A general-purpose assembly platform for a wind turbine tower barrel

By designing a universal assembly platform for fan towers, using mobile components, rotating components, limiting components, etc., the convenient angle adjustment and assembly of the tower ring sheet is achieved, solving the cumbersome problems of the existing assembly platform and improving assembly efficiency.

CN119267096BActive Publication Date: 2025-06-24JIANGSU HUAKAN RUIYI NEW ENERGY EQUIPMENT CO LTD
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Patent Information

Application Number
CN202411602985.5
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-11-11
Publication Date
2025-06-24
Estimated Expiration
2044-11-11

AI Technical Summary

Technical Problem

When assembling tower ring sheets on existing assembly platforms, the proofreading and assembly of ring sheets is more cumbersome, resulting in a longer assembly time.

Method used

A general assembly platform for fan towers is designed, including moving components, rotating components, limiting components, proofing components, adjustment components, etc. Through the cooperation of these components, the movement and angle adjustment of the ring sheet can be achieved, reducing measurement and proofing work.

Benefits of technology

Through this platform, the ring piece can be easily adjusted and assembled at an angle, reducing assembly time and improving work efficiency.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention relates to the technical field of concrete tower barrel assembly, in particular to a general-purpose assembly platform for a wind turbine tower barrel, including a main body component, which includes a moving component and a rotating component fixed on the top of the moving component, and further includes a limiting component fixed on the top of the rotating component. A ring piece can be placed on the top of the limiting component, and then the moving component and the rotating component can move and adjust the angle of the ring piece; a calibration component, which includes a lever component rotating on the rotating component. In the present invention, by placing the ring piece on the limiting component, and then the adjusting component releases the limit of the calibration component on the rotating component, the lever component drives the force-bearing component and the connecting component to drive the rotating component to move, so that the ring piece on the limiting component can be adjusted in angle. The moving range of the force-bearing component is limited by the track component, so as to avoid the problem of collision between the ring pieces due to excessive angle adjustment.
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Description

Technical Field

[0001] The present invention relates to the technical field of concrete tower barrel assembly, and particularly to a general-purpose assembly platform for a wind turbine tower barrel. Background Art

[0002] With the support and development of new energy by the country, the installed capacity requirements for new energy wind power are getting larger and larger, and the wind force required for high-capacity nacelles is also getting higher and higher. Steel tower barrels can no longer meet the development of the installed height of new energy wind power at the present stage. Taking advantage of the characteristics of large stiffness, easy installation, and low cost of concrete, the concrete is made into a tower barrel for new energy wind power to meet the installed height required by high-capacity nacelles. As the installed height gets higher and higher, the diameter of the concrete tower barrel gets larger and larger. To meet the transportation of transport vehicles and comply with road transportation regulations, the concrete tower barrel needs to be disassembled and transported to the machine position for assembly.

[0003] When the existing assembly platform is in use, a crane and manual labor are required to move the ring piece to the assembly platform. Then, after measuring the angle, a jack is used to align the ring piece. The workload in this process is large, resulting in a long assembly time, so improvements are needed. Summary of the Invention

[0004] The purpose of this part is to outline some aspects of the embodiments of the present invention and briefly introduce some preferred embodiments. Some simplifications or omissions may be made in this part, as well as in the abstract and title of the present application, to avoid obscuring the purpose of this part, the abstract, and the title. However, such simplifications or omissions shall not be used to limit the scope of the present invention.

[0005] In view of the problem that the alignment and assembly of the ring piece are relatively cumbersome when assembling the tower barrel ring piece in the above or existing technology, the present invention is proposed.

[0006] Therefore, the purpose of the present invention is to provide a general-purpose assembly platform for a wind turbine tower barrel.

