High-efficiency anti-seismic cable-stayed component
By designing highly efficient seismic-resistant cable-stayed components such as mainboards, adjustment plates, damping pads, and damping plates, the problem of easy damage to existing seismic-resistant cable-stayed components under dynamic loads has been solved, achieving more efficient seismic performance and structural stability.
Patent Information
- Application Number
- CN202520207136.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-10
- Publication Date
- 2025-12-05
- Estimated Expiration
- 2035-02-10
AI Technical Summary
Existing anti-seismic cable-stayed components are not effective in resisting seismic events under dynamic or repeated loading and are prone to damage.
A high-efficiency anti-vibration inclined tie component was designed, comprising a main board, an adjustment plate, a shock-absorbing pad, a shock-absorbing plate, an adjustment ring, and a return spring. The component enhances its shock absorption capacity through rotatable connections and the absorption of vibrations by elastic materials.
It improves the seismic resistance of cable-stayed components under dynamic or repeated loading, reduces the risk of device damage, and enhances the stability and durability of the structure.
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Figure CN223635705U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model provides a cable -stayed component belongs to the device technical field of aseismatic engineering, especially relates to a high -efficient aseismatic cable -stayed component. BACKGROUND
[0002] In aseismic engineering construction, pipeline pulling operation needs to use steel wire rope as pulling element, one end of which is designed into a lifting ring to realize effective connection with pipeline structure; the adapter support is used to fix the lifting ring and is connected with the concrete top wall through bolts or screws, the existing cable -stayed component reduces part of friction force and improves service life, but when facing dynamic or repeated loading, the aseismic effect is poor, and the cable -stayed force received easily causes damage of the device. SUMMARY
[0003] In order to make up for the deficiency of the prior art, the present application provides a high-efficiency aseismatic cable-stayed component, which solves the problem of the rigid connection of the existing aseismatic cable-stayed component that cannot withstand dynamic load.
[0004] In order to solve the above technical problems, the utility model provides the following technical scheme: a kind of high-efficiency aseismatic cable-stayed component, including main plate, the main plate is movably connected with adjusting plate by pivot, and the main plate and adjusting plate are movably connected by shock pad between one end, and the end of main plate away from shock pad is movably connected with shock pad, and bolt mounting hole is equipped on the side of adjusting plate close to shock pad and away from shock pad and on shock pad.
[0005] Preferably, a through hole corresponding to the pivot and penetrating through the main plate is provided on the main plate, and a connecting pipe is fixedly connected to the end of the main plate close to the shock pad.
[0006] Preferably, the shock pads are symmetrically distributed on both sides of the main plate, and the shock pads are provided with an adjusting ring fitted outside the connecting pipe, and the adjusting ring is provided with a reset spring symmetrically distributed on both sides and inside the shock pad, so as to realize the shock absorption of the main plate.
[0007] Preferably, a torsional spring is fitted on the pivot, the pivot is fixedly connected with the adjusting plate, and the shock pad is made of rubber material.
[0008] Preferably, the adjusting plate and the main plate are rotatably connected through the pivot, so that the adjusting plate can be adjusted in angle relative to the main plate to adapt to different aseismatic requirements.
[0009] Preferably, a gap is provided between the adjusting ring and the connecting pipe, and the size of the gap can be adjusted according to actual needs to adapt to different diameters of the connecting pipe. The gap is filled with an elastic material, and the compression and recovery capacity of the elastic material helps to absorb and reduce vibration and improve aseismatic performance.
[0010] The one or more technical solutions provided in the embodiments of the present application have at least the following technical effects or advantages:
[0011] The utility model discloses improve the anti-seismic effect of the cable-stayed component under dynamic or repeated loading, and reduce the risk of device damage. Specifically, the component includes a main plate, which is movably connected to an adjusting plate through a rotating shaft, allowing the adjusting plate to adjust its position and angle as needed to adapt to different pulling requirements. The main plate and the adjusting plate are movably connected at one end through a shock-absorbing pad. This design can effectively absorb and reduce the impact and vibration caused by earthquakes or other dynamic loads, thereby improving the anti-seismic performance. The main plate is movably connected to a shock-absorbing plate at the end away from the shock-absorbing pad, further enhancing the shock-absorbing capacity of the entire structure. The adjusting plate has bolt mounting holes on the side close to the shock-absorbing pad and the side away from the shock-absorbing pad, respectively used for connecting the wall end and the pipe end, achieving dynamic connection.
[0012] The other advantages, objectives, and features of the utility model will be described in the subsequent specification to some extent, and to some extent, it will be obvious to those skilled in the art based on the study of the following text or can be taught from the practice of the utility model. BRIEF DESCRIPTION OF DRAWINGS
[0013] Figure 1 is a perspective view of the high-efficiency anti-seismic cable-stayed component of the utility model;
[0014] Figure 2 is an exploded view of the high-efficiency anti-seismic cable-stayed component of the utility model;
[0015] Figure 3 is a sectional view of the high-efficiency anti-seismic cable-stayed component of the utility model.
