Auxiliary equipment for roof steel structure installation

By designing auxiliary equipment for the installation of roof steel structures and utilizing synchronous drive control components and multiple components to achieve stable lifting and multiple locking of beams, the problem of beam installation in narrow spaces is solved, and the stability and efficiency of installation are improved.

CN119244028BActive Publication Date: 2025-10-03CHINA RAILWAY CONSTRUCTION ENGINEERING GROUP
View PDF 2 Cites 0 Cited by

Patent Information

Application Number
CN202411709648.6
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-11-27
Publication Date
2025-10-03
Estimated Expiration
2044-11-27

AI Technical Summary

Technical Problem

In a narrow space, existing lifting equipment cannot assist in the erection of beams, making the operation difficult, reducing work progress and the stability and accuracy of installation.

Method used

An auxiliary equipment for the installation of roof steel structures was designed, including a support base, a positioning frame, a quantitative lifting unit, an adsorption fixing unit and various components. Through synchronous drive control components, positioning clamping components, adjustable support components and fine-tuning placement components, stable lifting, angle control and multiple locking of the beams can be achieved.

Benefits of technology

It improves the stability of the equipment in narrow spaces and the accuracy of installation, reduces the difficulty of manual operation, and improves work efficiency and safety.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN119244028B_ABST
    Figure CN119244028B_ABST
Patent Text Reader

Abstract

The present invention relates to the technical field of equipment for erecting and installing steel structure beams, and specifically to an auxiliary equipment for installing roof steel structures, comprising: a support base; casters; a positioning frame, the positioning frame is arranged on the outside of the support base and is connected to the support base through a retractable member; a quantitative lifting unit, the quantitative lifting unit is connected to the support base; an adsorption and fixing unit, the adsorption and fixing unit is connected to the support base and to the quantitative lifting unit; wherein, the quantitative lifting unit comprises: a synchronous drive control component, a positioning clamping component, an adjustable support component, a fine-tuning placement component and an inductive locking component. By setting the quantitative lifting unit, not only can the beam be stably and quantitatively lifted, but the angle of the beam can also be controlled, and the equipment and the beam can be multiply locked, which greatly improves the stability of the equipment during use and ensures the accuracy of installation.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The invention relates to the technical field of steel structure beam erection and installation equipment, in particular to auxiliary equipment for roof steel structure installation. Background Art

[0002] Section steel is a type of steel bar with a specific cross-sectional shape and size, and is one of the four major types of steel. Based on the cross-sectional shape, section steel is categorized into simple section steel and complex section steel. The former refers to square steel, round steel, flat steel, angle steel, hexagonal steel, etc.; the latter refers to I-beams, channel steel, rails, window frame steel, curved steel, etc. In the construction industry, the erection of buildings requires the support of steel beams. Among them, the crossbeam is the most important beam at the top of the building, commonly known as the main beam. The so-called steel crossbeam is a common type of building in current buildings.

[0003] The erection of building components requires traction through a lifting device, and the installation is completed by docking the beams and vertical support columns with each other through welding. However, the operation of the lifting equipment requires an open place and cannot be operated in a narrow place. At this time, the erection of the beams without the assistance of the lifting equipment will be relatively difficult. Manual support is required for docking and welding, which not only makes the operation difficult but also reduces the work progress. Therefore, in view of the above situation, there is an urgent need to develop an auxiliary equipment for the installation of roof steel structures to overcome the shortcomings in current practical applications. Summary of the Invention

[0004] The purpose of the present invention is to provide an auxiliary device for installing a roof steel structure to solve the problems raised in the above background technology.

[0005] To achieve the above object, the present invention provides the following technical solutions:

[0006] The lifting mechanism is a lifting mechanism that is configured to lift the lifting frame and the lifting frame of the lifting frame, and the lifting frame and the lifting frame are connected to each other to form a lifting mechanism, a lifting mechanism being connected to the lifting frame and the lifting frame of the lifting frame to lift the lifting frame and the lifting frame of the lifting frame. The lifting mechanism is configured to lift the lifting frame and the lifting frame of the lifting frame to lift the lifting frame and ... The support assembly, the fine-adjustment placement assembly and the inductive locking assembly, the synchronous drive control assembly is arranged on the inner side of the support base and is connected to the adsorption and fixing unit, the synchronous drive control assembly is also connected to the positioning clamping assembly symmetrically arranged on the outside of the top end of the support base, for driving the positioning clamping assembly, and cooperating with the positioning frame to achieve a stable connection between the equipment and the support column, the positioning clamping assembly is also connected to the adjustable support assembly arranged on the outside of the support base, the top of the adjustable support assembly is connected to the fine-adjustment placement assembly, for cooperating with the adjustable support assembly to achieve support and lifting of the beam, and complete fine-tuning and longitudinal rotation of the beam position, the fine-adjustment placement assembly is also provided with an inductive locking assembly, for cooperating with the fine-adjustment placement assembly to achieve clamping and locking of the supported beam.

[0007] As a further solution of the present invention: the synchronous drive control component includes: a control panel, a telescopic part, a synchronous frame, a limiting prism and a transmission rod, the control panel is arranged on the inner side of the support base, and a telescopic part is fixedly connected between the control panel and the support base, and synchronous frames slidably connected to the shell wall of the support base are provided on both sides of the control panel, the synchronous frame is connected to the adsorption and fixing unit, and is connected to the positioning clamping assembly, and a transmission rod is provided between the synchronous frame and the control panel, one end of the transmission rod is rotatably connected to the synchronous frame, and the other end is rotatably connected to the control panel, and the other end of the synchronous frame is slidably connected to the limiting prism fixedly connected to the inner side of the support base, for cooperating with the telescopic part to realize synchronous driving of the adsorption and fixing unit and the positioning clamping assembly.

