Mechanical and electrical comprehensive anti-seismic support for factory building
By setting up a structure of C-type connectors, connecting blocks, magnets and hoops in the seismic bracket, the existing seismic bracket has solved the problems of large weight and poor seismic effect, achieving a lighter and more effective vibration mitigation effect, and improving the stability of the structure.
Patent Information
- Application Number
- CN202421772408.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-07-25
- Publication Date
- 2025-05-23
- Estimated Expiration
- 2034-07-25
AI Technical Summary
The existing seismic brackets have poor actual effects in seismic resistance due to the large weight of the springs, and the pipes vibrate during suspension, which weakens the seismic resistance.
By setting up C-type connectors, connecting blocks, magnets and hoops, the pipes are fixed to the bracket. When vibration occurs, the mutual repulsion between magnets and the moving mechanism of hoops are used to alleviate vibrations, and the friction is reduced through the limiting rod, auxiliary ring and ball structure to improve stability.
The weight of the traditional bracket is effectively reduced, and through the cooperation of magnets and hoops, the vibration is effectively slowed down, while improving the stability and shock resistance of the structure.
Smart Images

Figure CN222894775U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to a comprehensive electromechanical anti-seismic support for a factory building, which is applied in the technical field of protection of building electromechanical engineering facilities. Background Art
[0002] It is well known that seismic brackets are used to limit the displacement of attached electromechanical engineering facilities, control the vibration of facilities, and transfer loads to various components or devices on the bearing structure. Seismic brackets should provide reliable protection for building electromechanical engineering facilities during earthquakes and withstand earthquakes from any horizontal direction; seismic brackets should be verified according to the loads they bear; all components that make up the seismic brackets should be finished components, and components with fasteners should be easy to install; the seismic bracket limiter of the insulated pipe should be designed according to the size of the pipe after insulation, and should not limit the displacement caused by thermal expansion and contraction of the pipe. However, in actual use, it is found that most of the existing seismic brackets are springs to reduce the vibration force. Since the weight of the springs is large and the pipes vibrate when suspended, their weight and inertia are large, thereby reducing the actual effect of seismic resistance. In view of this, the utility model studies and improves the existing structure and provides a comprehensive electromechanical seismic bracket for factory buildings, in order to achieve a more practical purpose. Utility Model Content
[0003] In order to solve the above technical problems, the utility model provides a comprehensive electromechanical earthquake-resistant support for a factory building. By arranging a C-type connector, a connecting block, a magnet one and a magnet two, a pipe is fixed by a clamp. When vibration occurs, the pipe is linked with the clamp so that the connecting blocks on both sides of the clamp move in the middle of the C-type connector. At the same time, the mutually repulsive force between the magnet one and the magnet two is utilized so that the clamp can drive the pipe to reduce the vibration. The device can effectively reduce the weight of the traditional bracket and can effectively reduce the vibration.
[0004] The technical solution of the utility model is as follows:
[0005] A comprehensive electromechanical anti-seismic support for a factory building, comprising two hanging arms, wherein the bottom ends of the two hanging arms are fixedly installed with C-shaped connectors, the openings of the two C-shaped connectors are arranged to face each other, a connecting block is arranged inside the C-shaped connector, a clamp is fixedly installed between the two connecting blocks, a magnet 1 is fixedly installed on the top and bottom surfaces of the connecting block, and a magnet 2 is fixedly installed on the inner top and inner bottom of the two C-shaped connectors; the clamp comprises two locking parts arranged in a symmetrical structure, the top and bottom of the two locking parts are integrally connected with a fastening plate, each fastening plate is provided with a fixing hole, and the fastening plates facing each other are fixed by bolts.
[0006] Alignment grooves are provided on the top end surface and the bottom end surface of one of the two locking parts, and alignment blocks matching the alignment grooves are provided on the top end surface and the bottom end surface of the other locking part.
[0007] The magnet one and its corresponding magnet two are in a vertically symmetrical structure, the magnet one and the magnet two are at the same level and repel each other, and the connecting block and the magnet one fixed at its top and bottom are suspended in the middle of the C-shaped connecting piece.
[0008] Limit rods are fixedly installed on both sides of the two C-shaped connectors, an auxiliary ring is sleeved on the outside of the limit rod, a connecting rod is arranged on the outside of the auxiliary ring, one end of the connecting rod is fixedly connected to the outer wall surface of the auxiliary ring, and the other end of the connecting rod is fixedly connected to the side wall surface of the connecting block.
