An embedded structure for electromechanical installation pipelines
By setting positioning grooves and movable grooves on the base, and utilizing the cooperation of protective plates and drive blocks, the problem of fixing conduits during concrete pouring is solved, achieving conduit protection and efficient installation.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- ZHONGYE CONSTR RES INST CO LTD
- Filing Date
- 2025-05-23
- Publication Date
- 2026-05-26
Smart Images

Figure CN224289196U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of electromechanical installation technology, specifically a pre-embedded structure for electromechanical installation pipelines. Background Technology
[0002] Electromechanical equipment generally refers to mechanical, electrical and electrical automation equipment. When installing pipelines for electromechanical equipment, it is necessary to pre-embed and protect the lines. The traditional construction method is to tie up the steel bars and formwork, lay the conduit inside the steel bars and formwork, and then pour concrete into the steel bars and formwork. When pouring concrete, the conduit is easy to break, which will make it impossible to run the lines normally.
[0003] Existing patent CN219181099U discloses a pre-embedded protection structure for pipelines used in electromechanical installation. By setting up protective components, it can install a protective plate between two first connecting blocks or two second connecting blocks to protect the pipeline and prevent damage to the pipeline and the inability to run the pipeline normally when pouring concrete.
[0004] The above-mentioned patent has certain drawbacks: although it can protect the conduit, it cannot fix the conduit, and the installation is relatively troublesome. When there are many conduits, the installation efficiency is low. Therefore, a pre-embedded structure for electromechanical installation pipelines is proposed. Utility Model Content
[0005] The purpose of this utility model is to solve the technical problems that although the conduit can be protected, it cannot be fixed, and the installation is relatively troublesome and the installation efficiency is low when there are many conduits. This utility model provides a pre-embedded structure for electromechanical installation pipelines.
[0006] To achieve the above objectives, this utility model specifically adopts the following technical solution:
[0007] An electromechanical installation pipeline pre-embedded structure includes a base and a conduit. The base has multiple positioning grooves and movable grooves. The positioning groove includes a connected U-shaped groove and two receiving grooves. The movable groove is connected to the receiving grooves. The conduit is located in the U-shaped groove. A protective plate that abuts and overlaps with the conduit is hinged in the receiving groove. A torsion spring is provided at the hinge of the protective plate. Two driving blocks that abut and overlap with the protective plate are slidably arranged in the movable groove. A driving part is provided in the movable groove to drive the two driving blocks to slide synchronously in opposite directions.
[0008] Furthermore, a partition is movably inserted inside the conduit, the partition has multiple wire-passing holes, and the partition is provided with a locking element for locking or unlocking it.
[0009] Furthermore, the partition plate is provided with multiple heat dissipation holes, and adjacent wire holes are connected through the heat dissipation holes.
[0010] Furthermore, the length of the partition is greater than the length of the conduit, and the locking member includes a limiting ring disposed on the partition and abutting and overlapping with one end of the conduit. A screw cylinder is threaded on the partition and abutting and overlapping with the other end of the conduit. The screw cylinder has through holes that are the same number as the number of thread holes and correspond one-to-one.
[0011] Furthermore, the movable groove is connected to the U-shaped groove, and the driving block is provided with a clamping block that abuts and overlaps with the conduit.
[0012] Furthermore, the driving unit includes a driving rod slidably disposed in the movable groove, and the driving rod is provided with a conical block that abuts and overlaps with both driving blocks.
[0013] Furthermore, a connecting frame is provided between the plurality of drive rods, and a locking part is provided on the base for locking or unlocking the connecting frame.
[0014] Furthermore, the locking part includes a locking rod slidably disposed on the base, a wedge-shaped block that abuts against and overlaps with the connecting frame on the locking rod, and a compression spring sleeved on the locking rod between the wedge-shaped block and the base.
[0015] Compared with the prior art, the beneficial effects of this utility model are:
[0016] In this invention, two protective plates together cover the U-shaped groove and simultaneously abut and fix the conduit. This not only protects the conduit and prevents damage during concrete pouring, thus avoiding the inability to run the wires properly, but also makes installation convenient, facilitating the installation of multiple conduits and improving installation efficiency, thus making it more practical. Attached Figure Description
[0017] Figure 1 This is a three-dimensional view of the structure of this utility model;
[0018] Figure 2 This utility model Figure 1 Enlarged view of point A in the middle;
[0019] Figure 3 This utility model Figure 1 Enlarged view of point B in the middle;
[0020] Figure 4 This is a three-dimensional sectional view of the present invention;
[0021] Figure 5 This utility model Figure 4 Enlarged view of point C in the middle;
[0022] Figure 6 This utility model Figure 4 Enlarged view of point D in the middle;
[0023] Figure 7 This is a three-dimensional view of part of the structure of this utility model;
[0024] Figure 8 This utility model Figure 7 A three-dimensional sectional view.
