A jacket for a wind power booster station

CN224755017UActive Publication Date: 2026-09-15珠海广海能源有限公司
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Patent Information

Application Number
CN202521856228.0
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-08-29
Publication Date
2026-09-15
Estimated Expiration
2035-08-29

AI Technical Summary

Technical Problem

[0004]本实用新型的目的在于提供一种风电升压站用导管架,以解决上述背景技术中提出导管架使用时在安装时的稳固性有待进一步提高,在组装的精准不能完全保证,以及整体承重能力不够高的问题

Benefits of technology

[0013]Compared with the prior art, the beneficial effects of this utility model are: the jacket structure for the wind power booster station not only enables the jacket structure to better cope with environmental corrosion and erosion during use, further improving the safety of the jacket structure during use, and extending the service life of the jacket structure, but also ensures the accuracy of installation during use, avoiding tilting or shaking of the top platform and reducing the risk of safety accidents. Moreover, it enables the jacket structure to withstand the expected loads, including environmental loads such as wind, waves and water flow, and has stronger stability and anti-collapse ability.

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Abstract

The utility model relates to the technical field of wind power booster station, concretely is a guide pipe frame for wind power booster station, including guide pipe frame body, the surface of guide pipe frame body top position department is provided with top platform, the surface of guide pipe frame body is provided with steady mounting mechanism, the surface of guide pipe frame body, wire board and top platform is provided with accurate assembly mechanism, the surface of guide pipe frame body is provided with high bearing capacity mechanism. The utility model not only makes guide pipe frame when using can better cope with the corrosion and erosion in the environment, further improves the security of guide pipe frame when using, prolongs the service life of guide pipe frame, makes guide pipe frame when using can ensure the accuracy during installation, avoids leading to the inclination or shaking of top platform, reduces the risk of safety accidents, and makes guide pipe frame when using can bear the expected load, including wind, wave and current etc. Environmental load, and the stability and anti-collapse capacity are stronger.
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Description

Technical Field

[0001] This utility model relates to the field of wind power booster station technology, specifically a jacket structure for a wind power booster station. Background Technology

[0002] Offshore substations consist of upper modules and lower foundations. Currently, the foundations of offshore substations in my country can be classified in terms of form as monopile foundations, underwater pre-piling direct insertion jacket foundations, underwater post-piling pile shoe jacket foundations, and above-water post-piling supported jacket foundations. However, existing jackets have some shortcomings in use. In order to meet market needs, a jacket for wind power substations is required.

[0003] The existing jacket structures lack the conditions for landing at the substation and laying submarine cables in the cable layer. This negatively impacts the organization of submarine cable construction, wind turbine foundation installation, and wind turbine installation throughout the wind farm project. The stability of the existing jacket structures during installation needs further improvement, making them less resistant to environmental corrosion and erosion, reducing safety and shortening their lifespan. Furthermore, the assembly precision of the existing jacket structures cannot be fully guaranteed, compromising installation accuracy and potentially causing tilting or swaying of the top platform, increasing the risk of accidents. In addition, the overall load-bearing capacity of the existing jacket structures is insufficient, preventing them from withstanding expected loads, including environmental loads such as wind, waves, and water flow, thus reducing stability and resistance to collapse. Utility Model Content

[0004] The purpose of this utility model is to provide a jacketed structure for wind power substations, in order to solve the problems mentioned in the background art, such as the need to further improve the stability of the jacketed structure during installation, the inability to fully guarantee the accuracy of assembly, and the insufficient overall load-bearing capacity.

[0005] To achieve the above objectives, this utility model provides the following technical solution: a jacket for a wind power booster station, comprising a jacket body, wherein supporting horizontal plates are installed on the surface of the jacket body, and a reinforcing triangular bracket plate is installed on the surface of the supporting horizontal plates. Mounting plates are installed on the bottom surface of the jacket body, and conductor plates are installed on the surface of the jacket body. A top platform is provided on the top surface of the jacket body, and a stable mounting mechanism is provided on the surface of the jacket body. A precision assembly mechanism is provided on the surfaces of the jacket body, conductor plates, and top platform, and a high load-bearing capacity mechanism is provided on the surface of the jacket body.

