Heat pipe support capable of preventing impact instability of pipe rack

By combining lifting, fixing, and guiding mechanisms, the problem of fixing thermal pipelines under complex working conditions and with different diameters is solved, achieving stable support and guidance for thermal pipelines, reducing pipeline vibration and impact, and improving the safety and stability of the system.

CN121112072BActive Publication Date: 2026-02-27CHANGZHOU WUJIN WUNAN PIPELINE EQUIP LTD CO
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Patent Information

Application Number
CN202511630869.9
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-11-10
Publication Date
2026-02-27
Estimated Expiration
2045-11-10

AI Technical Summary

Technical Problem

Existing thermal pipeline supports cannot be effectively fixed when faced with complex working conditions or large impact forces, and cannot adapt to pipelines of different diameters, leading to impact instability of the pipe supports and affecting the stable operation of the system.

Method used

The system employs a fixing mechanism and a guiding mechanism. The height of the mounting plate is adjusted by a lifting mechanism. The fixing mechanism is adjusted according to the pipe diameter, and the guiding mechanism adjusts the spacing of the connecting parts. Combined with rubber blocks and sliding parts for buffering, it achieves adaptive fixing and guiding for different working conditions and pipe diameters.

Benefits of technology

It effectively prevents large-scale horizontal displacement of heating pipelines, ensures that pipelines move in a reasonable direction, reduces the impact of vibration and shock, and improves the safety and stability of the system.

✦ Generated by Eureka AI based on patent content.

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Abstract

The application discloses a heat pipe support capable of preventing pipe rack impact instability, and belongs to the technical field of heat pipes, which comprises a base, a lifting mechanism arranged on the base, a mounting plate arranged on the lifting mechanism, and fixing mechanisms arranged in two groups, each of which is arranged on the mounting plate and used for fixing a heat pipe, a heat pipe body arranged between each group of the fixing mechanisms, and a guide mechanism arranged on the mounting plate and used for facilitating movement of the heat pipe body. The heat pipe support capable of preventing pipe rack impact instability can effectively fix the heat pipe, prevent the heat pipe from being displaced greatly in the horizontal direction, facilitate movement of the heat pipe body through the guide mechanism, limit the movement direction of the heat pipe, prevent the heat pipe from being displaced unreasonably, make the heat pipe support have both fixing and guiding functions, meet the use requirements of the heat pipe under different working conditions, and adjust the height of the mounting plate through the lifting mechanism to adapt to different installation height requirements.
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Description

Technical Field

[0001] This invention belongs to the field of thermal pipeline technology, specifically a thermal pipeline support to prevent pipe rack impact instability. Background Technology

[0002] Thermal pipelines, also known as thermal pipe networks, typically contain high-temperature fluids. The increase in temperature causes the pipeline to expand and deform significantly. To reduce the impact of pipeline expansion on the pipeline, fixed pipe supports and brackets are usually installed at appropriate locations in the thermal pipeline. The fixed pipe supports and brackets bear the axial thrust caused by the expansion and sliding on both sides of the pipeline when the thermal pipeline is in a stable state.

[0003] Publication number "CN117739171A" describes "a thermal pipeline support for preventing impact instability, characterized in that it includes a reinforcing plate, a fixed connector, a base, and an elastic component. The reinforcing plate is fixedly connected to the bottom of the thermal pipeline, and the fixed connector is centrally fixedly connected to the bottom of the reinforcing plate. The base is provided with a seat plate connected to the ground or a fixed building. The elastic component is disposed between the base and the fixed connector, and the axial and horizontal radial movement of the fixed connector is limited. The beneficial effects of this invention are: by using the elastic component to reduce the impact on the lower support structure when the fluid flow state inside the pipeline changes abruptly, it prevents the pipeline support from becoming unstable due to excessive impact, reduces the impact of fluid impact on the pipeline support, effectively constrains the circumferential displacement of the thermal pipeline, and allows axial movement of the pipeline while preventing rotation during use."

