Steel structure transfer safety protection type hoisting equipment and method built based on airport
By combining mechanical clamping and vacuum adsorption on the hoist, the problem of swaying and falling of steel structures during transportation in airport construction was solved, achieving highly stable and efficient hoisting operations and improving construction safety and efficiency.
Patent Information
- Application Number
- CN202511320582.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-09-16
- Publication Date
- 2025-12-16
- Estimated Expiration
- 2045-09-16
AI Technical Summary
During airport construction, steel structures are prone to swaying, shifting, or even falling when transported in complex environments, leading to safety hazards and impacting construction progress.
The system employs a hoisting machine, hoisting connectors, a hoisting platform, and bottom limit components, combined with a dual fixing method of mechanical clamping and vacuum adsorption. Through precision mechanical linkage and intelligent control technology, the stability of the steel structure is ensured during transportation.
This effectively avoids deformation or damage to the steel structure during hoisting, significantly improves the safety and efficiency of hoisting operations, and ensures the smoothness and precision of the hoisting process.
Smart Images

Figure CN121134490A_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the technical field of airport construction, more particularly, the present application relates to a steel structure transfer safety protection type hoisting equipment and method based on airport construction. BACKGROUND
[0002] Airport construction refers to a series of work such as planning, design, construction and reconstruction of the airport, which covers the construction of many infrastructures such as the runway, the parking apron, the terminal building and the tower of the airport. In the process of airport construction, the transfer and hoisting of steel structures are extremely critical links, which are directly related to the quality and safety of airport construction. The steel structure transfer safety protection type hoisting equipment and method based on airport construction is developed to better complete this link.
[0003] According to the patent document CN120613661A, a high-voltage cable self-propelled laying device is disclosed. The existing cable reel uses a fixed position, and the current fixed laying rack is used. Once the cable reel is set up, the position of the laying rack is fixed and cannot be adjusted later. There is no self-adaptive cable reel adjustment function, no automatic cable reel leveling, and no cable reel brake function. To solve the above problems, the present application provides a solution, which includes a tracked walking device, an upper frame, a hoisting mechanism and a cable reel support. The tracked walking device is horizontally arranged on the ground. The upper frame is arranged on the tracked walking device. In the present application, the cable reel support is independently adjusted in height and spacing by the lifting mechanism (lifting cylinder + inner rod outer cylinder structure) and the contraction and expansion mechanism (extension cylinder + sliding block sliding groove). It can adapt to different specifications of cable reels and automatically level through the electric control system to avoid equipment damage or work interruption caused by uneven load.
[0004] In the process of airport construction, a large amount of steel structure material is needed to build various buildings and facilities. These steel structures face many severe challenges during the transfer process. Due to the complexity of the airport environment, the space is relatively limited, and the requirements for construction safety and efficiency are extremely high. The traditional hoisting equipment often cannot meet the actual needs. Specifically, the traditional hoisting equipment usually lifts the hoisting platform to the required height by a hoisting machine, and the steel structure material is directly placed on the hoisting platform. However, during the transfer process, due to the lack of effective fixing measures, these steel structures are prone to shaking, shifting, and even falling in the complex airport environment, which brings great safety hazards. This not only affects the construction progress, but also poses a serious threat to the safety of on-site personnel. Therefore, how to effectively solve the safety problem of steel structure transfer in airport construction has become an important topic that needs to be solved. SUMMARY
[0005] To overcome the aforementioned deficiencies of the prior art, this invention provides a safety-protected hoisting equipment and method for the transfer of steel structures in airport construction. The technical problem to be solved by this invention is that during the transfer process, due to the lack of effective fixing measures, these steel structures are prone to shaking, displacement, or even falling in the complex airport environment, which brings great safety hazards. This not only affects the construction progress but may also pose a serious threat to the safety of on-site personnel. Therefore, how to effectively solve the safety problem of steel structure transfer in airport construction is the key issue.
[0006] To solve the above-mentioned technical problems, the technical solution adopted by the present invention is as follows:
[0007] The steel structure transfer safety protection hoisting equipment based on airport construction includes a hoisting machine, a hoisting connector is fixedly connected to the top front side of the hoisting machine, a hoisting platform is fixedly connected to the bottom of the hoisting connector, and bottom limit components are provided on both the left and right sides of the hoisting platform.
[0008] The hoisting platform includes a control component, and a fixing component is provided on the bottom inner side of the control component;
[0009] The control component includes two concave connecting plates, each with a top connecting block fixedly connected to its top. The tops of the two top connecting blocks are fixedly connected to the left and right sides of the bottom of the hoisting connector. A rectangular connecting crossbar is fixedly connected to the inner wall of the middle part of the bottom of the two concave connecting plates.
[0010] The fixing assembly includes four sets of columnar rotating rod sleeves. The tops of the two sets of columnar rotating rod sleeves on the left and the two sets of columnar rotating rod sleeves on the right are fixedly connected to the front and rear sides of the bottom of the two inverted concave connecting plates.
[0011] As a further embodiment of the present invention: connecting plates are fixedly connected to the front and rear sides of the two inverted concave connecting plates; columnar sleeves are fixedly connected to the front and rear sides of the bottom of the two inverted concave connecting plates; uprights are fixedly connected to the left and right sides of the bottom of the two sets of connecting plates; L-shaped side plates are fixedly connected to the bottom of the multiple sets of uprights; L-shaped side plate guide grooves are opened on the inner side of the two sets of L-shaped side plates; rectangular guide plates are fixedly connected to the top of the inner side of the two sets of L-shaped side plates; and rectangular guide plate guide grooves are opened on the left and right sides of the bottom of the rectangular guide plates.
