CAPACITIVE CONTROL SYSTEM, IN PARTICULAR A STEERING WHEEL COLUMN INTEGRATED MODULE OF AN AUTOMOTIVE VEHICLE
20210094613 · 2021-04-01
Inventors
Cpc classification
B62D6/008
PERFORMING OPERATIONS; TRANSPORTING
B62D5/0481
PERFORMING OPERATIONS; TRANSPORTING
International classification
B62D6/00
PERFORMING OPERATIONS; TRANSPORTING
Abstract
The present invention relates to a capacitive control system (1), in particular a steering wheel column integrated module of an automotive vehicle, comprising a support (6), at least one control element (3, 4, 5) disposed displaceably within the support (6), at least one first capacitive activating region (81a-81e) adjacent to a second capacitive activating region (71a-71e) and disposed beneath and cooperating with said control element (3, 4, 5) to change the distance and thus electrical capacitance between the first (81a-81e) and the second (71a-71e) capacitive activating regions. In order to increase robustness of the capacitive control system (1) said at least one first capacitive activating region (81a-81e) is disposed at a metal, deformable arm (83) haptically engaged with said control element (3, 4, 5), wherein said haptical engagement is provided by a shaped projection (82) or recess of the arm (83) cooperating with at least one internal recess (32, 42, 52) or projection of said control element (3, 4, 5), and the distance between the first (81a-81e) and the second (71a-71e) capacitive activating regions remains greater than zero.
Claims
1. A capacitive control system (1), formed as a steering wheel column integrated module of an automotive vehicle, comprising a support (6), at least one rotational control element (3, 4) disposed displaceably for a user, wherein the support (6) provides guidance for said at least one rotational control element (3, 4), wherein at least one shaped metal piece (8) is disposed between the support (6) and said at least one rotational control element (3, 4), wherein said piece (8) comprises a plurality of metal, deformable arms (83a-83d) along a first direction of said piece (8) and cooperating with said at least one rotational control element (3, 4), wherein each of the arms (83a-83d) is provided with a first capacitive activating region (81a-81d) adjacent to and facing a second capacitive activating region (71a-71d) and disposed beneath and cooperating with said control element (3, 4), wherein a displacement of said at least one rotational control element (3, 4) results in a change-of-The _distance and thus electrical capacitance between the first (81a-81d) and the second (71a-71d) capacitive activating regions, wherein said metal, deformable arms (83a-83d) are haptically engaged with said at least one rotational control element (3, 4), wherein said haptical engagement is provided by a shaped projection (82a-82d) or recess of the arm (83) cooperating with at least one internal recess (32, 42) or projection of said at least one rotational control element (3, 4), wherein in a first position said shaped projection (82a-82d) or recess of said arm (83) is located within said internal recess (32, 42) or projection of said at least one rotational control element (3, 4), so that a distance (d1) between the first capacitive activating region (81) of said arm (83) and the second capacitive activating region (71) is larger than a distance (d2) corresponding to a position where said shaped projection (82a-82d) or recess of said arm (83) is outside of said internal recess (32, 42) or projection of said at least one rotational control element (3, 4), and wherein the distance between the first (81a-81d) and the second (71a-71d) capacitive activating regions remains greater than zero.
2. The control system according to claim 1, comprising a number of rotational control elements (3, 4).
3. (canceled)
4. The control system according to claim 1, wherein at least one control element (3) is haptically engaged with more than one arm (83).
5. (canceled)
6. The control system according to claim 1, further comprising a printed circuit board (7) disposed beneath said deformable arm (83) and said at least one second capacitive activating region (71a-71e) has a form of a conductive trace of said printed circuit board (7).
7. The control system according to claim 1, wherein said support (6) is provided with at least one bearing (611, 621, 631, 632) for said at least one rotational control element (3, 4).
8. The control system according to claim 1, wherein said at least one rotational control element is a multi-stable control element (3) or a mono-stable control element (4).