[0004] The aforementioned patent mitigates the impact on the lower support structure when the fluid flow state inside the pipe changes abruptly using elastic components, thereby preventing the pipe support from becoming unstable due to excessive impact and reducing the impact of fluid flow on the pipe support. It can effectively constrain the circumferential displacement of the thermal pipeline. However, the fixing method of the aforementioned patent is relatively simple. When facing complex working conditions or large impact forces, it cannot meet the usage requirements of thermal pipelines under different working conditions, and it cannot connect and fix thermal pipelines of different diameters. Summary of the Invention

[0005] The purpose of this invention is to: effectively fix the heating pipe through the fixing mechanism to prevent large displacement in the horizontal direction; facilitate the movement of the main body of the heating pipe through the guiding mechanism while restricting the direction of pipe movement to prevent unreasonable displacement; and enable the pipe support to have both fixing and guiding functions to meet the usage requirements of the heating pipe under different working conditions. The lifting mechanism allows adjustment of the mounting plate height to adapt to different installation height requirements. The moving and adjusting components in the fixing mechanism can be adjusted according to the diameter of the heating pipe to effectively fix pipes of different diameters. The connecting components in the guiding mechanism can be adjusted according to the spacing of the L-shaped plates to facilitate connection with heating pipes of different specifications. The rubber blocks in the fixing mechanism and the sliding components in the guiding mechanism both have a buffering effect, reducing the impact of pipe vibration and impact on the pipe support, effectively preventing pipe support instability due to impact, and improving the safe and stable operation of the entire heating pipe system.

[0006] The technical solution adopted in this invention is as follows: a pipe support for thermal pipelines to prevent impact instability, comprising:

[0007] Base;

[0008] The lifting mechanism is located on the base;

[0009] Mounting plate, located on the lifting mechanism;

[0010] The fixing mechanism is provided in two sets, each set of which is mounted on the mounting plate and is used to fix the heat pipes.

[0011] The main body of the heating pipe is installed between each set of fixed mechanisms;

[0012] The guiding mechanism, located on the mounting plate, facilitates the movement of the main body of the heating pipe.

[0013] The lifting mechanism includes a first bidirectional threaded rod, two movable parts, two first connecting rods, and multiple limiting rods. The first bidirectional threaded rod is rotatably embedded in the inner wall of the base. Each movable part is threadedly connected to the outer wall of the first bidirectional threaded rod, and each movable part is slidably engaged with the base. One end of each first connecting rod is movably sleeved on the outer wall of the movable part, and the other end of each first connecting rod is movably sleeved on the outer wall of the mounting plate. Each limiting rod is fixedly installed on the top of the outer wall of the base, and the mounting plate is slidably engaged with each limiting rod.

[0014] Each of the fixed mechanisms includes a movable component, two movable frames, an adjusting component, and multiple rubber blocks. The movable component is mounted on a mounting plate, each movable frame is mounted on the movable component, the adjusting component is mounted on the movable frame, and each rubber block is mounted on the adjusting component.

[0015] Each set of moving parts includes a mounting frame, a second bidirectional threaded rod, and two sliding holes. The mounting frame is fixedly set on the top of the outer wall of the mounting plate. The second bidirectional threaded rod is rotatably embedded in the inner wall of the mounting frame. Each sliding hole is opened on the top of the outer wall of the mounting frame. Each moving frame is threaded to the outer wall of the second bidirectional threaded rod, and each moving frame moves through the inner wall of the sliding hole.

[0016] Each set of adjustment components includes a fixed frame, an arc plate, a drive assembly, and multiple sets of movable components. The fixed frame is fixedly installed on one side of the outer wall of the movable frame, the arc plate is slidably embedded in the inner wall of the fixed frame, the drive assembly is installed inside the movable frame, and each set of movable components is equidistantly installed on the arc plate.

[0017] Each drive assembly includes a rotating shaft, a gear, and an arc-shaped rack. The rotating shaft is rotatably embedded in the inner wall of the movable frame, the gear is fixedly sleeved on the outer wall of the rotating shaft, and the arc-shaped rack is fixedly set on the outer wall of the arc plate. The arc-shaped rack meshes with the gear, and the arc-shaped rack moves through one side of the outer wall of the fixed frame.

