Pipe bracket convenient to install, stable and firm for pipeline

By employing a dual-locking connection mechanism and a three-layer composite pipe clamp structure, the problems of cumbersome installation, easy loosening, and poor adaptability of existing pipe supports are solved, enabling rapid installation, stable fixation, and vibration buffering of pipelines, thereby extending their service life.

CN121654809APending Publication Date: 2026-03-13ANHUI HONGAO AUTO PARTS CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2026-01-29
Publication Date
2026-03-13

AI Technical Summary

Technical Problem

Existing pipe supports are cumbersome to install, prone to loosening, lack precise positioning, and cannot balance convenience and stability. They also cannot absorb vibrations or adapt to the thermal expansion and contraction of pipes, leading to failure of connecting parts, increasing installation difficulty, and having a short service life.

Method used

It adopts a dual locking connection mechanism, combining mechanical engagement and elastic limiting, and uses a magnetic pre-fixing structure. The design features a three-layer composite pipe clamp structure, including an inner reinforcing rib, a middle honeycomb cavity, and an outer sheath. Through the mechanical engagement of the rotating clamp plate and connecting block and the driving of the fixing spring, it achieves rapid installation and stabilization. The middle honeycomb cavity provides elastic deformation capability, and the outer sheath provides a buffering effect.

Benefits of technology

It enables rapid installation and secure fixing of pipelines, preventing loosening, absorbing vibration energy, adapting to thermal expansion and contraction, improving installation efficiency and service life, and reducing operational difficulty.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention discloses a pipe bracket convenient to install, stable and firm for a pipeline, and particularly relates to the technical field of pipe brackets. The pipe bracket comprises a lower pipe clamp, an upper pipe clamp, an iron clamp and a connecting mechanism; the lower pipe clamp and the upper pipe clamp are symmetrically arranged, the iron clamps are arranged on the outer sides of the lower pipe clamp and the upper pipe clamp, protruding strips are arranged on the outer side faces of the iron clamps, threaded holes are formed in the side portions of the iron clamps, and bolts penetrate through the threaded holes and are fastened through fixing nuts. Through a double-locking connecting mechanism, a traditional single fastening mode is abandoned, vibration and loosening are prevented through double fixing of mechanical clamping and elastic pre-tightening, an automatic clamping and convenient unlocking structure is matched, and double positioning of a carbon steel positioning rod and magnetic attraction is adopted, so that the problem of high-altitude and narrow space installation and positioning is solved, the assembly precision and efficiency are improved, and the labor intensity of workers is reduced. The three-layer composite pipe clamp and the iron clamp protruding strips achieve the synergistic effect, the limitation of buffering and stabilizing unbalance is broken through, shock resistance, adaptation to thermal expansion and cold contraction and continuous stabilizing integration are achieved, and the service life under the complex working condition is greatly prolonged.
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Description

Technical Field

[0001] This invention relates to the field of pipe support technology, and more specifically, to a pipe support for pipelines that is easy to install, stable and reliable. Background Technology

[0002] Pipe supports, as core supporting components to ensure the stable operation of various industrial pipelines, are widely used in petrochemical, power, and municipal engineering fields. Their performance directly affects the safety, stability, and service life of pipeline systems. With the increase in the temperature and pressure parameters of the media transported by industrial pipelines and the increasing complexity of the operating environment, the market has put forward higher requirements for the comprehensive performance of pipe supports, such as convenient installation, stability and anti-loosening, buffering and shock resistance, and adaptability to deformation.

