Anti-seismic aluminum veneer mounting structure
By introducing components such as dampers, shock absorbing plates and shock absorbing springs into the aluminum veneer mounting structure, the problem of insufficient earthquake resistance of aluminum veneer mounting structures in the prior art is solved, and higher earthquake resistance and stability are achieved, reducing safety risks.
Patent Information
- Application Number
- CN202422434014.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-09
- Publication Date
- 2025-06-24
- Estimated Expiration
- 2034-10-09
AI Technical Summary
The existing aluminum veneer installation structure lacks seismic design and cannot effectively resist loosening problems caused by external impact and natural weathering, resulting in increased safety risks.
A shock-resistant aluminum veneer mounting structure is designed. By setting components such as dampers, shock-cushioning plates, shock-absorbing springs and limit frames on the mounting plate, the elastic deformation and extrusion effects of these components are used to reduce the external force exposed to the plate and enhance the shock resistance.
It effectively reduces the vibration of aluminum veneer under external impact, enhances its earthquake resistance and stability, reduces the risk of loosening and falling off, and improves the safety of buildings and personnel.
Smart Images

Figure CN223018046U_ABST
Abstract
Description
Technical Field
[0001] The utility model belongs to the technical field of aluminum veneer installation, and particularly relates to an earthquake-resistant aluminum veneer installation structure. Background Technique
[0002] The aluminum veneer installation structure generally refers to the structure and method adopted when installing aluminum veneers on the exterior wall of a building. These structures are designed to ensure that the aluminum veneers can be safely and firmly fixed on the building surface, and to ensure the cleanliness and durability of their appearance. The selection of an appropriate structure depends on factors such as the building design, the specifications of the aluminum veneers, the installation location, and budget considerations, etc., to ensure that the selected installation structure can meet the requirements of the building.
[0003] Most of the existing aluminum veneer installation structures do not have earthquake-resistant structures. The safety of aluminum veneers may be reduced under vibration or other external force impacts, and they cannot effectively cope with the effects brought by long-term natural weathering and building vibration. When the stability of the aluminum veneer installation structure is insufficient, it may cause the aluminum veneers to loosen, fall off, or the overall structure to be damaged, increasing the safety risks of the building and the surrounding personnel.
[0004] Therefore, we provide an earthquake-resistant aluminum veneer installation structure to solve the above problems. Content of the Utility Model
[0005] The purpose of the utility model is to provide an earthquake-resistant aluminum veneer installation structure with good earthquake resistance, and solve the problems that the existing aluminum veneer installation structure cannot effectively resist external force impacts and the long-term natural weathering will cause the aluminum veneers to loosen.
[0006] To solve the above technical problems, the utility model is realized through the following technical solutions:
[0007] The utility model is an earthquake-resistant aluminum veneer installation structure, including an installation plate. A plate body is arranged on the front surface of the installation plate. An installation box is fixedly connected to the inner cavity of the installation plate. A first damper is fixedly connected to the rear end of the inner cavity of the installation box. One end of the first damper is fixedly connected to a shock-absorbing plate. Limiting frames are fixedly connected to both sides of the inner cavity of the shock-absorbing plate. An installation frame is fixedly connected to the inner cavity of the shock-absorbing plate. Limiting blocks are fixedly connected to both sides of the inner cavity of the installation frame. A plug is fixedly connected to the back surface of the plate body. A rotating rod is movably connected to the inner cavity of the plug. A spring rod is fixedly connected to the rear end of the rotating rod. An inclined block is fixedly connected to one end of the spring rod. Slide rods are fixedly connected to the top and bottom of the inner cavity of the installation plate. A sliding sleeve is slidably connected to the surface of the slide rod. Second dampers are fixedly connected to the top and bottom of the inner cavity of the installation plate. A shock-absorbing plate is fixedly connected to the front end of the second damper. Connecting rods are movably connected to both sides of the front surface of the shock-absorbing plate. One end of the connecting rod is movably connected to the front surface of the sliding sleeve.