[0018] Each set of movable components includes a cam hole, a movable rod, a limiting hole, and a connecting frame. The cam hole is opened on one side of the outer wall of the arc plate, the movable rod is slidably embedded in the inner wall of the cam hole, the limiting hole is opened on one side of the outer wall of the fixed frame, the movable rod is slidably embedded in the inner wall of the limiting hole, the connecting frame is fixedly set on one side of the outer wall of the movable rod, and each rubber block is fixedly set on one side of the outer wall of the connecting frame.

[0019] The guiding mechanism includes a placement frame, a sliding component, a connecting component, and two L-shaped plates. The placement frame is fixedly mounted on the mounting plate, the sliding component is located inside the placement frame, and the connecting component is located on the sliding component. Each L-shaped plate is fixedly mounted on both sides of the outer wall of the thermal pipeline body.

[0020] The sliding component includes a first sliding rod, a sliding frame, two first springs, two second sliding rods, four second connecting rods, four movable parts, and four second springs. The first sliding rod is fixedly disposed on the inner wall of the placement frame. The sliding frame is movably sleeved on the outer wall of the first sliding rod. Each first spring is sleeved on the outer wall of the first sliding rod. Each second sliding rod is fixedly disposed on the inner wall of the placement frame. One end of each second connecting rod is movably sleeved on the outer wall of the sliding frame. The other end of each second connecting rod is movably sleeved on the outer wall of the movable part. Each movable part is movably sleeved on the outer wall of the second sliding rod. Each second spring is sleeved on the outer wall of the second sliding rod.

[0021] The connecting component includes a connecting frame, a third bidirectional threaded rod, two connectors, two screws, and two nuts. The connecting frame is fixedly mounted on the top of the outer wall of the sliding frame. The third bidirectional threaded rod is rotatably embedded in the inner wall of the connecting frame. Each connector is threadedly connected to the outer wall of the third bidirectional threaded rod, and each connector slides through the top of the outer wall of the connecting frame. Each screw is fixedly mounted on the top of the outer wall of the connector, and each screw moves through the top of the outer wall of the L-shaped plate. Each nut is threadedly connected to the outer wall of the screw.

[0022] In summary, due to the adoption of the above technical solution, the beneficial effects of the present invention are:

[0023] (1) In this invention, the fixing mechanism can effectively fix the heat pipe and prevent it from being displaced in the horizontal direction. The guiding mechanism facilitates the movement of the main body of the heat pipe and restricts the direction of movement of the pipe to prevent unreasonable displacement of the pipe. The pipe support has both fixing and guiding functions, which can meet the needs of the heat pipe under different working conditions.

[0024] (2) In this invention, the height of the mounting plate can be adjusted by the lifting mechanism to adapt to different installation height requirements. The moving and adjusting parts in the fixing mechanism can be adjusted according to the diameter of the heat pipe to achieve effective fixing of pipes of different diameters. The connecting parts in the guiding mechanism can be adjusted according to the spacing of the L-shaped plates to facilitate connection with heat pipes of different specifications.

[0025] (3) In this invention, the rubber block in the fixing mechanism and the sliding component in the guiding mechanism both have a buffering effect, which can reduce the impact of pipe vibration and impact on the pipe support, effectively prevent the pipe support from impact instability, and improve the safe and stable operation capability of the entire thermal pipeline system. Attached Figure Description

[0026] Figure 1 This is a perspective view of the present invention;

[0027] Figure 2 This is a cross-sectional view of the lifting mechanism of the present invention;

[0028] Figure 3 This is a schematic diagram of the fixing mechanism of the present invention;

[0029] Figure 4 This is a cross-sectional view of the mounting frame of the present invention;

[0030] Figure 5 This is an exploded view of the fixing mechanism of the present invention;

[0031] Figure 6 This is a cross-sectional view of the placement frame of the present invention;

[0032] Figure 7This is an exploded view of the guiding mechanism of the present invention;

[0033] Figure 8 This is a partial structural schematic diagram of the guiding mechanism of the present invention.

