Vortex generator, wind turbine blade, and wind turbine power generating apparatus
10443563 ยท 2019-10-15
Assignee
Inventors
Cpc classification
F03D1/0633
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05B2240/3062
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F03D1/0675
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05B2240/122
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F03D9/25
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
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
Abstract
A vortex generator for a wind turbine blade includes a fin protruding from a surface of the wind turbine blade, being oriented so that a fin chord of the fin is oblique to an in-flow direction of wind which flows toward the wind turbine blade, having a suction surface which faces toward downstream with respect to the in-flow direction of the wind and which has a curved convex shape, and having a maximum fin blade-thickness ratio tmax/C which satisfies an expression of 0.10tmax/C0.12 in a height range of at least a part of the fin, where the maximum fin blade-thickness ratio tmax/C is a ratio of a maximum fin blade thickness tmax to a fin chord length C.
Claims
1. A vortex generator for a wind turbine blade, comprising a fin protruding from a surface of the wind turbine blade, being oriented so that a fin chord of the fin is oblique to an in-flow direction of wind which flows toward the wind turbine blade, having a suction surface which faces toward downstream with respect to the in-flow direction of the wind and which has a curved convex shape, and having a maximum fin blade-thickness ratio tmax/C which satisfies an expression of 0.10tmax/C0.12 in a height range of the fin represented by an expression of 0.5Lh0.85L, where the maximum fin blade-thickness ratio tmax/C is a ratio of a maximum fin blade thickness tmax to a fin chord length C, and L is a fin entire length from a root to a top portion of the fin.
2. The vortex generator for a wind turbine blade according to claim 1, wherein the maximum fin blade-thickness ratio tmax/C satisfies an expression of 0.10tmax/C0.11 in a height range of at least a part of the fin.
3. The vortex generator for a wind turbine blade according to claim 1, wherein the fin has a thickness which reaches the maximum fin blade thickness tmax at a chordwise-directional position x, the chordwise-directional position x satisfying an expression of 0<x<0.5C.
4. The vortex generator for a wind turbine blade according to claim 3, wherein the chordwise-directional position x at which the blade thickness of the fin reaches the maximum fin blade thickness tmax satisfies an expression of 0.3Cx0.4C.
5. The vortex generator for a wind turbine blade according to claim 4, wherein the chordwise-directional position x at which the blade thickness of the fin reaches the maximum fin blade thickness tmax satisfies an expression of 0.31Cx0.35C.
6. The vortex generator for a wind turbine blade according to claim 1, wherein the fin includes, in a side view, a first edge forming a connection part at which the fin connects to the surface of the wind turbine blade, a second edge intersecting with the first edge and being disposed on an upstream side with respect to the in-flow direction of the wind to form an upstream end portion of the fin, and a third edge intersecting with the first edge and being disposed on a downstream side with respect to the in-flow direction of the wind to form a downstream end portion of the fin.
7. The vortex generator for a wind turbine blade according to claim 6, wherein the second edge of the fin is oblique to a fin height direction so as to get closer to the downstream side toward the top portion of the fin.
8. The vortex generator for a wind turbine blade according to claim 6, wherein the fin further includes a fourth edge having a linear shape or a curve shape and forming a distal end of the fin with respect to a fin height direction, in the side view.
9. The vortex generator for a wind turbine blade according to claim 1, wherein the first edge and the third edge form an angle of 90 degrees or less.
10. The vortex generator for a wind turbine blade according to claim 1, wherein the fin chord of the fin has a length which decreases from the root to the top portion of the fin.
11. The vortex generator for a wind turbine blade according to claim 1, wherein the fin has a shape such that a line connecting positions at which the thickness of the fin reaches the maximum fin blade thickness tmax is oblique to a fin height direction so as to extend toward a same side as that of a reference line connecting middle points of the fin chord length, in a height range of at least a part of the fin.
12. The vortex generator for a wind turbine blade according to claim 1, wherein the vortex generator is configured to be disposed on a suction surface of the wind turbine blade and within a turbulent flow region of a wind flow along the suction surface.