[0012] As a further embodiment of the present invention: hinge block connecting rods are fixedly connected to the outer sides of the left and right groups of L-shaped side plates, hinge blocks are fixedly connected to the inner sides of the front and rear groups of hinge block connecting rods on the side away from the L-shaped side plates, vacuum adsorption control components are fixedly connected to the outer sides of the front two groups of uprights, and pipes are fixedly connected to the left and right sides of the bottom of the vacuum adsorption control components.
[0013] As a further scheme of the present application: the inner bottom of the two inner vertical rods of the two groups of vertical rods at the back is fixedly connected with a convex motor connecting plate, the top middle of the convex motor connecting plate is fixedly connected with a motor, the output end of the motor is fixedly connected with a transmission shaft, and the front and back of the outer wall of the transmission shaft is sleeved with a track.
[0014] As a further scheme of the present application: the inner wall middle of the left two groups of columnar rotating rod sleeve plates and the right two groups of columnar rotating rod sleeve plates is rotatably connected with a columnar rotating rod, the outer wall of the two columnar rotating rods is fixedly connected with a transmission ring inside the left two groups and the right two groups of inner columnar rotating rod sleeve plates, the outer wall of the two transmission rings is sleeved on the inner wall of the two tracks away from the transmission shaft, the outer wall of the two columnar rotating rods is fixedly connected with a rotating disc on one side of the left two groups and the right two groups of columnar rotating rod sleeve plates, the bottom of the opposite side of the left and right groups of rotating discs is fixedly connected with a rotating block, the side of the left and right groups of rotating blocks away from the rotating disc is rotatably connected with a bidirectional hinged rod, and the front and back of the outer wall of the two columnar rotating rods is rotatably connected with the inner wall of the two groups of columnar sleeve blocks.
[0015] As a further scheme of the present application: the left and right sides of the inner wall of the left two groups and the right two groups of columnar rotating rod sleeve plates are rotatably connected with a rotating vertical plate, the inner wall of the outer two groups of rotating vertical plates is rotatably connected with the outer wall of the left and right two groups of bidirectional hinged rods away from the rotating block, and the outer wall of the rotating vertical plate is fixedly connected with a rotating vertical plate connecting rod.
[0016] As a further scheme of the present application: the bottom of the left two groups of rotating vertical plates and the right two groups of rotating vertical plates is rotatably connected with an oval connecting block, the bottom of the outer wall of the oval connecting block is rotatably connected with a U-shaped expansion plate, the inner side of the left and right two groups of U-shaped expansion plates is fixedly connected with a resisting plate U-shaped connecting rod, the outer side of the two resisting plate U-shaped connecting rods is fixedly connected with a resisting plate, and the outer side to the inner side of the two resisting plates is a slope from large to small.
[0017] As a further scheme of the present application: the bottom of the left and right groups of the U-shaped expansion plates is fixedly connected with a vertical Z-shaped plate, the outer top of the left and right groups of the vertical Z-shaped plates is fixedly connected with a vertical Z-shaped plate sliding rod, the outer wall of the left and right groups of the vertical Z-shaped plate sliding rods is slidably connected with the inner wall of the L-shaped side plate guide groove of the left and right groups of the L-shaped side plates, the inner bottom of the front and rear groups of the vertical Z-shaped plates is rotatably connected with a push-pull rotating rod, the side away from the vertical Z-shaped plate of the front and rear groups of the push-pull rotating rods is rotatably connected with a push-pull rotating rod connecting plate, the inner side of the two push-pull rotating rod connecting plates is fixedly connected with a clamping plate, the left and right sides of the top of the two clamping plates are fixedly connected with a clamping plate sliding block, the outer wall of the front and rear groups of the clamping plate sliding blocks is slidably connected with the inner wall of the two rectangular guide plate guide grooves of the rectangular guide plate bottom, the left and right sides of the inner side of the two clamping plates are fixedly connected with a vacuum suction cup, and the outer side of the two clamping plates is fixedly connected with the end away from the vacuum adsorption control member of the two pipes.
[0018] As a further scheme of the present application: the bottom limiting assembly comprises two groups of V-shaped rotating rods, the outer wall middle part of the left and right groups of the V-shaped rotating rods is rotatably connected with the inner wall of the left and right groups of the hinged blocks, the top of the inner side of the left and right groups of the V-shaped rotating rods is fixedly connected with a spring, the inner side of the left and right groups of the V-shaped rotating rods is attached to the front and rear sides of the two abutting plates on one side of the spring bottom, and the inner bottom of the left and right groups of the V-shaped rotating rods is fixedly connected with a bottom supporting block.
