Wind turbine generator system, wind turbine blade, and reinforcing method for wind turbine blade
11118563 · 2021-09-14
Assignee
Inventors
Cpc classification
F05B2240/30
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F03D1/0675
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05B2240/21
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05B2280/6015
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B32B5/26
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
B29C73/10
PERFORMING OPERATIONS; TRANSPORTING
F05B2280/702
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05B2280/6013
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B32B2367/00
PERFORMING OPERATIONS; TRANSPORTING
B32B2603/00
PERFORMING OPERATIONS; TRANSPORTING
International classification
F03D1/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B29C73/10
PERFORMING OPERATIONS; TRANSPORTING
B32B5/26
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A wind turbine blade is reinforced while suppressing possible stress concentration resulting from a load imposed on a blade root portion of the wind turbine blade in a flap direction. The wind turbine blade includes a blade main body extending from the blade root portion toward a blade tip portion and an FRP reinforcing layer formed so as to cover at least a part of the outer surface of the blade root portion of the blade main body. The FRP reinforcing layer includes a plurality of laminated fiber layers and a resin with which the plurality of fiber layers is impregnated. The FRP reinforcing layer is formed such that, in a cross section along a longitudinal direction of the blade main body, both ends of the plurality of laminated fiber layers in the longitudinal direction are tapered.
Claims
1. A wind turbine blade comprising: a blade main body extending from a blade root portion toward a blade tip portion; and an FRP (Fiber Reinforced Plastic) reinforcing layer formed so as to cover at least a part of an outer surface of the blade root portion of the blade main body, wherein the FRP reinforcing layer includes: a plurality of laminated fiber layers, wherein each of the plurality of laminated fiber layer is a unidirectional layer; and a resin with which the plurality of fiber layers is impregnated, and the FRP reinforcing layer is formed such that: in a cross section along a longitudinal direction of the blade main body and over the entire region of each of the plurality of laminated fiber layers in the longitudinal direction, each fiber of said each of the plurality of laminated fiber layers extends linearly in the longitudinal direction along the outer surface of the blade root portion; and both ends of the plurality of laminated fiber layers in the longitudinal direction thereof are tapered.
2. The wind turbine blade according to claim 1, wherein a first tapered shape of a blade tip-side end of both of the ends of the plurality of laminated fiber layers is different from a second tapered shape of a blade root-side end of both the ends of the plurality of laminated fiber layers.
3. The wind turbine blade according to claim 1, wherein the first tapered shape of the blade tip-side end of both of the ends of the plurality of laminated fiber layers has an inclined surface with a gradient of 5% or less with respect to the longitudinal direction.
4. The wind turbine blade according to claim 1, wherein the FRP reinforcing layer includes an intermediate layer between the outer surface of the blade root portion and the plurality of fiber layers and comprising a multidirectional fiber layer.
5. The wind turbine blade according to claim 4, wherein the intermediate layer is a DBM (Dense Bituminous Macadam) or a chopped strand mat.
6. The wind turbine blade according to claim 1, wherein a number of laminated fiber layers in the plurality of laminated fiber layers is 10 or more and 100 or less.
7. The wind turbine blade according to claim 1, wherein the resin is a polyester resin or an epoxy resin.
8. The wind turbine blade according to claim 1, wherein the blade main body includes: a suction-side half-section; a pressure-side half-section joined to the suction-side half-section, and the FRP reinforcing layer, in the circumferential direction of the blade root portion, has an angular range of θ.sub.0−50 degrees≤θ≤θ.sub.0+50 degrees when an angular position of a center of a circular arc defined in a cross section of the blade root portion by at least one of the suction-side half-section or the pressure-side half-section is denoted by θ.sub.0.
9. The wind turbine blade according to claim 1, wherein the blade main body has in the blade root portion a bolt hole through which the wind turbine blade is attachable to a hub, and the FRP reinforcing layer is provided farther toward a blade tip side than an extension range of the bolt hole in the longitudinal direction.
