The invention relates to a component connection comprising at least two CFC components that are interconnected in a force-fitting manner by means of a connecting system exclusively having connecting elements consisting of CFC or graphite.
Component connections between CFC components are generally used in all cases in which CFC components are employed as structural elements of machine parts or support structures. Apart from static or dynamic mechanical stresses, other stresses, such as in particular thermal stresses, occur because of special environmental conditions as a function of the type of use that influence the creep rupture strength of a connection.
For instance, CFC components are also employed in circulation devices that are used in industry furnaces for redistributing or homogeneously mixing a furnace atmosphere. Furnaces of this kind are used for performing thermal processes in which carbon materials are subjected to pyrolysis or in which carbon components are carbonized or graphitized, for example.
Irrespective of the individual processes taking place in an industry furnace, the circulation devices used therein are exposed to massive thermal stresses because temperatures of 2000° C. or more are reached at times in the furnace atmosphere. Because of these high thermal stresses, materials are now routinely used for the circulation devices that are characterized by a particularly low coefficient of thermal expansion so that thermally induced tensions in the used materials can thus be limited. Carbon fiber-reinforced carbon (CFC) has proved to be a particularly suitable construction material for circulation devices owing to its high-temperature resistance and its low weight. It is problematic, however, that because of its fiber orientation, carbon fiber-reinforced carbon exhibits a pronounced anisotropy, which causes CFC to have a significantly lower coefficient of thermal expansion in the direction of the fibers than vertically to the direction of the fibers. For example, in connections between CFC components that are formed by a screw connection, which have connecting elements consisting of CFC or graphite, such as a threaded bolt consisting of CFC, which is clamped to the CFC components by means of graphite nuts, significant mechanical tensions may consequently occur in the area of the screw connection if the fibers of the CFC components and of the connecting bolt are oriented crosswise.
Since CFC has an extremely porous form in particular in the area between the fibers, these tensions may lead to settling phenomena in the area of the screw connection, which can result in a loosening of the originally force-fitting screw connection between the CFC components in the course of the temperature treatment and in component failure.
One possibility of preventing such a component failure is to define maintenance intervals as a function of the occurring temperature stress in order to be able to replace the screw connections in time before components fail. Since performing the maintenance or inspection of the circulation devices and in particular eventually necessary repairs are accompanied by enormous effort, it is the object of the present invention to enhance component connections, in particular those used in circulation devices, and to propose a suitable method for producing component connections of this kind to the effect that a permanent force-fitting connection between the CFC components becomes possible.
To attain this object, the component connection according to the invention has the features of claim 1.
First of all, the component connection according to the invention comprises at least two CFC components to be interconnected that are interconnected in a force-fitting manner by means of a connecting system exclusively having connecting elements consisting of CFC or graphite, the component connection having a spring element consisting of a CFC material.
By using the CFC spring element, it is possible to compensate settling phenomena in a force-fitting connection between two CFC components by means of the effect of the spring element without the use of a material other than the material of the CFC components being necessary.
While it is of course generally known to use a spring element for compensating settling phenomena on screw connections, these known spring elements consisting of metal cannot be used in the circulation device according to the invention since the latter is especially intended to be employed in a high-temperature environment. At the temperatures in question, which quite often reach 2000° C. and beyond, the creep limit of metals, for example, is exceeded by far so that the desired compensating spring effect is no longer available in the afore-mentioned temperature range. By using a spring element consisting of a CFC material, the use of spring elements compensating settling phenomena in screw connections that have to permanently ensure a force-fitting connection between the components interconnected by means of the screw connection even under high-temperature conditions becomes possible for the first time.
In the major number of cases, it is advantageous to realize the connecting system between the CFC components as a screw-connection device that has a threaded bolt consisting of a CFC material and at least one nut consisting of a graphite material, the spring element being arranged between the nut and a CFC component in such a manner that a pressure force is active between the nut and the CFC component.
Very basically, the use of the spring elements consisting of a CFC material is of course not limited to the combination with a connecting system realized as a screw-connection device. Instead, spring elements consisting of a CFC material can also be used for compensating settling phenomena in other force-fitting connecting systems, such as a clamping or wedging connection, which allow a mechanically pre-tensioned connection for a force-fitting effect in the same manner as a screw connection.
