Integrated Pipeline Support and Construction Method

By installing vertical and horizontal sections of the hanger rod at the bottom of the ceiling, and setting multiple fasteners on the horizontal section, the problem of repetitive erection and inflexible adjustment in pipeline construction in the existing technology is solved, realizing the rapid fixing and height adjustment of multiple pipelines, and improving construction efficiency and flexibility.

CN119435832BActive Publication Date: 2025-11-14CHINA FIRST METALLURGICAL GROUP
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Patent Information

Application Number
CN202411674627.5
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-11-21
Publication Date
2025-11-14
Estimated Expiration
2044-11-21

AI Technical Summary

Technical Problem

Existing technologies for pipeline construction suffer from problems such as repeated erection of supports and lack of flexibility in pipeline adjustments, resulting in low construction efficiency, high costs, and frequent communication conflicts among construction teams.

Method used

An integrated pipeline support system is adopted, which uses vertical and horizontal sections of a hanger installed at the bottom of the ceiling, and multiple first and second fixing components on the horizontal section. By utilizing a first width adjustment mechanism, a second width adjustment mechanism, and a height adjustment mechanism, it is possible to quickly fix and adjust pipelines of different sizes and heights.

Benefits of technology

It enables the simultaneous fixing of multiple pipelines of different sizes, saving construction costs, improving construction efficiency, enhancing construction flexibility, avoiding repeated erection of supports and pipeline adjustments, and reducing labor intensity.

✦ Generated by Eureka AI based on patent content.

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Abstract

This invention discloses an integrated pipeline support and its construction method. The integrated support includes a vertical section of a suspension rod, a horizontal section of a suspension rod, a first fixing member, and a second fixing member. The vertical section of the suspension rod is located at both ends of the horizontal section of the suspension rod. Several first and second fixing members are provided on the horizontal section of the suspension rod. Several pipelines are provided on the bottom of the ceiling panel. The first and second fixing members are connected to the pipelines. The first fixing member includes a first width adjustment mechanism, and the second fixing member includes a second width adjustment mechanism and a height adjustment mechanism. By setting multiple first and second fixing members on the horizontal section of the suspension rod, this invention can simultaneously fix multiple pipelines of different sizes in one installation of the integrated pipeline support. In case of collision during pipeline installation, it can quickly relocate the pipelines, avoiding the problem of repeatedly erecting supports and pipelines, saving construction costs, and improving construction efficiency and flexibility.
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Description

Technical Field

[0001] This invention belongs to the field of building auxiliary equipment installation technology, and more specifically, relates to an integrated pipeline support and construction method. Background Technology

[0002] In modern building construction, the layout of pipelines is a crucial aspect of ensuring the normal operation of buildings. These pipelines include, but are not limited to, water supply and drainage pipes, fire protection pipes, smoke exhaust pipes, cable trays, wire ducts, and various process pipelines, responsible for transporting energy, information, and resources. The installation of electromechanical pipelines requires supports and hangers, whose rods are fixed to the bottom of the floor slab to secure the pipelines. However, this installation method has some significant limitations. First, when pipelines with different functions conflict in the spatial layout, traditional supports and pipe adjustments are difficult, often requiring the removal of existing structures to avoid them. This is not only time-consuming and labor-intensive but also prone to communication conflicts between construction teams. Second, each construction team needs to independently erect supports and hangers when installing pipelines, a tedious and labor-intensive process that affects construction efficiency. Furthermore, frequent dismantling and reconstruction of supports and hangers increases construction costs and prolongs the project cycle.

[0003] The patent, numbered CN109099210A and titled "An Invention Patent for a Modular Integrated Pipeline Support," describes a system where main supports are arranged at certain intervals as needed, with auxiliary supports positioned between any two adjacent main supports. Multiple U-shaped rings can be installed on the main supports as needed to secure ordinary pipelines, and multiple rubber vibration-absorbing rings can be installed on the main supports via locking rings to secure pipelines that vibrate during use. The purpose of this design is to absorb pipeline vibration and improve the aesthetics and space utilization of the pipeline layout, but it does not improve the efficiency of the pipeline layout, and the supports cannot be adjusted according to the position of the pipelines.

