A jacking support for steel box girder construction

Through the push-push bracket combined with the pneumatic cylinder and the self-locking mechanism, the problems of low push-pushing efficiency and safety hazards of steel box girders are solved, and efficient and stable push-pushing effect is achieved.

CN120061247BActive Publication Date: 2025-07-08SHANXI ROAD BRIDGE BRIDGE & TUNNEL ENG CO LTD
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Patent Information

Application Number
CN202510549789.4
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-04-29
Publication Date
2025-07-08
Estimated Expiration
2045-04-29

AI Technical Summary

Technical Problem

现有钢箱梁顶推施工中,液压机构与驱动机构独立操作导致效率低,且存在打滑和安全隐患。

Method used

The pushing bracket combined with the pneumatic cylinder and the self-locking mechanism is adopted to inflate and fix the pneumatic rod by rotating the extrusion block, and the pushing of the steel box beam is achieved by combining the extrusion block and the pushing plate. The self-locking mechanism ensures the stability of the pneumatic rod.

Benefits of technology

The over-pushing efficiency of steel box girders is improved, the phenomenon of sliding down the air pressure rod is avoided, and the stability and safety of the over-pushing process is enhanced.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention relates to the technical field of bridge engineering, and particularly to a jacking support for steel box girder construction, which includes a support base and a moving plate. The moving plate is connected to the support base through a driving mechanism. A plurality of air cylinders are fixed on the top of the moving plate. An air pressure rod penetrates through the top of the air cylinder. The upper end of the air pressure rod is fixed with a top plate, and the lower end of the air pressure rod extends into the interior of the air cylinder and is slidably connected to the inner wall of the air cylinder. The air cylinder is connected with an air pressure mechanism, and the air pressure rod is connected with a self-locking mechanism. The air pressure mechanism is used to inflate the interior of the air cylinder, so that the air pressure rod drives the top plate to move upward. The self-locking mechanism is used to fix the air pressure rod. A plurality of groups of extrusion blocks are arranged between the support base and the moving plate, and each group of extrusion blocks is connected with a rotating mechanism; the present invention can achieve the purpose of jacking the steel box girder only by the rotation of the extrusion blocks, without the need for workers to frequently operate multiple mechanisms, effectively improving the jacking efficiency of the steel box girder.
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Description

Technical Field

[0001] The present invention relates to the technical field of bridge engineering, and particularly to a jacking support for steel box girder construction. Background Technique

[0002] The steel box girder, also known as the steel plate box girder, is generally used in bridges with larger spans. It gets its name because its appearance resembles a box. It mainly consists of components such as a top plate, a bottom plate, a web plate, a diaphragm plate, a longitudinal diaphragm plate, and stiffening ribs. These components are connected together by full welding to form a strong bridge structure. As a commonly used structural form for long-span bridges, the steel box girder has the advantages of simple structure, strong load-bearing capacity, good stability, etc., and has been widely applied and promoted in bridge engineering. Currently, the jacking construction technology is often used during the laying process of the steel box girder.

[0003] In the prior art, most of them support the steel box girder through a temporary support mechanism. When the steel box girder needs to be jacked, first use a hydraulic mechanism to jack up the steel box girder from the temporary support mechanism, and then use a driving mechanism to drive the steel box girder to move forward a certain distance, so as to achieve the purpose of jacking.

[0004] However, this jacking method has certain defects. Most of the hydraulic mechanism and the driving mechanism are two independent mechanisms. When jacking the steel box girder, it requires the staff to frequently operate the two mechanisms, resulting in a low jacking efficiency of the steel box girder. At the same time, the pressure exerted by the steel box girder on the hydraulic mechanism is relatively large, and the hydraulic mechanism is prone to slipping, having a certain safety hazard. Summary of the Invention

[0005] The purpose of the present invention is to provide a jacking support for steel box girder construction to solve the problems raised in the above background technique.

[0006] To achieve the above purpose, the present invention provides the following technical solutions:

[0007] Base comprises support, cast, and frame upper is provided with guide rail, and support and conveyer frames movable end contact site are provided with recoil spring, and castor is arranged on the pin of base bottom four, to carry mobile handler location.

[0008] Preferably: the pneumatic mechanism includes a fixing plate fixedly connected to the bottom of the support seat, an airbag is fixed on the side wall of the fixing plate, the airbag is connected to an air pipe, the end of the air pipe away from the airbag is connected to the air pressure cylinder, the fixing plate is connected to an extrusion assembly, when the extrusion block rotates, the extrusion assembly is used to squeeze the airbag, so that the gas inside the airbag enters the air pressure cylinder through the air pipe.