[0003] Existing pipe supports rely on single bolt fastening or simple clip connections. Bolt fastening is cumbersome and prone to loosening due to vibration, while simple clips lack secondary locking and are prone to disengagement. Neither type of support achieves an integrated design for quick positioning, automatic locking, and convenient unlocking, failing to balance convenience and stability. The upper and lower pipe clamps rely on manual visual alignment, lacking a precise positioning structure, which easily leads to misalignment and displacement, causing connection failures and increasing installation difficulty. Rigid pipe supports lack buffering capacity, cannot absorb vibration, and cannot adapt to the thermal expansion and contraction of the pipeline. Flexible pipe supports lack a reinforcing structure and are prone to permanent deformation. Furthermore, the iron clamps lack elastic compensation after fastening, and the clamping pressure easily decreases. Summary of the Invention

[0004] In order to overcome the above-mentioned defects of the prior art, the present invention provides a pipe support that is convenient to install, stable and reliable, so as to solve the problems mentioned in the background art.

[0005] To achieve the above objectives, the present invention provides the following technical solution: a pipe support for pipelines that is easy to install, stable and reliable, comprising a lower pipe clamp, an upper pipe clamp, an iron clamp and a connecting mechanism; The lower pipe clamp and the upper pipe clamp are symmetrically arranged, and the outer side of both is provided with the iron clamp. The outer side of the iron clamp is provided with a raised strip, and the side is provided with a threaded hole. The bolt passes through the threaded hole and is fastened by the fixing nut. The lower tube clamp and the upper tube clamp are detachably and fixedly connected by the connecting mechanism; Both the lower and upper pipe clamps consist of an inner reinforcing rib, a middle honeycomb cavity, and an outer cladding layer, arranged from the inside out.

[0006] Preferably, the connecting mechanism includes: A fixing slot is provided at the top of the lower tube clamp; The rotating plate is hinged to the inner wall of the fixed slot via a rotating connecting plate; A connecting block is fixed to the bottom of the upper tube clamp, and the rotating plate is provided with a slot for engaging with the connecting block; The locking component, which is disposed inside the lower pipe clamp, includes a lower pressure block, a lower pressure rod, a fixing groove, a settling block, a fixing spring, and a moving locking block; The fixing groove is formed inside the lower pipe clamp, the lower pressure rod is set at the bottom of the lower pressure block, and its lower end is fixedly connected to the settling block; the fixing spring is sleeved on the outside of the lower pressure rod and is fixedly pressed between the settling block and the top surface of the fixing groove. The side of the settling block is provided with a fixing slot, and the movable block can be horizontally slidably disposed in the lower pipe clamp and movably engaged with the fixing slot.

[0007] Preferably, a movable rod is slidably connected to one side of the lower pipe clamp, one end of the movable rod passes through the fixing groove and extends into it, the movable clamp block is fixed to one end of the movable rod, the movable rod horizontally passes through the side wall of the lower pipe clamp and is slidably connected to the lower pipe clamp, and a pull plate is fixed to the outer end of the movable rod; a connecting spring is sleeved on the movable rod, and the two ends of the connecting spring are respectively pressed between the pull plate and the outer side wall of the lower pipe clamp.

[0008] Preferably, a positioning rod is fixedly connected to the bottom of the upper tube clamp, and a positioning hole corresponding to the positioning rod is opened on the top surface of the lower tube clamp. The positioning rod is slidably connected to the positioning hole, and a magnet that magnetically engages with the positioning rod is fixedly connected to the bottom of the inner wall of the positioning hole.

[0009] Preferably, the outer cladding layer is an EVA padding layer, located between the inner side of the iron card and the outer side of the intermediate honeycomb cavity.

[0010] Preferably, the iron clamp covers the outside of the lower and upper pipe clamps, and the protruding strip on it is configured to elastically deform when the bolt and the fixing nut are tightened, thereby providing continuous clamping pressure between the iron clamp and the pipe clamp.

[0011] Preferably, the intermediate honeycomb cavities are uniformly arrayed between the inner reinforcing ribs and the outer cladding.

[0012] Preferably, the fixed slot has a guide slope on the side near the movable card block, while the opposite side has a vertical locking surface; The shape of the corresponding end of the movable card block is adapted to the shape of the fixed card slot.

