Building electromechanical pipeline anti-seismic hanging bracket
By designing upper and lower clamps for clamping, and combining them with a base and multi-dimensional anti-vibration components, vertical and longitudinal vibration forces are absorbed, solving the problem of the lack of anti-vibration function in existing electromechanical pipeline hangers, and achieving stability and protection during vibration.
Patent Information
- Application Number
- CN202520370907.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-05
- Publication Date
- 2025-11-21
- Estimated Expiration
- 2035-03-05
AI Technical Summary
The existing electromechanical pipeline hangers lack seismic resistance, which may cause irregular swaying during an earthquake, affecting the anchoring strength and potentially causing the suspension system to loosen and fall, leading to secondary disasters.
Design a seismic-resistant hanger for building electromechanical pipelines, which uses upper and lower clamps for clamping, combined with a base and multi-dimensional seismic components, including seismic component one and seismic component two. It uses springs and buffer blocks to absorb vertical and longitudinal vibration forces, and adds silicone pads to protect the pipelines.
It effectively reduces vertical and longitudinal impacts during earthquakes, maintains pipeline stability, ensures that it does not loosen during vibrations, is easy to install, reduces potential damage to pipelines, and has excellent seismic performance and structural stability.
Smart Images

Figure CN223579145U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to electromechanical pipeline hanger technical field, specifically point to a kind of building electromechanical pipeline anti-seismic hanger. BACKGROUND
[0002] In the field of construction, electromechanical pipelines, as one of the indispensable infrastructures of modern buildings, play a crucial role. They not only carry the operational needs of multiple systems such as power supply, water supply and drainage, heating and air conditioning, communication, fire protection, etc., but also directly relate to the normal operation of internal functions, the comfort of living or working environment, and the overall safety of the building. The design and construction of electromechanical pipelines need to consider the building structure comprehensively. They are usually cleverly hidden in positions such as above the suspended ceiling, below the floor, inside the wall, or outside the outer wall, to reduce the impact on indoor space and improve aesthetics.
[0003] In order to support and fix these complex electromechanical pipeline systems, hangers become an indispensable auxiliary facility. Hangers, also known as supports or suspension systems, mainly function to safely and stably suspend pipelines in specific positions of the building structure. For example, the utility model patent disclosed in the authorized announcement No. CN221278703U for electromechanical pipeline installation hanger for I-beam includes two V-shaped plates symmetrically arranged on both sides of the I-beam, the folded plates inside the V-shaped plates are hung on the edge of the I-beam bottom plate, two through holes are provided on the folded plates outside the V-shaped plates, a support beam is provided between the lower parts of the two V-shaped plates, a U-shaped bolt is matched and installed on the support beam, the two screw rod bodies of the U-shaped bolt are vertically inserted into the two through holes of the V-shaped plates, and a nut is installed on the upper end of the screw rod body to tighten and fix the V-shaped plates and the support beam, a pipeline hanger is installed at one end of the support beam, the support beam is a section of channel steel, and the limiting mechanism includes two through holes arranged side by side in the middle part of the upper plate body of the support beam, a limiting bolt is vertically and fixedly installed in each through hole, and the outer edge of the V-shaped plate is tightly pressed against the end of the limiting bolt.
[0004] This electromechanical pipeline installation hanger structure does not need high-altitude drilling operation and will not damage the structure of the beam, ensuring the load-bearing capacity of the beam. However, this existing technology still has room for improvement: specifically, this existing technology does not have corresponding anti-seismic function or structure, so during an earthquake, the suspended system only bearing the gravity load may swing irregularly, and if the frequency is high enough, it may affect the anchoring strength at the root point, causing the suspended system to loosen and fall, thereby causing secondary disasters.
[0005] Therefore, it is necessary to improve the above-mentioned defects. UTILITY MODEL CONTENTS
[0006] The technical problem to be solved by the utility model is to overcome the above-mentioned defects and provide a building electromechanical pipeline anti-seismic hanger.
