A seismic support and hanger structure and its use method
By designing a combination of components such as a support platform and a buffer telescopic member, the problem of insufficient height adjustment accuracy of existing seismic supports and hangers is solved, and the effects of precise adjustment and simplified installation are achieved.
Patent Information
- Application Number
- CN202510174943.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-18
- Publication Date
- 2025-09-26
- Estimated Expiration
- 2045-02-18
AI Technical Summary
The height adjustment accuracy of existing seismic supports and hangers is insufficient, the operation is troublesome, and they need to be disassembled and reinstalled.
An anti-seismic support and hanger structure is designed, which includes a support platform, a horizontal slide, a horizontal moving part, a buffer telescopic part, a lifting assembly and a rotating assembly. Through the combination of the horizontal moving part and the buffer telescopic part, flexible adjustment of the height and angle can be achieved, simplifying the installation process.
It realizes precise height and angle adjustment of seismic supports and hangers, simplifies the installation process and improves installation efficiency.
Smart Images

Figure CN119934312B_ABST
Abstract
Description
Technical Field
[0001] The invention relates to an anti-seismic support and hanger structure and a use method thereof, belonging to the field of hangers. Background Art
[0002] Seismic supports and hangers are used to limit the displacement of auxiliary electromechanical engineering facilities, control the vibration of the facilities, and transfer the load to various components or devices on the load-bearing structure. After seismic reinforcement, the electromechanical engineering facilities such as water supply and drainage, fire protection, heating, ventilation, air conditioning, gas, heat, electricity, and communications of buildings can reduce earthquake damage, reduce and prevent the occurrence of secondary disasters as much as possible when an earthquake with the seismic fortification intensity of the local area occurs, thereby achieving the purpose of reducing casualties and property losses.
[0003] The height of existing seismic supports and hangers is fixed, and some height-adjustable supports and hangers have also appeared, but the height is adjusted through multiple spare holes. The height of this adjustment is related to the distance between the two spare holes, resulting in insufficient height adjustment accuracy and the need to disassemble and reinstall, which is troublesome to operate. Summary of the Invention
[0004] In view of the deficiencies in the prior art, the present invention aims to provide a seismic support and hanger structure and a method of using the same.
[0005] In order to achieve the above object, the present invention is implemented through the following technical solutions:
[0006] The top of the said buffer telescopic member is fixed with a U-shaped seat, and a connecting plate is rotatably installed in the said U-shaped seat. Three buffer grooves are provided on the bottom end surface of the said top circular plate. A round rod is fixed in the said buffer groove, and a square block is slidably sleeved on the said round rod. A spring is fixed at both ends of the said square block, and the spring is sleeved on the said circular rod. On rod one, the other end of the spring one is fixed to the inner end wall of the buffer groove, and both ends of the square block are also fixed with dust-proof bellows, the other end of the dust-proof bellows is fixed to the inner end wall of the buffer groove, and the spring one is located inside the corresponding dust-proof bellows, and the connecting plate is fixedly connected to the corresponding square block with a screw, a dust-proof cylinder is provided in the horizontal slide groove, and a lifting assembly is provided inside the dust-proof cylinder, an extension plate extending out of the dust-proof cylinder is provided on the lifting assembly, and the other end of the extension plate is fixedly provided with a support plate, and a clamping cylinder is installed on the support plate in cooperation with the rotating assembly, a sliding arc-shaped clamping plate is provided in the clamping cylinder, and a rotating clamping piece connecting the arc-shaped clamping plate is provided on the clamping cylinder.
[0007] Furthermore, the horizontal moving member includes two upper and lower horizontal plates, a plurality of threaded columns are fixed on the bottom end of the upper horizontal plate, and a through groove for the threaded columns to pass through is opened on the lower horizontal plate, and nuts are matched on the threaded columns.
[0008] Furthermore, the buffer telescopic part includes an upper square sleeve and a lower square sleeve, the lower square sleeve is inserted into the upper square sleeve, a plurality of springs 2 are fixedly provided in the upper square sleeve, and the other end of the spring 2 is fixedly connected to the end of the lower square sleeve.
[0009] Furthermore, a mouth-shaped plate is fixedly provided on the top of the upper horizontal plate, the cylinder is located inside the mouth-shaped plate, traction grooves are provided on both sides of the inner wall of the mouth-shaped plate, a balance block extending into the traction groove is fixed on the outer wall of the cylinder, and a plurality of buffer parts are connected between the inner wall of the mouth-shaped plate and the outer wall of the cylinder.
