Integral cast-in-place tool hoisting equipment and method

By combining the lifting basket and the integrated cast-in-place tool lifting and hoisting equipment that can be fine-adjustable lifting brackets, the problems of lifting unstable and external operations of construction personnel are solved, and efficient and stable adjustment and splicing of casting tooling positions are achieved.

CN120348850AActive Publication Date: 2025-07-22SHANGHAI CIVIL ENG GRP SIXTH CO LTD +1
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Patent Information

Application Number
CN202510851695.2
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-06-24
Publication Date
2025-07-22
Estimated Expiration
2045-06-24

AI Technical Summary

Technical Problem

The lack of equipment for lifting integral molds in the prior art leads to unstable lifting and it is difficult to accurately place the casting tooling in place. Construction personnel need to move to the outside of the bridge for fixing, which affects construction efficiency and safety.

Method used

An integral cast-in-place work lifting and hoisting equipment is designed, combining a lifting basket and a fine-adjustable hoisting bracket to ensure lifting stability through linkage components and counterweight components, and precise position adjustment is achieved with the clamping components and positioning components.

Benefits of technology

The splicing efficiency of multi-stage integrated casting tooling has been improved, the stability of lifting is ensured, the demand for construction personnel to operate outside the bridge is reduced, and the construction safety and efficiency are improved.

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Abstract

The invention relates to the technical field of hoisting, and provides integral cast-in-place tool hoisting equipment and method.The integral cast-in-place tool hoisting equipment comprises an electric trolley, a high-strength support is fixed to the top of the electric trolley, a transverse frame is arranged at the top of the high-strength support, and a height-adjustable lifting hanging basket is arranged at one end of the transverse frame; and an electric moving table is arranged at the top of the transverse frame. Hoisting of the pouring tool and lifting of the hanging basket are combined, the pouring tool can be hoisted, constructors can be conveniently hoisted to the exterior of a bridge for connection operation, meanwhile, through arrangement of the linkage assembly and the counterweight assembly, when the pouring tool moves, the counterweight assembly can be driven to move to the opposite end of the linkage assembly in a linkage mode, and the construction efficiency is improved. According to the multi-section integral pouring tool, the stability during equipment hoisting is guaranteed, the arrangement of the fine-adjustable hoisting support, the clamping assembly and the positioning assembly is matched, the integral pouring tool can be accurately adjusted and placed at the needed position, and the splicing efficiency of the multi-section integral pouring tool is greatly improved.
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Description

Technical Field

[0001] The invention relates to the technical field of hoisting, and in particular to an integral cast-in-place tool lifting and hoisting device and method. Background Art

[0002] At present, the deck protection walls and vertical walls of my country's high-speed railway bridges are cast-in-place reinforced concrete structures; the shield is a prefabricated reinforced concrete structure, which is connected to the beam body with cast-in-place concrete to form a whole. According to the survey results of the construction and operation status of high-speed railway bridges, the shield of the traditional bridge deck is prefabricated and installed, and the three walls are constructed separately. The vertical walls and protective walls are pre-embedded with a lot of steel bars on the flange plate in advance, which conflicts with the longitudinal and transverse steel bars of the flange plate of the beam body. In addition, the reserved exposed parts are exposed to the natural environment for a long time, which is easy to be collided and rusted by mechanical equipment. There are problems such as complicated processes, tight construction period, difficulty in concrete transportation, difficult construction quality control, and high construction safety risks.

[0003] If the bridge shield, cable trough vertical wall and crash barrier are constructed as a single process, the integral molds of the shield, cable trough vertical wall and crash barrier are prefabricated in sections in advance, and then the multiple sections are connected to the bridge and cast after being relatively spliced. This can simplify the process and improve construction efficiency. However, since there was no such integral casting mold before, there is no equipment for hoisting the integral mold. The overall volume of the integral mold is relatively large. The traditional hoisting method is prone to shaking when placing the hoisted casting tooling, and it is not convenient to place it in the correct position for splicing. During splicing, since a part of the casting tooling is located outside the beam body, it is currently necessary to use a construction trolley to move the construction personnel to the outside of the bridge to fix the casting tooling and the bridge, which is not convenient to use. Therefore, an integral cast-in-place tooling lifting and hoisting equipment and method are proposed to solve the above problems. Summary of the invention