[0019] In addition, the present application also relates to a use method of the steel structure transfer safety protection type hoisting equipment based on the airport construction, which comprises the following steps:
[0020] Step one: first, the hoisting site is comprehensively investigated to determine the specific position, size, weight and surrounding environment of the steel structure, a detailed hoisting scheme is formulated according to the investigation results, and the parking position of the hoisting machine, the hoisting route and the safety protection measures are clearly defined;
[0021] Step two: transport the hoisting machine to the hoisting site and accurately park it in the appropriate position according to the established scheme, comprehensively check the hoisting machine to ensure that the components are firmly connected and have good performance, and carefully debug the hoisting connection piece, the hoisting platform and the bottom limiting assembly to ensure smooth operation;
[0022] Step three: the operator starts the hoisting machine through the professional control equipment, slowly lowers the hoisting connection piece, and then drives the hoisting platform and the bottom limiting assembly to gradually descend, and the inner side of the two clamping plates can accurately correspond to the positions of the two sides of the steel structure;
[0023] Step 4: Once the hoisting platform reaches the appropriate height, start the motor. The motor drives the drive shaft to rotate, and the drive shaft transmits power to the two drive rings through two tracks, driving the two columnar rotating rods to rotate. The two columnar rotating rods drive the two sets of turntables to rotate synchronously. The rotating blocks on the turntables perform circular motion, which pulls multiple sets of rotating vertical plates to rotate through two sets of bidirectional hinged rods. The multiple sets of rotating vertical plates drive the elliptical connecting blocks to move, causing the two sets of U-shaped expansion and contraction plates to retract inward.
[0024] Step 5: As the two sets of U-shaped expansion plates retract inward, the abutment plate moves inward, pushing the V-shaped rotating rod to rotate around the hinge block, causing the bottom support block to rise and lock into the bottom of the steel structure. At the same time, the two sets of U-shaped expansion plates drive the two sets of push-pull rotating rods to rotate, pushing the two clamping plates to move inward. The clamping plate slider slides in the guide groove of the rectangular guide plate to ensure accurate and stable clamping action.
[0025] Step Six: The clamping plate continues to move inward, and the vacuum suction cups on its inner side gradually approach the surface of the steel structure. The vacuum adsorption control device is activated, and a negative pressure environment is created inside the vacuum suction cups through the pipes, so that they are firmly adsorbed on both sides of the steel structure.
[0026] Step 7: Conduct a comprehensive inspection of the hoisting equipment's fixation again. After confirming that the steel structure has been firmly fixed by both mechanical clamping and vacuum adsorption, and that the bottom support blocks reliably support the bottom of the steel structure, the operator slowly raises the hoisting machine by controlling the equipment to lift the steel structure smoothly.
[0027] Step 8: After reaching the designated position, slowly lower the steel structure. When the steel structure is close to the ground, pause the descent, release the negative pressure environment of the vacuum suction cup, and separate the vacuum suction cup from the steel structure. Then, reverse the operation of the motor to restore each component to its initial state and place the steel structure smoothly on the designated position on the ground, completing one steel structure transfer and hoisting operation.
[0028] The beneficial effects of this invention are as follows:
[0029] This invention, by incorporating a hoisting machine, hoisting connectors, a hoisting platform, and a bottom limit assembly, organically combines mechanical clamping and vacuum adsorption through precise mechanical linkage and intelligent control technology. This provides a comprehensive and highly stable safety solution for the transfer of steel structures during airport construction. In practical applications, this equipment not only effectively prevents deformation or damage to the steel structure due to uneven local stress during hoisting, but also significantly improves the overall safety of the hoisting operation through a dual-fixing mechanism. Furthermore, the coordinated work between the various components ensures the smoothness and precision of the hoisting process, greatly improving construction efficiency. In addition, this hoisting equipment and method are easy to operate and highly adaptable, meeting the transfer needs of steel structures of different sizes and shapes, providing solid technical support for the smooth progress of airport construction projects. Attached Figure Description
[0030] Figure 1 This is a schematic diagram of the main three-dimensional structure of the present invention;
[0031] Figure 2 This is a schematic diagram of the three-dimensional separation structure of the main body of the present invention;
[0032] Figure 3 This is a three-dimensional structural diagram of the hoisting connector, hoisting platform, and bottom limiting component of the present invention;
[0033] Figure 4 This is a schematic diagram of the three-dimensional separation structure of the hoisting connector, hoisting platform and bottom limiting component of the present invention;
[0034] Figure 5 This is a three-dimensional structural diagram of the hoisting platform of the present invention;
[0035] Figure 6 This is a schematic diagram of the three-dimensional separation structure of the hoisting platform of the present invention;
[0036] Figure 7 This is a schematic diagram of the three-dimensional separation structure of the control component of the present invention;
[0037] Figure 8 This is a three-dimensional structural diagram of the fixing component of the present invention;
[0038] Figure 9 This is a schematic diagram of the three-dimensional separation structure of the fixing component of the present invention;
[0039] Figure 10 This is a three-dimensional structural diagram of the bottom limiting component of the present invention.