[0010] Furthermore, the buffer member includes fixing plates fixed on the inner wall of the opening mold plate and the outer wall of the cylinder, and a spring three and an auxiliary dustproof bellows are fixed between the fixing plates, and the spring three is located on the inner side of the auxiliary dustproof bellows.
[0011] Furthermore, the lifting assembly includes a screw rod rotatably arranged inside the dustproof cylinder, a threaded plate is threadedly sleeved on the outer surface of the screw rod, an arc-shaped shielding long plate is fixed on the threaded plate in cooperation with the fixing rod, the arc-shaped shielding long plate is fixedly connected to the extension plate, a lifting groove is opened on the outer wall of the dustproof cylinder for the extension plate to pass through, a vertical traction rod is fixedly provided in the dustproof cylinder, the threaded plate is slidably sleeved on the vertical traction rod, the bottom end of the screw rod passes through the dustproof cylinder, and a manual turntable is fixedly provided.
[0012] Furthermore, the rotating assembly includes a round rod fixed to the bottom end of the clamping cylinder, a setting groove is opened in the support plate, a bearing is provided in the setting groove, the round rod passes through the setting groove and is connected to the bearing, an external thread is engraved on the outer surface of the round rod, and a secondary nut is provided on the threaded sleeve at the bottom of the round rod.
[0013] Furthermore, a secondary fixed platform is fixed on the outer surface of the dustproof cylinder, a secondary screw rod is passed through the horizontal slide groove, and the secondary fixed platform is threaded on the secondary screw rod. A dust cover is provided between the secondary fixed platform and the inner wall of the horizontal slide groove. There are two dust covers, one end of the secondary screw rod is connected to the rotating disk, and the other end of the secondary screw rod is sleeved with a secondary bearing fixed to the inner wall of the horizontal slide groove, and the secondary bearing is located in the dust cover.
[0014] Furthermore, the rotating clamping member includes a threaded rod with a thread passing through the inside of the clamping cylinder, a secondary manual turntable is fixed to the top of the threaded rod, the bottom of the threaded rod is in the shape of a T-shaped round head, the top of the arc-shaped clamping plate is fixed with a fixed platform, a T-shaped rotating groove is opened inside the fixed platform, the bottom of the threaded rod is rotatably set inside the T-shaped rotating groove, and a plurality of telescopic rods are fixed between the arc-shaped clamping plate and the top of the clamping cylinder.
[0015] A method for using a seismic support and hanger structure comprises the following steps:
[0016] Step 1: First, install the cylinder connected to the horizontal moving part and the buffer telescopic part and the top circular plate thereon. Finally, the top circular plate is indirectly installed on the supporting platform. The top circular plate is installed on the top of the wall, and finally the connected supporting platform is suspended.
[0017] Step 2: Then, a buffer connection is performed through the buffer telescopic member, which has a certain buffering effect when suspending the support platform, and the buffer telescopic member is a movable connection. The buffer telescopic member cooperates with the movable shaft and the movable block. The bottom of the buffer telescopic member is movably connected to the cylinder, and the inclination of the buffer telescopic member can be manually adjusted. Finally, the U-shaped seat and the connecting plate at the top of the buffer telescopic member are adjusted. After the inclination range of the connecting plate is adjusted, it better corresponds to the square block and is correspondingly installed on the square block with screws;
[0018] Step 3: The designed spring 1 is used to ensure the buffering and anti-seismic effect. The designed buffer telescopic member plays a supporting and buffering role. The overall anti-seismic support and hanger has been fixed and installed. Through the design of the lifting component, the extension plate and the support plate are driven to rise, and the clamping cylinder is driven to rise and fall, so that the height of the clamping cylinder meets the height of the subsequent pipeline installation.
[0019] Step 4: Finally, in conjunction with the design of the rotating assembly, ensure that the clamping cylinder can produce manually adjustable rotation, so that the orientation angle of the clamping cylinder can be effectively adjusted, and the orientation position of the clamping cylinder is more consistent with the orientation of the subsequent pipeline installation.
[0020] Beneficial effects of the present invention:
[0021] Through the design of the horizontal moving part, the cylinder connected to the horizontal moving part and the buffer telescopic part and the top circular plate thereon are installed. Finally, the top circular plate is indirectly installed on the supporting platform, the top circular plate is installed on the top of the wall, and the finally connected supporting platform is suspended.
