A generic device is known from WO 2009/137951. This known device is embodied as a device for shock absorption in cable constructions, in particular for protective constructions against falling stones, mudslides and snow, and absorbs energy introduced into a tensioned cable based on the fact that an intermediate piece, which is deformable by tensile forces and which is installed in the tensioned cable, has one or multiple longitudinal elements. Here, with its one end, the at least one longitudinal element is connected to a cable end, on the one hand, and, on the other hand, it is guided about a deflection element that is connected to another cable end. Finally, mechanisms are provided by which the formed deflection angle of the longitudinal element(s) is substantially maintained if the intermediate piece is loaded.
For one thing, one disadvantage of this known device is that it entails a relatively high structural effort, which is primarily based on the fact that a bending or deflection of the intermediate piece occurs via the deflection element for the purpose of energy absorption, wherein a special device has to be provided for maintaining the deflection angle, which may consist of two pilot pins, for example. Further tests conducted in the context of this invention have shown that despite the objective of the generic printed document to better define or optimize the shock absorption development there is still a need for further improvement, in particular if high loads are introduced into the cable.
Thus, it is the objective of the present invention to create a protective construction, in which an at least substantially linear energy absorption of the loads introduced into the cables is ensured.
The objective is achieved through the features of claim 1. The subclaims contain advantageous further developments of the invention.
The advantages of the invention include the fact that the structural design of the device according to the present disclosure can be realized in a simpler manner, since for example no appliances for maintaining a deflection angle are necessary, since the cutting unit can be guided in a linear and thus deflection-free manner through the braking profile or is pulled through it by the cable when a tensile force is applied.
The protective construction according to the present disclosure can be used against rock fall, falling wood, avalanches or the like (for example as a catch fence for car racing tracks).
Such a protective construction usually has a carrier structure which, depending on the installation length, has a plurality of supports that are arranged at a distance to each other and that can be fixated at a slope. A net, which can preferably be provided with a mesh layer, is attached at the supports. For this purpose, a top and a bottom carrying cable are provided. The top carrying cable guides the net in the area of carrier heads of the supports, and the bottom carrying cable guides the net in the area of the support foot. Laterally of the net, the top and bottom carrying cables are attached in the subsoil by way of rock anchors, wherein the energy dissipation devices according to the invention can be provided in this area as well as preferably also in the area of the net. In principle, it is also possible to use only one cable or multiple cables stretching out the net as the carrier structure.
In a particularly preferred embodiment, one or multiple middle cables are present between the top carrying cable and the bottom carrying cable, which can be connected to the net, for example by being a looped through it. Here, the connection can be realized continuously across the entire length of the control structure or can be omitted in the area where the middle cables extend across the carriers of the carrier structure, wherein in that case the looping through, which has been mentioned by way of example, is not realized in this area.
The middle cables extend across the entire length of the control structure and are also fixated in the subsoil laterally of the outermost carriers of the protective construction, wherein here again rock anchors can preferably be provided, in the area of which energy dissipation devices or cable brakes formed corresponding to the principles of the present disclosure may be provided.
Further details, features and advantages of the invention follow from the following description of exemplary embodiments based on the drawing.
Herein:
The protective construction 23 has a so-called carrier structure which is usually formed by a plurality of supports, which may for example be affixed via rock anchors 24 in the base of a slope. Depending on the length of the control structure of the protective construction 23, a plurality of such carriers is provided, which can be positioned next to each other at the slope H at selectable distances to each other. In principle, it is also possible that only one such carrier or only one cable arrangement is provided.
The protective construction 23 further has a net 24 which is guided via carrying cable arrangement 27 in the area of a carrier head 26 of the carrier 25 that can be seen in
In the area of the support foot 26 of the supports 25, a bottom carrying cable arrangement 28 is provided, which again can be comprised of one carrying cable or multiple carrying cables.
In the shown, particularly preferred exemplary case, a middle cable arrangement 29 is provided between the top carrying cable arrangement 27 and the bottom carrying cable arrangement 28. This cable arrangement 29 can have one or multiple middle cables that can be guided at the carrier 25 via guide devices 30 or 31. Here, the guide devices 30 and 31 can for example be embodied as shackles, tube cable guides, or caliper guides.
Further, the embodiment of the protective construction 23 according to
A corresponding fixation of the top and bottom carrying cables (which is not shown in
The device 1 has a braking profile 2 which in an exemplary case is constructed of an elongated rectangular sheet-metal strip 11A and a guide web 11B that is centrally welded to the same, and at which an end stop 10 is affixed at one end.