[0034] Markings in the diagram: 1. Base; 2. Lifting mechanism; 201. First bidirectional threaded rod; 202. Moving part; 203. First connecting rod; 204. Limiting rod; 3. Mounting plate; 4. Fixing mechanism; 401. Moving frame; 402. Rubber block; 403. Mounting frame; 404. Second bidirectional threaded rod; 405. Sliding hole; 406. Fixing frame; 407. Arc plate; 408. Rotating shaft; 409. Gear; 410. Arc rack; 411. Cam hole; 4 12. Movable rod; 413. Limiting hole; 414. Connecting frame; 5. Main body of heating pipe; 6. Guide mechanism; 601. Placement frame; 602. L-shaped plate; 603. First sliding rod; 604. Sliding frame; 605. First spring; 606. Second sliding rod; 607. Second connecting rod; 608. Movable part; 609. Second spring; 610. Connecting frame; 611. Third bidirectional threaded rod; 612. Connecting part; 613. Screw; 614. Nut. Detailed Implementation

[0035] 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.

[0036] Example 1, refer to Figure 1-8 A pipe support for thermal pipelines designed to prevent impact instability, comprising:

[0037] Base 1;

[0038] Lifting mechanism 2 is mounted on base 1;

[0039] Mounting plate 3 is mounted on lifting mechanism 2;

[0040] The fixing mechanism 4 is provided in two sets, and each set of fixing mechanism 4 is provided on the mounting plate 3, which is used to fix the heat pipe;

[0041] The main body of the heating pipe 5 is installed between each set of fixed mechanisms 4;

[0042] The guide mechanism 6 is located on the mounting plate 3, which facilitates the movement of the main body 5 of the heating pipe.

[0043] In this implementation plan: the base 1 is the basic support structure for the entire pipe support and provides an installation platform for the lifting mechanism 2. The lifting mechanism 2 is used to adjust the height of the mounting plate 3 to adapt to different installation height requirements and cooperates with the guide mechanism 6 to fix the guide mechanism 6 to the main body of the heat pipe 5. The mounting plate 3 provides an installation platform for the fixing mechanism 4 and the guide mechanism 6. The fixing mechanism 4 is used to fix the heat pipe and prevent the pipe from shifting significantly in the horizontal direction. The main body of the heat pipe 5 is the carrier of heat transmission. The guide mechanism 6 facilitates the movement of the main body of the heat pipe 5 and restricts the direction of pipe movement to prevent unreasonable displacement of the pipe.

[0044] Specifically, the lifting mechanism 2 includes a first bidirectional threaded rod 201, two moving parts 202, two first connecting rods 203, and multiple limiting rods 204. The first bidirectional threaded rod 201 is rotatably embedded in the inner wall of the base 1. Each moving part 202 is threadedly connected to the outer wall of the first bidirectional threaded rod 201, and each moving part 202 is slidably fitted with the base 1. One end of each first connecting rod 203 is movably sleeved on the outer wall of the moving part 202, and the other end of each first connecting rod 203 is movably sleeved on the outer wall of the mounting plate 3. Each limiting rod 204 is fixedly set on the top of the outer wall of the base 1, and the mounting plate 3 is slidably fitted with each limiting rod 204.

[0045] In this embodiment: the first bidirectional threaded rod 201 rotates on the base 1. Since the moving part 202 is threadedly connected to the first bidirectional threaded rod 201 and slides with the base 1, the two moving parts 202 will move closer or further away from each other. Then, the first connecting rod 203 drives the mounting plate 3 to move up and down along the limiting rod 204, thereby adjusting the height of the mounting plate 3. The limiting rod 204 guides the movement of the mounting plate 3.

[0046] Specifically, each set of fixed mechanisms 4 includes a moving part, two moving frames 401, an adjusting part, and multiple rubber blocks 402. The moving part is mounted on the mounting plate 3, each moving frame 401 is mounted on the moving part, the adjusting part is mounted on the moving frame 401, and each rubber block 402 is mounted on the adjusting part.

[0047] In this embodiment: a moving component is used to drive two moving frames 401 to move closer or further apart. The two moving frames 401 are symmetrically arranged. An adjusting component is used to clamp heat pipes of different diameters and to adjust the clamping degree of the rubber block 402 on the heat pipe, thereby improving the fixing effect. The rubber block 402 is elastic and can buffer the impact force on the pipe, while increasing the friction between it and the pipe, thus improving the fixing effect.

