Angle-adaptive anti-seismic support
By introducing a combined structure of spring and damping rod into the seismic bracket, combined with the design of clamp ring and telescopic rod, the stable and shock resistance of the bracket under different angles is achieved, solving the problem of unstable seismic effect of the existing bracket, and improving the stability and shock absorption effect of the bracket.
Patent Information
- Application Number
- CN202422646719.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-31
- Publication Date
- 2025-08-01
- Estimated Expiration
- 2034-10-31
AI Technical Summary
When existing seismic support responds to seismic waves at different angles, the seismic effect is unstable and it is difficult to maintain good seismic performance.
An angle-adaptive shock-resistant bracket is designed, adopting a combined structure of spring and damping rod, allowing the pipe to shake 360° in the connecting ring, and through the fixation of the upper clamping ring and the lower clamping ring, combining the design of the telescopic rod and reinforcement plate, the stability and shock absorption effect of the bracket are enhanced.
When facing shock waves at different angles, the bracket can maintain good shock resistance, improve the stability and practicality of use, and avoid the problems of pipe sliding and fixing failure.
Smart Images

Figure CN223178458U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of seismic brackets, in particular to a seismic bracket with angle self - adaptation. Background Technique
[0002] During the construction process of engineering projects, pipeline laying is required for conveying tap water, fire - fighting water, natural gas, etc. If the pipeline is directly fixed on the wall, it is prone to falling during an earthquake, thus triggering safety accidents. Therefore, the brackets for pipeline fixing need to have good seismic resistance.
[0003] The seismic angles of existing seismic brackets have limitations, and the vibration waves generated during an earthquake are difficult to predict. This makes the seismic effect of the seismic brackets unable to stably maintain a better seismic effect when dealing with seismic waves at different angles, which is not convenient for users and reduces the practicability of the seismic brackets. Content of the Utility Model
[0004] To solve the problems raised in the above - mentioned background technique, the purpose of the present utility model is to provide a seismic bracket with angle self - adaptation, which has the advantage of stable seismic effect, and solves the problem that the seismic angles of existing seismic brackets have limitations, and the vibration waves generated during an earthquake are difficult to predict, so that the seismic effect of the seismic brackets cannot stably maintain a better seismic effect when dealing with seismic waves at different angles.
[0005] To achieve the above purpose, the present utility model provides the following technical solution: A seismic bracket with angle self - adaptation, including a mounting plate. On both sides of the surface of the mounting plate, a number of mounting holes are provided. On both sides of the bottom of the mounting plate, connecting rods are fixedly connected. At the bottom of the connecting rods, connecting rings are fixedly connected. On both sides inside the connecting rings, a number of springs are fixedly connected. The springs are arranged in a circular array along the axis of the connecting ring. On both sides inside the connecting rings, a number of damping rods are fixedly connected. The damping rods are arranged in a circular array along the axis of the connecting ring. The springs are all sleeved on the surfaces of the damping rods. A ferrule is arranged inside the connecting ring. The inner sides of the springs and the damping rods are all in contact with the surface of the ferrule.
[0006] Preferably, a top clamping ring is arranged at the bottom of the mounting plate, a bottom clamping ring is arranged at the bottom of the top clamping ring. Fixing holes are provided at both ends of the top clamping ring and the bottom clamping ring. Fixing bolts are threadedly connected inside the fixing holes. The bottom clamping ring and the top clamping ring are located inside the ferrule.
[0007] Preferably, on both sides of the bottom of the mounting plate, there are fixedly connected upper connecting seats. On the top of the upper clamping ring, there is fixedly connected a lower connecting seat. Inside the upper connecting seat and the lower connecting seat, there is a telescopic rod. The top of the telescopic rod is fixedly connected with an upper rotating block. The upper rotating block is sleeved on the surface of the upper connecting seat and is rotatably connected thereto. The bottom of the telescopic rod is fixedly connected with a lower rotating block. The lower rotating block is sleeved on the surface of the lower connecting seat and is rotatably connected thereto.
[0008] Preferably, on the outer surface of the upper connecting seat, there are fixedly connected reinforcing plates. The number of the reinforcing plates is several. The shape of the reinforcing plate is triangular. The tops of the reinforcing plates are fixedly connected with the bottom surface of the mounting plate.
