Electromechanical pipeline self-adapting adjustment support

CN224694080UActive Publication Date: 2026-08-28中国雄安集团基础建设有限公司
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Patent Information

Application Number
CN202522293334.9
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-10-29
Publication Date
2026-08-28
Estimated Expiration
2035-10-29

AI Technical Summary

Technical Problem

这类支架多具有刚性约束特征,当管线受外界因素,或因施工预埋偏差、后期荷载变化产生位置偏移时,支架难以同步适配,易导致管线与支架连接处应力集中,长期使用可能引发焊缝开裂、管线变形甚至接口泄漏等隐患

Benefits of technology

[0013]After adopting the above technical solution, the beneficial effects of this utility model are as follows: 1. By setting up a hanger assembly, a connecting assembly, and a support assembly, the lower end of the hanger assembly is connected to the upper surface of the support assembly through the connecting assembly. The support assembly is provided in two sets, and two sets of pipe fixing assemblies are symmetrically installed on the lower surface of the two sets of support assemblies. In use, through the cooperation of the hanger assembly and the connecting assembly, the overall height and horizontal position of the support can be flexibly adjusted, easily adapting to the installation requirements of different building spaces, reducing the construction difficulty caused by on-site installation deviations. The pipe fixing assemblies symmetrically set on the lower side of the two sets of support assemblies can form a stable and symmetrical clamping and fixing of single or multiple pipes, avoiding pipes from shifting or shaking due to unbalanced fixing. At the same time, it can also be compatible with the installation requirements of pipes of different diameters, improving the adaptability of the support to multiple types of pipes.

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Abstract

The utility model provides a kind of electromechanical pipeline self-adapting adjustment support, comprising: hanger assembly, connecting assembly, support assembly and pipeline fixing assembly, the lower end of hanger assembly is connected with the upper side surface of support assembly by connecting assembly, support assembly is provided with two groups, the lower side surface of two groups of support assembly is symmetrically equipped with two groups of pipeline fixing assembly, hanger assembly includes hanger one and hanger two, the lower end of hanger one is movably provided with hanger two, connecting assembly includes connecting piece one, hinged part and connecting piece two, connecting piece one and connecting piece two are hinged with hinged part, compared with prior art, the utility model has the beneficial effects as follows: by setting pipeline fixing assembly, when using, the spacing of each sliding member can be flexibly adjusted according to the actual diameter, quantity and arrangement requirement of pipeline, without replacing different specifications of fixing assembly, a variety of pipe diameter pipelines can be adapted, the compatibility of support to different pipeline installation scenarios is greatly improved.
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Description

Technical Field

[0001] This utility model belongs to the field of support equipment, and specifically relates to an adaptive adjustment support for electromechanical pipelines. Background Technology

[0002] Electromechanical pipeline supports are structural components used to support and fix electromechanical pipelines (such as water pipes, cable trays, air ducts, gas pipes, etc.) in buildings or industrial settings. Their core function is to ensure that pipelines are arranged according to the designed path and operate stably. Currently, electromechanical pipeline supports have limitations in structural adjustment flexibility, making them prone to a series of problems due to dynamic changes in the pipelines. These supports often have rigid constraint characteristics. When pipelines are affected by external factors, or when their position shifts due to construction pre-embedding deviations or subsequent load changes, the supports cannot adapt synchronously. This can easily lead to stress concentration at the connection between the pipeline and the support, potentially causing weld cracking, pipeline deformation, or even interface leaks with long-term use.

[0003] Conventional solutions often involve pre-installed expansion joints, inclined installation of hangers, or on-site cutting and adjustment of support dimensions. Pre-installed expansion joints rely on experience to estimate displacement, and temperature fluctuations in actual working conditions often lead to insufficient or excessive allowances, still posing a risk of stress accumulation. Inclined installation of hangers can only accommodate thermal displacement in a fixed direction and cannot handle multi-dimensional pipeline offsets. On-site cutting and repair can compensate for installation deviations, but it depends on the precision of manual operation, which is prone to dimensional errors and requires interruption of construction for re-welding, reducing efficiency and potentially compromising the overall load-bearing capacity of the support. If pipeline specifications are adjusted later, the original support often needs to be replaced entirely, resulting in high maintenance costs. Therefore, a new structure is needed to solve the above technical problems. Utility Model Content

[0004] In view of the shortcomings of the existing technology, the purpose of this utility model is to provide an adaptive adjustment bracket for electromechanical pipelines, so as to solve the problems mentioned in the background technology.

