OFFSHORE WIND TURBINE SYSTEM AND OFFSHORE PLATFORM
20240191696 ยท 2024-06-13
Inventors
Cpc classification
F03D13/25
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B63B2035/4433
PERFORMING OPERATIONS; TRANSPORTING
F05B2240/95
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F03D13/256
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B63B35/44
PERFORMING OPERATIONS; TRANSPORTING
F05B2240/93
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B63B2035/446
PERFORMING OPERATIONS; TRANSPORTING
Y02E10/72
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
International classification
F03D13/25
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
An offshore platform with a wind turbine is provided including three buoyancy modules arranged in a triangular configuration in corners of an equilateral triangle, in the center of which the tower support for the tower of the wind turbine is located. The tower support is fixed in a frame including three radial braces, each of the radial braces rigidly connecting the tower support with one of the three buoyancy modules. The radial braces are inclined upwards from the tower support towards the buoyancy modules.
Claims
1-10. (canceled)
11. An offshore wind turbine system comprising a wind turbine in combination with a floating platform, the platform comprising a tower support that carries a tower of the wind turbine, the tower carrying a wind rotor: wherein the platform comprises three buoyancy modules providing buoyancy to the platform when in water, the three buoyancy modules being arranged in an triangular configuration in corners of an equilateral triangle, in the center of which the tower support is located: wherein the tower support includes a centerline coinciding with a centerline of the tower and being located in the center of the triangle: wherein the tower support is fixed in a frame includes three radial braces, each of the radial braces rigidly connecting the tower support with one of the three buoyancy modules: wherein each radial brace has a brace centerline, the brace centerline having an angle ? with the tower support centerline; and that the radial braces are inclined upwards from the tower support towards the buoyancy modules, wherein the angle ? is in the range of 80? to 87? and wherein the buoyancy modules have a height H, and wherein the radial braces are connected to the buoyancy modules at a position between 0.4 and 0.6 of the height H, wherein the buoyancy modules comprises buoyancy members such as buoyancy tanks, which are interconnected by connecting rods to the rigid frame, wherein the connecting rods extend through the buoyancy members and fasten the radial braces to the buoyancy modules, wherein the level of the connecting rods under normal conditions is at the water surface, and wherein the system in water is dimensioned for floating at a level in the water where at least 80% of the radial braces are under water for contributing to the buoyancy.
12. The system according to claim 11, wherein the frame comprises three lateral braces, each of which interconnect neighboring radial braces for additional stabilization, the three lateral braces arranged in a planar configuration perpendicular to the tower support centerline.
13. The system according to claim 12, wherein the frame comprises three diagonal braces, each of which extends from the support column and to a corresponding one of the three radial braces.
14. The system according to claim 13, wherein the three diagonal braces are connected to a top part of the tower support structure and the three radial braces are connected to a bottom part of the tower support structure.
15. The system according to claim 11, wherein the platform with the buoyancy modules and the frame when in water is dimensioned for reaching downwards into water to a depth of no more than 8 m for a wind turbine having a weight of 2,000,000 kg.
16. An offshore platform for a wind turbine that comprises a tower with a rotor; wherein the offshore platform comprises: three buoyancy modules providing buoyancy to the platform when in water, the three buoyancy modules being arranged in an triangular configuration in corners of an equilateral triangle, in the center of which a tower support is located for carrying the tower; wherein the tower support includes a centerline coinciding with a centerline of the tower when mounted on the platform and being located in the center of the triangle; wherein the tower support is fixed in a frame comprising three radial braces, each of the radial braces rigidly connecting the tower support with one of the three buoyancy modules; wherein each radial brace has a brace centerline, the brace centerline having an angle ? with the tower support centerline; and the radial braces being inclined upwards from the tower support towards the buoyancy modules, wherein the angle ? is in the range of 80? to 87? and wherein the buoyancy modules have a height H, and wherein the radial braces are connected to the buoyancy modules at a position between 0.4 and 0.6 of H; wherein the buoyancy modules include buoyancy members such as buoyancy tanks, which are interconnected by connecting rods to the rigid frame, wherein the connecting rods extend through the buoyancy members and fasten the radial braces to the buoyancy modules, wherein the level of the connecting rods under normal conditions is at the water surface; and wherein the system in water is dimensioned for floating at a level in the water where at least 80% of the radial braces are under water for contributing to the buoyancy.
