Hot-dip galvanizing mounting bracket in wind power generation cabin

By designing a hot-dip zinc mounting bracket in the wind power silo, the side reinforcement ribs are connected to the top reinforcement ribs to form a support frame structure, which solves the problem of insufficient structural strength of the wind power silo and significantly improves the stability and safety of the structure.

CN222863534UActive Publication Date: 2025-05-13WUXI VKO MASCH & ELECTRONIC MFG CO LTD
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Patent Information

Application Number
CN202421964035.2
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-08-14
Publication Date
2025-05-13
Estimated Expiration
2034-08-14

AI Technical Summary

Technical Problem

The structural strength of the wind power silo is insufficient, and the existing reinforcement ribs cannot form continuous and cover-based internal braces at the section of the silo.

Method used

A hot-dip zinc mounting bracket is designed to connect the side reinforcement ribs in the wind power silo and the top reinforcement ribs through the mounting frame to form a supporting frame structure.

Benefits of technology

By connecting the side reinforcement ribs and the top reinforcement ribs, an internal brace with more continuity and coverage is formed, which strengthens the structural strength of the wind power silo and improves stability and safety.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a hot-dip galvanizing mounting bracket in a wind power generation cabin, which comprises a side reinforcing rib and a top reinforcing rib, and the side reinforcing rib and the top reinforcing rib are respectively positioned on the inner side surface and the inner top surface of the wind power generation cabin; the device further comprises a mounting frame. The side reinforcing ribs and the top reinforcing ribs are connected through the mounting frame at the position close to the inner top of the wind power generation bin, and a supporting frame structure internally supporting the wind power generation bin is formed. The mounting frame comprises a vertical mounting section and a transverse mounting section located at the top of the vertical mounting section, the vertical mounting section is correspondingly connected with the side reinforcing ribs, and the transverse mounting section is correspondingly connected with the top reinforcing ribs. According to the utility model, the side reinforcing ribs and the top reinforcing ribs in the wind power generation cabin are connected through the mounting frame to form a supporting frame structure for internally supporting the cabin body, so that the structural strength of the wind power generation cabin is effectively improved.
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Description

Technical Field

[0001] The utility model belongs to the technical field of wind power generation equipment accessory structures, in particular to a hot-dip galvanizing installation bracket in a wind power generation warehouse. Background Art

[0002] As a renewable energy source, wind power generation has developed rapidly in China in recent years. Affected by wind power, in order to increase the structural strength of the wind power generation warehouse on the tower, reinforcement ribs are generally welded inside to ensure the stability and safety of the warehouse structure. The position of the reinforcement ribs is mainly on the inner side wall and inner top wall of the warehouse. The reinforcement ribs on the inner side and the reinforcement ribs on the inner top are independent of each other, and they support the side and top of the warehouse alone. It is impossible to form a continuous and covering internal support to strengthen the protection in the cross section of the warehouse. The structural strength of the warehouse needs to be further improved. Summary of the invention

[0003] Purpose of the invention: In order to overcome the deficiencies in the prior art, the utility model provides a hot-dip galvanized mounting bracket in a wind power generation bin, which connects the side reinforcement ribs and the top reinforcement ribs in the wind power generation bin through the mounting bracket to form a supporting frame structure for supporting the bin body, thereby effectively improving the structural strength of the wind power generation bin.

[0004] Technical solution: To achieve the above purpose, the utility model provides a hot-dip galvanized mounting bracket in a wind power generation bin, comprising side reinforcing ribs and top reinforcing ribs, wherein the side reinforcing ribs and top reinforcing ribs are respectively located on the inner side surface and the inner top surface of the wind power generation bin;

[0005] It also includes a mounting frame; the mounting frame connects the side reinforcement ribs with the top reinforcement ribs at a position close to the inner top of the wind power generation cabin to form a supporting frame structure that supports the wind power generation cabin internally.

[0006] Furthermore, the mounting frame includes a vertical mounting section and a transverse mounting section located on the top of the vertical mounting section, the vertical mounting section is correspondingly connected to the side reinforcing ribs, and the transverse mounting section is correspondingly connected to the top reinforcing ribs.

[0007] Furthermore, the cross-section of the vertical installation section is a long groove-shaped structure adapted to be clamped on the side reinforcing rib.