[0009] A plurality of movable grooves are arranged inside the auxiliary ring, and the movable grooves are evenly distributed on the inner wall surface of the auxiliary ring. Balls are rotatably installed inside the movable grooves.
[0010] The utility model has the following beneficial effects:
[0011] 1. The utility model provides a C-shaped connector and a connecting block, and simultaneously provides a first magnet and a second magnet between the contact surface of the connecting block and the C-shaped connector, so that after the device is put into use, the pipe is fixed by a clamp. When vibration occurs, the pipe links with the clamp, so that the connecting blocks on both sides of the clamp move in the middle of the C-shaped connector. At the same time, the mutually repulsive force between the first magnet and the second magnet is used, so that the clamp can drive the pipe to effectively reduce the vibration. In addition, compared with the traditional bracket, the device can effectively reduce the weight of the overall structure;
[0012] 2. The utility model provides a limit rod, an auxiliary ring, a movable groove and a ball. When the connecting block moves up and down, the auxiliary ring moves on the limit rod, thereby effectively preventing the connecting block from driving the clamp to move. The ball on the inner wall of the auxiliary ring can effectively reduce the friction between the inner wall of the auxiliary ring and the outer wall of the limit rod, so that the auxiliary ring can move more sensitively on the limit rod, thereby improving the stability of the structure when in use. BRIEF DESCRIPTION OF THE DRAWINGS
[0013] Figure 1 It is a schematic diagram of the overall structure of the utility model;
[0014] Figure 2 This is a schematic diagram of the split structure of the clamp in the utility model;
[0015] Figure 3 For this utility model Figure 1 A schematic diagram of the enlarged structure at A in the middle;
[0016] Figure 4It is a schematic cross-sectional structure diagram of the inner wall surface of the auxiliary ring in the utility model;
[0017] The reference numerals in the figure represent:
[0018] 1. Lifting arm; 2. C-type connector; 3. Connecting block; 4. Clamp; 5. Magnet 1; 6. Magnet 2; 7. Alignment groove; 8. Alignment block; 9. Limit rod; 10. Auxiliary ring; 11. Connecting rod; 12. Movable groove; 13. Ball. DETAILED DESCRIPTION
[0019] The present invention will be described in detail below with reference to the accompanying drawings and specific embodiments.
[0020] See also Figures 1 to 4 The described kind of factory building electromechanical integrated seismic support includes two hanging arms 1, the bottom ends of the two hanging arms 1 are fixedly installed with C-shaped connectors 2, the openings of the two C-shaped connectors 2 are arranged to face each other, a connecting block 3 is arranged inside the C-shaped connector 2, a clamp 4 is fixedly installed between the two connecting blocks 3, a magnet 1 5 is fixedly installed on the top and bottom surfaces of the connecting block 3, and a magnet 2 6 is fixedly installed on the inner top and inner bottom of the two C-shaped connectors 2; the clamp 4 includes two locking parts arranged in a symmetrical structure, the top and bottom of the two locking parts are integrally connected with a fastening plate, each fastening plate is provided with a fixing hole, and the facing fastening plates are fixed by bolts.
[0021] One of the two locking parts has an alignment groove 7 on its top and bottom end surfaces, and the other locking part has an alignment block 8 on its top and bottom end surfaces that matches the alignment groove 7. By inserting the alignment block 8 into the alignment groove 7, the connection structure of the two hoops 4 is more stable.
[0022] The magnet 1 5 and its corresponding magnet 2 6 are symmetrical in structure, the magnet 1 5 and the magnet 2 6 are at the same level and repel each other, and the connecting block 3 and the magnet 1 5 fixed at the top and bottom are suspended in the middle of the C-shaped connecting piece 2. Through the position setting of the magnet 1 5 and the magnet 2 6 and their mutually repelling characteristics, the hoop 4 can be stably placed between the two C-shaped connecting pieces 2 together with the connecting block 3.
[0023] Limiting rods 9 are fixedly installed on both sides of the two C-shaped connecting parts 2. An auxiliary ring 10 is sleeved on the outside of the limiting rod 9. A connecting rod 11 is arranged on the outside of the auxiliary ring 10. One end of the connecting rod 11 is fixedly connected to the outer wall surface of the auxiliary ring 10, and the other end of the connecting rod 11 is fixedly connected to the side wall surface of the connecting block 3.