10. A wind turbine blade comprising: a blade main body extending from a blade root portion toward a blade tip portion; and an FRP (Fiber Reinforced Plastic) reinforcing layer formed so as to cover at least a part of an outer surface of the blade root portion of the blade main body, wherein the FRP reinforcing layer includes: a plurality of laminated fiber layers, wherein each of the plurality of laminated fiber layer is a unidirectional layer; and a resin with which the plurality of fiber layers is impregnated, and the FRP reinforcing layer is formed such that, in a cross section along a longitudinal direction of the blade main body, each fiber of the plurality of laminated fiber layers extends linearly in the longitudinal direction along the outer surface of the blade root portion and both ends of the plurality of laminated fiber layers in the longitudinal direction thereof are tapered, and wherein each end of the plurality of laminated fiber layers in the longitudinal direction is tapered to incline inwardly in a radial direction of the blade root portion toward an outer edge of the FRP reinforcing layer in the longitudinal direction.
11. The wind turbine blade according to claim 10, wherein a taper angle of a first tapered shape of a blade tip-side end of both the ends of the plurality of laminated fiber layers is less than a taper angle of a second tapered shape of a blade root-side end of both the ends of the plurality of laminated fiber layers.
12. The wind turbine blade according to claim 10, wherein the first tapered shape of the blade tip-side end of both the ends of the plurality of laminated fiber layers has an inclined surface with a gradient of 5% or less with respect to the longitudinal direction.
13. The wind turbine blade according to claim 10, wherein the FRP reinforcing layer includes an intermediate layer positioned between the outer surface of the blade root portion and the plurality of fiber layers and formed of a multidirectional fiber layer.
14. The wind turbine blade according to claim 13, wherein the intermediate layer is a DBM or a chopped strand mat.
15. The wind turbine blade according to claim 10, wherein the number of the laminated fiber layers is 10 or more and 100 or less.
16. The wind turbine blade according to claim 10, wherein the resin is a polyester resin or an epoxy resin.
17. The wind turbine blade according to claim 10, wherein the blade main body includes: a suction-side half-section and a pressure-side half-section that is joined to the suction-side half-section, and the FRP reinforcing layer is formed, in the circumferential direction of the blade root portion, within an angular range of θ.sub.0−50 degrees≤θ≤θ.sub.0+50 degrees when an angular position of a center of a circular arc defined in a cross section of the blade root portion by at least one of the suction-side half-section or the pressure-side half-section is denoted by θ.sub.0.
18. The wind turbine blade according to claim 10, wherein the blade main body has in the blade root portion a bolt hole through which the wind turbine blade is attached to a hub, and the FRP reinforcing layer is provided further toward a blade tip side than an extension range of the bolt hole in the longitudinal direction.
Description
BRIEF DESCRIPTION OF DRAWINGS
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DETAILED DESCRIPTION
(18) Several embodiments of the present invention will be described below with reference to the attached drawings. However, dimensions, materials, shapes, relative arrangements, and the like of components described in the embodiments or depicted in the drawings are not intended to limit the scope of the present invention thereto and are only illustrative.
(19) For example, not only do expressions for relative or absolute arrangements such as “in a certain direction”, “along a certain direction”, “parallel”, “orthogonal”, “central”, “concentric”, and “coaxial” exactly represent such arrangements but also represent relative displacements with tolerances or such angles or distances as allow the same functions to be fulfilled.
(20) For example, not only do expressions for equal states of things such as “the same”, “equal”, and “homogeneous” represent exactly equal states but also represent states with tolerances or such differences as allow the same functions to be fulfilled.
(21) For example, not only expressions for shapes such as a rectangular shape and a cylindrical shape represent shapes such as a rectangular shape and a cylindrical shape in a geometrically strict sense but also represent such shapes including a recessed and protruding portion or a chamfered portion to the extent that the same effects are produced.
(22) On the other hand, the expression “comprising a component”, “containing a component”, “being provided with a component”, “including a component”, or “having a component” is not an exclusive expression that excludes the existence of other components.
