The disclosure relates to a sliding door device for the lateral door opening of a passenger vehicle, at least comprising a door and a drive device for moving the door transversely to and along the longitudinal axis of the passenger vehicle, wherein the sliding door device is configured in such a way that the door, in the closed state, is aligned with the side wall of the passenger vehicle, whereas the door, in the opened state, rests outside against the side wall of the passenger vehicle.
Sliding door device of this kind are known, possibly being configured, for example, as pivot sliding doors as is typically the case in vehicles for public transport. For example, DE 2 020 576 discloses such a pivot sliding door device for a vehicle, wherein the door is pivoted outwards by means of parallelogram guide rods and displaced by means of a telescopic guide above the door opening.
In the field of passenger vehicles, or in the field of the commercial vehicles and minivans, sliding door devices are also known in which a door can be displaced between a closed and an opened position by means of corresponding sliding door guides. In the process, three rails are usually employed, with an upper and a lower rail being respectively provided in the door opening. Moreover, a middle sliding and guide rail on the outside of the side wall is used for guiding the door on the outside along the side wall. An electrification of the door by means of a drive unit is also usually realized in this middle rail.
However, the middle rail affects the appearance of the vehicle considerably. Because this middle rail is exposed to the effects of the weather, it must further be formed from corresponding materials that disadvantageously increase the price of manufacture of the vehicle. Therefore, there are various approaches in the prior art as to how to eliminate the middle rail. For example, EP 1 372 999 B1 discloses a solution in which the middle rail is attached to the inside of the door.
However, a drive unit of the door cannot always be realized in a satisfactory manner even given a rail on the inside of the door. It usually comprises cables with which the door is moved back and forth, with the drive motor for moving the cables being located on the vehicle. Thus, a connection between the drive motor and the door must be established by means of the cables, which may result in various problems due to the door moving constantly. Furthermore, the cables are susceptible to failure.
The disclosure provides a sliding door device for the lateral door opening of motor vehicle that does not require a middle guide rail, wherein the sliding door device is supposed to be, in particular, simple to electrify and insusceptible to failure. Furthermore, the disclosure provides a passenger vehicle with such a sliding door device.
The sliding door device according to the disclosure for the lateral door opening of a passenger vehicle comprises at least a door and a drive device for moving the door transversely to and along the longitudinal axis of the passenger vehicle. Here, within the sense of the disclosure, transverse to the longitudinal axis means a movement at an angle of 1-90° to the longitudinal axis of the vehicle, while along the longitudinal axis means a movement parallel to the longitudinal axis of the vehicle. However, these movements need not take place separately from each other, but may also take place simultaneously, so that a door can be displaced away from the door opening and parallel to the side wall at the same time. In this case, the sliding door device is configured in such a way that the door, in the closed state, is aligned with the side wall of the passenger vehicle, whereas the door, in the opened state, rests outside against the side wall of the passenger vehicle. The drive device of the device can be disposed below or above the door opening of the passenger vehicle and comprises a support to which a first slide is attached in a manner displaceable along the longitudinal axis of the support. Due to this movement of the first slide, a displacement of a second slide relative to the support along the longitudinal axis of the support can be caused via a transmission. Further, the door is attached to the second slide, the attachment preferably being a non-rotatable connection.
Thus, the movement of a slide simultaneously causes the movement of the respective other slide relative to the first slide, whereby the travel distance of the door can be increased as compared with other solutions with only one displaceable slide. In one embodiment of the disclosure, the traversing distance of the door between the open position and the closed position is therefore greater than the travel distance of the first slide along the support. For this purpose, the two slides may, for example, be configured as two telescopic sliding rails in which the second sliding rail is movable within the first sliding rail. A telescopic guide is advantageous in that the guide can be configured in a compact manner, wherein it can be configured in a compact manner particularly relative to the opening width of the door. However, this slide connection and particularly the above-described telescopic guide have to be synchronized in order for the movement of the sliding rails to be uniform.