[0013] The technical effects and advantages of this invention are as follows: 1. By using a dual locking connection mechanism consisting of a rotating plate, a connecting block, and a locking component, the traditional method of relying on a single bolt for fastening or a simple snap-fit ​​connection for existing pipe supports is abandoned. Through the mechanical engagement of the rotating plate and the connecting block, combined with the elastic limit of the pressure block being pushed back by the fixed spring, a dual fixing structure of mechanical engagement and elastic pre-tightening is formed, which completely solves the problem of existing pipe supports being prone to loosening in the environment of pipeline vibration. At the same time, relying on the coordinated design of the moving rod, the connecting spring, and the pull plate, the automatic engagement and manual easy unlocking of the moving block can be achieved, and the disassembly and assembly of the pipe support can be completed without complicated tools. 2. By combining the carbon steel positioning rod with the magnet in the positioning hole, a dual positioning structure of "mechanical guidance + magnetic pre-fixation" is formed. The sliding fit between the positioning rod and the positioning hole ensures the radial positioning accuracy of the upper and lower pipe clamps, while the magnetic attraction between the magnet and the carbon steel positioning rod achieves axial pre-fixation. This effectively avoids misalignment and displacement of the upper and lower pipe clamps during installation, providing a reliable guarantee for the precise engagement of the connection mechanism. It solves the problem of difficult pipe support installation and positioning in confined spaces or high-altitude operations, reduces the difficulty of operation, and improves installation efficiency and assembly accuracy. 3. The three-layer composite pipe clamp structure, consisting of an inner reinforcing rib, a middle honeycomb cavity, and an outer sheath, works synergistically with the raised strips on the outside of the iron clamp. This overcomes the limitations of existing pipe supports that focus either on buffering or stabilization. The uniform array distribution of the middle honeycomb cavity gives the pipe clamp radial and axial elastic deformation capabilities, which can efficiently absorb pipeline vibration energy and adapt to displacement caused by pipeline thermal expansion and contraction. The inner reinforcing rib ensures the overall structural strength of the pipe clamp and prevents deformation failure. The EVA pad wood material of the outer sheath further enhances the buffering effect while isolating the iron clamp from direct friction with the pipe clamp body. Combined with the elastic deformation of the raised strips on the iron clamp during tightening, it forms a continuous and uniform clamping force, which complements the buffering performance of the three-layer structure. This achieves the integration of three major functions: buffering and shock resistance, adaptation to thermal expansion and contraction, and continuous stabilization, significantly improving the service life of the pipe support under complex working conditions. Attached Figure Description

[0014] Figure 1 This is a schematic diagram of the overall structure of the present invention.

[0015] Figure 2 This is a three-dimensional structural diagram of the lower tube clamp of the present invention.

[0016] Figure 3 This is a three-dimensional structural diagram of the upper tube clamp of the present invention.

[0017] Figure 4 This is a schematic diagram of the disassembled structure of the metal card of the present invention.

[0018] Figure 5 This is a partial frontal cross-sectional view of the present invention.

[0019] Figure 6 For the present invention Figure 5 Enlarged structural diagram at point A in the middle.

[0020] Figure 7 This is a side cross-sectional view of the lower tube clamp of the present invention.

[0021] Figure 8 This is a schematic diagram of the internal structure of the lower tube clamp of the present invention.

[0022] The attached diagram is labeled as follows: 1. Lower pipe clamp; 2. Upper pipe clamp; 3. Iron clamp; 4. Raised strip; 5. Threaded hole; 6. Bolt; 7. Fixing nut; 8. Fixing slot; 9. Rotating clamping plate; 10. Rotating connecting plate; 11. Connecting clamping block; 12. Lower pressure block; 13. Lower pressure rod; 14. Fixing groove; 15. Settling block; 16. Fixing spring; 17. Moving rod; 18. Moving clamping block; 19. Fixing slot; 20. Pull plate; 21. Connecting spring; 22. Positioning rod; 23. Positioning hole; 24. Magnet; 25. Outer cladding layer; 26. Intermediate honeycomb cavity; 27. Inner reinforcing rib. Detailed Implementation

