1 are inserted into the adjacent locking grooves. Uniformly distributed vertical movement limiting seats 2 are provided inside the dragon skeleton 1. The vertical movement limiting seats 2 are cooperatively installed with the aluminum plates 4. Hoisting frames 3 are evenly provided on the upper side of the dragon skeleton 1. Uniformly distributed first telescopic columns 8 and first springs 9 are provided between the inner cavities 5 and the adjacent rectangular seats 7. The first springs 9 are movably sleeved on the outer ends of the adjacent first telescopic columns 8. Uniformly distributed second telescopic columns 12 and second springs 13 are provided between the inclined seats 11 and the adjacent inner cavities 5. The second springs 13 are movably sleeved on the outer ends of the adjacent second telescopic columns 12. Anti-slip patterns 14 are evenly opened at the lower ends on the left and right sides of the control seats 10. The first springs 9 are initially in a compressed state. When installing the aluminum gusset plate for the keel ceiling, first, the dragon skeleton 1 is fixed to the corresponding position on the roof through the hoisting frame 3. Then, the aluminum plates 4 are vertically moved upward along the installation grooves evenly distributed inside the dragon skeleton 1. The installation grooves are sized to fit the aluminum plates 4, so as to horizontally limit the movement of the aluminum plates 4 during installation. At the same time, when the aluminum plates 4 are moved upward along the installation grooves, the control seats 10 are pulled downward. The control seats 10 drive the inclined seats 11 to move vertically downward. The telescopic ends of the second telescopic columns 12 and the second springs 13 contract. The horizontal extrusion force of the inclined surfaces of the inclined seats 11 on the rectangular seats 7 disappears. Then, through the compression elastic force of the first springs 9, the rectangular seats 7 drive the locking seats 6 into the inner cavities 5. The anti-slip patterns 14 facilitate the construction workers to apply a vertical downward pulling force to the control seats 10 by increasing the contact friction. When the aluminum plates 4 are moved upward along the installation grooves to contact the lower sides of the vertical limiting seats 2, at this time, the locking seats 6 are horizontally aligned with the corresponding locking grooves on the dragon skeleton 1. Then, the downward pulling force applied to the control seats 10 is released. Through the compression elastic force of the second springs 13, the inclined seats 11 move upward. The contact pressure of the inclined surfaces of the inclined seats 11 overcomes the compression elastic force of the first springs 9, so that the rectangular seats 7 drive the locking seats 6 to be inserted into the adjacent locking grooves, thereby vertically connecting and fixing the aluminum plates 4 and the dragon skeleton 1. The disassembly steps of the aluminum plates 4 in the later stage are the same. The aluminum gusset plate for the keel ceiling is firmly installed, and the relative movement between the aluminum plates 4 and the dragon skeleton 1 can be avoided. In this aluminum gusset plate structure for the keel ceiling, complete installation limitation between the aluminum gusset plate and the dragon skeleton 1 is realized through elastic insertion. The aluminum gusset plate is firmly installed, not easy to fall off, and the disassembly operation is convenient in the later stage;
[0023] Wherein, epoxy phenolic resin coatings 15 are provided on the lower sides of the aluminum plates 1. The corrosion resistance inside the aluminum plates 4 is improved through the epoxy phenolic resin coatings 15.