[0008] As a further solution of the present invention: the positioning and clamping assembly includes: a mounting seat, a clamping frame, an arc-shaped clamping plate, a positioning column and an adjusting piece. The mounting seat is symmetrically arranged on the outer side of the top of the support base and is fixedly connected to the support base. Several fixing seats are fixedly connected to the outer sides of the opposite ends of the mounting seats on both sides. A clamping frame fixedly connected to the synchronization frame is slidingly connected on the inner side of the fixed seat. An arc-shaped clamping plate is fixedly connected to the clamping frame. Positioning columns are symmetrically arranged on the outer sides of the opposite ends of the arc-shaped clamping plates on both sides. An adjusting piece is fixedly connected between the positioning column and the arc-shaped clamping plate, which is used to cooperate with the movement of the clamping frame to complete the clamping of the support column and realize the fixation of the equipment.

[0009] As a further solution of the present invention: the adjustable support assembly includes: a lifting seat, a servo motor, a lifting control rod, a kinetic energy transmission part, a lifting seat, a steering motor and a support column. The lifting seat is slidably connected to the mounting seat, and a lifting seat is fixedly connected to the outer side of the top of the lifting seat. The servo motor is arranged between the mounting seats on both sides and is fixedly connected to the support base. The inner sides of the mounting seats on both sides are rotatably connected to a lifting control rod threadedly connected to the lifting seat. The lifting control rod is rotatably connected to the support base and is connected to the output end of the servo motor through the kinetic energy transmission part, which is used to cooperate with the servo motor to realize the lifting and lowering of the lifting seat. The top of the lifting seat is rotatably connected to the support column, and the top of the support column is connected to the fine-tuning placement assembly. A steering motor fixedly connected to the lifting seat is provided between the support column and the lifting seat, and the output end of the steering motor is fixedly connected to the support column, which is used to cooperate with the support column to realize the lateral rotation of the beam located on the fine-tuning placement assembly.

[0010] As a further solution of the present invention: the fine-adjustable placement assembly includes: a fixed frame, a placement plate, a rotating rod, a push-pull member, a limiting splint, a guide plate, a conveying roller, a regulating rod, a connecting rod, a control member and a push-control block. The fixed frame is fixedly connected and arranged on the outside of the top end of the supporting column. A placement plate for supporting the crossbeam is arranged on the outside of the fixed frame. A rotating rod rotatably connected to the fixed frame is fixedly connected to the outside of one end of the placement plate, and a push-pull member is rotatably connected to the bottom of the other end. The other end of the push-pull member is rotatably connected to the fixed frame for cooperating with the fixed frame to realize the longitudinal rotation of the crossbeam. A push-control block is slidingly connected to the inner side of the placement plate, and a control block is fixedly connected to the push-control block and the placement plate. The cam is fixedly mounted on the cam face, and the cam face is pivotally connected to the top of the cam face, and the cam face is pivotally connected to the top of the cam face, so that the cam face can move relative to the top of the cam face, thereby preventing the cam from moving.

[0011] As a further solution of the present invention: the inductive locking assembly includes: an inductive slider, a connecting plate, a transmission slide rod, a piston seat, a piston part, a piston tube, a lifting part and a locking splint, the inductive slider is arranged on the outside of the push control block and is slidably connected to the placement plate, the connecting plate is arranged on the outside of the placement plate, is connected to the inductive slider through a transmission slide rod, and is slidably connected to the wall of the placement plate, a spring is fixedly connected between the inductive slider and the placement plate, a piston seat fixedly connected to the placement plate is also provided on the outside of the inductive slider, a piston part fixedly connected to the connecting plate is slidably connected on the inside of the piston seat, a piston tube is also fixedly connected on the piston seat, and a lifting part is slidably connected on the inside of the other end of the piston tube, the lifting part is fixedly connected to the locking splint arranged on the outside of the top end of the placement plate, and is used to cooperate with the movement of the piston part on the inside of the piston seat to realize the clamping and locking of the locking splint on the beam on the placement plate.

[0012] As a further solution of the present invention: the adsorption and fixing unit includes: a retractable adsorption component and a pressure-conducting and controlling component. The retractable adsorption component is connected to the bottom shell wall of the support base and abuts against the synchronous frame. A pressure-conducting and controlling component connected to the support base is also provided between the retractable adsorption component and the synchronous frame, which is used to cooperate with the movement of the synchronous frame to realize the automatic lifting and lowering of the retractable adsorption component and realize the adsorption connection between the retractable adsorption component and the ground.

[0013] As a further solution of the present invention: the retractable adsorption assembly includes: a trapezoidal push block, an adsorption seat, a movable rod, a fixed rod and a suction cup, the trapezoidal push block is abutted against the outer side of the bottom end of the synchronous frame, the outer side of the bottom end of the synchronous frame is fixedly connected with an adsorption seat connected to the pressure transmission control assembly, a number of movable rods are fixedly connected to the outer side of the adsorption seat, a fixed rod fixedly connected to the support base is slidably connected to the outer side of the movable rod, a spring is fixedly connected between the fixed rod and the movable rod, and a number of suction cups are fixedly connected to the shell wall of the bottom end of the adsorption seat.

[0014] As a further solution of the present invention: the pressure-guiding control component includes: a control seat, a piston groove, a synchronization rod, a pressure control part, an air guide tube and a connecting tube. The control seat is arranged on the outside of the synchronization frame and is fixedly connected to the support base. A piston groove is provided on the inside of the control seat. A pressure control part is slidingly connected to the inner side of one end of the piston groove. The pressure control part is slidingly connected to the synchronization rod fixedly connected to the synchronization frame. A spring is fixedly connected between the pressure control part and the synchronization rod. The other end of the piston groove is connected to the air guide tube. The air guide tube is fixedly connected to the control seat, and a connecting tube fixedly connected to the adsorption seat is slidingly connected on the outside, which is used to cooperate with the movement of the pressure control part to realize the extraction of air inside the adsorption seat.

