Anti-seismic reinforcing structure for building support

By setting a fixed structure of the transverse clamping rod and the longitudinal clamping rod on the building bracket, and using the buffering effect of the spring and the connecting ring, the problem of insufficient earthquake resistance caused by concentrated load in the existing building bracket reinforcement structure is solved, and the uniform support and buffering effect of the air duct is achieved.

CN223177194UActive Publication Date: 2025-08-01JIANGSU HANYUE ENVIRONMENTAL PROTECTION TECH DEV CO LTD
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
CN202422472865.X
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-10-14
Publication Date
2025-08-01
Estimated Expiration
2034-10-14

AI Technical Summary

Technical Problem

In the existing building support reinforced structure, the load is concentrated in the oblique support or connecting part, making it difficult to effectively resist high-intensity vibration and shaking.

Method used

A seismic reinforcement structure for building brackets is designed. By setting a uniformly distributed fixed structure outside the air duct, including a transverse clamping rod, a longitudinal clamping rod and a spring-connected L-shaped fixing frame, the horizontal movement of the transverse clamping rod and the connecting ring and the up and down movement of the longitudinal clamping rod are achieved, horizontal and longitudinal buffering effects are achieved.

Benefits of technology

It achieves uniform support and buffering of the air duct, can effectively resist the shaking and vibration of the air duct, and improves the earthquake resistance of the building support.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN223177194U_ABST
    Figure CN223177194U_ABST
Patent Text Reader

Abstract

The anti-seismic reinforcing structure for the building support comprises an air pipe, a plurality of evenly-distributed fixing structures are arranged outside the air pipe in a sleeved mode, and each fixing structure comprises a transverse clamping rod arranged above the air pipe and a longitudinal clamping rod located below the air pipe and corresponding to the transverse clamping rod. The longitudinal clamping rod is connected with an L-shaped fixing frame through a spring, the transverse clamping rod is connected with a tension spring through a connecting ring penetrating through the fixing frame, the air pipe is evenly supported through a plurality of evenly-distributed fixing structures arranged outside the air pipe, the transverse clamping rod is pressed on the upper side of the air pipe, and when the air pipe shakes up and down, the air pipe is clamped through the tension spring. The transverse clamping rod drives the connecting rings movably connected to the two sides to move in the horizontal direction, and buffering in the horizontal direction is achieved through the tension spring. And meanwhile, the connecting ring drives the longitudinal clamping rod to move up and down in the fixing frame, so that the air pipe is clamped in the longitudinal direction, and longitudinal shaking can be relieved by means of the spring.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The utility model provides a reinforcement structure, belonging to the technical field of construction support equipment, and particularly relates to an earthquake-resistant reinforcement structure for a construction support. Background Art

[0002] Construction supports mainly refer to temporary or permanent components or systems used to support and stabilize building structures. They play a crucial role during the construction process of buildings and throughout the service life of the buildings. Construction supports are mainly used to bear the loads during construction or use to prevent structural deformation, collapse, or movement.

[0003] Most of the existing temporary reinforcement supports reinforce air ducts and other building structures through inclined supports or other fixing methods. The force-bearing parts of the reinforcement structures under this kind of structure are mostly concentrated on a point of the inclined support or the connection part, and it is an integrated fixed connection. Facing large-angle shaking or impact, it is difficult to achieve an effective protection effect. Summary of the Utility Model

[0004] In order to make up for the deficiencies of the prior art, the embodiments of the present application provide an earthquake-resistant reinforcement structure for a construction support, which solves the problems that the key points of the existing construction support reinforcement structure are too concentrated and cannot resist high-strength vibration and shaking.