[0005] This utility model is achieved through the following technical solution: an adaptive adjustment bracket for electromechanical pipelines, comprising: a hanger assembly, a connecting assembly, a support assembly, and a pipeline fixing assembly. The lower end of the hanger assembly is connected to the upper surface of the support assembly through the connecting assembly. The support assembly is provided in two sets, and two sets of pipeline fixing assemblies are symmetrically installed on the lower surface of the two sets of support assemblies. The hanger assembly includes a hanger one and a hanger two, and the lower end of the hanger one is movably provided with the hanger two. The connecting assembly includes a connector one, a hinge, and a connector two. The connector one and the connector two are hinged together by a hinge. The pipeline fixing assembly includes a fixing plate and a sliding member. Multiple sliding members are slidably installed evenly on the lower surface of the fixing plate.

[0006] In a preferred embodiment, a lifting plate is installed at the upper end of the first hanger, the diameter of the first hanger is larger than the diameter of the second hanger, a strip-shaped opening is provided on the front surface of the first hanger, a limiting plate is installed at the opening on the front surface of the first hanger, and the second hanger is fixed inside the lower end of the first hanger by the limiting plate.

[0007] In a preferred embodiment, a connector is installed at one end of the second hanger, the connector is connected to the upper surface of the first connector, both the first and second connectors are U-shaped, a hinge is installed inside the end of the first connector away from the connector, and the second connector is installed on the lower outer surface of the hinge.

[0008] In a preferred embodiment, the first connector and the second connector are arranged symmetrically in a mirror-image offset manner. The outer surface of the second connector is provided with an arc-shaped through groove for adjusting the hinge angle. The second connector is fixed to the outer surface of the hinge by the arc-shaped through groove and the fixing bolt.

[0009] In a preferred embodiment, the bracket assembly includes a bracket body and a sliding bracket. Two bracket bodies are symmetrically mounted on the lower surface of the connector two. A strip-shaped opening two is opened on the side surface of the bracket body away from the connector two. The two bracket bodies have the same structure.

[0010] In a preferred embodiment, a sliding bracket is slidably mounted at each end of the two bracket bodies, and four sliding brackets are provided. The four sliding brackets have the same structure, and an mounting plate is integrally formed at the end of the sliding bracket away from the bracket body.

[0011] In a preferred embodiment, the two sliding brackets on the left and the two sliding brackets on the right are mounted with a fixing plate at the end away from the bracket body via a mounting plate. The hanger assembly, connecting assembly and bracket assembly are in an inverted T-shaped structure. The surface of the fixing plate is evenly provided with multiple fixing holes.

[0012] In a preferred embodiment, the fixing plate is connected to the mounting plate through fixing holes and fixing bolts. The sliding component includes an adaptive slider, a fixing ring, and a fixing rod. The adaptive slider is slidably mounted on the lower surface of the fixing plate. A fixing ring is welded to the surface of the adaptive slider away from the fixing plate. A fixing rod is threaded through the surface of the fixing ring away from the adaptive slider.

[0013] After adopting the above technical solution, the beneficial effects of this utility model are as follows: 1. By setting up a hanger assembly, a connecting assembly, and a support assembly, the lower end of the hanger assembly is connected to the upper surface of the support assembly through the connecting assembly. The support assembly is provided in two sets, and two sets of pipe fixing assemblies are symmetrically installed on the lower surface of the two sets of support assemblies. In use, through the cooperation of the hanger assembly and the connecting assembly, the overall height and horizontal position of the support can be flexibly adjusted, easily adapting to the installation requirements of different building spaces, reducing the construction difficulty caused by on-site installation deviations. The pipe fixing assemblies symmetrically set on the lower side of the two sets of support assemblies can form a stable and symmetrical clamping and fixing of single or multiple pipes, avoiding pipes from shifting or shaking due to unbalanced fixing. At the same time, it can also be compatible with the installation requirements of pipes of different diameters, improving the adaptability of the support to multiple types of pipes.