[0004] The patent, numbered CN117200107A and titled "An Invention Patent for an Integrated Electromechanical Pipeline Installation Structure," involves prefabricating columns and load-bearing beams before installation. During installation, the spacing between adjacent columns is adjusted according to the actual size of the corridor and the location of the pipelines. Simultaneously, the position of the load-bearing beams can be adjusted based on the height of the pipelines, thus achieving integrated electromechanical support for the pipelines within the corridor. However, when adjusting the vertical installation position of the load-bearing beams, adjustment is limited to the positions of the holes on the fixing strips. Furthermore, the length of the load-bearing beams needs to be adjusted by pushing or pulling the moving rod into the sleeve, making telescopic adjustment inconvenient and inflexible.

[0005] The patent, with patent number CN111271514A and titled "Invention Patent on Electromechanical Integrated Support and Hanger and its Installation Method," involves setting up horizontal and vertical rods, fixing the horizontal rods to the vertical rods, and then placing the pipes on the horizontal rods for fixation. During pipe installation, the pipe clamps are bypassed around the pipes, allowing the fixing blocks to abut against the pipes. Subsequently, the end of the pipe clamps is fixed to the horizontal rods via a first fixing component, thus fixing the pipes to the horizontal rods and completing the pipe fixing. This fixing structure is complex, difficult to operate, and reduces construction efficiency. Summary of the Invention

[0006] To address the problems of repeated scaffolding erection and lack of flexibility in pipeline adjustment during existing integrated pipeline construction techniques, this invention provides an integrated pipeline support system and its construction method. The integrated pipeline support system utilizes vertical and horizontal sections of a suspension rod installed at the bottom of the ceiling. Multiple first and second fixing components are installed on the horizontal section of the suspension rod. By hoisting the integrated pipeline support system once, multiple pipelines of different sizes can be fixed simultaneously, saving construction costs and improving construction efficiency. Simultaneously, the second fixing component is equipped with a sleeve for vertical adjustment. In case of pipeline collisions during installation, the positions of the first and second fixing components can be adjusted directly without removing the support system, enabling rapid repositioning and fixing of reinstalled pipelines. This avoids the problems of repeated scaffolding and pipeline erection, saves construction costs, and improves construction flexibility.

[0007] To achieve the above objectives, according to a first aspect of the present invention, an integrated pipeline support is provided, comprising a vertical section of a hanger rod, a horizontal section of a hanger rod, a first fixing member, and a second fixing member. The vertical section of the hanger rod is vertically disposed at both ends of the horizontal section of the hanger rod. A plurality of the first and second fixing members are disposed on the horizontal section of the hanger rod.

[0008] The top of the vertical section of the hanger is fixedly connected to the bottom of the ceiling panel. Several pipelines are provided on the bottom of the ceiling panel. The first and second fixing members are connected to the pipelines.

[0009] The first fastener includes a first width adjustment mechanism, which is used to fix pipelines of different widths;

[0010] The second fastener includes a second width adjustment mechanism and a height adjustment mechanism. The second width adjustment mechanism is used to fix pipelines of different widths, and the height adjustment mechanism is used to fix pipelines of different heights.

[0011] When a pipeline is installed and a collision occurs, the pipeline position is directly adjusted, and the adjusted pipeline is re-fixed by adjusting the first width adjustment mechanism, the second width adjustment mechanism, and the height adjustment mechanism, thus avoiding the need to reinstall the fixing bracket after the pipeline is moved.

[0012] Preferably, the horizontal section of the boom is provided with a toothed groove and a nut, there are several nuts that mesh with the toothed groove, and the nuts are respectively connected to the first width adjustment mechanism and the second width adjustment mechanism.

[0013] Preferably, the first width adjustment mechanism includes a first connector, a second connector, a connecting nut, and a first bolt. The first connector and the second connector are L-shaped tubes. One end of the first connector is sleeved with the open end of the second connector. The other end of the first connector is connected to the first bolt through the connecting nut. The other end of the second connector is connected to the first bolt through the connecting nut. The first bolt is connected to the nut.

[0014] Preferably, the diameter of the first connector is larger than the diameter of the second connector, and the wall thickness of the first connector and the second connector is 1 mm.