[0005] To solve the above technical problems, the utility model provides the following technical solution: An earthquake-resistant reinforcement structure for a construction support, including an air duct, and a plurality of uniformly distributed fixing structures are sleeved outside the air duct. The fixing structure includes a transverse clamping rod placed above the air duct and a longitudinal clamping rod located below the air duct and corresponding to the transverse clamping rod. The longitudinal clamping rod is connected with an L-shaped fixing frame through a spring, and the transverse clamping rod is connected with a tension spring through a connecting ring penetrating the fixing frame.

[0006] Preferably: Corresponding ear rings are fixedly connected to both the transverse clamping rod and the longitudinal clamping rod. The ear rings in the longitudinal direction are movably connected through a bolt structure. Both ends of the longitudinal clamping rod are fixedly connected with longitudinal adjusting rods placed on both sides of the spring and inserted into one side rod body of the fixing frame.

[0007] Preferably: An activity groove corresponding to the longitudinal adjusting rod is arranged inside one side of the fixing frame close to the longitudinal clamping rod. The other end of the longitudinal adjusting rod is connected with a limiting rod penetrating one side plate body of the fixing frame, and the limiting rod corresponds to the connecting ring.

[0008] Preferably: The end of the connecting ring away from the transverse clamping rod is connected with a sliding part fixedly connected with the tension spring. The sliding part, the transverse clamping rod, and the connecting ring are all connected through a rotating shaft penetrating the connecting ring.

[0009] Preferably, a T-shaped groove corresponding to the sliding member is provided inside one side of the fixed frame close to the sliding member.

[0010] One or more technical solutions provided in the embodiments of the present application at least have the following technical effects or advantages:

[0011] In the utility model, a plurality of uniformly distributed fixing structures arranged outside the air duct uniformly support the air duct. By means of the horizontal clamping rod pressing on the upper side of the air duct, when the air duct shakes up and down, the horizontal clamping rod drives the connecting rings movably connected on both sides to move in the horizontal direction, and the buffer in the horizontal direction is realized by means of the tension spring; at the same time, the connecting ring drives the vertical clamping rod to move up and down in the fixed frame, so as to clamp the air duct longitudinally, and the spring can relieve the longitudinal shaking.

[0012] Other advantages, objects and features of the present utility model will be described to some extent in the subsequent description, and to some extent, 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 present utility model. BRIEF DESCRIPTION OF THE DRAWINGS

[0013] Figure 1 is a three-dimensional schematic diagram of an anti-seismic reinforcement structure for a building support of the present utility model;

[0014] Figure 2 is an exploded decomposition diagram of an anti-seismic reinforcement structure for a building support of the present utility model;

[0015] Figure 3 is a cross-sectional view of an anti-seismic reinforcement structure for a building support of the present utility model;

[0016] Figure 4 is a cross-sectional view of the fixed frame of an anti-seismic reinforcement structure for a building support of the present utility model.

[0017] As shown in the figure:

[0018] 1. Air duct;

[0019] 11. Earring; 12. Bolt structure;

[0020] 2. Fixing structure;

[0021] 21. Horizontal clamping rod; 22. Vertical clamping rod; 23. Spring; 24. Fixed frame; 25. Connecting ring; 26. Tension spring; 27. Sliding member; 28. Rotating shaft; 29. Groove;

[0022] 221. Longitudinal adjusting rod; 222. Activity groove; 223. Limiting rod. DETAILED DESCRIPTION OF THE EMBODIMENTS

[0023] 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 work shall fall within the protection scope of the present utility model.

[0024] It should be noted that the terms "vertical", "horizontal", "upper", "lower", "left", "right" and similar expressions used herein are only for the purpose of illustration and do not represent the only implementation manner.

[0025] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by those of ordinary skill in the technical field to which the present utility model belongs; the terms used in the specification of the present utility model herein are only for the purpose of describing specific implementation manners and are not intended to limit the present utility model; the term "and / or" used herein includes any and all combinations of one or more of the related listed items.

