Lighting assembly for vehicle
10227033 ยท 2019-03-12
Assignee
Inventors
- Marten Sikkens (Nuenen, NL)
- Marcel De Jong (Eindhoven, NL)
- SILVIA MARIA BOOIJ (EINDHOVEN, NL)
- Martinus Petrus CREUSEN (WIJLRE, NL)
Cpc classification
B60Q1/122
PERFORMING OPERATIONS; TRANSPORTING
F21S41/143
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21W2102/19
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21S41/663
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F21V21/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21S41/663
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
The invention describes a lighting assembly (10, 10, 20, 20) for use in a lighting arrangement (2) of a vehicle (1), comprising a projection lens (11, 21) and an array (12, 22) of light sources (S.sub.11, . . . , S.sub.26), wherein the projection lens (11, 21) and the light source array (12, 22) are arranged according to an asymmetry displacement (i, 2, di, d2) of the optical axis (X.sub.1, X.sub.2) of the projection lens (11, 21), and wherein the light sources (S.sub.11, . . . , S.sub.26) of the light source array (12, 22) of the lighting assembly (10, 10, 20, 20) are individually controllable to adjust a swivel angle (.sub.1, .sub.2) of a light beam (BL, BH) generated by that lighting assembly (10, 10, 20, 20). The invention further describes a controller (3) for controlling the light sources (S.sub.11, . . . , S.sub.26) of such a lighting assembly (10, 10, 20, 20). The invention also describes a lighting arrangement (2) for a vehicle (1), comprising such a lighting assembly (10, 10, 20, 20) and such a controller (3) for controlling the light sources (S.sub.11, . . . , S.sub.26) of the lighting assembly (10, 10, 20, 20) to adjust the swivel angle (.sub.1 .sub.2) of the light beam (BL, BR). The invention also describes a method of generating a front beam (B.sub.L, B.sub.R) for a vehicle (1) comprising such a lighting assembly (10, 10, 20, 20).
Claims
1. A vehicle comprising a lighting assembly for use in a lighting arrangement of a vehicle, comprising: a projection lens; and an array of light sources, wherein the projection lens and the array are arranged according to an asymmetry displacement of the optical axis of the projection lens, and wherein the projection lens is positioned to receive and project light from each of the light sources of the array, wherein the assembly is configured such that the asymmetry displacement comprises a non-zero fixed angle between a longitudinal axis of the vehicle and the optical axis of the projection lens, wherein the light sources of the array of the lighting assembly are individually controllable to adjust a swivel angle of a light beam generated by the lighting assembly, and wherein the projection lens is distinct from an outer transparent cover that covers said lighting assembly and that is disposed between the assembly and the outside of the vehicle.
2. The vehicle according to claim 1, wherein the light sources of the array are distributed essentially symmetrically about the optical axis of the projection lens.
3. The vehicle according to claim 1, wherein the array is arranged essentially perpendicularly to the optical axis of the projection lens.
4. The vehicle according to claim 1, wherein the array comprises a linear array of at most ten light sources.
5. The vehicle according to claim 1, configured to obtain a maximum beam swivel angle of at least 11.
6. The vehicle according to claim 1, wherein a light source of the array comprises an LED.
7. The vehicle according to claim 1, wherein the projection lens comprises a parabolic horizontal cross-section.
8. A controller for controlling the light sources of the lighting assembly according to claim 1 to adjust the swivel angle of the light beam generated by the lighting assembly, wherein the controller comprises a control signal generation unit for generating a control signal for selectively activating specific light sources of the lighting assembly on the basis of the asymmetry displacement of the optical axis of the projection lens.
9. The controller according to claim 8, comprising a sensing means for sensing an angle of turning of the vehicle, and wherein the control signal generation unit is configured to generate the control signal on the basis of the angle of turning.
10. The controller according to claim 8, wherein the control signal generated by the control signal generation unit comprises a plurality of actuation signals, wherein each actuation signal is associated with a specific light source of the array.
11. A lighting arrangement for the vehicle, comprising the lighting assembly for generating the light beam and the controller according to claim 8.
12. The lighting arrangement according to claim 11, wherein the lighting assembly is a first lighting assembly, and wherein the lighting arrangement further comprises a second lighting assembly for generating a second light beam, said second lighting assembly including a second projection lens and a second array of light sources, wherein the second projection lens and the second array of light sources of the second lighting assembly are arranged according to a second asymmetry displacement of the optical axis of the second projection lens, and wherein the controller is further configured to generate a second control signal for controlling the light sources of the second lighting assembly to adjust a swivel angle of the second light beam.
