The invention relates to sliding doors, in which door leaves may be opened or closed by sliding, and to vehicles comprising sliding doors.
Sliding doors are used, for example in rail vehicles, as toilet doors. A sliding door with a circular footprint is disclosed, for example, in the German published patent application DE 10 2008 047 792 A1.
In the field of vehicle technology, in particular rail vehicle technology, there is the problem that, when the vehicle accelerates, sliding doors are able to open or close in an undesired and/or automatic manner if they are not securely locked, and even in the case of lateral acceleration of the vehicle, depending on the alignment of the respective sliding door.
Accordingly, the object of the invention is to specify a is sliding door which prevents automatic door leaf movement but is still user-friendly.
This object is achieved according to the invention by a sliding door having the features as claimed in claim 1. Advantageous embodiments of the sliding door according to the invention are disclosed in the subclaims.
Accordingly, it is provided according to the invention that the sliding door comprises: a brake element for braking the door leaf, an adjustment device designed to switch the brake element over from a braking position in which the door leaf is being braked, to a release position in which the door leaf is not being braked, and vice versa from the release position to the braking position and a motorized drive unit which is designed to cooperate with the adjustment device and to allow the brake element to be adjusted.
A substantial advantage of the sliding door according to the invention may be seen to be that an undesirable automatic movement of the door—when the door is not actuated—may be prevented by the brake element provided according to the invention. The brake element may be advantageously adjusted, in particular released, by motor.
In order to permit a manual operation of the sliding door in a simple manner, it is regarded as advantageous if the sliding door has a manual control element for opening and closing the door leaf. It is particularly advantageous if the manual control element is connected to the adjustment device and when actuated permits an adjustment of the brake element from the braking position into the release position.
It is particularly advantageous if—at least in the closed position of the sliding door—a locking of the door leaf, preferably by a positive connection, may be additionally achieved by the manual control element.
Preferably the brake element is suitable for braking the door leaf in at least one intermediate position between the fully open position of the door leaf and the fully closed position of the door leaf. It is, however, particularly advantageous if the brake element is designed to brake the door leaf in any possible intermediate position between the fully open position and the fully closed position of the door leaf.
The brake element preferably produces its braking action by friction. The brake element is preferably a brake shoe or brake piston.
It is also regarded as advantageous if the motorized drive unit is not only able to adjust the brake element but also to displace the door leaf, in particular in the direction of the closed position of the door leaf. In this embodiment, the motorized drive unit exerts a dual function since it serves both for adjusting the brake element and also for adjusting the door leaf.
It is regarded as particularly advantageous if the motorized drive unit is able to displace the door leaf optionally in the direction of the closed position of the door leaf and optionally in the direction of the open position of the door leaf.
The adjustment device may be produced in a simple and cost-effective manner if said adjustment device comprises a is strand-shaped or rod-shaped brake adjusting unit, in particular in the form of a brake rod, a brake tube, a cable or wire, which is connected to the brake element and which in the case of a displacement in its longitudinal direction transfers the brake element from the braking position into the release position or vice versa. The cross section of the brake adjusting unit may be of any type, i.e. for example round, oval or polygonal, in particular triangular or quadrangular.
The adjustment device preferably has a displaceable driver unit, in particular in the form of a driver slide which, by displacement transversely, in particular vertically, to the longitudinal direction of the brake adjusting unit, is able to displace, in particular to lift or lower, the brake adjusting unit in the longitudinal direction thereof.
Relative to the coupling of the driver unit and the brake adjusting unit, it is regarded as advantageous if the driver unit or the brake adjusting unit has a wedge surface which is oriented obliquely to the longitudinal direction and which, in the case of a sliding movement of the driver unit transversely to the longitudinal direction, triggers a movement of the brake adjusting unit in the longitudinal direction.
It is advantageous if the wedge surface is oriented obliquely to the vertical and, in the case of a sliding movement of the driver unit in the horizontal direction, triggers a vertical movement of the brake adjusting unit.
Relative to the arrangement of the driver unit, it is regarded as advantageous if the driver unit is able to be displaced along the same linear or curved sliding path, the door leaf being displaced along said path when the sliding door is opened or closed.