[0015] Preferably, the diameter of the first connector is 1 cm and the diameter of the second connector is 0.8 cm.

[0016] Preferably, the second width adjustment mechanism includes a third connector, a fourth connector, and a second bolt. The third connector and the fourth connector are both "├" shaped rods. The side opening end of the third connector is sleeved with the side opening end of the fourth connector. The bottom of the third connector and the fourth connector are connected to the nut by the second bolt.

[0017] Preferably, the height adjustment mechanism includes a sleeve, and the bottom of the third and fourth connecting members is provided with threaded sections. The sleeve is connected to the threaded sections, and the height of the third and fourth connecting members can be adjusted by rotating the sleeve to connect the length of the threaded sections.

[0018] Preferably, the diameter of the third connector is larger than the diameter of the fourth connector, and the wall thickness of the third connector and the fourth connector is 1 mm.

[0019] Preferably, the first connector, the second connector, the third connector, and the fourth connector are made of lightweight, high-strength materials, including aluminum alloy, carbon fiber composite material, high-strength steel, and magnesium alloy.

[0020] To achieve the above objectives, according to a second aspect of the present invention, a method for constructing an integrated pipeline support is provided, which employs an integrated pipeline support as described in any of the preceding claims, characterized by comprising the following steps:

[0021] S1. Drill holes in the bottom of the ceiling panel to install the vertical section of the hanger rod, and install the horizontal section of the hanger rod at the bottom of the vertical section;

[0022] S2. Lay the pipeline according to actual needs, and install the corresponding number of nuts on the toothed groove of the horizontal section of the hanger according to the number of pipelines.

[0023] S3. When there are no height requirements for pipelines during construction and all pipelines need to be on the same horizontal line, install the first fastener on the nut.

[0024] S4. Based on the width of the pipeline, the first connector and the second connector are fitted together to fix the pipeline, and then the first bolt and nut are connected to prevent the pipeline from moving in the horizontal direction.

[0025] S5. When there are requirements for the height of the pipeline during construction, such as requiring all pipelines to be on the same horizontal line or needing to adjust the height of the pipeline, install a second fastener on the nut.

[0026] S6. Based on the width of the pipeline, the third and fourth connectors are fitted together to secure the pipeline. Then, the second bolt and nut are connected to prevent the pipeline from moving horizontally. The connection length between the rotating sleeve and the threaded section is adjusted to prevent the pipeline from moving vertically.

[0027] In summary, compared with the prior art, the above-described technical solutions conceived by this invention can achieve the following beneficial effects:

[0028] 1. The integrated pipeline support and construction method of the present invention, by installing a vertical section and a horizontal section of a hanger at the bottom of the ceiling, and setting multiple first and second fixing components on the horizontal section of the hanger, can simultaneously fix multiple pipelines of different sizes by hoisting the integrated pipeline support once, thereby saving construction costs and improving construction efficiency.

[0029] 2. By setting up a first fixing member and a second fixing member, with a sleeve on the second fixing member, vertical adjustment can be achieved. When a collision occurs during pipeline installation, the positions of the first and second fixing members can be adjusted directly without removing the support, enabling rapid relocation. This allows for the fixing of reinstalled pipelines, avoiding the problem of repeatedly erecting supports and pipelines, saving construction costs, and improving construction flexibility. Attached Figure Description

[0030] Figure 1 This is a schematic diagram of the integrated pipeline support connection in Embodiment 1 of the present invention.

[0031] Figure 2 This is an exploded view of the first fastener structure of the present invention.

[0032] Figure 3 This is an exploded view of the second fastener structure of the present invention.

[0033] Figure 4This is an enlarged view of the vertical and horizontal sections of the boom in Embodiment 1 of the present invention.

[0034] Figure 5 This is a flowchart of the construction method for the integrated pipeline support of the present invention.