[0015] Compared with the prior art, the present invention has the following beneficial effects:

[0016] When the device is running, the retractable part drives the positioning frame to move, adjusts the distance between the positioning frame and the support base, and the other end of the positioning frame abuts against the support column to complete the positioning of the support base. The synchronous drive control component can drive the positioning clamping component, and the positioning clamping component completes the clamping and locking of the support column to complete the fixation of the equipment. At the same time, the synchronous drive control component can also drive the adsorption fixing unit to achieve the adsorption connection between the equipment and the ground, ensuring the stability of the equipment during use. The beam is placed on the fine-tuning placement component, and the fine-tuning placement component can fine-tune the position of the beam, so that the beam and the support column can be accurately connected. The fine-tuning placement component can also drive the inductive locking component to complete the locking of the beam, ensuring the stability of the beam during installation. The combined installation base and the fine-adjustment placement component complete the support and lifting of the beam. The fine-adjustment placement component can also control the angle of the beam so that the cross-section of the beam body and the outer wall of the support column fit closely. Compared with the prior art, the operation of the lifting equipment in this application requires an open place and cannot be operated in a narrow place. At this time, the installation of the beam is not assisted by the lifting equipment, and the operation difficulty will be relatively increased. Manual support is required for docking and welding. The operation is difficult and the work progress is reduced. By setting up a quantitative lifting unit, not only can the beam be lifted stably and quantitatively, but also the angle of the beam can be controlled, and the equipment and the beam can be locked multiple times, which greatly improves the stability of the equipment during use and ensures the accuracy of installation. BRIEF DESCRIPTION OF THE DRAWINGS

[0017] Figure 1 This is a structural diagram of auxiliary equipment for roof steel structure installation.

[0018] Figure 2 This is a cross-sectional view of auxiliary equipment used for the installation of roof steel structure.

[0019] Figure 3 This is a structural diagram of the synchronous drive control components in the auxiliary equipment for roof steel structure installation.

[0020] Figure 4 This is a structural diagram of the positioning and clamping components in the auxiliary equipment for roof steel structure installation.

[0021] Figure 5 This is a structural diagram of the adjustable support assembly in the auxiliary equipment for roof steel structure installation.

[0022] Figure 6 This is a structural diagram of the fine-tuning placement components of the auxiliary equipment for roof steel structure installation.

[0023] Figure 7 This is a schematic diagram of the structure of the inductive locking component in the auxiliary equipment for roof steel structure installation.

[0024] Figure 8 This is a schematic diagram of the structure of the retractable adsorption component in the auxiliary equipment for roof steel structure installation.

[0025] Figure 9 This is a structural diagram of the pressure transmission and control components in the auxiliary equipment used for roof steel structure installation.

[0026] In the figure: 1-support base, 2-positioning frame, 3-retractable component, 4-castor, 5-adsorption fixing unit, 6-quantitative lifting unit, 7-synchronous drive control component, 8-positioning clamping component, 9-adjustable support component, 10-fine-tuning placement component, 11-inductive locking component, 12-control board, 13-telescopic component, 14-synchronous frame, 15-limiting prism, 16-transmission rod, 17-mounting seat, 18-clamping frame, 19-arc splint, 20-positioning column, 21-adjusting component, 22-lifting seat, 23-servo motor, 24-lifting control rod, 25-kinetic energy transmission component, 26-lifting seat, 27-steering motor, 28- Support column, 29-fixed frame, 30-placement plate, 31-rotating rod, 32-push-pull member, 33-limiting splint, 34-guide plate, 35-conveyor roller, 36-regulating rod, 37-connecting rod, 38-control member, 39-push control block, 40-sensing slider, 41-connecting plate, 42-transmission slide bar, 43-piston seat, 44-piston member, 45-piston tube, 46-lifting member, 47-trapezoidal push block, 48-adsorption seat, 49-movable rod, 50-fixed rod, 51-suction cup, 52-transmission control seat, 53-piston groove, 54-synchronizing rod, 55-pressure control member, 56-air guide tube, 57-connecting pipe, 58-locking splint. DETAILED DESCRIPTION

[0027] The technical solution of this application is further described in detail below in conjunction with specific implementation methods.

[0028] The following describes in detail embodiments of the present application. Examples of the embodiments are shown in the accompanying drawings, wherein the same or similar reference numerals throughout represent the same or similar elements or elements having the same or similar functions. The embodiments described below with reference to the accompanying drawings are exemplary and are only used to explain the present application and are not to be construed as limiting the present application.

[0029] See also Figure 1 and Figure 2In one embodiment of the present invention, an auxiliary device for installing a roof steel structure includes: a support base 1; casters 4, which are symmetrically arranged on the outside of the bottom end of the support base 1 and are rotatably connected to the support base 1; a positioning frame 2, which is arranged on the outside of the support base 1 and is connected to the support base 1 through a retractable member 3, and is used to cooperate with the support column to realize the positioning of the support base 1; a quantitative lifting unit 6, which is connected to the support base 1, and is used to cooperate with the support base 1 to realize the lifting of the beam and to cooperate with the positioning frame 2 to realize the fixed connection between the equipment and the support column; an adsorption and fixing unit 5, which is connected to the support base 1 and to the quantitative lifting unit 6, and is used to cooperate with the quantitative lifting unit 6 to realize the adsorption connection between the equipment and the ground; wherein, the quantitative lifting unit 6 includes: a synchronous drive control component 7, a positioning clamping component 8 , adjustable support component 9, fine-tuning placement component 10 and inductive locking component 11, the synchronous drive control component 7 is arranged on the inner side of the support base 1, and is connected to the adsorption and fixing unit 5, the synchronous drive control component 7 is also connected to the positioning clamping component 8 symmetrically arranged on the outside of the top end of the support base 1, for driving the positioning clamping component 8, and cooperating with the positioning frame 2 to achieve a stable connection between the equipment and the support column, the positioning clamping component 8 is also connected to the adjustable support component 9 arranged on the outside of the support base 1, the top of the adjustable support component 9 is connected to the fine-tuning placement component 10, for cooperating with the adjustable support component 9 to realize the support and lifting of the beam, and complete the fine-tuning and longitudinal rotation of the beam position, the fine-tuning placement component 10 is also provided with an inductive locking component 11, for cooperating with the fine-tuning placement component 10 to achieve clamping and locking of the supported beam.