[0009] Preferably: the extrusion assembly includes a pressure plate arranged between the airbag and the extrusion block, the pressure plate is fixedly connected to a guide rod symmetrically distributed about the airbag, the guide rod passes through the fixed plate and is slidably connected to the fixed plate, and a second elastic member is provided on the outside of the guide rod, and both ends of the second elastic member are respectively fixedly connected to the fixed plate and the pressure plate.

[0010] Preferably: the rotating mechanism includes multiple groups of mounting plates fixed on the bottom of the support seat, and a rotating rod is rotatably connected between each group of mounting plates. The rotating rod passes through the extrusion block and is fixedly connected to the extrusion block. A motor is installed on one of the mounting plates, and the output end of the motor is fixedly connected to one end of the rotating rod. The rotating rods are connected by belts and pulleys.

[0011] Preferably: the self-locking mechanism includes a guide column fixed on the side wall of the pneumatic cylinder, a pin rod passing through the inside of the guide column, one end of the pin rod is fixed with a connecting block, a third elastic member is fixed on the side wall of the connecting block, the other end of the third elastic member is fixedly connected to the side wall of the guide column, the other end of the pin rod passes through the side wall of the pneumatic cylinder and is connected in abutment with the pneumatic rod, a pin groove matching the pin rod is provided on the side wall of the pneumatic rod, wherein the pin rod is connected to a traction assembly, and when the top plate completes pushing the steel box girder, the traction assembly is used to pull the pin rod to the outside of the pin groove.

[0012] Preferably, the traction assembly includes a guide cylinder penetrating the moving plate. The guide cylinder is fixedly connected to the moving plate. A sliding rod penetrates the inside of the guide cylinder, and the sliding rod is slidably connected to the guide cylinder. A wire groove penetrates the inside of the guide cylinder, and both ends of the wire groove penetrate the top of the guide cylinder and the side wall of the guide cylinder respectively. A support plate is fixed to the top of the sliding rod, and a traction rope is fixed to the bottom of the support plate. The end of the traction rope away from the support plate passes through the inside of the wire groove and is fixedly connected to the connecting block. A fourth elastic member is provided outside the sliding rod, and both ends of the fourth elastic member are fixedly connected to the top of the guide cylinder and the bottom of the support plate respectively. A first magnet is fixed to the bottom of the sliding rod, and a second magnet capable of repelling the first magnet is fixed to the bottom of the support seat.

[0013] Preferably, the driving mechanism includes a plurality of push plates fixed to the bottom of the moving plate, and a plurality of fifth elastic members are fixed to the side walls of the moving plate. The ends of the fifth elastic members away from the moving plate are fixedly connected to the side walls of the support seat.

[0014] Preferably, extension plates are integrally formed at both ends of the moving plate. A chute is provided inside the side wall of the support seat, and two rotating rollers are rotatably connected inside the chute. The extension plates pass between the two rotating rollers and are in rolling connection with the two rotating rollers.

[0015] Preferably, a plurality of buffer plates are provided above the moving plate. A plurality of limiting rods are fixed to the bottom of the buffer plates. The limiting rods penetrate the moving plate and are slidably connected to the moving plate. Sixth elastic members are provided outside the limiting rods, and both ends of the sixth elastic members are fixedly connected to the bottom of the buffer plates and the top of the moving plate respectively.

[0016] Preferably, a plurality of grooves are provided inside the buffer plates, and rollers are provided inside the grooves. The tops of the rollers extend outside the grooves. A rotating shaft penetrates the inside of the roller, and the rotating shaft is rotatably connected to the roller. The end of the rotating shaft is fixedly connected to the inner wall of the groove.

[0017] Compared with the prior art, the beneficial effects of the present invention are as follows: When the present invention jacks up the steel box girder, the rotating rod drives the extrusion block to rotate. While the extrusion block rotates, it first squeezes the pressing plate, and the pressing plate squeezes the airbag. After the airbag is squeezed, the gas inside it enters the air pressure cylinder through the air pipe, so that the air pressure inside the air pressure cylinder increases and squeezes the air pressure rod, and then the air pressure rod can jack up the steel box girder through the top plate. After the top plate jacks up the steel box girder, as the extrusion block continues to rotate, on the one hand, the extrusion block no longer squeezes the pressing plate, and on the other hand, it begins to squeeze the push plate. The push plate drives the moving plate to move forward a certain distance, thereby playing a role in jacking up the steel box girder. The purpose of jacking up the steel box girder can be achieved only by the rotation of the extrusion block, without the need for staff to frequently operate multiple mechanisms, effectively improving the jacking efficiency of the steel box girder;