[0014] 2. By setting up a pipeline fixing component, which includes a fixing plate and sliding parts, multiple sliding parts are evenly slidably installed on the lower surface of the fixing plate. During use, by evenly sliding multiple sliding parts on the lower side of the fixing plate, the spacing of each sliding part can be flexibly adjusted according to the actual diameter, quantity and layout requirements of the pipeline. It can adapt to pipelines of various diameters without replacing fixing components of different specifications, which greatly improves the compatibility of the bracket with different pipeline installation scenarios. At the same time, the evenly distributed sliding parts can form multi-point and balanced clamping and fixing of the pipeline, avoiding deformation or displacement of the pipeline due to uneven local stress, and enhancing the stability of pipeline fixing. Attached Figure Description

[0015] To more clearly illustrate the technical solutions in the embodiments of this utility model or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0016] Figure 1 This is a schematic diagram of the overall structure of an adaptive adjustment bracket for electromechanical pipelines according to this utility model.

[0017] Figure 2 This is a schematic diagram of the hanger assembly, connecting assembly, and support assembly of an adaptive adjustment bracket for electromechanical pipelines according to this utility model.

[0018] Figure 3 This is a schematic diagram of a pipeline fixing component for an electromechanical pipeline adaptive adjustment bracket according to the present invention.

[0019] In the diagram, 100-Hanger 1, 101-Square Opening 1, 110-Limiting Plate, 120-Lifting Plate, 130-Hanger 2, 140-Connector;

[0020] 200-Connector 1, 210-Hinge, 220-Connector 2, 221-Arc-shaped through groove;

[0021] 300-Bracket body, 301-Strip opening two, 310-Sliding bracket, 320-Mounting plate, 330-;

[0022] 400-Pipeline fixing assembly, 401-Fixing hole, 410-Fixing plate, 420-Adaptive slider, 430-Fixing ring, 440-Fixing rod. Detailed Implementation

[0023] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.

[0024] Please see Figures 1 to 3 As the first embodiment of this utility model: an electromechanical pipeline adaptive adjustment bracket, including: a hanger assembly, a connecting assembly, a bracket assembly and a pipeline fixing assembly 400. The lower end of the hanger assembly is connected to the upper surface of the bracket assembly through the connecting assembly. The bracket assembly is provided in two sets. Two sets of pipeline fixing assemblies are symmetrically installed on the lower surface of the two sets of bracket assemblies. The hanger assembly includes a first hanger 100 and a second hanger 130. The lower end of the first hanger 100 is movably provided with the second hanger 130. The connecting assembly includes a first connector 200, a hinge 210 and a second connector 220. The first connector 200 and the second connector 220 are hinged together by the hinge 210. The pipeline fixing assembly 400 includes a fixing plate 410 and a sliding member. Multiple sliding members are slidably installed evenly on the lower surface of the fixing plate 410.

[0025] A lifting plate 120 is installed at the upper end of the first hanger 100. The diameter of the first hanger 100 is larger than the diameter of the second hanger 130. A strip-shaped opening 101 is provided on the front surface of the first hanger 100. A limiting plate 110 is installed at the opening on the front surface of the first hanger 100. The second hanger 130 is fixed inside the lower end of the first hanger 100 by the limiting plate 110.

[0026] The end of the second hanger 130 is equipped with a connector 140, which is connected to the upper surface of the first connector 200. Both the first connector 200 and the second connector 220 are U-shaped structures. The end of the first connector 200 away from the connector 140 is equipped with a hinge 210, and the lower outer surface of the hinge 210 is equipped with the second connector 220.

[0027] Connector 1 200 and connector 220 are arranged symmetrically and offset from each other in a mirror image. Connector 220 has an arc-shaped through groove 221 on its outer surface for adjusting the hinge angle. Connector 220 is fixed to the outer surface of hinge 210 by the arc-shaped through groove 221 and fixing bolts.

[0028] The bracket assembly includes a bracket body 300 and a sliding bracket 310. Two bracket bodies 300 are symmetrically mounted on the lower surface of the connector 220. A strip-shaped opening 2 is opened on the side surface of the bracket body 300 away from the connector 220. The two bracket bodies 300 have the same structure.

