The invention relates to a shear web with two shear web feet, wherein the shear web is provided for the connection of a pressure side with a suction side of a wing, wherein the shear web has a longitudinal extension, which is transverse to the extension of the shear web from the suction side to the pressure side. Furthermore, the invention relates to a wing with a corresponding shear web. Furthermore, the invention relates to the use of a supporting body for a wing for the connection of the suction side and the pressure side with a shear web as well as a method for the production of a wing.
Within the framework of this application, the term wing comprises a bearing surface of an airplane, a propeller of a helicopter and in particular a rotor blade of wind power plant. If a rotor blade is discussed in the following in particular in connection with the figure description, a bearing surface of an airplane or a propeller of a helicopter shall also be implied.
Wings that use an aerodynamic lift, in particular rotor blades of wind power plants, are put under considerable stress during operation. In order to be able to absorb in particular tensile forces, one or more shear webs are installed or respectively glued in between the pressure side and the suction side of the wing or respectively rotor blade, which extend from the inside of the shell of the wing on the pressure side to the shell of the wing on the suction side. A shear web hereby extends at least in sections along a longitudinal extension of the wing. The corresponding blade shells are hereby preferably reinforced by belts, which contribute to the increase in stability of the wings or respectively rotor blades. The shear webs are normally connected with the respective belts, which are arranged on the suction side or respectively the pressure side of the wings and extend at least in sections in the longitudinal extension of the wing. For the connection, the shear webs are normally adhered with the belts on one side with glass fiber mats. A resin is normally used for adhesion. This hereby results in an essentially rectangular angle at the connection point of the shear web with the belt. The stressing of the wings, or respectively the rotor blades, thus leads to considerable peel stresses, which can lead to a loosening of the shear web adhesion and can cause dents in the shells.
The production of wings, in particular rotor blades, is also very time intensive, since in particular the positioning of the shear webs on the belts is very involved and difficult.
The object of the present invention is to specify a more stable shear web connection in a wing as well as an option for efficiently realizing the production of the wings.
This object is solved through a shear web with two shear web feet for the connection of a pressure side with a suction side of a wing, wherein the shear web has a longitudinal extension, which is transverse to the extension of the shear web from the suction side to the pressure side, which is further developed in that at least one shear web foot has two connection sides arranged on opposite sides of the shear web transversally to the longitudinal extension. The longitudinal extension of the shear web is hereby in particular along the longitudinal extension of the wing.
Through the use of two connection sides arranged on opposite sides of the shear web, by means of which a connection, for example, to a belt can take place, a stronger connection is already achieved. In the case of the preferred arrangement of the connection sides at an angle to each other that is less than 180°, the peel stresses during loads are preferably correspondingly reduced.
The connection sides on the two opposite sides of the shear web are preferably provided on both shear web feet. A very stable connection can hereby be achieved both on the suction side as well as on the pressure side of the wing. The connection sides of the shear web or, respectively, of the shear web feet are oriented in particular not only transversally to the longitudinal extension of the shear web but also transversally to the extension of the shear web from the suction side to the pressure side. The connection sides of the shear web foot are preferably fork-like in cross-section transversally to the longitudinal extension with respect to each other. Two fork arms are preferably provided hereby. The connection sides are designed, in particular, in a flap-like manner, for example made of glass-fiber-reinforced plastic mats, which are provided with a corresponding resin.
The shear web foot is preferably at least partially complementary in shape with a supporting body that is wedge-shaped or curved in cross-section and/or a blade shell and/or a belt of a blade shell of the wing. The blade shell and/or the belt is hereby also in particular preferably at least in sections wedge-shaped or curved. In particular, the supporting body can be designed integrally with the blade shell and/or the belt. The shear web foot is preferably connected as a single piece with the shear web or as an attachment with the shear web. For example, a profile, for example an extrusion press profile, can serve as the attachment.
Furthermore, the object is also solved through a wing with a shear web according to the invention, which was described above, and a supporting body, which is arranged on the suction side or pressure side inside the wing, in particular on a belt, and is connected with a shear web foot. The supporting body hereby extends preferably longitudinally axially with the wing.
A supporting body, which is connected with one shear web foot respectively, is preferably arranged on the pressure side as well as on the suction side. Within the framework of the connection, “connected” means adhesion in particular.
The supporting body is preferably designed wedge-shaped or curved, in particular convex, in cross-section transversionally to its longitudinal extension. A form-complementary connection, i.e. a very well fitting connection to the shear web foot of the shear web according to the invention, can be achieved hereby. The wedge shape also includes in particular a wedge with rounded edges. The curved shape can be a polygon, in particular preferably with rounded edges, such as a triangle or a rhombus. A curved shape is also understood in particular as a Gaussian distribution or a similar curve form. The wedge preferably has an angle of 30° to 120°, in particular 50° to 90°, to the shear web.
The supporting body preferably has a density of less than 200 kg/m3, in particular less than 100 kg/m3, and in particular less than 35 kg/m3. The supporting body is preferably made of a foamed material, made of polyethylene, polystyrene, polyethylene terephthalate, balsa wood or glass-fiber reinforced plastic (GRP). In particular, the connection sides of the respective shear web foot are adhered to surfaces of the supporting body or respectively are connected with it.