Alternatively or additionally, the driver unit and the brake adjusting unit may be coupled together via at least one coupling rod which, in the case of a sliding movement of the driver unit transversely to the longitudinal direction of the brake adjusting unit, triggers a movement of the brake adjusting unit in the longitudinal direction thereof.
Relative to the arrangement of the components to one another, it is regarded as advantageous if the motorized drive unit, the adjustment device and the door leaf are arranged relative to one another such that the motorized drive unit, when started up to adjust the door leaf, initially acts on the adjustment device and permits the brake element to be transferred from the braking position into the release position before the door leaf is driven.
It is particularly advantageous if the motorized drive unit, the adjustment device and the door leaf are arranged such that the motorized drive unit, when started up to adjust the door leaf, initially displaces the displaceable driver unit transversely to the longitudinal direction of the brake adjusting unit and relative to the door leaf, whereby the brake element is transferred from the braking position into the release position and namely until the driver unit strikes against a stop on the door leaf side, and that after the driver unit comes to bear against the stop the drive force of the motorized drive unit is transmitted to the door leaf and the door leaf is displaced via the driver unit bearing against the stop.
The adjustment device preferably comprises a spring drive which transfers the brake element indirectly or directly, in particular by the cooperation of the driver unit, from the release position into the braking position as soon as the motorized drive unit is inactive.
It is also advantageous if the motorized drive unit comprises a drive roller, in particular in the form of a friction roller, which bears against the driver unit at least during operation of the motorized drive unit and is set in rotational motion for adjusting the adjustment device and the door leaf, wherein the drive roller, when rotated by friction and/or a positive connection, initially leads to a sliding movement of the driver unit relative to the door leaf and subsequently, after the driver unit strikes against the stop of the door leaf, leads to a common sliding movement of the driver unit and the door leaf.
The driver unit is preferably positioned at the top on the door leaf and is displaced on the upper face of the door leaf. For low-friction guidance of the driver unit, said driver unit is preferably guided by means of the guide rollers which are attached to the upper face of the door leaf. The adjustment device preferably extends vertically through the entire door leaf and protrudes upwardly therefrom on the upper face of the door leaf and protrudes downwardly therefrom on the lower face of the door leaf.
When the motorized drive unit is not in operation, the drive roller may be mechanically separated from the adjustment device and the door leaf. Alternatively, it may be provided that during operation and non-operation of the motorized drive unit the drive roller bears against the adjustment device and during manual door operation said drive roller is passively rotated therewith. The last variant is advantageous if the internal friction of the drive roller and/or the drive unit is sufficiently low when inactive, in order to permit a manual operation of the sliding door when the drive roller bears thereagainst, even for people of average physical strength without a great degree of effort.
It is regarded as particularly advantageous if the above-described sliding door is used in vehicles, in particular in rail vehicles. Accordingly, a vehicle, in particular a rail vehicle, is also regarded as part of the invention, said vehicle being provided with a sliding door, as has been described above.
The invention is described in more detail hereinafter with reference to exemplary embodiments; in which by way of example:
For the sake of clarity, the same reference numerals are always used for identical or similar components in the figures.
The position of the door leaf 30 may be blocked by means of a brake element 40 which in the view according to
For adjusting the brake element 40 from the braking position shown in
The adjustment device 50 cooperates with a motorized drive unit 60, for reasons of clarity only a drive roller 61 thereof being shown in
The adjustment device 50 has a brake adjusting unit in the form of a brake rod 100 which is able to be adjusted in the longitudinal direction of the rod L and/or in the arrangement according to
In the exemplary embodiment according to
The brake rod 100 is provided with a through-opening 101 which cooperates with a driver unit in the form of a driver slide 110. The cooperation between the through-opening 101 and the driver slide 110 is based on a wedge surface 111 which, with a sliding movement of the driver slide 110, is pushed in the sliding direction S to the left into the through-opening 101 and through said through-opening.
In order to permit a sliding movement of the driver slide 110 in the sliding direction S with as little friction as possible, the sliding door 10 is provided with guide rollers 120 which may be mounted, for example, on the door leaf 30.
