Operating Device for Motor Vehicles
20170160874 ยท 2017-06-08
Inventors
Cpc classification
G06F3/0421
PHYSICS
International classification
G01S17/02
PHYSICS
G01S7/481
PHYSICS
H03K17/94
ELECTRICITY
Abstract
An operating device includes at least one ToF sensor for emitting transmission signals, in particular in the form of light, receiving reception signals and outputting information signals, at least one optical waveguide for directing the transmission signals from the ToF sensor to at least one deflection point, for directing the deflection signals deflected where the operating device can be installed in a motor vehicle.
Claims
1.-13. (canceled)
14. An operating device, comprising: at least one Time-of-Flight (ToF) sensor for emitting transmission signals in the form of light, receiving reception signals, and outputting information signals; at least one optical waveguide for guiding the transmission signals from the ToF sensor to at least one deflection point, and guiding deflection signals deflected at the deflection point to at least one assigned exit point acting as an operating element on a first surface of the optical waveguide, the first surface acting as an operating surface, in response to an object, in the form of a finger of a user, approaching the exit point or touching same for guiding reception signals deflected at the object; and a control unit, which triggers at least one function assigned to the operating element or the exit point dependent on the information signals outputted by the ToF sensor dependent on the reception signals, wherein the operating device can be installed in a motor vehicle, wherein the deflection point is provided on a second surface which is opposite to the first surface of the optical waveguide and constitutes a deflection surface of the optical waveguide via an extraction element, and wherein the ToF sensor comprises a transmitter for emitting the transmission signals in the beam path before a first end of the optical waveguide having a coupling surface and a receiver for receiving the reception signals when deflection at the exit point also before the first end of the optical waveguide.
15. The operating device according to claim 14, wherein the extraction element reflects transmission signals, by means of total reflection, in the direction of the exit point, which either reach the extraction element directly from the transmitter of the ToF sensor or after deflection, preferably a single reflection, on the first surface of the optical waveguide.
16. The operating device according to claim 15, wherein the extraction element is provided by a recess, in the form of a milled point, in the material of the optical waveguide or via a material inclusion, and wherein via the contour of the extraction element or a coating of said element, the number, location or dimensions of the assigned exit point(s) or the intensity of the deflection signals is or are determined.
17. The operating device according to claim 14, wherein a plurality of extraction elements, deflection points or exit points is provided, or each exit point provides at least a portion of an operating element, in the form of a key or a slide control, or each extraction element is assigned an operating element.
18. The operating device according to claim 17, wherein each operating element is assigned the same quantity of deflection signals or light intensity, or a cone of light rays transmitted from the transmitter, which covers an angle area of 12.5 to 60, essentially has partial cones of equal sizes, of which each is assigned to an extraction element, or the deflection signals leave the exit point with an essentially equal angle to the first surface, and vertically to it.
19. The operating device according to claim 14, wherein at least one mark in the area of the exit point(s), in the form of a coating, surface processing such as polishing or similar or illumination of the optical waveguide, and for illumination purposes, visible light can be transmitted along the beam path of the transmission signals of the transmitter, when an object approaches, such as in the form of a finger of a user or with greater intensity when registering a touch of at least one operating element by the object.
20. The operating device according to claim 14, wherein a fastening device for attachment in the motor vehicle, in particular on or in an inner mirror, an outer mirror, a fittings cover or a door of the motor vehicle, and the fastening device is molded as a single piece with the optical waveguide, and in a 2K injection molded part.
21. The operating device according to claim 14, wherein the optical waveguide is part of an illumination module of the motor vehicle.
22. The operating device according to claim 14, wherein the transmission and reception signals lie in the range of infra-red or visible light.
23. The operating device according to claim 14, wherein at least two coupling surfaces are provided which are respectively assigned at least one extraction element, at least one deflection point or at least one exit point, and the coupling surfaces are assigned to one or more optical waveguides, or one or more ToF sensors are assigned to the coupling surfaces.
24. An inner mirror of a motor vehicle having an operating device according to claim 14, wherein the operating surface is arranged in a frame of a mirror element or adjacent to the mirror element or in an illumination module of the inner mirror, for an adjusting or dimming of the inner mirror, adjusting of at least one outer mirror, opening of at least one window, setting an air conditioning system, switching a warning signal or similar.
25. An outer mirror of a motor vehicle having an operating device according claim 14, wherein the operating surface is arranged in a frame of a mirror element or adjacent to the mirror element or in an illumination module of the outer mirror, in the form of a blinker module.
26. A door of a motor vehicle having an operating device according to claim 14, wherein the operating surface is arranged in a frame of a window or adjacent to the window or in an illumination module of the door, for an adjusting or dimming of the inner mirror, adjusting of at least one outer mirror, opening of at least one window, setting an air conditioning system, switching a warning signal or similar.
Description
BRIEF DESCRIPTION OF THE SEVERAL VIEWS OF THE DRAWINGS
[0019] Further features and advantages of the invention emerge from the description of an exemplary embodiment below with reference to schematic drawings, in which:
[0020]
[0021]
[0022]
[0023]
[0024]
[0025]
[0026]
[0027]
DETAILED DESCRIPTION OF THE INVENTION
[0028]
[0029] The operating device 2 will now be explained in greater detail with reference to
[0030] Each light deflection point 24, 24 has assigned a light exit point 26, 26. It is however also possible, namely by varying the contour of the light deflection point 24, 24, to assign several light exit points to them. Each light deflection point can be produced by milling out, e.g. in such a manner that the corresponding light exit point provides a defined key point. In order to obtain the same light intensity at the light exit points 26, 26, the second light deflection point 24 should be inserted deeper into the optical waveguide than the first light deflection point 24. However, the milling out can also be such that a plurality of milling points is provided very close to each other and not very deep, so that via a corresponding plurality of light exit points, a slide control is provided on the operating surface 22. In fact, through targeted milling out of the optical waveguide 20, a plurality of different light exit points can be produced in a simple manner.