[0006] Preferably, the stabilizing installation mechanism consists of a mounting stud, a sleeve, a reinforcing plate, a mounting rod, and a triangular support plate. The surface of the guide frame is fitted with a sleeve, and the surface of the sleeve is threaded with a mounting stud. One end of the mounting stud passes through the sleeve and is threadedly fastened to the surface of the guide frame. The surface of the sleeve is fitted with a triangular support plate by screws.

[0007] Preferably, a reinforcing plate is installed inside the mounting plate by screws, and mounting rods for improving the stability of the guide frame body during installation are installed on the surface of the bottom position of the reinforcing plate, with the bottom ends of the mounting rods extending to the bottom of the mounting plate.

[0008] Preferably, the precision assembly mechanism consists of a fixed frame, fastening screws, assembly blocks, positioning blocks, and an auxiliary support structure. Assembly blocks are installed on the surface at the bottom of the top platform, and fixed frames are installed on the surface at the top of the guide frame. One end of each assembly block extends into the interior of the fixed frame, and positioning blocks are installed on the surface at the bottom of each assembly block. The positioning blocks engage with the inner wall of the fixed frame.

[0009] Preferably, fastening screws are threaded onto both sides of the fixed frame, one end of which passes through the fixed frame and is threaded onto the surface of the assembly block. An auxiliary support frame is installed on the surface at the bottom of the top platform, and the auxiliary support frame is engaged with the surface of the guide plate.

[0010] Preferably, the high load-bearing capacity mechanism consists of a cavity, an infusion tube, an infusion frame, a sealing cap, and fastening bolts. The surface of the catheter frame is equipped with an infusion tube, and the interior of the catheter frame is provided with a cavity.

[0011] Preferably, one end of the infusion tube penetrates the catheter support body and extends into the cavity, and an infusion frame is installed on the surface at the top of the infusion tube, the infusion frame being connected to the interior of the infusion tube.

[0012] Preferably, a sealing cap is provided on the surface at the top of the injection frame, one end of the sealing cap extends into the interior of the injection frame, and fastening bolts are threaded onto the surface of the sealing cap, one end of the fastening bolts penetrating the sealing cap and being threadedly fastened to the inner wall of the injection frame.

[0013] Compared with the prior art, the beneficial effects of this utility model are: the jacket structure for the wind power booster station not only enables the jacket structure to better cope with environmental corrosion and erosion during use, further improving the safety of the jacket structure during use, and extending the service life of the jacket structure, but also ensures the accuracy of installation during use, avoiding tilting or shaking of the top platform and reducing the risk of safety accidents. Moreover, it enables the jacket structure to withstand the expected loads, including environmental loads such as wind, waves and water flow, and has stronger stability and anti-collapse ability.

[0014] 1. With a stable installation mechanism, the user places the sleeves onto the surface of the guide frame and tightens the mounting studs on the sleeve surface. Under the action of the mounting studs, the sleeves are installed at the designated positions on the surface of the guide frame. The triangular support plate further improves the stability of the guide frame during installation and use. The user assembles the reinforcing plate and mounting rod inside the mounting plate with screws. Under the action of the mounting plate, the bottom of the guide frame is supported. The mounting plate drives the mounting rod to be inserted into the interior of the surface to be installed. Under the action of the mounting rod, the stability of the guide frame during installation is further improved, realizing the function of stable installation of the guide frame. This allows the guide frame to better cope with corrosion and erosion in the environment, further improving the safety of the guide frame during use and extending the service life of the guide frame.

[0015] 2. With a precision assembly mechanism, the guide frame body drives the assembly blocks to snap into the corresponding fixed frames. The snapping action between the assembly blocks and the fixed frames positions the top platform, preventing tilting during installation. The assembly blocks drive the positioning blocks to automatically snap into the inner wall of the fixed frames. The user then tightens the fastening screws on the surface of the fixed frames, securing the fixed frames and assembly blocks in place. When the top platform is installed on the surface of the guide frame body, the top platform drives the auxiliary support frames to snap into the surface of the guide plate. The auxiliary support frames further enhance the stability of the top platform during installation and use, achieving the function of precise assembly of the guide frame. This ensures the accuracy of installation during use, preventing tilting or shaking of the top platform and reducing the risk of safety accidents.