[0030] In this embodiment, the positioning frame 2 and the positioning clamping assembly 8 are arranged on the same side and are both connected to the support column. A retractable member 3 is fixedly connected between the positioning frame 2 and the support base 1. The retractable member 3 is an electric telescopic rod. When the device is running, the retractable member 3 drives the positioning frame 2 to move and adjusts the distance between the positioning frame 2 and the support base 1. The other end of the positioning frame 2 abuts against the support column to complete the positioning of the support base 1. The synchronous drive control assembly 7 can drive the positioning clamping assembly 8, and the positioning clamping assembly 8 completes the clamping and locking of the support column to complete the fixation of the equipment. At the same time, the synchronous drive control assembly 7 can also drive the adsorption and fixing unit 5 to achieve the adsorption connection between the equipment and the ground, ensuring the stability of the equipment during use. The beam is placed on the fine-tuning placement assembly 10, and the fine-tuning placement assembly 10 can fine-tune the position of the beam, so that the beam and the support column can be accurately connected. The fine-tuning placement assembly 10 can also The driving induction locking component 11 completes the locking of the beam, ensuring the stability of the beam during installation. The adjustable support component 9 cooperates with the installation base 1 and the fine-tuning placement component 10 to complete the support and lifting of the beam. The fine-tuning placement component 10 can also control the angle of the beam so that the cross-section of the beam body and the outer wall of the support column fit closely. Compared with the prior art, the operation of the lifting equipment in this application requires an open place and cannot be operated in a narrow place. At this time, the installation of the beam is not assisted by the lifting equipment, and the operation difficulty will be relatively increased. Manual support is required for docking and welding. The operation is difficult and the work progress is reduced. By setting up a quantitative lifting unit 6, not only can the beam be stably and quantitatively lifted, but the angle of the beam can also be controlled, and the equipment and the beam can be locked multiple times, which greatly improves the stability of the equipment during use and ensures the accuracy of installation.

[0031] In one embodiment of the present invention, please refer to Figure 2 and Figure 3 The synchronous drive control component 7 includes: a control panel 12, a telescopic member 13, a synchronous frame 14, a limiting prism 15 and a transmission rod 16. The control panel 12 is arranged on the inner side of the support base 1, and a telescopic member 13 is fixedly connected between the control panel 12 and the support base 1. Synchronous frames 14 slidably connected to the shell wall of the support base 1 are provided on both sides of the control panel 12. The synchronous frame 14 is connected to the adsorption and fixing unit 5 and is connected to the positioning and clamping assembly 8. A transmission rod 16 is provided between the synchronous frame 14 and the control panel 12. One end of the transmission rod 16 is rotatably connected to the synchronous frame 14, and the other end is rotatably connected to the control panel 12. The other end of the synchronous frame 14 is slidably connected to the limiting prism 15 fixedly connected to the inner side of the support base 1, for cooperating with the telescopic member 13 to realize the synchronous drive of the adsorption and fixing unit 5 and the positioning and clamping assembly 8.

[0032] In this embodiment, a telescopic part 13 is fixedly connected between the control panel 12 and the inner wall of the support base 1. The telescopic part 13 is an electric telescopic rod. The telescopic part 13 drives the control panel 12 to move. The control panel 12 drives the synchronous frame 14 to move along the limiting prism 15 through the transmission rod 16. When the limiting prism 15 moves, it can drive the adsorption and fixing unit 5 to contact the ground and realize the adsorption connection between the adsorption and fixing unit 5 and the ground. The synchronous frame 14 can also drive the positioning clamping component 8. The positioning clamping component 8 completes the clamping and fixing of the support column. By setting up the synchronous drive control component 7, the driving of the adsorption and fixing unit 5 and the positioning clamping component 8 can be completed at the same time, and the positioning frame 2 can be cooperated to realize the positioning and fixation of the equipment, thereby ensuring the stability of the connection between the equipment and the support column, and thus ensuring the reliability and effectiveness of the subsequent installation of the beam.

[0033] In one embodiment of the present invention, please refer to Figure 4 The positioning and clamping assembly 8 includes: a mounting seat 17, a clamping frame 18, an arc-shaped clamping plate 19, a positioning column 20 and an adjusting piece 21. The mounting seat 17 is symmetrically arranged on the outside of the top of the support base 1 and is fixedly connected to the support base 1. Several fixing seats are fixedly connected to the outside of the opposite ends of the mounting seats 17 on both sides. A clamping frame 18 fixedly connected to the synchronization frame 14 is slidably connected on the inner side of the fixed seat. An arc-shaped clamping plate 19 is fixedly connected to the clamping frame 18. Positioning columns 20 are symmetrically provided on the outside of the opposite ends of the arc-shaped clamping plates 19 on both sides. An adjusting piece 21 is fixedly connected between the positioning column 20 and the arc-shaped clamping plate 19, which is used to cooperate with the movement of the clamping frame 18 to complete the clamping of the support column and realize the fixation of the equipment.

[0034] The locating posts 20 are symmetrically arranged on the outside of the opposite ends of the arc-shaped splints 19 on both sides, and an adjusting member 21 is fixedly provided between the positioning post 20 and the arc-shaped splint 19. The adjusting member 21 is an electric telescopic rod. According to the size of the support column, the position of the positioning post 20 is adjusted by the adjusting member 21. When the synchronous frame 14 moves, it can not only complete the driving of the adsorption and fixing unit 5, but also drive the clamping frame 18 to move. The clamping frames 18 on both sides perform relative movement, and the clamping frame 18 drives the arc-shaped splint 19 to move. The positioning posts 20 arranged on the outside of the arc-shaped splint 19 complete the clamping of the support column, so that the equipment can be stably fixed on the outside of the support column, ensuring a stable connection between the beam and the support column. By setting the positioning and clamping assembly 8, the synchronous drive control assembly 7 can be cooperated with the synchronous drive control assembly 7 to achieve a stable connection between the equipment and the support column, thereby ensuring the stability and reliability of the roof steel structure during installation.