[0018] When the steel box girder is jacked up to the highest position, the pin rod inside the guide column is exactly aligned with the pin slot on the side wall of the pneumatic rod. The end of the pin rod automatically enters into the pin slot, and the pin rod plays a fixing role on the pneumatic rod through the pin slot, thereby restricting the downward movement of the pneumatic rod, and further avoiding the sliding phenomenon of the pneumatic rod caused by the large pressure of the steel box girder on the top plate, effectively ensuring the stability performance during the jacking process of the steel box girder;

[0019] After the steel box girder advances a certain distance, the first magnet at the bottom of the sliding rod moves above the second magnet. Under the action of the repulsive force, the first magnet drives the support plate to move upward through the sliding rod. The support plate pulls the connecting block through the traction rope, so that the connecting block pulls out the pin rod from the pin slot, and then releases the fixation of the pin rod on the pneumatic rod, enabling the top plate to drive the pneumatic rod to move downward under the gravity of the steel box girder, and further playing a reset role on the top plate and the pneumatic rod. Brief Description of the Drawings

[0020] Figure 1 It is a schematic diagram of the overall structure of the jacking support in the embodiment of the present invention.

[0021] Figure 2 It is a schematic diagram of the top structure of the moving plate in the embodiment of the present invention.

[0022] Figure 3 It is a schematic diagram of the connection structure between the extrusion block and the rotating rod in the embodiment of the present invention.

[0023] Figure 4 It is a schematic diagram of the connection structure between the pressing plate and the fixing plate in the embodiment of the present invention.

[0024] Figure 5 It is a schematic diagram of the internal structure of the pneumatic cylinder in the embodiment of the present invention.

[0025] Figure 6 It is a schematic diagram of the connection structure between the rotating roller and the support seat in the embodiment of the present invention.

[0026] Figure 7 It is a schematic diagram of the connection structure between the roller and the buffer plate in the embodiment of the present invention.

[0027] In the figure: 1 - steel box girder; 2 - temporary support mechanism; 3 - pneumatic mechanism; 31 - air pipe; 32 - airbag; 33 - pressing plate; 34 - second elastic member; 35 - guide rod; 36 - fixing plate; 4 - rotating mechanism; 41 - rotating rod; 42 - pulley; 43 - belt; 44 - motor; 45 - mounting plate; 5 - self-locking mechanism; 51 - guide post; 52 - pin slot; 53 - pin rod; 54 - third elastic member; 55 - connecting block; 56 - towing rope; 57 - support plate; 58 - fourth elastic member; 59 - guide cylinder; 510 - sliding rod; 511 - first magnet; 512 - second magnet; 6 - driving mechanism; 61 - pushing plate; 62 - fifth elastic member; 63 - extension plate; 64 - rotating roller; 7 - support seat; 8 - moving plate; 9 - buffer plate; 10 - roller; 11 - sixth elastic member; 12 - limiting rod; 13 - pneumatic cylinder; 14 - pneumatic rod; 15 - first elastic member; 16 - top plate; 17 - extrusion block. Specific implementation mode

[0028] In order to make the objectives, technical solutions and advantages of the present invention clearer and more understandable, the present 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 only used to explain the present invention and are not used to limit the present invention.

[0029] The following describes the specific implementation of the present invention in detail with reference to specific embodiments.

[0030] In one embodiment, please refer to Figure 1 , Figure 2 , Figure 3 and Figure 4 , a jacking support for steel box girder construction, including a support seat 7 and a moving plate 8. The moving plate 8 is connected to the support seat 7 through a driving mechanism 6. The driving mechanism 6 is used to drive the moving plate 8 to move horizontally. A plurality of pneumatic cylinders 13 are fixed on the top of the moving plate 8. A pneumatic rod 14 penetrates through the top of the pneumatic cylinder 13. The upper end of the pneumatic rod 14 is fixed with a top plate 16. The lower end of the pneumatic rod 14 extends into the interior of the pneumatic cylinder 13 and is slidably connected to the inner wall of the pneumatic cylinder 13. The bottom of the top plate 16 is fixed with a first elastic member 15. The lower end of the first elastic member 15 is fixedly connected to the top of the pneumatic cylinder 13. The pneumatic cylinder 13 is connected to a pneumatic mechanism 3, and the pneumatic rod 14 is connected to a self-locking mechanism 5. The pneumatic mechanism 3 is used to inflate the interior of the pneumatic cylinder 13, so that the pneumatic rod 14 drives the top plate 16 to move upward. And when the top plate 16 rises to the highest position, the self-locking mechanism 5 is used to fix the pneumatic rod 14. A plurality of groups of extrusion blocks 17 are arranged between the support seat 7 and the moving plate 8. Each group of extrusion blocks 17 is connected to a rotating mechanism 4. The rotating mechanism 4 is used to drive the extrusion blocks 17 to rotate. And when the extrusion blocks 17 rotate, the extrusion blocks 17 drive the pneumatic mechanism 3 and the driving mechanism 6 to operate successively.