[0040] In the diagram: 1. Hoisting machine; 2. Hoisting connector; 3. Hoisting platform; 31. Control components; 311. Inverted concave connecting plate; 312. Top connecting block; 313. Connecting plate; 314. Rectangular connecting crossbar; 315. Columnar sleeve block; 316. Convex motor connecting plate; 317. Motor; 318. Drive shaft; 319. Track; 3110. Upright; 3111. L-shaped side plate; 3112. L-shaped side plate guide groove; 3113. Hinge block connecting rod; 3114. Hinge block; 3115. Vacuum adsorption control components; 3116. Pipeline; 3117. Rectangular guide plate; 3118. Rectangular guide plate guide groove; 32. Fixing components; 321 322. Columnar rotating rod sleeve plate; 323. Columnar rotating rod; 324. Transmission ring; 325. Turntable; 326. Rotating block; 327. Two-way hinge rod; 328. Rotating vertical plate; 329. Rotating vertical plate connecting rod; 320. Elliptical connecting block; 3210. U-shaped expansion plate; 3211. Vertical Z-shaped plate; 3212. Abutting plate U-shaped connecting rod; 3213. Abutting plate; 3214. Vertical Z-shaped plate slide rod; 3215. Push-pull rotating rod; 3216. Push-pull rotating rod connecting plate; 3217. Clamping plate; 3218. Clamping plate slider; 3219. Vacuum suction cup; 4. Bottom limit assembly; 41. V-shaped rotating rod; 42. Spring; 43. Bottom support block. Detailed Implementation
[0041] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0042] like Figures 1-2 As shown, the present invention provides a steel structure transfer safety protection hoisting equipment based on airport construction, including a hoisting machine 1, a hoisting connector 2 fixedly connected to the top front side of the hoisting machine 1, a hoisting platform 3 fixedly connected to the bottom of the hoisting connector 2, and bottom limit components 4 provided on both the left and right sides of the hoisting platform 3.
[0043] like Figures 3-10As shown, the hoisting platform 3 includes a control component 31. A fixing component 32 is provided on the inner bottom side of the control component 31. The control component 31 includes two inverted concave connecting plates 311. A top connecting block 312 is fixedly connected to the top of each of the two inverted concave connecting plates 311. The tops of the two top connecting blocks 312 are fixedly connected to the left and right sides of the bottom of the hoisting connector 2. A rectangular connecting crossbar 314 is fixedly connected to the inner wall of the middle bottom of the two inverted concave connecting plates 311. Connecting plates 313 are fixedly connected to the front and rear sides of the two inverted concave connecting plates 311. Columnar sleeve blocks 315 are fixedly connected to the front and rear sides of the bottom of the two inverted concave connecting plates 311. Vertical poles 3110 are fixedly connected to the left and right sides of the bottom of the two sets of connecting plates 313. Each of the uprights 3110 has an L-shaped side plate 3111 fixedly connected to its bottom. The inner sides of both the left and right L-shaped side plates 3111 have L-shaped guide grooves 3112. The top inner sides of both the left and right L-shaped side plates 3111 are fixedly connected to rectangular guide plates 3117. The bottom left and right sides of the rectangular guide plates 3117 have rectangular guide grooves 3118. The outer sides of both the left and right L-shaped side plates 3111 are fixedly connected to hinge block connecting rods 3113. The inner sides of both the front and rear hinge block connecting rods 3113, away from the L-shaped side plates 3111, are fixedly connected to hinge blocks 3114. The outer sides of both front uprights 3110 are fixedly connected to vacuum adsorption control components 3115. The bottom left and right sides of the vacuum adsorption control components 3115... Both sides are fixedly connected to pipes 3116. A convex motor connecting plate 316 is fixedly connected to the bottom inner side of the two sets of rear uprights 3110. A motor 317 is fixedly connected to the top center of the convex motor connecting plate 316. A drive shaft 318 is fixedly connected to the output end of the motor 317. Tracks 319 are fitted on both the front and rear sides of the outer wall of the drive shaft 318. The fixing assembly 32 includes four sets of columnar rotating rod sleeves 321. The tops of the two sets of columnar rotating rod sleeves 321 on the left and the two sets of columnar rotating rod sleeves 321 on the right are fixedly connected to the front and rear sides of the bottom of two inverted concave connecting plates 311. The middle of the inner walls of the two sets of columnar rotating rod sleeves 321 on the left and the two sets of columnar rotating rod sleeves 321 on the right are rotatably connected to... The columnar rotating rods 322 have transmission rings 323 fixedly connected to the inner sides of the two columnar rotating rod sleeve plates 321 on the left and right sides of their outer walls. The outer walls of the two transmission rings 323 are fitted onto the inner walls of the two tracks 319 on the side away from the drive shaft 318. Turntables 324 are fixedly connected to the inner sides of the two columnar rotating rod sleeve plates 321 on the left and right sides of their outer walls. Rotating blocks 325 are fixedly connected to the bottom of opposite sides of the outer walls of the left and right sets of turntables 324. Bidirectional hinge rods 326 are rotatably connected to the sides of the left and right sets of rotating blocks 325 away from the turntables 324. The front and rear sides of the outer walls of the two columnar rotating rods 322 are rotatably connected to the inner walls of the two sets of columnar sleeve blocks 315.Rotating vertical plates 327 are rotatably connected to the left and right sides of the inner walls of the two sets of columnar rotating rod sleeves 321 on the left and right sides. The inner walls of the two sets of outer rotating vertical plates 327 are rotatably connected to the outer walls of the two sets of bidirectional hinged rods 326 on the side away from the rotating block 325. Rotating vertical plate connecting rods 328 are fixedly connected to the outer sides of the multiple sets of rotating vertical plates 327. Elliptical connecting blocks 329 are rotatably connected to the bottom of the two sets of left and right rotating vertical plates 327. U-shaped expansion plates 3210 are rotatably connected to the bottom of the outer walls of the multiple sets of elliptical connecting blocks 329. The inner sides of the two sets of left and right U-shaped expansion plates 3210 are rotatably connected to the bottom of the outer walls. Each set of U-shaped connecting rods 3212 is fixedly