Anti-slip pipe gallery support hanger
By designing anti-slip pipe gallery supports and hangers, and utilizing components such as support plates, clamps, and limiting mechanisms, the slippage problem caused by pipe vibration is solved, achieving stable clamping and continuous support of the pipe, and improving the stability of the support.
Patent Information
- Application Number
- CN202310722817.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2023-06-16
- Publication Date
- 2026-01-06
- Estimated Expiration
- 2043-06-16
AI Technical Summary
Existing pipe supports are prone to slippage when the pipe vibrates, causing unstable support.
The anti-slip pipe rack support uses components such as support plates, clamps, connecting toothed plates, connecting grooves, toothed blocks, pressure springs and connecting rods to achieve stable clamping and support of the pipes. The lifting limit mechanism and support plate provide continuous support when the pipes sway.
It effectively reduces the occurrence of pipe slippage during vibration, improves the stability and support effect of the pipe, and prevents the pipe from shifting position due to shaking.
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Figure CN116592205B_ABST
Abstract
Description
Technical Field
[0001] This application relates to the technical field of pipe supports, and in particular to an anti-slip pipe rack support. Background Technology
[0002] In the chemical and related industries, to facilitate production and reduce space usage, pipelines are often concentrated and arranged along the outside of various equipment or factory buildings. Pipe galleries are passageways used to house these pipelines. Pipes are typically laid out in the air within the pipe gallery and supported by brackets.
[0003] Existing pipe supports generally use a combination of pipe supports and supporting structures to support pipes. The pipe supports support the pipes, and the supporting structures below the pipe supports support both the pipe supports and the pipes above them, thus achieving support for the pipes inside the pipe gallery.
[0004] Regarding the aforementioned technologies, the inventors believe that supporting the pipes inside the pipe gallery with pipe supports can easily cause pipe vibration under the impact of the liquid inside the pipe. During the vibration process, the pipe may separate from the pipe support, causing the pipe to slip and resulting in unstable support of the pipe support. Summary of the Invention
[0005] To reduce slippage in pipes when they vibrate, this application provides an anti-slip pipe rack support.
[0006] The anti-slip pipe gallery support provided in this application adopts the following technical solution:
[0007] A pipe rack support includes a support plate, which is fixedly connected to the top side wall of the pipe rack for installing pipes. Two opposing clamping plates are connected below the support plate. One clamping plate has a connecting toothed plate fixedly connected to its side away from the support plate and close to the other clamping plate. The other clamping plate has a connecting groove for the connecting toothed plate to insert into. Multiple toothed blocks for meshing with the connecting toothed plate are fixedly connected to the groove wall. A connecting plate is provided between the two clamping plates, close to the support plate. A connecting bolt is fixedly connected to the connecting plate on its side close to each clamping plate. Each connecting bolt passes through the adjacent clamping plate and is slidably connected to it. A connecting nut is threaded to the end of each connecting bolt away from the connecting plate. A pressure spring is fitted between each connecting bolt and the clamping plate and the connecting plate.
[0008] By adopting the above technical solution, a support plate is installed above the pipe that needs support. Then, two clamps below the support plate are placed on both sides of the pipe. Next, the connecting toothed plate on one side of one clamp is inserted into the connecting groove of the other clamp, so that the connecting toothed plate meshes with the toothed block inside the connecting groove. Then, the connecting bolts on both sides of the connecting plate are inserted into the clamps near the connecting bolts. Then, the end of each connecting bolt that passes through the clamp is locked with a connecting nut, so that both ends of the pressure spring sleeved on each connecting bolt abut against the connecting plate and the clamp. When the pipe shakes, the clamps on both sides of the pipe always abut against the outer wall of the pipe under the action of the two pressure springs, thereby reducing the occurrence of pipe slippage caused by the clamps on both sides of the pipe not maintaining sufficient abutment against the pipe due to pipe shaking.
[0009] Optionally, each clamping plate is rotatably connected to a connecting rod on the side near the support plate, and each connecting rod is rotatably connected to a slider on the side away from the clamping plate. A slide rail is fixedly connected to the side of the support plate near each slider. Each slider is located inside the slide rail and is slidably connected to the inner wall of the slide rail. A sliding spring is provided in the sliding direction of each slider.