[0031] If a finger (not shown) of a driver of the motor vehicle approaches the light exit point 26, wherein the operating device 2 is for example installed adjacent to a mirror element according to
[0032] In order to better identify the light exit points 26, 26, the optical waveguide 20 can be polished in the corresponding areas. It is also possible for the ToF sensor 28 to transmit visible light, so that the light exit points 26, 26 light up brightly. Furthermore, in the area of the light exit points 26, 26, a coating of the optical waveguide 20 (not shown) can be provided, e.g. in the form of letters L and R in order to make operation easier for the driver, wherein when the light exit point 26 with the L mark is touched, the left blinker is triggered, and when the light exit point 26 with the R mark is touched, the right blinker is triggered.
[0033] Naturally, the ToF sensor 28 can also operate in the IR range. Then one or more LEDs could additionally be arranged on the side of the light coupling surface 21 to mark the light exit points 26, 26.
[0034] With the operating device 2, 2 according to the invention, it is possible to represent a touchscreen in a simple manner, which itself uses optical waveguides already present in a motor vehicle. Thus, the optical waveguide of a blinker can be used as an operating device according to the invention, e.g. in order to lock or open the motor vehicle by touching a specific light exit point. In order to avoid unauthorized use, an operation authorization can in addition be checked prior to opening or locking the motor vehicle. Due to the measurement precision of a ToF sensor it is e.g. possible to evaluate a fingerprint in order to thus permit an authorized user only to trigger a function in a motor vehicle. Instead of evaluating a fingerprint or other biometric recognition, an operating code can however also be stored, such as in the form of the sequence of touch of different light exit points in order to conduct an authentication.
[0035]
[0036] For the operating device 101 an optical waveguide can be used which will be described below with reference to
[0037]
[0038] In the light deflection surface 220, five light extraction elements are arranged equidistant from each other in the form of recesses 221, 221A-221E, with the same length respectively along the light deflection surface 220, but with different depths z. The recesses 221, 221A-221E are saw-tooth like with a sloping edge, in the area of which light deflection points 222 are provided, and a further edge running essentially vertically to the light deflection surface 220, aside from the furthest right-hand recess 221E. The inclination of the slope comprising the light deflection points 222 is respectively given by an angle to the light deflection surface 220, which is the same for all recesses 221 and which is preferably approximately 45. Essential for the slope and thus for the angle is the guarantee of total reflection of transmission signals as will be described further below in detail with reference to
[0039] The optical waveguide 200 can be provided in the form of an acrylic glass which only allows light to exit in the area of the light exit surface 202. In order to enable deflected rays to exit from exit points 212, the acrylic glass can be polished in precisely these areas, which represent key areas 211, 211A-211E.
[0040] The five recesses 221A-221E in the light deflection surface 220 correspond to five key areas 211A-211E on the operating surface 210. Here, it is preferred that the light intensity is equal in value at the light exit points 212 of each key area 211A-211E.
[0041] With reference to
[0042] If a touch, not shown, occurs on one of the key areas 211A-211E, this leads to at least one further reflection, namely on the touch point, which directs light back to the light coupling surface 201. Through this further reflection, reception signals can thus reach a receiver 282 of the ToF sensor 208 and be evaluated there. The ToF sensor 280 enables the determination of the key area which has been touched within the scope of its evaluation, namely due to its ability to calculate distances.
[0043] The optical waveguide can be equipped with a reflection layer on the operating surface, namely beyond the key areas, and/or on the light deflection surface, in order to prevent light rays from exiting the optical waveguide in an uncontrolled manner, i.e. beyond the key areas and the light exit surface.
[0044] With reference to
[0045]
[0046]
[0047]
[0048]
[0049]
[0050] The optical waveguide can be formed with a fastening device, not shown, for attachment to an inner mirror, an outer mirror or a door, e.g. in the form of a 2K injection molded part.
[0051] The features disclosed in the above description, the claims and the drawings can be essential both individually and in any combination for the realization of the invention in its different embodiments.
LIST OF REFERENCE NUMERALS
[0052] 1 Inner mirror [0053] 2, 2 Operating device [0054] 3 Mirror element [0055] 20, 20 Optical waveguide [0056] 21 Light coupling surface [0057] 22, 22 Operating surface [0058] 23 Light deflection surface [0059] 24, 24 Light deflection point [0060] 26, 26, 26a-26d Light exit point [0061] 27a-27d Mark [0062] 28 ToF sensor [0063] 100 Inner mirror [0064] 101 Operating device [0065] 102 Key [0066] 103 Mirror element [0067] 104 Control lamps [0068] 122 Mark [0069] 200, 200 Optical waveguide [0070] 201 Light coupling surface [0071] 202 Light exit surface [0072] 210 Operating surface [0073] 211, 211A-211E Key area [0074] 212 Light exit point [0075] 220 Light deflection surface [0076] 221, 221A-221E Recess [0077] 221B Light extraction element [0078] 280 ToF sensor [0079] 281 Transmitter [0080] 282 Receiver [0081] 222 Light deflection points [0082] L Light beam [0083] x Height of optical waveguide x.sub.s [0084] z Depth of recess [0085] Inclination of light coupling surface [0086] Inclination of recess [0087] Inclination of light exit surface [0088] Cone [0089] /5, /5A, /5B Partial cone