[0035] In one embodiment of the present invention, please refer to Figure 5The adjustable support assembly 9 includes: a lifting seat 22, a servo motor 23, a lifting control rod 24, a kinetic energy transmission member 25, a lifting seat 26, a steering motor 27 and a support column 28. The lifting seat 22 is slidably connected to the mounting seat 17. The outer side of the top of the lifting seat 22 is fixedly connected to the lifting seat 26. The servo motor 23 is arranged between the mounting seats 17 on both sides and is fixedly connected to the support base 1. The inner sides of the mounting seats 17 on both sides are rotatably connected to the lifting control rod 24 threadedly connected to the lifting seat 22. The lifting control rod 24 is connected to the support bottom The seat 1 is rotatably connected and is connected to the output end of the servo motor 23 through a kinetic energy transmission part 25, and is used to cooperate with the servo motor 23 to realize the lifting and lowering of the lifting seat 26. The top of the lifting seat 26 is rotatably connected to a support column 28, and the top of the support column 28 is connected to the fine-tuning placement component 10. A steering motor 27 fixedly connected to the lifting seat 26 is provided between the support column 28 and the lifting seat 26. The output end of the steering motor 27 is fixedly connected to the support column 28, and is used to cooperate with the support column 28 to realize the lateral rotation of the beam located on the fine-tuning placement component 10.

[0036] In this embodiment, a lifting seat 22 is provided on the inner side of the mounting seats 17 on both sides in a sliding connection. The kinetic energy transmission member 25 includes a pulley fixedly connected to the lifting control rod 24 and the outer side of the output end of the servo motor 23. The pulleys are connected by a belt. The bottom end of the support column 28 is rotatably connected to the lifting seat 26, and the top end is fixedly connected to the fine-tuning placement component 10. The servo motor 23 drives the lifting control rods 24 on both sides to rotate synchronously through the pulley and belt. The lifting control rods 24 drive the lifting seat 22 to move up and down along the shell wall of the mounting seat 17. The lifting seat 22 drives the lifting seat 26 to move synchronously. The lifting seat 26 cooperates with the supporting platform 28 and the fine-tuning placement component 10 to lift the beam. The steering motor 27 drives the fine-tuning placement component 10 to rotate horizontally. One end of the beam located on the fine-tuning placement component 10 is connected to the support column to realize the connection between the beam and the support column. By setting up an adjustable support component 9, it can cooperate with the support base 1 to realize the lifting of the beam without lifting, which increases the safety of operation, speeds up work efficiency, and reduces the labor burden of the staff.

[0037] In one embodiment of the present invention, please refer to Figure 6The fine-tuning placement assembly 10 includes: a fixed frame 29, a placement plate 30, a rotating rod 31, a push-pull member 32, a limiting splint 33, a guide plate 34, a conveying roller 35, a regulating rod 36, a connecting rod 37, a control member 38 and a push-control block 39. The fixed frame 29 is fixedly connected to the outside of the top of the support column 28, and a placement plate 30 for supporting the beam is provided on the outside of the fixed frame 29. The outside of one end of the placement plate 30 is fixedly connected to the rotating rod 31 rotatably connected to the fixed frame 29, and the bottom of the other end is rotatably connected to the push-pull member 32. The other end of the push-pull member 32 is rotatably connected to the fixed frame 29 for cooperating with the fixed frame 29 to realize the longitudinal rotation of the beam. The push-control block 39 is slidably connected to the inside of the placement plate 30, and a control member is fixedly connected between the push-control block 39 and the placement plate 30. 38, the other end is arranged opposite to the inductive locking component 11, the limiting splints 33 are symmetrically arranged on both sides of the placement plate 30, and are slidably connected to the guide plate 34 fixedly connected to the placement plate 30, and a connecting rod 37 is provided between the limiting splint 33 and the push control block 39, one end of the connecting rod 37 is rotatably connected to the push control block 39, and a regulating rod 36 is slidably connected to the outside of the other end, and a spring is fixedly connected between the regulating rod 36 and the connecting rod 37, and the other end of the regulating rod 36 is rotatably connected to the limiting splint 33, for cooperating with the movement of the push control block 39 to realize the relative movement of the limiting splints 33 on both sides, and a number of conveying rollers 35 are rotatably connected on the opposite side wall of the limiting splints 33 on both sides, for cooperating with the movement of the limiting splint 33 to realize the limit and position fine-tuning of the crossbeam on the placement plate 30.

[0038] In this embodiment, the push-pull member 32 and the control member 38 are both electric telescopic rods. The beam is placed on the placement plate 30 and located between the limit clamps 33 on both sides. The control member 38 drives the push-control block 39 to move toward the side close to the inductive locking component 11. The push-control block 39 cooperates with the connecting rod 37 and the regulating rod 36 to drive the limit clamp 33 to move along the guide plate 34. The limit clamps 33 on both sides move relative to each other. The conveying rollers 35 arranged on the limit clamp 33 complete the clamping and limiting of the beam, and can also drive the beam located on the placement plate 30 to move, and fine-tune the position of the beam, so that the beam after angle adjustment can fit closely with the outer wall of the support column, and as the push-control block 39 continues to move, it can drive the inductive locking component 11 to lock the fine-tuned beam, thereby ensuring the stability of the beam during installation and greatly improving the reliability of the roof steel structure installation.