13. The controller according to claim 8, wherein the controller is further configured to control said lighting assembly to generate said light beam such that the light beam is essentially parallel to said longitudinal axis by activating only one or more light sources of the light source array that are disposed on one side of said optical axis.
14. A method of generating a front beam for a vehicle comprising a lighting assembly for generating the beam, wherein a projection lens and an array of light sources of the lighting assembly are arranged according to an asymmetry displacement of the optical axis of the projection lens, wherein the projection lens is positioned to receive and project light from each of the light sources of the array, wherein the projection lens is distinct from an outer transparent cover that covers said lighting assembly and that is disposed between the assembly and the outside of the vehicle, and wherein the asymmetry displacement comprises a non-zero fixed angle between a longitudinal axis of the vehicle and the optical axis of the projection lens, which method comprises: sensing an angle of turning of the vehicle; and generating a control signal for the lighting assembly on the basis of the asymmetry displacement and on the basis of the angle of turning to selectively activate specific light sources of the lighting assembly to adjust a swivel angle of the beam.
15. The method according to claim 14, wherein the front beam comprises a left beam and a right beam, the lighting assembly is a first lighting assembly, the asymmetry displacement is a first asymmetry displacement, and the vehicle comprises the first lighting assembly for generating the left beam and a second lighting assembly for generating the right beam, wherein a second projection lens and a second array of light sources of the second lighting assembly are arranged according to a second asymmetry displacement of the optical axis of the second projection lens, wherein the control signal is a first control signal and the swivel angle is a swivel angle of the left beam, and wherein the method further comprises: generating a second control signal on the basis of the second asymmetry displacement and the angle of turning to selectively activate specific light sources of the second lighting assembly to adjust a swivel angle of the right beam.
16. The method according to claim 14, further comprising configuring said control signal such that the lighting assembly generates said beam such that the beam is essentially parallel to said longitudinal axis by activating only one or more light sources of the lighting assembly that are disposed on one side of said optical axis.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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(7) In the drawings, like numbers refer to like objects throughout. Objects in the diagrams are not necessarily drawn to scale. In particular, the refraction of light beams through projection lenses is only schematically indicated in the diagrams.
DETAILED DESCRIPTION OF THE EMBODIMENTS
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(12) When turning the vehicle into a corner, the front beam B.sub.L, B.sub.R is swiveled, whereby the degree of beam swivel is controlled by the choice of light sources that are activated. This can be done as shown in the bottom half of the diagram, where an extreme left-swiveled front beam is shown. To generate a swiveled beam into a left turn, groups of light sources of the left-hand lighting assembly 10 and groups of light sources of the right-hand lighting assembly 20 are successively turned on while the remaining light sources are turned off. An exemplary sequence of activated light source groups may be S.sub.12, S.sub.13; S.sub.13, S.sub.14; S.sub.14, S.sub.15; S.sub.15, S.sub.16 for the left-hand lighting assembly 10 and S.sub.23, S.sub.22; S.sub.22, S.sub.21 for the right-hand lighting assembly 20. When taking a turn to the right, the sequences would run in the opposite direction, in this case light sources S.sub.12, S.sub.13; S.sub.12, S.sub.11 for the left-hand lighting assembly 10 and light sources S.sub.22, S.sub.23; S.sub.23, S.sub.24; S.sub.24, S.sub.25; S.sub.25, S.sub.26 for the right-hand lighting assembly 20 would be activated while the other light sources are turned off. The degree of beam swivel .sub.1, .sub.2 obtainable by the lighting assembly 10, 20 according to the invention is less that that shown by the prior art solutions described above. However, by arranging each lighting assembly 10, 20 so that its optical axis is at an angle to the longitudinal axis L of the vehicle 1, the front beam can still be satisfactorily directed into the turn, while requiring less light sources that the prior art solution. Furthermore, the beam quality of the swiveled front beam obtained in this manner is satisfactorily high without requiring any complex lens design.
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(15) Although the present invention has been disclosed in the form of preferred embodiments and variations thereon, it will be understood that numerous additional modifications and variations could be made thereto without departing from the scope of the invention.
(16) For the sake of clarity, it is to be understood that the use of a or an throughout this application does not exclude a plurality, and comprising does not exclude other steps or elements. A unit or module can comprise a number of units or modules.