[0008] Furthermore, it comprises a first fastener movably connected to the vertical installation section, and the vertical installation section clamped on the side reinforcing rib is fixed by the first fastener.

[0009] Furthermore, the side reinforcing rib is provided with at least one positioning protrusion corresponding to the positioning hole on the vertical mounting section.

[0010] Furthermore, the cross-sectional shape of the transverse mounting section is a short groove-shaped structure with an opening facing opposite to the long groove-shaped structure of the cross-sectional shape of the vertical mounting section; the end of the top reinforcement rib has a cylindrical embedded end, the notch of the transverse mounting section has a flange, the inner end of the flange is a circular arc end edge structure, and the cylindrical embedded end is embedded in the transverse mounting section and is radially limited by the circular arc end edge structure.

[0011] Furthermore, it comprises a second fastener movably connected to the transverse mounting section, and the top reinforcing rib passes through the flange and is fixed to the transverse mounting section via the second fastener.

[0012] Furthermore, the mounting frame is plated with a zinc alloy coating having adhesion.

[0013] Beneficial effects: The utility model connects the side reinforcement ribs and the top reinforcement ribs in the wind power generation bin through the installation frame to form a support frame structure for the internal support of the bin body, so that the independent side reinforcement ribs are connected with the top reinforcement ribs, thereby forming a continuous and more comprehensive internal support reinforcement protection in the cross section of the bin body, effectively improving the structural strength of the wind power generation bin and improving stability and safety. BRIEF DESCRIPTION OF THE DRAWINGS

[0014] Figure 1 The structure of the mounting frame of the utility model is shown in FIG. Figure 1 ;

[0015] Figure 2 The structure of the mounting frame of the utility model is shown in FIG. Figure 2 ;

[0016] Figure 3 It is a structural schematic diagram of a specific application embodiment of the mounting frame of the utility model. DETAILED DESCRIPTION

[0017] The utility model is further described below in conjunction with the accompanying drawings.

[0018] like Figure 1 , Figure 2 as well as Figure 3 As shown, a hot-dip galvanized mounting bracket in a wind power generation bin includes a side reinforcement rib 1 and a top reinforcement rib 2, which are respectively located on the inner side and inner top of the wind power generation bin; and also includes a mounting frame 3; the mounting frame 3 connects the side reinforcement rib 1 and the top reinforcement rib 2 at a position close to the inner top of the wind power generation bin, forming a supporting frame structure for supporting the wind power generation bin. The utility model connects the side reinforcement rib 1 and the top reinforcement rib 2 in the wind power generation bin through the mounting frame 3 to form a supporting frame structure for supporting the bin body, so that the mutually independent side reinforcement ribs 1 and the top reinforcement rib 2 are connected, thereby forming a continuous and more covered inner support reinforcement protection in the cross section of the bin body, effectively improving the structural strength of the wind power generation bin, and improving stability and safety.

[0019] like Figure 2 and Figure 3 As shown, the mounting frame 3 includes a vertical mounting section 3a and a horizontal mounting section 3b located at the top of the vertical mounting section 3a. The vertical mounting section 3a is connected to the side reinforcing rib 1, and the horizontal mounting section 3b is connected to the top reinforcing rib 2. The cross section of the vertical mounting section 3a is a long groove structure adapted to be clamped on the side reinforcing rib 1, so as to form a partial clamping state for the side reinforcing rib 1, and the installation is more stable. In order to further fix, the utility model includes a first fastener 4 movably connected to the vertical mounting section 3a, and the vertical mounting section 3a clamped on the side reinforcing rib 1 is fixed by the first fastener 4, and the first fastener 4 is preferably a detachable mounting bolt.

[0020] At the same time, in order to facilitate the installation of the mounting frame 3 and the side reinforcement rib 1, the side reinforcement rib 1 of the utility model is provided with at least one positioning protrusion 6 corresponding to the positioning hole 30 on the vertical mounting section 3a. The positioning protrusion 6 cooperates with the positioning hole 30 to play a positioning role, thereby facilitating the installation of the vertical mounting section 3a of the mounting frame 3 on the side reinforcement rib 1, and the assembly efficiency is higher.