[0016] As shown in the figure:
[0017] 1. Main plate;
[0018] 11. Rotating shaft; 12. Shock-absorbing plate; 13. Bolt mounting hole; 14. Through hole; 15. Adjusting ring; 16. Return spring; 17. Connection pipe;
[0019] 2. Adjusting plate;
[0020] 21. Shock-absorbing pad; 22. Torsion spring; 23. Gap. DETAILED DESCRIPTION
[0021] With reference to the drawings of the embodiments of the present application, the technical solutions in the embodiments of the present application will be clearly and completely described, obviously, the described embodiments are only part of the embodiments of the present application, rather than all the embodiments. Based on the embodiments of the present application, all other embodiments obtained by those skilled in the art without creative labor fall within the scope of protection of the present application.
[0022] It should be noted that the terms "vertical", "horizontal", "upper", "lower", "left", "right", and similar expressions used herein are for illustrative purposes only and do not indicate the only implementation.
[0023] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the art to which the present application belongs; the terms used in the specification of the present application are only for the purpose of describing specific embodiments and are not intended to limit the present application; the term "and / or" used herein includes any and all combinations of one or more related listed items.
[0024] As shown in Figure 1 and Figure 2 An efficient anti-seismic cable-stayed component, comprising a main plate 1, the main plate 1 is movably connected with an adjusting plate 2 through a rotating shaft 11, the main plate 1 and the adjusting plate 2 are movably connected through a damping pad 21, and the main plate 1 movably connects a damping plate 12 at an end away from the damping pad 21. The adjusting plate 2 is provided with a bolt mounting hole 13 on the side close to the damping pad 21 and away from the damping pad 21, and the damping plate 12 is provided with a bolt mounting hole 13. A through hole 14 corresponding to the rotating shaft 11 and penetrating through the main plate 1 is arranged on the main plate 1, and a connecting pipe 17 is fixedly connected to one end of the main plate 1 close to the damping plate 12. The damping plate 12 is symmetrically distributed on both sides of the main plate 1, and the damping plate 12 is provided with an adjusting ring 15 sleeved outside the connecting pipe 17, and the adjusting ring 15 is provided with a reset spring 16 symmetrically distributed on both sides and arranged inside the damping plate 12, so as to realize the damping of part of the main plate 1. A torsional spring 22 is sleeved on the rotating shaft 11, the rotating shaft 11 and the adjusting plate 2 are fixedly connected, and the damping pad 21 is made of rubber material. The connecting mode between the adjusting plate 2 and the main plate 1 through the rotating shaft 11 is rotatable connection, so that the adjusting plate 2 can be adjusted in angle relative to the main plate 1 to adapt to different anti-seismic requirements.
[0025] In this embodiment, the main plate 1 is connected to the adjusting plate 2 through the rotating shaft 11, allowing the adjusting plate 2 to adjust its position and angle as needed to accommodate different pulling requirements. The main plate 1 and the adjusting plate 2 are connected through the shock-absorbing pad 21, which effectively absorbs and reduces the impact and vibration caused by earthquakes or other dynamic loads, thereby improving the anti-seismic performance. The main plate 1 is connected to the shock-absorbing plate 12 at the end away from the shock-absorbing pad 21, further enhancing the shock-absorbing capacity of the entire structure. The adjusting plate 2 is provided with bolt mounting holes 13 on the side close to and away from the shock-absorbing pad 21 and the shock-absorbing plate 12, respectively, for connecting the wall end and the pipe end, achieving dynamic connection.
[0026] As shown in Figure 3 , a gap 23 is provided between the adjusting ring 15 and the connecting pipe 17, and the size of the gap 23 can be adjusted according to actual needs to accommodate different diameters of the connecting pipe 17. The gap 23 is filled with elastic material, and the compression and recovery capacity of the elastic material helps to absorb and reduce vibration, improving the anti-seismic performance. This design further enhances the anti-seismic effect of the component by adjusting the gap between the adjusting ring 15 and the connecting pipe 17 and the cooperation of the elastic material, making it adaptable to different environments and needs.
[0027] In this embodiment, the design of the main plate 1 allows the adjusting plate 2 to rotate at multiple angles under the support of the rotating shaft 11, to accommodate different installation angles and pulling directions. The torsional spring 22 fitted on the rotating shaft 11 provides pre-tightening force to the adjusting plate 2, ensuring that the adjusting plate 2 can remain stable when subjected to external forces, reducing loosening caused by vibration. The shock-absorbing pad 21 is made of rubber material, which has excellent shock-absorbing and wear-resistant properties, effectively absorbing impact force and reducing direct contact between structures, prolonging service life. The rotatable connection between the adjusting plate 2 and the main plate 1 allows the entire component to adjust flexibly, disperse and absorb force when facing dynamic loads in different directions, thereby improving the anti-seismic capacity of the overall structure.