connected to an abutment plate. An abutment plate 3213 is fixedly connected to the outer side of each of the two abutment plates 3212. The outer side of each abutment plate 3213 has a slope that decreases in size from the inner side to the outer side. A vertical Z-shaped plate 3211 is fixedly connected to the bottom of each of the left and right sets of U-shaped expanding plates 3210. A vertical Z-shaped plate sliding rod 3214 is fixedly connected to the top of the outer side of each of the left and right sets of vertical Z-shaped plates 3211. The outer walls of the sliding rods 3214 are slidably connected to the inner walls of the L-shaped side plate guide grooves 3112 opened in the left and right sets of L-shaped side plates 3111. The front and rear sets of vertical Z-shaped plates 3211... The inner bottom of each of the two sets of push-pull rotating rods 3215 are rotatably connected. Push-pull rotating rod connecting plates 3216 are rotatably connected to the side of each push-pull rotating rod 3215 away from the vertical Z-shaped plate 3211. Clamping plates 3217 are fixedly connected to the inner sides of each of the two push-pull rotating rod connecting plates 3216. Clamping plate sliders 3218 are fixedly connected to the left and right sides of the top of each of the two clamping plates 3217. The outer walls of the two sets of clamping plate sliders 3218 are slidably connected to the inner walls of the two rectangular guide plate guide grooves 3118 opened at the bottom of the rectangular guide plate 3117. The left and right sides of the inner sides of the two clamping plates 3217 are fixedly connected to... The device includes a vacuum suction cup 3219, and two clamping plates 3217 whose outer sides are fixedly connected to the ends of two pipes 3116 away from the vacuum adsorption control component 3115. The bottom limiting assembly 4 includes two sets of V-shaped rotating rods 41. The outer walls of the left and right sets of V-shaped rotating rods 41 are rotatably connected to the inner walls of the left and right sets of hinge blocks 3114. Springs 42 are fixedly connected to the top of the inner sides of the left and right sets of V-shaped rotating rods 41. The inner sides of the left and right sets of V-shaped rotating rods 41 are in contact with the front and rear sides of the two abutment plates 3213 on one side of the bottom of the springs 42. Bottom support blocks 43 are fixedly connected to the bottom of the inner sides of the left and right sets of V-shaped rotating rods 41.
[0044] During airport construction, when the steel structure needs to be transferred, the hoist 1 must first be precisely moved to the designated construction position. Then, the operator starts the hoist 1 and gradually lowers the hoisting connector 2, hoisting platform 3, and bottom limit assembly 4, ensuring that the inner sides of the two clamping plates 3217 of the hoisting platform 3 precisely correspond to the two sides of the steel structure. Next, the motor 317 is started, which drives the drive shaft 318 to rotate. The drive shaft 318 efficiently transmits power to the two drive rings 323 via two tracks 319, thereby driving the two columnar rotating rods 322 to rotate. The rotation of the two columnar rotating rods 322 drives the two sets of turntables 324 to rotate synchronously. The rotating blocks 325 on the two sets of turntables 324 then perform circular motion, which is controlled by the pull of two sets of bidirectional hinged rods 326. The action involves multiple sets of rotating upright plates 327 starting to rotate. The rotation of the multiple sets of rotating upright plates 327 further drives the elliptical connecting block 329 to move, thereby causing the two sets of U-shaped expansion plates 3210 to retract inward. When the two sets of U-shaped expansion plates 3210 retract inward, the abutment plate 3213 also moves inward, pushing the V-shaped rotating rod 41 to rotate around the hinge block 3114, causing the bottom support block 43 to rise and be clamped at the bottom of the steel structure. At the same time, during the inward movement of the two sets of U-shaped expansion plates 3210, the two sets of push-pull rotating rods 3215 will also rotate, thereby pushing the two clamping plates 3217 to move inward. During the inward movement of the two clamping plates 3217, the clamping plate slider 3218 slides stably in the guide groove 3118 of the rectangular guide plate, ensuring the accuracy and stability of the clamping action.
[0045] As the clamping plate 3217 continues to move inward, the vacuum suction cup 3219 on its inner side gradually approaches the surface of the steel structure. At this time, the vacuum adsorption control component 3115 is activated, and a negative pressure environment is formed inside the vacuum suction cup 3219 through the pipe 3116, thereby firmly adsorbing it onto both sides of the steel structure. This dual fixing method, which combines mechanical clamping and vacuum adsorption, not only significantly improves the overall stability during the hoisting process, but also effectively avoids deformation or damage to the steel structure due to excessive local stress by dispersing the force. When the hoisting machine 1 lifts the steel structure smoothly, the V-shaped rotating rod 41 always maintains a close fit with the abutment plate 3213, thereby ensuring reliable support of the bottom support block 43 for the bottom of the steel structure. The entire hoisting system, through the combination of precise mechanical linkage design and intelligent control technology, realizes the safe and efficient transfer of the steel structure from the ground to the air, providing a strong guarantee for the smooth progress of the airport construction project.
[0046] In addition, the present invention also relates to a method of using a steel structure transfer safety protection hoisting equipment based on airport construction, comprising the following steps:
[0047] Step 1: First, conduct a comprehensive survey of the hoisting site to determine the specific location, size, weight of the steel structure, and surrounding environment. Based on the survey results, formulate a detailed hoisting plan, specifying the parking location of hoisting machine 1, the hoisting route, and safety protection measures.
[0048] Step 2: Transport the hoist 1 to the hoisting site and park it precisely in the appropriate position according to the established plan. Conduct a comprehensive inspection of the hoist 1 to ensure that all its components are firmly connected and in good working order. At the same time, carefully adjust the hoisting connector 2, hoisting platform 3 and bottom limit assembly 4 to ensure smooth operation.