[0031] In this embodiment, when the pushing support is in use, the support base 7 is placed under the steel box girder 1. When it is necessary to push the steel box girder 1, the rotating mechanism 4 drives the extrusion block 17 to rotate. While the extrusion block 17 rotates, the air pressure mechanism 3 first inflates the inside of the air pressure cylinder 13. The internal air pressure of the air pressure cylinder 13 increases, thereby pushing the air pressure rod 14. Furthermore, the air pressure rod 14 drives the top plate 16 to move upward, and the top plate 16 jacks up the steel box girder 1 from the temporary support mechanism 2. When the top plate 16 jacks up the steel box girder 1 to the highest position, the self-locking mechanism 5 automatically fixes the air pressure rod 14, thereby preventing the air pressure rod 14 from sliding down due to the large pressure of the steel box girder 1 on the top plate 16, effectively improving the stability of the air pressure rod 14, ensuring the jacking effect of the top plate 16 on the steel box girder 1, reducing potential safety hazards. When the extrusion block 17 continues to rotate to a certain position, the extrusion block 17 drives the moving plate 8 to move through the driving mechanism 6. The moving plate 8 drives the steel box girder 1 to move through the air pressure cylinder 13, the air pressure rod 14 and the top plate 16, so that the steel box girder 1 can move forward a certain distance. When the steel box girder 1 moves forward a certain distance, the self-locking mechanism 5 automatically releases the fixation of the air pressure rod 14. The top plate 16 drives the air pressure rod 14 to move downward under the action of the gravity of the steel box girder 1 until the steel box girder 1 falls on the top of the temporary support mechanism 2 again. At this time, as the extrusion block 17 continues to rotate, the driving mechanism 6 drives the moving plate 8 to automatically reset, and the moving plate 8 drives the air pressure cylinder 13, the air pressure rod 14 and the top plate 16 to automatically reset. In this way, the top plate 16 can continuously drive the steel box girder 1 to move forward a certain distance, thereby achieving the purpose of pushing the steel box girder 1, and the pushing efficiency is relatively high. The first elastic member 15 can be a spring, which can play a reset role for the top plate 16, that is, after the steel box girder 1 falls on the surface of the temporary support mechanism 2, the top plate 16 can continue to move downward under the action of the first elastic member 15, so that the top plate 16 is separated from the steel box girder 1, avoiding friction between the steel box girder 1 and the top plate 16, and when the driving mechanism 6 drives the moving plate 8 to reset, the top plate 16 will not drive the steel box girder 1 to move back.

[0032] Please refer to Figure 2 , Figure 4 and Figure 5 As shown in FIGS., the air pressure mechanism 3 includes a fixing plate 36 fixedly connected to the bottom of the support base 7. An airbag 32 is fixed on the side wall of the fixing plate 36. The airbag 32 is communicated with an air pipe 31. One end of the air pipe 31 away from the airbag 32 is communicated with the air pressure cylinder 13. The fixing plate 36 is connected with an extrusion assembly. When the extrusion block 17 rotates, the extrusion assembly is used to extrude the airbag 32, so that the gas inside the airbag 32 enters the inside of the air pressure cylinder 13 through the air pipe 31;

[0033] When the steel box girder 1 is pushed, the extrusion block 17 is driven to rotate by the rotating mechanism 4. While the extrusion block 17 rotates, the airbag 32 is squeezed by the extrusion assembly. After the airbag 32 is squeezed, the gas inside it enters the air cylinder 13 through the air pipe 31, thereby increasing the air pressure inside the air cylinder 13 and squeezing the air rod 14, so that the air rod 14 can lift the steel box girder 1 through the top plate 16. When the extrusion assembly squeezes the airbag 32 to the maximum extent, the steel box girder 1 is lifted to the highest position. At this time, the self-locking mechanism 5 automatically fixes the air rod 14. As the extrusion block 17 continues to rotate, the extrusion assembly no longer squeezes the airbag 32, and after the self-locking mechanism 5 no longer fixes the air rod 14, the top plate 16 can drive the air rod 14 to move downward under the action of the gravity of the steel box girder 1, so that the gas inside the air cylinder 13 flows back to the airbag 32 through the air pipe 31.