[0007] To solve the above technical problems, the present invention provides the following technical solutions: a main body component, which includes a moving component, a rotating component fixed on the top of the moving component, and a limiting component fixed on the top of the rotating component. A ring plate can be placed on the top of the limiting component, and then the moving component and the rotating component can move and adjust the angle of the ring plate; a calibration component, which includes a lever component rotating on the rotating component, a force-bearing component sliding in the lever component, and a connecting component sliding on the force-bearing component. The connecting component is connected to the rotating component, and also includes an orbital component fixed on the moving component. The orbital component is adapted to the force-bearing component. Pushing the lever component can drive the force-bearing component to squeeze the connecting component, so that the connecting component can drive the rotating component to move, and the angle of movement of the force-bearing component is limited by the orbital component; an adjusting component, which includes a groove plate component fixed on the outer wall of the lever component, and a clamping component sliding in the groove plate component. The clamping component is connected to the force-bearing component. The clamping position of the clamping component on the groove plate component is adjusted, and the angle of movement of the clamping component is limited by the orbital component.

[0008] As a preferred solution of the general-purpose assembly platform for the wind turbine tower of the present invention, wherein: the moving component includes a central disk, and slide rails fixed at the four ends of the central disk, and also includes slide plates sliding on the top of the slide rails corresponding to the four ends of the central disk.

[0009] As a preferred solution of the general-purpose assembly platform for the wind turbine tower of the present invention, wherein: the rotating component includes an arc-shaped bottom plate fixed on the top of the slide plate, and an arc-shaped concave plate sliding on the top of the arc-shaped bottom plate. A slot is provided at the center of the outer wall of the arc-shaped concave plate.

[0010] As a preferred solution of the general-purpose assembly platform for the wind turbine tower of the present invention, wherein: the limiting component includes a support plate fixed on the top of the arc-shaped concave plate. A groove is provided on the top of the support plate, and a convex end is provided on the inner side of the top of the support plate.

[0011] As a preferred solution of the general-purpose assembly platform for the wind turbine tower of the present invention, wherein: the lever component includes a rocker rotating outside the rotating component. A circular groove is provided on the inner wall of the rocker. A through groove is provided at one end of the rocker inside the circular groove, and an adjustment groove is provided at one end of the rocker outside the circular groove. The circular groove, the through groove and the adjustment groove are communicated.

[0012] As a preferred solution of the general-purpose assembly platform for the wind turbine tower of the present invention, wherein: the force-bearing component includes a sliding rod sliding in the circular groove, and a force-bearing rod fixed at the end of the sliding rod and located in the through groove.

[0013] As a preferred embodiment of the general-purpose assembly platform for the wind turbine tower of the present invention, the following is provided: The connection assembly includes a triangular plate fixed to the outer wall of the rotating assembly. Straight grooves are provided at the upper and lower ends of the triangular plate, and the straight grooves are adapted to the force-bearing assembly.

[0014] As a preferred embodiment of the general-purpose assembly platform for the wind turbine tower of the present invention, the following is provided: The track assembly includes a frame fixed to the moving assembly. Sector-shaped grooves are provided at the upper and lower ends of the frame, and semi-circular grooves are provided at the upper and lower ends of the frame corresponding to the small sections of the sector-shaped grooves. The semi-circular grooves are adapted to the force-bearing assembly.

[0015] As a preferred embodiment of the general-purpose assembly platform for the wind turbine tower of the present invention, the following is provided: The groove plate assembly includes a groove plate fixed to the outer wall of the lever corresponding to the adjustment groove. A connection groove is provided inside the groove plate corresponding to the adjustment groove. The adjustment groove and the connection groove are communicated. A clamping groove is provided at the top of the groove plate corresponding to the connection groove.

[0016] As a preferred embodiment of the general-purpose assembly platform for the wind turbine tower of the present invention, the following is provided: The clamping assembly includes a connection block fixed to one end of the outer side of the force-bearing assembly. A recessed groove is provided at the top of the connection block, and a clamping block slides in the recessed groove. A tension spring is further included and fixed between the connection block and the clamping block. The clamping block is adapted to the groove plate assembly.