[0004] To achieve the above objectives, the present invention is implemented through the following technical solutions: an integral cast-in-place tool lifting and hoisting device, comprising an electric trolley, a high-strength bracket is fixed on the top of the electric trolley, a cross frame is arranged on the top of the high-strength bracket, a height-adjustable lifting basket is arranged at one end of the cross frame, an electric moving platform is arranged on the top of the cross frame, a hoisting and winding mechanism is installed on the upper surface of the electric moving platform, a fine-adjustable hoisting bracket is connected to the bottom end of the steel wire rope on the surface of the hoisting and winding mechanism, and the fine-adjustable hoisting bracket is used to achieve fine adjustment of the position of the integral cast-in-place tool; A positioning assembly is installed on the surface of the lifting basket, and a clamping assembly matching the positioning assembly is provided on the surface of the fine-adjustable lifting bracket. When the fine-adjustable lifting bracket moves to a side close to the lifting basket, the clamping assembly is connected to the positioning assembly to ensure the stability of the lifting and lowering; Linkage components are respectively arranged on both sides of the cross frame, and a counterweight component is installed at the bottom of the linkage component. When the electric mobile platform hoists the integral in-situ construction tooling and moves it to one side close to the lifting hanging basket, the linkage component drives the counterweight component to move to one end away from the integral in-situ construction tooling.

[0005] Preferably, a rack bar is fixed at the middle position of the cross frame, a chute is formed on the surface of the cross frame, the electric mobile platform includes a table surface arranged on the surface of the cross frame, a pulley extending into the chute is arranged at the bottom of the table surface, a driving motor is fixed on the top of the table surface, and a driving gear is fixed at the driving end of the driving motor. The driving gear meshes with the rack bar.

[0006] Preferably, the hoisting and winding mechanism includes a winding motor, the driving end of the winding motor is connected with a winding roller, two winding discs are connected to the outer surface of the winding roller, steel wires are wound around the surfaces of the two winding discs respectively, and the bottoms of the two steel wires are respectively connected to both ends of the fine-tuning hoisting bracket.

[0007] Preferably, the linkage component includes a bracket fixed on the outer side wall of the cross frame, a sliding rod is installed on the inner wall of the bracket, a sliding plate is slidably connected to the outer surface of the sliding rod, a first strip tooth is arranged on the top of the sliding plate, a linkage gear is installed on the side wall of the cross frame, and second strip teeth are arranged on the lower surfaces of both ends of the table surface. The linkage gear, the first strip tooth and the second strip tooth are meshed with each other.

[0008] Preferably, the fine-tuning hoisting bracket includes a top frame, a transverse moving plate is slidably connected inside the top frame, a transverse moving cylinder is connected between the top frame and the transverse moving plate, a longitudinal moving plate is slidably connected below the transverse moving plate, a longitudinal moving cylinder is installed on the lower surface of the transverse moving plate, the telescopic end of the longitudinal moving cylinder is connected with the longitudinal moving plate, a group of hooks are respectively arranged at both ends of the longitudinal moving plate, each group of hooks has two, and the hooks are arranged in an L shape.

[0009] Preferably, the positioning component is a vertical rod fixed on the outer wall of the lifting hanging basket, and positioning chutes are formed on both symmetric side walls of the vertical rod.

[0010] Preferably, the clamping component includes a clamping plate fixed on the side of the fine-tuning hoisting bracket close to the lifting hanging basket, a positioning opening is formed on the surface of the clamping plate, an arc-shaped edge is arranged at the opening of the positioning opening, telescopic clamping blocks are arranged on both symmetric side walls of the positioning opening, and the telescopic clamping blocks are matched with the positioning chutes of the positioning component.