According to the disclosure, the support is furthermore displaceably mounted, relative to the passenger vehicle, in a direction transverse to the longitudinal axis of the passenger vehicle. This may be an angle in the range from, for instance, 80-100°; preferably, however, the support can be displaced at an angle of about 90° to the longitudinal axis of the vehicle. Also by means of these measures, a very compact drive device can be realized. In this case, the drive device does not have to extend over the entire width of the door opening, but may be, for example, only half as wide. Furthermore, no movable parts of the drive device, which in turn are connected to components that move relative to the vehicle during the opening and closing process, have to be accommodated on the vehicle itself. Rather, all movable components of the drive device can be attached to the support, with the support with all components constituting a compact unit, which in its entirety is movable relative to the vehicle.
According to the disclosure, the first slide is connected to a driver guided within a first guide track that is fixedly located on the passenger vehicle, and a second guide track, in which a guide member is guided that is connected to the door, is located on the side of the door opening opposite from the drive device. The guide member within the second guide track may be, for example, a guide roller firmly connected to the inside of the door via a guide arm. The drive device and the door connected therewith can be moved transversely to and along the longitudinal vehicle axis by means of the driver and the guide member within the upper or lower guide track, if the guide tracks are formed accordingly. In particular, the guide tracks have straight and curved sections for this purpose. In this case, the guide track of the drive device can also be referred to as the primary guide, while the opposite guide is to be referred to as the secondary guide. Since the synchronized guide experiences a different speed than the door during the opening and closing of the door, different geometries for the upper and the lower guide track are the result.
Such a sliding door device can be configured so that it can be manually operated or electrically driven. In the case of a manual operation, the drive device is provided to direct a manually generated movement of the door into the required track by the driver being moved in the associated guide track. In this case, the door should be as easy to open and close as possible, and also in this case, it is advantageous that the slides or sliding rails that can be displaced relative to each other facilitate the movement of the door. In one embodiment of the disclosure, however, the drive device comprises a drive unit with which the driver can be moved in the first guide track, whereby the first slide is displaceable along the support. The door is thus driven by the movement of the driver in its guide track. In this case, the drive unit is preferably connected to the support of the drive device, so that it is movable relative to the vehicle as a part of the compact drive device and moves together with the door.
The transmission between the two slides can be realized in different ways. For example, a first toothed rack that is stationary relative to the first slide and at least one first gear wheel, which is mounted on the first slide and which is in meshing engagement with the first toothed rack, may be provided. The rotary movement of the gear wheel then causes a relative movement of the slide, and thus of the door. In order to achieve a reliable operation, the transmission preferably comprises a second toothed rack attached to the door leaf, with which the first gear wheel or a second gear wheel operatively engaged with the first gear wheel is in meshing engagement.
The support may be displaceable transversely to the longitudinal motor vehicle axis by means of a linear guide. For this purpose, the support, for example, may have two lateral rails guided in two guides that are firmly connected to the motor vehicle, the rails extending on the support and the guides extending on the motor vehicle, transversely to the longitudinal vehicle axis. Rollers, which roll within the guides during a movement of the rails, may be attached to the rails.
In one exemplary embodiment of the disclosure, the support is furthermore rotatably mounted about an axis on the linear guide that extends parallel to the longitudinal axis of the support. In that case, the support is rotatable relative to the lateral rails, for example via bolts. This mounting compensates positional tolerances and arising deviations between the upper and the lower guide.
In a preferred embodiment of the disclosure, the drive device is attached below the door opening, i.e. in the area of the sill. In this case, in may be provided, for example, that the drive device is inserted into a sill of the motor vehicle. The deploying support may in that case be used as a step, for example.
In total, only two guide rails above and below the lateral door opening of a passenger vehicle are thus required, while a middle guide rail may be dispensed with. This has the advantage that the design of the side wall of the vehicle can be configured in a simpler manner, which, in addition to technical advantages, also entails advantages with regard to costs. Moreover, the sliding door device can be electrified more easily. On the one hand, no cables are required that are exposed to the weather. Furthermore, the drive device moves together with the door, so that no failure-susceptible connection between the drive unit and the door is present.
The disclosure also includes a passenger vehicle comprising at least a door opening and a sliding door device with a door, wherein the sliding door device is configured in such a way that the door, in the closed state, is aligned with the side wall of the motor vehicle, whereas the door, in the opened state, rests outside against the side wall of the motor vehicle. According to the disclosure, the sliding door device is in this case configured in accordance with one or more of the above-described embodiments. The motor vehicle is a transporter, delivery van, minivan or minibus, for example.