(23)
(24) As depicted in
(25) As depicted in
(26) The blade main body 2 includes the blade root portion 3 attached to the hub 102 of the windmill 100, the blade tip portion 4 positioned furthest from the hub 102, and an airfoil portion 5 extending in a blade length direction between the blade root portion 3 and the blade tip portion 4. The blade main body 2 has a leading edge 6 and a trailing edge 7 extending from the blade root portion 3 to the blade tip portion 4. An external shape of the blade main body 2 is defined by a suction surface 11 (negative pressure surface) and a pressure surface 13 (positive pressure surface) opposite to the suction surface 11.
(27) The “blade length direction” as used herein refers to a direction along which the blade root portion 3 and the blade tip portion 4 are connected together. The “chord direction (blade chord direction)” as used herein refers to a direction along a line (chord) with which the leading edge 6 and the trailing edge 7 of the blade main body 2 are connected together. The “blade root portion” as used herein refers to a cylindrical portion of the wind turbine blade 1 that is cross-sectionally shaped generally like a circle and that corresponds to, for example, a range of 5 m with reference to an blade root-side end face of the blade main body 2 of the wind turbine blade 1 (typically a range of 1 to 3 m from the end face).
(28) In several embodiments, the blade main body 2 includes a first half-section 10 (suction-side half-section) forming the above-described suction surface 11 side (suction side) and a second half-section 12 (pressure-side half-section) forming a pressure surface 13 side (pressure side), with a boundary between the first half-section 10 and the second half-section 12 corresponding to a line with which the leading edge 6 and the trailing edge 7 are connected together, for example, as depicted in
(29) In several embodiments, the blade main body 2 may have a bolt hole 15 in the blade root portion 3 through which the wind turbine blade 1 is attached to the hub 102. That is, as depicted in
(30) In several embodiments, an FRP reinforcing layer 20 may be provided further toward the blade tip side than the extension range of the bolt holes 15 in the longitudinal direction (blade length direction) of the wind turbine blade 1. This inhibits the FRP reinforcing layer 20 from closing the bolt holes 15 through which the wind turbine blade 1 is attached to the hub 102. Therefore, the wind turbine blade 1 can be reinforced without hampering a function to attach the wind turbine blade 1 to the hub 102 via the bolt holes 15 or an operation of performing such attachment.
(31) Now, the FRP reinforcing layer 20 will be described.
(32) In several embodiments, the FRP reinforcing layer 20 includes a plurality of laminated fiber layers 24 and a resin 26 with which the plurality of fiber layers 24 is impregnated (see
(33) Each of the fiber layers 24 may be formed of, for example, what is called a unidirectional (UD) layer in which fibers of a composite material (FRP such as CFRP or GFRP) including carbon fiber or glass fiber are arranged in alignment in a single direction. In this case, in the FRP reinforcing layer 20, the fiber layers 24 may be oriented such that a fiber direction in the UD layer extends along the blade length direction.
(34) The number of the laminated fiber layers 24 is not particularly limited. However, in several embodiments, for example the number of the laminated fiber layers 24 may be 10 or more and 100 or less. In several embodiments, the fiber layers 24 may be laminated so as to have a thickness that enables reinforcement for a needed strength corresponding to the distribution of stress near the blade root portion 3 of the wind turbine blade 1. This allows the wind turbine blade 1 to be appropriately reinforced in accordance with the distribution of stress near the blade root portion 3 of the wind turbine blade 1.