[0010] By adopting the above technical solution, when the pipe and support plate shake, the pipe drives the two clamping plates to move. During the movement of the two clamping plates, the connecting rod moves and rotates. During the movement of the connecting rod, the sliding plate moves along the slide groove. Since there are sliding springs on both sides of the slider, when the slider moves, it will be subjected to the opposite force of the sliding springs on both sides, so that the slider moves to the initial position. Then the slider drives the connecting rod to move, and the connecting rod drives the clamping plates to move, thereby reducing the degree of pipe shaking and thus reducing the occurrence of pipe slippage due to shaking.
[0011] Optionally, one side of the support plate is also provided with a lifting and limiting mechanism for limiting the position of the pipeline.
[0012] By adopting the above technical solution, the existence of the lifting and limiting mechanism allows the pipeline to be continuously limited during movement, thereby further reducing the occurrence of pipeline slippage caused by shaking.
[0013] Optionally, the lifting and limiting mechanism includes a follower component capable of synchronously lifting and lowering with the two clamping plates. The follower component is connected to a drive component, and the drive component is connected to a support plate for further supporting the pipeline. A support component for supporting the support plate is also provided on one side of the support plate.
[0014] By adopting the above technical solution, when the pipeline shakes, the follower component moves with the clamping plate. During the movement of the follower component, the drive component moves, and the drive component moves, which in turn moves the support plate. This achieves continuous support for the pipeline by the support plate located below the pipeline during the pipeline's movement. Furthermore, the support component can provide stable support for the support plate during its movement, thus achieving continuous support for the pipeline through the support plate during the pipeline's shaking.
[0015] Optionally, the follower assembly includes a lifting sleeve fixedly connected to the side of the support plate near the clamping plate. A lifting slide rod is slidably inserted inside the lifting sleeve. The end of the lifting slide rod away from the lifting sleeve is fixedly connected to the connecting plate. A downward pressure spring is provided at the end of the lifting slide rod inside the lifting sleeve for connecting the lifting slide rod to the lower surface of the support plate inside the lifting sleeve. Both sides of the lifting slide rod at the end inside the lifting sleeve are fixedly connected to protrusions. Each protrusion is slidably inserted into a notch on the side wall of the lifting sleeve. An upward push spring is fixed between each protrusion and the side wall of the lifting sleeve away from the support plate.
[0016] By adopting the above technical solution, when the pipe swaying causes the connecting plate to move up and down, the connecting plate drives the lifting slide rod to slide up and down inside the lifting sleeve. Due to the presence of the push spring and the compression spring, when the lifting slide rod moves, the push spring and the compression spring drive the lifting slide rod to move back to the initial position. When the lifting slide rod moves, it drives the connecting plate to move, so that the connecting plate can drive the two clamping plates to maintain the initial position, thereby further reducing the occurrence of position displacement caused by unstable support when the pipe sways.
[0017] Optionally, the drive assembly includes a plurality of lifting teeth fixed on both sides of the lifting slide bar, and the plurality of lifting teeth are all disposed through the lifting sleeve rod. Each lifting tooth on each side of the lifting slide bar is engaged with a follower gear. A rotating shaft is fixedly connected to one side of each follower gear. A drive gear is fixedly connected to one end of each of the two rotating shafts. A lifting rack is engaged on the side of each drive gear away from the other drive gear. The end of each lifting rack near the support plate is fixedly connected to the support plate.
[0018] By adopting the above technical solution, when the lifting slide bar moves up and down, the lifting slide bar drives the meshing follower gears on both sides to rotate. The rotation of the follower gears drives the drive gear to rotate. The rotation of the drive gear drives the lifting rack to move up and down. The movement of the lifting rack drives the support plate to move up and down. Thus, the movement of the support plate is achieved by the shaking of the pipeline, thereby enabling the support plate to maintain stable support for the outer wall of the pipeline during the shaking process.
[0019] Optionally, the support assembly includes a connecting rope fixedly connected to the side of each slider near the rotating shaft, the ends of the two connecting ropes away from the sliders being fitted onto the same fixed pulley, the ends of the two connecting ropes passing through the fixed pulley being fixedly connected to the same connecting plate, and the side of the connecting plate away from the connecting ropes being fixedly connected to the two lifting racks.