[0011] The present invention provides an integral in-situ construction tooling hoisting device and method. It has the following beneficial effects: The present invention combines the hoisting of the pouring tooling with the lifting basket, which can not only hoist the pouring tooling, but also conveniently lift the construction workers to the outside of the bridge for connection operations. At the same time, through the setting of the linkage component and the counterweight component, when the pouring tooling moves, it will drive the counterweight component to move to the opposite end in a linkage manner, ensuring the stability of the equipment during hoisting. And with the setting of the fine-tuning hoisting bracket, the clamping component and the positioning component, the integral pouring tooling can be accurately adjusted and placed at the required position, greatly improving the splicing efficiency of the multi-section integral pouring tooling. Description of the Drawings

[0012] Figure 1 The first perspective three-dimensional view of a hoisting device for an integral cast-in-place tooling of the present invention; Figure 2 The second perspective three-dimensional view of a hoisting device for an integral cast-in-place tooling of the present invention; Figure 3 The overall structure diagram of the electric mobile platform and the linkage component in a hoisting device for an integral cast-in-place tooling of the present invention; Figure 4 The overall structure diagram of the lifting basket in a hoisting device for an integral cast-in-place tooling of the present invention; Figure 5 The first perspective three-dimensional view of the fine-tuning hoisting bracket in a hoisting device for an integral cast-in-place tooling of the present invention; Figure 6 The second perspective three-dimensional view of the fine-tuning hoisting bracket in a hoisting device for an integral cast-in-place tooling of the present invention; Figure 7 The connection state diagram of the positioning component and the clamping component in a hoisting device for an integral cast-in-place tooling of the present invention; Figure 8 The state diagram of a hoisting device for an integral cast-in-place tooling of the present invention during hoisting; Figure 9 The structure diagram of the integral cast-in-place tooling.

[0013] Among them, 1. Electric trolley; 2. High-strength bracket; 3. Horizontal frame; 301. Rack rod; 302. Slide; 4. Electric mobile platform; 401. Table; 402. Drive motor; 403. Drive gear; 5. Hoisting and winding mechanism; 501. Winding motor; 502. Winding roller; 503. Winding disk; 6. Wire rope; 7. Fine-adjustable hoisting bracket; 701. Top frame; 702. Transverse plate; 703. Transverse cylinder; 704. Longitudinal plate; 705. Longitudinal cylinder; 706. Hook; 8. Positioning assembly; 9. Clamping assembly; 901. Clamping plate; 902. Positioning port; 903. Telescopic clamping block; 10. Linkage assembly; 10 01. Bracket; 1002. Slide bar; 1003. Slide plate; 1004. First strip tooth; 1005. Linking gear; 1006. Second strip tooth; 11. Counterweight assembly; 12. Lifting basket; 1201. Basket body; 1202. Ladder; 1203. Guide chute; 1204. Hoist; 1205. Connecting plate; 13. Integral cast-in-place tooling; 1301. Side wall curved panel; 1302. Side wall side panel; 1303. Vertical wall side panel; 1304. Guard wall inclined panel; 1305. Guard wall vertical panel; 1306. Turnbuckle screw; 1307. High-precision rolled threaded steel; 1308. Square tube; 1309. Door frame. DETAILED DESCRIPTION

[0014] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the present invention.

[0015] Example 1

[0016] like Figure 1 - Figure 2 and Figure 4As shown in the figure, an integral cast-in-place tooling hoisting and lifting device is provided in an embodiment of the present invention, including an electric trolley 1. One end of the electric trolley 1 is connected to a vehicle head (not shown in the figure) and can be manually driven. A high-strength bracket 2 is fixed on the top of the electric trolley 1. A cross frame 3 is arranged on the top of the high-strength bracket 2. One end of the cross frame 3 is provided with a height-adjustable lifting hanging basket 12. The lifting hanging basket 12 specifically includes a hanging basket main body 1201. Climbing ladders 1202 are respectively arranged on both sides of the hanging basket main body 1201. A guiding sliding groove 1203 is connected to one end of the cross frame 3. The climbing ladders 1202 slide inside the guiding sliding groove 1203. A hoist 1204 is also arranged on the surface of one end of the cross frame 3. The hoisting chain of the hoist 1204 is connected to a connecting plate 1205 fixed on the surface of the climbing ladder 1202. When the hoist 1204 winds and unwinds, it can drive the entire hanging basket main body 1201 to rise or fall. An operator can enter the inside of the hanging basket main body 1201. The whole of the lifting hanging basket 12 moves to the outside of the bridge and is suspended in the air, which is convenient for fastening between the outside of the integral cast-in-place tooling 13 and the bridge after hoisting the integral cast-in-place tooling 13, so as to facilitate subsequent integral pouring.

