Root sections for wind turbine blades
The root section with a coupling flange and fixed support elements addresses the challenges of storing and transporting large blades by ensuring proper orientation and reducing damage, using standard surfaces for support.
Patent Information
- Application Number
- JP2021183806
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2020-12-03
- Filing Date
- 2021-11-11
- Publication Date
- 2025-12-25
- Estimated Expiration
- 2041-11-11
AI Technical Summary
Storing and transporting large, modern wind turbine blades is challenging due to their size and weight, and existing support cradles are expensive and require modifications for different blade types, with precise angular orientation difficult to achieve, risking damage during shipping and storage.
A root section for wind turbine blades featuring a coupling flange with fixedly attached support elements that define a support plane, allowing the blade to rest on a flat surface in a predefined orientation, eliminating the need for specialized cradles and ensuring proper tip support.
Enables efficient and cost-effective storage and transport of wind turbine blades by maintaining the blade's orientation, reducing the risk of damage and simplifying handling with standard surfaces, without the need for blade-specific cradles.
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Abstract
Description
[Technical Field]
[0001] The present disclosure relates to a root section for a wind turbine blade, a wind turbine blade comprising such a root section, and a method for positioning, transporting and storing said wind turbine blade. [Background technology]
[0002] Modern wind turbines are commonly used to supply electricity to the power grid. This type of wind turbine generally comprises a tower and a rotor disposed on the tower. The rotor, which typically comprises a hub and a number of blades, rotates under the influence of wind on the blades. The rotation typically generates torque that is transmitted through the rotor shaft to a generator, either directly or using a gearbox. In this way, the generator generates electricity that can be supplied to the power grid.
[0003] Storing and transporting wind turbine blades has become an increasingly difficult challenge due to the general trend toward increasing the size of modern wind turbines and the corresponding increase in blade size and weight. Modern wind turbine blades can be over 70 or 80 meters long, or even over 100 meters long. Before installation and after manufacturing, wind turbine blades may need to be temporarily stored and further transported to the installation site. Once the blades are transported to the installation site or to a wind park, which may be offshore, the wind turbine blades may be hoisted toward the rotor hub.
[0004] In the art, blade-specific support cradles can be provided in each transport and / or storage means, which are adapted to the contour of the blade (at the root and / or tip) and are intended to receive the blade in a predefined orientation. However, blade-specific support cradles are expensive and require extensive modifications of the respective transport and / or storage means if different types of turbine blades are to be transported or stored.
[0005] Additionally, the art uses circular arc support cradles that can accommodate blades at virtually any angular orientation, but the blade root must be positioned within the cradle at a fairly precise given orientation to allow the blade to have large curvatures, including twist and sweep, and to accurately support the tip portion of the blade.
[0006] Because the root portion of a turbine blade typically has a substantially circular shape, it is difficult to precisely position the root portion of the turbine blade in a predefined angular orientation to achieve a desired angular orientation of the tip portion, especially when tight tolerances must be set for orienting the tip portion to avoid damage during shipping and / or storage.
[0007] EP 3543524 A1 discloses a root end element for attachment to the root end of a wind turbine, the root end element being configured to support the root end of a wind turbine blade. The present disclosure provides a root section for a wind turbine blade, a turbine blade, and a method for transporting and / or storing a wind turbine blade that at least partially addresses the above-mentioned disadvantages. Summary of the Invention
[0008] In a first aspect of the present disclosure, a root portion for a wind turbine blade comprises a coupling flange configured to couple the root portion to a hub of a wind turbine, and at least one support element fixedly attached to the coupling flange, the at least one support element defining a support plane for contacting a transport and / or storage surface.
[0009] The term support element as used throughout this disclosure should be considered as any structure that contributes to the formation of a support plane due to its material properties, structure, or shape. The transport and / or storage surface is typically provided on a transport and / or storage means that is different from the root section and the wind turbine blade. The transport and / or storage surface as used throughout this disclosure can be any surface, in particular a flat surface, that supports the root section and / or the wind turbine blade during transport and storage when it comes into contact with the support plane defined by at least one support element.