[0034] See also Figure 4 The extrusion assembly includes a pressing plate 33 disposed between the airbag 32 and the extrusion block 17, the pressing plate 33 is fixedly connected to guide rods 35 symmetrically distributed about the airbag 32, the guide rods 35 penetrate the fixing plate 36 and are slidably connected to the fixing plate 36, and the guide rods 35 are provided with second elastic members 34 on the outside, and the two ends of the second elastic member 34 are fixedly connected to the fixing plate 36 and the pressing plate 33 respectively;

[0035] When the steel box girder 1 is pushed, the extrusion block 17 is driven to rotate by the rotating mechanism 4. The extrusion block 17 rotates and squeezes the pressure plate 33. The pressure plate 33 squeezes the airbag 32, so that the gas inside the airbag 32 enters the air pressure cylinder 13 through the air pipe 31. When the extrusion block 17 no longer squeezes the pressure plate 33, the pressure plate 33 automatically resets under the action of the second elastic member 34. At this time, the pressure plate 33 no longer squeezes the airbag 32, wherein the second elastic member 34 can be a spring, and the fixed plate 36 can reset the pressure plate 33 through the guide rod 35, which effectively improves the stability of the pressure plate 33 when moving.

[0036] See also Figure 2 and Figure 3 The rotating mechanism 4 includes a plurality of mounting plates 45 fixed to the bottom of the support seat 7, and a rotating rod 41 is rotatably connected between each mounting plate 45, and the rotating rod 41 penetrates the extrusion block 17 and is fixedly connected to the extrusion block 17. A motor 44 is installed on one of the mounting plates 45, and the output end of the motor 44 is fixedly connected to one end of the rotating rod 41. The rotating rods 41 are connected through a belt 43 and a pulley 42.

[0037] When jacking up the steel box girder 1, the motor 44 is started. The motor 44 drives one of the rotating rods 41 to rotate. While the rotating rod 41 rotates, it drives the other rotating rods 41 to rotate through the belt 43 and the pulley 42, so that the extrusion blocks 17 outside the rotating rods 41 can rotate synchronously, and further enables multiple pneumatic mechanisms 3 to operate synchronously, effectively ensuring the jacking effect on the steel box girder 1.

[0038] Please refer to Figure 5 , the self-locking mechanism 5 includes a guide post 51 fixed on the side wall of the pneumatic cylinder 13. A pin rod 53 penetrates through the inside of the guide post 51. One end of the pin rod 53 is fixed with a connecting block 55. A third elastic member 54 is fixed on the side wall of the connecting block 55. The other end of the third elastic member 54 is fixedly connected to the side wall of the guide post 51. The other end of the pin rod 53 penetrates through the side wall of the pneumatic cylinder 13 and is in contact connection with the pneumatic rod 14. A pin slot 52 adapted to the pin rod 53 is provided on the side wall of the pneumatic rod 14. The pin rod 53 is connected with a traction assembly. When the top plate 16 finishes jacking up the steel box girder 1, the traction assembly is used to pull the pin rod 53 outside the pin slot 52;

[0039] When jacking up the steel box girder 1, the rotating mechanism 4 drives the extrusion block 17 to rotate. While the extrusion block 17 rotates, it inflates the inside of the pneumatic cylinder 13 through the pneumatic mechanism 3. The air pressure inside the pneumatic cylinder 13 increases and pushes the pneumatic rod 14, so that the pneumatic rod 14 jacks up the steel box girder 1 from the temporary support mechanism 2 through the top plate 16. When the steel box girder 1 is jacked up to the highest position, the pin rod 53 inside the guide post 51 just aligns with the pin slot 52 on the side wall of the pneumatic rod 14. Under the action of the connecting block 55 and the third elastic member 54, the end of the pin rod 53 automatically enters the inside of the pin slot 52. The third elastic member 54 can be a spring. At this time, the pin rod 53 plays a fixing role on the pneumatic rod 14 through the pin slot 52, thus restricting the downward movement of the pneumatic rod 14, and further avoiding the phenomenon of the pneumatic rod 14 sliding down due to the large pressure of the steel box girder 1 on the top plate 16, effectively ensuring the stability performance during the jacking process of the steel box girder 1. After the top plate 16 jacks up the steel box girder 1, when the steel box girder 1 moves forward a certain distance, the traction assembly pulls the pin rod 53 outside the pin slot 52, thus releasing the fixation of the pin rod 53 on the pneumatic rod 14. Without the fixation of the pin rod 53, the top plate 16 automatically drives the pneumatic rod 14 to move downward under the action of the gravity of the steel box girder 1. The top plate 16 and the pneumatic rod 14 automatically reset, and further enables the driving mechanism 6 to drive the moving plate 8 to reset, while the top plate 16 will not drive the steel box girder 1 to move back.