13. A wind turbine blade, comprising: a blade body; and the vortex generator according to claim 1 mounted to a surface of the blade body.
14. A wind turbine power generating apparatus, comprising the wind turbine blade according to claim 13.
Description
BRIEF DESCRIPTION OF DRAWINGS
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DETAILED DESCRIPTION
(14) Embodiments of the present invention will now be described in detail with reference to the accompanying drawings. It is intended, however, that unless particularly specified, dimensions, materials, shapes, relative positions and the like of components described in the embodiments shall be interpreted as illustrative only and not intended to limit the scope of the present invention.
(15) Firstly, with reference to
(16) The wind turbine blade 1 according to some embodiments includes a blade body 2 and a vortex generator 10 mounted to a surface (blade surface) of the blade body 2.
(17) The blade body 2 includes a blade root 3 to be attached to a hub of a wind turbine power generating apparatus, a blade tip 4 positioned farthest from the hub, and an airfoil part 5 extending between the blade root 3 and the blade tip 4. The wind turbine blade 1 has a leading edge 6 and a trailing edge 7 from the blade root 3 to the blade tip 4. Further, an exterior shape of the wind turbine blade 1 is formed by a pressure surface 8 and a suction surface 9 disposed opposite to the pressure surface 8.
(18) Hereinafter, blade spanwise direction refers to a direction oriented from the blade root 3 toward the blade tip 4, and blade chordwise-direction refers to a direction along a line (chord) connecting the leading edge 6 and the trailing edge 7 of the blade body 2.
(19) In an embodiment, the wind turbine power generating apparatus having the above wind turbine blade 1 includes a plurality of wind turbine blades 1 mounted to a hub in a radial fashion, so that a rotor (which includes the wind turbine blades 1 and the hub) rotates in response to wind received by the plurality of wind turbine blades 1, and a generator coupled to the rotor generates electric power.
(20) Next, the vortex generator 10 according to some embodiments will be described in detail with reference to
(21)
(22) As depicted in
(23) The fin 12 is oriented so that a fin chord 18 of the fin 12 is oblique with respect to an in-flow direction of wind flowing toward the wind turbine blade 1 (see
(24) A suction surface 16 of the fin is facing downstream with respect to the in-flow direction of wind and has a curved convex shape.
(25) In a height range of at least a part of the fin 12, a maximum fin blade-thickness ratio tmax/C satisfies an expression of 0.10tmax/C0.12 (see
(26) In the present specification, in-flow direction of wind refers to a direction of a flow along a surface of the wind turbine blade 1 (see
(27) In an embodiment illustrated in
(28) Now, with reference to
(29)
(30)
(31) As depicted in
(32) However, depending on the shape of the fin 12 of the vortex generator 10, separation at the suction surface 16 of the fin 12 may bring about generation of a streamwise vortex 23 (see
(33) It should be noted that the vertical vortices 21, 22 refer to vortices formed in the height direction of the fin 12. Further, the streamwise vortex 23 refers to a vortex formed in a plane orthogonal to the height direction of the fin 12.
(34) In this regard, the embodiment depicted in the above described
(35) While a typical environment of usage of the vortex generator 10 for a wind turbine is viscosity-dominated (approximately, Re=10.sup.3 to 10.sup.4), with the maximum fin blade-thickness ratio tmax/C set to be from 0.10 to 0.12, it is possible to suppress generation of the streamwise vortex 23 (see
(36) More specifically, if the maximum fin blade-thickness ratio tmax/C is larger than 0.12, a lift of the fin 12 may be maintained but a drag starts to increase, which leads to a decrease in a lift-drag ratio of the fin 12. On the other hand, if the maximum fin blade-thickness ratio tmax/C is smaller than 0.10, separation may be generated from the vicinity of the leading edge 13 of the fin 12, which leads to a failure in maintaining a lift. Accordingly, a lift-drag ratio of the fin 12 decreases. Therefore, with the maximum fin blade-thickness ratio tmax/C set to be from 0.10 to 0.12, it is possible to improve a lift coefficient and a lift-drag ratio of the fin 12.