[0017] An electric moving platform 4 is arranged on the top of the cross frame 3. A hoisting winding mechanism 5 is installed on the upper surface of the electric moving platform 4. A steel wire rope 6 is arranged on the surface of the hoisting winding mechanism 5, which can hoist the integral cast-in-place tooling 13 and cooperate with the lifting hanging basket 12 to directly fasten the tooling to the bridge after hoisting, without the need to use an additional construction trolley.

[0018] Specifically, a rack bar 301 is fixed at the middle position of the cross frame 3. A sliding groove 302 is formed on the surface of the cross frame 3. The electric moving platform 4 includes a platform surface 401 arranged on the surface of the cross frame 3. A pulley extending into the sliding groove 302 is arranged at the bottom of the platform surface 401. A driving motor 402 is fixed on the top of the platform surface 401. A driving gear 403 is fixed at the driving end of the driving motor 402. The driving gear 403 meshes with the rack bar 301. When in specific use, the driving motor 402 is started, and the driving motor 402 can drive the driving gear 403 to rotate. The driving gear 403 moves on the surface of the rack bar 301, so as to realize the overall movement of the electric moving platform 4, so as to hoist the integral cast-in-place tooling 13 to the edge of the bridge.

[0019] Specifically, the hoisting winding mechanism 5 includes a winding motor 501. A winding roller 502 is connected to the driving end of the winding motor 501. Two winding discs 503 are connected to the outer surface of the winding roller 502. The steel wire rope 6 is wound around the surfaces of both winding discs 503, so as to realize the winding and unwinding hoisting of the steel wire rope 6.

[0020] Embodiment 2

[0021] As Figure 1 - Figure 7As shown in the figure, since the integral cast-in-place tooling 13 is relatively large in volume, it needs to be integrally spliced together after each section is hoisted. When hoisting and docking, the ropes shake, making it difficult to accurately dock the hoisted integral cast-in-place tooling 13 with other integral cast-in-place tooling 13. Therefore, further design is carried out.

[0022] At the bottom end of the steel wire rope 6 on the surface of the hoisting winding mechanism 5, a fine-tuning hoisting bracket 7 is connected. The fine-tuning hoisting bracket 7 is used to realize the fine-tuning of the position of the integral cast-in-place tooling 13. A positioning component 8 is installed on the surface of the lifting hanging basket 12. A clamping component 9 matching the positioning component 8 is arranged on the surface of the fine-tuning hoisting bracket 7. When the fine-tuning hoisting bracket 7 moves to one side close to the lifting hanging basket 12, the clamping component 9 is connected to the positioning component 8 to ensure the stability of hoisting and lifting. With the cooperation of the provided fine-tuning hoisting bracket 7, the integral cast-in-place tooling 13 can be finely adjusted under the stable state of the steel wire rope 6, so that the integral cast-in-place tooling 13 can be accurately docked with each other to complete the rapid splicing operation.

[0023] Specifically, the fine-tuning hoisting bracket 7 includes a top frame 701. A transverse moving plate 702 is slidably connected inside the top frame 701. A transverse moving cylinder 703 is connected between the top frame 701 and the transverse moving plate 702. A longitudinal moving plate 704 is slidably connected below the transverse moving plate 702. A longitudinal moving cylinder 705 is installed on the lower surface of the transverse moving plate 702. The telescopic end of the longitudinal moving cylinder 705 is connected to the longitudinal moving plate 704. A set of hooks 706 are respectively arranged at both ends of the longitudinal moving plate 704. Each set of hooks 706 has two hooks. The hooks 706 are arranged in an L shape and can evenly bear the force to hook the integral cast-in-place tooling 13, so as to carry out hoisting.