[0020] By adopting the above technical solution, when the two clamping plates move, the clamping plates drive the connecting rod to move, and the connecting rod drives the slider to move. During the movement of the slider, the connecting rope is pulled, thereby achieving support for the connecting plate and the two lifting racks below the connecting plate through the two connecting ropes. This reduces the occurrence of damage to the drive gear or lifting rack when the drive gear drives the lifting rack to move, as the support plate is only supported by two sets of meshing gears and racks.
[0021] Optionally, clamping pads are fixedly connected to the side of one of the clamps adjacent to the other clamp.
[0022] By adopting the above technical solution, the presence of the clamping gasket reduces the occurrence of pipe slippage during the clamping process of the two clamping plates.
[0023] In summary, this application includes at least one of the following beneficial technical effects:
[0024] 1. By using two clamping plates, two connecting bolts, two pressure springs, and the cooperation of connecting toothed plates, connecting grooves, and toothed blocks, the pipe can be fully clamped. When the pipe shakes, the clamping plates can be reduced from moving away from the pipe due to the shaking, thus preventing pipe slippage.
[0025] 2. The presence of two connecting rods rotatably connected to the clamping plate, two sliders rotatably connected to the connecting rods, two slide rails for the sliders to slide, and four sliding springs located on both sides of the two sliders ensures that when the clamping plate moves, the sliders move under the action of the sliding springs, thereby driving the clamping plate to move to the initial position through the connecting rods, thus reducing the possibility of the pipe swaying and moving.
[0026] 3. By combining the lifting and limiting mechanism with the support plate, the support plate can fully support the pipeline during the swaying process, thereby reducing the occurrence of pipeline instability caused by swaying. Attached Figure Description
[0027] Figure 1 This is a schematic diagram of the overall structure of an embodiment of this application.
[0028] Figure 2 This is a half-sectional schematic diagram of the overall structure of an embodiment of this application.
[0029] Figure 3 yes Figure 1 A partially enlarged schematic diagram of structure A in the middle.
[0030] Figure 4 This is a schematic diagram of the structure of the display lifting limit mechanism according to an embodiment of this application.
[0031] Figure 5 A half-section diagram of the driving component is displayed at that time.
[0032] Figure 6 yes Figure 5 A partially enlarged schematic diagram of the B-structure.
[0033] Explanation of reference numerals in the attached drawings: 1. Support plate; 2. Clamping plate; 21. Connecting toothed plate; 22. Connecting groove; 23. Toothed block; 24. Clamping washer; 3. Connecting plate; 31. Connecting bolt; 32. Connecting nut; 33. Compression spring; 4. Connecting rod; 41. Slider; 42. Slide rail; 43. Sliding spring; 5. Lifting limit mechanism; 51. Follower assembly; 511. Lifting sleeve; 5111. Lifting groove; 512. Lifting slide rod; 5121. 513. Protrusion; 514. Compression spring; 52. Push spring; 52. Drive assembly; 521. Lifting gear; 522. Follower gear; 523. Rotating shaft; 5231. Fixing plate; 524. Drive gear; 525. Lifting rack; 5251. Drive rod; 53. Support assembly; 531. Connecting rope; 532. Fixed pulley; 533. Connecting plate; 534. Positioning block; 535. Positioning rod; 5351. Slide groove; 6. Support plate. Detailed Implementation
[0034] The following is in conjunction with the appendix Figure 1 -Appendix Figure 6 This application will be described in further detail.
[0035] This application discloses an anti-slip pipe gallery support bracket, referring to... Figure 1 and Figure 2 The system includes a support plate 1, which is rectangular in shape. The support plate 1 is located inside the pipe rack used for installing and placing pipes, and the support plate 1 abuts against the inner top wall of the pipe rack. Expansion bolts are provided at the corners of the support plate 1. Each expansion bolt passes through the support plate 1 and is fixedly connected to the inner top wall of the pipe rack. The expansion bolts are not shown in the figure.