(35)
(36) As depicted in
(37) In several embodiments, the FRP reinforcing layer 20 is formed, in the circumferential direction of the blade root portion 3, within an angular range of θ.sub.0−50 degrees≤θ≤θ.sub.0+50 degrees when the angular position of the center of a circular arc defined in a cross section of the blade root portion 3 by at least one of the first section 10 (suction-side half-section) and the second section 12 (pressure-side half-section) is denoted by θ.sub.0, as depicted in
(38) Now, with reference to
(39) As depicted in
(40)
(41) In several embodiments, the FRP reinforcing layer 20 is formed such that, in a cross section along a longitudinal direction of the blade main body 2, both ends of the plurality of laminated fiber layers 24 in the longitudinal direction may be tapered, for example, as depicted in
(42) As depicted in
(43) In several embodiments, the first tapered shape (the inclination angle of a first inclined portion 28) of the blade tip-side end of both ends of the plurality of laminated fiber layers 24 may be gentler than the second tapered shape (the inclination angle of a second inclined portion 29) of the blade root-side end of both ends of the plurality of laminated fiber layers 24, for example, as depicted in
(44) Specifically, as shown in
[Math. 1]
H/D2<H<D1 (1)
(45) In the above-described configuration, both ends of the plurality of laminated fiber layers 24 may be formed such that the first inclined portion 28 of the blade tip portion-side end, which has a spare installation area, is sufficiently gentler than the second inclined portion 29 of the blade root portion-side end. Therefore, the thickness of the blade root portion 3 in the longitudinal direction may vary sufficiently gradually. This allows the wind turbine blade 1 to be reinforced while suppressing possible stress concentration resulting from a load in the flap direction.
(46) In several embodiments, the first inclined portion 28 of the blade tip portion-side end of both ends of the plurality of laminated fiber layers 24 may have an inclined surface with a gradient of 5% or less with respect to the longitudinal direction. In other words, the first inclined portion 28 may be formed so as to meet a relation in Expression (2) using the above-described distance D2 and height H.
[Math. 2]
H/D2≤0.05 (2)
(47) In above-described configuration, the inclined surface of the blade tip portion-side end of the fiber layers 24 may have a sufficiently gentle gradient of 5% or less with respect to the longitudinal direction of the wind turbine blade 1. This enables the thickness of the blade root portion 3 in the blade length direction to vary sufficiently gradually, allowing the wind turbine blade 1 to be reinforced while suppressing possible stress concentration resulting from a load in the flap direction.
(48) In several embodiments, the second inclined portion 29 of the blade root portion 3-side end of both ends of the plurality of laminated fiber layers 24 may have an inclined surface with a gradient of 10% or less with respect to the longitudinal direction. In other words, the second inclined portion 29 may be formed so as to meet a relation in Expression (3) using the above-described distance D1 and height H.
[Math. 3]
H/D1≤0.1 (3)
(49) In the above-described configuration, the second inclined portion 29 of the blade root portion 3-side end may also be formed such that the thickness of the blade root portion 3 in the blade length direction varies sufficiently gradually, allowing the wind turbine blade 1 to be reinforced while suppressing possible stress concentration resulting from a load in the flap direction.
(50) In several embodiments, the FRP reinforcing layer 20 may include an intermediate layer 22 formed of a multidirectional fiber layer between the outer surface 3A of the blade root portion 3 and the plurality of fiber layers 24 (see, for example,
(51) In several embodiments, the intermediate layer 22 may be, for example, a double bias mat (DBM) material. The double bias mat material is a mat material that is a combination of fibers arrayed in two different directions (for example, ±45°). In several embodiments, the intermediate layer 22 may be, for example, a chopped strand mat. The chopped strand mat is a sheet (non-woven cloth) into which fiber pieces (having a length of, for example, 5 to 200 mm) resulting from chopping of twisted yarns (strands) are dispersed uniformly in a non-oriented manner and shaped using a binding agent (for example, a polyester binder). The chopped strand mat can be suitably used as the intermediate layer 22 because of its non-directional substrate strength and its excellent performance in impregnation, deforming, and mold conformance. In this configuration, the fiber layers 24 can be more appropriately bonded to the outer surface 3A of the wind turbine blade 1 by using the double bias mat or the chopped strand mat in which the fibers are entangled with one another.
(52) In several embodiments, a polyester resin or an epoxy resin may be used as the resin 26. In this case, the FRP reinforcing layer 20 can be formed by impregnating the fiber layers 24 with a thermoplastic resin such as the polyester resin or the epoxy resin, which is then cured. For example, if the fiber layers 24 are impregnated with the polyester resin, which is then cured, the curing results from self-heating, eliminating the need for an external heating operation to allow the FRP reinforcing layer 20 to be easily and inexpensively formed. If the fiber layers 24 are impregnated with the epoxy resin, which is then cured, the FRP reinforcing layer 20 can be formed which is more excellently bonded to the outer surface 3A of the blade root portion 3.