[0009] Preferably, inside the upper clamping ring and the lower clamping ring, there are fixedly connected anti-slip pads. On the surface of the anti-slip pad, there are fixedly connected anti-slip convex strips. The number of the anti-slip convex strips is several. The anti-slip convex strips are linearly arranged along the axis of the upper clamping ring and the lower clamping ring.
[0010] Preferably, on the surface of the connecting ring, there is an annular groove. On the surface of the ferrule, there are fixedly connected several limiting rods. The limiting rods are annularly arranged along the axis of the ferrule. The outer ends of the limiting rods are fixedly connected with limiting blocks. The diameters of the limiting blocks are all larger than the width of the annular groove.
[0011] Compared with the prior art, the beneficial effects of the present utility model are as follows:
[0012] 1. Through the arrangement of the spring and the damping rod in the present utility model, when the pipeline is vibrated inside the ferrule, it can drive the ferrule to shake in any 360° direction inside the connecting ring and perform shock absorption under the cooperation of the spring and the damping rod, so that the pipeline can maintain a good earthquake resistance effect when facing shock waves at different angles, which is convenient for the user to use and improves the practicability of the seismic support.
[0013] 2. Through the arrangement of the upper clamping ring and the lower clamping ring in the present utility model, the pipeline can be clamped inside the upper clamping ring and the lower clamping ring, and the fixing bolt is locked for fixation, thereby avoiding the problem that the pipeline slides left and right when shaking and improving the stability of the support. BRIEF DESCRIPTION OF THE DRAWINGS
[0014] Figure 1 is the front view schematic diagram of the structure of the present utility model;
[0015] Figure 2 is the front sectional view schematic diagram of the structure of the present utility model;
[0016] Figure 3 is the front view schematic diagram of the telescopic rod of the structure of the present utility model;
[0017] Figure 4 This is a side view schematic diagram of the structural connection ring of the present utility model;
[0018] Figure 5 This is a side view schematic diagram of the upper clamping ring of the structure of the present utility model.
[0019] In the figure: 1. mounting plate; 2. mounting holes; 3. connecting rods; 4. connection rings; 5. springs; 6. damping rods; 7. ferrules; 8. upper clamping rings; 9. lower clamping rings; 10. fixing bolts; 11. upper connection seats; 12. lower connection seats; 13. telescopic rods; 14. upper rotating blocks; 15. lower rotating blocks; 16. reinforcing plates; 17. anti-slip pads; 18. anti-slip ridges; 19. annular grooves; 20. limiting rods; 21. limiting blocks. 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] As shown in Figures 1 to 5 , a seismic support with angle self - adaptation includes a mounting plate 1. A plurality of mounting holes 2 are provided on both sides of the surface of the mounting plate 1. Connecting rods 3 are fixedly connected to both sides of the bottom of the mounting plate 1. Connection rings 4 are fixedly connected to the bottoms of the connecting rods 3. A plurality of springs 5 are fixedly connected to both sides inside the connection rings 4. The springs 5 are arranged in a circular array along the axis of the connection rings 4. A plurality of damping rods 6 are fixedly connected to both sides inside the connection rings 4. The damping rods 6 are arranged in a circular array along the axis of the connection rings 4. The springs 5 are all sleeved on the surfaces of the damping rods 6. A ferrule 7 is arranged inside the connection rings 4. The inner sides of the springs 5 and the damping rods 6 are all in contact with the surface of the ferrule 7.
[0022] Referring to Figure 1 , Figure 2 and Figure 5 , an upper clamping ring 8 is provided at the bottom of the mounting plate 1. A lower clamping ring 9 is provided at the bottom of the upper clamping ring 8. Fixing holes are provided at both ends of the upper clamping ring 8 and the lower clamping ring 9. Fixing bolts 10 are threadedly connected inside the fixing holes. The lower clamping ring 9 and the upper clamping ring 8 are located inside the ferrule 7.