[0008] The present utility model is further configured such that guide blocks are fixedly connected to both sides of the back surface of the plate body, and the rear ends of the guide blocks are slidably connected to the inner cavity of the limit frame.
[0009] The present utility model is further configured such that the front end of the rotating rod extends to the outside of the plate body, one side of the surface of the rotating rod is movably connected to the inner cavity of the plate body, and a limit pin is threadedly connected to the front end of the inner cavity of the rotating rod.
[0010] The present utility model is further configured such that a shock-absorbing spring is sleeved on the surface of the sliding rod, and one end of the shock-absorbing spring is fixedly connected to one side of the sliding sleeve.
[0011] The present utility model is further configured such that limit strips are fixedly connected to both the top and bottom of the rear end of the inner cavity of the mounting plate, and a slider is fixedly connected to the rear end of the sliding sleeve, and the rear end of the inner cavity of the slider is slidably connected to the surface of the limit strip.
[0012] The present utility model is further configured such that a limit hole is formed in the inner cavity of the limit block, and one side of the inclined block is slidably connected to the inner cavity of the limit hole.
[0013] The present utility model is further configured such that vertical plates are fixedly connected to both sides of the top and bottom of the inner cavity of the mounting plate, and one end of the sliding rod is fixedly connected to one side of the vertical plate.
[0014] The present utility model is further configured such that contact rods are fixedly connected to both the top and bottom of the back surface of the plate body, and the rear ends of the contact rods are in contact with the front surface of the shock-absorbing plate.
[0015] The present utility model has the following beneficial effects:
[0016] 1. By means of the insertion block, guide block and contact rod on the back surface of the plate body of the present utility model to extrude the inside of the mounting plate, the first damper and the second damper can be deformed, so as to damp the external force received by the plate body, enhance the earthquake resistance of the plate body, and through the rotation of the connecting rods on both sides of the front surface of the shock-absorbing plate, the sliding sleeve can slide on the surface of the sliding rod and compress the shock-absorbing spring, so as to damp the external force received by the plate body through the cooperation of the first damper, the second damper and the shock-absorbing spring.
[0017] 2. By sliding the surface of the guide block on the back surface of the plate body in the inner cavity of the limit frame of the present utility model, the insertion block can be correctly inserted into the mounting frame. By rotating the rotating rod, the inclined block at one end of the spring rod can be rotated, and by utilizing the elastic deformation of the spring rod, the inclined block can be engaged with the limit hole in the inner cavity of the limit block, so as to install the plate body. By the rear end of the contact rod being in contact with the front surface of the shock-absorbing plate, the top and bottom of the plate body can be stabilized, and the stability of the plate body can be enhanced.
[0018] Of course, it is not necessary for any product implementing the present utility model to achieve all the above advantages simultaneously. Description of the Drawings
[0019] To more clearly illustrate the technical solutions of the embodiments of the present utility model, the drawings required for describing the embodiments will be briefly introduced below.
[0020] Figure 1 It is a three-dimensional structure diagram of an earthquake-resistant aluminum single board installation structure;
[0021] Figure 2 It is an exploded view of the plate body and the installation plate in an earthquake-resistant aluminum single board installation structure;
[0022] Figure 3 It is a sectional view of the installation plate in an earthquake-resistant aluminum single board installation structure;
[0023] Figure 4 It is an exploded view of the internal structure of the installation plate in an earthquake-resistant aluminum single board installation structure;
[0024] Figure 5 It is an exploded view of the insertion block and the installation frame in an earthquake-resistant aluminum single board installation structure.
[0025] In the drawings: 1. Installation plate; 2. Plate body; 3. Installation box; 4. First damper; 5. Shock-absorbing plate; 6. Limit frame; 7. Installation frame; 8. Limit block; 9. Insertion block; 10. Rotating rod; 11. Spring rod; 12. Inclined block; 13. Slide rod; 14. Slide sleeve; 15. Second damper; 16. Shock-absorbing plate; 17. Connecting rod; 18. Guide block; 19. Shock-absorbing spring; 20. Vertical plate; 21. Contact rod. Specific embodiments
[0026] Next, the technical solutions in the embodiments of the present utility model will be described in conjunction with the drawings in the embodiments of the present utility model. The described embodiments are only a part of the embodiments of the present utility model, rather than all of the embodiments.