[0010] Because the support element is fixedly attached to the connecting flange, the support plane is fixed relative to the root of the blade. Thus, the blade may be rested or positioned on the support element, fixture, or floor or ground, and the support plane ensures that the resting or positioning occurs at a given orientation of the blade, thereby ensuring that the tip portion can also be properly supported as required.
[0011] In another aspect, a wind turbine blade comprises a blade root having a coupling flange configured to couple the root to a hub of a wind turbine, the coupling flange comprising one or more support elements defining a substantially flat support area for contacting a transportation and / or storage surface.
[0012] Thus, according to this aspect, a flat support area is incorporated into the wind turbine blade, whereby the blade cam simply rests on the floor or ground area with the blade in a known orientation.
[0013] In yet a further aspect, a method for positioning a wind turbine blade is provided. The method includes providing a wind turbine blade with a blade root mounting flange defining an annular mounting surface for mounting the wind turbine blade to a hub of a wind turbine, the blade root mounting flange having one or more portions that protrude beyond the annular mounting surface. The method includes placing the wind turbine blade on a storage surface so that it is supported by the portions of the mounting flange that protrude beyond the annular mounting flange.
[0014] The terms coupling flange and mounting flange are used interchangeably herein. The terms coupling flange or mounting flange are used to denote a portion of the root section of a wind turbine blade that is used for attachment to another component of the wind turbine, in particular the wind turbine hub or a pitch bearing of the wind turbine hub.
[0015] Aspects of the present disclosure will now be described in detail with reference to the accompanying drawings. [Brief explanation of the drawings]
[0016] [Figure 1] FIG. 1 is a schematic diagram illustrating a perspective view of an example wind turbine. [Figure 2] FIG. 2 shows a simplified internal view of an example nacelle of the wind turbine of FIG. 1. [Figure 3] 1 is a schematic diagram of an example of a root portion of a wind turbine blade; FIG. [Figure 4A] 10A-10C show schematic diagrams of further examples of root portions with different support elements. [Figure 4B] 10A-10C show schematic diagrams of further examples of root portions with different support elements. [Figure 4C] 10A-10C show schematic diagrams of further examples of root portions with different support elements. [Figure 4D] 10A-10C show schematic diagrams of further examples of root portions with different support elements. [Figure 5]1 is a schematic diagram of an example wind turbine blade; FIG. [Figure 6] 1 shows a schematic flow diagram of an example of a method for positioning a wind turbine blade; DETAILED DESCRIPTION OF THE INVENTION
[0017] Reference will now be made in detail to the embodiments of the invention, one or more examples of which are illustrated in the drawings. Each example is presented by way of explanation of the invention, and not limitation of the invention. Indeed, it will be apparent to those skilled in the art that various modifications and variations can be made in the present invention without departing from the scope or spirit of the invention. For example, features illustrated or described as part of one embodiment can be used in another embodiment to yield yet a further embodiment. Therefore, it is intended that the present invention cover such modifications and variations as come within the scope of the appended claims and their equivalents.
[0018] FIG. 1 illustrates a perspective view of an example wind turbine 160. As illustrated, the wind turbine 160 includes a tower 170 extending from a support surface 150, a nacelle 161 mounted to the tower 170, and a rotor 115 coupled to the nacelle 161. The rotor 115 includes a rotatable hub 110 and at least one rotor blade 120 coupled to and extending outward from the hub 110. For example, in the illustrated embodiment, the rotor 115 includes three rotor blades 120. However, in alternative embodiments, the rotor 115 may include more or fewer than three rotor blades 120. Each rotor blade 120 may be spaced about the hub 110 to facilitate rotation of the rotor 115 so that kinetic energy from the wind can be converted into usable mechanical energy and, subsequently, electrical energy. For example, the hub 110 may be rotatably coupled to a generator 162 ( FIG. 2 ) positioned within the nacelle 161 to enable the generation of electrical energy.