[0023] As a technical optimization scheme of the present utility model, through the arrangement of the upper clamping ring 8 and the lower clamping ring 9, the pipeline can be clamped inside the upper clamping ring 8 and the lower clamping ring 9, and the fixing bolt 10 is locked for fixation, thus avoiding the problem of the pipeline sliding left and right during shaking and improving the stability of the support.
[0024] Reference Figure 2 and Figure 3 On both sides of the bottom of the mounting plate 1, there are upper connecting seats 11 fixedly connected. On the top of the upper clamping ring 8, there is a lower connecting seat 12 fixedly connected. Inside the upper connecting seat 11 and the lower connecting seat 12, there is a telescopic rod 13. The top of the telescopic rod 13 is fixedly connected with an upper rotating block 14. The upper rotating block 14 is sleeved on the surface of the upper connecting seat 11 and is rotatably connected therewith. The bottom of the telescopic rod 13 is fixedly connected with a lower rotating block 15. The lower rotating block 15 is sleeved on the surface of the lower connecting seat 12 and is rotatably connected therewith.
[0025] As a technical optimization scheme of the present utility model, through the arrangement of the telescopic rod 13, when the pipeline shakes, the telescopic rod 13 can rotate according to its shaking angle and can also contract according to its shaking distance, avoiding the situation that the pipeline is fixed and unable to move, resulting in the failure of the earthquake resistance function.
[0026] Reference Figure 2 On the outer surface of the upper connecting seat 11, there are reinforcing plates 16 fixedly connected. The number of the reinforcing plates 16 is several. The shape of the reinforcing plates 16 is triangular. The tops of the reinforcing plates 16 are fixedly connected with the bottom surface of the mounting plate 1.
[0027] As a technical optimization scheme of the present utility model, through the arrangement of the reinforcing plates 16, the connection area between the upper connecting seat 11 and the bottom surface of the mounting plate 1 is increased, making the upper connecting seat 11 more firmly fixed and not easily falling off, thereby further improving the stability of the bracket.
[0028] Reference Figure 2 and Figure 5 Inside the upper clamping ring 8 and the lower clamping ring 9, there are anti-slip pads 17 fixedly connected. On the surface of the anti-slip pads 17, there are anti-slip convex strips 18 fixedly connected. The number of the anti-slip convex strips 18 is several. The anti-slip convex strips 18 are linearly arrayed along the axis of the upper clamping ring 8 and the lower clamping ring 9.
[0029] As a technical optimization scheme of the present utility model, through the arrangement of the anti-slip pads 17 and the anti-slip convex strips 18, the friction force between the upper clamping ring 8 and the lower clamping ring 9 and the pipeline is greatly increased, making it more firmly fixed and not easily sliding left and right.
[0030] Reference Figure 1 、 Figure 2 and Figure 4 On the surface of the connecting ring 4, there is an annular groove 19. On the surface of the ferrule 7, there are several limiting rods 20 fixedly connected. The limiting rods 20 are annularly arrayed along the axis of the ferrule 7. The outer ends of the limiting rods 20 are fixedly connected with limiting blocks 21. The diameters of the limiting blocks 21 are all larger than the width of the annular groove 19.
[0031] As a technical optimization solution of the present utility model, through the arrangement of the limit rod 20, it avoids the situation that the ferrule 7 is prone to sliding and falling inside the connecting ring 4 when the bracket is subjected to earthquake resistance. At the same time, it does not affect the ferrule 7 to shake in any direction within 360°, making its earthquake resistance effect more stable.
[0032] The working principle and usage process of the present utility model: When in use, the user first fixes the mounting plate 1 on the top of the wall through the mounting holes 2, then passes the pipeline through the inside of the two ferrules 7, and fits the lower clamping ring 9 with the bottom surface of the pipeline, so that the pipeline is clamped between the upper clamping ring 8 and the lower clamping ring 9, and uses the fixing bolts 10 to fixedly connect the upper clamping ring 8 and the lower clamping ring 9 to complete the pipeline installation. When the pipeline is shaken inside the ferrule 7, it can drive the ferrule 7 to shake in any 360° direction inside the connecting ring 4, and perform shock absorption under the cooperation of the spring 5 and the damping rod 6. At the same time, when the pipeline shakes, the telescopic rod 13 can rotate according to its shaking angle and can also contract according to its shaking distance, ensuring the stability of the earthquake resistance effect.