17. The offshore platform according to claim 16, wherein the frame comprises three lateral braces, each of which interconnect neighboring radial braces for additional stabilization, the three lateral braces being arranged in a plane perpendicular to the tower support centerline: wherein the frame comprises three diagonal braces, each which extends from the support column and a corresponding one of the three radial braces, wherein the three diagonal braces are connected to a top part of the tower support structure and the three radial braces are connected to a bottom part of the tower support structure: wherein the tower support is a tower support column.
Description
BRIEF DESCRIPTION
[0022] Some of the embodiments will be described in detail, with references to the following Figures, wherein like designations denote like members, wherein:
[0023]
[0024]
[0025]
[0026]
[0027]
[0028]
[0029]
[0030]
[0031]
DETAILED DESCRIPTION
[0032]
[0033] In
[0034] In
[0035] When having regards to offshore platforms for wind turbines, the situation is more complex, as large wave forces typically go along with wind 107, which in the simple examples of
[0036] The construction of a wind turbine platform has further aspects to take into regard. One of the aspects is that the rigid frame 104, 104 is desired to be provided to a large extent under the water surface, as it contributes with its buoyancy to the total buoyancy. On the other hand, a frame 104 that extends deeply under water is also not desired, as the assembly in the harbor gives limitations to the depth with which the platform 101 is allowed to extend.
[0037] In order to take all these aspects into account, a platform has been developed, which is presented in
[0038]
[0039] The floating platform 1 comprises a tower support 14 in the form of a tower support column that is supporting the tower 8 of a wind turbine wind turbine. A working platform 20 is typically attached to the tower 8.
[0040]
[0041] In comparison to the frame in
[0042] The radial braces 13 are not arranged in a planar configuration, in contrast to the conventional art. Instead, the radial braces 13 are inclined with respect to the water line 6, namely by an angle ?=(90???), where the angle ? is measured between a brace centerline 16 of the radial brace 13 and the centerline 15 of the support column 14, which is also the centerline of the tower 8. Due to this inclination, the radial braces 13 are almost entirely submerged in water, although, the connection to the buoyancy modules, which is by the connecting rod 10 in at the surface of the water or potentially slightly above the waterline.
[0043] A typical value for the angle ? is in the range of 80-87?, implying that the angle ?=(90???) is in the range of 3-10?, which would be the angle between the radial brace with the water surface in calm water under non-windy conditions. In general, it can be said that the smaller ? and the larger ?, the more counter-momentum towards a vertical orientation of the tower is given. However, on the other hand, a smaller angle ? also results in increased draft, which can be critical when mounting the wind turbine on the platform in a harbor, where often only a draft of 8 m can be accepted.
[0044] In the shown embodiment, the buoyancy member 2 of the buoyancy module 2 has a height H, and the connecting rod 10 is located at H/2, when measured from the heave plate 9. The dimensioning of the platform 1 is made such that the platform, when carrying the wind turbine, is submerged to a depth such that the connecting rod 10 is at the level of the water surface 6. This assures that the radial braces 13 are substantially under the water surface 6 in non-windy conditions and, thus, assist in the buoyancy of the entire platform 1. The radial braces 13 are connected to the bottom part of the tower support 14.
[0045] The frame 4 of the floating platform 1 is further stabilized by comprising three lateral braces 17, each of which interconnect neighboring radial braces 13. Additionally, the frame 4 comprises three diagonal braces 19, each which extends between the top part of the support column 14 and a corresponding one of the three radial braces 13.
[0046]
[0047] The situation in
[0048] Although the present invention has been disclosed in the form of embodiments and variations thereon, it will be understood that numerous additional modifications and variations could be made thereto without departing from the scope of the invention.
[0049] For the sake of clarity, it is to be understood that the use of a or an throughout this application does not exclude a plurality, and comprising does not exclude other steps or elements.