[0019] 2 shows a simplified interior view of an example nacelle 161 of the wind turbine 160 of FIG. 1. As shown, a generator 162 may be disposed within the nacelle 161. In general, the generator 162 may be coupled to the rotor 115 of the wind turbine 160 to generate electrical power from rotational energy generated by the rotor 115. For example, the rotor 115 may include a main rotor shaft 163 coupled to the hub 110 for rotation therewith. The generator 162 may then be coupled to the rotor shaft 163 such that rotation of the rotor shaft 163 drives the generator 162. For example, in the illustrated embodiment, the generator 162 includes a generator shaft 166 rotatably coupled to the rotor shaft 163 through a gearbox 164.
[0020] It should be understood that the rotor shaft 163, gearbox 164, and generator 162 may generally be supported within the nacelle 161 by a support frame or bedplate 165 positioned at the top of the wind turbine tower 170.
[0021] The nacelle 161 is rotatably coupled to the tower 170 by a yaw system 20 such that the nacelle 161 can rotate about a yaw axis YA. The yaw system 20 comprises a yaw bearing having two bearing components configured to rotate relative to one another. The tower 170 is coupled to one of the bearing components, and a bedplate or support frame 165 of the nacelle 161 is coupled to the other bearing component. The yaw system 20 comprises a ring gear 21, a plurality of yaw drives 22 having motors 23, a gearbox 24, and a pinion 25 for meshing with the ring gear 21 to rotate one of the bearing components relative to the other.
[0022] The blades 120 are coupled to the hub 110 via pitch bearings 100 between the blades 120 and the hub 110. The pitch bearings 100 include an inner ring and an outer ring. The wind turbine blades can be mounted on either the inner bearing ring or the outer bearing ring, with the hub connected to the other. The blades 120 can rotate relative to the hub 110 when the pitch system 107 is activated. Thus, the inner bearing ring can rotate relative to the outer bearing ring. The pitch system 107 of FIG. 2 includes a pinion 108 that meshes with an annular gear 109 provided on the inner bearing ring to rotate the wind turbine blades about the pitch axis PA.
[0023] 3 shows an example of a root portion 10 for a wind turbine blade 120, comprising a connecting flange 11. The connecting flange 11 is configured to connect the root portion to a hub 110 of a wind turbine 160 (e.g., via a pitch bearing). The connecting flange 11 can carry a number of fasteners that can be adapted to mate with corresponding fasteners, such as holes or the like, in the hub 110 of the wind turbine 160. The fasteners can be, for example, pins, bolts, or studs. These fasteners can be introduced into corresponding holes in, inter alia, a pitch bearing ring. A separate pitch bearing can be attached to the hub.
[0024] The connecting flange 11 may be a circular flange. Additionally, the connecting flange 11 may be made of two symmetrical halves welded together.
[0025] At least one support element 13a, 13b defines a support plane 16a, 16b for contacting the transport and / or storage surface 200. The support plane 16a, 16b of the support element 13a, 13b may be defined by a flat surface provided on the support element 13. If the support plane 16a is substantially flat, the root portion of the wind turbine blade can be positioned, for example, on the floor or ground, without the need for any particular cradle or any specially prepared storage or transport tool.
[0026] As shown in FIG. 3, the root portion 10 may have an outer periphery and at least one support element may extend radially from said outer periphery of the connecting flange.
[0027] Furthermore, the root portion 10 may comprise at least one fastening element 12, which includes a transport and / or handling means 18. The at least one fastening element 12 extends radially from the outer periphery of the connecting flange 11.
[0028] The root portion 10 in the example of Figure 3 further includes two support elements 13a, 13b arranged diametrically opposite each other around the periphery of the connecting flange 11. Each support element 13 is fixedly attached to the connecting flange 11. Other examples may include different support elements 13 and their arrangements, as shown, for example, in Figures 4A-4D. The support elements 13 may, in some examples, be evenly distributed around the periphery of the connecting flange 11 and may further include at least one transport and / or handling mechanism 14.
