Abstract:
The invention relates to a method for securing an attachment (3, 33) to a component, in particular a rotor blade (1), in which the component is provided with an adhesion surface (36), the attachment (3, 33) is provided with a corresponding adhesion surface (9), the attachment (3, 33) is provided with an adhesive-conveying connection to the corresponding adhesion surface (9), the adhesion surface (36) is placed on the corresponding adhesion surface (9), a gap (53) is formed between the adhesion surface (36) and the corresponding adhesion surface (9), the attachment (3, 33) is pressed against the corresponding adhesion surface (9) and at the same time the adhesive (80) is injected into the gap (53) through the adhesive-conveying connection.
Abstract:
A method of assembling a vehicle structure is provided in which a laser system is used to expedite adhesive curing at a plurality of locations within an adhesive layer, where the adhesive layer bonds a first vehicle component to a second vehicle component. Once cured by laser irradiation and heating, the localized adhesive regions maintain the relative positions of the first and second vehicle components without the aid of a curing fixture, even though the remaining areas of the adhesive layer are uncured. This approach to tacking vehicle components together can be used to decrease fabrication time and cost.
Abstract:
Method of bonding a shear web (50) to a wind turbine blade shell (75) and the obtained blade, wherein the shear web (50) comprises a web and a mounting flange (56) oriented transverse to the web (50). The method involves: providing a seal (66, 68) on the mounting flange (56) of the shear web (50) such that when the mounting flange (56) is positioned against the blade shell (75), a cavity (76) is defined by the seal between the mounting flange (56) and the blade shell (75). The air of the cavity (76) is then evacuated and adhesive is injected into the cavity (76). The use of pieces (80) to keep the distance between the mounting flange (56) and the blade shell (75) is preferred.
Abstract:
An adhesive aid and a method for adhering components by use of an adhesive are provided. The adhesive can be found in an adhesive gap between respective adhesive surfaces of the components. At least the first component has an opening which opens into the component adhesive surface. The adhesive aid has an insert portion, which is designed to be inserted into the opening and has an insert outer contour that correlates to an inner contour of the opening, and a displacement portion, which adjoins the insert portion in order to displace adhesive in the adhesive gap. The displacement portion has a protrusion which protrudes past the insert outer contour in the radial direction, and the displacement portion is designed to be flexible, in particular elastic, at least in the region of the protrusion.
Abstract:
Structures and methods for providing a liquid adhesive between substrates of a composite structure are described. Methods include providing a liquid adhesive having a thread disposed therein between two substrates of a composite structure. In some embodiments, the thread has a fixed diameter which acts to provide a consistent gap between the two substrates. In some embodiments, the thread is configured to be activated during the assembly process to facilitate curing of the liquid adhesive. In some embodiments the thread is configured to be activated after the composite structure is formed to facilitate separation of the two substrates and disassembly of the composite structure. The thread can be made of a conductive or non-conductive material. In some embodiments, the thread is activated by passing a voltage through the thread to heat the thread. In some embodiments, the thread is activated by passing ultraviolet light through the thread.
Abstract:
The invention is a pipe joint that is particularly suitable for joining pipes composed of materials having a low surface energy and excellent resistance to solvents. The major components are an extrudable adhesive; a first pipe having a socket with an inside diameter, where said socket has a mouth, a self-centering bottom, and a substantially cylindrical wall with an inlet, an outlet, and an inner annular channel; a second pipe having an insertion section with an end and an outer annular channel, said second pipe having an outside diameter that is less than the inside diameter of the socket, where the difference in diameters defines a cap and where the outer annular channel lines up with the inner annular channel therein forming an interlocking keyway; and a flanged annular ring, where said annular ring has an inside diameter that enables it to be slid over the second pipe and a thickness that is comparable to the gap, and where the flange has a width that is sufficient to cap the mouth of the socket. When fully formed, the adhesive has changed to a solid material that substantially fills the gap and the interlocking keyway, and serves as a mechanical key in the interlocking keyway. The adhesive is preferably an alkyl borane adhesive.
Abstract:
This mask includes: a substrate in which an aperture is formed; a mask member which, along with being formed with a plurality of through holes, is joined to the substrate in correspondence to the aperture; and spacers which hold the substrate and the mask member with a predetermined gap between them.
Abstract:
A joint is formed by joining two structures using a joint element. The joint element has a base and at least two legs extending from the base, the legs defining a slot having opposing sides and a bottom. The joint element is attached to the first structure. A second structure is positioned in the slot. An adhesive is disposed in the slot joining the second structure to the joint element. A cavity is formed between the bottom of the slot and the second structure. The cavity being substantially free of adhesive.
Abstract:
A joint is formed by joining two structures using a joint element. The joint element has a base and at least two legs extending from the base, the legs defining a slot having opposing sides and a bottom. The joint element is attached to the first structure. A second structure is positioned in the slot. An adhesive is disposed in the slot joining the second structure to the joint element. A cavity is formed between the bottom of the slot and the second structure. The cavity being substantially free of adhesive.
Abstract:
The invention relates to a method of manufacturing a wind turbine blade, said method comprising the steps of: casting at least two wind turbine shells and preferably one or more load bearing structures, forming a wind turbine blade structure including at least two longitudinal joints by adhering said at least two wind turbine shells and said one or more load bearing structures together, forming one or more front covers to a shape substantially corresponding to said wind turbine blade structure or sections hereof, positioning said one or more front covers in relation to said wind turbine blade structure, and fastening said one or more front covers to said wind turbine blade structure with adhering means. The invention also relates to a wind turbine blade, front cover and the use of a front cover as a unit for supplementary mounting on a wind turbine blade.