[0007] To solve the above technical problems, the utility model provides a technical scheme for:
[0008] A building mechanical and electrical pipeline anti-seismic hanging bracket, comprising:
[0009] The upper clamp and the lower clamp are used in cooperation with each other to clamp the pipeline.
[0010] The base is fixedly connected to the bottom end of the lower clamp.
[0011] The anti-seismic assembly one is arranged on the two sides of the base and is used to reduce the vibration force from the vertical direction.
[0012] The anti-seismic assembly two is arranged on the top of the anti-seismic assembly one and is used to reduce the vibration force from the longitudinal direction.
[0013] As an improvement, the upper clamp and the lower clamp are connected to each other by screws and nuts.
[0014] Both sides of the base are provided with rotating grooves, the anti-seismic assembly one comprises a rotating block one arranged in the rotating groove, a connecting rod one is fixedly connected to the rotating block one, a sleeve is fixedly connected to the connecting rod one, a limiting block is slidably connected in the sleeve, an active rod is fixedly connected to the top end of the limiting block, the active rod penetrates through the top end of the sleeve and is fixedly connected with a rotating block two, a spring one is sleeved on the active rod, and both ends of the spring one are fixedly connected with the limiting block and the inner top wall of the sleeve.
[0015] The bottom end of the limiting block is fixedly connected with a connecting rod two, the connecting rod one is provided with a groove communicated with the inside of the sleeve, the connecting rod two is inserted into the groove, a spring two is sleeved on the connecting rod two, and both ends of the spring two are fixedly connected with the limiting block and the inner bottom wall of the sleeve.
[0016] The anti-seismic assembly two comprises two fixed boxes, a buffer rod is fixedly connected in each fixed box, a buffer block is slidably connected on the buffer rod, springs three are arranged at the front end and the rear end of the buffer block, and the bottom end of the buffer block is fixedly connected with the rotating block two.
[0017] The spring three is sleeved on the outside of the buffer rod, and both ends of the spring three are fixedly connected with the buffer block and the inner wall of the fixed box.
[0018] A rotating shaft one is fixedly connected in the rotating groove, and the rotating block one is rotationally connected with the rotating shaft one.
[0019] A rotating shaft two is fixedly connected in the rotating block two, and the buffer block is rotationally connected with the rotating shaft two.
[0020] The upper and lower clamps are fixedly connected with silica gel pads on inner arc surfaces.
[0021] Compared with the prior art, the utility model has the advantages that: the utility model building mechanical and electrical pipeline anti-seismic hanger, through the design upper clamp and lower clamp cooperate and realize stable clamping, combine base and multidimensional anti-seismic component (also namely anti-seismic component one and anti-seismic component two), can effectively reduce the impact of earthquake and other natural disasters to pipeline from vertical direction or longitudinal direction. BRIEF DESCRIPTION OF DRAWINGS
[0022] Figure 1 It is a three-dimensional structure of the utility model building mechanical and electrical pipeline anti-seismic hanger Figure 1 ;
[0023] Figure 2 It is a three-dimensional structure of the utility model building mechanical and electrical pipeline anti-seismic hanger Figure 2 ;
[0024] Figure 3 It is a three-dimensional structure of the utility model building mechanical and electrical pipeline anti-seismic hanger
[0025] Figure 4 It is a three-dimensional structure of the utility model building mechanical and electrical pipeline anti-seismic hanger
[0026] As shown in the figure: 1, upper clamp;2, lower clamp;3, base;4, anti-seismic component one;5, anti-seismic component two;6, rotating groove;7, rotating block one;8, connecting rod one;9, sleeve;10, limit block;11, movable rod;12, rotating block two;13, spring one;14, connecting rod two;15, recess;16, spring two;17, fixed box;18, buffer rod;19, buffer block;20, spring three;21, rotating shaft one;22, rotating shaft two;23, silica gel pad. DETAILED DESCRIPTION
[0027] Hereinafter, exemplary embodiments will be described in detail with reference to the accompanying drawings. In the following description, unless otherwise indicated, the same numbers in different drawings indicate the same or similar elements. The embodiments described in the following exemplary embodiments do not represent all the embodiments consistent with the present disclosure. Rather, they are merely examples of devices consistent with some aspects of the present disclosure as detailed in the appended claims.