(37)
(38) The fins A to E have an airfoil shape. The fin A has a tmax/C (maximum fin blade-thickness ratio) of 0.12, the fin B has a tmax/C of 0.11, the fin C has a tmax/C of 0.10, the fin D has a tmax/C of 0.09, and the fin E has a tmax/C of 0.06. The fin F has a shape not of an airfoil but of a flat plate. In this graph, the lift-drag ratios correspond to when the following expression is satisfied: Re=510.sup.4.
(39) According to this graph, for the fin A having a tmax/C (maximum fin blade-thickness ratio) of 0.12, the fin B having a tmax/C of 0.11, and the fin C having a tmax/C of 0.10, the lift-drag ratios are good in a wide range of the skew angle. In contrast, for the fin D having a tmax/C of 0.09 and the fin E having a tmax/C of 0.06, the lift-drag ratios rapidly decrease when a skew angle exceeds a certain value. As a result of analysis conducted by the present inventors, including fluid analysis, it was found that separation takes place in a region close to the leading edge 13 of the fin 12 and a lift-drag ratio decreases, if the maximum fin blade-thickness ratio is less than 0.10, as in the fin D and the fin E. In other words, with reference to
(40) As describe above, according to the above embodiment, by setting the maximum fin blade-thickness ratio of the fin 12 of the vortex generator 10 within the above range, it is possible to reduce drag penalty due to provision of the vortex generator 10 while suppressing separation of a flow along a surface of the wind turbine blade 1.
(41) Herein, the Reynolds number Re.sub.vg of the fin 12 is defined by the following expression (1):
(42)
(43) where is a fluid density, U.sub.vg is a fluid velocity (velocity of a main stream), C.sub.vg is a fin chord length, and is a viscosity coefficient of fluid.
(44) Meanwhile, although the Reynolds number of the wind turbine blade 1 (see
(45) With reference to
(46) According to this embodiment, it is possible to achieve excellent lift coefficient and lift-drag ratio for the fin 12, and to balance suppression of separation at the trailing edge of the wind turbine blade 1 (see
(47)
(48) As shown in
(49) In an embodiment, the maximum fin blade-thickness ratio tmax/C satisfies an expression of 0.10tmax/C0.12 in a height range represented by an expression of 0.2Lh0.85L.
(50)
(51) As shown in
(52) With reference to
(53) In this case, the fin 12 may have a blade thickness that reaches the maximum fin blade-thickness tmax at a chordwise-directional position x which satisfies an expression of 0.3Cx0.4C.
(54) Alternatively, the fin 12 may have a blade thickness that reaches the maximum fin blade-thickness tmax at a chordwise-directional position x which satisfies an expression of 0.31Cx0.35C.
(55) According to this embodiment, it is possible to achieve excellent lift coefficient and lift-drag ratio for the fin 12, and to balance suppression of separation at the trailing edge of the wind turbine blade 1 (see
(56) Next, a side-view shape of the fin 12 of the vortex generator 10 will be described with reference to
(57)
(58) In some embodiments depicted in
(59) It should be noted that the fin 12 may have any polygonal shape in a side view, including a triangle (see
(60) In some embodiments depicted in
(61) In this case, the second edge 122 may be longer than the third edge 123.
(62) According to the above embodiment, with the second edge 122 (an edge forming the leading edge 13 of the fin 12) disposed oblique to the fin height direction so as to get closer to the downstream side toward the top portion 12a of the fin 12, it is possible to generate the vortex 21 for promoting momentum exchange between inside and outside of the boundary layer 31 (see
(63) In some embodiments depicted in
(64) In the embodiment depicted in
(65) In the embodiment depicted in
(66) As described above, a region in the vicinity of the top portion 12a of the fin 12 has a relatively small importance with regard to aerodynamic property due to an influence of a vortex (the longitudinal vortex 21 in
(67) With reference to
(68) According to the above embodiment, after the fin 12 having an airfoil shape is molded, the fin 12 can be readily removed out of a mold by moving the fin 12 relative to the mold in a direction oriented from the top portion 12a of the fin 12 toward the root 12b.
(69) As depicted in
(70) According to this embodiment, it is possible to reduce an area of the fin 12 in a side view to reduce a drag generated at the fin 12.