[0016] 3. By incorporating a high-load-bearing mechanism, before installing the jacket frame, the user loosens the fastening bolts on the sealing cover and removes it from the surface of the grouting frame. The user then pours high-strength concrete into the grouting frame, which enters the cavity through the grouting pipe. Pouring high-strength concrete into the interior of the jacket frame significantly improves its load-bearing capacity and wind resistance. After grouting, the user places the sealing cover back on the surface of the grouting frame and tightens the fastening bolts on the sealing cover, thus installing the sealing cover on the surface of the grouting frame. The sealing cover covers the surface of the grouting frame, achieving the high load-bearing capacity of the jacket frame. This allows the jacket frame to withstand expected loads, including environmental loads such as wind, waves, and water flow, resulting in greater stability and resistance to collapse. Attached Figure Description

[0017] Figure 1 This is a three-dimensional structural diagram of the present invention;

[0018] Figure 2 This is a schematic diagram of the front cross-sectional structure of this utility model;

[0019] Figure 3 For the present utility model Figure 2 Enlarged structural diagram of the centrally stabilized installation mechanism;

[0020] Figure 4 For the present utility model Figure 2 Enlarged structural diagram of the precision assembly mechanism;

[0021] Figure 5 This is an enlarged structural schematic diagram of the high load-bearing capacity mechanism of this utility model.

[0022] In the diagram: 1. Guide frame body; 101. Support plate; 102. Triangular support plate; 103. Guide plate; 104. Top platform; 105. Mounting plate; 2. Stable mounting mechanism; 21. Mounting stud; 22. Sleeve frame; 23. Reinforcing plate; 24. Mounting rod; 25. Triangular support plate; 3. Precision assembly mechanism; 31. Fixing frame; 32. Fastening screw; 33. Assembly block; 34. Positioning block; 35. Auxiliary support frame; 4. High load-bearing capacity mechanism; 41. Cavity; 42. Injection pipe; 43. Injection frame; 44. Sealing cap; 45. Fastening bolt. Detailed Implementation

[0023] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, not all embodiments. In addition, the terms "first", "second", "third", "upper", "lower", "left", "right", etc. are used for descriptive purposes only and should not be construed as indicating or implying relative importance. At the same time, in the description of the present utility model, unless otherwise explicitly specified and limited, the terms "connected" and "linked" should be interpreted broadly. For example, it can be a fixed connection, a detachable connection, or an integral connection; it can be a mechanical connection or an electrical connection; it can be a direct connection or an indirect connection through an intermediate medium. Based on the embodiments of the present utility model, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present utility model.

[0024] This utility model provides a structure for a jacketed structure used in a wind power substation, as shown in the following example. Figure 1 and Figure 2 As shown, the device includes a guide frame body 1, with a support cross plate 101 installed on the surface of the guide frame body 1, a reinforcing triangular bracket plate 102 installed on the surface of the support cross plate 101, an mounting plate 105 installed on the surface of the bottom position of the guide frame body 1, a guide plate 103 installed on the surface of the guide frame body 1, and a top platform 104 provided on the surface of the top position of the guide frame body 1.

[0025] Furthermore, such as Figure 2 and Figure 3 As shown, a stabilizing mounting mechanism 2 is provided on the surface of the guide frame body 1. The stabilizing mounting mechanism 2 consists of a mounting stud 21, a sleeve 22, a reinforcing plate 23, a mounting rod 24, and a triangular support plate 25. The surface of the guide frame body 1 is fitted with a sleeve 22. The surface of the sleeve 22 is threadedly connected to the mounting stud 21. One end of the mounting stud 21 passes through the sleeve 22 and is threadedly fastened to the surface of the guide frame body 1. The surface of the sleeve 22 is fitted with a triangular support plate 25 by screws. The inside of the mounting plate 105 is fitted with a reinforcing plate 23 by screws. The surface of the bottom position of the reinforcing plate 23 is fitted with a mounting rod 24 to improve the stability of the guide frame body 1 during installation. The bottom end of the mounting rod 24 extends to the bottom of the mounting plate 105.