[0028] The technical solutions in the embodiments of the utility model will be clearly and completely described below with reference to the drawings in the embodiments of the utility model. Based on the embodiments in the utility model, all other embodiments obtained by the ordinary skilled in the art without making creative efforts belong to the scope of protection of the utility model.
[0029] Please refer to the drawings in the description Figures 1-4 The utility model discloses a building electromechanical pipeline anti-seismic hanger, this hanger mainly includes upper clamp 1 and lower clamp 2, base 3, anti-seismic component one 4 and anti-seismic component two 5,
[0030] Among them, upper clamp 1 and lower clamp 2 are connected by screw nut each other. Realize the clamping of pipeline, the inner arc surface of upper clamp 1 and lower clamp 2 is fixedly connected with silica gel pad 23, to enhance the protective property, reduce the potential damage to pipeline, the base 3 is fixedly connected to the lower clamp 2 bottom end, both sides of base 3 are opened with rotating groove 6, both sides are provided with anti-seismic component one 4, for reducing the vibration force from vertical direction, specifically, anti-seismic component one 4 includes rotating block one 7 set in rotating groove 6, rotating shaft one 21 is fixedly connected in rotating groove 6, and rotating block one 7 and rotating shaft one 21 are rotationally connected. Rotating block one 7 is fixedly connected with connecting rod one 8, connecting rod one 8 is fixedly connected with sleeve 9, limit block 10 is slidably connected in sleeve 9, movable rod 11 is fixedly connected to the top end of limit block 10, movable rod 11 passes through the top end of sleeve 9 and is fixedly connected with rotating block two 12, specifically, rotating block two 12 is fixedly connected with rotating shaft two 22, and buffer block 19 and rotating shaft two 22 are rotationally connected.
[0031] Thus, movable rod 11 can drive limit block 10 to slide in sleeve 9, and spring one 13 is sleeved on movable rod 11, and two ends of spring one 13 are fixedly connected with limit block 10 and the inner top wall of sleeve 9. Therefore, when limit block 10 moves upwards, spring one 13 is compressed and deformed, and the deformation force of spring one 13 is released during the deformation process, so that the movement of limit block 10 is offset and absorbed to a certain extent, and when limit block 10 moves downwards, spring one 13 is stretched, and the deformation force is also released to offset and absorb, so that limit block 10 can keep balance during dynamic movement and absorb the vibration force applied in the vertical direction, so as to achieve the buffering effect.
[0032] In order to strengthen the above-mentioned effect, also in order to limit the block 10 in the sleeve 9 sliding more stable. The utility model is fixedly connected with connecting rod two 14 at the bottom of limit block 10, the connecting rod one 8 is equipped with the recess 15 that is communicated to the inside of sleeve 9, and the connecting rod two 14 is inserted in the recess 15, and the connecting rod two 14 is equipped with spring two 16, and the both ends of spring two 16 are fixedly connected with limit block 10 and the inner bottom wall of sleeve 9 respectively, its effect is same as the above-mentioned, and is combined with the effect on it, reaches better damping effect.
[0033] Then, the above-mentioned anti-shock component two 5 is arranged at the top of anti-shock component one 4, which is used to reduce the vibration force from the longitudinal direction, specifically, anti-shock component two 5 includes two fixed boxes 17, each fixed box 17 is fixedly connected with a buffer rod 18, the buffer rod 18 is slidably connected with a buffer block 19, the buffer block 19 is provided with spring three 20 at the front and rear ends, and the bottom end of the buffer block 19 is fixedly connected with the rotating block two 12. Spring three 20 is sleeved on the outside of buffer rod 18, and the both ends of spring three 20 are fixedly connected with buffer block 19 and the inner wall of fixed box 17. Therefore, when the mechanical and electrical pipelines clamped by the upper clamp 1 and the lower clamp 2 suffer from the vibration force or displacement force from the longitudinal direction, the buffer block 19 will slide on the buffer rod 18, and the spring three 20 at the front and rear ends will be extruded or stretched, and the displacement force generated by the deformation force will be offset, and finally the dynamic stability is realized.
