Building electromechanical pipeline support hanger
By designing an adjustable crossbeam and locking mechanism, the shortcomings of traditional supports and hangers in terms of height adjustment and applicability are solved, enabling flexible adaptation and efficient transformation of building electromechanical pipeline supports and hangers in complex environments.
Patent Information
- Application Number
- CN202520299878.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-25
- Publication Date
- 2026-02-10
- Estimated Expiration
- 2035-02-25
AI Technical Summary
Traditional pipeline supports are difficult to adjust in terms of lifting height after installation, have limited application scenarios, and are difficult to adapt to irregular buildings, large-span buildings, and complex pipeline systems. They are also difficult to install and not conducive to later maintenance and renovation.
A building electromechanical pipeline support bracket was designed, comprising a threaded hanger, a crossbar, and locking components. The crossbar can move up and down and is fixed by locking components. It is equipped with an adjustable bracket and an L-shaped clamp. Height adjustment and fixation are achieved by using locking nuts and bolts, making it suitable for complex and diverse installation environments.
It achieves flexibility and applicability in pipeline hoisting, allowing for adjustments to hoisting height as needed, simplifying subsequent maintenance and modifications, reducing modification costs, and improving applicability and scalability.
Smart Images

Figure CN223895283U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to pipeline support and hanger technical field, specifically related to a building electromechanical pipeline support and hanger. BACKGROUND
[0002] As the key component of supporting and fixing electromechanical pipeline, the performance and applicability of electromechanical pipeline support and hanger directly affect the stability and safety of the whole pipeline system.
[0003] At present, the traditional pipeline support and hanger is inconvenient to adjust the lifting height of the pipeline after hoisting, and the application scene is single, and is designed and manufactured according to the specific building structure and conventional pipeline layout, and is only suitable for standard building projects such as ordinary residence, general office building, etc. Once encountering complex conditions such as special-shaped building, large-span space building, or hospital precision medical equipment supporting pipeline system, data center high-density electrical circuit layout, the traditional support and hanger is difficult to play a supporting role, and is difficult to install and is not conducive to later maintenance and reconstruction. UTILITY MODEL CONTENT
[0004] The utility model aims at providing a building electromechanical pipeline support and hanger to solve the problems in the above background.
[0005] In order to achieve the above object, the utility model provides the following technical scheme: a building electromechanical pipeline support and hanger, including two threaded hangers with mounting blocks at the top, characterized in that: it further includes two horizontal racks, the horizontal racks are all arranged through between the two threaded hangers and can move up and down, and the connecting points are locked and fixed through locking members.
[0006] The upper and lower surfaces of the horizontal rack are all provided with sliding grooves, a plurality of position-adjustable brackets are installed in the sliding grooves of the upper end horizontal rack, the upper surfaces of the brackets are all fixedly installed with limiting hoops, and two position-adjustable L-shaped clamping blocks are installed in the sliding grooves of the lower end horizontal rack.
[0007] The locking member includes four locking nuts installed on the outer surfaces of the threaded hangers, and the connecting positions between the horizontal rack and the threaded hangers are locked through the cooperation between the two corresponding locking nuts.
[0008] Assembly openings are all arranged through in the sliding grooves, and the sizes of the assembly openings are matched with the sizes of the brackets and L-shaped clamping blocks.
[0009] Resisting bolts A are all screw-connectedly installed in the brackets, pad plates A are all installed between the resisting bolts A and the corresponding horizontal racks, the pad plates A are U-shaped, and the pad plates A are clamped on the outer surfaces of the corresponding horizontal racks.
[0010] The front surface of the bracket is symmetrically fixed with two adapter blocks, the outer surface of the two adapter blocks is embedded with inner rotor bearings, and a micro rubber roller is installed between the two inner rotor bearings.
[0011] The connecting bolt is fixed between the limiting hoop and the bracket.
[0012] The upper surface of the L-shaped clamping block is screwed with a pressing bolt B, the pressing bolt B and the corresponding cross frame are installed with a pad B, the pad B is U-shaped, and the pad B is clamped on the outer surface of the corresponding cross frame.