[0049] Step 3: The operator starts the hoist 1 through professional control equipment, slowly lowers the hoisting connector 2, and then drives the hoisting platform 3 and the bottom limit component 4 to gradually descend. The inner sides of the two clamping plates 3217 can accurately correspond to the two sides of the steel structure.
[0050] Step 4: When the hoisting platform 3 reaches the appropriate height, start the motor 317. The motor 317 drives the transmission shaft 318 to rotate. The transmission shaft 318 transmits power to the two transmission rings 323 through the two tracks 319, driving the two columnar rotating rods 322 to rotate. The two columnar rotating rods 322 drive the two sets of turntables 324 to rotate synchronously. The rotating blocks 325 on the turntables 324 perform circular motion, which pulls the multiple sets of rotating vertical plates 327 to rotate through the two sets of bidirectional hinge rods 326. The multiple sets of rotating vertical plates 327 drive the elliptical connecting blocks 329 to move, causing the two sets of U-shaped expansion and contraction plates 3210 to retract inward.
[0051] Step 5: As the two sets of U-shaped expansion plates 3210 retract inward, the abutment plate 3213 moves inward, pushing the V-shaped rotating rod 41 to rotate around the hinge block 3114, causing the bottom support block 43 to rise and be locked at the bottom of the steel structure. At the same time, the two sets of U-shaped expansion plates 3210 drive the two sets of push-pull rotating rods 3215 to rotate, pushing the two clamping plates 3217 to move inward. The clamping plate slider 3218 slides in the guide groove 3118 of the rectangular guide plate to ensure accurate and stable clamping action.
[0052] Step 6: The clamping plate 3217 continues to move inward, and the vacuum suction cup 3219 on its inner side gradually approaches the surface of the steel structure. The vacuum adsorption control component 3115 is activated, and a negative pressure environment is formed inside the vacuum suction cup 3219 through the pipe 3116, so that it is firmly adsorbed on both sides of the steel structure.
[0053] Step 7: Conduct a comprehensive inspection of the hoisting equipment's fixation again. After confirming that the steel structure has been firmly fixed by both mechanical clamping and vacuum adsorption, and that the bottom support block 43 reliably supports the bottom of the steel structure, the operator slowly lifts the hoisting machine 1 through the control equipment to lift the steel structure smoothly.
[0054] Step 8: After reaching the designated position, slowly lower the steel structure. When the steel structure is close to the ground, pause the descent, release the negative pressure environment of the vacuum suction cup 3219, and separate the vacuum suction cup 3219 from the steel structure. Then, reverse the operation of the motor 317 to restore each component to its initial state and place the steel structure stably on the designated position on the ground, completing one steel structure transfer and hoisting operation.
[0055] Working principle of this invention: During airport construction, when the steel structure needs to be transferred, the hoist 1 must first be precisely moved to the predetermined construction position. Then, the operator controls the hoist 1 to start, gradually lowering the hoisting connector 2, hoisting platform 3, and bottom limit assembly 4, ensuring that the inner sides of the two clamping plates 3217 of the hoisting platform 3 precisely correspond to the two sides of the steel structure. Next, the motor 317 is started, driving the transmission shaft 318 to rotate. The transmission shaft 318 efficiently transmits power to the two transmission rings 323 via two tracks 319, thereby driving the two columnar rotating rods 322 to rotate. The rotation of the two columnar rotating rods 322 drives the two sets of turntables 324 to rotate synchronously. The rotating blocks 325 on the two sets of turntables 324 then perform circular motion. Through the pulling action of the two sets of bidirectional hinged rods 326, multiple rotating upright plates 327 begin to rotate. The rotation of the multiple rotating upright plates 327 further drives... The elliptical connecting block 329 moves, causing the two sets of U-shaped expansion plates 3210 to retract inward. As the two sets of U-shaped expansion plates 3210 retract inward, the abutment plate 3213 also moves inward, pushing the V-shaped rotating rod 41 to rotate around the hinge block 3114, causing the bottom support block 43 to rise and lock into place at the bottom of the steel structure. Simultaneously, as the two sets of U-shaped expansion plates 3210 move inward, they also drive the two sets of push-pull rotating rods 3215 to rotate, further... As the two clamping plates 3217 are pushed inward, the clamping plate sliders 3218 slide stably within the guide grooves 3118 of the rectangular guide plate during the inward movement. As the clamping plates 3217 continue to move inward, the vacuum suction cups 3219 on their inner sides gradually approach the surface of the steel structure. At this time, the vacuum adsorption control component 3115 is activated, and a negative pressure environment is formed inside the vacuum suction cups 3219 through the pipes 3116, thereby firmly adsorbing them onto both sides of the steel structure.
[0056] The foregoing has shown and described the basic principles, main features, and advantages of the present invention. Those skilled in the art should understand that the present invention is not limited to the above embodiments. The embodiments and descriptions in the specification are merely illustrative of the principles of the invention. Various changes and modifications can be made to the invention without departing from its spirit and scope, and all such changes and modifications fall within the scope of the present invention as claimed. The scope of protection of this invention is defined by the appended claims and their equivalents.