[0039] In one embodiment of the present invention, please refer to Figure 7The inductive locking assembly 11 includes: an inductive slider 40, a connecting plate 41, a transmission slide rod 42, a piston seat 43, a piston member 44, a piston tube 45, a lifting member 46 and a locking clamp 58. The inductive slider 40 is arranged on the outside of the push control block 39 and is slidably connected to the placement plate 30. The connecting plate 41 is arranged on the outside of the placement plate 30 and is connected to the inductive slider 40 through the transmission slide rod 42. It is also slidably connected to the wall of the placement plate 30. A spring is fixedly connected between the inductive slider 40 and the placement plate 30. The inductive slider A piston seat 43 fixedly connected to the placement plate 30 is also provided on the outside of 40, and a piston member 44 fixedly connected to the connecting plate 41 is slidably connected on the inside of the piston seat 43. A piston tube 45 is also fixedly connected to the piston seat 43, and a lifting member 46 is slidably connected on the inside of the other end of the piston tube 45. The lifting member 46 is fixedly connected to a locking clamp 58 provided on the outside of the top end of the placement plate 30, and is used to cooperate with the movement of the piston member 44 on the inside of the piston seat 43, so as to realize the clamping and locking of the locking clamp 58 on the crossbeam on the placement plate 30.

[0040] In this embodiment, the spring is fixedly connected between the sensing slider 40 and the placement plate 30, the piston member 44 includes a first piston slidably connected to the inner side of the piston seat 43 and a first push rod fixedly connected to the first piston, the other end of the first push rod is fixedly connected to the connecting plate 41, the lifting member 46 includes a second piston slidably connected to the inner side of the piston tube 45 and a second push rod fixedly connected to the second piston, the other end of the second push rod is fixedly connected to the locking clamping plate 58, as the push control block 39 is connected to the sensing slider 40, the control member 38 continues to drive the push control block 39 to move, the sensing slider 40 cooperates with the transmission slide 42 to drive the connecting plate 41 to move, the connecting plate 41 drives the first piston to move inside the piston seat 43, thereby realizing the movement of the second piston inside the piston tube 45, the second piston cooperates with the second push rod to drive the locking clamping plate 58 to clamp and lock the crossbeam on the placement plate 30, by providing the inductive locking assembly 11, it can cooperate with the fine-tuning placement assembly 10 to achieve locking of the crossbeam on the placement plate 30, thereby ensuring the stability of the crossbeam during installation, thereby ensuring the accuracy of installation.

[0041] In one embodiment of the present invention, the adsorption and fixing unit 5 includes: a retractable adsorption component and a pressure-conducting and controlling component. The retractable adsorption component is connected to the bottom shell wall of the support base 1 and abuts against the synchronous frame 14. A pressure-conducting and controlling component connected to the support base 1 is also provided between the retractable adsorption component and the synchronous frame 14, which is used to cooperate with the movement of the synchronous frame 14 to realize the automatic lifting and lowering of the retractable adsorption component and realize the adsorption connection between the retractable adsorption component and the ground.

[0042] In this embodiment, when the synchronous frame 14 moves, it can drive the retractable adsorption component to connect to the ground. The synchronous frame 14 can also drive the pressure-conducting and control component, and use the pressure-conducting and control component to drive the retractable adsorption component to be adsorbed and connected to the ground, thereby completing multiple locking of the equipment and ensuring the stability of the equipment during installation. By setting up the adsorption fixing unit 5, it can cooperate with the synchronous drive control component 7 to achieve locking of the equipment, ensuring the stability of the equipment during installation, and ensuring the accuracy and reliability of the installation.

[0043] In one embodiment of the present invention, please refer to Figure 8 The retractable adsorption assembly includes: a trapezoidal push block 47, an adsorption seat 48, a movable rod 49, a fixed rod 50 and a suction cup 51. The trapezoidal push block 47 is abutted against the outer side of the bottom end of the synchronous frame 14. The outer side of the bottom end of the synchronous frame 14 is fixedly connected with an adsorption seat 48 connected to the pressure transmission control assembly. A number of movable rods 49 are fixedly connected to the outer side of the adsorption seat 48. A fixed rod 50 fixedly connected to the support base 1 is slidably connected to the outer side of the movable rod 49. A spring is fixedly connected between the fixed rod 50 and the movable rod 49. A number of suction cups 51 are fixedly connected to the shell wall of the bottom end of the adsorption seat 48.

[0044] In this embodiment, a number of movable rods 49 are fixedly connected to the side walls at both ends of the adsorption seat 48, and a fixed rod 50 fixedly connected to the support base 1 is slidably connected to the outer side of the top end of the movable rod 49. A spring is fixedly connected between the fixed rod 50 and the movable rod 49. When the synchronous frame 14 moves, it can cooperate with the trapezoidal push block 47 to drive the adsorption seat 48 to move downward along the movable rod 49. The suction cup 51 on the adsorption seat 48 is connected to the ground, and under the drive of the pressure control component, the suction connection between the suction cup 51 and the ground is realized, completing the adsorption and fixation of the equipment.

[0045] In one embodiment of the present invention, please refer to Figure 9 The pressure control assembly includes: a control seat 52, a piston groove 53, a synchronization rod 54, a pressure control piece 55, an air guide tube 56 and a connecting tube 57. The control seat 52 is arranged on the outside of the synchronization frame 14 and is fixedly connected to the support base 1. A piston groove 53 is provided on the inside of the control seat 52. A pressure control piece 55 is slidingly connected to the inner side of one end of the piston groove 53. The pressure control piece 55 is slidingly connected to the synchronization rod 50 fixedly connected to the synchronization frame 14. A spring is fixedly connected between the pressure control piece 55 and the synchronization rod 50. The other end of the piston groove 53 is connected to the air guide tube 56. The air guide tube 56 is fixedly connected to the control seat 52, and a connecting tube 57 fixedly connected to the adsorption seat 48 is slidingly connected on the outer side, which is used to cooperate with the movement of the pressure control piece 55 to realize the extraction of air inside the adsorption seat 48.

[0046] In this embodiment, the pressure control part 55 includes a third piston slidingly connected to the inner side of the piston groove 53 and a third push rod fixedly connected to the third piston. The other end of the third push rod is slidingly connected to the synchronization rod 54. A spring is fixedly connected between the third push rod and the synchronization rod 54. When the synchronization frame 14 moves, the synchronization rod 54 drives the third piston to move inside the piston groove 53, and cooperates with the air guide pipe 56 and the connecting pipe 57 to extract the air inside the adsorption seat 48, thereby realizing the adsorption and fixation of the equipment.