The sliding door 10 according to
The driver slide 110 in the exemplary embodiment according to
The sliding door 10 may be operated, for example, as follows:
s if the motorized drive unit 60 is in an inactive state in which it does not exert any drive force on the sliding door 10, the restoring force Fr of the restoring spring 131 ensures that the driver slide 110 in the view according to
In the view according to
In
By the displacement of the driver slide 110, the wedge surface 111 is pushed into the through-opening 101 of the brake rod 100 and also through the through-opening 101, whereby the chamfer of the wedge surface 111 results in a lifting of the brake rod 100 in the direction of the arrow V. By the lifting of the brake rod 100 the brake element 40 is also lifted, so that it is separated from the brake rail 22 on the vehicle side and the brake element 40 reaches its release position. As soon as the brake element 40 is separated from the brake rail 22, the door leaf 30 may be moved.
If a further rotation of the drive roller 61 is carried out in the direction of the arrow R, the driver slide 110 strikes a stop 31 of the door leaf 30 on the door leaf side, whereby a further sliding movement of the driver slide 110 relative to the door leaf 30 is prevented. A further rotation of the drive roller 61 thus also leads to a sliding movement to the left, both of the driver slide 110 and of the door leaf 30 in the view according to
In summary, therefore, when the motorized drive unit is switched on and/or in the case of a rotation of the drive roller 61 in the direction of the arrow R, by the displacement of the driver slide 110 relative to the door leaf 30, initially an unlocking of the brake element 40 occurs, before it results in a common movement of the door leaf 30 and the driver slide 110 in the sliding direction S, after the driver slide 110 has reached the stop 31.
As soon as the drive roller 61 is switched off, the restoring force Fr of the spring drive 130 results in a return movement of the driver slide 110 relative to the door leaf 30 counter to the sliding direction S, so that the driver slide 110 is pulled out of the through-opening 101 of the brake rod 100 and this leads to a renewed lowering of the brake element 40.
In the exemplary embodiment according to
If the motorized drive unit 60 is now activated and the drive roller 61 is set into rotational motion, irrespective of the rotational direction of the drive roller 61 it leads to a lifting of the brake element 40 and to a transfer of the brake element 40 from the braking position into the release position. Irrespective of the rotational direction of the drive roller 61 and/or irrespective of the sliding direction of the driver slide 110 one of the two wedge surfaces, whether this is the wedge surface 210 or the wedge surface 230, is always pushed into the region of the through-opening 101 of the brake rod 100, whereby it results—as explained—in the brake rod 100 being lifted.
After the driver slide 110 has been displaced relative to the door leaf 30 and the brake element 40 has been deactivated by the action of one of the two wedge surfaces 210 or 230, this leads to the driver slide 110 bearing against one of the two stops 31 or 32 on the door leaf side so that, depending on the sliding direction S of the driver slide 110, after reaching the door stop the door leaf 30 is entrained in the corresponding sliding direction.
In other words, in the exemplary embodiment according to
If the manual control element 300 is now pivoted by pivoting in the direction of the arrow Q, a deflection element which, for example, may be a bolt 301, lifts the brake rod 100 so that the brake element 40 is also raised and moved from its braking position into its release position. This is shown in
If the manual control element 300 is pivoted further in the direction of the arrow Q, it may—preferably exclusively in the fully closed position of the door leaf 30—lead to a further lifting of the brake rod 100 so that the brake rod 100 engages with its upper end in
In the exemplary embodiment according to
By a displacement of the driver slide 110 and/or by an insertion or withdrawal of the wedge surface 111 from the region of the through-opening 101, the connection element 410 and thus the cable 400 may be lifted or lowered, whereby this results in an activation or deactivation of the brake element 40, as has already been described in is detail in connection with
Whilst the invention has been illustrated and described in more detail by preferred exemplary embodiments, the invention is not limited by the disclosed examples and other variants may be derived therefrom by the person skilled in the art without departing from the protected scope of the invention.
Number | Date | Country | Kind |
---|---|---|---|
102014217081.8 | Aug 2014 | DE | national |
Filing Document | Filing Date | Country | Kind |
---|---|---|---|
PCT/EP2015/069203 | 8/21/2015 | WO | 00 |