Claims
1. A steel structure transfer safety protection hoisting equipment based on airport construction, including a hoisting machine (1), characterized in that: The hoisting machine (1) is fixedly connected to the top front side with a hoisting connector (2), and the bottom of the hoisting connector (2) is fixedly connected to a hoisting platform (3). The hoisting platform (3) is provided with bottom limit components (4) on both the left and right sides. The hoisting platform (3) includes a control component (31), and a fixing component (32) is provided on the bottom inner side of the control component (31); The control component (31) includes two concave connecting plates (311), and a top connecting block (312) is fixedly connected to the top of each of the two concave connecting plates (311). The tops of the two top connecting blocks (312) are fixedly connected to the left and right sides of the bottom of the hoisting connector (2). A rectangular connecting crossbar (314) is fixedly connected to the inner wall of the middle part of the bottom of the two concave connecting plates (311). The fixing component (32) includes four sets of columnar rotating rod sleeves (321). The tops of the two sets of columnar rotating rod sleeves (321) on the left and the two sets of columnar rotating rod sleeves (321) on the right are fixedly connected to the front and rear sides of the bottom of the two inverted concave connecting plates (311).
2. The steel structure transfer safety protection hoisting equipment based on airport construction as described in claim 1, characterized in that: Connecting plates (313) are fixedly connected to the front and rear sides of the two concave connecting plates (311). Columnar sleeves (315) are fixedly connected to the front and rear sides of the bottom of the two concave connecting plates (311). Uprights (3110) are fixedly connected to the left and right sides of the bottom of the two sets of connecting plates (313). L-shaped side plates (3111) are fixedly connected to the bottom of the multiple sets of uprights (3110). L-shaped side plate guide grooves (3112) are opened on the inner sides of the two sets of L-shaped side plates (3111). Rectangular guide plates (3117) are fixedly connected to the top of the inner sides of the two sets of L-shaped side plates (3111). Rectangular guide plate guide grooves (3118) are opened on the left and right sides of the bottom of the rectangular guide plates (3117).
3. The steel structure transfer safety protection hoisting equipment based on airport construction as described in claim 2, characterized in that: The outer sides of the left and right L-shaped side plates (3111) are fixedly connected with hinge block connecting rods (3113), and the inner sides of the front and rear hinge block connecting rods (3113) away from the L-shaped side plates (3111) are fixedly connected with hinge blocks (3114). The outer sides of the front two sets of uprights (3110) are fixedly connected with vacuum adsorption control components (3115), and the bottom left and right sides of the vacuum adsorption control components (3115) are fixedly connected with pipes (3116).
4. The steel structure transfer safety protection hoisting equipment based on airport construction as described in claim 3, characterized in that: A convex motor connecting plate (316) is fixedly connected to the bottom of the inner side of the two inner uprights (3110) of the two rear sets of uprights (3110). A motor (317) is fixedly connected to the top center of the convex motor connecting plate (316). A drive shaft (318) is fixedly connected to the output end of the motor (317). Tracks (319) are fitted on both the front and rear sides of the outer wall of the drive shaft (318).
5. The steel structure transfer safety protection hoisting equipment based on airport construction as described in claim 4, characterized in that: The inner walls of the two sets of columnar rotating rod sleeves (321) on the left and the two sets of columnar rotating rod sleeves (321) on the right are rotatably connected to columnar rotating rods (322). The outer walls of the two columnar rotating rods (322) are fixedly connected to transmission rings (323) on the inner sides of the two sets of columnar rotating rod sleeves (321) on the left and right sides respectively. The outer walls of the two transmission rings (323) are fitted onto the inner walls of the two tracks (319) on the side away from the transmission shaft (318). The two columnar rotating rods... (322) A turntable (324) is fixedly connected to one side of the inner side of the two sets of columnar rotating rod sleeves (321) on the left and right sides of the outer wall. A rotating block (325) is fixedly connected to the bottom of the opposite side of the outer wall of the two sets of turntables (324). A two-way hinge rod (326) is rotatably connected to the side of the rotating block (325) away from the turntable (324). The front and rear sides of the outer walls of the two columnar rotating rods (322) are rotatably connected to the inner walls of the two sets of columnar sleeves (315).
6. The steel structure transfer safety protection hoisting equipment based on airport construction as described in claim 5, characterized in that: Rotating vertical plates (327) are rotatably connected to the left and right sides of the inner walls of the two sets of columnar rotating rod sleeves (321) on the left and right sides. The inner walls of the two sets of rotating vertical plates (327) on the outer sides are rotatably connected to the outer walls of the two sets of bidirectional hinged rods (326) on the side away from the rotating block (325). Rotating vertical plate connecting rods (328) are fixedly connected to the outer sides of the multiple sets of rotating vertical plates (327).
7. The steel structure transfer safety protection hoisting equipment based on airport construction as described in claim 6, characterized in that: The bottom of the two sets of rotating upright plates (327) on the left and the two sets of rotating upright plates (327) on the right are rotatably connected to elliptical connecting blocks (329). The bottom of the outer wall of the multiple sets of elliptical connecting blocks (329) is rotatably connected to U-shaped expansion plates (3210). The inner side of the two sets of U-shaped expansion plates (3210) on the left and right is fixedly connected to abutting plate U-shaped connecting rods (3212). The outer side of the two abutting plate U-shaped connecting rods (3212) is fixedly connected to abutting plates (3213). The outer side of the two abutting plates (3213) is a slope that decreases in size from the inner side to the outer side.