[0022] The buffer connection is performed through the set buffer telescopic parts, which has a certain buffering effect when the suspension support platform is suspended, and the buffer telescopic parts are movable connections. The buffer telescopic parts cooperate with the movable shaft and movable blocks. The bottom of the buffer telescopic parts is movably connected to the cylinder. The inclination of the buffer telescopic parts can be manually adjusted, and finally the U-shaped seat and the connecting plate inclination at the top of the buffer telescopic parts are adjusted. There are three buffer telescopic parts in total, forming a triangle shape. The inclination range of the connecting plates in three directions is adjusted to better correspond to the square blocks, and they are installed accordingly on the square blocks, cooperate with screws, and the designed springs to ensure the buffering and anti-seismic effect. The designed buffer telescopic parts play a supporting and buffering anti-seismic role.
[0023] The overall seismic support and hanger has been fixed and installed. Secondly, through the design of the lifting component, the extension plate and the support plate are driven to rise, and the clamping cylinder is driven to rise and fall, so that the height of the clamping cylinder meets the height of the subsequent pipeline installation. Secondly, with the design of the rotating component, it is ensured that the clamping cylinder can produce manual adjustment rotation, so that the orientation angle of the clamping cylinder can be effectively adjusted. The orientation position of the clamping cylinder is more in line with the orientation of the subsequent pipeline installation. The overall design is simple. The overall seismic support and hanger is installed first, and then the required pipelines are installed. This avoids installing the pipeline first and then lifting the seismic support and hanger and the installed pipeline to the top of the wall for installation. The entire installation is simpler and improves its installation efficiency. BRIEF DESCRIPTION OF THE DRAWINGS
[0024] In order to more clearly illustrate the embodiments of the present invention or the technical solutions in the prior art, the following briefly introduces the drawings required for use in the embodiments. Obviously, the drawings described below are only some embodiments of the present invention. For ordinary technicians in this field, other drawings can be obtained based on these drawings without paying any creative work.
[0025] Figure 1 This is a front view of an anti-seismic support and hanger structure and a method of using the same according to the present invention;
[0026] Figure 2 This is a schematic diagram of a cutout plate of a seismic support and hanger structure of the present invention;
[0027] Figure 3 This is a schematic diagram of a top circular plate of an anti-seismic support and hanger structure of the present invention;
[0028] Figure 4 This is a schematic diagram of a horizontal moving part of an anti-seismic support and hanger structure of the present invention.
[0029] Figure 5 This is a schematic diagram of a buffer expansion member of an anti-seismic support and hanger structure of the present invention;
[0030] Figure 6 This is a schematic diagram of the connection between the support platform and the dustproof cylinder of an anti-seismic support and hanger structure of the present invention;
[0031] Figure 7 This is a schematic diagram of the interior of a dustproof cylinder of an anti-seismic support and hanger structure of the present invention;
[0032] Figure 8 This is a schematic diagram of a lifting trough of an anti-seismic support and hanger structure of the present invention;
[0033] Figure 9 This is a schematic diagram of a rotary clamping member of a seismic support and hanger structure of the present invention;
[0034] Figure 10A schematic diagram of a fixing platform for an anti-seismic support and hanger structure according to the present invention;
[0035] Figure 11 This is a schematic diagram of a secondary fixing platform of an anti-seismic support and hanger structure of the present invention.
[0036] Figure: 1. Support platform; 2. Horizontal slide; 3. Cylinder; 4. Movable groove; 5. Movable shaft; 6. Movable block; 7. U-shaped seat; 8. Auxiliary movable shaft; 9. Connecting plate; 10. Buffer groove; 11. Round rod 1; 12. Square block; 13. Spring 1; 14. Dustproof bellows; 15. Dustproof cylinder; 16. Extension plate; 17. Support plate; 18. Clamping cylinder; 19. Arc clamping plate; 20. Horizontal plate; 21. Threaded column; 22. Through groove; 23. Nut; 24. Upper square sleeve; 25. Lower square Sleeve; 26. Mouth plate; 27. Traction groove; 28. Balance block; 29. Spring three; 30. Screw; 31. Threaded plate; 32. Arc-shaped shielding long plate; 33. Lifting groove; 34. Vertical traction rod; 35. Manual turntable; 36. Round rod; 37. Bearing; 38. Threaded rod; 39. Auxiliary manual turntable; 40. Fixed platform; 41. T-shaped turning groove; 42. Telescopic rod; 43. Top circular plate; 44. Spring two; 45. Auxiliary dustproof bellows; 46. Auxiliary fixed platform; 47. Auxiliary screw; 48. Dust cover. DETAILED DESCRIPTION
[0037] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.