[0017] The beneficial effects of the general-purpose assembly platform for the wind turbine tower of the present invention: In the present invention, by placing the ring plate on the limiting assembly, and then the adjusting member releases the limit of the alignment member on the rotating assembly, the force-bearing assembly, the connection assembly drives the rotating assembly to move through the lever assembly, so that the ring plate on the limiting assembly can be adjusted in angle. The moving range of the force-bearing assembly is limited by the track assembly, so as to avoid the problem of collision between the ring plates due to excessive adjustment angle. And the moving assembly can move the ring plate on the limiting assembly towards the center, so that when assembling the ring plates, subsequent cumbersome measurement and alignment work can be reduced. BRIEF DESCRIPTION OF THE DRAWINGS

[0018] In order to more clearly illustrate the technical solutions of the embodiments of the present invention, the drawings required for the description of the embodiments will be briefly introduced below. Obviously, the drawings in the following description are only some embodiments of the present invention. For those of ordinary skill in the art, other drawings can be obtained based on these drawings without creative efforts.

[0019] Figure 1 It is an overall schematic diagram of the general-purpose assembly platform for the wind turbine tower.

[0020] Figure 2 It is an internal schematic diagram of the partial structure of the general-purpose assembly platform for the wind turbine tower.

[0021] Figure 3 It is a schematic diagram of the structure of the main components in the general-purpose assembly platform for the wind turbine tower barrel.

[0022] Figure 4 It is a schematic diagram of the partial structure of the main components in the general-purpose assembly platform for the wind turbine tower barrel.

[0023] Figure 5 It is a schematic diagram of the structure of the alignment component in the general-purpose assembly platform for the wind turbine tower barrel.

[0024] Figure 6 It is a schematic diagram of the structure of the lever assembly in the general-purpose assembly platform for the wind turbine tower barrel.

[0025] Figure 7 It is a schematic diagram of the structure of the force-bearing component and the connection component in the general-purpose assembly platform for the wind turbine tower barrel.

[0026] Figure 8 It is a schematic diagram of the structure of the track assembly in the general-purpose assembly platform for the wind turbine tower barrel.

[0027] Figure 9 It is a schematic diagram of the structure of the adjustment component in the general-purpose assembly platform for the wind turbine tower barrel.

[0028] Figure 10 It is a schematic diagram of the structure of the clamping component in the general-purpose assembly platform for the wind turbine tower barrel.

[0029] In the figure: 100, main component; 101, moving component; 102, rotating component; 103, limiting component;

[0030] 101a, center plate; 101b, slide rail; 101c, slide plate;

[0031] 102a, arc-shaped bottom plate; 102b, arc-shaped concave plate; 102c, slot;

[0032] 103a, support plate; 103b, groove; 103c, protruding end;

[0033] 200, alignment component; 201, lever assembly; 202, force-bearing component; 203, connection component; 204, track assembly;

[0034] 201a, rocker; 201b, round groove; 201c, through groove; 201d, adjustment groove;

[0035] 202a, slide bar; 202b, force-bearing bar;

[0036] 203a, triangular plate; 203b, straight groove;

[0037] 204a, frame; 204b, fan-shaped groove; 204c, semi-circular groove;

[0038] 300. Adjusting component; 301. Groove plate assembly; 302. Clamping assembly;

[0039] 301a. Groove plate; 301b. Connecting groove; 301c. Card slot;

[0040] 302a. Connecting block; 302b. Recessed groove; 302c. Clamping block; 302d. Tension spring. Detailed implementation manner

[0041] To make the above objects, features, and advantages of the present invention more obvious and understandable, the following will describe the detailed implementation manner of the present invention with reference to the accompanying drawings of the specification.

[0042] In the following description, many specific details are set forth to fully understand the present invention. However, the present invention can also be implemented in other ways different from those described herein. Those skilled in the art can make similar generalizations without departing from the connotation of the present invention. Therefore, the present invention is not limited by the specific embodiments disclosed below.