8. The steel structure transfer safety protection hoisting equipment based on airport construction as described in claim 7, characterized in that: The bottom of both sets of U-shaped expansion plates (3210) is fixedly connected to a vertical Z-shaped plate (3211). The top outer side of both sets of vertical Z-shaped plates (3211) is fixedly connected to a vertical Z-shaped plate slide rod (3214). The outer walls of both sets of vertical Z-shaped plate slide rods (3214) are slidably connected to the inner walls of the L-shaped side plate guide grooves (3112) opened in the left and right sets of L-shaped side plates (3111). The bottom inner side of both sets of vertical Z-shaped plates (3211) is rotatably connected to a push-pull rotating rod (3215). The side of both sets of push-pull rotating rods (3215) away from the vertical Z-shaped plates (3211) is rotatably connected to a push-pull rotating rod connecting plate (321). 6) Clamping plates (3217) are fixedly connected to the inner sides of the two push-pull rotating rod connecting plates (3216). Clamping plate sliders (3218) are fixedly connected to the left and right sides of the top of the two clamping plates (3217). The outer walls of the front and rear sets of clamping plate sliders (3218) are slidably connected to the inner walls of the two rectangular guide plate guide grooves (3118) opened at the bottom of the rectangular guide plate (3117). Vacuum suction cups (3219) are fixedly connected to the left and right sides of the inner sides of the two clamping plates (3217). The outer sides of the two clamping plates (3217) are fixedly connected to the end of the two pipes (3116) away from the vacuum adsorption control component (3115).
9. The steel structure transfer safety protection hoisting equipment based on airport construction as described in claim 8, characterized in that: The bottom limiting assembly (4) includes two sets of V-shaped rotating rods (41). The outer walls of the two sets of V-shaped rotating rods (41) are rotatably connected to the inner walls of the two sets of hinge blocks (3114). The top of the inner side of the two sets of V-shaped rotating rods (41) is fixedly connected to a spring (42). The inner side of the two sets of V-shaped rotating rods (41) is in contact with the front and rear sides of the two abutment plates (3213) on one side of the bottom of the spring (42). The bottom of the inner side of the two sets of V-shaped rotating rods (41) is fixedly connected to a bottom support block (43).
10. The method of using the steel structure transfer safety protection hoisting equipment based on airport construction as described in claim 9, characterized in that: Includes the following steps: Step 1: First, conduct a comprehensive survey of the hoisting site to determine the specific location, size, weight of the steel structure and the surrounding environment. Based on the survey results, formulate a detailed hoisting plan and clarify the parking location of the hoisting machine (1), the hoisting route and safety protection measures. Step 2: Transport the hoist (1) to the hoisting site and park it precisely in the appropriate position according to the established plan. Conduct a comprehensive inspection of the hoist (1) to ensure that all its components are firmly connected and perform well. At the same time, carefully adjust the hoisting connector (2), hoisting platform (3) and bottom limit component (4) to ensure smooth operation. Step 3: The operator starts the hoist (1) through professional control equipment, slowly lowers the hoisting connector (2), and then drives the hoisting platform (3) and the bottom limit component (4) to gradually descend. The inner sides of the two clamping plates (3217) can accurately correspond to the two sides of the steel structure. Step 4: When the hoisting platform (3) reaches the appropriate height, start the motor (317). The motor (317) drives the transmission shaft (318) to rotate. The transmission shaft (318) transmits power to the two transmission rings (323) through the two tracks (319), driving the two columnar rotating rods (322) to rotate. The two columnar rotating rods (322) drive the two sets of turntables (324) to rotate synchronously. The rotating blocks (325) on the turntables (324) perform circular motion. Through the two sets of bidirectional hinge rods (326), they pull the multiple sets of rotating vertical plates (327) to rotate. The multiple sets of rotating vertical plates (327) drive the elliptical connecting blocks (329) to move, causing the two sets of U-shaped expansion plates (3210) to retract inward. Step 5: As the two sets of U-shaped expansion plates (3210) retract inward, the abutment plate (3213) moves inward, pushing the V-shaped rotating rod (41) to rotate around the hinge block (3114), causing the bottom support block (43) to rise and be clamped at the bottom of the steel structure. At the same time, the two sets of U-shaped expansion plates (3210) drive the two sets of push-pull rotating rods (3215) to rotate, pushing the two clamping plates (3217) to move inward. The clamping plate slider (3218) slides in the guide groove (3118) of the rectangular guide plate to ensure accurate and stable clamping action. Step 6: The clamping plate (3217) continues to move inward, and the vacuum suction cup (3219) on its inner side gradually approaches the surface of the steel structure. The vacuum adsorption control component (3115) is activated, and a negative pressure environment is formed inside the vacuum suction cup (3219) through the pipe (3116), which firmly adsorbs on both sides of the steel structure. Step 7: Conduct a comprehensive inspection of the hoisting equipment again to confirm that the steel structure has been firmly fixed by both mechanical clamping and vacuum adsorption, and that the bottom support block (43) reliably supports the bottom of the steel structure. Then, the operator slowly lifts the hoisting machine (1) by controlling the equipment to lift the steel structure smoothly. Step 8: After reaching the designated position, slowly lower the steel structure. When the steel structure is close to the ground, pause the descent, release the negative pressure environment of the vacuum suction cup (3219), and separate the vacuum suction cup (3219) from the steel structure. Then, reverse the operation of the motor (317) to restore each component to its initial state and place the steel structure stably on the designated position on the ground to complete one steel structure transfer and hoisting operation.
Citation Information
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