[0026] As Figure 1 and Figure 2 shown, an earthquake-resistant reinforcement structure for a building support includes an air duct 1, and a number of uniformly distributed fixing structures 2 are sleeved outside the air duct 1. The fixing structure 2 includes a transverse clamping rod 21 placed above the air duct 1, a longitudinal clamping rod 22 located below the air duct 1 and corresponding to the transverse clamping rod 21, and corresponding ear rings 11 are fixedly connected to both the transverse clamping rod 21 and the longitudinal clamping rod 22. The ear rings 11 in the longitudinal direction are movably connected through a bolt structure 12. Longitudinal adjusting rods 221 are fixedly connected to both ends of the longitudinal clamping rod 22 and are inserted into one side rod body of a fixed frame 24 on both sides of a spring 23. The longitudinal clamping rod 22 is connected to an L-shaped fixed frame 24 through the spring 23. The transverse clamping rod 21 is connected to a tension spring 26 through a connecting ring 25 penetrating the fixed frame 24.

[0027] In this embodiment, a number of uniformly distributed fixing structures 2 disposed outside the air duct 1 evenly support the air duct 1. With the transverse clamping rod 21 pressing on the upper side of the air duct 1, when the air duct 1 shakes up and down, the transverse clamping rod 21 drives the connecting rings 25 movably connected on both sides to move horizontally, and the tension spring 26 is used to achieve buffering in the horizontal direction; at the same time, the connecting rings 25 drive the longitudinal clamping rod 22 to move up and down in the fixed frame 24, so as to clamp the air duct 1 longitudinally, and the spring 23 can relieve the longitudinal shaking.

[0028] As Figure 3 and Figure 4As shown, inside one side of the fixed frame 24 near the slider 27, there is a T-shaped groove 29 corresponding to the slider 27. The slider 27 is fixedly connected to the tension spring 26 and is connected to the end of the transverse clamping bar 21 away from the connecting ring 25. The connecting ring 25, the transverse clamping bar 21, and the slider 27 are all connected by a rotating shaft 28 passing through the connecting ring 25. The limiting rod 223 passes through one side plate of the fixed frame 24 and is connected to the other end of the longitudinal adjusting rod 221. Inside the fixed frame 24 near one side of the longitudinal clamping bar 22, there is a movable groove 222 corresponding to the longitudinal adjusting rod 221.

[0029] In this embodiment, when the air duct 1 or other objects to be fixed are shaken, the transverse clamping bar 21 moves along with it. The connecting rings 25 on both sides rotate actively by means of the rotating shaft 28. At the same time, as the transverse clamping bar 21 moves up and down, the other end of the connecting ring 25 pushes the slider 27 to move horizontally inside the groove 29, squeezing the tension spring 26 to achieve buffering. At the same time, the connecting ring 25 drives the limiting rod 223 and the longitudinal adjusting rod 221 to move up and down inside the fixed frame 24, and the longitudinal clamping bar 22 presses the spring 23 to achieve longitudinal buffering.

[0030] During use:

[0031] 1. Installation bracket: Place the air duct 1 or other objects to be fixed at the central position of the fixed frame 24. Ensure that there are fixing structures 2 evenly distributed on both sides of the air duct 1.

[0032] 2. Positioning of the transverse clamping bar: Place the transverse clamping bar 21 above the air duct 1 so that it can press on the upper side of the air duct 1.

[0033] 3. Installation of the longitudinal clamping bar: Place the longitudinal clamping bar 22 below the air duct 1 and make it correspond to the transverse clamping bar 21. Ensure that the longitudinal clamping bar 22 is connected to the L-shaped fixed frame 24 through the spring 23.

[0034] 4. Connecting the earring: Connect the corresponding earrings 11 on the transverse clamping bar 21 and the longitudinal clamping bar 22 through the bolt structure 12 so that they can be movably connected.

[0035] 5. Adjusting the longitudinal adjusting rod: Insert the longitudinal adjusting rod 221 into one side rod of the fixed frame 24 and connect it to the longitudinal clamping bar 22 through the spring 23. Ensure that the other end of the longitudinal adjusting rod 221 is connected to a limiting rod 223 passing through one side plate of the fixed frame 24.