[0035] In the diagram: 1. Vertical section of the boom; 2. Horizontal section of the boom; 3. First fixing component; 4. Second fixing component; 5. Pipeline; 6. Gear groove; 7. Nut; 8. First connecting component; 9. Second connecting component; 10. Connecting nut; 11. First bolt; 12. Second bolt; 13. Third connecting component; 14. Fourth connecting component; 15. Sleeve; 16. Threaded section; 17. Third bolt; 18. Bolt hole. Detailed Implementation

[0036] To make the objectives, technical solutions, and advantages of this invention clearer, the invention will be further described in detail below with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are merely illustrative and not intended to limit the invention. Furthermore, the technical features involved in the various embodiments of this invention described below can be combined with each other as long as they do not conflict with each other.

[0037] Example 1

[0038] Depend on Figures 1 to 4 As shown, the integrated pipeline support of the present invention includes a vertical section 1 of a suspension rod, a horizontal section 2 of a suspension rod, a first fixing member 3, and a second fixing member 4. The vertical section 1 is located at both ends of the horizontal section 2 of the suspension rod. The top of the vertical section 1 is fixedly connected to the bottom of the ceiling panel. Bolt holes 18 are provided at the bottom of the vertical section 1 and at both ends of the horizontal section 2. The vertical section 1 and the horizontal section 2 of the suspension rod are fixedly connected by a third bolt 17 passing through the bolt holes. A toothed groove 6 is formed on the horizontal section 2 of the suspension rod, and multiple nuts 7 are provided on the toothed groove 6. The nuts 7 mesh with the toothed groove 6. There are multiple first fixing members 3 and second fixing members 4, which are connected to the toothed groove 6 through the nuts 7.

[0039] The first fixing member 3 includes a first width adjustment mechanism, which includes a first connector 8, a second connector 9, a connecting nut 10, and a first bolt 11. The first connector 8 and the second connector 9 are L-shaped round tubes. One end of the first connector 8 is open and sleeved with the open end of the second connector 9. The other end of the first connector 8 is connected to the first bolt 11 through the connecting nut 10. The other end of the second connector 9 is connected to the first bolt 11 through the connecting nut 10. The first bolt 11 is connected to the nut 7. The diameter of the first connector 8 is 1 cm, the diameter of the second connector 9 is 0.8 cm, and the wall thickness of the first connector 8 and the second connector 9 is 1 mm.

[0040] The working principle of the first fixing member 3 is as follows: by controlling the depth of the first connecting member 8 and the second connecting member 9, the width of the first fixing member 3 is controlled, thereby fixing pipelines 5 of different sizes. The bottoms of the first connecting member 8 and the second connecting member 9 are respectively connected to the nut 7 by the first bolt 11. The first bolt 11 passes through the toothed groove 6 and the connecting nut 10 from bottom to top, and is fixed in the toothed groove 6 by tightening the first bolt 11, thereby preventing the first connecting member 8 and the second connecting member 9 from sliding and misaligning in the horizontal direction, and further fixing the pipeline 5.

[0041] The second fixing component 4 includes a second width adjustment mechanism and a height adjustment mechanism. The second width adjustment mechanism includes a third connecting component 13, a fourth connecting component 14, and a second bolt 12. Both the third connecting component 13 and the fourth connecting component 14 are "├" shaped rods. The side opening end of the third connecting component 13 is sleeved with the side opening end of the fourth connecting component 14. The bottom of the third connecting component 13 and the fourth connecting component 14 is connected to the nut 7 via the second bolt 12. The height adjustment mechanism includes a sleeve 15. The bottom surface of the third connecting component 13 and the fourth connecting component 14 is provided with a threaded section 16. The sleeve 15 is connected to the threaded section 16. The bottom of the sleeve 15 is also engaged with the toothed groove 6. The diameter of the third connecting component 13 is 1 cm, the diameter of the fourth connecting component 14 is 0.8 cm, and the wall thickness of both the third connecting component 13 and the fourth connecting component 14 is 1 mm.

[0042] The working principle of the second fixing member 4 is as follows: by controlling the depth of the side opening end of the third connecting member 13 and the fourth connecting member 14, the width of the second fixing member 4 is controlled, thereby fixing pipelines 5 of different sizes. The bottom of the third connecting member 13 and the fourth connecting member 14 are respectively connected to the nut 7 by the second bolt 12. The second bolt 12 passes through the toothed groove 6 and is connected to the internal thread of the bottom of the third connecting member 13 and the fourth connecting member 14. By tightening the second bolt 12, it is fixed in the toothed groove 6, thereby preventing the third connecting member 13 and the fourth connecting member 14 from sliding and misaligning in the horizontal direction, and further fixing the pipeline 5.