[0013] The two ends of the cross frame are sleeved with square sleeves, the threaded lifting rod penetrates through the corresponding square sleeve, and the inner side of the locking nut is attached to the outer surface of the square sleeve.
[0014] Compared with the prior art, the utility model has the advantages that:
[0015] In actual working conditions, the bracket with the limiting hoop can be installed in the sliding groove of the corresponding cross frame according to the actual needs of pipeline hoisting, so as to adapt to complex installation environments, facilitate later maintenance and reconstruction, and effectively expand the application scope of the overall hoisting operation. Meanwhile, the innovative structure design of the utility model penetrates the ends of the two cross frames into the two threaded lifting rods, and uses the locking nut to limit the position, so that the operator can accurately control the supporting and locking points of the cross frame by rotating the locking nut, thereby conveniently adjusting the hoisting height and further improving the adaptation performance of the device under various working conditions. BRIEF DESCRIPTION OF DRAWINGS
[0016] Figure 1 It is a perspective view of the utility model.
[0017] Figure 2 It is a schematic view of the cross frame structure of the utility model.
[0018] Figure 3 It is a schematic view of the cross frame and square sleeve cross-sectional structure of the utility model.
[0019] Figure 4 It is a schematic view of the bracket structure of the utility model.
[0020] Figure 5 It is a schematic view of the L-shaped clamping block structure of the utility model.
[0021] Figure 6 It is a schematic view of the use scene structure of the utility model embodiment 1.
[0022] Figure 7 It is a schematic view of the use scene structure of the utility model embodiment 2.
[0023] Figure 8 The application embodiment 3 uses scene structure schematic diagram.
[0024] In the figure: 1, threaded hanger; 11, mounting block; 2, cross frame; 21, sliding groove; 22, assembly opening; 3, square sleeve; 4, locking nut; 5, bracket; 51, abutting bolt A; 52, pad A; 53, adapter block; 54, miniature rubber roller; 6, limiting hoop; 7, L-shaped clamping block; 71, abutting bolt B; 72, pad B. DETAILED DESCRIPTION
[0025] 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.
[0026] Embodiment 1
[0027] Please refer to Figures 1-8 A building mechanical and electrical pipeline support hanger, comprising two threaded hangers 1 provided with mounting blocks 11 at the top, further comprising two cross frames 2, the cross frames 2 are both arranged through between the two threaded hangers 1, four locking nuts 4 are all screwed on the outer surfaces of the threaded hangers 1, the connecting positions between the cross frames 2 and the threaded hangers 1 are locked by the cooperation between the two corresponding locking nuts 4, the position height of the cross frames 2 can be adjusted according to actual application conditions, when adjusting, the lifting and locking positions of the cross frames 2 can be changed by rotating and adjusting the two locking nuts 4 used in cooperation on the outer surfaces of the threaded hangers 1, the upper and lower surfaces of the cross frames 2 are both provided with sliding grooves 21, a plurality of position-adjustable brackets 5 are installed in the sliding groove 21 of the upper cross frame 2, the upper surfaces of the brackets 5 are all fixedly provided with limiting hoops 6, when the pipeline passes through the limiting hoops 6, the pipeline can be lifted by the brackets 5 and limited by the limiting hoops 6, two position-adjustable L-shaped clamping blocks 7 are installed in the sliding groove 21 of the lower cross frame 2, when hoisting the pipeline box, the pipeline box is lifted by the cross frame 2, then the two L-shaped clamping blocks 7 are installed in the sliding groove 21 of the cross frame 2, the two L-shaped clamping blocks 7 can be used in cooperation to clamp and limit the square pipeline box.
[0028] As shown in Figure 2 and Figure 3 , the assembly openings 22 are all arranged through in the sliding grooves 21, the sizes of the assembly openings 22 are matched with the sizes of the brackets 5 and the L-shaped clamping blocks 7, the assembly openings 22 are arranged to provide convenience for subsequent pipeline reconstruction. When the pipeline reconstruction work is carried out, the new brackets 5 can be conveniently installed through the assembly openings 22, so that the newly laid pipelines can be effectively lifted and limited, and the convenience and efficiency of the subsequent pipeline reconstruction work are greatly improved.