(71)
(72) As depicted in
(73) According to the above embodiment, even if the second edge 122 or the third edge 123 is oblique with respect to the fin height direction, it is possible to achieve an airfoil that improves a lift coefficient and a lift-drag ratio of the fin 12 in a broad range in the fin height direction. Thus, it is possible to reduce drag penalty due to provision of the vortex generator 10 while suppressing separation of a flow along a surface of the wind turbine blade 1.
(74) In the embodiment depicted in
(75) Referring again to
(76) Separation of a flow on the suction surface 9 of the wind turbine blade 1 takes place due to a boundary layer becoming gradually thicker from a streamline flow region in the vicinity of the leading edge 6 toward a turbulent flow region downstream thereof, and the flow being separated before arriving at the trailing edge 7.
(77) In this regard, according to the above embodiment, the vortex generator 10 is disposed within a turbulent flow region of a wind flow along the suction surface 9, and thereby it is possible to suppress separation of a flow from the suction surface 9.
(78) In an embodiment, the vortex generator 10 includes a plurality of fins 12 arranged in a linear pattern in the blade spanwise direction of the wind turbine blade 1. For instance, as depicted in
(79) Further, the vortex generator 10 may be mounted to the surface of the wind turbine blade 1 (blade body 2) via a platform portion. For instance, a plurality of fins 12 may be fixed to a platform portion (not depicted), and the platform portion with the fins 12 fixed thereto of the vortex generator 10 may be mounted to the surface of the wind turbine blade 1 (blade body 2).
(80) The plurality of fins 12 may be mounted to the side of the blade root 3 of the wind turbine blade 1 (see
(81) Further, as in the above embodiment, the vortex generator 10 has a novel fin airfoil that can achieve a high lift-drag ratio in a height range of at least a part of the fin 12, and thus a region on the side of the blade tip 4 of the wind turbine blade 1 with a high tip speed can particularly benefit from the aerodynamic merit of the vortex generator 10. Thus, the vortex generator 10 may be disposed in a region on the side of the blade tip 4 of the wind turbine blade 1 with a high tip speed (see
(82) In the embodiment depicted in
(83) With reference to
(84) According this embodiment, as described above, the fin 12 of the vortex generator 10 has an airfoil such that the maximum fin blade-thickness ratio tmax/C satisfies an expression of 0.10tmax/C0.12 in a height range of at least a part of the fin 12, and thereby it is possible to reduce drag penalty due to provision of the vortex generator 10 while suppressing separation of a flow along the surface of the wind turbine blade 1.
(85) A wind turbine power generating apparatus (not depicted) according to some embodiments includes the above wind turbine blade 1 (see
(86) According to this embodiment, the wind turbine power generating apparatus is equipped with the wind turbine blade 1, and thereby it is possible to reduce drag penalty due to provision of the vortex generator 10 while suppressing separation of a flow along a surface of the wind turbine blade 1.
(87) As described above, according to at least some embodiments of the present invention, it is possible to reduce drag penalty due to provision of the vortex generator 10 while suppressing separation of a flow along a surface of the wind turbine blade 1.
(88) Embodiments of the present invention were described in detail above, but the present invention is not limited thereto, and various amendments and modifications may be implemented.
(89) For instance, an expression of relative or absolute arrangement such as in a direction, along a direction, parallel, orthogonal, centered, concentric and coaxial shall not be construed as indicating only the arrangement in a strict literal sense, but also includes a state where the arrangement is relatively displaced by a tolerance, or by an angle or a distance whereby it is possible to achieve the same function.
(90) For instance, an expression of an equal state such as same equal and uniform shall not be construed as indicating only the state in which the feature is strictly equal, but also includes a state in which there is a tolerance or a difference that can still achieve the same function.
(91) Further, for instance, an expression of a shape such as a rectangular shape or a cylindrical shape shall not be construed as only the geometrically strict shape, but also includes a shape with unevenness or chamfered corners within the range in which the same effect can be achieved.
(92) On the other hand, an expression such as comprise, include, have, contain and constitute are not intended to be exclusive of other components.