Automotive lighting module with combined low and high beam functions and an adjustable light source
10166910 ยท 2019-01-01
Assignee
Inventors
Cpc classification
F21S41/365
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21S41/321
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21S41/148
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21S41/663
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21S41/153
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21S41/285
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F21S41/147
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21S41/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21S41/36
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21S41/663
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A motor vehicle lighting module including an optical axis, a first optical system with at least one first light source, the system being configured to form a first lighting beam along the optical axis, with a horizontal cutoff; and a second optical system with at least one second light source, the system being configured to produce, in combination with the first optical system, a second lighting beam along the optical axis, that is vertically more extensive than the first beam. The light sources have a variable lighting power varying between a high level and a low level, the first beam being produced at the low level of lighting power and the second beam being produced at the high level of lighting power.
Claims
1. A motor vehicle lighting module, comprising: an optical axis; a first optical system with at least one first light source, said first optical system being configured to form a first lighting beam along the optical axis, with a horizontal cutoff; a second optical system with at least one second light source, said second optical system being configured to produce, in combination with the first optical system, a second lighting beam along the optical axis, that is vertically more extensive than the first beam; wherein-the at least one first light source has a variable lighting power varying between a high level and a low level and the at least one second light source has a lighting power at the high level, the first beam being produced at the low level of lighting power and the second beam being produced at the high level, wherein the at least one first light source comprises at least one main light zone and at least one auxiliary light zone, said at least one main light zone and said at least one auxiliary light zone to be electrically powered separately, the low level of lighting power being produced by only powering said at least one main light zone and the high level of power being produced by powering said at least one main light zone and said at least one auxiliary light zone, and said at least one main light zone and said at least one auxiliary light zone of each of the at least one first light source are arranged on several components.
2. The lighting module according to claim 1, wherein said at least one auxiliary light zone of each of the at least one first light source are arranged, along the optical axis, forward of said at least one main light zone.
3. The lighting module according to claim 1, wherein the high level of lighting power is greater than or equal to 150% of the low level.
4. The lighting module according to claim 1, wherein the second beam has a mean light flux in a zone which is greater than or equal to 150% of the mean light flux of the first beam in the zone, said zone being situated beneath the optical axis.
5. The lighting module according to claim 1, wherein the at least one first light source is arranged to illuminate in a first direction, the at least one second light source being arranged to illuminate in a second direction which is opposite of the first direction.
6. The lighting module according to claim 1, wherein each of the first and second optical systems comprises a reflective surface to reflect rays emitted by the at least one first light source and/or at least one second light source, respectively, toward a cutoff edge situated on the optical axis of the lighting module.
7. The lighting module according to claim 6, wherein the reflective surface of the first and of the second optical system has the shape of a half-shell with an elliptical profile.
8. The lighting module according to claim 6, wherein the reflective surface of the first optical system comprises two portions of a surface of revolution about two optical axes of the first optical system, said axes converging toward the optical axis of the lighting module.
9. The lighting module according to claim 8, wherein said at least one main light zone of each of two first light sources are centered on one of the two optical axes of the first optical system respectively, and said at least one auxiliary light zone is arranged laterally to said corresponding one of the two optical axes on the side of the optical axis of the lighting module and forward of said at least one main light zone.
10. The lighting module according to claim 9, wherein said at least one main light zone of each of the two first light sources are aligned in a first direction perpendicular to said corresponding one of the two optical axes of the first optical system.
11. The lighting module according to claim 10, wherein said at least one auxiliary light zone of each of the two first light sources are aligned in a second direction perpendicular to said corresponding one of the two optical axes of the first optical system, said second direction being forward of the corresponding first direction.
12. The lighting module according to claim 1, comprising an electronic control unit controlling the at least one first light source and the at least one second light source, and configured to power the at least one first light source at the low level to form the first beam and to power the at least one second light source at the high level to form the second beam.
13. The lighting module according to claim 1, wherein the at least one first light source includes two light sources, arranged respectively one on each side of the optical axis of the lighting module.
14. The lighting module according to claim 1, comprising a lens to receive rays of light from the first and second optical systems to form the first and second beams.