[0026] During implementation, the user places the sleeve frame 22 onto the surface of the guide frame body 1, and then tightens the mounting studs 21 on the surface of the sleeve frame 22. Under the action of the mounting studs 21, the sleeve frame 22 is installed at the designated position on the surface of the guide frame body 1. Subsequently, the user installs the triangular support plate 25 on the surface of the sleeve frame 22 by tightening the screws. Under the action of the triangular support plate 25, the stability of the guide frame body 1 during installation and use is further improved, preventing the guide frame body 1 from tipping over during use. The user assembles the reinforcing plate 23 and the mounting rod 24 inside the mounting plate 105 by screws. Then, the guide frame body 1 moves the mounting plate 105 to contact the surface at the installation position. Under the action of the mounting plate 105, the bottom of the guide frame body 1 is supported. The mounting plate 105 drives the mounting rod 24 to be inserted into the interior of the surface to be installed. Under the action of the mounting rod 24, the stability of the guide frame body 1 during installation is further improved, so as to achieve the function of stable installation of the guide frame.

[0027] Furthermore, such as Figure 2 and Figure 4 As shown, the surfaces of the conduit frame 1, the guide plate 103, and the top platform 104 are provided with a precision assembly mechanism 3. The precision assembly mechanism 3 consists of a fixing frame 31, fastening screws 32, assembly blocks 33, positioning blocks 34, and auxiliary support frames 35. Assembly blocks 33 are installed on the surface at the bottom of the top platform 104. Fixing frames 31 are installed on the surface at the top of the conduit frame 1. One end of the assembly block 33 extends into the interior of the fixing frame 31. Positioning blocks 34 are installed on the surface at the bottom of the assembly block 33. The positioning blocks 34 are engaged with the inner wall of the fixing frame 31. Fastening screws 32 are threadedly connected to the surfaces on both sides of the fixing frame 31. One end of the fastening screw 32 passes through the fixing frame 31 and is threadedly fastened to the surface of the assembly block 33. Auxiliary support frames 35 are installed on the surface at the bottom of the top platform 104. Auxiliary support frames 35 are engaged with the surface of the guide plate 103.

[0028] During implementation, the guide frame body 1 drives the assembly blocks 33 to be snapped into the interior of the corresponding fixing frames 31. The snapping action of the assembly blocks 33 and the fixing frames 31 can position the installation position of the top platform 104, preventing the top platform 104 from tilting during installation. The assembly blocks 33 drive the positioning blocks 34 to automatically snap into the inner wall of the fixing frames 31. The user then tightens the fastening screws 32 on the surface of the fixing frames 31. Under the action of the fastening screws 32, the fixing frames 31 and the assembly blocks 33 are installed together. When the top platform 104 is installed on the surface of the guide frame body 1, the top platform 104 drives the auxiliary support frame 35 to be snapped into the surface of the guide plate 103. Under the action of the auxiliary support frame 35, the stability of the top platform 104 during installation and use is further improved, so as to realize the function of precise assembly of the guide frame.

[0029] Furthermore, such as Figure 2 and Figure 5 As shown, a high-load-bearing mechanism 4 is provided on the surface of the catheter frame 1. The high-load-bearing mechanism 4 consists of a cavity 41, an infusion tube 42, an infusion frame 43, a sealing cap 44, and fastening bolts 45. An infusion tube 42 is installed on the surface of the catheter frame 1. A cavity 41 is opened inside the catheter frame 1. One end of the infusion tube 42 passes through the catheter frame 1 and extends into the cavity 41. An infusion frame 43 is installed on the surface at the top of the infusion tube 42. The infusion frame 43 is connected to the inside of the infusion tube 42. A sealing cap 44 is provided on the surface at the top of the infusion frame 43. One end of the sealing cap 44 extends into the inside of the infusion frame 43. Fastening bolts 45 are threadedly connected to the surface of the sealing cap 44. One end of the fastening bolt 45 passes through the sealing cap 44 and is threadedly fastened to the inner wall of the infusion frame 43.