[0034] The above describes the utility model and its implementation, which is not limited, and the drawings shown are only one of the embodiments of the utility model, and the actual structure is not limited. In general, if the ordinary skilled person in the art is inspired, without departing from the utility model, without creative design, similar structure and embodiments of the technical scheme should belong to the protection scope of the utility model.
Claims
1. A seismic-resistant hanger for building electromechanical pipelines, characterized in that, include: The upper clamp (1) and the lower clamp (2) are used together to clamp the pipeline. The base (3) is fixedly connected to the bottom end of the lower clamp (2); Seismic Component 1 (4), which is disposed on both sides of the base (3), is used to reduce the vibration force from the vertical direction; Seismic Component 2 (5), which is disposed on top of Seismic Component 1 (4), is used to reduce vibration force from the longitudinal direction.
2. The seismic-resistant hanger for building electromechanical pipelines according to claim 1, characterized in that: The upper clamp (1) and the lower clamp (2) are connected to each other by screws and nuts.
3. The seismic-resistant hanger for building electromechanical pipelines according to claim 1, characterized in that: The base (3) has rotating grooves (6) on both sides. The anti-vibration component (4) includes a rotating block (7) set in the rotating groove (6). A connecting rod (8) is fixedly connected to the rotating block (7). A sleeve (9) is fixedly connected to the connecting rod (8). A limiting block (10) is slidably connected inside the sleeve (9). A movable rod (11) is fixedly connected to the top of the limiting block (10). The movable rod (11) passes through the top of the sleeve (9) and is fixedly connected to a rotating block (12). A spring (13) is sleeved on the movable rod (11). The two ends of the spring (13) are fixedly connected to the limiting block (10) and the inner top wall of the sleeve (9), respectively.
4. The seismic-resistant hanger for building electromechanical pipelines according to claim 3, characterized in that: The bottom end of the limiting block (10) is fixedly connected to a second connecting rod (14). The first connecting rod (8) has a groove (15) that connects to the inside of the sleeve (9). The second connecting rod (14) is inserted into the groove (15). The second connecting rod (14) is covered with a second spring (16). The two ends of the second spring (16) are fixedly connected to the limiting block (10) and the bottom wall of the sleeve (9), respectively.
5. The seismic-resistant hanger for building electromechanical pipelines according to claim 3, characterized in that: The second anti-seismic component (5) includes two fixed boxes (17), each fixed box (17) is fixedly connected to a buffer rod (18), a buffer block (19) is slidably connected to the buffer rod (18), and springs (20) are provided at the front and rear ends of the buffer block (19). The bottom end of the buffer block (19) is fixedly connected to the second rotating block (12).
6. The seismic-resistant hanger for building electromechanical pipelines according to claim 5, characterized in that: The spring three (20) is sleeved on the outside of the buffer rod (18), and the two ends of the spring three (20) are fixedly connected to the buffer block (19) and the inner wall of the fixed box (17), respectively.
7. The seismic-resistant hanger for building electromechanical pipelines according to claim 3, characterized in that: A rotating shaft (21) is fixedly connected inside the rotating groove (6), and the rotating block (7) and the rotating shaft (21) are rotatably connected.
8. The seismic-resistant hanger for building electromechanical pipelines according to claim 5, characterized in that: The rotating block 2 (12) is fixedly connected to the rotating shaft 2 (22), and the buffer block (19) and the rotating shaft 2 (22) are rotatably connected.
9. The seismic-resistant hanger for building electromechanical pipelines according to claim 1, characterized in that: Silicone pads (23) are fixedly connected to the inner arc surfaces of the upper clamp (1) and the lower clamp (2).
Citation Information
Patent Citations
Electromechanical pipeline mounting hanging bracket for I-shaped steel beam
CN221278703U