[0043] When the height of pipeline 5 needs to be adjusted, rotate the connection length between sleeve 15 and threaded section 16, and let the second bolt 12 pass through the toothed groove 6 and sleeve 15 from bottom to top. The height adjustment and fixation of the second fixing part 4 are completed by tightening the second bolt 12.

[0044] The toothed groove 6 is composed of multiple horizontal grooves, and its shape is similar to that of a gear. The size of each groove is the same as that of the nut 7 and the sleeve 15. The groove can just hold a nut 7 or a sleeve 15. When it is necessary to move left or right, the nut 7 or the sleeve 15 needs to be picked up and placed into the groove corresponding to the adjusted position, and then tightened to fix the first fixing member 3 and the second fixing member 4.

[0045] The first connector 8, the second connector 9, the third connector 13, and the fourth connector 14 are made of lightweight, high-strength materials, including aluminum alloy, carbon fiber composite material, high-strength steel, and magnesium alloy, which can reduce the overall structural weight and improve construction efficiency.

[0046] Depend on Figure 5 As shown, the present invention provides a method for constructing an integrated pipeline support system, which utilizes the aforementioned integrated pipeline support system and specifically includes the following steps:

[0047] S1. According to the actual situation of the construction site, drill holes in the bottom of the ceiling panel to install the vertical section 1 of the hanger rod, and install the horizontal section 2 of the hanger rod at the bottom of the vertical section 1 of the hanger rod. Specifically, the third bolt 17 passes through the bolt hole 18 to fix the vertical section 1 of the hanger rod and the horizontal section 2 of the hanger rod.

[0048] S2. Lay pipeline 5 according to actual construction needs, and install the corresponding number of nuts 7 on the toothed groove 6 of the horizontal section 2 of the hanger according to the number of pipelines 5.

[0049] S3. When there are no requirements on the height of pipeline 5 during construction and all pipelines need to be on the same horizontal line, install the first fixing part 3 on the nut 7.

[0050] S4. Based on the width of the pipeline 5, the first connector 8 and the second connector 9 are fitted together to fix the pipeline 5, and then the first bolt 11 and nut 7 are connected to prevent the pipeline 5 from moving in the horizontal direction.

[0051] S5. When there are requirements for the height of pipeline 5 during construction, such as all pipelines needing to be on the same horizontal line or the height of pipeline 5 needing to be adjusted, for example: fire pipes and water and electricity pipes are on the same plane, but cable trays are higher, in such cases, the height of pipeline 5 needs to be adjusted, then the second fixing part 4 is installed on nut 7.

[0052] S6. Based on the width of pipeline 5, fit the third connector 13 and the fourth connector 14 together to secure pipeline 5. Then connect the second bolt 12 and the nut 7 to prevent pipeline 5 from moving horizontally. Adjust the connection length between the rotating sleeve 15 and the threaded section 16 to prevent pipeline 5 from moving vertically. Simultaneously adjust...

[0053] During installation, the number of first fixing parts 3 and second fixing parts 4 depends on the specific number of pipelines. On the same horizontal section 2 of the hanger, only the first fixing part 3 or the second fixing part 4 may be installed, or the first fixing part 3 and the second fixing part 4 may be connected alternately, depending on the actual construction situation.

[0054] Example 2

[0055] In this embodiment, the structure and construction method of the integrated support are the same as those in Embodiment 1. On this basis, multiple adjustment holes are evenly opened in the vertical direction on the vertical section 1 of the suspension rod, which facilitates connection with the horizontal section 2 of the suspension rod and further adjusts the height. There is no need to process the required length of the vertical section 1 of the suspension rod according to the construction situation, which is convenient for mass production.