[0024] The auxiliary ring 10 is provided with a plurality of movable grooves 12, which are evenly distributed on the inner wall surface of the auxiliary ring 10, and a ball 13 is rotatably installed inside the movable groove 12. When the connection block 3 moves inside the C-shaped connector 2, the auxiliary ring 10 moves up and down outside the limit rod 9, which can prevent the connection block 3 from being displaced left and right, and the movable grooves 12 provided inside the auxiliary ring 10 cooperate with the ball 13, which can effectively improve the flexibility of the auxiliary ring 10 when moving on the limit rod 9. The device structure of the utility model can effectively reduce the overall weight, and at the same time, the setting of magnet 1 5 and magnet 2 6 can achieve the purpose of reducing vibration.
[0025] The working principle of this utility model:
[0026] When using the utility model, firstly, the pipe is fixed with the clamp 4, specifically, the two locking parts clamp the pipe from both sides, so that the alignment block 8 is plugged into the alignment groove 7, and the clamp 4 is further firmly fixed on the pipe by inserting bolts on the fastening plate; when vibration occurs, the pipe links the clamp 4, so that the clamp 4 and the connecting blocks 3 fixed on both sides thereof vibrate together, and the connecting block 3 moves up and down inside the C-shaped connecting piece 2, and at the same time, the mutually repulsive force between the magnet 1 5 and the magnet 2 6 is used to enable the clamp 4 to drive the pipe to slow down the vibration, and when the connecting block 3 moves up and down, the movement of the auxiliary ring 10 on the limit rod 9 can effectively prevent the connection block 3 from driving the clamp 4 to produce displacement, and the movable groove 12 on the inner wall of the auxiliary ring 10 is used to cooperate with the ball 13 to effectively reduce the friction between the inner wall of the auxiliary ring 10 and the outer wall of the limit rod 9, thereby improving the flexibility of the auxiliary ring 10 when moving on the limit rod 9.
[0027] The above description is only an embodiment of the present invention, and does not limit the patent scope of the present invention. Any equivalent structure or equivalent process transformation made by using the contents of the specification and drawings of the present invention, or directly or indirectly applied in other related technical fields, are also included in the patent protection scope of the present invention.
Claims
1. A comprehensive electromechanical earthquake-resistant support for a factory building, characterized by: The invention comprises two suspension arms (1), the bottom ends of the two suspension arms (1) are fixedly mounted with C-shaped connecting pieces (2), the openings of the two C-shaped connecting pieces (2) are arranged facing each other, a connecting block (3) is arranged inside the C-shaped connecting piece (2), a clamp (4) is fixedly mounted between the two connecting blocks (3), a magnet 1 (5) is fixedly mounted on the top and bottom surfaces of the connecting block (3), and a magnet 2 (6) is fixedly mounted on the inner top and inner bottom of the two C-shaped connecting pieces (2); the clamp (4) comprises two locking parts arranged in a symmetrical structure, the top and bottom of the two locking parts are integrally connected with a fastening plate, each fastening plate is provided with a fixing hole, and the fastening plates facing each other are fixed by bolts.
2. The electromechanical integrated earthquake-resistant support for a factory building as claimed in claim 1, characterized in that: One of the two locking parts has an alignment groove (7) on its top end surface and a bottom end surface, and the other locking part has an alignment block (8) matched with the alignment groove (7) on its top end surface and a bottom end surface.
3. The integrated electromechanical anti-seismic support for a factory building as claimed in claim 1, characterized in that: The magnet one (5) and its corresponding magnet two (6) are in a vertically symmetrical structure; the magnet one (5) and the magnet two (6) are of the same level and repel each other; the connecting block (3) and the magnet one (5) fixed at its top and bottom are suspended in the middle of the C-shaped connecting piece (2).
4. The integrated electromechanical anti-seismic support for a factory building as claimed in claim 1, characterized in that: Limit rods (9) are fixedly installed on both sides of the two C-shaped connectors (2); an auxiliary ring (10) is sleeved on the outside of the limit rod (9); a connecting rod (11) is arranged outside the auxiliary ring (10); one end of the connecting rod (11) is fixedly connected to the outer wall surface of the auxiliary ring (10); and the other end of the connecting rod (11) is fixedly connected to the side wall surface of the connecting block (3).
5. The integrated electromechanical anti-seismic support for a factory building as claimed in claim 4, characterized in that: The auxiliary ring (10) is provided with a plurality of movable grooves (12) therein. The movable grooves (12) are evenly distributed on the inner wall surface of the auxiliary ring (10). Balls (13) are rotatably mounted inside the movable grooves (12).