[0038] See also Figure 1-11The present invention provides a technical solution: an anti-seismic support and hanger structure, including a supporting platform 1 and two top circular plates 43, the supporting platform 1 is provided with a horizontal slide 2, two horizontal moving parts are installed in the horizontal slide 2, a cylinder 3 is slidingly provided at the top of the horizontal moving part, three movable grooves 4 are provided at the edge of the top surface of the cylinder 3, movable blocks 6 are rotatably installed in the movable groove 5 through the movable shaft 5, and buffer telescopic parts are provided on the movable blocks 6. A U-shaped seat 7 is fixed on the top of the buffer telescopic part, and a connecting plate 9 is rotatably installed in the U-shaped seat 7 through the secondary movable shaft 8, and three buffer grooves 10 are provided on the bottom end surface of the top circular plate 43, a round rod 11 is fixed in the buffer groove 10, a square block 12 is slidably sleeved on the round rod 11, and a spring 13 is fixed at both ends of the square block 12, and the spring 13 is sleeved on the On the round rod 11, the other end of the spring 13 is fixed on the inner end wall of the buffer groove 10, and the two ends of the square block 12 are also fixed with dustproof bellows 14, the other end of the dustproof bellows 14 is fixed on the inner end wall of the buffer groove 10, and the spring 13 is located inside the corresponding dustproof bellows 14, and the connecting plate 9 is fixedly connected with the corresponding square block 12 with screws. A dustproof cylinder 15 is provided in the horizontal slide groove 2, and a lifting component is provided inside the dustproof cylinder 15. An extension plate 16 extending out of the dustproof cylinder 15 is provided on the lifting component, and a support plate 17 is fixed on the other end of the extension plate 16. A clamping cylinder 18 is installed on the support plate 17 to cooperate with the rotating component, and a sliding arc-shaped clamping plate 19 is provided in the clamping cylinder 18, and a rotating clamping member connecting the arc-shaped clamping plate 19 is provided on the clamping cylinder 18.
[0039] See Figure 1 and Figure 4 The horizontal moving part includes two upper and lower horizontal plates 20. A plurality of threaded columns 21 are fixed at the bottom end of the upper horizontal plate 20. A through groove 22 for the threaded column 21 to pass through is opened on the lower horizontal plate 20. The threaded column 21 is matched with a nut 23. The upper and lower horizontal plates 20 better correspond to the top and bottom surfaces of the support platform 1. The threaded column 21 passes through the through groove 22, and the bottom of the threaded column 21 is threaded into the nut 23. Tighten the nut 23 to complete the fixation of the horizontal moving part.
[0040] See Figure 5 The buffer telescopic part includes an upper square sleeve 24 and a lower square sleeve 25. The lower square sleeve 25 is inserted into the upper square sleeve 24. A plurality of springs 24 are fixedly provided in the upper square sleeve 24. The other end of the spring 24 is fixedly connected to the end of the lower square sleeve 25. The design of the spring 24 plays a role in supporting, buffering and shock resistance.
[0041] See Figure 1-2 , a hole molded plate 26 is fixed on the top of the upper horizontal plate 20, and the cylinder 3 is located inside the hole molded plate 26. Traction grooves 27 are provided on both sides of the inner wall of the hole molded plate 26, and a balance block 28 extending into the traction groove 27 is fixed on the outer wall of the cylinder 3. A plurality of buffers are connected between the inner wall of the hole molded plate 26 and the outer wall of the cylinder 3, and the buffer includes a fixing piece fixed on the inner wall of the hole molded plate 26 and the outer wall of the cylinder 3. A spring three 29 and an auxiliary dustproof bellows 45 are fixed between the fixing pieces. The spring three 29 is located on the inner side of the auxiliary dustproof bellows 45. The spring three 29 plays a role of horizontal buffering and shock resistance, and the spring three 29 is wrapped as a whole inside the auxiliary dustproof bellows 45, plays a supporting and dustproof role, and plays a role in avoiding direct contact with the outside world, and has a good dustproof and rust-proof effect.