It is particularly advantageous if the threaded bolt is provided with a bolt head and if the threaded bolt penetrates two CFC components that are to be interconnected in a force-fitting manner and that are arranged between the bolt head of the threaded bolt and the nut so that the CFC spring element can be generally used in the same manner as a conventional steel spring element, whose use is excluded in the circulation device according to the invention for the afore-discussed reasons.
An overall simple structure of the connecting system including a smallest possible number of different components becomes possible if the bolt head is formed by a nut consisting of a graphite material.
In a particularly preferred embodiment of the circulation device, the number of components can be reduced even further if the threaded bolt is formed on a first one of the CFC components that are interconnected in a force-fitting manner and penetrates the other CFC component, which is arranged between the first CFC component and the nut.
In another preferred embodiment, the spring element is realized as a beam spring element and is provided with two support legs for support on a CFC component and an elastic beam connecting the support legs for support on the bolt head or the nut of the connecting system.
Alternatively, in another embodiment, it is also possible to realize the spring element as an annular spring element, including a spring ring that has support legs on two opposite axial surfaces, said support legs being arranged on the axial surfaces in a radially distributed manner so that a support leg formed on one axial surface is located between two support legs formed on the opposite axial surface.
It is particularly advantageous for the effectiveness of the spring elements if at least the elastic beam of the beam spring element or the spring ring of the annular spring element has a fiber orientation with fibers that extend along a stress axis that connects the support legs.
If the component connection is realized on a circulation device for circulating an ambient atmosphere, the circulation device having a plurality of components that comprise at least a shaft for connecting the circulation device to a driving device, a blade carrier connected to the shaft and a plurality of blades arranged on the blade carrier for applying a flow impulse to the atmosphere, at least the blade carrier and the blades are realized as CFC components between which the component connection is formed.
In this way, a permanently force-fitting connection between interconnected CFC components of the circulation device is made possible so that settling phenomena due to a gap formation between the interconnected components and a resulting interruption of the force fit are prevented by the material-bonded connection.
In the following, preferred embodiment examples of the invention will be explained in more detail with the aid of the drawing.
In the figures:
As can be taken in particular from
As can be taken from the detail illustration in
As further becomes clear from the schematic illustration of
Owing to the elastic flexibility of the beam spring element, the screw-connection device 31, more precisely the threaded bolt 36 of the screw-connection device, can be loaded with a sufficiently high pre-tension force so that even if settling phenomena occur in particular vertically to the fiber orientation 46 in the porous carbon material of the components that are clamped together with a pre-tension force, the components can compensate them by means of the elasticity of the beam spring element 42, and the components clamped together via the screw-connection device 31 can still fit against each other with sufficient force to effectively prevent relative motions of the components.
In the circulation device 50 illustrated in
In the circulation device 50, blades 55 are accommodated between the blade carrier 54 and an end ring 56, which, as illustrated in
The embodiment example of the circulation device 50 illustrated in
As is shown in particular in
Moreover, the screw-connection device 74 is provided with an annular spring element 75, which is illustrated as an individual component in
As
The support legs 80 are arranged in such a way that each support leg arranged on an upper axial surface 78 is located between two support legs 80 arranged on the lower axial surface 79. The annular spring element 75 is realized as a CFC component having a fiber orientation 81 that, as indicated in
With reference to the figure sequence of
As
As indicated by the schematic illustration in
Instead of silicon, which is used as a carbide-forming agent in the aforedescribed embodiment example, it is also generally possible to use other carbide-forming agents, such as metals, in particular titanium, tantalum or chromium, to produce metal carbides in the connecting zone, or also other semiconductors than silicon, such as boron. In particular if carbon black is added to the silicon, the silicon is particularly suited as a carbide-forming agent because the occurrence of free silicon in the connecting zone can be limited to the furthest extent by the addition of carbon black in order to thus obtain a connecting zone that allows thermally stable material performance over a wide temperature range.
Number | Date | Country | Kind |
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10 2012 214 407.2 | Aug 2012 | DE | national |
Filing Document | Filing Date | Country | Kind |
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PCT/EP2013/065206 | 7/18/2013 | WO | 00 |