[0047] The auxiliary equipment for the installation of the roof steel structure, by providing a quantitative lifting unit 6, can not only stably and quantitatively lift the beam, but also control the angle of the beam, and can perform multiple locking of the equipment and the beam, which greatly improves the stability of the equipment during use and ensures the accuracy of installation. By providing a synchronous drive control component 7, the driving of the adsorption and fixing unit 5 and the positioning and clamping component 8 can be completed at the same time, and the positioning frame 2 can be cooperated with to achieve the positioning and fixation of the equipment, thereby ensuring the stability of the connection between the equipment and the support column, and thus ensuring the reliability and effectiveness of the subsequent installation of the beam. By providing a positioning and clamping component 8, the synchronous drive control component 7 can be cooperated with to achieve a stable connection between the equipment and the support column, thereby ensuring the stability and reliability of the roof steel structure during installation. By providing an adjustable support component 9, the support base 1 can be cooperated with to achieve the lifting of the beam without hoisting, thereby increasing the safety of operation, accelerating work efficiency, and reducing the labor burden of the staff. By providing a fine-tuning placement component 10, the control component 38 drives the push control block 39 The control block 39 moves toward the side of the inductive locking assembly 11, and the push control block 39 cooperates with the connecting rod 37 and the regulating rod 36 to drive the limiting splint 33 to move along the guide plate 34. The limiting splints 33 on both sides move relative to each other, and the conveying rollers 35 provided on the limiting splint 33 complete the clamping and limiting of the beam, and can also drive the beam on the placement plate 30 to move, and fine-tune the position of the beam so that the beam after angle adjustment can fit tightly with the outer wall of the support column. As the push control block 39 continues to move, the inductive locking assembly 11 can be driven to lock the fine-tuned beam, ensuring the stability of the beam during installation, greatly improving the reliability of the roof steel structure installation, by providing the inductive locking assembly 11, it can cooperate with the fine-tuning placement assembly 10 to achieve locking of the beam on the placement plate 30, ensuring the stability of the beam during installation, thereby ensuring the accuracy of installation, and by providing the adsorption and fixing unit 5, it can cooperate with the synchronous drive control assembly 7 to achieve locking of the equipment, ensuring the stability of the equipment during installation, and ensuring the accuracy and reliability of installation.

[0048] The above are only preferred embodiments of the present invention. It should be pointed out that for those skilled in the art, several modifications and improvements can be made without departing from the concept of the present invention. These should also be regarded as the scope of protection of the present invention. These will not affect the effect of the implementation of the present invention and the practicality of the patent.

Claims

1. Auxiliary equipment for roof steel structure installation, characterized in that: include: Support base; Casters, the casters are symmetrically arranged on the outside of the bottom end of the support base and are rotatably connected to the support base; A positioning frame is arranged on the outside of the support base and is connected to the support base through a retractable member, and is used to cooperate with the support column to realize the positioning of the support base; A quantitative lifting unit connected to the support base is used to cooperate with the support base to lift the crossbeam and cooperate with the positioning frame to achieve a fixed connection between the equipment and the support column; An adsorption fixing unit, which is connected to the support base and the quantitative lifting unit, and is used to cooperate with the quantitative lifting unit to achieve an adsorption connection between the device and the ground; Wherein, the quantitative lifting unit includes: a synchronous drive control component, a positioning clamping component, an adjustable support component, a fine-adjustment placement component and an inductive locking component. The synchronous drive control component is arranged on the inner side of the support base and is connected to the adsorption and fixing unit. The synchronous drive control component is also connected to the positioning clamping component symmetrically arranged on the outer side of the top end of the support base, for driving the positioning clamping component, and cooperating with the positioning frame to achieve a stable connection between the equipment and the support column. The positioning clamping component is also connected to the adjustable support component arranged on the outer side of the support base, and the top of the adjustable support component is connected to the fine-adjustment placement component for cooperating with the adjustable support component to support and lift the beam, and complete the fine-tuning and longitudinal rotation of the beam position. The fine-adjustment placement component is also provided with an inductive locking component for cooperating with the fine-adjustment placement component to achieve clamping and locking of the supported beam; The synchronous drive control assembly includes: a control panel, a telescopic member, a synchronous frame, a limiting prism and a transmission rod, the control panel is arranged on the inner side of the support base, a telescopic member is fixedly connected to the control panel and the support base, synchronous frames slidably connected to the shell wall of the support base are provided on both sides of the control panel, the synchronous frame is connected to the adsorption and fixing unit, and is connected to the positioning clamping assembly, a transmission rod is provided between the synchronous frame and the control panel, one end of the transmission rod is rotatably connected to the synchronous frame, and the other end is rotatably connected to the control panel, and the other end of the synchronous frame is slidably connected to the limiting prism fixedly connected to the inner side of the support base, so as to cooperate with the extension and contraction of the telescopic member to realize synchronous driving of the adsorption and fixing unit and the positioning clamping assembly; The positioning clamping assembly includes: a mounting seat, a clamping frame, an arcuate clamping plate, a positioning column and an adjusting piece, the mounting seat is symmetrically arranged on the outer side of the top of the support base and is fixedly connected to the support base, a plurality of fixing seats are fixedly connected to the outer sides of the mounting seats on both sides relative to one end, a clamping frame fixedly connected to the synchronous frame is slidably connected to the inner side of the fixed seat, an arcuate clamping plate is fixedly connected to the clamping frame, and positioning columns are symmetrically provided on the outer sides of the arcuate clamping plates on both sides relative to one end, and an adjusting piece is fixedly connected between the positioning column and the arcuate clamping plate, which is used to cooperate with the movement of the clamping frame to complete the clamping of the support column and realize the fixation of the equipment; The adsorption and fixing unit includes: a retractable adsorption component and a pressure-conducting control component. The retractable adsorption component is connected to the bottom shell wall of the support base and abuts against the synchronous frame. A pressure-conducting control component connected to the support base is also provided between the retractable adsorption component and the synchronous frame, which is used to cooperate with the movement of the synchronous frame to realize the automatic lifting and lowering of the retractable adsorption component and realize the adsorption connection between the retractable adsorption component and the ground.