[0024] The working principle of an aluminum gusset plate structure for a keel ceiling provided by the present utility model is as follows: Spring 1 is initially in a compressed state. When installing the aluminum gusset plate for the keel ceiling, first fix the keel frame 1 to the corresponding position on the roof through the hoisting frame 3. Then move the aluminum plate 4 vertically upward along the installation grooves evenly distributed inside the keel frame 1. The installation grooves are sized to fit the aluminum plate 4, so as to horizontally limit the movement of the aluminum plate 4 during installation through the installation grooves. At the same time, when the aluminum plate 4 moves upward along the installation grooves, it pulls the control seat 10 downward. The control seat 10 drives the inclined seat 11 to move vertically downward, and the telescopic end of the telescopic column 2 and the spring 2 contract. The horizontal extrusion force of the inclined surface of the inclined seat 11 on the rectangular seat 7 disappears. Then, through the compression elastic force of spring 1, the rectangular seat 7 drives the locking seat 6 into the inner cavity 5. The anti-slip pattern 14 facilitates the construction personnel to apply a vertical downward pulling force on the control seat 10 by increasing the contact friction. When the aluminum plate 4 moves upward along the installation groove to contact the lower side of the vertical limiting seat 2, at this time, the locking seat 6 is horizontally aligned with the corresponding locking groove on the keel frame 1. Then release the downward pulling force applied to the control seat 10. Through the compression elastic force of spring 2, the inclined seat 11 moves upward. The contact pressure of the inclined surface of the inclined seat 11 overcomes the compression elastic force of spring 1, so that the rectangular seat 7 drives the locking seat 6 to be inserted into the adjacent locking groove, thereby vertically connecting and fixing the aluminum plate 4 and the keel frame 1. The disassembly steps of the aluminum plate 4 in the later stage are the same. The aluminum gusset plate for the keel ceiling is firmly installed, and the relative movement between the aluminum plate 4 and the keel frame 1 can be avoided. The corrosion resistance of the aluminum plate 4 is improved through the epoxy phenolic resin coating 15.
[0025] The above are only the embodiments of the present utility model, and do not limit the patent scope of the present utility model accordingly. Any equivalent structure or equivalent process transformation made by using the content of the specification and drawings of the present utility model, or directly or indirectly applied in other related technical fields, shall be included in the patent protection scope of the present utility model by the same token.
Claims
1. An aluminum gusset plate structure for a keel ceiling, characterized in that: The invention comprises a dragon frame (1); A keel frame (1): A uniformly distributed aluminum plate (4) is installed inside the keel frame (1), and a uniformly distributed inner cavity (5) is opened inside the aluminum plate (4). A locking seat (6) is slidably connected in a slide groove 1 opened on the side wall of the inner cavity (5), and a rectangular seat (7) is provided on the side of the locking seat (6) close to the center of the keel frame (1). A control seat (10) is slidably connected in a slide groove 2 opened on the bottom wall of the inner cavity (5), and an oblique seat (11) is provided on the upper side of the control seat (10). The oblique seat (11) is installed in conjunction with an adjacent rectangular seat (7). The keel frame (1) is provided with uniformly distributed locking grooves, and the end of the locking seat (6) away from the center of the keel frame (1) is plugged into an adjacent locking groove.
2. The aluminum gusset plate structure for keel ceiling according to claim 1 is characterized in that: The interior of the keel frame (1) is provided with evenly distributed vertical displacement limit seats (2), and the vertical displacement limit seats (2) are installed in coordination with the aluminum plate (4).
3. The aluminum gusset plate structure for keel ceiling according to claim 1 is characterized in that: The upper side of the keel frame (1) is provided with evenly distributed hanging frames (3).
4. The aluminum gusset plate structure for keel ceiling according to claim 1 is characterized in that: Uniformly distributed telescopic columns (8) and springs (9) are provided between the inner cavity (5) and the adjacent rectangular seat (7), and the springs (9) are movably sleeved with the outer ends of the adjacent telescopic columns (8).
5. The aluminum gusset plate structure for keel ceiling according to claim 1 is characterized in that: Uniformly distributed telescopic columns (12) and springs (13) are provided between the oblique seat (11) and the adjacent inner cavity (5), and the springs (13) are movably sleeved with the outer ends of the adjacent telescopic columns (12).
6. The aluminum gusset plate structure for keel ceiling according to claim 1, characterized in that: The lower ends of the left and right sides of the control seat (10) are both provided with evenly distributed anti-slip grooves (14).
7. The aluminum gusset plate structure for keel ceiling according to claim 1, characterized in that: The lower side of the aluminum plate (1) is provided with an epoxy phenolic resin coating (15).