The present disclosure relates to devices for receiving a display/operating panel and for positioning the display/operating panel on a vehicle structure.
Devices, such as display devices, typically have a receiving section for a display/operating panel formed by a display screen, for example. The display screen is used to display information and/or output media content. Operating elements can also be integrated therein, for example, through a touch-sensitive screen.
In order to be able to place display/operating panels in a motor vehicle, the device has a guide that can be placed in corresponding receivers, such as a rail system. These have sliding elements that are placed in the rails. The sliding elements are connected to the device, such that the entire device, including the display/operating panel is positioned in the motor vehicle.
Because the display/operating panel is placed in a readily accessed area, such as the interior of a motor vehicle, it may be subjected to different loads. It can therefore be loaded along the z-axis (vertically) when pressure is applied unintentionally to the display/operating panel. The force involved in this must then be absorbed by the sliding elements, and conducted into the rail system. Because the sliding elements are relatively close together, the rail system is subjected to a relatively heavy load, in particular also because the sliding elements are at a distance to the display/operating panel, such that relatively strong forces must be absorbed by a lever arm therein.
Furthermore, forces may act along the x-axis (longitudinally). To minimize the risk of injury to the occupants of the vehicle, there are spring elements that support the device within the vehicle structure that absorb the forces caused by loads along this x-axis, e.g., in the manner of a headrest. The spring elements must be individually positioned, and are designed in terms of their spring capacity such that maximum values for accelerations and forces are not exceeded.
DE 11 2013 005 551 T5 discloses a display mounting system for reduced HIC (head injury criterion). This is to protect passengers in vehicles, in particular airplanes, from head injuries, e.g., in the case of sudden braking, resulting in the passengers being thrown forward. The display and therefore the display mounting system, are normally located where the head of a passenger could strike the display. To reduce the risk of injury, the display is attached to the vehicle structure via attachment means that can break at a specific point. This target breaking point allows the display to move into the vehicle structure when the structure is overloaded.
Aspects of the present disclosure are directed to create a device for receiving a display/operating panel with a simple structure that can be safely incorporated in a cushioned manner in a vehicle structure.
According to some aspects, this object is achieved by a device including at least one guide that can bear on a corresponding receiver in the vehicle structure, characterized in that the guide includes both guide elements as well as deformation elements. Because a guide for the device for receiving a display/operating panel can bear on a corresponding receiver in a vehicle structure that include both guide elements and deformation elements, it is advantageously possible to construct a very compact device, and there is also no need for spring elements, thus reducing the number of overall components.
In some examples, the guide element also form the deformation element. This results in a simple, multi-functional, compact component.
The guide element also may include at least two sliding segments that are spaced apart from one another. This advantageously makes it possible to place the device in the vehicle structure such that it remains level.
The guide element also may include a honeycomb structure forming the deformation segment. As a result, the deformation segment in the form of a honeycomb structure can also be easily integrated in the guide element.
Furthermore, at least one cell in the honeycomb structure also forms a sliding segment under some aspects of the present disclosure. As a result, the distance between the sliding segments in the guide element can advantageously be relatively large, such that it can be particularly readily guided in the vehicle structure.
The vehicle structure may also contain guide rails for receiving the guide element, wherein these guide rails preferably contain a stop for the deformation segments of the guide element. This results in a particularly simple installation of the device in the vehicle structure, which also enables a defined positioning, level placement, and cushioned arrangement, in particular along the x-axis (longitudinally), of the device.
The present disclosure also relates to a motor vehicle that has a vehicle structure for receiving such a device according to the invention.
Other preferred embodiments of the invention are illustrated by the other features specified in the present disclosure.
The present disclosure shall be described below on the basis of exemplary embodiments, in reference to the associated drawings. Therein:
The device 10 also has a guide 14, by means of which the device can be positioned in a vehicle structure, not shown in
The design of the device 10 according to the invention is illustrated in
The guide 14 has a guide element 22 that both guides the device in the guide rails (
Just one guide element 22 is shown in
The structure and function of the guide elements 22 shall be explained in greater detail in reference to the subsequent figures.
The guide element 22 is shown in a perspective view in
In another example, there can be one or more of these enlarged cells 30.
The guide element 22 also comprises the sliding segment 24 formed by an elastically supported wall section 34 of the guide element 22.
The guide element 22 is connected in a suitable manner to the guide 14 in the device 10. The guide 14 is inserted into the guide rails 16 (
The guide rail 16 also forms a stop 44, which bears on an end section 46 (
In addition to the guidance of the device 10 in the vehicle structure via the guide elements 22 and the corresponding guide rails 16, the guide element 22 also assumes the function of a deformation element. This shall be explained in reference to
The upper illustration in the example of
The honeycomb structure 28 of the guide element 22 is illustrated in the upper illustration in
If the guide element 22 is then pressed against the stop 44 by a force F along the x-axis, the cells 30 and 48 become deformed. The guide element 22 can be displaced a distance of Δx into the vehicle structure, i.e., against the stationary stop 44.
The cells 30 and 48 become deformed in the elastic regions and convert the energy of the movement into deformation energy as a function of the value for Δx.
Depending on the structural design of the honeycomb structure 28, such as the wall thicknesses of the cells 30 and 48, or the opening angles of the cells 30 and 48, parameters can be adjusted with which a force F enables a deformation of Δx.
The guide element 22 results on the whole in a multifunctional, compact component, which allows for an individual force/distance curve. Because of the integral production, there is no need for additional elements for the guidance and the deformation along the x-axis.
Number | Date | Country | Kind |
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10 2019 204 697.5 | Apr 2019 | DE | national |
The present application claims priority to International Patent Application PCT/EP2020/056571 to Ralf Syldatke, filed Mar. 11, 2020, titled “Device for Receiving a Display Control Device”, which claims priority to German Patent Application No. DE 10 2019 204 697.5, to Ralf Syldatke, filed Apr. 2, 2019, the contents of each being incorporated by reference in their entirety herein.
Filing Document | Filing Date | Country | Kind |
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PCT/EP2020/056571 | 3/11/2020 | WO | 00 |