[0042] See Figure 7-8 The lifting assembly includes a screw rod 30 rotatably arranged inside the dustproof cylinder 15, a threaded plate 31 is threadedly sleeved on the outer surface of the screw rod 30, an arc-shaped shielding long plate 32 is fixed on the threaded plate 31 in cooperation with the fixing rod, and the arc-shaped shielding long plate 32 is fixedly connected to the extension plate 16, and a lifting groove 33 for the extension plate 16 to pass through is opened on the outer wall of the dustproof cylinder 15, a vertical traction rod 34 is fixedly provided in the dustproof cylinder 15, and the threaded plate 31 is slidably sleeved on the vertical traction rod 34, the screw rod 30 is screwed. The bottom end of the rod 30 passes through the dustproof cylinder 15 and is fixed with a manual turntable 35. The screw rod 30 is manually rotated to drive the threaded plate 31 to rise and fall vertically on the screw rod 30, driving the arc-shaped shielding long plate 32 and the extension plate 16 to rise and fall. The extension plate 16 rises and falls in the lifting groove 33, and the arc-shaped shielding long plate 32 is a large-sized arc plate, which blocks the lifting groove 33. The arc-shaped shielding long plate 32 always blocks the lifting groove 33 to prevent the lifting groove 33 from being exposed, causing the dustproof cylinder 15 to communicate with the outside world. The internal design components of the dustproof cylinder 15 provide good dustproof protection.
[0043] See Figure 9 The rotating assembly includes a round rod 36 fixed to the bottom end of the clamping cylinder 18, and a setting groove is opened in the support plate 17, and a bearing 37 is provided in the setting groove. The round rod 36 passes through the setting groove and is connected to the bearing 37. The round rod 36 at the bottom end of the clamping cylinder 18 passes through the bearing 37. The bearing 37 is designed to ensure that the bearing 37 can rotate, so that the clamping cylinder 18 rotates. The outer surface of the round rod 36 is engraved with an external thread, and the bottom thread of the round rod 36 is provided with a secondary nut, and the round rod 36 is threaded as a whole, and the secondary nut is screwed in. The secondary nut finally presses against the bottom surface of the support plate 17 to complete the fixation of the clamping cylinder 18 in the rear direction of rotation. The clamping cylinder 18 is supported on the support plate 17 in a contact manner.
[0044] See Figure 11 A secondary fixing platform 46 is fixed to the outer surface of the dustproof cylinder 15, and a secondary screw rod 47 is passed through the horizontal slide 2. The secondary fixing platform 46 is screwed on the secondary screw rod 47, and a dust cover 48 is provided between the secondary fixing platform 46 and the inner wall of the horizontal slide 2. There are two dust covers 48, one end of the secondary screw rod 47 is connected to the rotating disk, and the other end of the secondary screw rod 47 is sleeved with a secondary bearing fixed to the inner wall of the horizontal slide 2, and the secondary bearing is located in the dust cover 48. This design ensures that the dustproof cylinder 15 is easy to move horizontally, and the adjusted position is more consistent with the position where the pipeline needs to be installed later.
[0045] See Figure 9-10 The rotating clamping member includes a threaded rod 38 that passes through the interior of the clamping cylinder 18, and a secondary manual turntable 39 is fixed to the top of the threaded rod 38. The bottom of the threaded rod 38 is in the shape of a T-shaped round head, and the top of the arc clamping plate 19 is fixed with a fixed platform 40. A T-shaped rotation groove 41 is opened inside the fixed platform 40, and the bottom of the threaded rod 38 is rotatably arranged inside the T-shaped rotation groove 41. A plurality of telescopic rods 42 are fixed on the arc clamping plate 19 and between the top of the clamping cylinder 18. Manually rotate the threaded rod 38, and the bottom of the threaded rod 38 will produce idle rotation in the T-shaped rotation groove 41 inside the fixed platform 40, and manually rotate the threaded rod 38 to move vertically up and down, which will eventually drive the fixed platform 40 to descend, and finally drive the arc clamping plate 19 to descend, and the pipe inserted into the clamping cylinder 18 will be clamped in conjunction with the arc clamping plate 19.
[0046] A method for using a seismic support and hanger structure comprises the following steps:
[0047] Step 1: First, install the cylinder 3 connected to the horizontal moving part and the buffer telescopic part and the top circular plate 43 thereon. Finally, the top circular plate 43 is indirectly installed on the support platform 1. The top circular plate 43 is installed on the top of the wall, and the finally connected support platform 1 is suspended.