[0029] As shown in Figure 1 and Figure 4As shown, the bracket 5 is screw-mounted with a pressing bolt A51, and the pressing bolt A51 is mounted with a corresponding pad A52 between the horizontal frame 2, the pad A52 is U-shaped, and the pad A52 is clamped on the outer surface of the corresponding horizontal frame 2. The bottom of the bracket 5 slides in the sliding groove 21, and it can move left and right in the sliding groove 21 to change position. When the bracket 5 is adjusted to the appropriate position, the pad A52 is mounted to the inner side of the bracket 5 and clamped on the outer surface of the horizontal frame 2. Then, the pressing bolt A51 is screwed through the pad A52 and screwed with the bracket 5, and tightened. At this time, the pressing bolt A51 tightly adheres the bracket 5 and the pad A52 to the horizontal frame 2, realizing position fixing.
[0030] As shown in Figure 4 The front surface of the bracket 5 is symmetrically fixed with two adapter blocks 53, the outer surface of the two adapter blocks 53 is embedded with an inner rotor bearing, and a micro rubber roller 54 is mounted between the two inner rotor bearings. The top end of the micro rubber roller 54 is flush with the upper surface of the bracket 5. During the stringing operation, when the pipeline passes through the limiting hoop 6 and is pulled down, the micro rubber roller 54 can be used to replace the ridge of the bracket 5 to contact the pipeline. In this way, the wear of the pipeline during the downward pulling process can be effectively reduced.
[0031] As shown in Figure 4 The connecting bolt is fixedly installed between the limiting hoop 6 and the bracket 5. During actual stringing operation, the connecting bolt can be unscrewed according to the thickness of the pipeline, and the limiting hoop 6 can be replaced. Different heights of the limiting hoop 6 can limit different thicknesses of the pipeline, thereby meeting the diversified stringing needs.
[0032] As shown in Figure 1 and Figure 5 The upper surface of the L-shaped clamping block 7 is screw-mounted with a pressing bolt B71, and the pressing bolt B71 is mounted with a corresponding pad B72 between the horizontal frame 2. The pad B72 is U-shaped, and the pad B72 is clamped on the outer surface of the corresponding horizontal frame 2. The L-shaped clamping block 7 is locked and fixed by the pressing bolt B71 cooperating with the pad B72, and the bracket 5 is locked and fixed by the pressing bolt A51 cooperating with the pad A52. The operation and principle are the same.
[0033] Finally, in order to improve the stability of the assembly between the cross frame 2 and the threaded hanger 1, a square sleeve 3 is sleeved at both ends of the cross frame 2, the threaded hanger 1 penetrates through the corresponding square sleeve 3, and the inner side of the locking nut 4 is attached to the outer surface of the square sleeve 3. Because the upper and lower surfaces of the cross frame 2 are both provided with sliding grooves 21, the square sleeve 3 can be used to partially block the sliding grooves 21 of the cross frame 2. This can increase the contact area with the locking nut 4, effectively disperse the stress, thereby improving the stability of the cross frame 2 after assembly, reducing the risk of loosening, and ensuring the long-term stable operation of the entire support and hanger system, providing more reliable support for the safe bearing of the mechanical and electrical pipelines.
[0034] Working principle: during installation, the threaded hanger 1 is hoisted at the line through the installation block 11, then the installation position of the cross frame 2 is adjusted by changing the lifting and locking position of the locking nut 4 according to the height of the line, then the appropriate amount of bracket 5 is installed in the corresponding sliding groove 21 through the assembly opening 22, and after adjusting the appropriate lifting distance, the bracket 5 is fixed by using the abutting bolt A51 and the pad A52, then the pipeline is arranged on the bracket 5, and the limiting hoop 6 suitable for the pipeline is installed on the bracket 5, so that the pipeline can be lifted and limited. When the pipeline box is erected, the L-shaped clamping block 7 is assembled in the sliding groove 21 of the cross frame 2, the position is adjusted by sliding, the pipeline box is clamped, and then the abutting bolt B71 and the pad B72 are used for fixing. When the subsequent wiring is added, the bracket 5 or the L-shaped clamping block 7 can be added in the remaining sliding groove 21, so that the lifting and limiting of the newly laid pipeline can be conveniently and flexibly increased, the changing wiring demand can be met, the modification cost is reduced, and the expansibility and adaptability of the entire pipeline system are improved.