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

[0024] As attached Figure 1-8 The pipe support shown is easy to install, stable and reliable, and includes a lower pipe clamp 1, an upper pipe clamp 2, an iron clamp 3 and a connecting mechanism; The lower pipe clamp 1 and the upper pipe clamp 2 are symmetrically arranged, and iron clamps 3 are provided on the outer side of both. The outer side of the iron clamp 3 is provided with a protruding strip 4, and a threaded hole 5 is opened on its side. The bolt 6 passes through the threaded hole 5 and is fastened by the fixing nut 7. The lower pipe clamp 1 and the upper pipe clamp 2 are detachably and fixedly connected by a connecting mechanism; Both the lower pipe clamp 1 and the upper pipe clamp 2 consist of an inner reinforcing rib 27, a middle honeycomb cavity 26, and an outer cladding layer 25, from the inside out.

[0025] As attached Figure 2 , 3 As shown in Figures 5, 6, and 7, the connecting mechanism includes: Fixed slot 8, which is located at the top of lower tube clamp 1; Rotate the card plate 9, which is hinged to the inner wall of the fixed slot 8 via a rotating connecting plate 10; Connecting block 11 is fixed to the bottom of upper tube clamp 2, and rotating plate 9 is provided with a slot for engaging with connecting block 11; The locking assembly, which is located inside the lower tube clamp 1, includes a lower pressure block 12, a lower pressure rod 13, a fixing groove 14, a sinking block 15, a fixing spring 16, and a moving block 18; The fixing groove 14 is opened inside the lower tube clamp 1, the lower pressure rod 13 is set at the bottom of the lower pressure block 12, and its lower end is fixedly connected to the settling block 15; the fixing spring 16 is sleeved on the outside of the lower pressure rod 13 and is fixedly pressed between the settling block 15 and the top surface of the fixing groove 14. The side of the settling block 15 is provided with a fixed slot 19, and the movable slot 18 can be horizontally slidably set in the lower pipe clamp 1 and is movably engaged with the fixed slot 19.

[0026] By rotating the locking plate 9 and engaging with the connecting block 11, the upper and lower pipe clamps are quickly and mechanically locked. The elastic force of the fixing spring 16 can push the connecting block 11 in the opposite direction. The double fixing structure effectively improves the reliability of the connection and prevents the pipe from loosening during operation.

[0027] As attached Figure 7 As shown, a movable rod 17 is slidably connected to one side of the lower tube clamp 1. One end of the movable rod 17 passes through the fixed groove 14 and extends into it. A movable clamp block 18 is fixed to one end of the movable rod 17. The movable rod 17 passes horizontally through the side wall of the lower tube clamp 1 and is slidably connected to the lower tube clamp 1. A pull plate 20 is fixed to the outer end of the movable rod 17. A connecting spring 21 is sleeved on the movable rod 17. The two ends of the connecting spring 21 are respectively pressed between the pull plate 20 and the outer side wall of the lower tube clamp 1.

[0028] The connecting spring 21 can drive the movable block 18 to automatically engage with the fixed slot 19 without additional locking operation. The pull plate 20 is easy to manually pull to unlock, which greatly improves the efficiency of tube support assembly and disassembly. The sliding connection structure of the moving rod 17 ensures smooth and stable locking and unlocking actions.

[0029] As attached Figure 2 , 3 As shown in Figure 5, a positioning rod 22 is fixedly connected to the bottom of the upper tube clamp 2, and a positioning hole 23 corresponding to the positioning rod 22 is opened on the top surface of the lower tube clamp 1. The positioning rod 22 is slidably connected to the positioning hole 23, and a magnet 24 that magnetically engages with the positioning rod 22 is fixedly connected to the bottom of the inner wall of the positioning hole 23. The positioning rod 22 is made of carbon steel.