[0043] Secondly, the so-called "one embodiment" or "embodiment" herein refers to a specific feature, structure, or characteristic that can be included in at least one implementation manner of the present invention. The "in one embodiment" that appears in different places in this specification does not necessarily refer to the same embodiment, nor is it a separate or selectively exclusive embodiment from other embodiments.

[0044] Embodiment 1. Refer to Figures 1 to 4 , which is the first embodiment of the present invention. This embodiment provides a general-purpose assembly platform for a wind turbine tower barrel, which can achieve the effect of facilitating the splicing and alignment of the tower barrel ring pieces. It includes a main body component 100, which includes a moving component 101 and a rotating component 102 fixed on the top of the moving component 101. It also includes a limiting component 103 fixed on the top of the rotating component 102. The ring piece can be placed on the top of the limiting component 103, and then the moving component 101 and the rotating component 102 can move and adjust the angle of the ring piece.

[0045] An alignment component 200, which includes a lever component 201 rotating on the rotating component 102, a force-bearing component 202 sliding in the lever component 201, a connecting component 203 sliding on the force-bearing component 202. The connecting component 203 is connected to the rotating component 102. It also includes an orbital component 204 fixed on the moving component 101. The orbital component 204 is adapted to the force-bearing component 202. Pushing the lever component 201 can drive the force-bearing component 202 to squeeze the connecting component 203, so that the connecting component 203 can drive the rotating component 102 to move, and the moving angle of the force-bearing component 202 will be limited by the orbital component 204.

[0046] Adjusting component 300, which includes a groove plate component 301 fixed to the outer wall of the lever assembly 201, and a clamping component 302 slidable within the groove plate component 301. The clamping component 302 is connected to the force-bearing component 202. The clamping component 302 adjusts its clamping position on the groove plate component 301, and the angle of movement of the clamping component 302 is restricted by the track component 204.

[0047] Specifically, as Figure 3 shown in [reference], the moving component 101 includes a central disk 101a, and slide rails 101b fixed to the four ends of the central disk 101a. There are a total of eight slide rails 101b, and each of the four ends of the central disk 101a has two slide rails 101b, so that the eight slide rails 101b are arranged in a cross shape. It also includes a slide plate 101c slidable on the top of the slide rails 101b corresponding to the four ends of the central disk 101a. There is one slide plate 101c on the two slide rails 101b at each end of the central disk 101a.

[0048] Furthermore, as Figure 4 shown in [reference], the rotating component 102 includes an arc-shaped bottom plate 102a fixed to the top of the slide plate 101c, and an arc-shaped concave plate 102b slidable on the top of the arc-shaped bottom plate 102a. A slot 102c is provided at the center of the outer wall of the arc-shaped concave plate 102b.

[0049] Furthermore, as Figure 4 shown in [reference], the limiting component 103 includes a support plate 103a fixed to the top of the arc-shaped concave plate 102b. A groove 103b is provided on the top of the support plate 103a. The shape of the groove 103b is arc-shaped, so that the ring piece of the tower barrel can be placed at the groove 103b. A protruding end 103c is provided on the inner side of the top of the support plate 103a.

[0050] During use, the tower barrel ring piece is roughly centered and moved to the top of the support plate 103a by using a crane. At this time, the tower barrel ring piece is lowered by the crane, and the angle of the tower barrel ring piece is adjusted manually, so that the tower barrel ring piece fits onto the protruding end 103c side at the groove 103b, and the angle of the tower barrel ring piece is adapted to the groove 103b. At this time, the tower barrel ring piece is lowered by the crane, so that the tower barrel ring piece falls into the groove 103b. Then, by slowly pushing the arc-shaped concave plate 102b, the support plate 103a, the tower barrel ring piece, and the slide plate 101c are driven to approach the central disk 101a. During this process, the arc-shaped bottom plate 102a and the arc-shaped concave plate 102b can be limited by the adjusting component 300 contacting the calibration component 200, so that the arc-shaped concave plate 102b can be driven to slide on the arc-shaped bottom plate 102a by the calibration component 200. Furthermore, the support plate 103a and the tower barrel ring piece on the top of the arc-shaped concave plate 102b can be driven, and the angle of the tower barrel ring piece can be adjusted, so that each tower barrel ring piece has enough space for placement, and then the splicing is carried out by adjusting the angle.