[0024] Specifically, the positioning component 8 is a vertical rod fixed on the outer wall of the lifting hanging basket 12. Positioning chutes are opened on both symmetric side walls of the vertical rod. The clamping component 9 includes a clamping plate 901 fixed on the side of the fine-tuning hoisting bracket 7 close to the lifting hanging basket 12. A positioning opening 902 is opened on the surface of the clamping plate 901. An arc-shaped edge is arranged at the opening of the positioning opening 902. Telescopic clamping blocks 903 are arranged on both symmetric side walls of the positioning opening 902. The telescopic clamping blocks 903 are matched with the positioning chutes of the positioning component 8. The telescopic clamping blocks 903 include springs and clamping blocks. The end of the clamping block close to the vertical rod is arranged in an arc shape. When in use, first, the fine-tuning hoisting bracket 7 drives the clamping component 9 to move to the edge of the bridge. At this time, since the hoisting height is relatively high and the steel wire rope 6 is relatively short, the movement is relatively stable. Also, due to the arrangement of the arc-shaped edge at the positioning opening 902 of the clamping plate 901, the clamping plate 901 can be clamped on the surface of the vertical rod of the positioning component 8 during the movement process, that is, as Figure 7As shown, since the weight of the integral cast-in-place tooling 13 is sufficient, when the vertical rod is inserted into the inside of the positioning opening 902, under the action of pressure, the telescopic clamping block 903 can be directly clamped into the inside of the positioning chute, thus realizing positioning, enabling the integral cast-in-place tooling 13 being hoisted to descend stably with the vertical rod, and at the same time facilitating the fine adjustment of the position of the integral cast-in-place tooling 13. The whole device is made of high-strength steel material, which can prevent deformation with the integral cast-in-place tooling 13.

[0025] Embodiment 3

[0026] As Figure 1 - Figure 9 shown, in order to facilitate the operator to perform fastening operations on the integral cast-in-place tooling 13 outside the bridge, the device itself is provided with a lifting basket 12 with a certain weight. When the integral cast-in-place tooling 13 is hoisted to the edge of the bridge and close to one side of the lifting basket 12, the weight of this end is further increased. In order to ensure the stability during hoisting, the device is further designed.

[0027] Linkage components 10 are respectively arranged on both sides of the cross frame 3, and a counterweight component 11 is installed at the bottom of the linkage component 10. When the electric mobile platform 4 hoists the integral cast-in-place tooling 13 and moves it to the side close to the lifting basket 12, the linkage component 10 drives the counterweight component 11 to move to the end far from the integral cast-in-place tooling 13. The linkage component 10 includes a bracket 1001 fixed on the outer side wall of the cross frame 3. A sliding rod 1002 is installed on the inner wall of the bracket 1001. A sliding plate 1003 is slidably connected to the outer surface of the sliding rod 1002. A first strip tooth 1004 is arranged on the top of the sliding plate 1003. A linkage gear 1005 is installed on the side wall of the cross frame 3. Second strip teeth 1006 are arranged on the lower surfaces of both ends of the table top 401. The linkage gear 1005, the first strip tooth 1004 and the second strip tooth 1006 are meshed with each other. Therefore, when the table top 401 moves, it will drive the first strip tooth 1004 to move, thereby driving the counterweight component 11 to move. When the counterweight component 11 moves to a section of the cross frame 3 far from the lifting basket 12, the second strip tooth 1006 disengages from the linkage gear 1005, and the table top 401 will continue to move until the edge of the bridge. This is because the counterweight component 11 moves to the other end, so it will produce a corresponding balance with the integral cast-in-place tooling 13 being hoisted, ensuring the overall stability of the device. When the electric mobile platform 4 resets as a whole, it will drive the counterweight component 11 back to the position in the middle of the high-strength bracket 2 again. Since the electric trolley 1 as a whole is increased with the counterweight component 11, when not hoisting, the weight of its lifting basket 12 will not cause the overall overturning of the device. And according to the weight of the object being lifted × the distance from the object being lifted to the fulcrum + the moment of other loads = the counterweight × the distance from the counterweight to the fulcrum, the weight of the required counterweight is calculated, so that it is not necessary to add too heavy a counterweight on the top of the electric trolley to meet the stability during hoisting.