[0056] A locking device is also provided on the horizontal section 2 of the boom. The locking device engages with the toothed groove 6 via a nut 7, ensuring that the locking device is fixed in the designated position on the horizontal section 2 of the boom. The locking device is located between or next to the first fixing member 3 and the second fixing member 4 to provide additional fixing points when needed. The locking device is connected to the connecting nut 10 or the second bolt 12 of the first fixing member 3 and the second fixing member 4 by other bolts to ensure the stability between the locking device and the fixing member. The locking device includes a locking body, a movable locking baffle, a spring, and an adjusting mechanism. The locking body is fixed to the horizontal section 2 of the boom and aligned with the toothed groove 6 for fixing using the nut 7 on the toothed groove 6. The locking baffle is moved to the locking position by spring force or manual operation, contacting and fixing with the pipeline 5. The spring is located between the locking body and the locking baffle. The adjusting mechanism is an adjusting bolt, which is rotated to adjust the position of the locking baffle.

[0057] The locking device works as follows: its position is adjusted by moving the nut 7 along the toothed groove 6 to accommodate pipelines 5 in different positions. In the locked state, the locking baffle moves to a position engaging with the locking body via manual operation or spring force, securing the pipeline 5. In the released state, the locking baffle moves away from the locking body by manually rotating the adjusting bolt, allowing the pipeline 5 to be moved or replaced. When the locking position needs adjustment, the nut 7 is removed from the current toothed groove 6 and placed into the corresponding toothed groove 6 at the new position, then the nut 7 is tightened to secure the locking device. Adding a locking device to the horizontal section 2 of the hanger provides additional fixing points, enhancing the stability of the pipeline 5 and allowing for quick adjustment or replacement of the pipeline without disassembling the entire support system, thus improving the flexibility and safety of the pipeline support system.

[0058] The present invention relates to an integrated pipeline support bracket and its construction method. The integrated pipeline support bracket is constructed by installing vertical and horizontal sections of a suspension rod at the bottom of the ceiling. Multiple first and second fixing components are installed on the horizontal section of the suspension rod. By hoisting the integrated pipeline support bracket once, multiple pipelines of different sizes can be fixed simultaneously, saving construction costs and improving construction efficiency. Simultaneously, the second fixing component is equipped with a sleeve to fix the pipeline in both horizontal and vertical directions. In the event of pipeline collision during installation, the positions of the first and second fixing components can be adjusted directly without removing the support bracket, enabling rapid repositioning and fixing of reinstalled pipelines. This avoids the problem of repeatedly erecting supports and pipelines, saving construction costs and improving construction flexibility.

[0059] Those skilled in the art will readily understand that the above description is merely a preferred embodiment of the present invention and is not intended to limit the present invention. Any modifications, equivalent substitutions, and improvements made within the spirit and principles of the present invention should be included within the scope of protection of the present invention.

Claims

1. An integrated pipeline support, characterized in that, The system includes a vertical section (1) of the boom, a horizontal section (2) of the boom, a first fixing member (3), and a second fixing member (4). The vertical section (1) of the boom is vertically disposed at both ends of the horizontal section (2) of the boom. Several first fixing members (3) and second fixing members (4) are disposed on the horizontal section (2) of the boom. The top of the vertical section (1) of the hanging rod is fixedly connected to the bottom of the ceiling panel. Several pipelines (5) are provided on the bottom of the ceiling panel. The first fixing member (3) and the second fixing member (4) are connected to the pipelines. The first fastener (3) includes a first width adjustment mechanism, which is used to fix pipelines (5) of different widths. The second fastener (4) includes a second width adjustment mechanism and a height adjustment mechanism. The second width adjustment mechanism is used to fix pipelines (5) of different widths, and the height adjustment mechanism is used to fix pipelines (5) of different heights. When the pipeline (5) is installed and a collision occurs, the position of the pipeline (5) is directly adjusted, and the adjusted pipeline (5) is re-fixed by adjusting the first width adjustment mechanism, the second width adjustment mechanism and the height adjustment mechanism, so as to avoid the need to reinstall the fixed bracket after the pipeline (5) moves. The horizontal section (2) of the boom is provided with a toothed groove (6) and a nut (7). There are several nuts (7) that mesh with the toothed groove (6). The nuts (7) are respectively connected to the first width adjustment mechanism and the second width adjustment mechanism. The first width adjustment mechanism includes a first connector (8), a second connector (9), a connecting nut (10), and a first bolt (11). The first connector (8) and the second connector (9) are L-shaped tubes. One end of the first connector (8) is sleeved with the open end of the second connector (9). The other end of the first connector (8) is connected to the first bolt (11) through the connecting nut (10). The other end of the second connector (9) is connected to the first bolt (11) through the connecting nut (10). The first bolt (11) is connected to the nut (7). The second width adjustment mechanism includes a third connector (13), a fourth connector (14), and a second bolt (12). The third connector (13) and the fourth connector (14) are both "├" shaped rods. The side opening end of the third connector (13) is sleeved with the side opening end of the fourth connector (14). The bottom of the third connector (13) and the fourth connector (14) are connected to the nut (7) through the second bolt (12). The height adjustment mechanism includes a sleeve (15), and the bottom of the third connector (13) and the fourth connector (14) are provided with threaded sections (16). The sleeve (15) is connected to the threaded section (16). By rotating the sleeve (15) and the threaded section (16) to adjust the connection length, the height of the third connector (13) and the fourth connector (14) can be adjusted. The toothed groove (6) is composed of multiple horizontal grooves. The size of each groove is the same as that of the nut (7). The groove can just hold a nut (7). When it needs to be moved left or right, the nut (7) needs to be picked up and placed into the groove corresponding to the adjusted position, and then tightened to fix the first fixing member (3) and the second fixing member (4).