[0030] The positioning rod 22 made of carbon steel and the magnetic attraction of the magnet 24 can realize the quick pre-positioning of the upper and lower pipe clamps, avoid misalignment during installation, and ensure the precise engagement of the connection mechanism. At the same time, the magnetic attraction can help fix it and reduce the difficulty of operation during the installation process.

[0031] As attached Figure 8 As shown, the outer layer 25 is an EVA padding layer, and it is located between the inner side of the iron card 3 and the outer side of the middle honeycomb cavity 26.

[0032] Utilizing its elasticity and damping properties, it can absorb the impact energy generated by pipeline vibration, avoid wear caused by direct friction between the iron clip 3 and the pipe clamp body, and adapt to slight irregularities on the pipeline surface to improve fit.

[0033] As attached Figure 1 , 4 As shown, the iron clamp 3 covers the outside of the lower pipe clamp 1 and the upper pipe clamp 2, and the protruding strip 4 on it is configured to produce elastic deformation when the bolt 6 is tightened with the fixing nut 7, thereby providing continuous clamping pressure between the iron clamp 3 and the pipe clamp.

[0034] The elastic deformation of the raised strip 4 can generate continuous and uniform clamping pressure, which, together with the mechanical fastening of the bolt 6 and the fixing nut 7, effectively counteracts the loosening tendency caused by pipeline vibration. At the same time, the elastic deformation capacity can absorb the impact and enhance the seismic stability of the pipe support.

[0035] As attached Figure 8 As shown, the intermediate honeycomb cavities 26 are uniformly arrayed between the inner reinforcing ribs 27 and the outer cladding 25. The uniformly arrayed intermediate honeycomb cavities 26 can give the pipe clamp radial and axial elastic deformation capabilities, which can efficiently absorb pipe vibration and adapt to the displacement caused by the thermal expansion and contraction of the pipe. The inner reinforcing ribs 27 ensure the overall structural strength of the pipe clamp and avoid deformation failure.

[0036] As attached Figure 7 As shown, the fixed slot 19 has a guide slope on the side near the movable slot 18, while the opposite side has a vertical locking surface. The corresponding end shape of the movable block 18 is adapted to the fixed slot 19. The guide slope of the fixed slot 19 can guide the movable block 18 to slide in smoothly, reducing locking resistance. The vertical locking surface can form a reliable limit with the movable block 18, preventing the sinking block 15 from accidentally resetting and causing locking failure, thus ensuring the locking stability of the connection mechanism.