[0028] Embodiment 4

[0029] As Figure 1 - Figure 9 shown, the currently designed integral cast-in-place tooling 13 includes the following specific structures: It includes a combined steel formwork and a portal frame 1309. The combined steel formwork includes a side wall curved panel 1301, a side wall side panel 1302, two vertical wall side panels 1303, a protective wall inclined panel 1304, and a protective wall vertical panel 1305. The combined steel formwork is connected to the portal frame 1309 through turnbuckles 1306 and high-strength precision rolled threaded steel 1307. A square tube 1308 for support and adjustable is also provided at the bottom of the portal frame 1309.

[0030] A side wall pouring area is formed between the side wall curved panel 1301 and the side wall side panel 1302. A vertical wall pouring area is formed between the two vertical wall side panels 1303. A protective wall pouring area is formed between the protective wall inclined panel 1304 and the protective wall vertical panel 1305. Cable grooves are formed on both sides of the vertical wall pouring area. The bottom end of the side wall curved panel 1301 is designed in a U shape to facilitate the connection between the bottom end of the side wall curved panel 1301 and the flange of the bridge.

[0031] Among them, the integral cast-in-place tooling lifting and hoisting method includes the following specific operation steps: S1. Move the equipment to the edge of the bridge, hook the two ends of the portal frame 1309 of the integral cast-in-place tooling 13 through the hook 706, and then start the hoisting winding mechanism 5 to lift the integral cast-in-place tooling 13. S2. The electric mobile platform 4 moves the integral cast-in-place tooling 13 to the edge of the bridge. When moving, the linkage drives the counterweight assembly 11 to move to the side away from the lifting hanging basket 12. S3. When the integral cast-in-place tooling 13 is hoisted to the edge of the bridge, the clamping assembly 9 is connected to the positioning assembly 8, so that the stability of the integral cast-in-place tooling 13 decreases. When it descends to a specific position, then finely adjust the position of the integral cast-in-place tooling 13 through the finely adjustable hoisting bracket 7, so that the integral cast-in-place tooling 13 can be butted with other integral cast-in-place toolings 13, and at the same time make the bottom end of the side wall curved panel 1301 of the integral cast-in-place tooling 13 contact the flange of the bridge. S4. After the hoisting is completed, lift the finely adjustable hoisting bracket 7, so that the clamping assembly 9 moves out from the top of the positioning assembly 8 and separates from the positioning assembly 8, and then the electric mobile platform 4 can be reset.

[0032] Although the embodiments of the present invention have been shown and described, for those of ordinary skill in the art, it can be understood that various changes, modifications, substitutions, and variations can be made to these embodiments without departing from the principle and spirit of the present invention. The scope of the present invention is defined by the appended claims and their equivalents.

Claims

1. An integral cast-in-place tooling lifting and hoisting device, comprising an electric trolley (1), a high-strength bracket (2) is fixed on the top of the electric trolley (1), a cross frame (3) is arranged on the top of the high-strength bracket (2), and a height-adjustable lifting basket (12) is arranged at one end of the cross frame (3), characterized in that: At the top of the horizontal frame (3), an electric mobile platform (4) is provided. On the upper surface of the electric mobile platform (4), a hoisting and winding mechanism (5) is installed. At the bottom end of the steel wire rope (6) on the surface of the hoisting and winding mechanism (5), a fine-tuning hoisting bracket (7) is connected. The fine-tuning hoisting bracket (7) is used to realize the fine-tuning of the position of the integral cast-in-place tooling (13). On the surface of the lifting hanging basket (12), a positioning component (8) is installed. On the surface of the fine-tuning hoisting bracket (7), a clamping component (9) matching the positioning component (8) is provided. When the fine-tuning hoisting bracket (7) moves to the side close to the lifting hanging basket (12), the clamping component (9) is connected to the positioning component (8) to ensure the stability of hoisting and lifting. On both sides of the horizontal frame (3), linkage components (10) are respectively provided. At the bottom of the linkage components (10), counterweight components (11) are installed. When the electric mobile platform (4) hoists the integral cast-in-place tooling (13) and moves to the side close to the lifting hanging basket (12), the linkage components (10) are linked to drive the counterweight components (11) to move to one end far from the integral cast-in-place tooling (13).