[0051] In summary, after placing the tower barrel ring on the limiting component 103, the limiting of the rotating component 102 by the alignment component 200 is released through the adjusting component 300. Then, the force-bearing component 202 and the connecting component 203 can drive the rotating component 102 to move through the lever component 201. When moving, the force-bearing component 202 is limited by the track component 204, enabling the tower barrel ring on the limiting component 103 to be angle-adjusted, and the moving component 101 can move the tower barrel ring on the limiting component 103 towards the center. Thus, when assembling the tower barrel ring, subsequent cumbersome measurement and alignment work can be reduced.

[0052] Example 2. Refer to Figures 1 to 8 , which is the second embodiment of the present invention. Different from the previous embodiment, this embodiment provides an alignment component 200 for a general-purpose assembly platform of a wind turbine tower barrel, solving the problem of aligning the tower barrel ring on the rotating component 102. As Figure 6 shows, the lever component 201 includes a rocker 201a that rotates outside the rotating component 102. The rocker 201a rotates at the corresponding slot 102c on the outer wall of the arc-shaped bottom plate 102a in the rotating component 102. A circular groove 201b is provided on the inner wall of the rocker 201a. A through groove 201c is provided at one end of the rocker 201a inside the circular groove 201b, and an adjusting groove 201d is provided at one end of the rocker 201a outside the circular groove 201b. The circular groove 201b, the through groove 201c, and the adjusting groove 201d are interconnected.

[0053] Specifically, as Figure 7 shows, the force-bearing component 202 includes a slide bar 202a that slides in the circular groove 201b, and a force-bearing rod 202b that is fixed to the end of the slide bar 202a and is located in the through groove 201c.

[0054] Furthermore, as Figure 7 shows, the connecting component 203 includes a triangular plate 203a that is fixed to the outer wall of the rotating component 102. The triangular plate 203a is fixed at the corresponding slot 102c on the outer wall of the arc-shaped concave plate 102b in the rotating component 102. Straight slots 203b are provided at the upper and lower ends of the triangular plate 203a, and the straight slots 203b are adapted to the force-bearing component 202. The straight slots 203b are adapted to the force-bearing rod 202b in the force-bearing component 202.

[0055] Furthermore, as Figure 8 shows, the track component 204 includes a frame 204a that is fixed to the moving component 101. The frame 204a is connected to the slide plate 101c in the moving component 101. Sector-shaped slots 204b are provided at the upper and lower ends of the frame 204a. Semi-circular slots 204c are provided at the corresponding small sections of the sector-shaped slots 204b at the upper and lower ends of the frame 204a. The semi-circular slots 204c are adapted to the force-bearing component 202. The semi-circular slots 204c are adapted to the force-bearing rod 202b in the force-bearing component 202.

[0056] The remaining structures are the same as those in Embodiment 1.

[0057] When in use, when it is necessary to adjust the rotating assembly 102, the adjusting member 300 can drive the sliding rod 202a and the force-bearing rod 202b to move outward, so that the force-bearing rod 202b will enter the fan-shaped groove 204b from the semi-circular groove 204c. After the force-bearing rod 202b disengages from the semi-circular groove 204c, the limit of the calibration member 200 on the rotating assembly 102 can be released. Since the semi-circular groove 204c is at the small end of the fan-shaped groove 204b, the adjusting member 300 can also drive the sliding rod 202a and the force-bearing rod 202b to continue to move to the large end of the fan-shaped groove 204b, so as to increase the moving range of the force-bearing rod 202b in the fan-shaped groove 204b. After the force-bearing assembly 202 is adjusted, by pushing the rocker 201a to drive the sliding rod 202a and the force-bearing rod 202b to rotate, the force-bearing rod 202b will squeeze the triangular plate 203a and the arc-shaped concave plate 102b to move in the straight groove 203b, and then the angle adjustment of the tower barrel ring on the top limit assembly 103 of the arc-shaped concave plate 102b can be completed. In this process, the maximum moving range of the force-bearing rod 202b is from the center of the fan-shaped groove 204b to the two side edges of the fan-shaped groove 204b, and the function of calibrating the tower barrel ring on the rotating assembly 102 can be completed.

