Operating device with optical finger navigation module for a steering wheel
09793069 · 2017-10-17
Assignee
Inventors
- Johannes Duenninger (Wittershausen, DE)
- Volker Entenmann (Affalterbach, DE)
- Joerg Reisinger (Loechgau, DE)
- Florian Steinert (Bad Bocklet-Steinach, DE)
- Joachim Wuest (Hohenroth, DE)
Cpc classification
G06F3/0428
PHYSICS
B62D1/046
PERFORMING OPERATIONS; TRANSPORTING
B60K35/00
PERFORMING OPERATIONS; TRANSPORTING
International classification
G06F3/02
PHYSICS
B60K35/00
PERFORMING OPERATIONS; TRANSPORTING
H01H9/00
ELECTRICITY
G06F3/0354
PHYSICS
Abstract
An operating device having an optical finger navigation module for installation in a steering wheel of a motor vehicle, which allows for secure operation and can be produced at low cost, is disclosed. The operating device has a mounting frame, in which a first light guiding element and the optical finger navigation module is held by a light sealing element. The light sealing element is mounted by a snap connection on the mounting frame. The mounting frame has at least one guide element with which a movement of the mounting frame can be guided.
Claims
1. An operating device for installation in a steering wheel of a motor vehicle, comprising: a mounting frame; an optical finger navigation module; a light sealing element disposed within the mounting frame; wherein the light sealing element is mounted by a snap connection in the mounting frame; wherein the mounting frame has a guide element, wherein a movement of the operating device in the steering wheel is guidable by the guide element; a first light guiding element; and a second light guiding element disposed between the optical finger navigation module and the light sealing element; wherein the first light guiding element and the optical finger navigation module are held by the light sealing element by means of the second light guiding element.
2. The operating device according to claim 1, wherein the first light guiding element and the second light guiding element are each ring shaped and surround the optical finger navigation module.
3. The operating device according to claim 1, wherein the light sealing element surrounds the second light guiding element and wherein the optical finger navigation module and the second light guiding element are held upward by the light sealing element.
4. The operating device according to claim 1, wherein a rubber-elastic element is disposed between the optical finger navigation module and the mounting frame.
5. The operating device according to claim 4, wherein the rubber-elastic element presses an electric conductor of the optical finger navigation module against the first light guiding element.
6. A contactor for installation in a steering wheel, comprising: an operating device according to claim 1.
7. The contactor according to claim 6, wherein on a side of the mounting frame facing away from the optical finger navigation module a switch tower of a switch is disposed which is activatable by the movement of the mounting frame.
8. The contactor according to claim 6, wherein the contactor has a housing, wherein the operating device is disposed in the housing, and wherein the mounting frame is guidable in the housing by the guide element.
9. The contactor according to claim 8, wherein in the housing a light source is disposed, and wherein light from the light source is conducted via the first and second light guiding elements onto a surface of the operating device.
10. The contactor according to claim 8, wherein on a side of the mounting frame facing away from the optical finger navigation module a safety mat is disposed which presses an electric conductor of the optical finger navigation module against a section of the housing.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
(4)
(5)
(6)
(7)
DETAILED DESCRIPTION OF THE DRAWINGS
(8) The exemplary embodiments described in more detail below represent preferred embodiments of the present invention.
(9) A steering wheel 5 is schematically represented in
(10) In the example of
(11) As has already been mentioned, each OFN 6 serves as a sensor for the detection of finger movements. The cables 9 serve to implement a databus connection or communication device between the OFN modules 1 and the steering wheel electronic system 8.
(12) The OFN 1 should be combined, for example, with a button or switch and furthermore, as mentioned, meet the following requirements: homogeneous annular illumination in different embodiments comparable activation haptics to a short-stroke button close-tolerance overlap of the OFN to the surrounding switch panel non-wearing contact of the OFN to the printed circuit board and fixing of the OFN without glue.
(13) The centerpiece of the fulfillment of these requirements is the operating device 11 described in connection with
(14) Inside the mounting frame 12 there is the OFN module 14 (see
(15) In the installed state, the operating area 15 of the OFN module (in short OFN 14) is surrounded by an annular light conductor 18. This annular light conductor 18 can be produced in a desired color, so that the light emanating outwards through it has the corresponding coloring.
(16) The annular light conductor 18 is in turn surrounded by a light sealing element 19 on its outer perimeter. The light sealing element 19 serves to limit the area of light emission of the annular light conductor 18 upwards. Furthermore, the light sealing element 19 has the function of forming a stopper for the annular light guide 18, which for its part forms a stop for the OFN 14. The OFN 14 and the annular light guide 18 are therefore held upwards, where the mounting frame 12 is open, by the light sealing element 19.