2. The integral cast-in-place tooling lifting and hoisting equipment according to claim 1, characterized in that: At the middle position of the horizontal frame (3), a rack bar (301) is fixed. On the surface of the horizontal frame (3), a chute (302) is provided. The electric mobile platform (4) includes a tabletop (401) arranged on the surface of the horizontal frame (3). At the bottom of the tabletop (401), a pulley extending into the chute (302) is provided. At the top of the tabletop (401), a driving motor (402) is fixed. At the driving end of the driving motor (402), a driving gear (403) is fixed. The driving gear (403) meshes with the rack bar (301).

3. The integral cast-in-place tooling hoisting and lifting equipment according to claim 1, characterized in that: The hoisting and winding mechanism (5) includes a winding motor (501). At the driving end of the winding motor (501), a winding roller (502) is connected. On the outer surface of the winding roller (502), two winding discs (503) are connected. On the surfaces of the two winding discs (503), steel wire ropes (6) are wound respectively. At the bottom ends of the two steel wire ropes (6), they are respectively connected to both ends of the fine-tuning hoisting bracket (7).

4. The integral cast-in-place tooling hoisting equipment according to claim 2, characterized in that: The linkage component (10) includes a bracket (1001) fixed on the outer side wall of the horizontal frame (3). On the inner wall of the bracket (1001), a sliding rod (1002) is installed. On the outer surface of the sliding rod (1002), a sliding plate (1003) is slidably connected. At the top of the sliding plate (1003), a first strip tooth (1004) is provided. On the side wall of the horizontal frame (3), a linkage gear (1005) is installed. On the lower surfaces of both ends of the tabletop (401), second strip teeth (1006) are provided. The linkage gear (1005), the first strip tooth (1004) and the second strip tooth (1006) are meshed with each other.

5. An integral cast-in-place tooling hoisting and lifting device according to claim 1, characterized in that: The adjustable hoisting bracket (7) includes a top frame (701). A transverse moving plate (702) is slidably connected inside the top frame (701). A transverse moving cylinder (703) is connected between the top frame (701) and the transverse moving plate (702). A longitudinal moving plate (704) is slidably connected below the transverse moving plate (702). A longitudinal moving cylinder (705) is installed on the lower surface of the transverse moving plate (702). The telescopic end of the longitudinal moving cylinder (705) is connected to the longitudinal moving plate (704). A set of hooks (706) are respectively arranged at both ends of the longitudinal moving plate (704). Each set of the hooks (706) has two hooks, and the hooks (706) are arranged in an L shape.

6. The integral cast-in-place tooling lifting and hoisting equipment according to claim 1, wherein: The positioning component (8) is a vertical rod fixed on the outer wall of the lifting basket (12), and positioning chutes are opened on both symmetric side walls of the vertical rod.

7. The integral cast-in-place tooling hoisting equipment according to claim 6, characterized in that: The clamping component (9) includes a clamping plate (901) fixed on one side of the adjustable hoisting bracket (7) close to the lifting basket (12). A positioning opening (902) is formed on the surface of the clamping plate (901). An arc-shaped edge is arranged at the opening of the positioning opening (902). Telescopic clamping blocks (903) are arranged on both symmetric side walls of the positioning opening (902), and the telescopic clamping blocks (903) are matched with the positioning chutes of the positioning component (8).

8. An integral cast-in-place tooling lifting and hoisting method, characterized in that: It includes the integral cast-in-place tooling hoisting and lifting equipment according to any one of claims 1 to 7.

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