The present invention relates to an offshore wind power foundation, and in particular, to an offshore floating-type wind power combined sub-submersible platform foundation.
Offshore wind power develops towards high power and gradual deepening in the future. Floating-type wind power will gradually become a mainstream of the offshore wind power. A semi-submersible manner adopted is a most reliable foundation form of the floating-type wind power. However, with an increasingly high power of a wind generator, a semi-submersible size needs to be continuously increased to resist a wind tilting moment. As a result, an extremely high requirement is put forward on a final construction site, either with a large dock or a heavy-duty track that matches a semi-submersible barge for launching. As the large dock and the heavy-duty rail are both scarce resources, large-scale and quick development of the floating-type wind power is greatly limited.
The present invention aims to solve the technical problem about how to implement manufacturing and launching of a semi-submersible platform without a large dock and a launching way.
To solve the technical problem, an offshore floating-type wind power combined semi-submersible platform foundation provided in the present invention includes at least three stand columns. The stand columns are enclosed into a polygonal structure. Adjacent stand columns are connected by using an upper support and a lower support. The stand column includes an upper column body and a lower column body. The upper column body and the lower column body are coaxially disposed. A support block is disposed on an upper part of the upper column body. The upper support is put on the support block. A lower support connection part is disposed on a lower part of the upper column body, and the lower support connection part is connected to the lower support.
According to the technical solution, a bump is disposed at a front end of the support block, and the upper support is put on the bump.
According to the technical solution, a front end of the lower support connection part exceeds an outer edge of the lower column body. A support plate is disposed on a lower side at the front end of the lower support connection part. The support plate is fastened to the front end of the lower support connection part through a ring-shaped buckle, and the lower support is put on the support plate.
According to the technical solution, the stand columns are enclosed into a triangular or quadrangular structure.
According to the technical solution, the lower support connection part is disposed on an upper top surface of the lower column body.
According to the technical solution, the upper support and the lower support are both strip-shaped beams.
According to the technical solution, a hollow-out hole is provided in the support plate, and the hollow-out hole is provided at a joint of the lower support connection part and the lower support.
According to an installation method of an offshore floating-type wind power combined semi-submersible platform foundation disclosed in the present invention, construction of an upper support, a lower support and a stand column are accomplished on a production site. Two support blocks are welded on a same horizontal line on the upper part of the stand column, and an included angle of 60 degrees is formed between the support blocks. Two lower support connection parts are welded on a same horizontal line on the lower part of the stand column, and an included angle between the lower support connection parts is consistent with the included angle between the support blocks. The support blocks correspond to the lower support connection parts from top to bottom. A horizontal support plate is fixedly disposed at the front end of the lower support connection part through a ring-shaped buckle. The constructed stand column, upper support and lower support are transported by a transport ship to a wharf near a wind farm. On the wharf, two stand columns are put into water through a crane or a crawler crane. By controlling a relative distance between the stand columns, the two ends of the lower support are put on support plates of the two stand columns and are fastened to the lower support connection parts by welding. The two ends of the upper support are put on the corresponding support blocks and are fastened with the stand columns by welding. By repeating the steps, the stand columns form a polygonal structure.
According to the method, when there are even stand columns, the stand columns are first connected in pairs, and then, the connected stand columns are connected through the upper support and the lower support.
According to the solution, a concept of a combined semi-submersible platform is proposed. Based on a combined characteristic, a medium-sized module only needs to be constructed on the production site while a dock, a slipway and a wharf are not needed. In addition, manufacturing can be further implemented in a region with a low manufacturing cost. After being manufactured on the production site, a plurality of to-be-combined parts can be transported by a common transport ship to a wharf near an offshore wind farm. In this way, the wharf on the site does not need a dock/slipway, and semi-submersible combination can be accomplished by a crane with common crane capacity. With the implementation of the solution, it is possible to construct the offshore sub-submersible floating foundation for a high-power wind generator on a large scale.
Refer to
The stand column 1 includes an upper column body 11 and a lower column body 12. A cross section of the upper column body may be circular or polygonal, and a cross section of the lower column body may be circular or polygonal. An area of the cross section of the upper column body is smaller than an area of the cross section of the lower column body. The upper column body 11 is fastened to the lower column body 12 by welding, and the upper column body 11 and the lower column body 12 are coaxially disposed. The upper column body 11 and the lower column body 12 are preferably cylindrical structures.
The upper support 3 is a strip-shaped structural beam, and a cross section of the upper support is circular or polygonal. To facilitate construction, the upper support 3 is commonly a strip-shaped structural beam with a rectangular cross section.
The lower support 2 is a strip-shaped structural beam, and a cross section of the lower support is circular or polygonal. To facilitate construction, the lower support 2 is commonly a strip-shaped structural beam with a rectangular cross section. Before combination, the lower support 2 needs to connect and fasten to the stand column 1 through a lower support connection part 21, a ring-shaped buckle 22, and a support plate 23. The section of the lower support connection part 21 matches the section of the lower support 2. The lower support connection part 21 is welded at a joint of the upper column 11 and the lower column body 12 in advance. After the combination, each stand column 1 is connected to the two lower supports 2, and two lower support connection parts 21 are welded on the stand column 1.
When the semi-submersible platform foundation is of the four-column type, an angle between the two lower support connection parts 21 that are welded with the joint of the upper column body 11 and the lower column body 12 is 90 degrees. When the semi-submersible platform foundation is of the three-column type, an angle between the two lower support connection parts 21 that are welded with the joint of the upper column body 11 and the lower column body 12 is 60 degrees.
A support block 4 is welded on the upper part of the upper column body 11, and a bump 41 is disposed at the front end of the support block 4. The support block 4 is configured to temporarily put the upper support 3, and is specifically used for welding between the upper support 3 and the upper column body 11. A portion that is of the bump 41 and that is configured to support a lower side surface of the end part of the upper support is slightly higher than a surface of the support block 4. Near a side surface of the upper column body 11, there is sufficient space for exposing a contact beam between the upper support 3 and the side surface of the upper column body 11 to facilitate welding.
The lower support connection part 21 is pre-welded at the joint of the lower part of the upper column body 11 and the lower column body 12. The specification of the lower support connection part 21 matches that of the lower support 2. The front end of the lower support connection part 21 extends the side of the lower column body 12. A ring-shaped buckle 22 is disposed at the front end of the lower support connection part 21. The support plate 23 is fastened to the lower side of the lower support connection part 21 through the ring-shaped buckle 22. The support plate partially exceeds the lower support connection part 21 for supporting the lower support 2. A hollow-out hole 24 is provided in the support plate 23, and the hollow-out hole 24 is provided, at a joint of the lower support connection part 21 and the lower support 2, of a workpiece for welding.
An implementation method of the offshore floating-type wind power combined semi-submersible platform foundation that is of a three-column-body or four-column-body structure is as follows:
Number | Date | Country | Kind |
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202120586901.9 | Mar 2021 | CN | national |
Filing Document | Filing Date | Country | Kind |
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PCT/CN2022/081659 | 3/18/2022 | WO |