[0040] Please refer to Figure 5, the traction assembly includes a guide cylinder 59 passing through the moving plate 8. The guide cylinder 59 is fixedly connected to the moving plate 8. A slide rod 510 passes through the inside of the guide cylinder 59, and the slide rod 510 is slidably connected to the guide cylinder 59. A wire groove passes through the inside of the guide cylinder 59, and both ends of the wire groove pass through the top of the guide cylinder 59 and the side wall of the guide cylinder 59 respectively. A support plate 57 is fixed to the top of the slide rod 510, and a traction rope 56 is fixed to the bottom of the support plate 57. One end of the traction rope 56 away from the support plate 57 passes through the inside of the wire groove and is fixedly connected to the connecting block 55. A fourth elastic member 58 is provided outside the slide rod 510, and both ends of the fourth elastic member 58 are fixedly connected to the top of the guide cylinder 59 and the bottom of the support plate 57 respectively. A first magnet 511 is fixed to the bottom of the slide rod 510, and a second magnet 512 capable of repelling the first magnet 511 is fixed to the bottom of the support seat 7;

[0041] When the moving plate 8 moves, it also drives the guide cylinder 59 to move. The guide cylinder 59 drives the slide rod 510 to move synchronously. After the steel box girder 1 advances a certain distance, the first magnet 511 at the bottom of the slide rod 510 moves above the second magnet 512. The first magnet 511 and the second magnet 512 have the same magnetic polarity. Under the action of the repulsive force, the first magnet 511 drives the support plate 57 to move upward through the slide rod 510. Under the guidance of the wire groove, while the support plate 57 moves upward, it pulls the connecting block 55 through the traction rope 56, so that the connecting block 55 pulls out the pin rod 53 from the inside of the pin slot 52, thereby releasing the fixation of the pin rod 53 on the pneumatic rod 14, enabling the top plate 16 to drive the pneumatic rod 14 to move downward under the gravity of the steel box girder 1. After the steel box girder 1 is separated from the top plate 16, the driving mechanism 6 drives the moving plate 8 to reset. The moving plate 8 drives the slide rod 510 to reset through the guide cylinder 59, so that the first magnet 511 and the second magnet 512 no longer repel each other. At this time, the support plate 57 automatically moves downward under the action of the fourth elastic member 58. The fourth elastic member 58 can be a spring. The traction rope 56 is in a relaxed state and no longer pulls the connecting block 55. Under the action of the connecting block 55 and the third elastic member 54, the end of the pin rod 53 abuts against the side wall of the pneumatic rod 14 again. When the steel box girder 1 rises to the highest position, the pin rod 53 can enter the pin slot 52 on the side wall of the pneumatic rod 14 again, thereby fixing the pneumatic rod 14 again.

[0042] Please refer to Figure 2 、 Figure 3 and Figure 4 , the driving mechanism 6 includes a plurality of push plates 61 fixed to the bottom of the moving plate 8. A plurality of fifth elastic members 62 are fixed to the side walls of the moving plate 8. One end of the fifth elastic member 62 away from the moving plate 8 is fixedly connected to the side wall of the support seat 7;

[0043] When jacking the steel box girder 1, the rotating mechanism 4 drives the extrusion block 17 to rotate. While the extrusion block 17 rotates, the air pressure mechanism 3 first inflates the inside of the air pressure cylinder 13, so that the top plate 16 can jack up the steel box girder 1 from the top of the temporary support mechanism 2. After the top plate 16 jacks up the steel box girder 1 from the top of the temporary support mechanism 2, as the extrusion block 17 continues to rotate, the extrusion block 17 extrudes the push plate 61 at the bottom of the moving plate 8, so that the push plate 61 drives the moving plate 8 to move forward a certain distance, thereby playing a jacking role on the steel box girder 1. After the steel box girder 1 moves forward a certain distance, the self-locking mechanism 5 no longer fixes the air pressure rod 14, and the steel box girder 1 falls on the top of the temporary support mechanism 2 again under the action of gravity. At the same time, the top plate 16 separates from the steel box girder 1 under the action of the first elastic member 15. At this time, as the extrusion block 17 continues to rotate, the extrusion degree of the extrusion block 17 on the push plate 61 decreases, and the moving plate 8 gradually resets under the action of the fifth elastic member 62, thereby driving the air pressure cylinder 13, the air pressure rod 14 and the top plate 16 to automatically reset. The fifth elastic member 62 can be a spring.

[0044] Please refer to Figure 2 and Figure 6 As shown in FIGS.

[0045] Both ends of the moving plate 8 are integrally formed with extension plates 63. Inside the side wall of the support seat 7, there is a chute, and two rotating rollers 64 are rotatably connected inside the chute. The extension plates 63 pass between the two rotating rollers 64 and are in rolling connection with the two rotating rollers 64;

[0046] Please refer to Figure 2 and Figure 7 As shown in FIGS.