As illustrated in a combined view of
As can in particular be seen from
As is further shown in the combined view of
The cutting unit 3 also has a connecting lug that is indicated by reference number 13 and inside of which a connecting recess 15, into which e.g. a shackle of a cable arrangement can be inserted, is also provided.
Here,
Such a device 1 for energy dissipation can be installed in the protective construction 23, for example at the position of the devices for energy dissipation that are characterized by the reference numbers 35 and 36.
The particular advantage of the embodiment according to
Further resulting are advantages with regard to simple mounting through the pre-cut gaps 7A and 7B into which the cutting sheets 5A and 5B can be inserted in a simple manner. Further, the cutting process is improved by the tapering inlet areas 8A and 8B connecting to the gaps 7A and 7B, as well as the insertion slits 9A and 9B in turn connecting to the former.
As previously explained, in the embodiment according to
As the cutting unit 3 is pulled through the braking profile with its blade or its blades 4A, 4B, energy dissipation is realized by the braking profile 2 being split by the blade or the blades 4A, 4B, that is, a part of the braking profile 2 is severed by the cutting unit 3.
In contrast to that, in the embodiment of the device 1 for energy dissipation according to
The cutting unit 3 of the embodiment according to
At the opposite end, the braking profile 2 also has a connecting lug which is indicated by the reference number 12 as it corresponds to the connecting lug 12 of the embodiment according to
If in the course of a braking process the tension rod 16 including the cutting sheet 17 affixed thereat is pulled with its cutting edges 4A and 4B through the hollow braking profile 2, the cutting edges 4A and 4B cut open the braking profile, whereby an energy dissipation occurs. Here, the cutting profile 17 is embodied as a flat profile, as follows from a combined view of
In an exemplary case, the cutting sheets or cutting plates 5A and 5B are formed in a trapezoid manner in a top area and aligned in parallel to each other, as illustrated in the perspective rendering of the cutting unit 3 in
As
Further,
It is further illustrated in
As follows from the above explanation of the components of the dissipation device 1 according to the invention, the braking profile 2 as well as the cutting unit 3 respectively represent objects that can be traded autonomously and independently of each other, and thus are invention features which are characterized by the previously explained constructional and functional features.
Further, it should be stressed that the blades or cutting edges 4A, 4B can be hardened in both previously described embodiments. Such hardening can preferably be realized by way of gas nitration.
The previously described particularly preferred embodiment of the braking profile 2 for the device 1 for energy dissipation can also be embodied merely as a flat sheet-metal strip having neither pre-cut insertion gaps 7A, 7B nor inlet areas 8A, 8B or insertion slits 9A, 9B. In that case, it is only necessary to provide connecting lugs, such as the connecting lugs 12, 13 that were described by way of example. However, the previously described embodiment of the braking profile 2 with insertion gaps, inlet areas and insertion slits is a particularly preferred embodiment. Here, the inlet areas 8A, 8B can be formed in a tapering or obtusely tapering manner. What is to be understood by “tapering” here is that an inflow area with an acute angle is created, while “obtusely tapering” would mean that the inflow area can be embodied so as to be at least slightly rounded.
In addition to the above written disclosure, the drawn rendering of the invention in
The following series of paragraphs is presented without limitation to describe additional aspects and features of the disclosure.
Number | Date | Country | Kind |
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16193968 | Oct 2016 | EP | regional |
Filing Document | Filing Date | Country | Kind |
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PCT/EP2017/075835 | 10/10/2017 | WO | 00 |
Publishing Document | Publishing Date | Country | Kind |
---|---|---|---|
WO2018/069335 | 4/19/2018 | WO | A |
Number | Name | Date | Kind |
---|---|---|---|
20030175076 | Albritton | Sep 2003 | A1 |
20060193688 | Albritton | Aug 2006 | A1 |
20140374203 | Stelzer | Dec 2014 | A1 |
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527626 | Sep 1972 | CH |
1229341 | Nov 1966 | DE |
3108607 | Apr 1982 | DE |
29918625 | Feb 2000 | DE |
0709265 | May 1996 | EP |
2673253 | Aug 1992 | FR |
9613972 | May 1996 | WO |
Number | Date | Country | |
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20200056337 A1 | Feb 2020 | US |