The object is also solved through the use of a supporting body inside on the suction side and/or pressure side of a wing for the connection of the suction side and/or the pressure side with a shear web, which extends from the suction side to the pressure side, wherein the supporting body is arranged on a belt or is one piece with the belt. The arrangement of the supporting body on a belt also includes, in particular, a conjointness with the belt. The and/or each supporting body is preferably connected with a belt or is one piece with the belt. In this case, the belt has a corresponding supporting body, which is arranged in particular preferably longitudinally axially or respectively at least in sections longitudinally extended to the wing and is designed in cross-section transversally to its longitudinal extension wedge-shaped or curved, in particular convex.
The curvature or respectively the cross-sectional shape of the supporting body is also here a polygon, in particular with rounded edges like a triangle or a rhombus. The convex curvature is to be understood such that it, seen from the side on which the supporting body is arranged, is designed convex. Within the framework of the invention, the term longitudinal extension includes in particular preferably mainly or completely parallel to the longitudinal axis of the wing or respectively in the case of a bent and/or twisted wing along the longitudinally extending contour of the wing.
The object is also solved through a method for the production of a wing with a pressure side and a suction side, wherein at least one belt is provided on both the pressure side and on the suction side, wherein a supporting body is or will be applied to at least one belt, wherein a shear web according to the invention, which was described above, is adhered with a supporting body such that the supporting body is fitted between the connection sides of the shear web foot. In particular, the supporting body is adhered accordingly with the connection sides of the shear web foot. This measure makes possible the very fast and efficient positioning of the shear web between the blade shells or respectively shells of the wing. This also results in high process security. Mold occupation time is also saved since the shear web or the shear webs can be adhered wet-on-wet in two shell halves or respectively into the corresponding shell sections without intermediate drying. A shear web positioning also takes place through a type of self-centering of the shear webs. It is hereby ensured that the shear webs are always adhered at the correct belt position. A very complex and expensive positioning tool or positioning device is, thus, not needed.
A supporting body is preferably fitted between the connection sides of the shear web feet on each side of the shear web. Within the framework of the invention, this should also be understood the other way around such that the connection sides of the shear web sides are applied to the supporting body or respectively connected with them accordingly.
The invention is described below, without restricting the general intent of the invention, based on exemplary embodiments with reference to the drawings, whereby we expressly refer to the drawings with regard to the disclosure of all details according to the invention that are not explained in greater detail in the text. The drawings show in:
In the following figures, the same or similar types of elements or respectively corresponding parts are provided with the same reference numbers in order to prevent the item from needing to be reintroduced.
In addition to the adhesion of the supporting body 18, laminate layers 19 are applied above the belt 17 and the supporting body 18 in order to provide a more secure connection. An adhesive 20 is applied to the laminate layers 19 and on the adhesive 20, which can be for example a resin, a supporting overlay 21 on the one hand and a connection side 13 on the other hand and on the other covered side a connection side 13′ is adhered above the supporting body 18. The connection sides 13 or respectively 13′ are components of the shear web foot 11 of the shear web 10. The shear web 10 has a longitudinal extension 38.
In a supporting body, namely the supporting body 18, an angle α is shown, which represents a wedge angle. It is approx. 60°. The supporting bodies here have the shape of a rounded wedge in the cross-section with a wedge angle α. The cross-section can also be considered curved, in particular convex. This also goes for the supporting body 18 of
In the next step, which is shown in
As shown in
The shear web is then preferably produced with an injection pressing technique (Resin Transfer Molding; RTM), an infusion technique (Resin Infusion Molding; RIM) and in particular a vacuum-supported infusion technique (Vacuum Assisted Resin Infusion; VAR). Accordingly, a normal laminating technique can also be used, for example using prepregs. In the exemplary embodiment according to
In the case of the production of a wing or respectively rotor blade, a correspondingly produced shear web can be inserted into the corresponding blade shells before the complete drying of the used resin and connected with the respected belts or respectively mold bodies, which are arranged on the belts or respectively are integral with them.
Within the framework of this application, other fabrics such as aramid fiber fabric or carbon fiber fabric can also be used instead of glass fiber fabric.
The supporting body including overlaminates are preferably applied together with the belt still in the belt mold with a RIM process. The separation stress can be minimized through selection of a hard supporting body. Instead of the production of the belt with supporting bodies, a normal belt that has setting devices for application of the supporting body can also be used.
The foot profile 34 from
The invention solves problems with the shear web adhesion of components produced using a shell construction like bearing surfaces and rotor blades and positively influences the denting resistance of the blade shells. The production of corresponding wings or respectively rotor blades according to the invention is very reliable and saves mold occupation time since the shear web or the shear webs can be adhered wet-on-wet into both shell halves without intermediate drying. Moreover, the shear web positioning involves a type of self-centering of the shear webs, which ensures that the shear webs are always adhered to the correct belt position. A very complex and expensive positioning tool is thus not needed.
All named characteristics, including those taken from the drawings alone, and individual characteristics, which are disclosed in combination with other characteristics, are considered alone and in combination as important to the invention. Embodiments according to the invention can be fulfilled through individual characteristics or a combination of several characteristics.
Number | Date | Country | Kind |
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10 2010 003 114.3 | Mar 2010 | DE | national |