[0029] The transport and / or handling mechanism 14, 18 of at least one fastening element 12 and / or support element 16a, 16b may include at least one of a through-hole, an undercut, a rail, a counterpart for a gripping tool, a friction connection means, a threaded hole, and / or a groove. In the illustrated example, the holes 14, 18 can be used for the attachment of a lifting device, for example a lifting device integrated into or attached to a crane. This can make handling and installation of the blade easier.
[0030] The support element 13 may be made from the same material as the connecting flange 11. The material of the support element and the connecting flange may be a metal, such as steel or other metal-based alloy. Furthermore, the support element 13 and the connecting flange 11 may be integrally formed, for example, by casting. In a further embodiment, the connecting flange 11 and the support element may be cut, milled, or otherwise machined from a single piece, for example, a metal-based element. Furthermore, the support element may be attached to the flange portion 11 by welding.
[0031] The support elements 13a, 13b shown in Figure 3 define two support planes 16a, 16b, with the first support plane 16a of each support element 13a contacting the transport and / or storage surface 200. The second support plane 16b is positioned opposite (substantially parallel to) the first support plane and is not currently in use.
[0032] In this example, the support planes 16a, 16b are defined by flat surfaces provided on the support elements 13a, 13b. Other examples exist with different support elements 13, at least one of which defines a support plane 16 for contacting the transport and / or storage surface 200. Each of the support elements 13 may be associated with a respective support plane 16. Furthermore, a support plane may be defined by at least two of the different support elements. By defining two or more support planes, particularly at diametrically opposed positions, the blades can be positioned or stored in different orientations. In particular, the blades may be stacked in different orientations.
[0033] The support element 13a may further define an angle 15 of the connecting flange 11 about a central axis 17 of the connecting flange 11 relative to the transport surface and / or storage surface 200 when the support plane 16a is in contact with the respective transport surface and / or storage surface 200.
[0034] 4A-4D show schematically a further example of a wind turbine blade incorporating a root portion 10 and a support element 13. In the embodiment shown in FIG.
[0035] In the example of Figure 4A, a single support element 13 can be incorporated into the connecting flange at the root of the wind turbine blade. The support element 13 in this example defines a substantially flat support plane on which the wind turbine blade can rest. The support plane substantially coincides at one point with the outer periphery of the annular mounting surface 11 of the flange. In other words, the support plane is tangential to the outer periphery of the connecting flange 11.
[0036] 4B shows another example in which the mounting flange, including the support element 13, is symmetrical about a horizontal axis passing through the center of the root when the blade is supported on its support plane 16a. In this particular example, the mounting flange is rotationally symmetrical. The periphery of the mounting flange in this example is hexagonal.
[0037] At least two support planes 16a, 16b are defined by the mounting flanges.
[0038] In the example of Figure 4C, the mounting flange comprises a protrusion 13 that protrudes beyond the annular mounting surface. A substantially triangular shaped support 13 is provided. The root portion 10 of the wind turbine blade may be supported by a support plane 16 that forms a base for the triangular shape.
[0039] As shown in another example in FIG. 4D, the support plane 16 of the support element 13 may be defined by a first support point on a first support element 13a and a second support point provided on a second support element 13b that is different from the first support element.
[0040] 5 shows a wind turbine blade 120 comprising a blade root 10 having a coupling flange configured to couple the root to a hub of a wind turbine. The coupling flange comprises one or more support elements defining a substantially flat support area for contacting a transport and / or storage surface.
[0041] As seen in FIG. 5, the wind turbine blade 120 may include a first support element in a first position and a second support element in a second position diametrically opposite the first position.
[0042] In some examples, the support element may be integrally formed with the connecting flange. In some examples, the blade may further include a plate that partially closes the inside of the wind turbine blade. Such a plate may strengthen and reinforce the blade root portion. The plate may include one or more manholes that allow access to the interior of the blade.
[0043] The blade shell generally defines a leading edge, a trailing edge, a pressure side, and a suction side and may be made of a composite material, such as a glass fiber composite, a carbon fiber composite, or a combination thereof. Additionally, a mounting flange may be attached to the blade shell as part of the resin infusion or injection process. After curing, the composite blade shell is securely attached to the connecting flange. The connecting flange includes the support element 13 described above.