[0029] Two sliding brackets 310 are respectively limited and slidably installed at both ends of the two bracket bodies 300. There are four sliding brackets 310, and the four sliding brackets 310 have the same structure. The end of the sliding bracket 310 away from the bracket body 300 is integrally formed with a mounting plate 320.

[0030] In use, the user first fixes the scaffold to the required installation position using the lifting plate 120 and expansion bolts. After installing the scaffolding assembly using the lifting plate 120, the user can adjust the length of the second scaffold 130 inside the first scaffold 100. After adjusting the distance of the second scaffold 130 as needed, the user can then fix it using the limiting plate 110 and the square opening on the front surface of the first scaffold 100. At this point, the lower end of the second scaffold 130 is connected to the two sets of bracket assemblies via the connector 140 and connecting components. When the connecting components are adjusted, the second connector 220 can change its installation angle through the arc-shaped through groove 221 on its outer surface. After adjusting the angle of the second connector 220, the user can then... The pipes are fixed with bolts. After fixing, the angle of connector 220 changes, and the bracket assembly on the lower surface of connector 220 also changes. This allows users to fix the pipes at different angles according to the actual situation. During use, the overall height and horizontal position of the bracket can be flexibly adjusted through the cooperation of the hanger assembly and the connecting assembly, easily adapting to the installation needs of different building spaces and reducing the construction difficulty caused by on-site installation deviations. The pipe fixing components 400 symmetrically set on the lower side of the two sets of bracket assemblies can form a stable and symmetrical clamping and fixing of single or multiple pipes, preventing the pipes from shifting or shaking due to unbalanced fixing. At the same time, it can also accommodate the installation needs of pipes with different diameters, improving the adaptability of the bracket to multiple types of pipes.

[0031] Please see Figures 1 to 3As a second embodiment of the present utility model: based on the description in the above embodiments, further, the two left sliding brackets 310 and the two right sliding brackets 310 away from the bracket body 300 are mounted with a fixing plate 410 through the mounting plate 320. The hanger assembly, the connecting assembly and the bracket assembly are in an inverted T-shaped structure. The surface of the fixing plate 410 is evenly provided with a plurality of fixing holes 401.

[0032] The fixing plate 410 is connected to the mounting plate 320 through the fixing hole 401 and the fixing bolt. The sliding component includes an adaptive slider 420, a fixing ring 430 and a fixing rod 440. The adaptive slider 420 is slidably installed on the lower surface of the fixing plate 410. The fixing ring 430 is welded to the side surface of the adaptive slider 420 away from the fixing plate 410. The fixing rod 440 is threaded through the side surface of the fixing ring 430 away from the adaptive slider 420.

[0033] In use, after adjusting the hanger assembly and bracket assembly according to the operation steps of the first embodiment, the two bracket assemblies can change their length by using the bracket body 300 with the sliding bracket 310 to increase the distance between the two sets of pipeline fixing assemblies 400. Users can adjust the bracket assemblies according to the actual situation to facilitate subsequent installation. After installing the pipeline fixing assembly 400, the user can first connect the fixing plate 410 to the mounting plate 320 of the sliding bracket 310 through the fixing hole 401. After installation, the lower surface of the fixing plate 410 is equipped with an adaptive slider 420. The user can then place the pipeline to be installed inside the fixing ring 430 and further fix it with the fixing rod 440. At this time, the pipeline is fixed below the fixing plate 410 by the sliding member and then fixed by the adaptive slider 420. The position can be adjusted for user convenience. During use, multiple sliding parts are evenly slidably installed on the underside of the fixed plate 410. The spacing of each sliding part can be flexibly adjusted according to the actual diameter, quantity, and layout requirements of the pipeline. It can adapt to pipelines of various diameters without replacing fixed components of different specifications, which greatly improves the compatibility of the bracket with different pipeline installation scenarios. At the same time, the evenly distributed sliding parts can form multi-point and balanced clamping and fixing of the pipeline, avoiding deformation or displacement of the pipeline due to uneven local stress, and enhancing the stability of pipeline fixing. (The adaptive slider 420 is the core mechanical component in the electromechanical pipeline adaptive adjustment device used to realize flexible adjustment and displacement compensation of pipeline position. It is existing technology, and the specific structure and working principle will not be described in detail here. It mainly adapts to the dynamic change requirements of the pipeline through sliding characteristics and reduces the stress problems caused by rigid constraints.)

