The invention relates to a machine according to the features cited in the introductory part of claim 1.
With machines of this type, the existing track position is dissolved entirely as a result of the removal of the ballast bed. Therefore, it is advantageous to trace said position before it is destroyed and to make the position data available, with a time delay, for restoration of the new track position. Such machines are known, for example, from U.S. Pat. No. 4,432,284, GB 2 268 529, GB 2 268 021 and U.S. Pat. No. 7,181,851.
It is the object of the present invention to provide a machine of the type mentioned at the beginning with which it is possible to optimise the precision and durability for the restoration of the original track position.
According to the invention, this object is achieved with a machine of the specified kind by means of the features cited in the characterising part of claim 1 or 7.
With an embodiment of this kind, it is possible without problems to carry out a precise tracing and restoration of the track position with regard to both vertical and horizontal location, wherein the structural expense can be kept to a minimum. Consequently, the retooling of a machine at a later time can also be accomplished in a simple manner. In doing so, by including the global navigation satellite system, it is possible to also take into account the absolute track position. Since—in the scope of the subsequent track tamping for producing an exact finalised track position—only slight position corrections are required, the durability of the position of the freshly tamped track can be extended.
Additional advantages of the invention become apparent from the dependent claims and the drawing description.
The invention will be described in more detail below with reference to embodiments represented in the drawing in which
A machine 1, visible in
The ballast 4 picked up by the pick-up device 3 is delivered to a screening plant 5 for cleaning and thereafter is discharged upon the track 2 via a discharge conveyor belt 6. The machine 1 has a machine frame 8 supportable on on-track undercarriages 7 and is mobile continuously in a working direction 9 during working operations. Provided immediately to the rear of the pick-up device 3 is a track lifting device 11 for lifting the track 2, said device being connected to the machine frame 8 and vertically and transversely adjustable by means of drives 10.
Provided in front of the said pick-up device 3, with regard to the working direction 9, and connected to the front on-track undercarriage 7 is a first signal receiver 12—suitable for position detection in a global navigation satellite system—for tracing an existing track position.
A second signal receiver 13—suitable for position detection in a global navigation satellite system—for tracing a new track position created by placing the raised track 2 upon the reintroduced ballast 4 is connected to the rear on-track undercarriage 7. Associated with both signal receivers 12, 13 is a control device 14 designed for actuation of the drives 10 which shift the track lifting device 11 relative to the machine frame 8.
Alternatively, however, both signal receivers 12, 13 can also be arranged directly on the machine frame 8 or, as shown in
A reference station 17 which has been surveyed in a terrestrial coordinate system is useful to significantly improve the precision of the position signals for the signal receivers.
For optimising the reception of the satellite signals, it is advantageous to arrange the signal receiver 12, 13, 16 on the driver's cab 15, as shown in
As shown in
The method for working operations of the machine 1 will now be described in more detail. The first or front signal receiver 12 is guided along the vertical and lateral position of the track 2 by means of the connection to the on-track undercarriage 7. During this, with the aid of the satellite signals compensated by the reference station 17, the vertical and transverse position of the track 2 at a location x is registered at short time intervals as the existing track position. The corresponding data are intermediately stored in the control device 14 and, after reaching the location x, compared—with a time delay in dependence upon a distance measuring device 22—to the position data of the second signal receiver 13. Following this, the drives 10 of the track lifting device 11 are actuated until the position data of the second signal receiver 13 correspond to the stored data of the first signal receiver 12 and the track comes to lie in a desired track position.
By alternatively employing the third signal receiver 16, it is possible to take corrective action directly while laying the track 2 upon the discharged ballast 4 for exact positioning of the track in the desired position.
If, instead of a first and second signal receiver described in
Number | Date | Country | Kind |
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A 426/2012 | Apr 2012 | AT | national |
Filing Document | Filing Date | Country | Kind |
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PCT/EP2013/000790 | 3/15/2013 | WO | 00 |