[0036] Two clamping plates 2 are connected to the side of the support plate 1 away from the top wall of the pipe gallery. The two clamping plates 2 are arranged opposite each other, and grooves are formed on the opposite surfaces of both clamping plates 2 to facilitate clamping the pipes. A connecting toothed plate 21 is fixedly connected to the side of one clamping plate 2 away from the support plate 1 and close to the other clamping plate 2. A connecting groove 22 is formed on the other clamping plate 2 at the corresponding position of the connecting toothed plate 21, and the connecting toothed plate 21 can be inserted into the connecting groove 22. Multiple toothed blocks 23 are also fixedly connected to the bottom wall of the connecting groove 22. When the connecting toothed plate 21 is inserted into the connecting groove 22, one side of the connecting toothed plate 21 can engage with the toothed blocks 23 inside the connecting groove 22. The teeth on one side of the connecting toothed plate 21 and the toothed blocks 23 are all set as beveled teeth, which can reduce the displacement of the connecting toothed plate inserted into the connecting groove 22.
[0037] A connecting plate 3 is provided on the side of the two clamping plates 2 that are close to each other and near the support plate 1. A connecting bolt 31 is fixedly connected to the side of the connecting plate 3 near each clamping plate 2. The end of each connecting bolt 31 away from the connecting plate 3 passes through the adjacent clamping plate 2 and is slidably connected to the clamping plate 2. A connecting nut 32 is threadedly connected to the end of each connecting bolt 31 that passes through the clamping plate 2. A pressure spring 33 is sleeved on the outer side of the end of each connecting bolt 31 near the connecting plate 3. The end of each pressure spring 33 near the connecting plate 3 is fixedly connected to the connecting plate 3, and the end of each pressure spring 33 away from the connecting plate 3 abuts against the adjacent clamping plate 2.
[0038] When it is necessary to clamp the pipe, simply place the support plate 1 above the pipe to be clamped and connect the support plate 1 to the inner top wall of the pipe rack with multiple expansion bolts. Then, place two clamping plates 2 on both sides of the pipe to be clamped and supported, and then move the two clamping plates 2 toward each other so that the connecting toothed plate 21 on one side of one clamping plate 2 can be inserted into the connecting groove 22 on the other side of the clamping plate 2 and mesh with the toothed block 23 inside the connecting groove 22 of the other clamping plate 2.
[0039] Both connecting bolts 31 are inserted into the adjacent clamping plate 2, and their positions are fixed by connecting nuts 32. Then, the end of the pressure spring 33 fitted on each connecting bolt 31, away from the connecting plate 3, abuts against the side wall of the adjacent clamping plate 2. This achieves sufficient clamping of the pipe.
[0040] The pipe is clamped by two clamping plates 2, and a pressure spring 33 and a connecting toothed plate 21 are provided between the two clamping plates 2. When the pipe shakes due to the impact of the liquid flowing inside the pipe, the two pressure springs 33 between the two clamping plates 2 counteract the force on the pipe through their own elasticity. Furthermore, since the connecting toothed plate 21 meshes with the toothed block 23, the connection between the two clamping plates 2 can be stabilized during the shaking of the pipe, thereby reducing the trouble of the pipe detaching from the support during the shaking due to the impact of the liquid inside the pipe.
[0041] Each clamping plate 2 is rotatably connected to a connecting rod 4 on the side near the support plate 1. Each connecting rod 4 is rotatably connected to a slider 41 on the side away from the clamping plate 2. The rotation axes at both ends of each connecting rod 4 are parallel and parallel to the length direction of the pipe held by the two clamping plates 2. A slide rail 42 is fixedly connected to the lower surface of the support plate 1 on the side near each slider 41, with the extensions of the center lines of the two slide rails 42 coinciding. Each slider 41 is inserted into the adjacent slide rail 42 and slidably connected to the inner wall of the slide rail 42. A sliding spring 43 is fixedly connected to the portion of each slider 41 near the other slider 41 inside the slide rail 42, with the end of each sliding spring 43 away from the slider 41 fixedly connected to the inner wall of the slide rail 42. The same sliding spring 43 is fixedly connected to the side of each slider 41 away from the other slider 41, with the ends of both sliding springs 43 away from the slider 41 fixedly connected to the inner wall of the slide rail 42.
[0042] When the two pipes shake, the clamp 2 shakes under the influence of the pipes. During the shaking of the clamp 2, the connecting rod 4 shakes. During the shaking of the connecting rod 4, the slider 41 slides inside the slide rail 42. Due to the presence of springs inside the slide rail 42, the slider 41 is pushed to the middle position of the slide rail 42 under the action of the springs on both sides. Thus, the pipe moves back to the initial position under the influence of the slider 41 and the connecting rod 4 during the shaking, thereby reducing the slippage caused by the internal liquid impact vibration of the pipe.
