The present disclosure relates to a rockfall barrier.
Such a rockfall barrier is known from EP 2 489 785 B1. The advantage of this rockfall barrier is to be seen in the fact that, on the one hand, it is possible to absorb high energy in the net and, on the other hand, it is also possible to transport the collected material from the support area to more easily accessible areas lying below the supports.
In the common rockfall barrier, the braking elements required to absorb the high energy are mostly located in the area of the supports. This makes maintenance and repair work more complex, especially when the common rockfall barrier is installed in terrain that is difficult to access.
It is therefore the object of the present disclosure to provide a rockfall barrier of the type indicated in the preamble of claim 1, which is also suitable for absorbing high energy in the net, while at the same time facilitating maintenance and repair work, in particular at braking elements.
The rockfall barrier according to the present disclosure for installation between an uphill side and a downhill side of a hill slope comprises, at least two guide devices, a net with an upper and a lower edge, an upper load-bearing rope, which guides the upper edge of the net at the guide devices, and at least one middle rope. This middle rope extends from an upper end point fixed to the upper load-bearing rope to a lower end point, which is fixable at the hill slope.
Advantageously, the rockfall barrier according to the present disclosure can be provided with only one upper load-bearing rope. Alternatively, however, it is also possible to provide several such upper load-bearing ropes, in particular to bundle them, if this is necessary due to the loads to be expected. Furthermore, the rockfall barrier according to the present disclosure does not comprise any horizontal middle ropes, which would possibly retain blocks to be caught in the upper area or would again increase the maintenance and repair effort, since such horizontal middle ropes also have to be provided with braking elements.
In contrast, the arrangement of the middle rope of the rockfall barrier according to the present disclosure has the advantage that it can guide the collected stone or boulder downwards.
As a possible alternative, it can be provided that the at least one middle rope is also guided diagonally or obliquely through the hit field in the area of the net. For this purpose, the middle rope can be arranged from an upper end point fixed to the upper load-bearing rope to a lower end point fixed at the hill slope. Also in this embodiment, the at least one middle rope can be provided with a braking element fixable at the hill slope and arranged adjacent to the lower edge of the net.
The connection of the middle rope with the net can be formed by looping it through the net, or by abutting it on the hill facing side at the top or on the side facing away from the hill. In this case, the middle rope is preferably connected to the net via connecting elements such as shackles or sewing ropes.
Advantageously, the at least one middle rope is provided with a braking element fixable at the hill slope and arranged adjacent to the lower edge of the net.
This advantageously ensures not only that the collected material can be conveyed from the support area (area with supports) to more easily accessible areas below the supports, but also that the braking element is located in these more easily accessible areas, which considerably facilitates necessary maintenance and repair work, especially after an impact. The dependent claims relate to advantageous further developments of the present disclosure.
In another particularly preferred embodiment, the rockfall barrier according to the present disclosure comprises two middle ropes, which can each be provided with an associated braking element, which are arranged adjacent to the lower edge of the net.
For fixing the at least one middle rope, an anchor can be provided, which is fixable at the hill slope.
If several middle ropes, in particular two middle ropes, are provided, each of these middle ropes can be fixed with an associated anchor at the hill slope.
Further details, features and advantages of the present disclosure will be apparent from the following description of embodiments based on the drawing:
This rockfall barrier 1 comprises at least two guide devices, of which only one guide device 2A is visible due to the illustration chosen in
As an alternative to such supports, it is possible to tension the net 3, for example, in a terrain gully, in particular in the form of a stream or river bed, in which case no supports are required, as the net 3 can be fixed to the edges delimiting the terrain gully (channel-shaped terrain form).
Another alternative for supports could be two walls, especially in the form of ferroconcrete walls or similar, which are provided anyway, for example, on a mountain road for other purposes.