[0027] Specific Embodiment 1, please refer to Figures 1-5, the utility model relates to an earthquake-resistant aluminum single board installation structure, which includes an installation plate 1. A board body 2 is arranged on the front surface of the installation plate 1. An installation box 3 is fixedly connected to the inner cavity of the installation plate 1. A first damper 4 is fixedly connected to the rear end of the inner cavity of the installation box 3. One end of the first damper 4 is fixedly connected to a shock-absorbing plate 5. Limiting frames 6 are fixedly connected to both sides of the inner cavity of the shock-absorbing plate 5. An installation frame 7 is fixedly connected to the inner cavity of the shock-absorbing plate 5. Limiting blocks 8 are fixedly connected to both sides of the inner cavity of the installation frame 7. A plug 9 is fixedly connected to the back surface of the board body 2. A rotating rod 10 is movably connected to the inner cavity of the plug 9. A spring rod 11 is fixedly connected to the rear end of the rotating rod 10. One end of the spring rod 11 is fixedly connected to an inclined block 12. Slide rods 13 are fixedly connected to both the top and bottom of the inner cavity of the installation plate 1. A slide sleeve 14 is slidably connected to the surface of the slide rod 13. Second dampers 15 are fixedly connected to both the top and bottom of the inner cavity of the installation plate 1. The front end of the second damper 15 is fixedly connected to a shock-absorbing plate 16. Connecting rods 17 are movably connected to both sides of the front surface of the shock-absorbing plate 16. One end of the connecting rod 17 is movably connected to the front surface of the slide sleeve 14.
[0028] Specifically: Installation openings are provided around the inner cavity of the installation plate 1 to facilitate the installation of the installation plate 1 on the required wall surface. First dampers 4 are fixedly connected to both sides of the rear end of the inner cavity of the installation box 3. The shock-absorbing plate 5 slides in the inner cavity of the installation box 3. The inner cavity of the limiting frame 6 slides on the surface of the guiding block 18, which can facilitate the connection between the board body 2 and the installation plate 1 and play a guiding and stabilizing role;
[0029] The limiting blocks 8 are arranged on both sides of the inner cavity of the installation frame 7 and do not contact both sides of the plug 9. The surface of the rotating rod 10 is movably connected to the inner cavity of the plug 9. Spring rods 11 are fixedly connected to both sides of the rear end of the rotating rod 10 to facilitate the simultaneous rotation of the two inclined blocks 12 into the inner cavities of the two limiting blocks 8 when the rotating rod 10 rotates. Four slide rods 13 are arranged in the inner cavity of the installation plate 1. A slide sleeve 14 is slidably connected to the surface of each slide rod 13. Both ends of the connecting rod 17 are rotatably connected to the front surface of the slide sleeve 14 and one side of the front surface of the shock-absorbing plate 16 through a rotating shaft.
[0030] Specific embodiment two, please refer to Figures 1-5, on the basis of the first specific embodiment, guide blocks 18 are fixedly connected to both sides of the back surface of the plate body 2. The rear ends of the guide blocks 18 are slidably connected to the inner cavity of the limit frame 6. The front end of the rotating rod 10 extends outside the plate body 2. One side of the surface of the rotating rod 10 is movably connected to the inner cavity of the plate body 2. A limit pin is threadedly connected to the front end of the inner cavity of the rotating rod 10. A shock-absorbing spring 19 is sleeved on the surface of the sliding rod 13. One end of the shock-absorbing spring 19 is fixedly connected to one side of the sliding sleeve 14. Limit strips are fixedly connected to the top and bottom of the rear end of the inner cavity of the mounting plate 1. A slider is fixedly connected to the rear end of the sliding sleeve 14. The rear end of the inner cavity of the slider is slidably connected to the surface of the limit strip. A limit hole is opened in the inner cavity of the limit block 8. One side of the inclined block 12 is slidably connected to the inner cavity of the limit hole. Vertical plates 20 are fixedly connected to both sides of the top and bottom of the inner cavity of the mounting plate 1. One side of the vertical plate 20 is fixedly connected to one end of the sliding rod 13. Contact rods 21 are fixedly connected to the top and bottom of the back surface of the plate body 2. The rear ends of the contact rods 21 are in contact with the front surface of the shock-absorbing plate 16.