[0043] Reference Figure 2 , Figure 3 and Figure 4 The lower surface of the support plate 1 is also provided with a lifting limit mechanism 5, which is used to further limit the position of the pipeline.
[0044] Because of the existence of the lifting limit mechanism 5, when the pipeline vibrates, it is difficult for the pipeline to shake due to the impact of internal liquid and thus cause positional displacement.
[0045] The lifting and limiting mechanism 5 includes a follower component 51, which is connected to two clamping plates 2 and moves with the clamping plates 2 as they move up and down. The lifting and limiting mechanism 5 also includes a drive component 52, which is connected to and driven by the follower component 51. A support plate 6 is connected to one side of the drive component 52. During actual use, the support plate 6 is placed below the pipe to support it. The upper surface of the support plate 6 has a downward-facing groove, and the inner wall of the groove abuts against the outer wall of the pipe. The support plate 6 is connected to and driven by the drive component 52. The lifting and limiting mechanism 5 also includes a support component 53, which provides further support to the support plate 1.
[0046] When the pipeline shakes, the two clamps 2 shake synchronously with the pipeline. Then, the two clamps 2 drive the follower component 51 to move. During the movement, the follower component 51 drives the drive component 52 to move. The drive component 52 drives the support plate 6 to move synchronously with the pipeline, thereby providing further support for the pipeline. The support component 53 supports the support plate 6, thereby further strengthening the support for the pipeline.
[0047] The follower assembly 51 includes a lifting sleeve 511 located above the two connecting plates 3. The lifting sleeve 511 is vertically arranged and its opening faces downward. A lifting slide rod 512 is slidably inserted into the inside of the lifting sleeve 511. Two opposing protrusions 5121 are fixedly connected to the side wall of one end of the lifting slide rod 512 inside the lifting sleeve 511. Lifting grooves 5111 are provided at the corresponding positions of the lifting sleeve 511 and the two protrusions 5121. Both lifting grooves 5111 are vertically arranged. Each protrusion 5121 is inserted into the nearest lifting groove 5111 and slidably connected to the inner wall of the lifting groove 5111.
[0048] A downward pressure spring 513 is fixedly connected to the end side wall of the lifting slide rod 512 inside the lifting sleeve 511. The end of the downward pressure spring 513 away from the lifting slide rod 512 is fixedly connected to the inner top wall of the lifting sleeve 511. An upward push spring 514 is fixedly connected between the lower surface of each protrusion 5121 and the inner bottom wall of the lifting sleeve 511. The end of the lifting slide rod 512 away from the lifting sleeve 511 is fixedly connected to the upper surface of the connecting plate 3.
[0049] When the pipe shakes, the two clamping plates 2 shake along with the pipe. During the shaking of the two clamping plates 2, the connecting plate 3 shakes. During the shaking of the connecting plate 3, the lifting slide rod 512 moves up and down inside the lifting sleeve 511. Due to the presence of the downward spring 513 and the upward spring 514, the lifting slide rod 512 can return to its initial position under the action of the two springs each time it moves, thus achieving the effect of following the movement.
[0050] Reference Figure 1 , Figure 4 and Figure 5 The drive assembly 52 includes multiple lifting teeth 521 fixedly connected to opposite sides of the sidewall of the lifting slide bar 512. Each set of lifting teeth 521 has a follower gear 522 meshing on one side. A rotating shaft 523 is fixedly connected through and through the middle of each follower gear 522, and both rotating shafts 523 are horizontally arranged. A fixing plate 5231 is rotatably sleeved on each rotating shaft 523. The end of the fixing plate 5231 away from the rotating shaft 523 is fixedly connected to the lower surface of the support plate 1. A drive gear 524 is fixedly connected to the end of each rotating shaft 523 away from the follower gear 522. A lifting rack 525 meshes on the side of each drive gear 524 away from the other drive gear 524. A drive rod 5251 is fixedly connected to the lower end face of each lifting rack 525. In this embodiment, the drive rod 5251 is L-shaped, and the end of each drive rod 5251 away from the lifting rack 525 is fixedly connected to the upper surface of the support plate 6.