[0037] Working principle of this invention: This pipe uses convenient and stable pipe supports to achieve rapid installation, stable fixation, and vibration buffering through the coordinated operation of various structures. During installation, the pipe to be fixed is first placed on the inner arc-shaped surface of the lower pipe clamp 1. The outer wall of the pipe is directly attached to the outer sheath 25 of the lower pipe clamp 1, i.e., the EVA pad layer. The flexibility of the EVA pad initially buffers the pressure of the pipe's own weight. Then, the upper pipe clamp 2 is picked up, and the positioning rod 22 at the bottom of the upper pipe clamp 2 is aligned with the positioning hole 23 at the top of the lower pipe clamp 1 and inserted. The magnet 24 at the bottom of the inner wall of the positioning hole 23 and the positioning rod 22 generate a magnetic attraction to achieve pre-positioning, avoiding misalignment of the upper and lower pipe clamps and providing precise guidance for the subsequent engagement of the connection mechanism. After the pre-positioning is completed, press down on the upper pipe clamp 2, causing the bottom connecting block 11 to insert into the fixed slot 8 at the top of the lower pipe clamp 1. The bottom of the connecting block 11 contacts the arc-shaped surface at the top of the lower pressure block 12 and generates downward pressure, pushing the lower pressure block 12 to drive the lower pressure rod 13 to slide down along the wall of the lower pipe clamp 1, thereby causing the sinking block 15 to move down synchronously in the fixed groove 14, compressing the fixed spring 16 sleeved on the outside of the lower pressure rod 13 to store its elastic potential energy. At the same time, manually rotate the rotating plate 9, and through the hinge relationship between the rotating connecting plate 10 and the inner wall of the fixed slot 8, the rotating plate 9 rotates around the hinge point until the bayonet and the connecting block 11 are fully engaged to achieve initial positioning. When the sinking block 15 moves down to the preset position... The fixed slot 19 on its side is aligned with the position of the movable block 18. The connecting spring 21, which is sleeved on the outside of the movable rod 17, is initially in a slightly compressed state. It releases elastic potential energy and pushes the movable rod 17 to drive the movable block 18 to slide into the fixed slot 19 along the guide slope. It fits tightly with the vertical locking surface to limit the reset of the settlement block 15. The connecting block 11 is tightened in the opposite direction by the lowering rod 13 and the lowering block 12. The double locking is achieved with the rotating plate 9. Then, the bolt 6 is passed through the threaded hole 5 on the side of the iron clip 3 and connected to the external bracket. When the fixing nut 7 is tightened, the protruding strip 4 on the outside of the iron clip 3 produces elastic deformation, which provides continuous clamping pressure between the iron clip 3 and the pipe clamp, enhances the wrapping and fastening effect and absorbs impact load. When the pipeline is running, the vibration first absorbs some of the energy through the EVA pad layer of the outer sheath 25 using its elasticity and damping properties. The remaining vibration is transmitted to the middle honeycomb cavity 26, whose uniformly arrayed structure can generate elastic deformation in the radial and axial directions, further absorbing the vibration and adapting to the thermal expansion and contraction of the pipeline, preventing the pipe support from loosening or the pipeline from being damaged. The inner reinforcing ribs 27 provide structural support for the pipe clamp body, enhancing the overall strength and preventing deformation. At the same time, the protruding strips 4 on the iron clamp 3 continuously maintain an elastic deformation state, and the continuous clamping pressure generated offsets the loosening tendency caused by vibration, working together with the buffer structure of the pipe clamp body to improve the seismic stability performance. When it is necessary to disassemble the pipe, pull the pull plate 20 outward, which will cause the moving rod 17 to compress the connecting spring 21, so that the moving block 18 will disengage from the fixed slot 19. The fixed spring 16 releases its elastic potential energy to push the sinking block 15 upward. The lower pressing rod 13 drives the lower pressing block 12 to lift the connecting block 11. Manually rotate the rotating plate 9 in the opposite direction to release the limit. Finally, lift the upper pipe clamp 2 upward to make the positioning rod 22 disengage from the magnet 24. The upper and lower pipe clamps can then be separated to complete the disassembly. The whole process is convenient and does not require complicated tools.

[0038] Finally, the following points should be noted: First, in the description of this application, it should be noted that, unless otherwise specified and limited, the terms "installation", "connection", and "linkage" should be interpreted broadly, and can be mechanical or electrical connections, or internal connections between two components, or direct connections. "Up", "down", "left", "right", etc. are only used to indicate relative positional relationships. When the absolute position of the described object changes, the relative positional relationship may change. Secondly: The accompanying drawings of the embodiments disclosed in this invention only involve the structures involved in the embodiments disclosed in this invention. Other structures can refer to the general design. In the absence of conflict, the same embodiment and different embodiments of this invention can be combined with each other. In conclusion, the above description is only a preferred embodiment of the present invention and is not intended to limit the present invention. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present invention should be included within the protection scope of the present invention.

Claims

1. A pipe support for pipelines that is easy to install, stable, and reliable, characterized in that: Includes a lower pipe clamp (1), an upper pipe clamp (2), an iron clamp (3), and a connecting mechanism; The lower pipe clamp (1) and the upper pipe clamp (2) are symmetrically arranged, and the iron clamp (3) is provided on the outer side of both. The outer side of the iron clamp (3) is provided with a protruding strip (4), and a threaded hole (5) is opened on its side. The bolt (6) passes through the threaded hole (5) and is fastened by the fixing nut (7). The lower tube clamp (1) and the upper tube clamp (2) are detachably fixedly connected by the connecting mechanism; The lower pipe clamp (1) and the upper pipe clamp (2) each include, from the inside out, an inner reinforcing rib (27), a middle honeycomb cavity (26), and an outer cladding layer (25).