[0048] Step 2: Then, a buffer connection is performed through the buffer telescopic member provided, which has a certain buffering effect when suspending the support platform 1, and the buffer telescopic member is a movable connection. The buffer telescopic member cooperates with the movable shaft 5 and the movable block 6. The bottom of the buffer telescopic member is movably connected to the cylinder 3, and the inclination of the buffer telescopic member can be manually adjusted. Finally, the inclination of the U-shaped seat 7 and the connecting plate 9 at the top of the buffer telescopic member is adjusted. After the inclination range of the connecting plate 9 is adjusted, it better corresponds to the square block 12 and is correspondingly installed on the square block 12 with screws;
[0049] Step 3: The designed spring 13 is then used to ensure a buffering and anti-seismic effect. The designed buffer telescopic member plays a supporting and buffering role. The overall anti-seismic support and hanger has been fixed and installed. Through the design of the lifting component, the extension plate 16 and the support plate 17 are driven to rise, and the clamping cylinder 18 is driven to rise and fall, so that the height of the clamping cylinder 18 meets the height of the subsequent pipeline installation.
[0050] Step 4: Finally, in conjunction with the design of the rotating assembly, ensure that the clamping cylinder 18 can produce manually adjustable rotation, so that the orientation angle of the clamping cylinder 18 can be effectively adjusted, and the orientation position of the clamping cylinder 18 is more in line with the orientation of subsequent pipeline installation.
[0051] During specific work, through the design of the horizontal moving part, the cylinder 3 connected to the horizontal moving part and the buffer telescopic part and the top circular plate 43 on it are installed. Finally, the top circular plate 43 is indirectly installed on the support platform 1, and the top circular plate 43 is installed on the top of the wall. Finally, the connected support platform 1 is suspended.
[0052] The buffer connection is performed through the provided buffer telescopic parts, which have a certain buffering effect when the suspended support platform 1 is used, and the buffer telescopic parts are movable connections. The buffer telescopic parts cooperate with the movable shaft 5 and the movable block 6. The bottom of the buffer telescopic parts is movably connected to the cylinder 3. The inclination of the buffer telescopic parts can be manually adjusted, and finally the inclination of the U-shaped seat 7 and the connecting plate 9 at the top of the buffer telescopic parts can be adjusted. The total number of buffer telescopic parts is three, forming a triangle. The inclination range of the connecting plates 9 in three directions is adjusted to better correspond to the square block 12, and is correspondingly installed on the square block 12, and cooperates with screws. The designed spring 13 ensures the buffering and anti-seismic effect. The designed buffer telescopic parts play a supporting and buffering anti-seismic role.
[0053] The overall seismic support and hanger has been fixed and installed. Secondly, through the design of the lifting component, the extension plate 16 and the support plate 17 are driven to rise, and the clamping cylinder 18 is driven to rise and fall, so that the height of the clamping cylinder 18 meets the height of the subsequent pipeline installation. Secondly, with the design of the rotating component, it is ensured that the clamping cylinder 18 can produce manual adjustment rotation, so that the orientation angle of the clamping cylinder 18 can be effectively adjusted, and the orientation position of the clamping cylinder 18 is more in line with the orientation of the subsequent pipeline installation. The overall design is simple. The overall seismic support and hanger is installed first, and then the required pipelines are installed. This avoids installing the pipeline first, and then lifting the seismic support and hanger and the installed pipeline to the top of the wall for installation. The entire installation is simpler and its installation efficiency is improved.
[0054] The upper and lower horizontal plates 20 are better corresponding to the top and bottom surfaces of the support platform 1. The threaded column 21 passes through the through groove 22, and the bottom thread of the threaded column 21 is threaded into the nut 23. Tighten the nut 23 to complete the fixation of the horizontal moving part. The spring three 29 is wrapped as a whole in the interior of the auxiliary dustproof bellows 45, which plays a supporting and dustproof role, and avoids direct contact with the outside world. It has a good dustproof and rust-proof effect. Manually rotate the screw rod 30 to drive the threaded plate 31 to rise and fall vertically on the screw rod 30, driving the arc-shaped shielding long plate 32 and the extension plate 16 to rise and fall. The extension plate 16 rises and falls in the lifting groove 33, and the arc-shaped shielding long plate 32 is a large-sized arc plate, which blocks the lifting groove 33. The arc The shielding long plate 32 always blocks the lifting groove 33 to prevent the lifting groove 33 from being exposed, causing the dustproof cylinder 15 to communicate with the outside world. The internal design components of the dustproof cylinder 15 provide good dustproof protection. The round rod 36 is threaded as a whole and is screwed in with the secondary nut. The secondary nut finally presses against the bottom surface of the support plate 17 to complete the fixation of the clamping cylinder 18 in the backward direction of rotation. Manually rotate the threaded rod 38, and the bottom of the threaded rod 38 will produce idle rotation in the T-shaped rotating groove 41 inside the fixed platform 40, and manually rotate the threaded rod 38 for vertical lifting and lowering movement, which will eventually drive the fixed platform 40 to descend, and finally drive the arc-shaped clamping plate 19 to descend, and the pipe inserted into the clamping cylinder 18 will be clamped with the arc-shaped clamping plate 19.