[0033] It should be noted that in this article, relational terms such as first and second are only used to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any actual relationship or order between these entities or operations. Moreover, the terms "include", "comprise" or any other variant thereof are intended to cover non-exclusive inclusion, so that a process, method, article or device including a series of elements not only includes those elements, but also includes other elements not expressly listed, or elements inherent to such process, method, article or device.
[0034] Although the embodiments of the present utility model have been shown and described, for those of ordinary skill in the art, it can be understood that various changes, modifications, substitutions and variations can be made to these embodiments without departing from the principle and spirit of the present utility model. The scope of the present utility model is defined by the appended claims and their equivalents.
Claims
1. An earthquake-resistant support with angle self-adaptation, comprising a mounting plate (1), characterized in that: On both sides of the surface of the mounting plate (1), a number of mounting holes (2) are provided. On both sides of the bottom of the mounting plate (1), connecting rods (3) are fixedly connected. At the bottom of each connecting rod (3), a connecting ring (4) is fixedly connected. On both sides inside the connecting ring (4), a number of springs (5) are fixedly connected. The springs (5) are arranged in a circular array along the axis of the connecting ring (4). On both sides inside the connecting ring (4), a number of damping rods (6) are fixedly connected. The damping rods (6) are arranged in a circular array along the axis of the connecting ring (4). The springs (5) are all sleeved on the surface of the damping rods (6). Inside the connecting ring (4), a ferrule (7) is provided. The inner sides of the springs (5) and the damping rods (6) are all in contact with the surface of the ferrule (7).
2. The seismic support with angle self - adaptation according to claim 1, characterized in that: At the bottom of the mounting plate (1), an upper clamping ring (8) is provided. At the bottom of the upper clamping ring (8), a lower clamping ring (9) is provided. At both ends of the upper clamping ring (8) and the lower clamping ring (9), fixing holes are provided. Inside the fixing holes, fixing bolts (10) are threadedly connected. The lower clamping ring (9) and the upper clamping ring (8) are located inside the ferrule (7).
3. The seismic support with angle self - adaptation according to claim 2, characterized in that: On both sides of the bottom of the mounting plate (1), upper connecting seats (11) are fixedly connected. At the top of the upper clamping ring (8), lower connecting seats (12) are fixedly connected. Inside the upper connecting seats (11) and the lower connecting seats (12), a telescopic rod (13) is provided. At the top of the telescopic rod (13), an upper rotating block (14) is fixedly connected. The upper rotating block (14) is sleeved on the surface of the upper connecting seat (11) and is rotatably connected thereto. At the bottom of the telescopic rod (13), a lower rotating block (15) is fixedly connected. The lower rotating block (15) is sleeved on the surface of the lower connecting seat (12) and is rotatably connected thereto.
4. The seismic support with angle self - adaptation according to claim 3, characterized in that: On the outer surface of each upper connecting seat (11), a reinforcing plate (16) is fixedly connected. The number of the reinforcing plates (16) is several. The shape of the reinforcing plate (16) is triangular. The tops of the reinforcing plates (16) are all fixedly connected to the bottom surface of the mounting plate (1).
5. The seismic support with angle self - adaptation according to claim 2, characterized in that: Inside the upper clamping ring (8) and the lower clamping ring (9), anti-slip pads (17) are fixedly connected. On the surface of the anti-slip pads (17), anti-slip ridges (18) are fixedly connected. The number of the anti-slip ridges (18) is several. The anti-slip ridges (18) are linearly arranged along the axis of the upper clamping ring (8) and the lower clamping ring (9).
6. The seismic support with angle self - adaptation according to claim 1, characterized in that: On the surface of the connecting ring (4), an annular groove (19) is provided. On the surface of the ferrule (7), a number of limiting rods (20) are fixedly connected. The limiting rods (20) are arranged in a circular array along the axis of the ferrule (7). At the outer ends of the limiting rods (20), limiting blocks (21) are fixedly connected. The diameters of the limiting blocks (21) are all larger than the width of the annular groove (19).