Description
BRIEF DESCRIPTION OF DRAWINGS
[0021] The invention shall be described and explained below in connection with the attached drawings in which:
[0022]
[0023]
[0024]
[0025]
[0026]
[0027]
[0028]
[0029]
[0030]
[0031]
DETAILED DESCRIPTION OF PREFERRED EMBODIMENT
[0032] The embodiment of a capacitive control system 1 shown in
[0033] All the control elements 3, 4 and 5 of the system 1 along with the control lever 2 form a preassembled unit that at the vehicle assembly line shall be mechanically fixed to the vehicle steering wheel column, not shown in the drawing, and electrically connected to the vehicle wiring in a manner well known to those skilled in the art.
[0034] In this embodiment the control system 1 comprises a support in a form of an internal bearing element 6 that provide fixing and guidance for the control elements 3, 4 and 5. The element 6 is provided with three cylindrical parts 61, 62 and 63 which are positioned perpendicularly to the axis of the element 6 (cf.
[0035] The internal bearing element 6 is snap-locked within the lever 2 by means of four axial snap-locking protrusions 611 of the first cylindrical part 61 and cooperating with four snap-locking recessions 21 in the lever 2. The rotational control elements 3 and 4 are disposed rotationally in sequence over the internal bearing element 6, and the slidable control element 5 is slidably snap-locked within the internal bearing element 6 and inside the second rotational control element 4 with its four snap-locking protrusions 51 slidably engaging the third cylindrical part 63 of the element 6.
[0036] Other forms of fixing and guidance of the control elements 3, 4 and 5 shall obviously be well known to those skilled in the art.
[0037] A printed circuit board 7 is fixed within a socket 64 the internal bearing element 6 and comprises a plug 72 enabling for electrical connection of the control system to the vehicle wiring. A shaped metal piece 8 (cf.
[0038] As shown in detail in
[0039] Such a symmetrical configuration equalises mechanical tensions and bending moments acting on the control elements 3, 4 and 5. To this end the system may obviously comprise two or more pieces 8 preferably symmetrical with respect to plane of the printed circuit board 7.
[0040] The arms 83a-83e provide haptical engagement for the control elements 3, 4 and 5. To this end each arm 83a-83d comprises a shaped projection 82a-82d. Shaped projections 82a-82c cooperate with radial recesses 32a-32c of the first rotational control element 3, while shaped projections 82d cooperate with radial recesses 42d of the second rotational control element 4, as shall be explained later. Radial recesses 32a-32c and 42d have forms of internal cams of the control elements 3 and 4.
[0041] Displacements of the control elements 3, 4 and 5 result in changes of the distances and thus electrical capacitances between the first 81a-81e and the second 71a-71e capacitive activating regions, independently on the capacitance of the human body.
[0042] As shown in
[0043] As shown in
[0044] Moreover such a cam geometry of the internal surface of the control element 3 promotes stable activation modes (with shaped projections 82 within the recesses 32) rejecting intermediate positions.
[0045] Four different exemplary activation modes in a form of 2D section of the inner surface of the control element 3 showing appropriate recesses (32abc, 32bc, 32a/32c and 32ab) are shown in
[0046] As show in
[0047] As shown in
[0048] As shown in
[0049] As shown in
[0050] The above embodiments of the present invention are merely exemplary. The figures are not necessarily to scale and some features may be exaggerated or minimized. These and other factors however should not be considered as limiting the spirit of the invention, the intended scope of protection of which is indicated in appended claims.
List of Reference Numerals
[0051] 1. capacitive control system
[0052] 2. lever 21. snap-locking recessions 22. bearing
[0053] 3. first (multi-stable) rotational control element 31. radial knob 32. radial recess 33. radial flat spacer 34. activation mode (34a-34d)
[0054] 4. second (mono-stable) rotational control element 41. radial cam 42. radial recess
[0055] 5. slidable (mono-stable; push) control element 51. snap-locking protrusions 52. recessed face
[0056] 6. support (internal bearing element) 61. first cylindrical part 611. snap-locking protrusions 62. second cylindrical part 621. bearing (for elements 3, 4) 63. third cylindrical part 631. bearing (for element 4) 632. bearing (for element 5) 64. printed circuit board socket
[0057] 7. printed circuit board 72. plug
[0058] 8. shaped (metal) piece 81. first capacitive activating region (81a′-81e′; 81a″-81e″) 82. shaped projection (82a′-82d′; 82a″-82d″); 83. arm (83a′-83e′; 83a″-83e″) 84. conducting plate