[0055] Although this specification is described according to implementation methods, not every implementation method contains only one independent technical solution. This narrative method of the specification is only for the sake of clarity. Those skilled in the art should regard the specification as a whole. The technical solutions in each embodiment can also be appropriately combined to form other implementation methods that can be understood by those skilled in the art.
Claims
1. A seismic support and hanger structure, characterized by: The invention comprises a support platform (1) and two top circular plates (43), wherein the support platform (1) is provided with a horizontal slide groove (2), and two horizontal moving parts are installed in the horizontal slide groove (2), and a cylinder (3) is provided on the top of the horizontal moving part for sliding, and three movable grooves (4) are provided at the edge of the top surface of the cylinder (3), and movable blocks (6) are rotatably installed in the movable grooves (4) through movable shafts (5), and buffer telescopic parts are provided on the movable blocks (6), and a U-shaped seat (7) is fixed on the top of the buffer telescopic part, and a connecting plate (9) is rotatably installed in the U-shaped seat (7) through a secondary movable shaft (8), and three buffer grooves (10) are provided on the bottom end surface of the top circular plate (43), and a round rod (11) is fixed in the buffer groove (10), and a square block (12) is slidably sleeved on the round rod (11), and springs (13) are fixed at both ends of the square block (12), and the springs (13) are sleeved on the round rod (11). The other end of the spring (13) is fixed on the inner end wall of the buffer groove (10), and the two ends of the square block (12) are also fixed with a dustproof bellows (14), the other end of the dustproof bellows (14) is fixed on the inner end wall of the buffer groove (10), and the spring (13) is located inside the corresponding dustproof bellows (14), the connecting plate (9) is fixedly connected to the corresponding square block (12) with a screw, and a dustproof cylinder (1 5), a lifting assembly is provided inside the dustproof cylinder (15), an extension plate (16) extending out of the dustproof cylinder (15) is provided on the lifting assembly, a support plate (17) is fixedly provided at the other end of the extension plate (16), a clamping cylinder (18) is mounted on the support plate (17) in cooperation with the rotating assembly, a sliding arc-shaped clamping plate (19) is provided inside the clamping cylinder (18), and a rotating clamping member connected to the arc-shaped clamping plate (19) is provided on the clamping cylinder (18).
2. The seismic support and hanger structure according to claim 1, characterized in that: The horizontal moving member comprises two upper and lower horizontal plates (20), a plurality of threaded columns (21) being fixedly provided at the bottom end of the upper horizontal plate (20), a through slot (22) for the threaded columns (21) to pass through being provided on the lower horizontal plate (20), and a nut (23) being matched with the threaded column (21).
3. The seismic support and hanger structure according to claim 2, characterized in that: The buffer telescopic member comprises an upper square sleeve (24) and a lower square sleeve (25), wherein the lower square sleeve (25) is inserted into the interior of the upper square sleeve (24), and a plurality of springs (44) are fixedly provided in the upper square sleeve (24), and the other end of the springs (44) is fixedly connected to the end of the lower square sleeve (25).
4. The seismic support and hanger structure according to claim 3, characterized in that: A slot plate (26) is fixedly provided on the top of the upper horizontal plate (20), the cylinder (3) is located inside the slot plate (26), traction grooves (27) are provided on both sides of the inner wall of the slot plate (26), a balancing block (28) extending into the traction groove (27) is fixedly provided on the outer wall of the cylinder (3), and a plurality of buffer members are connected between the inner wall of the slot plate (26) and the outer wall of the cylinder (3).
5. The seismic support and hanger structure according to claim 4, characterized in that: The buffer member includes a fixing plate fixed on the inner wall of the opening mold plate (26) and the outer wall of the cylinder (3), and a spring three (29) and an auxiliary dustproof bellows (45) are fixed between the fixing plates, and the spring three (29) is located on the inner side of the auxiliary dustproof bellows (45).