15. A motor vehicle lighting module, comprising: an optical axis; a first optical system with at least one first light source, said first optical system being configured to form a first lighting beam along the optical axis, with a horizontal cutoff; a second optical system with at least one second light source, said second optical system being configured to produce, in combination with the first optical system, a second lighting beam along the optical axis, that is vertically more extensive than the first beam; wherein-the at least one first light source has a variable lighting power varying between a high level and a low level and the at least one second light source has a lighting power at the high level, the first beam being produced at the low level of lighting power and the second beam being produced at the high level, wherein the at least one first light source comprises at least one main light zone and at least one auxiliary light zone, said at least one main light zone and said at least one auxiliary light zone to be electrically powered separately, the low level of lighting power being produced by only powering said at least one main light zone and the high level of power being produced by powering said at least one main light zone and said at least one auxiliary light zone, and the high level of the at least one first light source increases light intensity at the horizontal cutoff.
16. The lighting module according to claim 15, wherein the at least one first light source and the at least one second light source are arranged on opposite faces of a common support.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) Further features and advantages of the present invention will be better understood with the aid of the description and of the drawings among which:
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(8) The first optical system 6 essentially comprises a light source 8 arranged on a support 10, and a reflective surface 12. The latter forms a half-shell in the half-space delimited by the support 10. The latter is advantageously generally planar. The reflective surface 12 advantageously has an elliptical profile with two focal points F.sub.1 and F.sub.2, one them (F.sub.1) corresponding to the location of the light source 8 and the other (F.sub.2) being at the level of a cutoff edge 14 of a reflective surface 16.
(9) The second optical system 20 essentially, and like the first optical system 6, comprises a light source 22 arranged on the support 10 which is advantageously common to the first light source 8, and a reflective surface 24. The latter forms a half-shell in the half-space delimited by the support 10 and is advantageously elliptical in profile with two focal points F.sub.1 and F.sub.2, one of them (F.sub.1) corresponding to the location of the light source 22 and the other (F.sub.2) being level with the cutoff edge 14 of the reflective surface 16. The focal point F.sub.2 of the second optical system 20 may coincide with that (F.sub.2) of the first optical system 6.
(10) The reflective surfaces 12 and 24 of the first and second optical systems 6 and 20 may be surfaces of revolution configured to reflect the rays emitted in the two half-spaces delimited by the support 10 toward the focal points F.sub.2 and F.sub.2.
(11) With reference to
(12) The module works as follows:
(13) When the main light zone or zones 8.sup.1 of the light source 8 of the first optical system is/are electrically powered, the rays produced are essentially reflected toward the second focal point F.sub.2. Some of the rays pass directly forward of the cutoff edge 14 and strike the lower half of the lens 18. These rays are then refracted a first time as they pass through the first diopter formed by the rear face of the lens and then a second time as they pass through the second diopter formed by the front face of said lens. These rays are illustrated by the ray depicted in continuous line in
(14) When the light source 22 of the second optical system is electrically powered, a beam that complements the beam of the first optical system is produced. When the light source 22 of the second optical system is electrically powered at the same time as the main light zones 8.sup.1 of the first optical system, a beam like the one illustrated in continuous line in
(15) With reference to
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(18) The first optical system 106 illustrated in
(19) Like the light source 8 in the first embodiment, the light sources 108 each comprise main light zones 108.sup.1 and auxiliary light zones 108.sup.2. Like the configuration in the first embodiment illustrated in
(20) The distance d between the two perpendicular directions 126 and 128 may be comprised between 0.5 and 3 mm, preferably between 1 and 2 mm. It may be seen in
(21) In general, the light zones of the light source or sources of the first optical system may be situated on one and the same semiconductor component, these zones then being addressable from an activation standpoint, so that they can be powered individually. Alternatively, these zones may correspond to several distinct semiconductor components, in which case these components are powered individually, for example by means of electrically conducting tracks on a plate that these components share in common.
(22) Still in general terms, a control unit (not depicted) is advantageously electrically connected to the light sources of the first and second optical systems and configured to power only the main light zones of the first source or sources in order to produce the beam with a horizontal cutoff and all the light zones of the first source or sources as well as the second source in order to produce the beam without a horizontal cutoff.