[0030] During implementation, the user loosens the fastening bolts 45 on the surface of the sealing cover 44 and removes the sealing cover 44 from the surface of the grouting frame 43. The user then pours high-strength concrete into the interior of the grouting frame 43. The high-strength concrete enters the interior of the cavity 41 through the grouting pipe 42. Pouring high-strength concrete into the interior of the jacket frame 1 can greatly improve the load-bearing capacity and wind resistance of the jacket frame 1. After the grouting is completed, the user places the sealing cover 44 on the surface of the grouting frame 43 and tightens the fastening bolts 45 on the surface of the sealing cover 44. The sealing cover 44 covers the surface of the grouting frame 43 to achieve the high load-bearing capacity of the jacket frame.

[0031] Working principle: In use, first place the catheter support body 1 in the designated position. The user then places the sleeves 22 onto the surface of the catheter support body 1 and tightens the mounting studs 21 on the surface of the sleeves 22. The mounting studs 21 secure the sleeves 22 to the designated position on the surface of the catheter support body 1. Subsequently, the user tightens the screws to install the triangular support plate 25 onto the surface of the sleeves 22. The triangular support plate 25 further improves the stability of the catheter support body 1 during installation and use, preventing it from tipping over. The user then tightens the screws to secure the reinforcing plate 23. The mounting rod 24 is assembled inside the mounting plate 105. Subsequently, the guide frame body 1 moves the mounting plate 105 to contact the surface at the installation position. Under the action of the mounting plate 105, the bottom of the guide frame body 1 is supported. The mounting plate 105 drives the mounting rod 24 to be inserted into the interior of the surface to be installed. Under the action of the mounting rod 24, the stability of the guide frame body 1 during installation is further improved, so as to realize the function of stable installation of the guide frame. This allows the guide frame to better cope with corrosion and erosion in the environment, further improves the safety of the guide frame during use, and extends the service life of the guide frame.

[0032] After the user installs the conduit frame 1, the top platform 104 is placed on the surface of the conduit frame 1. The conduit frame 1 drives the assembly blocks 33 to snap into the corresponding fixed frames 31. The snapping action of the assembly blocks 33 and the fixed frames 31 can position the installation position of the top platform 104, preventing the top platform 104 from tilting during installation. The assembly blocks 33 drive the positioning blocks 34 to automatically snap into the inner wall of the fixed frames 31. The user then tightens the fastening screws 32 on the surface of the fixed frames 31. Under the action of the fastening screws 32, the fixed frames 31 and the assembly blocks 33 are installed. When the top platform 104 is installed on the surface of the conduit frame 1, the top platform 104 drives the auxiliary support frame 35 to snap into the surface of the guide plate 103. Under the action of the auxiliary support frame 35, the stability of the top platform 104 during installation and use is further improved, so as to realize the function of precise assembly of the conduit frame. This ensures the accuracy of installation during use of the conduit frame, avoids tilting or shaking of the top platform 104, and reduces the risk of safety accidents.

[0033] Subsequently, before installing the jacket frame 1, the user loosens the fastening bolts 45 on the surface of the sealing cover 44 and removes the sealing cover 44 from the surface of the grouting frame 43. The user then pours high-strength concrete into the interior of the grouting frame 43. The high-strength concrete enters the interior of the cavity 41 through the grouting pipe 42. Pouring high-strength concrete into the interior of the jacket frame 1 can greatly improve the load-bearing capacity and wind resistance of the jacket frame 1. After the grouting is completed, the user places the sealing cover 44 on the surface of the grouting frame 43 and tightens the fastening bolts 45 on the surface of the sealing cover 44. The sealing cover 44 covers the surface of the grouting frame 43 to achieve the high load-bearing capacity of the jacket frame. This allows the jacket frame to withstand the expected loads during use, including environmental loads such as wind, waves, and water flow. It also enhances stability and anti-collapse capabilities, ultimately completing the use of the jacket frame.