As can be seen from a combined view of
The rockfall barrier 1 according to the present disclosure further comprises an upper load-bearing rope 6, which guides the upper edge 4 on the at least two guide devices, in particular the five guide devices 2A to 2E provided according to
According to the present disclosure, at least one middle rope 7A is also provided, which extends from an upper end point 8A fixed to the upper load-bearing rope 6 to a lower end point 9A fixable at the hill slope B.
A combined view of
As
At the lower end, the support 2A is provided with a bolt 36 with spring cotter pin and a bottom plate 35. The bottom plate 35 is fixed at the hill slope B by a tension pile 37, a micropile tube 38 and a compression pile 39.
As previously explained with reference to
The support 2A is connected with a load-bearing rope 12A. This load-bearing rope comprises an upper end point 14A, which is fixed to the support 2A. The load-bearing rope 12A further comprises a lower end point 15A, which is connected with a braking element 16A and which is fixable at the hill slope B via an anchor 17A.
A corresponding arrangement comprises the support 2B, which can also be fixed at the hill slope B via a load-bearing rope 12B with upper end point 14B and lower end point 15B as well as braking element 16B and anchor 17B.
In the example, two middle ropes 7A and 7B extend between the load-bearing ropes 12A and 12B, which are called middle ropes, because they are arranged in a middle area between the load-bearing ropes 12A and 12B.
The two middle ropes 7A and 7B comprise upper end points 8A and 8B and lower end points 9A and 9B. The upper end points 8A and 8B are attached to the upper load-bearing rope 6 via rope connections 22A and 22B respectively. The rope connections 22A and 22B can, for example, be formed as T-shaped connections, which are preferably movable components.
The middle ropes 7A and 7B further comprise braking elements 10A and 10B arranged adjacent to the lower edge 5 of the net 3, to which the lower end points 9A and 9B are fixed. The fixing of the braking elements and thus the fixing of the lower end points 9A and 9B of the middle ropes 7A and 7B is carried out by anchors 11A and 11B.
Thus, all braking elements 10A, 10B of the middle ropes 7A, 7B and 16A as well as 16B of the load-bearing ropes 12A and 12B are arranged adjacent to the lower edge 5 of the net 3, wherein the lower edge 5, as
Should it be necessary due to particularly high expected energy, braking elements can also be provided in the area of these side anchors 20A and 20E.
The rope connections 22A and 22B can, as explained above, be either movable along the load-bearing rope axis of the upper load-bearing rope 6 or also formed in a fixed manner. As also explained previously, the particularly preferred embodiment shown in
Furthermore, middle ropes 7A′, 7B′ are provided between the load-bearing ropes associated with supports 2B and 2C, middle ropes 7A″ and 7B″ between the load-bearing ropes associated with supports 2C and 2D, and middle ropes 7A′″ and 7B′″ between the load-bearing ropes associated with supports 2D and 2E. With regard to their arrangement, extension and fixing, reference can be made to the above description of the middle ropes 7A and 7B, since in this respect both the supports 2A to 2E and the respective middle ropes are formed, arranged and fixed identically.
This also applies to the hill side restraint ropes, which have already been explained by means of the restraint ropes 18A, 18A′ and 18B for the supports 2A and 2B as examples for all supports 2A to 2E.
The embodiment of the rockfall barrier 1 according to the present disclosure as shown in
With regard to all other components of the embodiment of the rockfall barrier 1 according to
This also applies to the embodiment of the rockfall barrier 1 according to
Furthermore, there is the advantage that the braking elements of the load-bearing ropes 12A and 12B as well as the middle ropes 7A and 7B can easily extend in the area created by the distance A, if this is necessary due to the impact of one or more boulders into the net 3.
As stated, reference may be made to the description of the preceding embodiments with respect to the construction of the arrangement and the fixing of the components of the rockfall barrier 1 as shown in
In addition to the foregoing written disclosure of the present disclosure, explicit reference is hereby made to the graphic representation of the present disclosure in
Number | Date | Country | Kind |
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20173750.9 | May 2020 | EP | regional |
Filing Document | Filing Date | Country | Kind |
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PCT/EP2021/061738 | 5/4/2021 | WO |