[0047] After the steel box girder 1 moves forward a certain distance, the self-locking mechanism 5 no longer fixes the pneumatic rod 14. Under the action of gravity, the steel box girder 1 will first land on the surface of the buffer plate 9 and then on the surface of the temporary support mechanism 2. After the buffer plate 9 is subjected to the pressure of the steel box girder 1, it will squeeze the sixth elastic member 11. The sixth elastic member 11 can play a buffering role for the steel box girder 1 through the buffer plate 9, thus effectively reducing the impact of the steel box girder 1 on the temporary support mechanism 2, improving the service life of the temporary support mechanism 2, and at the same time ensuring the stability of the steel box girder 1 during the falling process. The sixth elastic member 11 can be a spring, and the limiting rod 12 plays a limiting role for the buffer plate 9, effectively improving the stability of the buffer plate 9 during movement.

[0048] Please refer to Figure 7 , a plurality of grooves are provided inside the buffer plate 9, and rollers 10 are provided inside the grooves. The tops of the rollers 10 extend outside the grooves. A rotating shaft penetrates through the rollers 10, and the rotating shaft is rotatably connected to the rollers 10. The end of the rotating shaft is fixedly connected to the inner wall of the groove;

[0049] During the falling process of the steel box girder 1, it will directly land on the tops of the rollers 10, and the rollers 10 support the steel box girder 1. At this time, while the driving mechanism 6 drives the moving plate 8 to reset, it will also drive the buffer plate 9 to automatically reset. The rollers 10 inside the grooves will roll under the bottom of the steel box girder 1. Through the setting of the rollers 10, the friction between the steel box girder 1 and the buffer plate 9 can be effectively reduced, so that the moving plate 8 can be reset smoothly.

[0050] Working principle: When the jacking support is in use, the support base 7 is placed under the steel box girder 1. When it is necessary to jack the steel box girder 1, the motor 44 is started. The motor 44 drives one of the rotating rods 41 to rotate. While the rotating rod 41 rotates, it drives the other rotating rods 41 to rotate through the belt 43 and the belt pulley 42, so that the extrusion blocks 17 outside the rotating rods 41 can rotate synchronously. While the extrusion blocks 17 rotate, they first extrude the pressure plate 33, and the pressure plate 33 extrudes the airbag 32. After the airbag 32 is extruded, the gas inside it enters the air pressure cylinder 13 through the air pipe 31, so that the air pressure inside the air pressure cylinder 13 increases and extrudes the air pressure rod 14, and then the air pressure rod 14 can jack up the steel box girder 1 through the top plate 16. When the steel box girder 1 is jacked up to the highest position, the pin rod 53 inside the guide post 51 just aligns with the pin slot 52 on the side wall of the air pressure rod 14, and the end of the pin rod 53 automatically enters the pin slot 52. The pin rod 53 plays a fixing role on the air pressure rod 14 through the pin slot 52, so as to limit the downward movement of the air pressure rod 14, and further avoid the sliding phenomenon of the air pressure rod 14 caused by the large pressure of the steel box girder 1 on the top plate 16, effectively ensuring the stability performance during the jacking process of the steel box girder 1. After the top plate 16 jacks up the steel box girder 1, as the extrusion block 17 continues to rotate, the extrusion block 17 begins to extrude the push plate 61, and the push plate 61 drives the moving plate 8 to move forward a certain distance, and then plays a jacking role on the steel box girder 1. After the steel box girder 1 moves forward a certain distance, the first magnet 511 at the bottom of the sliding rod 510 moves above the second magnet 512. The first magnet 511 and the second magnet 512 have the same magnetic property. Under the action of the repulsive force, the first magnet 511 drives the support plate 57 to move upward through the sliding rod 510. Under the guidance of the wire groove, while the support plate 57 moves upward, it pulls the connecting block 55 through the traction rope 56, so that the connecting block 55 pulls out the pin rod 53 from the pin slot 52, and then releases the fixation of the pin rod 53 on the air pressure rod 14, so that the top plate 16 can drive the air pressure rod 14 to move downward under the gravity of the steel box girder 1. After the steel box girder 1 is separated from the top plate 16, the moving plate 8 drives the sliding rod 510 to reset through the guide cylinder 59, so that the first magnet 511 and the second magnet 512 no longer repel each other. At this time, the support plate 57 automatically moves downward, the traction rope 56 is in a slack state, and no longer pulls the connecting block 55. The end of the pin rod 53 abuts against the side wall of the air pressure rod 14 again. In this way, the cycle repeats, so that the top plate 16 can continuously drive the steel box girder 1 to move forward a certain distance, and then achieve the purpose of jacking the steel box girder 1, and the jacking efficiency is relatively high.

[0051] The above are only the preferred embodiments of the present invention and are not intended to limit the present invention. Any modifications, equivalent replacements, and improvements made within the spirit and principle of the present invention shall be included in the protection scope of the present invention.

Claims

1. A jacking support for steel box girder construction, comprising a support base and a moving plate; characterized in that, The driving mechanism is a plurality of pairs of air-conditioning elements, each of which is connected to a pair of fixed elements, and the plurality of pairs of air-conditioning elements are connected to the plurality of fixed elements.