[0048] Specifically, each set of moving parts includes a mounting frame 403, a second bidirectional threaded rod 404, and two sliding holes 405. The mounting frame 403 is fixedly set on the top of the outer wall of the mounting plate 3. The second bidirectional threaded rod 404 is rotatably embedded in the inner wall of the mounting frame 403. Each sliding hole 405 is opened on the top of the outer wall of the mounting frame 403. Each moving frame 401 is threaded to the outer wall of the second bidirectional threaded rod 404, and each moving frame 401 moves through the inner wall of the sliding hole 405.

[0049] In this embodiment: the mounting frame 403 provides a mounting base for the second bidirectional threaded rod 404. The second bidirectional threaded rod 404 rotates within the mounting frame 403. Since the movable frame 401 is threadedly connected to the second bidirectional threaded rod 404 and movably passes through the sliding hole 405, the two movable frames 401 will move closer or further away from each other, so that the two fixed frames 406 can be engaged together and cooperate with the adjustment component to achieve clamping of thermal pipes of different diameters.

[0050] Specifically, each set of adjustment components includes a fixed frame 406, an arc plate 407, a drive assembly, and multiple sets of movable components. The fixed frame 406 is fixedly installed on one side of the outer wall of the movable frame 401. The arc plate 407 is slidably embedded in the inner wall of the fixed frame 406. The drive assembly is located inside the movable frame 401. Each set of movable components is equidistantly arranged on the arc plate 407.

[0051] In this embodiment: the fixed frame 406 provides an installation base for the arc plate 407, and the driving component drives the arc plate 407 to move within the fixed frame 406, which can drive each set of movable components, so that the movable components drive each rubber block 402 to move, so that the rubber block 402 is in close contact with the surface of the heat pipe.

[0052] Specifically, each drive assembly includes a rotating shaft 408, a gear 409, and an arc-shaped rack 410. The rotating shaft 408 is rotatably embedded in the inner wall of the movable frame 401, the gear 409 is fixedly sleeved on the outer wall of the rotating shaft 408, and the arc-shaped rack 410 is fixedly set on the outer wall of the arc plate 407. The arc-shaped rack 410 and the gear 409 mesh with each other, and the arc-shaped rack 410 moves through one side of the outer wall of the fixed frame 406.

[0053] In this embodiment: by rotating the rotating shaft 408, the gear 409 is driven to rotate. Since the gear 409 meshes with the arc-shaped rack 410, the arc-shaped rack 410 will drive the arc plate 407 to slide within the fixed frame 406. A movable hole is provided on one side of the outer wall of the fixed frame 406. The movable hole and the arc-shaped rack 410 are slidably engaged to facilitate the movement of the arc-shaped rack 410.

[0054] Specifically, each set of movable components includes a cam hole 411, a movable rod 412, a limiting hole 413, and a connecting frame 414. The cam hole 411 is opened on one side of the outer wall of the arc plate 407. The movable rod 412 is slidably embedded in the inner wall of the cam hole 411. The limiting hole 413 is opened on one side of the outer wall of the fixed frame 406. The movable rod 412 is slidably embedded in the inner wall of the limiting hole 413. The connecting frame 414 is fixedly set on one side of the outer wall of the movable rod 412. Each rubber block 402 is fixedly set on one side of the outer wall of the connecting frame 414.

[0055] In this embodiment: when the arc plate 407 slides, the shape of the cam hole 411 will push the movable rod 412 to move along the limiting hole 413, thereby driving the connecting frame 414 and the rubber block 402 to move, so that the rubber block 402 is in close contact with the heat pipe, thereby fixing the heat pipe. The rubber block 402 can also play a buffering role, reducing the impact of pipe vibration on the pipe support.

[0056] Specifically, the guide mechanism 6 includes a placement frame 601, a sliding component, a connecting component, and two L-shaped plates 602. The placement frame 601 is fixedly mounted on the mounting plate 3, the sliding component is located inside the placement frame 601, the connecting component is located on the sliding component, and each L-shaped plate 602 is fixedly mounted on both sides of the outer wall of the thermal pipeline body 5.