[0031] Specifically: The guide block 18 can help the installer identify the appropriate position for installing the plate body 2 and can also stabilize both sides of the plate body 2. The rotating rod 10 has a small volume and the length protruding from the plate body 2 is very short, which will not affect the overall aesthetics of the plate body 2. The limit pin plays a limiting role on the rotating rod 10. The other end of the shock-absorbing spring 19 is fixedly connected to one side of the vertical plate 20. The surface of the limit strip is slidably connected to the rear end of the inner cavity of the slider, which can limit the sliding sleeve 14. The inclined surface of the inclined block 12 is opened at the front end of one side, so that when removing the plate body 2, first pull the plate body 2 outwards to separate the inclined block 12 from the limit hole, and then rotate the rotating rod 10 to reset the inclined block 12. The vertical plate 20 plays a supporting role on the sliding rod 13. The contact rod 21 is in contact with the shock-absorbing plate 16, so that the external force received by the plate body 2 can be transmitted to the shock-absorbing spring 19 and the second damper 15 in time.
[0032] The working principle of the present utility model is as follows: When it is necessary to install the aluminum single plate, first install the mounting plate 1 through the mounting opening at a suitable position, and then move it into the corresponding inner cavity of the limit frame 6 through the guide block 18 on the back surface of the plate body 2. The movement of the plate body 2 will also drive the insertion block 9 to move into the inner cavity of the mounting frame 7. At this time, the contact rod 21 moves towards the front surface of the shock-absorbing plate 16. When the back surface of the plate body 2 contacts the front surface of the mounting box 3, the limit pin can be taken out, and the rotating rod 10 is rotated. The rotating rod 10 drives the spring rod 11 to rotate, and the spring rod 11 drives the inclined block 12 to rotate. The inclined block 12 rotates into the limit hole in the inner cavity of the limit block 8 to limit the plate body 2.
[0033] After the plate body 2 is installed, the contact rod 21 on the back of the plate body 2 contacts the front of the shock-absorbing plate 16, and the plate body 2 contacts the shock-absorbing plate 5 through the guide block 18 and the insertion block 9. When an external force is applied to the front of the plate body 2, the force received by the plate body 2 will be transmitted to the surfaces of the shock-absorbing plate 16 and the shock-absorbing plate 5. The shock-absorbing plate 16 and the shock-absorbing plate 5 will move backward. The shock-absorbing plate 16 is squeezed to squeeze the second damper 15, and the connecting rod 17 rotates to squeeze the sliding sleeve 14. The second damper 15 reduces the shock of the force received by the plate body 2 through its own elasticity. The movement of the sliding sleeve 14 pressurizes the shock-absorbing spring 19. The shock-absorbing spring 19 changes the direction of the force received by the plate body 2 through its own elasticity and cooperates with the second damper 15 to reduce the shock of the plate body 2. The installation frame 7 is squeezed to press the first damper 4, and the first damper 4 reduces the shock of the received force through its own elasticity. In this way, it can be ensured that the force received by the plate body 2 is reduced, and the earthquake resistance of the aluminum single plate is enhanced.
[0034] The standard parts used in the present utility model can all be purchased from the market, and can also be customized according to the descriptions in the specification and the drawings. The specific connection methods of each part all adopt conventional means such as bolts, rivets, welding, etc. that are mature in the prior art. The machinery, parts and equipment all adopt conventional models in the prior art. The control method is automatically controlled through the control unit. The control circuit of the control unit can be realized by simple programming by those skilled in the art, which belongs to the common general knowledge in the art. Therefore, the control method and the circuit connection are not explained in detail in the present utility model.