[0035] The utility model can select the corresponding point on the sliding groove 21 according to actual demand, change the spatial layout of the bracket 5 and the L-shaped clamping block 7, adapt to different installation scenes, and meet the pipeline layout demand of multiple devices, so that the repeated purchase and reservation of the device are reduced, and the resource allocation is further optimized. Figure 6 As shown in the figure, the scene in the embodiment is that the pipeline is above the pipeline box.
[0036] Compared with the mechanical and electrical pipeline support and hanger in the prior art, the adaptability is better, and when facing the pipeline modification task, the pipeline layout can be flexibly expanded by adding the bracket 5 based on the original pipeline support and hanger structure. This design not only greatly simplifies the modification process, but also significantly reduces the overall modification cost, and provides an efficient and economical solution for pipeline modification work.
[0037] Embodiment 2
[0038] As shown in the figure, the scene in the embodiment is that the pipeline is above the pipeline box. Figure 7As shown, the application scenario in this embodiment is that the pipeline is located below the junction box. Based on this scenario, construction is carried out with reference to the structure and connection relationships of each part of a building electromechanical pipeline support and hanger as described in Embodiment 1.
[0039] Example 3
[0040] like Figure 8 As shown, the application scenario in this embodiment is that the pipeline and the junction box are located in the same row, and there are other pipelines below them. Based on this scenario, construction is carried out with reference to the structure and connection relationships of each part of a building electromechanical pipeline support and hanger as described in Embodiment 1.
Claims
1. A support bracket for building electromechanical pipelines, comprising two threaded rods (1) with mounting blocks (11) at the top, characterized in that: It also includes two crossbars (2), each of which is installed between the two threaded rods (1) and can move up and down. The connection point is locked and fixed by a locking device. The upper and lower surfaces of the cross frame (2) are provided with sliding grooves (21). Multiple adjustable brackets (5) are installed in the sliding grooves (21) of the upper cross frame (2). Limiting hoops (6) are fixedly installed on the upper surface of each bracket (5). Two adjustable L-shaped clamps (7) are installed in the sliding grooves (21) of the lower cross frame (2).
2. The building electromechanical pipeline support and hanger according to claim 1, characterized in that: The locking component includes four locking nuts (4) installed on the outer surface of the threaded rod (1), and the two corresponding locking nuts (4) cooperate to lock the connection between the cross frame (2) and the threaded rod (1).
3. The building electromechanical pipeline support and hanger according to claim 1, characterized in that: Each of the slide grooves (21) is provided with an assembly opening (22), the size of which is adapted to the size of the bracket (5) and the L-shaped clamp (7); each of the brackets (5) is screwed with a clamping bolt A (51), and a pad A (52) is installed between the clamping bolt A (51) and the corresponding cross frame (2). The pad A (52) is U-shaped and is snapped onto the outer surface of the corresponding cross frame (2).
4. A support and hanger for building electromechanical pipelines according to claim 3, characterized in that: Two adapter blocks (53) are symmetrically fixedly installed on the front surface of the bracket (5). An inner rotor bearing is embedded in the outer surface of the two adapter blocks (53). A miniature rubber roller (54) is installed between the two inner rotor bearings. The top of the miniature rubber roller (54) is flush with the upper surface of the bracket (5).
5. A support and hanger for building electromechanical pipelines according to claim 1, characterized in that: The limiting clamp (6) and the bracket (5) are fixedly installed with connecting bolts.
6. A support and hanger for building electromechanical pipelines according to claim 1, characterized in that: The upper surface of each L-shaped clamp (7) is screwed with a clamping bolt B (71). A pad B (72) is installed between the clamping bolt B (71) and the corresponding cross frame (2). The pad B (72) is U-shaped and is snapped onto the outer surface of the corresponding cross frame (2).
7. A support and hanger for building electromechanical pipelines according to claim 1, characterized in that: Both ends of the cross frame (2) are fitted with square sleeves (3), the threaded rod (1) passes through the corresponding square sleeve (3), and the inner end of the locking nut (4) is in contact with the outer surface of the square sleeve (3).