[0025] In the diagram: 1. Base; 2. Conduit; 3. Movable groove; 4. U-shaped groove; 5. Receiving groove; 6. Protective plate; 7. Torsion spring; 8. Drive block; 9. Partition plate; 10. Through hole; 11. Heat dissipation hole; 12. Limiting ring; 13. Screw barrel; 14. Through hole; 15. Clamping block; 16. Drive rod; 17. Conical block; 18. Connecting frame; 19. Locking rod; 20. Wedge block; 21. Compression spring. Detailed Implementation
[0026] To make the objectives, technical solutions, and advantages of the embodiments of this utility model clearer, the technical solutions of the embodiments of this utility model will be clearly and completely described below with reference to the accompanying drawings.
[0027] This embodiment provides a pre-embedded structure for electromechanical installation pipelines, mainly to solve the technical problems that although the pipelines can be protected, they cannot be fixed, and the installation is relatively cumbersome, resulting in low installation efficiency when there are many pipelines. The following technical solution is provided, which will be discussed in conjunction with... Figures 1-8 Please provide a detailed explanation:
[0028] An electromechanical installation pipeline pre-embedded structure includes a base 1 and a conduit 2. The base 1 is constructed with a plurality of positioning grooves and movable grooves 3. The positioning groove includes a connected U-shaped groove 4 and two receiving grooves 5. The two receiving grooves 5 are symmetrically distributed with the U-shaped groove 4 as the center. The movable grooves 3 are connected to the receiving grooves 5. The conduit 2 is located in the U-shaped groove 4. A protective plate 6 is hinged in the receiving groove 5 and abuts against the conduit 2. A torsion spring 7 is provided at the hinge of the protective plate 6. The two ends of the torsion spring 7 are fixedly connected to the receiving groove 5 and the protective plate 6, respectively. Two driving blocks 8 are slidably arranged in the movable groove 3, both abutting against the protective plate 6. The driving blocks 8 slide in the horizontal direction. The two driving blocks 8 are symmetrically distributed. The movable groove 3 is provided with a driving part for driving the two driving blocks 8 to slide synchronously in opposite directions.
[0029] In the initial state, the protective plate 6 is vertical and completely located within the receiving groove 5, the torsion spring 7 is in its natural state, and the driving block 8 is completely located within the movable groove 3 and abuts against the protective plate 6. The two driving blocks 8 located within the same movable groove 3 are close to each other. During installation, multiple conduits 2 are placed horizontally within multiple U-shaped grooves 4. The driving unit drives the two driving blocks 8 located within the same receiving groove 5 to slide synchronously in opposite directions until they move away from each other. During this process, the driving block 8 drives the protective plate 6 to rotate around the hinge point to the horizontal direction, the torsion spring 7 is compressed, and the two adjacent protective plates 6 rotate in opposite directions and abut against each other. The two protective plates 6 together cover the U-shaped groove 4 and abut against and fix the conduits 2. This not only protects the conduits 2 and prevents damage to the conduits 2 during concrete pouring, thus avoiding the phenomenon of not being able to run the wires normally, but also makes installation convenient, facilitating the installation of multiple conduits 2 and improving installation efficiency, thus making it more practical.
[0030] like Figures 5-8 As shown, in this embodiment, a partition 9 is movably inserted inside the conduit 2. The partition 9 is horizontal and movably inserted inside the conduit 2 along its length. The partition 9 has multiple wire holes 10 and a locking element for locking or unlocking it.
[0031] Referring to the above, during installation, the partition 9 can be movably inserted into the conduit 2 and locked with a locking device, so that the partition 9 and the conduit 2 cannot be separated. When multiple wires need to be threaded into a single conduit 2 later, multiple wires can be threaded into multiple wire holes 10 respectively, thereby separating the multiple wires and avoiding tangling. It also helps with heat dissipation and makes it more convenient to use.