[0057] In this embodiment: the placement frame 601 provides installation space for the sliding component, which is used to buffer the impact force of the pipe in the horizontal direction and allow the pipe to move within a certain range. The connecting component is used to connect the main body 5 of the heat pipe to the sliding component, and the L-shaped plate 602 serves as the connection point between the connecting component and the main body 5 of the heat pipe.

[0058] Specifically, the sliding component includes a first sliding rod 603, a sliding frame 604, two first springs 605, two second sliding rods 606, four second connecting rods 607, four movable parts 608, and four second springs 609. The first sliding rod 603 is fixedly disposed on the inner wall of the placement frame 601, the sliding frame 604 is movably sleeved on the outer wall of the first sliding rod 603, each first spring 605 is sleeved on the outer wall of the first sliding rod 603, each second sliding rod 606 is fixedly disposed on the inner wall of the placement frame 601, one end of each second connecting rod 607 is movably sleeved on the outer wall of the sliding frame 604, the other end of each second connecting rod 607 is movably sleeved on the outer wall of the movable part 608, each movable part 608 is movably sleeved on the outer wall of the second sliding rod 606, and each second spring 609 is sleeved on the outer wall of the second sliding rod 606.

[0059] In this embodiment: when the main body 5 of the heat pipe needs to move due to thermal expansion and contraction, the sliding frame 604 is driven to slide along the first sliding rod 603 by the L-shaped plate 602, and the first spring 605 plays a buffering role. At the same time, the second connecting rod 607 drives the movable part 608 to slide along the second sliding rod 606, and the second spring 609 further plays a buffering and stabilizing role, ensuring that the pipe moves smoothly and restricting the direction of pipe movement.

[0060] Specifically, the connecting components include a connecting frame 610, a third bidirectional threaded rod 611, two connectors 612, two screws 613, and two nuts 614. The connecting frame 610 is fixedly mounted on the top of the outer wall of the sliding frame 604. The third bidirectional threaded rod 611 is rotatably embedded in the inner wall of the connecting frame 610. Each connector 612 is threadedly connected to the outer wall of the third bidirectional threaded rod 611, and each connector 612 slides through the top of the outer wall of the connecting frame 610. Each screw 613 is fixedly mounted on the top of the outer wall of the connector 612, and each screw 613 moves through the top of the outer wall of the L-shaped plate 602. Each nut 614 is threadedly connected to the outer wall of the screw 613.

[0061] In this embodiment: the third bidirectional threaded rod 611 rotates within the connecting frame 610. Since the connecting piece 612 is threadedly connected to the third bidirectional threaded rod 611 and slides through the connecting frame 610, the two connecting pieces 612 will move closer or further apart to accommodate L-shaped plates 602 with different spacing. The L-shaped plate 602 is placed above the connecting piece 612, so that the screw 613 passes through the L-shaped plate 602, and then the nut 614 is tightened to connect the L-shaped plate 602 with the sliding frame 604. A rubber pad is provided between the nut 614 and the L-shaped plate 602. The rotation of the third bidirectional threaded rod 611, the rotating shaft 408, the second bidirectional threaded rod 404, and the first bidirectional threaded rod 201 can be driven by a forward and reverse motor or manually, depending on the actual situation.