2. The pipe support for pipelines that is easy to install, stable, and reliable according to claim 1, characterized in that: The connecting mechanism includes: A fixing slot (8) is provided at the top of the lower tube clamp (1); Rotate the card plate (9), which is hinged to the inner wall of the fixed slot (8) via a rotating connecting plate (10); A connecting block (11) is fixed to the bottom of the upper tube clamp (2), and the rotating plate (9) is provided with a slot for engaging with the connecting block (11); The locking assembly, which is located inside the lower tube clamp (1), includes a lower pressure block (12), a lower pressure rod (13), a fixing groove (14), a sinking block (15), a fixing spring (16), and a moving block (18). The fixing groove (14) is opened inside the lower pipe clamp (1), the lower pressure rod (13) is set at the bottom of the lower pressure block (12), and its lower end is fixedly connected to the settling block (15); the fixing spring (16) is sleeved on the outside of the lower pressure rod (13) and is fixedly pressed between the settling block (15) and the top surface of the fixing groove (14); The side of the settling block (15) is provided with a fixed slot (19), and the movable block (18) can be horizontally slidably disposed in the lower pipe clamp (1) and movably engaged with the fixed slot (19).

3. The pipe support for pipelines that is easy to install, stable, and reliable according to claim 2, characterized in that: A movable rod (17) is slidably connected to one side of the lower pipe clamp (1). One end of the movable rod (17) passes through the fixed groove (14) and extends into it. The movable clamp block (18) is fixed to one end of the movable rod (17). The movable rod (17) passes horizontally through the side wall of the lower pipe clamp (1) and is slidably connected to the lower pipe clamp (1). A pull plate (20) is fixed to the outer end of the movable rod (17). A connecting spring (21) is sleeved on the movable rod (17). The two ends of the connecting spring (21) press against the pull plate (20) and the outer side wall of the lower pipe clamp (1), respectively.

4. The pipe support for pipelines that is easy to install, stable, and reliable according to claim 1, characterized in that: The bottom of the upper tube clamp (2) is fixedly connected to a positioning rod (22), and the top surface of the lower tube clamp (1) is provided with a positioning hole (23) corresponding to the positioning rod (22). The positioning rod (22) is slidably connected to the positioning hole (23), and the bottom of the inner wall of the positioning hole (23) is fixedly connected to a magnet (24) that magnetically engages with the positioning rod (22).

5. A pipe support for pipelines that is easy to install, stable, and reliable, as described in claim 1, characterized in that: The outer layer (25) is an EVA padding layer, and is located between the inner side of the iron card (3) and the outer side of the intermediate honeycomb cavity (26).

6. A pipe support for pipelines that is easy to install, stable, and reliable, as described in claim 1, characterized in that: The iron clamp (3) covers the outside of the lower pipe clamp (1) and the upper pipe clamp (2), and the protruding strip (4) on it is configured to elastically deform when the bolt (6) is tightened with the fixing nut (7), thereby providing continuous clamping pressure between the iron clamp (3) and the pipe clamp.

7. A pipe support for pipelines that is easy to install, stable, and reliable, as described in claim 1, characterized in that: The intermediate honeycomb cavity (26) is uniformly arrayed between the inner reinforcing rib (27) and the outer cladding (25).

8. A pipe support for pipelines that is easy to install, stable, and reliable, as described in claim 2, characterized in that: The fixed slot (19) has a guide slope on the side near the movable block (18), while the opposite side has a vertical locking surface. The shape of the corresponding end of the movable card block (18) is adapted to the shape of the fixed card slot (19).