[0028] In addition, the shock-absorbing plate 12 is symmetrically distributed on both sides of the main plate 1, and the adjusting ring 15 fitted outside the connecting pipe 17 works together with the return spring 16 to achieve partial shock-absorbing of the main plate 1. The design of the return spring 16 allows the adjusting ring 15 to quickly return to its original position after being stressed, reducing deformation caused by long-term stress. This delicate design not only improves the anti-seismic performance of the component, but also ensures that it can maintain a stable working state after being stressed multiple times, enhancing the reliability and durability of the entire cable-stayed component. Through these designs, this high-efficiency anti-seismic cable-stayed component can play a key role in various anti-seismic projects, providing stable and effective pulling support.
[0029] In use, first, the main plate 1 is fixed in the required position, ensuring that it is stable and can withstand the expected pulling force; then, the adjusting plate 2 is movably connected with the main plate 1 through the rotating shaft 11, and the adjusting plate 2 can adjust the position and angle according to the actual pulling requirements to adapt to different anti-seismic requirements; then, the shock-absorbing pad 21 is placed between the main plate 1 and the adjusting plate 2, the shock-absorbing pad 21 is made of rubber material and can effectively absorb and reduce the impact and vibration caused by earthquakes or other dynamic loads; then, the end of the main plate 1 away from the shock-absorbing pad 21 is movably connected with the shock-absorbing plate 12, the shock-absorbing plate 12 is symmetrically distributed on both sides of the main plate 1, the adjusting ring 15 inside is sleeved outside the connecting pipe 14, and the adjusting ring 15 and the reset spring 16 jointly act to realize partial shock absorption of the main plate 1, the design of the reset spring 16 enables the adjusting ring 15 to quickly return to the original position after being stressed, reducing the deformation caused by long-term stress; subsequently, the bolt mounting holes 13 are arranged on the side of the adjusting plate 2 close to the shock-absorbing pad 21 and away from the shock-absorbing pad 21 and on the shock-absorbing plate 12, the adjusting plate 2 and the shock-absorbing plate 12 are dynamically connected with the wall surface end and the pipeline end respectively through the bolt mounting holes 13, and stable fixation is realized; in addition, the gap 23 is arranged between the adjusting ring 15 and the connecting pipe 14, the size of the gap 23 can be adjusted according to actual needs to adapt to different diameters of the connecting pipe 14, and the gap 23 is filled with elastic material, and the compression and recovery capacity of the elastic material helps to absorb and reduce vibration and improve the anti-seismic performance; finally, the torsional spring 22 sleeved on the rotating shaft 11 provides pre-tightening force for the adjusting plate 2, ensuring that the adjusting plate 2 can remain stable when subjected to external force and reducing loosening caused by vibration, so that the whole efficient anti-seismic cable-stayed component can adapt to different environments and requirements and provide stable and effective pulling support in various anti-seismic projects.
[0030] Although the utility model has disclosed as above with preferable embodiments, it is not used to limit the utility model, anyone familiar with this technology can make various changes and modifications without departing from the spirit and scope of the utility model, therefore the protection scope of the utility model should be limited by the claims.
Claims
1. A high-efficiency anti-seismic cable-stayed component comprising a main plate (1), characterized in that: The main plate (1) is movably connected with an adjusting plate (2) through a rotating shaft (11), one end of the main plate (1) and the adjusting plate (2) is movably connected through a damping pad (21), the end of the main plate (1) away from the damping pad (21) is movably connected with a damping plate (12), and the side of the adjusting plate (2) close to and away from the damping pad (21) is provided with a bolt mounting hole (13) on the damping plate (12).
2. A high efficiency seismic resistant cable member according to claim 1, wherein: The main plate (1) is provided with a through hole (14) corresponding to the rotating shaft (11) and penetrating through itself, and the end of the main plate (1) close to the damping plate (12) is fixedly connected with a connecting pipe (17).
3. A high efficiency seismic resistant cable member according to claim 2, wherein: The damping plate (12) is symmetrically distributed on both sides of the main plate (1), the damping plate (12) is provided with an adjusting ring (15) sleeved outside the connecting pipe (17), the adjusting ring (15) is provided with a reset spring (16) symmetrically distributed on both sides and arranged inside the damping plate (12), and the damping of the main plate (1) is realized.
4. A high efficiency seismic resistant cable member according to claim 1, wherein: The rotating shaft (11) is sleeved with a torsion spring (22), the rotating shaft (11) and the adjusting plate (2) are fixedly connected, and the damping pad (21) is made of rubber material.
5. A high efficiency seismic resistant cable member according to claim 1, wherein: The connecting mode between the adjusting plate (2) and the main plate (1) through the rotating shaft (11) is rotatable connection, so that the adjusting plate (2) can be angle-adjusted relative to the main plate (1) to adapt to different anti-vibration requirements.
6. A high efficiency seismic resistant cable member according to claim 3, wherein: The adjusting ring (15) and the connecting pipe (17) are provided with a gap (23), the size of the gap (23) can be adjusted according to actual needs to adapt to different diameters of the connecting pipe (17); the gap (23) is filled with an elastic material, and the compression and recovery ability of the elastic material helps to absorb and reduce vibration and improve the anti-vibration performance.