2. The integrated pipeline support according to claim 1, characterized in that, The diameter of the first connector (8) is greater than the diameter of the second connector (9), and the wall thickness of the first connector (8) and the second connector (9) is 1 mm.

3. The integrated pipeline support according to claim 1, characterized in that, The diameter of the first connector (8) is 1 cm, and the diameter of the second connector (9) is 0.8 cm.

4. The integrated pipeline support according to claim 1, characterized in that, The diameter of the third connector (13) is greater than the diameter of the fourth connector (14), and the wall thickness of the third connector (13) and the fourth connector (14) is 1 mm.

5. The integrated pipeline support according to claim 1, characterized in that, The first connector (8), the second connector (9), the third connector (13) and the fourth connector (14) are made of lightweight and high-strength materials, including aluminum alloy, carbon fiber composite material, high-strength steel and magnesium alloy.

6. A method for constructing an integrated pipeline support system, comprising using the integrated pipeline support system described in any one of claims 1-5, characterized in that, Specifically, the following steps are included: S1. Drill holes in the bottom of the ceiling panel to install the vertical section (1) of the hanger rod, and install the horizontal section (2) of the hanger rod at the bottom of the vertical section (1). S2. Lay the pipeline (5) according to actual needs, and install the corresponding number of nuts (7) on the toothed groove (6) of the horizontal section (2) of the hanger according to the number of pipelines (5); S3. When there are no requirements on the height of the pipeline (5) during construction, and all pipelines must be on the same horizontal line, install the first fastener (3) on the nut (7). S4. According to the width of the pipeline (5), the first connector (8) and the second connector (9) are fitted together and the pipeline (5) is fixed. Then the first bolt (11) and the nut (7) are connected to prevent the pipeline (5) from moving in the horizontal direction. S5. When there are requirements for the height of the pipeline (5) during construction, all pipelines need to be on the same horizontal line or the height of the pipeline (5) needs to be adjusted, install the second fastener (4) on the nut (7). S6. According to the width of the pipeline (5), the third connector (13) and the fourth connector (14) are fitted together and fixed to the pipeline (5). Then the second bolt (12) and nut (7) are connected to prevent the pipeline (5) from moving in the horizontal direction. The connection length between the rotating sleeve (15) and the threaded section (16) is adjusted to prevent the pipeline (5) from moving in the vertical direction.

Citation Information

Patent Citations

  • Modular comprehensive pipeline support

    CN109099210A

  • Electromechanical comprehensive support hanger and installation method thereof

    CN111271514A

  • Electromechanical integrated pipeline mounting structure

    CN117200107A

  • Electromechanical pipeline mounting hanging bracket convenient to adjust

    CN210106760U

  • Telescopic support hanger

    CN215635430U