[0036] 6. Connecting the slider: Pass the connecting ring 25 through the fixed frame 24 and connect it to the tension spring 26. At the same time, connect the other end of the connecting ring 25 to the slider 27 so that the slider 27 can move horizontally inside the T-shaped groove 29 of the fixed frame 24.

[0037] 7. Inspection and Fixation: Ensure that all components are firmly connected, especially the fastening conditions of parts such as the bolt structure 12 and the rotating shaft 28.

[0038] 8. Debugging and Testing: Apply up-and-down shaking to the air duct 1 manually or by other methods, and check the movement of the lateral clamping rod 21, the longitudinal clamping rod 22, and the connecting ring 25. Ensure that when the air duct 1 shakes, the lateral clamping rod 21 can drive the connecting ring 25 to move horizontally, and the buffer is achieved through the tension spring 26; at the same time, the connecting ring 25 drives the longitudinal clamping rod 22 to move up and down within the fixed frame 24, and the longitudinal buffer is achieved by means of the spring 23.

[0039] 9. Routine Maintenance: Regularly check the wear conditions of the connection points and components of the seismic reinforcement structure, and replace the damaged components in time to ensure the long-term stability and effectiveness of the structure.

[0040] Through the above steps, the seismic reinforcement structure of the present utility model can be effectively used to reinforce the air duct 1 or other fixed objects against earthquake.

[0041] Although the present utility model has been disclosed above with preferred embodiments, it is not intended to limit the present utility model. Anyone familiar with this technology can make various modifications and decorations without departing from the spirit and scope of the present utility model. Therefore, the protection scope of the present utility model should be defined by the claims.

Claims

1. An earthquake-resistant reinforcement structure for a building support, including an air duct (1), characterized in that: A plurality of uniformly distributed fixing structures (2) are sleeved outside the air duct (1). The fixing structure (2) includes a transverse clamping rod (21) placed above the air duct (1) and a longitudinal clamping rod (22) located below the air duct (1) and corresponding to the transverse clamping rod (21). The longitudinal clamping rod (22) is connected with an L-shaped fixing frame (24) through a spring (23), and the transverse clamping rod (21) is connected with a tension spring (26) through a connecting ring (25) penetrating through the fixing frame (24).

2. An anti-seismic reinforcement structure for a building support according to claim 1, characterized in that: Corresponding ear rings (11) are fixedly connected to both the transverse clamping rod (21) and the longitudinal clamping rod (22). The ear rings (11) in the longitudinal direction are movably connected through a bolt structure (12). Longitudinal adjusting rods (221) are fixedly connected to both ends of the longitudinal clamping rod (22), which are placed on both sides of the spring (23) and inserted into one side rod body of the fixing frame (24).

3. An earthquake-resistant reinforcement structure for a building bracket according to claim 2, characterized in that: An activity groove (222) corresponding to the longitudinal adjusting rod (221) is arranged inside one side of the fixing frame (24) close to the longitudinal clamping rod (22). A limiting rod (223) penetrating through one side plate body of the fixing frame (24) is connected to the other end of the longitudinal adjusting rod (221), and the limiting rod (223) corresponds to the connecting ring (25).

4. An earthquake-resistant reinforcement structure for a building bracket according to claim 2, characterized in that: One end of the connecting ring (25) far away from the transverse clamping rod (21) is connected with a sliding part (27) fixedly connected to the tension spring (26). The sliding part (27), the transverse clamping rod (21) and the connecting ring (25) are all connected through a rotating shaft (28) penetrating through the connecting ring (25).

5. The aseismic reinforcement structure for a building bracket according to claim 4, characterized in that: A T-shaped groove (29) corresponding to the sliding part (27) is arranged inside one side of the fixing frame (24) close to the sliding part (27).