[0035] The preferred embodiments of the present utility model disclosed above are only used to help illustrate the present utility model. The preferred embodiments do not describe all the details in detail, nor limit the present utility model to the specific embodiments described. The present specification selects and specifically describes these embodiments in order to better explain the principle and practical application of the present utility model, so that those skilled in the technical field can well understand and utilize the present utility model.
Claims
1. A seismic-resistant aluminum single-plate mounting structure, comprising a mounting plate (1), characterized in that: The front face of the mounting plate (1) is provided with a plate body (2); the inner cavity of the mounting plate (1) is fixedly connected to a mounting box (3); the inner cavity of the mounting box (3) is fixedly connected to a first damper (4); one end of the first damper (4) is fixedly connected to a damping plate (5); both sides of the inner cavity of the damping plate (5) are fixedly connected to a limiting position frame (6); the inner cavity of the damping plate (5) is fixedly connected to a mounting frame (7); both sides of the inner cavity of the mounting frame (7) are fixedly connected to a limiting position block (8); the back face of the plate body (2) is fixedly connected to an insert block (9); the inner cavity of the insert block (9) is movably connected to a rotating rod (10) The rear end of the rotating rod (10) is fixedly connected to a spring rod (11), one end of the spring rod (11) is fixedly connected to an inclined block (12), the top and bottom of the inner cavity of the mounting plate (1) are fixedly connected to a sliding rod (13), the surface of the sliding rod (13) is slidably connected to a sliding sleeve (14), the top and bottom of the inner cavity of the mounting plate (1) are fixedly connected to a second damper (15), the front end of the second damper (15) is fixedly connected to a shock absorbing plate (16), both sides of the front of the shock absorbing plate (16) are movably connected to connecting rods (17), and one end of the connecting rod (17) is movably connected to the front of the sliding sleeve (14).
2. The earthquake-resistant aluminum single plate installation structure according to claim 1 is characterized in that: Guide blocks (18) are fixedly connected to both sides of the back side of the plate body (2), and the rear end of the guide block (18) is slidably connected to the inner cavity of the limiting frame (6).
3. The earthquake-resistant aluminum single plate installation structure according to claim 1 is characterized in that: The front end of the rotating rod (10) extends to the outside of the plate body (2), one side of the surface of the rotating rod (10) is movably connected to the inner cavity of the plate body (2), and the front end of the inner cavity of the rotating rod (10) is threadedly connected to a limit pin.
4. The earthquake-resistant aluminum single plate installation structure according to claim 1 is characterized in that: A shock absorbing spring (19) is sleeved on the surface of the sliding rod (13), and one end of the shock absorbing spring (19) is fixedly connected to one side of the sliding sleeve (14).
5. The earthquake-resistant aluminum single plate installation structure according to claim 1 is characterized in that: The top and bottom of the rear end of the inner cavity of the mounting plate (1) are fixedly connected to the limit strip, the rear end of the sliding sleeve (14) is fixedly connected to the slider, and the rear end of the inner cavity of the slider is slidably connected to the surface of the limit strip.
6. The earthquake-resistant aluminum single plate installation structure according to claim 1 is characterized in that: The inner cavity of the limit block (8) is provided with a limit hole, and one side of the inclined block (12) is slidably connected to the inner cavity of the limit hole.
7. The earthquake-resistant aluminum single plate installation structure according to claim 1 is characterized in that: Vertical plates (20) are fixedly connected to both sides of the top and bottom of the inner cavity of the mounting plate (1), and one side of the vertical plate (20) is fixedly connected to one end of the sliding rod (13).
8. The earthquake-resistant aluminum single plate installation structure according to claim 1 is characterized in that: The top and bottom of the back side of the plate body (2) are both fixedly connected with a contact rod (21), and the rear end of the contact rod (21) is in contact with the front side of the shock absorbing plate (16).