Blade for a wind turbine
10502180 ยท 2019-12-10
Assignee
Inventors
- Alvaro Gorostidi Martinez de Lecea (Sarriguren, ES)
- Carlos Donazar Moriones (Sarriguren, ES)
- Javier Sanz Corretge (Sarriguren, ES)
- Teresa Arlaban Gabeiras (Sarriguren, ES)
- Jose Miguel Garcia Sayes (Sarriguren, ES)
- Miguel Nunez Polo (Sarriguren, ES)
Cpc classification
F05B2240/301
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05B2230/311
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02P70/50
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
F03D1/0675
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05B2240/2211
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05B2280/6003
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
Wind turbine blade having at least one longitudinal hollow element that defines an aerodynamic outer surface and an inner cavity having an inner surface. The blade also comprises at least one spar (1), disposed in the inner cavity and bonded to the inner surface by at least two bonding surfaces (13) located on bonding surfaces (2) of the spar (1). The spar (1) comprises, on at least one bonding zone (2), at least three fibre fabric layers (3) and at least one central core (4) and at least one lateral core (5) disposed between the at least three fibre fabric layers (3). This makes it possible to increase the resistance to shear stresses in the adhesive bond of the spar (1) to the inner surface of the longitudinal hollow element and decrease the required amount of adhesive.
Claims
1. A wind turbine blade comprising: at least one longitudinal hollow element that defines: an external aerodynamic surface, and an inner cavity having an inner surface in which there are a pressure zone and a suction zone, at least one shear web, disposed in the inner cavity and bonded to the inner surface in at least two bonding surfaces disposed in bonding zones of the shear web, and wherein the shear web comprises, in at least one bonding zone: at least three fiber fabric layers, and at least one central core and at least one lateral core disposed between the at least three fiber fabric layers; characterized in that: the at least one lateral core comprises an adjacent side and at least one divergent side with respect to, at least, one lateral side of the at least one central core according to an angle of divergence, the at least one central core comprises at least two fiber fabric layers disposed on at least part of one of the lateral sides, wherein one of the fiber fabric layers extends up to the bonding surface directly on said lateral side and another of the fiber fabric layers is disposed on the divergent side of the lateral core, such that the at least two fiber fabric layers are separated therebetween from the corresponding lateral side of the central core up to the at least one bonding surface, and the lateral core also comprises a lateral surface parallel to the lateral side of the central core and adjacent to the divergent side.
2. The wind turbine blade, according to claim 1, characterized in that the angle of divergence is less than or equal to 60.
3. The wind turbine blade, according to claim 1, characterized in that the angle of divergence is less than or equal to 30.
4. The wind turbine blade, according to claim 1, characterized in that the lateral surface of the lateral core has a constant height entirely throughout the shear web.
5. A wind turbine blade comprising: at least one longitudinal hollow element that defines: an external aerodynamic surface, and an inner cavity having an inner surface in which there are a pressure zone and a suction zone, at least one shear web, disposed in the inner cavity and bonded to the inner surface in at least two bonding surfaces disposed in bonding zones of the shear web, and wherein the shear web comprises, in at least one bonding zone: at least three fiber fabric layers, and at least one central core and at least one lateral core disposed between the at least three fiber fabric layers, characterized in that a thickness of the lateral cores increases throughout a length of the shear web from a blade root zone to a blade tip zone.
6. The wind turbine blade, according to claim 5, characterized in that a width of the shear web, which is a sum of a thicknesses of the central core and the thickness of the lateral cores, is constant throughout the length of the shear web and the thickness of the central core decreases throughout the length of the shear web from the blade root zone to the blade tip zone.