2. The auxiliary equipment for installing the roof steel structure according to claim 1, characterized in that: The adjustable support assembly includes: a lifting seat, a servo motor, a lifting control rod, a kinetic energy transmission part, a lifting seat, a steering motor and a support column. The lifting seat is slidably connected to the mounting seat, and a lifting seat is fixedly connected to the outer side of the top of the lifting seat. The servo motor is arranged between the mounting seats on both sides and is fixedly connected to the support base. The inner sides of the mounting seats on both sides are rotatably connected to a lifting control rod threadedly connected to the lifting seat. The lifting control rod is rotatably connected to the support base and is connected to the output end of the servo motor through the kinetic energy transmission part, which is used to cooperate with the servo motor to realize the lifting of the lifting seat. The top of the lifting seat is rotatably connected to the support column, and the top of the support column is connected to the fine-tuning placement assembly. A steering motor fixedly connected to the lifting seat is provided between the support column and the lifting seat, and the output end of the steering motor is fixedly connected to the support column, which is used to cooperate with the support column to realize the lateral rotation of the beam located on the fine-tuning placement assembly.

3. The auxiliary equipment for installing the roof steel structure according to claim 2, characterized in that: The fine-adjustable placement assembly includes: a fixed frame, a placement plate, a rotating rod, a push-pull member, a limiting splint, a guide plate, a conveying roller, a regulating rod, a connecting rod, a control member and a push-control block. The fixed frame is fixedly connected to the outside of the top of the supporting column, and a placement plate for supporting the crossbeam is provided on the outside of the fixed frame. The outside of one end of the placement plate is fixedly connected to a rotating rod rotatably connected to the fixed frame, and the bottom of the other end is rotatably connected to a push-pull member. The other end of the push-pull member is rotatably connected to the fixed frame for cooperating with the fixed frame to realize the longitudinal rotation of the crossbeam. The push-control block is slidingly connected to the inner side of the placement plate, and a control member is fixedly connected to the placement plate, and the other end is connected to the The inductive locking components are arranged relative to each other, and the limit splints are symmetrically arranged on both sides of the placement plate, and are slidingly connected to the guide plate fixedly connected to the placement plate. A connecting rod is provided between the limit splint and the push control block, one end of the connecting rod is rotatably connected to the push control block, and the other end is slidably connected to the outside of the control rod, and a spring is fixedly connected between the control rod and the connecting rod, and the other end of the control rod is rotatably connected to the limit splint, which is used to cooperate with the movement of the push control block to realize the relative movement of the limit splints on both sides. A number of conveying rollers are rotatably connected on the plate wall on the opposite side of the limit splints on both sides, which are used to cooperate with the movement of the limit splint to realize the limit and position fine-tuning of the beam on the placement plate.

4. The auxiliary equipment for installing the roof steel structure according to claim 3, characterized in that: The induction locking assembly includes: an induction slider, a connecting plate, a transmission slide rod, a piston seat, a piston part, a piston tube, a lifting part and a locking splint. The induction slider is arranged on the outside of the push control block and is slidably connected to the placement plate. The connecting plate is arranged on the outside of the placement plate, connected to the induction slider through a transmission slide rod, and slidably connected to the wall of the placement plate. A spring is fixedly connected between the induction slider and the placement plate. A piston seat fixedly connected to the placement plate is also provided on the outside of the induction slider. A piston part fixedly connected to the connecting plate is slidably connected to the inside of the piston seat. A piston tube is also fixedly connected to the piston seat. A lifting part is slidably connected to the inside of the other end of the piston tube. The lifting part is fixedly connected to the locking splint arranged on the outside of the top end of the placement plate, which is used to cooperate with the movement of the piston part on the inside of the piston seat to realize the clamping and locking of the locking splint on the beam on the placement plate.

5. The auxiliary equipment for installing the roof steel structure according to claim 1, characterized in that: The retractable adsorption assembly includes: a trapezoidal push block, an adsorption seat, a movable rod, a fixed rod and a suction cup. The trapezoidal push block is abutted against the outer side of the bottom end of the synchronous frame. The outer side of the bottom end of the synchronous frame is fixedly connected with an adsorption seat connected to the pressure transmission control assembly. A number of movable rods are fixedly connected to the outer side of the adsorption seat. A fixed rod fixedly connected to the support base is slidably connected to the outer side of the movable rod. A spring is fixedly connected between the fixed rod and the movable rod. A number of suction cups are fixedly connected to the shell wall of the bottom end of the adsorption seat.

6. The auxiliary equipment for installing the roof steel structure according to claim 5, characterized in that: The pressure-guiding control assembly includes: a control seat, a piston groove, a synchronization rod, a pressure-controlling part, an air guide tube and a connecting tube. The control seat is arranged on the outside of the synchronization frame and is fixedly connected to the support base. A piston groove is provided on the inside of the control seat. A pressure-controlling part is slidingly connected to the inner side of one end of the piston groove. The pressure-controlling part is slidingly connected to the synchronization rod fixedly connected to the synchronization frame. A spring is fixedly connected between the pressure-controlling part and the synchronization rod. The other end of the piston groove is connected to the air guide tube. The air guide tube is fixedly connected to the control seat, and a connecting tube fixedly connected to the adsorption seat is slidingly connected on the outside for cooperating with the movement of the pressure-controlling part to realize the extraction of air inside the adsorption seat.

Citation Information

Patent Citations

  • Beam installation elevator

    CN116534761A

  • Assembly part butt joint equipment for constructional engineering

    CN117846319A