[0021] like Figure 1 and Figure 3 As shown, the cross-sectional shape of the transverse mounting section 3b is a short slot-shaped structure with an opening facing opposite to the long slot-shaped structure of the cross-sectional shape of the vertical mounting section 3a; the end of the top reinforcement rib 2 has a cylindrical embedded end 20, and the notch of the transverse mounting section 3b has a flange 31, and the inner end of the flange 31 is an arc-shaped end edge structure 32, and the cylindrical embedded end 20 is embedded in the transverse mounting section 3b and radially limited by the arc-shaped end edge structure 32, and the support effect on the top reinforcement rib 2 is achieved through the radial limitation. When the top reinforcement rib 2 is subsequently connected and fixed to the transverse mounting section 3b, the utility model includes a second fastener 5 movably connected to the transverse mounting section 3b, and the top reinforcement rib 2 is fixed to the transverse mounting section 3b through the second fastener 5 passing through the flange 31, and the second fastener 5 is preferably installed with a bolt.

[0022] The mounting frame 3 is coated with a zinc alloy coating having good adhesion, which provides a highly efficient and durable anti-corrosion protective layer for the entire mounting frame 3, significantly prolonging its service life and reducing maintenance costs.

[0023] The above is only a preferred embodiment of the present invention. It should be pointed out that for ordinary technicians in this technical field, several improvements and modifications can be made without departing from the principle of the present invention. These improvements and modifications should also be regarded as the protection scope of the present invention.

Claims

1. A hot-dip galvanized mounting bracket in a wind power generation chamber, comprising a side reinforcing rib (1) and a top reinforcing rib (2), wherein the side reinforcing rib (1) and the top reinforcing rib (2) are respectively located on the inner side surface and the inner top surface of the wind power generation chamber; Features: It also comprises a mounting frame (3); the mounting frame (3) connects the side reinforcing ribs (1) and the top reinforcing ribs (2) at a position close to the inner top of the wind power generation chamber, thereby forming a supporting frame structure for supporting the wind power generation chamber.

2. The hot-dip galvanizing mounting bracket in a wind power generation chamber according to claim 1, characterized in that: The mounting frame (3) comprises a vertical mounting section (3a) and a transverse mounting section (3b) located at the top of the vertical mounting section (3a), the vertical mounting section (3a) being connected to the side reinforcing ribs (1) correspondingly, and the transverse mounting section (3b) being connected to the top reinforcing ribs (2) correspondingly.

3. The hot-dip galvanizing mounting bracket in a wind power generation chamber according to claim 2, characterized in that: The cross section of the vertical installation section (3a) is a long groove-shaped structure adapted to be clamped on the side reinforcing rib (1).

4. The hot-dip galvanizing mounting bracket in a wind power generation chamber according to claim 3, characterized in that: It comprises a first fastener (4) movably connected to the vertical installation section (3a), and the vertical installation section (3a) clamped on the side reinforcing rib (1) is fixed by the first fastener (4).

5. The hot-dip galvanizing mounting bracket in a wind power generation chamber according to claim 3, characterized in that: The side reinforcing rib (1) is provided with at least one positioning protrusion (6) corresponding to the positioning hole (30) on the vertical installation section (3a).

6. The hot-dip galvanizing mounting bracket in a wind power generation chamber according to claim 3, characterized in that: The cross-sectional shape of the transverse mounting section (3b) is a short slot-shaped structure with an opening facing in the opposite direction to the long slot-shaped structure of the cross-sectional shape of the vertical mounting section (3a); the end of the top reinforcing rib (2) has a columnar embedded end (20); the notch of the transverse mounting section (3b) has a flange (31); the inner end of the flange (31) is a circular arc end edge structure (32); the columnar embedded end (20) is embedded in the transverse mounting section (3b) and is radially limited by the circular arc end edge structure (32).

7. A hot-dip galvanizing mounting bracket in a wind power generation chamber according to claim 6, characterized in that: It comprises a second fastener (5) movably connected to the transverse mounting section (3b), and the top reinforcing rib (2) penetrates the flange (31) and is fixed to the transverse mounting section (3b) via the second fastener (5).

8. A hot-dip galvanizing mounting bracket in a wind power generation chamber according to any one of claims 1 to 7, characterized in that: The mounting frame (3) is plated with a zinc alloy coating having adhesion.