[0051] When the lifting slide bar 512 moves up and down under the drive of the connecting plate 3, the lifting slide bar 512 drives the lifting gears 521 on both sides to move up and down. During the up and down movement, the lifting gears 521 drive the follower gear 522 meshing on one side to rotate. The follower gear 522 drives the rotating shaft 523 and the drive gear 524 at the other end of the rotating shaft 523 to rotate. During the rotation, the drive gear 524 drives the lifting rack 525 to move up and down. During the movement, the lifting rack 525 drives the support plate 6 to move up and down, thereby realizing the synchronous movement of the support plate 6 and the pipe above the support plate 6, thus realizing the continuous support of the pipe by the support plate 6 during the swaying of the pipe.
[0052] Reference Figure 4 , Figure 5 and Figure 6 The support assembly 53 includes a connecting rope 531 fixedly connected to the side of each slider 41 near the lifting rack 525. A fixed pulley 532 is provided at the middle position of the two sliders 41 near the connecting rope 531, and the fixed pulley 532 is mounted on the lower surface of the support plate 1. The ends of the two connecting ropes 531 near the fixed pulley 532 are both attached to the fixed pulley 532, and the ends of the two connecting ropes 531 passing through the fixed pulley 532 are both set vertically downward. The ends of the two connecting ropes 531 away from the slider 41 are both fixedly connected to the same connecting plate 533. The connecting plate 533 is set horizontally, and the lower surface of the connecting plate 533 is fixedly connected to the two lifting racks 525.
[0053] Each lifting rack 525 has a positioning block 534 fixedly connected to the end away from the other lifting rack 525. Each lifting rack 525 has a positioning rod 535 on the side away from the other lifting rack 525. Both positioning rods 535 are vertically arranged, and the upper end face of each positioning rod 535 is fixedly connected to the lower surface of the support plate 1. Each positioning rod 535 has a groove 5351 on the side near the lifting rack 525. Each groove 5351 is opened along the length of the positioning rod 535, and each positioning block 534 is inserted into the nearest groove 5351 and slidably connected to the inner wall of the groove 5351.
[0054] When the lifting slide bar 512 moves up and down, the two sliders 41 simultaneously drive the connecting rope 531 to move, and the two connecting ropes 531 drive the connecting plate 533 to move. This achieves the restriction of the position of the lifting rack 525 by the connecting rope 531 and the connecting plate 533 during the up and down movement of the two lifting racks 525. Furthermore, since each lifting rack 525 has a positioning block 534 that is inserted into the slide groove 5351 on one side, the lifting rack 525 can be in a stable position during the up and down movement.
[0055] Reference Figure 1 Each clamping plate 2 has a clamping pad 24 fixedly connected inside the groove opened near another clamping plate 2. The clamping pad 24 is made of flexible materials such as rubber.
[0056] The presence of the clamping gasket 24 makes the two clamping plates 2 more stable during the clamping process of the pipe.
[0057] The implementation principle of the anti-slip pipe gallery support in this application embodiment is as follows: When it is necessary to clamp the pipe, two clamping plates 2 are placed on both sides of the pipe. Then, the connecting toothed plate 21 is inserted into the connecting groove 22 and meshes with the toothed block 23 inside the connecting groove 22. Then, two connecting bolts 31 are passed through one end of the clamping plate 2 and fixed by connecting nuts 32. The pipe is then placed above the support plate 6.
[0058] When the pipeline shakes, the pipeline causes the lifting slide bar 512 to move up and down. The lifting slide bar 512 drives the drive gear 524 to rotate. During the rotation of the drive gear 524, the lifting rack 525 moves up and down. During the up and down movement of the lifting rack 525, the support plate 6 moves up and down, thereby achieving synchronous movement between the support plate 6 and the pipeline.
[0059] When the pipe moves up and down, the two sliders 41 move left and right. The movement of the sliders 41 drives the connecting rope 531 to move, and the movement of the connecting rope 531 drives the connecting plate 533 to move. Thus, during the movement of the lifting rack 525, the connecting plate 533 provides continuous support for the lifting rack 525 and the support plate 6.
[0060] The above are all preferred embodiments of this application, and are not intended to limit the scope of protection of this application. Therefore, all equivalent changes made in accordance with the structure, shape and principle of this application should be covered within the scope of protection of this application.