Description
DESCRIPTION OF THE DRAWINGS
(1) In order to complement the description being made and with the aim of helping to better understand the characteristics of the invention, in accordance with a preferred embodiment thereof, said description is accompanied, as an integral part thereof, by a set of drawings where, in an illustrative and non-limiting manner, the following has been represented:
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PREFERRED EMBODIMENT OF THE INVENTION
(10) Following is a description, with the help of
(11)
(12) The central core (4) of the shear web (1) and the two fibre fabric layers (3) comprised by said shear web (1) have been represented in said figure. As can be observed in the figure, the fibre fabric layers (3) are disposed covering the two lateral sides of the central core (4) and also compose the bonding zone (2) of the shear web (1) that bonds with the inner side of the blade pressure and suction surfaces. As can be observed in the figure, the bonding zones (2) of the shear web (1) are formed by a single central core (4) and by the two fibre fabric layers (3). The thickness (E) of the central core (4) and a first width (A), which is the width of the adhesive bond with the inner side of the blade pressure and suction surfaces for a shear web (1) of the state of the art, are also indicated.
(13) The present invention describes a wind turbine blade having a shear web that ensures a more homogeneous distribution of the shear stress in the adhesive bond between the shear web and the inner surface of the longitudinal hollow element.
(14) The blade comprises at least one longitudinal hollow element that defines an outer aerodynamic surface and an inner cavity having an inner surface having a pressure zone and a suction zone; and comprises at least one shear web (1). Said shear web (1) is disposed in the inner cavity and is joined to the inner surface by at least two bonding surfaces (13) disposed in the shear web bonding zones (2).
(15) The key of the present invention is that the shear web (1) comprises at least three fibre fabric layers (3) and at least one central core (4) and at least one lateral core (5) disposed between the at least three fibre fabric layers (3), disposed in at least one bonding zone (2).
(16) In one embodiment, the at least three fibre fabric layers (3) are disposed parallel therebetween and transversely or obliquely with respect to the bonding surface (13) in the bonding zone near the bonding surface.
(17) In one embodiment, the at least three fibre fabric layers (3) extend between the shear web bonding zones (2).
(18) In one embodiment, each fibre fabric (3) layer is disposed on at least one side of the central core (4) or lateral core (5).
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(21) The at least three layers of fibre fabric (3) are separated by at least two cores (4, 5) in the bonding zone (2) of the shear web (1).
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(23) In one example of embodiment, such as that shown in
(24) Likewise, the at least one central core (4) comprises at least two fibre fabric layers (3) disposed on at least part of one of the lateral sides (6). One of the fibre fabric layers (3) extends up to the bonding surface (13) directly on said lateral side (6) and the other fibre fabric layer (3) is also disposed on the divergent side (7) of the lateral core (5) such that at least two fibre fabric layers (3) are separated therebetween from the corresponding lateral side (6) up to the at least one bonding surface (13).
(25) In one embodiment, the lateral core (5) also comprises a lateral surface (8) parallel to the lateral side (6) of the central core (4) and adjacent to the divergent side (7), which extends between the divergent side (7) and the bonding surface (13). Thus, according to this embodiment, one of the fibre fabric layers (3) extends up to the bonding surface (13) directly on the lateral side (6) of the central core and the other fibre fabric layer (3) is also disposed on the divergent side (7) of the lateral core (5) and on the parallel lateral surface (8), wherein the layer is prolonged up to the bonding surface. In this manner, the layer disposed on the lateral side (6) of the central core (4) and the layer disposed on the parallel lateral surface (8) are disposed parallel therebetween in the bonding zone near said bonding surface (13).
(26) Preferably, the cores (4) are made of foam, PVC or balsa wood. Also preferably, the bond between the shear web (1) and the inner surface is executed by means of an adhesive bond.
(27) In the example of embodiment shown in
(28) In one embodiment, at least the lateral surface (8) of the lateral core (5) has a constant height throughout the entire section of the shear web (1). In another embodiment, such as that shown in
(29) In one embodiment, the thickness of the central core (4) is greater than the thickness of the lateral cores (5). In another embodiment, the thickness of the central core (4) decreases throughout the length of the shear web (1) from the blade root zone to the blade tip zone and/or the thickness of the lateral cores (5) increases throughout the length of the shear web (1) from the blade root zone to the blade tip zone.
(30) Preferably, the width of the shear web (1), which is the sum of the thicknesses of the central core (4) and of the lateral cores (5), is constant throughout its length.
(31)
(32) In one embodiment, as shown in