[0034] The above description is only a preferred embodiment of the present utility model and is not intended to limit the present utility model. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present utility model should be included within the protection scope of the present utility model.

Claims

1. An adaptive adjustment bracket for electromechanical pipelines, comprising: A hanger assembly, a connecting assembly, a bracket assembly, and a pipeline fixing assembly (400), characterized in that the lower end of the hanger assembly is connected to the upper surface of the bracket assembly via the connecting assembly, and the bracket assembly is provided in two sets, with two sets of pipeline fixing assemblies symmetrically installed on the lower surface of the two sets of bracket assemblies; The hanger assembly includes a hanger one (100) and a hanger two (130). The hanger two (130) is movably disposed at the lower end of the hanger one (100). The connecting assembly includes a connector one (200), a hinge (210), and a connector two (220). The connector one (200) and the connector two (220) are hinged together by the hinge (210). The pipeline fixing assembly (400) includes a fixing plate (410) and a sliding member. Multiple sliding members are evenly slidably installed on the lower surface of the fixing plate (410).

2. The electromechanical pipeline adaptive adjustment bracket as described in claim 1, characterized in that: The upper end of the first hanger (100) is equipped with a lifting plate (120). The diameter of the first hanger (100) is larger than the diameter of the second hanger (130). The front surface of the first hanger (100) is provided with a strip-shaped opening (101). A limiting plate (110) is installed at the opening on the front surface of the first hanger (100). The second hanger (130) is fixed inside the lower end of the first hanger (100) by the limiting plate (110).

3. The electromechanical pipeline adaptive adjustment bracket as described in claim 2, characterized in that: The second hanger (130) is equipped with a connector (140) at one end. The connector (140) is connected to the upper surface of the first connector (200). Both the first connector (200) and the second connector (220) are U-shaped. The first connector (200) is equipped with a hinge (210) at the end away from the connector (140). The second connector (220) is installed on the lower outer surface of the hinge (210).

4. The electromechanical pipeline adaptive adjustment bracket as described in claim 3, characterized in that: The first connector (200) and the second connector (220) are arranged symmetrically and offset from each other. The outer surface of the second connector (220) is provided with an arc-shaped through groove (221) for adjusting the hinge angle. The second connector (220) is fixed to the outer surface of the hinge (210) by the arc-shaped through groove (221) and the fixing bolt.

5. The electromechanical pipeline adaptive adjustment bracket as described in claim 4, characterized in that: The bracket assembly includes a bracket body (300) and a sliding bracket (310). Two bracket bodies (300) are symmetrically installed on the lower surface of the connector (220). A strip-shaped opening (301) is provided on the side surface of the bracket body (300) away from the connector (220). The two bracket bodies (300) have the same structure.

6. The electromechanical pipeline adaptive adjustment bracket as described in claim 5, characterized in that: Each of the two bracket bodies (300) has a sliding bracket (310) that is slidably installed at both ends. There are four sliding brackets (310), and the four sliding brackets (310) have the same structure. The end of the sliding bracket (310) away from the bracket body (300) is integrally formed with a mounting plate (320).

7. The electromechanical pipeline adaptive adjustment bracket as described in claim 6, characterized in that: The two sliding brackets (310) on the left and the two sliding brackets (310) on the right are mounted with fixing plates (410) at the ends away from the bracket body (300) via mounting plates (320). The hanger assembly, connecting assembly and bracket assembly are in an inverted T-shaped structure. The surface of the fixing plate (410) is evenly provided with multiple fixing holes (401).

8. The electromechanical pipeline adaptive adjustment bracket as described in claim 7, characterized in that: The fixing plate (410) is connected to the mounting plate (320) through fixing holes (401) and fixing bolts. The sliding component includes an adaptive slider (420), a fixing ring (430) and a fixing rod (440). The adaptive slider (420) is slidably mounted on the lower surface of the fixing plate (410). The fixing ring (430) is welded to the side surface of the adaptive slider (420) away from the fixing plate (410). The fixing rod (440) is threaded through the side surface of the fixing ring (430) away from the adaptive slider (420).