6. The seismic support and hanger structure according to claim 5, characterized in that: The lifting assembly includes a screw rod (30) rotatably arranged inside the dustproof cylinder (15), a threaded plate (31) is threadedly sleeved on the outer surface of the screw rod (30), an arc-shaped shielding long plate (32) is fixedly provided on the threaded plate (31) in cooperation with the fixing rod, and the arc-shaped shielding long plate (32) is fixedly connected to the extension plate (16), and a lifting groove (33) for the extension plate (16) to pass through is opened on the outer wall of the dustproof cylinder (15), a vertical traction rod (34) is fixedly provided in the dustproof cylinder (15), the threaded plate (31) is slidably sleeved on the vertical traction rod (34), the bottom end of the screw rod (30) passes through the dustproof cylinder (15), and a manual turntable (35) is fixedly provided.
7. The seismic support and hanger structure according to claim 6, characterized in that: The rotating assembly includes a round rod (36) fixed to the bottom end of the clamping cylinder (18), a setting groove is opened in the support plate (17), a bearing (37) is provided in the setting groove, the round rod (36) passes through the setting groove and is connected to the bearing (37), an external thread is engraved on the outer surface of the round rod (36), and a secondary nut is provided on the threaded sleeve at the bottom of the round rod (36).
8. The seismic support and hanger structure according to claim 7, characterized in that: A secondary fixed platform (46) is fixed on the outer surface of the dustproof cylinder (15), and a secondary screw rod (47) is passed through the horizontal slide groove (2). The secondary fixed platform (46) is screwed on the secondary screw rod (47), and a dust cover (48) is provided between the secondary fixed platform (46) and the inner wall of the horizontal slide groove (2). There are two dust covers (48), one end of the secondary screw rod (47) is connected to the rotating disk, and the other end of the secondary screw rod (47) is sleeved with a secondary bearing fixed to the inner wall of the horizontal slide groove (2), and the secondary bearing is located in the dust cover (48).
9. The seismic support and hanger structure according to claim 8, characterized in that: The rotary clamping member includes a threaded rod (38) threadedly passing through the interior of the clamping cylinder (18), a secondary manual turntable (39) is fixedly provided at the top of the threaded rod (38), the bottom of the threaded rod (38) is in the shape of a T-shaped round head, a fixed platform (40) is fixedly provided at the top of the arc-shaped clamping plate (19), a T-shaped rotating groove (41) is provided inside the fixed platform (40), the bottom of the threaded rod (38) is rotatably arranged inside the T-shaped rotating groove (41), and a plurality of telescopic rods (42) are fixedly provided between the arc-shaped clamping plate (19) and the top of the clamping cylinder (18).
10. A method for using the seismic support and hanger structure according to any one of claims 1 to 9, characterized in that: The following steps are involved: Step 1: First, the cylinder (3) connected to the horizontal moving part and the buffer telescopic part and the top circular plate (43) thereon are installed, and finally the top circular plate (43) is indirectly installed on the supporting platform (1), and the top circular plate (43) is installed on the top of the wall, and finally the connected supporting platform (1) is suspended; Step 2: Then, a buffer connection is performed through the buffer telescopic member, which has a certain buffering effect when suspending the support platform (1), and the buffer telescopic member is a movable connection. The buffer telescopic member cooperates with the movable shaft (5) and the movable block (6). The bottom of the buffer telescopic member is movably connected to the cylinder (3). The inclination of the buffer telescopic member provided on the cylinder (3) can be manually adjusted, and finally the inclination of the U-shaped seat (7) and the connecting plate (9) at the top of the buffer telescopic member is adjusted. After the inclination range of the connecting plate (9) is adjusted, it better corresponds to the square block (12), and is correspondingly installed on the square block (12) with screws; Step 3: The designed spring 1 (13) is then used to ensure the buffering and anti-seismic effect. The designed buffer telescopic member plays a supporting and buffering role. The overall anti-seismic support and hanger has been fixed and installed. Through the design of the lifting component, the extension plate (16) and the support plate (17) are driven to rise, and the clamping cylinder (18) is driven to rise and fall, so that the height of the clamping cylinder (18) meets the height of the subsequent pipeline installation. Step 4: Finally, in conjunction with the design of the rotating assembly, ensure that the clamping cylinder (18) can produce manually adjustable rotation, so that the orientation angle of the clamping cylinder (18) can be effectively adjusted, and the orientation position of the clamping cylinder (18) is more consistent with the orientation of the subsequent pipeline installation.
Citation Information
Patent Citations
Building electromechanical anti-seismic support hanger
CN212584432U
Anti-seismic support and hanger clamping mechanism
CN218670924U