[0062] In use, first install the base 1 in a suitable position. Depending on the usage requirements of the heat pipe body 5, the heat pipe can be fixed using the fixing mechanism 4, or connected to the heat pipe body 5 via the guide mechanism 6, allowing the heat pipe body 5 to move in a specified direction. When the heat pipe needs to be fixed, the heat pipe body 5 is positioned between two movable frames 401, rotating within the mounting frame 403 via the second bidirectional threaded rod 404. Because the movable frame 401 is threadedly connected to the second bidirectional threaded rod 404 and movably passes through the sliding hole 405, the two movable frames 401 will move closer to each other to facilitate the installation of the two fixing frames. The 406 pieces are engaged together, and then the rotating shaft 408 is rotated. The rotating shaft 408 drives the gear 409 to rotate. Since the gear 409 meshes with the arc-shaped rack 410, the arc-shaped rack 410 will drive the arc-shaped plate 407 to slide within the fixed frame 406. When the arc-shaped plate 407 slides, the shape of the cam hole 411 will push the movable rod 412 to move along the limiting hole 413, thereby driving the connecting frame 414 and the rubber block 402 to move, so that the rubber block 402 is in close contact with the heat pipe, thus fixing the heat pipe. When it is necessary to move the heat pipe in a certain direction, each fixed frame 406 is far away. The heat pipe body 5 is separated from the main body 5, and then rotates within the connecting frame 610 via the third bidirectional threaded rod 611. Since the connecting piece 612 is threadedly connected to the third bidirectional threaded rod 611 and slides through the connecting frame 610, the two connecting pieces 612 will move closer to each other, so that each connecting piece 612 is located on one side of the L-shaped plate 602. Then the first bidirectional threaded rod 201 rotates on the base 1. Since the moving piece 202 is threadedly connected to the first bidirectional threaded rod 201 and slides with the base 1, the two moving pieces 202 will move closer to each other, and then drive the mounting plate 3 along the limiting rod 204 via the first connecting rod 203. Move upwards to adjust the height of the mounting plate 3, allowing the screw 613 to pass through the L-shaped plate 602. Then tighten the nut 614 to connect the L-shaped plate 602 with the sliding frame 604. When the main body of the thermal pipeline 5 needs to move due to thermal expansion and contraction, the L-shaped plate 602 drives the sliding frame 604 to slide along the first sliding rod 603. The first spring 605 acts as a buffer. At the same time, the second connecting rod 607 drives the movable part 608 to slide along the second sliding rod 606. The second spring 609 further acts as a buffer and stabilizer, ensuring smooth pipeline movement and limiting the direction of pipeline movement.

[0063] 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, and improvements made within the spirit and principles of the present invention should be included within the protection scope of the present invention.

Claims

1. A heat pipe support for preventing impact instability of a pipe rack, characterized by, The utility model provides a heat supply pipeline fixing device, which comprises a base (1), a lifting mechanism (2) arranged on the base (1), a mounting plate (3) arranged on the lifting mechanism (2), two groups of fixing mechanisms (4) arranged on the mounting plate (3) and used for fixing heat supply pipelines, a heat supply pipeline body (5) arranged between the fixing mechanisms (4) of each group, and a guide mechanism (6) arranged on the mounting plate (3) and used for facilitating movement of the heat supply pipeline body (5). The guide mechanism (6) comprises a placing frame (601), a sliding part, a connecting part and two L-shaped plates (602), the placing frame (601) is fixedly arranged on the mounting plate (3), the sliding part is arranged in the placing frame (601), the connecting part is arranged on the sliding part, and each L-shaped plate (602) is fixedly arranged on the outer wall of the heat supply pipeline body (5). The sliding part comprises a first sliding rod (603), a sliding frame (604), two first springs (605), two second sliding rods (606), four second connecting rods (607), four movable parts (608) and four second springs (609), the first sliding rod (603) is fixedly arranged on the inner wall of the placing frame (601), the sliding frame (604) is movably sleeved on the outer wall of the first sliding rod (603), each first spring (605) is sleeved on the outer wall of the first sliding rod (603), each second sliding rod (606) is fixedly arranged on the inner wall of the placing frame (601), one end of each second connecting rod (607) is movably sleeved on the outer wall of the sliding frame (604), the other end of each second connecting rod (607) is movably sleeved on the outer wall of the movable part (608), each movable part (608) is movably sleeved on the outer wall of the second sliding rod (606), and each second spring (609) is sleeved on the outer wall of the second sliding rod (606). The connecting part comprises a connecting frame (610), a third bidirectional screw rod (611), two connecting pieces (612), two screw rods (613) and two nuts (614), the connecting frame (610) is fixedly arranged on the top of the outer wall of the sliding frame (604), the third bidirectional screw rod (611) is rotatably embedded on the inner wall of the connecting frame (610), each connecting piece (612) is threadedly connected to the outer wall of the third bidirectional screw rod (611), each connecting piece (612) is slidably penetrated through the top of the outer wall of the connecting frame (610), each screw rod (613) is fixedly arranged on the top of the outer wall of the connecting piece (612), each screw rod (613) is movably penetrated through the top of the outer wall of the L-shaped plate (602), and each nut (614) is threadedly connected to the outer wall of the screw rod (613). ​ ​ ​ ​ ​ ​ 2. A thermal conduit pipe support that prevents impact-induced instability of the pipe rack, according to claim 1, characterized in that: The lifting mechanism (2) comprises a first bidirectional threaded rod (201), two moving pieces (202), two first connecting rods (203) and a plurality of limiting rods (204), the first bidirectional threaded rod (201) is rotationally embedded in the inner wall of the base (1), each moving piece (202) is threadedly connected to the outer wall of the first bidirectional threaded rod (201), and each moving piece (202) is in sliding fit with the base (1), one end of each first connecting rod (203) is movably sleeved on the outer wall of the moving piece (202), and the other end of each first connecting rod (203) is movably sleeved on the outer wall of the mounting plate (3), and each limiting rod (204) is fixedly arranged on the top of the outer wall of the base (1), and the mounting plate (3) is in sliding fit with each limiting rod (204).