2. The incremental launching support for steel box girder construction according to claim 1, wherein The pneumatic mechanism includes a fixing plate fixedly connected to the bottom of the support seat, an airbag is fixed on the side wall of the fixing plate, the airbag is connected to an air pipe, the end of the air pipe away from the airbag is connected to the air pressure cylinder, and the fixing plate is connected to an extrusion assembly. When the extrusion block rotates, the extrusion assembly is used to squeeze the airbag, so that the gas inside the airbag enters the air pressure cylinder through the air pipe.

3. The incremental launching support for steel box girder construction according to claim 2, characterized in that, The extrusion assembly includes a pressure plate arranged between the airbag and the extrusion block, the pressure plate is fixedly connected to a guide rod symmetrically distributed about the airbag, the guide rod passes through the fixed plate and is slidably connected to the fixed plate, and a second elastic member is provided on the outside of the guide rod, and both ends of the second elastic member are fixedly connected to the fixed plate and the pressure plate respectively.

4. The incremental launching support for steel box girder construction according to claim 1, characterized in that, The rotating mechanism includes multiple groups of mounting plates fixed on the bottom of the support seat, and a rotating rod is rotatably connected between each group of mounting plates. The rotating rod passes through the extrusion block and is fixedly connected to the extrusion block. A motor is installed on one of the mounting plates, and the output end of the motor is fixedly connected to one end of the rotating rod. The rotating rods are connected by belts and pulleys.

5. The incremental launching support for steel box girder construction according to claim 1, characterized in that, The self-locking mechanism includes a guide column fixed on the side wall of the pneumatic cylinder, a pin rod passing through the inside of the guide column, one end of the pin rod is fixed with a connecting block, a third elastic member is fixed on the side wall of the connecting block, the other end of the third elastic member is fixedly connected to the side wall of the guide column, the other end of the pin rod passes through the side wall of the pneumatic cylinder and is connected in abutment with the pneumatic rod, a pin groove matching the pin rod is provided on the side wall of the pneumatic rod, wherein the pin rod is connected to a traction assembly, and when the top plate completes pushing the steel box girder, the traction assembly is used to pull the pin rod to the outside of the pin groove.

6. The incremental launching support for steel box girder construction according to claim 5, characterized in that, The traction assembly includes a guide cylinder penetrating the moving plate. The guide cylinder is fixedly connected to the moving plate. A sliding rod penetrates through the interior of the guide cylinder, and the sliding rod is slidably connected to the guide cylinder. A wire groove penetrates through the interior of the guide cylinder, and both ends of the wire groove penetrate through the top and the side wall of the guide cylinder respectively. A support plate is fixed to the top of the sliding rod, and a traction rope is fixed to the bottom of the support plate. One end of the traction rope away from the support plate passes through the interior of the wire groove and is fixedly connected to the connection block. A fourth elastic member is provided outside the sliding rod, and both ends of the fourth elastic member are fixedly connected to the top of the guide cylinder and the bottom of the support plate respectively. A first magnet is fixed to the bottom of the sliding rod, and a second magnet capable of repelling the first magnet is fixed to the bottom of the support seat.

7. A jacking support for steel box girder construction according to claim 1, characterized in that, The driving mechanism includes a plurality of push plates fixed to the bottom of the moving plate. A plurality of fifth elastic members are fixed to the side walls of the moving plate, and one end of the fifth elastic member away from the moving plate is fixedly connected to the side wall of the support seat.

8. The incremental launching support for steel box girder construction according to claim 7, characterized in that, Extension plates are integrally formed at both ends of the moving plate. A chute is provided inside the side wall of the support seat, and two rotating rollers are rotatably connected inside the chute. The extension plate passes between the two rotating rollers and is in rolling connection with the two rotating rollers.

9. The incremental launching support for the construction of a steel box girder according to claim 1, wherein, A plurality of buffer plates are provided above the moving plate. A plurality of limiting rods are fixed to the bottom of the buffer plates. The limiting rods penetrate through the moving plate and are slidably connected to the moving plate. Sixth elastic members are provided outside the limiting rods, and both ends of the sixth elastic members are fixedly connected to the bottom of the buffer plates and the top of the moving plate respectively.

10. The incremental launching support for steel box girder construction according to claim 9, characterized in that, A plurality of grooves are provided inside the buffer plates, and rollers are provided inside the grooves. The tops of the rollers extend outside the grooves. A rotating shaft penetrates through the interior of the roller, and the rotating shaft is rotatably connected to the roller. The end of the rotating shaft is fixedly connected to the inner wall of the groove.

Citation Information

Patent Citations

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