(17) In
(18) As also emerges from
(19) As can be seen from
(20)
(21) On the housing base (not shown) of the contactor there is a printed circuit board 24. This carries two LEDs 26 shining upwards, embedded in a switch mat 25. Furthermore, a button or switch 27 is located on the printed circuit board 24. Directly over a switch tower 28 of the switch 27 there is the support structure 23 of the mounting frame 12. The conical, hollow lower light conductor 21 surrounds the support structure 23 and extends through reliefs 29 in the base 30 of the mounting frame 12 to the LEDs 26.
(22) The disk-shaped rubber-elastic element 22 rests on the supporting structure. The rubber-elastic element 22 affixes the lower light conductor 21 if necessary. A printed circuit board 30 of the OFN 14 rests on the rubber-elastic element 22. On this there is the actual sensor section 31 of the OFN 14 with its operating area 15.
(23) The sensor section 31 of the OFN 14 is surrounded on the exterior perimeter by the annular light conductor 18. The latter extends upwards to the operating area 15 and downwards to the lower light guiding element 21. In this way the light from the LEDs 26 is conducted upwards via the lower light conductor 21 to the annular light conductor 18 and there is guided to the surface of the operating device 11. A gap 32 between the lower end of the lower light conductor 21 and one of the LEDs 26 is thereby not damaging. This gap is necessary so that the operating device 11 including OFN 14 and mounting frame 12 can perform the necessary shifting of the switch 27. Guiding elements of the housing for guiding the fins 13 of the mounting frame 12 are not visible in
(24) The annular light conductor 18 and the lower light conductor 21 are surrounded on the outside by the likewise annular light-sealing element 19. It prevents light from beaming sideways outwards from the light conductors. Furthermore, it holds the whole OFN component together.
(25) On the surface there is a switch panel 33, the surface of which is preferably at a somewhat lower level than the operating area 15 in the inactivated state of the operating device 11. In this way the driver can easily feel the operating device.
(26) In
(27) In order to avoid wearing of the foil conductor 16, in particular in the area of its ends or contact points, by the activation and movement of the whole OFN component, i.e. the operating device 11, movements of the foil conductor 16 on the exit of the OFN 14 and on the plug 36 on the printed circuit board 24 must be avoided. For this reason, an upper strain relief (implemented in the dashed circle 37) is implemented by the soft component, i.e. the rubber-elastic element 22, and a lower strain relief (see dashed circle 38) by the switch mat 25. In the upper strain relief 37, the rubber-elastic element 22 presses the foil conductor 16 against the inside of the lower light conductor 21. In the lower strain relief, the switch mat 25, which extends through the relief in the printed circuit board 24, presses the foil conductor 16 against the partition 35 of the housing of the MFS, i.e. the contactor. The switch mat 25 preferably made from an elastic silicon therefore has, alongside its actual function as a lining of the switch elements, the additional function of a strain relief.
(28) The annular light conductor 18 resting on the OFN 14 in assembly is a decorative element around the OFN 14 that is visible for the user and illuminated. The annular light conductor 18 transports the light, as mentioned, from the lower light conductor 21 to the surface of the OFN component. At the same time, the annular light conductor 18 fixes the OFN 14 from above and forms the stop (dashed circle 39) of the OFN component on the panel 33 of the MFS (multi-functional switch), i.e. the contactor.
(29) It is important for the operability of the OFN in the steering wheel 5 that there is a precisely-specified overlap of the OFN 14 relative to the panel 33 of the MFS. As it should be operated without looking at it, in contrast to consumer electronics, the driver must be able to feel the position of the OFN in the steering wheel. For this, a specific overlap of the OFN relative to the panel 33 is required, as has already been addressed in connection with
(30) To summarize, the operating device according to the invention, with which the corresponding contactor can be produced, has (among others) the advantage that it can be installed using plugs and clips alone. A gluing process is therefore not necessary.
(31) The ring conductor 18 is embodied as a separate element, and its surface and its coloration can be varied without repercussions on the other elements. For example, the annular light conductor can be embodied as a cost-efficient molded part without further surface treatment, or as a sophisticated decorative part in a translucent chrome look.
(32) The illumination of the operating device is homogeneous due to the available run lengths of the light and the scattering effect of the light conductor. The lower light conductor is correspondingly formed geometrically for the implementation of the homogeneous light distribution. The light sources arranged on the printed circuit board can be changed without repercussions on the OFN, which represents an additional advantage.
(33) It is furthermore advantageous that the tolerance chain determining the overlap of the OFN to the surrounding switch panel is very short. In this way the corresponding dimension, which is important for operability, can be close-tolerance.
(34) A further advantage of the operating device is represented by the rubber-elastic element, which compensates for finishing tolerances and fixes the foil conductor of the OFN. In this way, in the upper area of the operating device at least, wearing on bending and contact positions of the foil conductor is eliminated. The lower strain relief of the foil conductor by the safety mat counts towards the most important advantages of the exemplary embodiment described above.
(35) As the mounting frame has a suitable height (e.g. a few millimeters), in the direction of movement enough guidance of the operating device is possible, using which high-quality haptics can be achieved.