3. A thermal conduit pipe support that prevents impact-induced instability of the pipe support from a pipe rack, according to claim 2, characterized in that: Each group of the fixing mechanism (4) comprises a moving part, two moving racks (401), an adjusting part and a plurality of rubber blocks (402), the moving part is arranged on the mounting plate (3), each moving rack (401) is arranged on the moving part, the adjusting part is arranged on the moving rack (401), and each rubber block (402) is arranged on the adjusting part.

4. A thermal conduit pipe support according to claim 3, wherein: Each group of the moving part comprises a mounting frame (403), a second bidirectional threaded rod (404) and two sliding holes (405), the mounting frame (403) is fixedly arranged on the top of the outer wall of the mounting plate (3), the second bidirectional threaded rod (404) is rotationally embedded in the inner wall of the mounting frame (403), each sliding hole (405) is formed in the top of the outer wall of the mounting frame (403), each moving rack (401) is threadedly connected to the outer wall of the second bidirectional threaded rod (404), and each moving rack (401) movably penetrates the inner wall of the sliding hole (405).

5. A thermal conduit pipe support according to claim 4, wherein: Each group of the adjusting part comprises a fixed frame (406), an arc-shaped plate (407), a driving assembly and a plurality of movable assemblies, the fixed frame (406) is fixedly arranged on one side of the outer wall of the moving rack (401), the arc-shaped plate (407) is slidably embedded in the inner wall of the fixed frame (406), the driving assembly is arranged in the moving rack (401), and each group of the movable assembly is equidistantly arranged on the arc-shaped plate (407).

6. A thermal conduit pipe support that prevents impact-induced instability of the pipe support from a pipe rack, according to claim 5, characterized by: Each group of the driving assembly comprises a rotating shaft (408), a gear (409) and an arc-shaped rack (410), the rotating shaft (408) is rotationally embedded in the inner wall of the moving rack (401), the gear (409) is fixedly sleeved on the outer wall of the rotating shaft (408), the arc-shaped rack (410) is fixedly arranged on the outer wall of the arc-shaped plate (407), the arc-shaped rack (410) is in engagement with the gear (409), and the arc-shaped rack (410) movably penetrates one side of the outer wall of the fixed frame (406).

7. A thermal conduit pipe support that prevents impact-induced instability of the pipe support from a pipe rack, according to claim 6, characterized in that: Each of the activity assemblies comprises a cam hole (411), an activity rod (412), a limiting hole (413) and a connecting frame (414), the cam hole (411) is arranged on one side of the outer wall of the arc-shaped plate (407), the activity rod (412) is slidingly arranged in the inner wall of the cam hole (411), the limiting hole (413) is arranged on one side of the outer wall of the fixed frame (406), the activity rod (412) is slidingly arranged in the inner wall of the limiting hole (413), and the connecting frame (414) is fixedly arranged on one side of the outer wall of the activity rod (412); each of the rubber blocks (402) is fixedly arranged on one side of the outer wall of the connecting frame (414).

Citation Information

Patent Citations

  • Heat distribution pipeline support capable of preventing impact instability of pipe frame

    CN117739171A

  • Supporting structure for pipeline installation of water conservancy project and using method of supporting structure

    CN120042975A

  • Auxiliary supporting assembly for heating pipeline

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