Lightweight Structural Part Formed of Carbon Fiber-Reinforced Plastic
Abstract
A lightweight structural part is formed of band-shaped fiber strands woven into a lattice-type structure. Each fiber strand is made up of a number of carbon fiber rovings impregnated with a synthetic resin. The rovings in each strand are arranged in at least two layers with a plurality of rovings in each layer. The fiber strands are disposed in spaced relation in the lattice-type structure and are woven in a repetitive pattern. In forming a structural part or a support, the lattice-type structure can be cut into sectors or other shapes with the shapes being joined together, if necessary, to provide the desired finished configuration. The present invention is directed to a lightweight structural part formed of carbon fiber-reinforced plastic which is constructed from carbon fiber rovings wound on a mandrel and subsequently processed by pressing. Carbon-fiber-reinforced plastics are used for structural parts which must have a high rigidity and a very low specific weight. Further, for many applications an extremely low coefficient of thermal expansion is also required. In the production of carbon fiber-reinforced plastics by winding yarn or rovings, it is known to carry out the winding of the yarn or rovings in uniform layers staggered by 90.degree.. To obtain a symmetrical structure of sufficient strength and also to prevent delamination, a laminate of four crossing layers is required, because the delamination particularly under alternating stresses cannot be prevented if only two layers are employed. In the further processing of the laminate, it is known to remove the finished wound laminate from the winding mandrel before it is hardened, to cut it into the desired parts, and then to harden the parts in molds. However, forming high strength carbon fibers into mats is generally not possible, because of their brittleness. The present invention is directed to the problem of providing lightweight structural parts of carbon fiber-reinforced plastic with improved properties over what has been used in the past. Therefore, in accordance with the present invention, the problem is solved by providing a planar lightweight structural part formed in a lattice-type arrangement of band-shaped fiber strands each made up of several rovings or lengths of yarn with the crossing fiber strands arranged in a woven-type structure. In another feature of the invention, each fiber strand consists of two layers of three lengths of yarn or rovings each or a different number of layers are provided in the fiber strands of the lightweight part of a different number of lengths of yarn or rovings are used per layer of fiber strands. In accordance with the invention, it is suggested that the woven-type structure of the fiber strands be ordered in a two-dimensionally defined recurring pattern that is, in a lattice-type arrangement with adjacent strands extending in the same direction disposed in spaced relation so that the crossing strands form a repetitive pattern of four-sided openings across the entire woven-type structure. The essential advantage of the invention is that the wound laminate does not consist of complete laminar layers, rather the individual lengths of yarn or rovings are wound into bandshaped strands and the strands are disposed in spaced relation to one another in both directions of the woven-type structure. As a result, an effective wall thickness is obtained, due to the material used for a certain area, which, as in a perforated sheet, is considerably reduced as compared to a structure of an equal number of layers with the individual windings disposed in side-by-side relation. The interwoven arrangement of the fiber strands has the effect that, considered over a larger area, a symmetrical and planar part of great strength is obtained. Moreover, delamination is effectively prevented by the structure of the laminate formed in accordance with the invention even under the effect of high alternating stresses and at considerable temperature differences. The physical properties of the structural parts are favorably influenced by the disposition of the fiber strands in a two-dimensionally defined pattern which, similar to a woven fabric, displays regularly or irregularly displaced strand junctions. Because of the lattice-type structure of the wound laminate with the spacing between adjacent fiber strands, the intersections of the fiber strands can also be used in carbon fibers of the high-strength type, which would break when woven in a weft and warped arrangement, because of the fiber's brittleness. In highly stressed parts, the total strength of the lightweight structural part formed as a laminate can be considerably increased with less material by winding the laminate with a partially greater number of layers per fiber strand and with a partially greater number of lengths of the yarn or rovings per layer. The structure of the fiber material according to the present invention with the fiber strands being wound permits a simple control of the fiber orientation, both during the winding step and during the subsequent processing of the wound woven structure into a finished lightweight part. In the application of the invention, the lightweight structural part can be used as a one-sided cover or as a primary element of a structural part or as the outer layers of a sandwich-type panel. Further, the structural part can be used in forming parts with a double-spherical curvature, for instance, for use in forming antenna mirrors and their supporting structure. Preferred applications of the lightweight structural parts according to the present invention are in aviation and space travel to afford further weight savings as compared to presently known materials. In aviation, the structural parts can be used in wing drop indicators, floor constructions and antennas built into radomes. In antennas, a substantial weight reduction can be achieved, as compared to conventional constructions, by making both the antenna mirrors and the supporting structure from the lightweight parts formed in accordance with the present invention. These extremely lightweight antennas can be rotated practically without inertia, so that considerably improved antenna function can be achieved. In space travel applications, the lightweight structural parts can be used in the construction of entire satellite bodies as well as supporting plates for solar cells. Furthermore, the structural parts can be used in sandwich panel constructions as the covering layers of the panels. In space travel applications, the extremely low coefficient of thermal expansion of carbon fiber-reinforced plastic is of particular advantage. The various features of novelty which characterize this invention are pointed out with particularity in the claims annexed to and forming a part of this disclosure. For a better understanding of the invention, its operating advantages and specific objects attained by its use, reference should be has to the accompanying drawings and descriptive matter in which there are illustrated and described preferred embodiments of the invention.
Metadata
Assignee
- Messerschmitt-Bolkow-Blohm GmbH
Inventor
- Wolfgang Jonda
Application Information
Classifications
Patent Drawings (1 sheets)
Description
Brief Description of the Drawing
Detailed Description of the Invention
Claims
Patent Citations (4)
| Patent | Date | Inventor | Cited By |
|---|---|---|---|
| US2779702 | 1957-01-01 | Wilson et al. | |
| US3367812 | 1968-02-01 | Watts | |
| US3700535 | 1972-10-01 | McCoy et al. | |
| US3914494 | 1975-10-01 | Park |