[0044] The blade may comprise multiple segments that may be joined to form a respective wind turbine blade 120. The length of the blade segment 20 may be in the range of 30 m to 150 m, or in the range of 50 m to 120 m, or in the range of 60 m to 110 m.
[0045] 6 shows a flow diagram of a method 2000 for positioning a wind turbine blade 120. The method includes, at block 2100, providing a wind turbine blade including a blade root mounting flange defining an annular mounting surface for mounting the wind turbine blade 120 to a hub of a wind turbine. The blade root mounting flange includes one or more portions that protrude beyond the annular mounting surface.
[0046] As previously mentioned, the blade root mounting flange may be indirectly attached to the hub of the wind turbine through a pitch bearing.
[0047] The method then includes, at block 2200, placing the wind turbine blade 120 on the storage surface 200 so that the blade is supported by the portion of the mounting flange that protrudes beyond the annular mounting flange.
[0048] In some examples, the portion that protrudes beyond the annular mounting surface defines the orientation of the mounting flange 11 relative to the storage surface 200.
[0049] The method may further include providing a tip portion of the wind turbine blade in a tip cradle at block 2300. If an outward protrusion of the annular mounting surface of the blade root defines a support plane, it may ensure that the tip portion of the blade is correctly oriented so that it can be positioned within the cradle for supporting the tip portion.
[0050] The method may then include transporting the blade or storing and optionally subsequently transporting the blade at block 2400. Any suitable transportation device may be used, such as, for example, a crane, a truck, a low loader, a trailer, a tow vehicle, a marine container, and / or a vessel.
[0051] Once on-site, the blade can be installed on the hub of the wind turbine, and any protrusions extending beyond the root annular mounting flange do not need to be removed prior to operation of the wind turbine.
[0052] In any of the examples disclosed herein, the wind turbine blade may be, but need not be, a segmented blade. A segmented blade is one in which the root and tip sections (and optionally further blade sections) are manufactured and transported separately. The root section may then be attached to the tip section prior to installation.
[0053] In any of the examples disclosed herein, the blade may be directly or indirectly attached to the wind turbine blade hub. Indirect attachment may be understood herein as attachment using another element, in particular a pitch bearing, between the blade and the hub. More specifically, the pitch bearing may include inner and outer bearing rings having one or more rows of rolling elements (rollers, balls, or other) therebetween. One of the outer and inner bearing rings may be attached to the hub, and the other of the inner and outer bearing rings may be attached to the wind turbine blade.
[0054] Although some features such as fasteners, handling and lifting attachments are shown only with respect to FIG. 3, it will be apparent that the same or similar features may be included in either the examples of FIGS. 4 and 5.
[0055] This specification uses examples to disclose the invention, including preferred embodiments, and also enables one of ordinary skill in the art to practice the invention, including making and using any devices or systems and performing any incorporated methods. The patentable scope of the invention is defined by the claims, and may include other examples that occur to those of ordinary skill in the art. Such other examples are intended to be within the scope of the claims if they have fastening elements that do not differ from the literal language of the claims, or if they include equivalent fastening elements that do not differ substantially from the literal language of the claims. Those of ordinary skill in the art will be able to easily interpret aspects from the various embodiments described above. of Additional embodiments and techniques may be constructed in accordance with the principles of the present application by mixing and matching. Where reference signs relating to the drawings are placed within parentheses in the claims, those reference signs are merely to enhance the clarity of the claims and should not be construed as limiting the scope of the claims. [Explanation of symbols]
[0056] 10 Base 11. Connecting flange 12 Fastening elements including transport and / or handling mechanisms 13 Supporting Elements 13a First support element 13b Second support element 14 Transport and / or handling mechanisms 15 rotation angles 16 Support plane 16a First support plane 16b Second Support Plane 17 Center axis 18 Transport and / or handling means 19 Mounting wire 20 Blade part 100 pitch bearing 107 Pitch System 108 Pinion 109 Annular Gear 110 Wind Turbine Hub 115 rotor 120 Wind turbine blades (rotor blades) 150 Support surface 160 wind turbines 161 Nacelle 162 Generator 163 rotor shaft 164 Gearbox 165 Support Frame 166 Generator shaft 170 Tower 200 Transportation and / or storage aspects 2000 Method for positioning a wind turbine blade 2100 Install wind turbine blades 2200 Placing wind turbine blades on transport and / or storage surfaces 2300 Supports the tip of the blade in the tip cradle 2400 Storing and / or transporting wind turbine blades
Claims
1. A root section (10) for a wind turbine blade (120), comprising: a coupling flange (11) configured to couple said root portion (10) to a hub (110) of a wind turbine (160); At least one support element (13) fixedly attached to said connecting flange (11); Equipped with said at least one support element (13) defining a support plane (16) for contacting a transport and / or storage surface (200); the at least one support element (13) is welded to the connecting flange (11), or the at least one support element (13) and the connecting flange (11) are integrally formed by casting; A root section (10) for a wind turbine blade (120).