[0032] like Figure 5 As shown, in this embodiment, the partition 9 is provided with a plurality of heat dissipation holes 11, and two adjacent wire holes 10 are connected through the heat dissipation holes 11.
[0033] Referring to the above, the multiple heat dissipation holes 11 during use are more conducive to heat dissipation of the wire, thereby improving the stability and safety of use.
[0034] like Figures 7-8 As shown, in this embodiment, the length of the partition 9 is greater than the length of the conduit 2. The locking component includes a limiting ring 12 disposed on the partition 9 and abutting and overlapping with one end of the conduit 2. The limiting ring 12 is fixed on the partition 9. A screw cylinder 13 is threadedly sleeved on the partition 9 and abutting and overlapping with the other end of the conduit 2. A threaded section is constructed on the partition 9. The screw cylinder 13 is threadedly engaged with the threaded section. A through hole 14 is constructed on the screw cylinder 13, which is the same number as the number of wire holes 10 and corresponds to them one by one.
[0035] Referring to the above, during installation, the partition 9 is movably inserted into the conduit 2 until the limiting ring 12 abuts against one end of the conduit 2. Then, the screw cylinder 13 is threaded onto the partition 9 until the screw cylinder 13 abuts against the other end of the conduit 2. At this point, the partition 9 and the conduit 2 cannot be separated, thus locking the partition 9. When multiple wires need to be threaded into a single conduit 2 later, the multiple wires are threaded into multiple wire holes 10 and out through multiple through holes 14.
[0036] like Figure 6 As shown, in this embodiment, the movable groove 3 is connected to the U-shaped groove 4, and the driving block 8 is provided with a clamping block 15 that abuts against and overlaps with the conduit 2. The clamping block 15 is fixed on the driving block 8.
[0037] Referring to the above, in the initial state, the clamping block 15 is away from the conduit 2. When the two driving blocks 8 located in the same movable groove 3 slide synchronously in opposite directions to move away from each other, the driving block 8 drives the clamping block 15 to move together. The clamping block 15 abuts and overlaps with the conduit 2 to achieve clamping and fixing of the conduit 2, thereby further improving the fixing effect.
[0038] like Figure 6 As shown, in this embodiment, the driving unit includes a driving rod 16 that is slidably disposed in the movable groove 3. The driving rod 16 slides in the vertical direction. A conical block 17 is provided on the driving rod 16 that abuts against and overlaps with both driving blocks 8. The conical block 17 has two inclined surfaces and two planes that are relatively distributed.
[0039] Referring to the above, in the initial state, both the drive rod 16 and the conical block 17 are in their initial positions. During installation, the drive rod 16 is slid downwards to its limit position, causing the conical block 17 to move downwards together. The two drive blocks 8 first contact and overlap with the two inclined planes respectively. Through the transition effect of the two inclined planes, the two drive blocks 8 are driven to slide synchronously in opposite directions until they are far apart. Then, the two drive blocks 8 contact and overlap with the two planes respectively, and the position of the drive rod 16 is locked.
[0040] like Figures 1-3 As shown, in this embodiment, a connecting frame 18 is provided between multiple drive rods 16, and multiple drive rods 16 are fixedly connected to the connecting frame 18. A locking part for locking or unlocking the connecting frame 18 is provided on the base 1.
[0041] Referring to the above, in the initial state, the connecting frame 18 and the multiple drive rods 16 are all in the initial position. During installation, the connecting frame 18 is moved downward to the limit position, which drives the multiple drive rods 16 to slide downward to the limit position simultaneously. Then, the connecting frame 18 is locked by the locking part to realize the simultaneous locking of the multiple drive rods 16, making it more convenient to use.
[0042] like Figure 3As shown, in this embodiment, the locking part includes a locking rod 19 slidably disposed on the base 1. The locking rod 19 slides in the horizontal direction. A wedge block 20 is disposed on the locking rod 19 and abuts against the connecting frame 18. The wedge block 20 is horizontal and fixed on the locking rod 19. A compression spring 21 is disposed between the wedge block 20 and the base 1 and sleeved on the locking rod 19. The compression spring 21 is horizontal and its two ends are fixedly connected to the wedge block 20 and the base 1 respectively.