[0058] In summary, by observing the approximate deviation of the angle of the tower barrel ring, the distance that the calibration member 200 can drive the rotating assembly 102 to move can be adjusted, so as to avoid the collision between the tower barrel ring and the adjusted tower barrel ring during adjustment, and improve the safety during the process of adjusting the tower barrel ring.

[0059] Embodiment 3, referring to Figures 1 to 10 , which is the third embodiment of the present invention. Different from the previous embodiment, this embodiment provides an adjusting member 300 for the general-purpose assembly platform of the wind turbine tower barrel, which has the function of adjusting the calibration member 200, as Figure 9 shown, it includes that the groove plate assembly 301 includes a groove plate 301a fixed to the outer wall of the rocker 201a corresponding to the adjusting groove 201d. A connecting groove 301b is provided inside the groove plate 301a corresponding to the adjusting groove 201d. The adjusting groove 201d and the connecting groove 301b are communicated. A clamping groove 301c is provided on the top of the groove plate 301a corresponding to the connecting groove 301b, and there are multiple clamping grooves 301c on the groove plate 301a.

[0060] Specifically, as Figure 10 shown, the clamping assembly 302 includes a connecting block 302a fixed to the outer end of the force-bearing assembly 202. An inward depression groove 302b is provided on the top of the connecting block 302a, and a clamping block 302c slidably arranged in the inward depression groove 302b. A tension spring 302d fixed between the connecting block 302a and the clamping block 302c is also included, and the clamping block 302c is adapted to the groove plate assembly 301.

[0061] The remaining structures are the same as those in Embodiment 2.

[0062] When in use, pull the clamping block 302c out of the first clamping groove 301c and pull the tension spring 302d. At this time, move the clamping block 302c and the connecting block 302a to the second clamping groove 301c. At this time, the connecting block 302a can drive the sliding rod 202a and the force-bearing rod 202b to move. During this process, the force-bearing rod 202b will enter the sector groove 204b from the semi-circular groove 204c. If the clamping block 302c and the connecting block 302a are moved to the subsequent clamping grooves 301c, the sliding rod 202a and the force-bearing rod 202b can be driven to move towards the large end of the sector groove 204b. When the clamping block 302c and the connecting block 302a are moved to the required clamping groove 301c, by releasing the clamping block 302c, the tension spring 302d drives the clamping block 302c to be clamped into the corresponding clamping groove 301c, and the adjustment can be completed.

[0063] It should be noted that the above embodiments are only used to illustrate the technical solutions of the present invention and not to limit them. Although the present invention has been described in detail with reference to the preferred embodiments, those of ordinary skill in the art should understand that the technical solutions of the present invention can be modified or equivalently replaced without departing from the spirit and scope of the technical solutions of the present invention, and they should all be covered by the scope of the claims of the present invention.