(53) If an outer circumferential side of the blade root portion 3 of the wind turbine blade 1 is to be reinforced, the wind turbine blade 1 may temporarily be removed from the hub 102 and placed on the ground, and a plurality of operators may perform a reinforcing operation on a large area of the blade surface. Thus, this case allows reinforcing operability to be improved compared to a case where reinforcement is executed on an inner circumferential side of the blade root portion 3 on which only fewer operators can perform operation due to space limitations.
(54) Now, a reinforcing method for the wind turbine blade 1 according to several embodiments will be described with reference to
(55) As depicted in
(56) In the step of laminating the fiber layers 24, the fiber layers 24 may be laminated such that, in a cross section of the wind turbine blade 1 in the longitudinal direction thereof, both ends of the laminated fiber layers 24 in the longitudinal direction have tapered shapes (first tapered shape and second tapered shape). In this method, the FRP reinforcing layer 20 is configured such that, in a cross section of the blade main body 2 in the longitudinal direction thereof, both ends of the plurality of laminated fiber layers 24 in the longitudinal direction have tapered shapes, inhibiting the thickness of the blade root portion 3 of the wind turbine blade 1 including the FRP reinforcing layer 20 from varying sharply in the longitudinal direction of the wind turbine blade 1. Therefore, the method allows the wind turbine blade 1 to be reinforced while appropriately suppressing possible stress concentration resulting from a load imposed on the blade root portion 3 of the wind turbine blade 1 in the flap direction.
(57) In several embodiments, the fiber layers 24 may be laminated such that the first inclined portion 28 of the blade tip-side end of both ends of the laminated fiber layers 24 has a smaller inclination angle than the second inclined portion 29 of the blade root-side end of both ends of the laminated fiber layers 24. The method allows the first inclined portion 28 of the blade tip-side end of both ends of the plurality of laminated fiber layers 24, which has a spare installation area, to be formed sufficiently more gently than the second inclined portion 29 of the blade root-side end of both ends of the plurality of laminated fiber layers 24. Therefore, the method enables the thickness of the blade root portion 3 in the longitudinal direction to vary sufficiently gradually, allowing the wind turbine blade 1 to be reinforced while suitably suppressing possible stress concentration resulting from a load in the flap direction.
(58) As depicted in
(59) The method may involve, instead of laminating the fiber layers 24 directly on the outer surface 3A of the blade root portion 3, roughening at least the configuration area 8 of the outer surface 3A of the blade root portion 3 where the FRP reinforcing layer 20 is to be configured, forming the intermediate layer 22 in the roughened configuration area 8, and laminating the fiber layers 24 on the intermediate layer 22. Therefore, the fiber layers 24 can be more appropriately bonded to the outer surface 3A of the wind turbine blade 1 by, for example, using, as the intermediate layer 22, a material that can be appropriately bonded to the outer surface 3A and the fiber layers 24 of the wind turbine blade 1. Consequently, the FRP reinforcing layer 20 can be formed more integrally with the wind turbine blade 1, allowing the wind turbine blade 1 to be more firmly reinforced.
(60) In several embodiments, in the step of forming the FRP reinforcing layer 20, the laminated fiber layers 24 may be covered with a bag 40 (step S31), a space enclosed by the outer surface 3A of the blade root portion 3 and the bag 40 may be decompressed (step S32), and the resin 26 may be injected into the decompressed space to impregnate the fiber layers 24 with the resin 26 (step S33) as depicted in
(61) In the method, the fiber layers 24 laminated on the outer surface 3A of the blade root portion 3 are covered with the bag 40, the space enclosed by the outer surface 3A of the blade root portion 3 and the bag 40 is decompressed, and the resin 26 is injected into the decompressed space. Therefore, the resin 26 can be infiltrated throughout the fiber layers 24, providing an FRP reinforcing layer 20 having few voids and a high strength.
(62) The embodiments of the present invention have been described. However, the present invention is not limited to the above-described embodiments and includes variations of the embodiments and appropriate combinations of the variations.