[0043] Referring to the above, in the initial state, both the locking lever 19 and the wedge block 20 are in their initial positions, and the compression spring 21 is in its natural state. When the connecting frame 18 moves downward to its limit position, it will first come into contact with the inclined surface of the wedge block 20. Through the transition effect of the inclined surface, the wedge block 20 and the locking lever 19 are forced to move together to the limit position, and the compression spring 21 is compressed. After that, the compression spring 21 will return to its natural state, and the wedge block 20 and the locking lever 19 will move together to their initial positions due to elastic potential energy. The planes of the connecting frame 18 and the wedge block 20 come into contact with each other, and the connecting frame 18 is locked by the wedge block 20, so the connecting frame 18 cannot move.
[0044] The installation method of this utility model is as follows: Multiple conduits 2 are horizontally placed in multiple U-shaped grooves 4. The driving part drives two driving blocks 8 located in the same receiving groove 5 to slide synchronously in opposite directions until they are far apart. During this process, the driving block 8 drives the protective plate 6 to rotate around the hinge point to the horizontal direction. The torsion spring 7 is squeezed, and the two adjacent protective plates 6 rotate in opposite directions and abut against each other. The two protective plates 6 together cover the U-shaped groove 4 and abut against and fix the conduit 2. This not only protects the conduit 2 and prevents it from being damaged during concrete pouring, thus avoiding the phenomenon of the conduit 2 being unable to run normally, but also makes the installation convenient and facilitates the installation of multiple conduits 2, thus improving the installation efficiency.
[0045] The above description is only a preferred embodiment of the present utility model, but the protection scope of the present utility model is not limited thereto. Any equivalent substitutions or changes made by those skilled in the art within the technical scope disclosed in the present utility model, based on the technical solution and the inventive concept of the present utility model, should be included within the protection scope of the present utility model.
Claims
1. An embedded structure for electromechanical installation pipelines, comprising a base (1) and a conduit (2), characterized in that: The base (1) is constructed with a plurality of positioning grooves and movable grooves (3). The positioning groove includes a connected U-shaped groove (4) and two receiving grooves (5). The movable groove (3) is connected to the receiving groove (5). The conduit (2) is located in the U-shaped groove (4). A protective plate (6) that abuts and overlaps with the conduit (2) is hinged in the receiving groove (5). A torsion spring (7) is provided at the hinge of the protective plate (6). Two driving blocks (8) that abut and overlap with the protective plate (6) are slidably arranged in the movable groove (3). A driving part for driving the two driving blocks (8) to slide synchronously in opposite directions is provided in the movable groove (3).
2. The pre-embedded structure for electromechanical installation pipelines according to claim 1, characterized in that: A partition (9) is movably inserted inside the conduit (2). The partition (9) has multiple wire holes (10) and a locking element for locking or unlocking it.
3. The pre-embedded structure for electromechanical installation pipelines according to claim 2, characterized in that: The partition (9) has multiple heat dissipation holes (11), and two adjacent wire holes (10) are connected through the heat dissipation holes (11).
4. The pre-embedded structure for electromechanical installation pipelines according to claim 2, characterized in that: The length of the partition (9) is greater than the length of the conduit (2). The locking member includes a limiting ring (12) disposed on the partition (9) and abutting and overlapping with one end of the conduit (2). A screw cylinder (13) is threaded on the partition (9) and abutting and overlapping with the other end of the conduit (2). The screw cylinder (13) has through holes (14) that are the same number as the number of wire holes (10) and correspond one-to-one.
5. The pre-embedded structure for electromechanical installation pipelines according to claim 1, characterized in that: The movable groove (3) is connected to the U-shaped groove (4), and the driving block (8) is provided with a clamping block (15) that abuts against and overlaps with the conduit (2).
6. The pre-embedded structure for electromechanical installation pipelines according to claim 1, characterized in that: The drive unit includes a drive rod (16) that is slidably disposed in the movable groove (3), and a conical block (17) is provided on the drive rod (16) that abuts against and overlaps with both drive blocks (8).
7. The pre-embedded structure for electromechanical installation pipelines according to claim 6, characterized in that: A connecting frame (18) is provided between the plurality of drive rods (16), and a locking part is provided on the base (1) for locking or unlocking the connecting frame (18).
8. The pre-embedded structure for electromechanical installation pipelines according to claim 7, characterized in that: The locking part includes a locking rod (19) slidably disposed on the base (1), a wedge block (20) that abuts against the connecting frame (18) is provided on the locking rod (19), and a compression spring (21) sleeved on the locking rod (19) is provided between the wedge block (20) and the base (1).