2. The connecting flange (11) has an outer periphery, The support element (13) extends radially from the outer periphery of the connecting flange (11). The root portion (10) for a wind turbine blade (120) according to claim 1.
3. 2. The root portion (10) for a wind turbine blade (120) according to claim 1, wherein the support plane (16) of the support element (13) is defined by a flat surface provided on the support element (13).
4. 4. The root portion (10) for a wind turbine blade (120) according to claim 3, wherein the flat surface is tangential to the outer periphery of the connecting flange (11).
5. 2. A root portion (10) for a wind turbine blade (120) according to claim 1, wherein the support plane (16) of the support element (13) is defined by at least one first support point provided on a first support element (13 a) and a second support point provided on a second support element (13 b) different from the first support element (13 a).
6. The root portion (10) comprises a plurality of support elements (13a, 13b), at least two support elements (13a, 13b) are arranged diametrically opposite each other on the outer periphery of the connecting flange (11), or The support elements (13) are evenly distributed around the circumference of the connecting flange (11). The root portion (10) for a wind turbine blade (120) according to claim 2.
7. 2. The root portion (10) for a wind turbine blade (120) according to claim 1, wherein the support element (13) comprises one or more holes configured for attachment to a lifting tool.
8. 2. The root portion (10) for a wind turbine blade (120) according to claim 1, wherein the support element (13) is made from the same material as the connecting flange (11).
9. and at least one fastener (14, 18) fixedly attached to the connection flange (11) and extending radially from the outer periphery of the connection flange (11); Optionally, said fasteners (14, 18) include at least one of a through hole, an undercut, a rail, a mating part for a gripping tool, a friction connection means, a threaded hole, and / or a groove; The root portion (10) for a wind turbine blade (120) according to claim 2.
10. A wind turbine blade (120) comprising a blade root (10) according to any one of claims 1 to 9.
11. A method (2000) for positioning a wind turbine blade (120), comprising: providing (2100) a wind turbine blade (120) comprising a blade root mounting flange (11) defining an annular mounting surface for mounting the wind turbine blade (120) to a hub (110) of a wind turbine (160), the blade root mounting flange (11) comprising one or more portions that protrude beyond the annular mounting surface; placing (2200) the wind turbine blade (120) on a storage surface (200) so as to be supported by the portion of the blade root mounting flange (11) that protrudes beyond the blade root mounting flange (11); Including, said at least one support element (13) is welded to said blade root mounting flange (11); or A method wherein said at least one support element (13) and said blade root mounting flange (11) are integrally formed by casting.
12. The method of claim 11, wherein the portion that protrudes beyond the annular mounting surface defines an orientation of the blade root mounting flange (11) about a central axis (17) relative to a storage surface (200).
13. 13. The method of claim 11 or 12, further comprising providing a tip portion of the wind turbine blade (120) in a tip cradle.
Citation Information
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