[0034] It will be apparent to those skilled in the art that this invention is not limited to the details of the exemplary embodiments described above, and that it can be implemented in other specific forms without departing from the spirit or essential characteristics of this invention. Therefore, the embodiments should be considered illustrative and non-limiting in all respects, and the scope of this invention is defined by the appended claims rather than the foregoing description. Thus, it is intended that all variations falling within the meaning and scope of equivalents of the claims be included within this invention. No reference numerals in the claims should be construed as limiting the scope of the claims.

Claims

1. A jacket structure for a wind power substation, comprising a jacket structure body (1), characterized in that: The surface of the guide frame body (1) is equipped with a support cross plate (101), the surface of the support cross plate (101) is equipped with a triangular bracket plate (102) for reinforcement, the surface of the bottom position of the guide frame body (1) is equipped with an installation plate (105), the surface of the guide frame body (1) is equipped with a guide plate (103), the surface of the top position of the guide frame body (1) is provided with a top platform (104), the surface of the guide frame body (1) is provided with a stable installation mechanism (2), the surfaces of the guide frame body (1), the guide plate (103) and the top platform (104) are provided with a precision assembly mechanism (3), and the surface of the guide frame body (1) is provided with a high load-bearing mechanism (4).

2. The jacket structure for a wind power substation according to claim 1, characterized in that: The stabilizing installation mechanism (2) consists of a mounting stud (21), a sleeve (22), a reinforcing plate (23), a mounting rod (24), and a triangular support plate (25). The surface of the guide frame body (1) is fitted with a sleeve (22). The surface of the sleeve (22) is threadedly connected to the mounting stud (21). One end of the mounting stud (21) passes through the sleeve (22) and is threadedly fastened to the surface of the guide frame body (1). The surface of the sleeve (22) is fitted with a triangular support plate (25) by screws.

3. The jacket structure for a wind power substation according to claim 1, characterized in that: The mounting plate (105) is fitted with a reinforcing plate (23) inside by screws. The bottom surface of the reinforcing plate (23) is fitted with mounting rods (24) to improve the stability of the guide frame body (1) during installation. The bottom ends of the mounting rods (24) extend to the bottom of the mounting plate (105).

4. A jacket structure for a wind power substation according to claim 1, characterized in that: The precision assembly mechanism (3) consists of a fixed frame (31), fastening screws (32), assembly blocks (33), positioning blocks (34), and auxiliary support frame (35). Assembly blocks (33) are installed on the surface at the bottom of the top platform (104), and fixed frames (31) are installed on the surface at the top of the guide frame (1). One end of the assembly block (33) extends into the interior of the fixed frame (31), and positioning blocks (34) are installed on the surface at the bottom of the assembly block (33). The positioning blocks (34) and the inner wall of the fixed frame (31) are engaged with each other.

5. A jacket structure for a wind power substation according to claim 4, characterized in that: Both sides of the fixed frame (31) are threaded with fastening screws (32). One end of the fastening screw (32) passes through the fixed frame (31) and is threadedly fastened to the surface of the assembly block (33). The surface at the bottom of the top platform (104) is equipped with an auxiliary support frame (35), which is engaged with the surface of the guide plate (103).

6. A jacket structure for a wind power substation according to claim 1, characterized in that: The high load-bearing capacity mechanism (4) consists of a cavity (41), an infusion pipe (42), an infusion frame (43), a sealing cap (44), and fastening bolts (45). The surface of the catheter frame body (1) is equipped with an infusion pipe (42), and the interior of the catheter frame body (1) is provided with a cavity (41).

7. A jacket structure for a wind power substation according to claim 6, characterized in that: One end of the infusion tube (42) passes through the catheter holder body (1) and extends into the cavity (41). An infusion frame (43) is installed on the surface of the top of the infusion tube (42), and the infusion frame (43) is connected to the inside of the infusion tube (42).

8. A jacket structure for a wind power substation according to claim 7, characterized in that: A sealing cap (44) is provided on the surface of the top position of the injection frame (43). One end of the sealing cap (44) extends into the interior of the injection frame (43). All surfaces of the sealing cap (44) are threaded with fastening bolts (45). One end of the fastening bolts (45) passes through the sealing cap (44) and is threadedly fastened to the inner wall of the injection frame (43).