Claims

1. A universal wind turbine tower assembly platform, characterized by: include, A main body component (100) comprises a moving component (101), and a rotating component (102) fixed to the top of the moving component (101), and also comprises a limiting component (103) fixed to the top of the rotating component (102), a ring piece can be placed on the top of the limiting component (103), and then the moving component (101) and the rotating component (102) can enable the ring piece to be moved and the angle to be adjusted; A calibration component (200), comprising a lever component (201) rotating on the rotating component (102), and a force-bearing component (202) sliding inside the lever component (201), and also comprising a connecting component (203) sliding on the force-bearing component (202), wherein the connecting component (203) and the rotating component (102) are connected, and also comprising a track component (204) fixed on the moving component (101), wherein the track component (204) and the force-bearing component (202) are adapted to each other, and pushing the lever component (201) can drive the force-bearing component (202) to squeeze the connecting component (203), so that the connecting component (203) can drive the rotating component (102) to move, and the moving angle of the force-bearing component (202) is limited by the track component (204); An adjusting component (300) comprising a slot plate assembly (301) fixed to the outer wall of the lever assembly (201), and a clamping assembly (302) sliding inside the slot plate assembly (301), wherein the clamping assembly (302) is connected to the force-bearing assembly (202), and the clamping assembly (302) adjusts the clamping position on the slot plate assembly (301), and the moving angle of the clamping assembly (302) is limited by the track assembly (204); The moving assembly (101) comprises a central disk (101a), and slide rails (101b) fixed to the four ends of the central disk (101a), and also comprises slide plates (101c) sliding on the top of the slide rails (101b) corresponding to the four ends of the central disk (101a); The rotating assembly (102) comprises an arc-shaped bottom plate (102a) fixed to the top of the slide plate (101c), and an arc-shaped concave plate (102b) sliding on the top of the arc-shaped bottom plate (102a), wherein a groove (102c) is provided at the center of the outer wall of the arc-shaped concave plate (102b); The limiting assembly (103) comprises a support plate (103a) fixed to the top of the arc-shaped concave plate (102b), a groove (103b) being provided on the top of the support plate (103a), and a protruding end (103c) being provided on the inner side of the top of the support plate (103a); The lever assembly (201) comprises a tilting rod (201a) rotating on the outside of the rotating assembly (102); a circular groove (201b) is provided on the inner wall of the tilting rod (201a); a through groove (201c) is provided on one end of the tilting rod (201a) located on the inside of the circular groove (201b); an adjustment groove (201d) is provided on one end of the tilting rod (201a) located on the outside of the circular groove (201b); and the circular groove (201b), the through groove (201c) and the adjustment groove (201d) are in communication with each other; The force-bearing component (202) comprises a sliding rod (202a) sliding in the circular groove (201b), and a force-bearing rod (202b) fixed at the end of the sliding rod (202a) and located in the through groove (201c); The connecting component (203) comprises a triangular plate (203a) fixed to the outer wall of the rotating component (102), and the triangular plate (203a) is provided with straight grooves (203b) at the upper and lower ends, and the straight grooves (203b) are adapted to the force-bearing component (202).

2. The universal wind turbine tower assembly platform according to claim 1, characterized in that: The track component (204) comprises a frame (204a) fixed on the moving component (101), the frame (204a) being provided with fan-shaped grooves (204b) at the upper and lower ends, and semicircular grooves (204c) being provided at the small sections of the fan-shaped grooves (204b) at the upper and lower ends of the frame (204a), and the semicircular grooves (204c) are adapted to the force-bearing component (202).

3. The universal wind turbine tower assembly platform according to claim 1, characterized in that: The slot plate assembly (301) comprises a slot plate (301a) fixed to an outer wall of the tilting rod (201a) at a location corresponding to the adjustment slot (201d); a connecting slot (301b) is provided inside the slot plate (301a) at a location corresponding to the adjustment slot (201d); the adjustment slot (201d) and the connecting slot (301b) are in communication; and a clamping slot (301c) is provided on the top of the slot plate (301a) at a location corresponding to the connection slot (301b).

4. The universal wind turbine tower assembly platform according to claim 1, characterized in that: The clamping assembly (302) comprises a connecting block (302a) fixed to one end of the outer side of the force-bearing assembly (202); a sunken groove (302b) is provided on the top of the connecting block (302a); and a clamping block (302c) sliding in the sunken groove (302b); and a tension spring (302d) fixed between the connecting block (302a) and the clamping block (302c); the clamping block (302c) is adapted to the slot plate assembly (301).

Citation Information

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