Claims
1. An anti-slip pipe rack support hanger characterized by: The utility model provides a pipeline supporting device, including support board (1), support board (1) is fixedly connected with the pipe gallery roof side wall for installing the pipeline to place, the lower side of support board (1) is connected with two oppositely arranged clamping plates (2), one of clamping plates (2) is fixedly connected with the connecting toothed plate (21) on the side away from support board (1) and close to the side of another clamping plate (2), the connecting slot (22) of another clamping plate (2) is opened and is inserted with the connecting toothed plate (21), the groove wall of connecting slot (22) is fixedly connected with a plurality of tooth blocks (23) for engaging with connecting toothed plate (21), and the side close to support board (1) between two clamping plates (2) is equipped with the connecting plate (3), the side close to each clamping plate (2) of connecting plate (3) is fixedly connected with the connecting bolt (31), and each connecting bolt (31) is slidably connected with the clamping plate (2) and is inserted into the clamping plate (2) away from the connecting plate (3), and the end of each connecting bolt (31) away from the connecting plate (3) is threadedly connected with the connecting nut (32), and each connecting bolt (31) is sleeved with the pressure spring (33) between the clamping plate (2) and the connecting plate (3); The side close to support board (1) of each clamping plate (2) is rotatably connected with the connecting rod (4), the side away from clamping plate (2) of each connecting rod (4) is rotatably connected with the sliding block (41), and the side close to each sliding block (41) of support board (1) is fixedly connected with the slide rail (42), each sliding block (41) is located in the slide rail (42) and is slidably connected with the inner wall of slide rail (42), and the sliding spring (43) is arranged in the sliding direction of each sliding block (41); The side of support board (1) is also equipped with the lifting limiting mechanism (5) for limiting the pipeline; The lifting limiting mechanism (5) includes the follow-up assembly (51) capable of synchronous lifting with two clamping plates (2), the driving assembly (52) is connected with the follow-up assembly (51), the supporting plate (6) for further supporting the pipeline is connected with the driving assembly (52), and the supporting assembly (53) for supporting the supporting plate (6) is further arranged on the supporting plate (6). The follow-up assembly (51) comprises a lifting sleeve (511) fixedly connected to the support plate (1) near the side of the clamping plate (2), a lifting slide rod (512) is slidingly inserted into the lifting sleeve (511), one end of the lifting slide rod (512) away from the lifting sleeve (511) is fixedly connected with the connecting plate (3), the end of the lifting slide rod (512) located in the lifting sleeve (511) is provided with a pressing spring (513) for connecting the lifting slide rod (512) and the lower surface of the support plate (1) in the lifting sleeve (511), the two sides of the end of the lifting slide rod (512) located in the lifting sleeve (511) are fixedly connected with protrusions (5121), each protrusion (5121) is slidingly inserted into the notch on the side wall of the lifting sleeve (511), and an upward spring (514) is fixedly arranged between each protrusion (5121) and the side wall of the lifting sleeve (511) away from the support plate (1).
2. The anti-slip pipe rack support and hanger according to claim 1, wherein: The driving assembly (52) comprises a plurality of lifting teeth (521) fixedly arranged on the two sides of the lifting slide rod (512), and the lifting teeth (521) are arranged through the lifting sleeve (511), the lifting teeth (521) on each side of the lifting slide rod (512) are engaged with a follow-up gear (522), one side of each follow-up gear (522) is fixedly connected with a rotating shaft (523), one end of the two rotating shafts (523) is fixedly connected with a driving gear (524), and one side of each driving gear (524) away from the other driving gear (524) is engaged with a lifting rack (525), and one end of each lifting rack (525) near the supporting plate (6) is fixedly connected with the supporting plate (6).
3. The anti-slip pipe rack support and hanger according to claim 2, wherein: The support assembly (53) comprises a connecting rope (531) fixedly connected to one side of each sliding block (41) near the rotating shaft (523), one end of the two connecting ropes (531) away from the sliding block (41) is sleeved on the same fixed pulley (532), and one end of the two connecting ropes (531) passing through the fixed pulley (532) is fixedly connected with the same connecting plate (533), and one side of the connecting plate (533) away from the connecting rope (531) is fixedly connected with the two lifting racks (525).
4. The anti-slip pipe rack support and hanger according to any one of claims 1-3, wherein: One side of each clamping plate (2) near the other clamping plate (2) is fixedly connected with a clamping gasket (24).
Citation Information
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