Other advantages, special features and expedient further developments of the disclosure are apparent from the following presentation of preferred embodiments with reference to the illustrations.
In the drawings:
The schematic representation of an exemplary embodiment of the sliding door device according to the disclosure in
The upper and lower guide tracks 61, 51 are respectively located above and below the door opening, which is not shown. A guide roller 12 as it is shown in the enlarged view of
A drive device with which the door can be moved manually or in an electrically driven manner between closed and open states is provided below the door opening, which is not shown. In this case,
A first slide 30, which can be displaced relative to the support 20 along the longitudinal axis of the support 20, is attached to the support 20. This displacement substantially takes place parallel to the longitudinal axis of the vehicle, but may also take place slightly offset thereto, depending on the configuration of the door. The displacement may take place, for example, by the first slide 30 being configured as a rail with a C-shaped cross section grasping around a rail that is firmly attached to the support 20. Preferably, the slide 30 is in this case configured as a kind of T-profile, to that it is capable of grasping around the second slide 31 on the other side. This is shown in
A driver 26, which is guided within the lower guide track 51, is connected to the first slide 30, which consequently may also be referred to as a sliding rail. A movement of the driver 26 within the guide track 51 thus causes a corresponding movement of the sliding rail 30 and vice versa. In this case, the driver 26 may also be guided in the guide track by means of a guide roller.
In contrast,
Conversely, in the manual closing process, the movement is reversed, so that the door 10 is first displaced parallel to the longitudinal vehicle axis along the side wall when the driver 26 is guided through the straight part of the lower guide track 51. Once the driver 26 has reached the curved part of the guide track 51, there is also a movement transverse to the longitudinal vehicle axis into the door opening, until the door 10 is aligned with the side wall of the vehicle in the closed state.
The second slide 31 and the first slide 30 are in this case coupled with each other via a transmission in such a way that a movement of one slide simultaneously causes a movement of the respective other slide. A displacement of the door 10, and thus of the second slide 31 attached thereto, therefore simultaneously causes a synchronized movement of the first slide 30 in the same direction. The transmission is not shown in detail in the Figures, but may be realized in a suitable manner. For example, a transmission manufactured from plastic may be provided in order to keep the noise development at a low level. For this purpose, a gear wheel that is in meshing engagement with a toothed rack rigidly attached to the support 20 is provided at the connection between the first and the second slides. At the same time, the gear wheel is in meshing engagement with a second toothed rack attached to the door leaf, in order to convert, driven by the relative movement of the first slide 30, this rotary movement into a translational movement of the toothed rack and thus of the door leaf relative to the first slide 30. The travel distance of the door leaf, which is normally determined by the longitudinal extension of the drive device and limited by the width of the door opening, is thus increased. At least a doubling of the travel distance of the first slide 30 can thus be achieved, for example. Other conditions are also conceivable through an optionally different transmission design, also a multi-stage design, comprised by the disclosure.
Due to the curvature at the end side of the lower guide track 51 and the transverse displaceability of the entire drive device 40′ within the guides 70, 71, a movement of the driver 26 along the toothed belt 26 at the same time also causes a movement of the drive device 40′ transverse to the longitudinal vehicle axis when the driver 26 moves through the curved part of the guide rail 51, i.e. at the beginning of the opening process and at the end of the closing process.
Also in this case, the driver 26 is in connection with the first slide 30, so that a driven movement of the first slide 30 synchronously deploys the second slide 31 from the first slide 30 because of the electric motor 24. Because the door 10 is attached to the second slide 31, the travel distance that can be achieved by the movement of the driver 26 thus multiplies. In the process, the second slide 31 always moves into, or out from, the first slide 30 to the approximate extent the first slide 30 has been displaced relative to the support 20, and vice versa. Thus, the door 10 may not only be moved by the distance corresponding to the distance between the bracket 27 and the electric motor 24 but, depending on the design of the transmission between the first and the second slides, the travel distance can be at least doubled.
It is also apparent from
Number | Date | Country | Kind |
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20 2013 104 443.1 | Sep 2013 | DE | national |
Filing Document | Filing Date | Country | Kind |
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PCT/EP2014/070634 | 9/26/2014 | WO | 00 |