Light module with LED and OLED diodes
09869447 ยท 2018-01-16
Assignee
Inventors
- Hui Jin (Paris, FR)
- Christophe Dubosc (Villemomble, FR)
- David Hue (Butry sur Oise, FR)
- Boubacar SAGNA (Sartrouville, FR)
Cpc classification
F21S41/30
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21W2103/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21S43/40
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21Y2115/15
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60C1/0041
PERFORMING OPERATIONS; TRANSPORTING
B60Q1/44
PERFORMING OPERATIONS; TRANSPORTING
B60Q1/2607
PERFORMING OPERATIONS; TRANSPORTING
F21W2103/15
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21S43/145
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21W2103/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21Y2115/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60Q1/381
PERFORMING OPERATIONS; TRANSPORTING
B60Q1/0041
PERFORMING OPERATIONS; TRANSPORTING
B60Q1/30
PERFORMING OPERATIONS; TRANSPORTING
F21S43/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V5/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21Y2113/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21S43/30
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02B20/30
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
F21S41/33
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21W2103/35
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
B60Q1/26
PERFORMING OPERATIONS; TRANSPORTING
F21V5/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A light module, notably for a motor vehicle, comprising a first light source of light-emitting diode type and a second surface light source of the organic light-emitting diode type suitable for reflecting the light rays emitted by the first light source in order to form a light beam along an optical axis of the module. The module further comprises a collimator suitable for deflecting the light rays emitted by the first source in a main direction and meeting the second light source with a non-zero angle of incidence ?.
Claims
1. A light module, notably for a motor vehicle, comprising: a first light source of the semiconductor type; a second surface light source of the organic light-emitting diode type suitable for reflecting light rays emitted by said first light source in order to form a light beam along an optical axis of said light module; wherein said light module further comprises: an optical device suitable for deflecting said light rays emitted by said first light source in a main direction and meeting said second surface light source with a non-zero angle of incidence ?; wherein said optical device is arranged optically between said first light source and said second surface light source so that said light rays emitted by said first light source pass through said optical device and meet said second surface light source.
2. The light module according to claim 1, wherein said optical device comprises a translucent or transparent element forming at least one diopters(s).
3. The light module according to claim 1, wherein said optical device is a collimator.
4. The light module according to claim 1, wherein said first light source consists of one or more light-emitting diodes.
5. The light module according to claim 4, wherein said light-emitting diode or diodes of said first light source illuminate in a half-space delimited by a plane forming an angle ? of less than 70?, preferentially less than 60?, more preferentially less than 50?, with the perpendicular to the mean plane of said second surface light source.
6. The light module according to claim 1, wherein said non-zero angle of incidence ? of said light rays outgoing from said optical device with said second surface light source is greater than 10?, preferentially 15?, more preferentially 20?.
7. The light module according to claim 1, wherein said second surface light source forms an angle ? with a direction at right angles to said optical axis of said light module, which lies between 3? and 30?.
8. The light module according to claim 1, wherein said light beam formed by reflection on said second surface light source is a first beam, said second surface light source being suitable for producing a second light beam.
9. The light module according to claim 8, wherein said first beam corresponds to a brake indicator function for a motor vehicle and/or said second light beam corresponds to a side marker indicator function for a motor vehicle.
10. The light module according to claim 1, wherein said second surface light source extends transversely to said optical axis of said light module beyond said first light source.
11. A light module, notably for a motor vehicle, comprising: a first light source of the semiconductor type; a second surface light source of the organic light-emitting diode type suitable for reflecting light rays emitted by said first light source in order to form a light beam along an optical axis of said light module; wherein said light module further comprises: an optical device suitable for deflecting said light rays emitted by said first light source in a main direction and meeting said second surface light source with a non-zero angle of incidence ?; wherein said second surface light source comprises two organic light-emitting diodes extending transversely to said optical axis in directions that are generally opposing and inclined in a direction of said light beam relative to a direction at right angles to said optical axis of said light module.
12. The light module according to claim 11, wherein said first light source comprises two sets of spot light-emitting diodes, each set being arranged so as to illuminate one of said two organic light-emitting diodes, respectively.
13. The light module according to claim 12, wherein said two sets of spot light-emitting diodes of said first light source are arranged, respectively, on two walls that are inclined relative to said optical axis so as to form a cavity with an aperture directed toward a front of said light module, said light module comprising a third light source arranged in said cavity and suitable for forming an additional light beam.
14. The light module according to claim 13, wherein said optical device is a first optical device, said light module comprising a second optical device in said cavity, suitable for deflecting the light rays emitted by said third light source along said optical axis in order to form said additional light beam.
15. The light module according to claim 13, wherein said additional light beam corresponds to a direction indicator function for a motor vehicle.
16. A light device, notably a lighting and/or signaling device, for a motor vehicle, comprising: a casing; a light module housed in said casing; wherein said light module comprises: a first light source of the semiconductor type; a second surface light source of the organic light-emitting diode type suitable for reflecting light rays emitted by said first light source in order to form a light beam along an optical axis of said light module; wherein said light module further comprises: an optical device suitable for deflecting said light rays emitted by said first light source in a main direction and meeting said second surface light source with a non-zero angle of incidence ?; wherein said optical device is arranged optically between said first light source and said second surface light source so that said light rays emitted by said first light source pass through said optical device and meet said second surface light source.
17. The light module according to claim 2, wherein said optical device is a collimator.
18. The light module according to claim 2, wherein said first light source consists of one or more light-emitting diodes.
19. The light module according to claim 3, wherein said first light source consists of one or more light-emitting diodes.
20. The light module according to claim 1, wherein said optical device comprises a translucent or transparent element forming two diopters(s).
Description
BRIEF DESCRIPTION OF THE ACCOMPANYING DRAWINGS
(1) Other features and advantages of the present invention will be better understood from the description and the drawings, in which:
(2)
(3)
(4)
(5)
(6)
(7)
(8)
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
(9)
(10) The module 2 comprises a substrate 4 provided with a central part 4.sup.1, two lateral walls 4.sup.2, two front walls 4.sup.3 protruding from the lateral walls 4.sup.2, two supports 4.sup.4 and a rear part 4.sup.5. The rear part 4.sup.5 is configured to co-operate with an electrical power supply connector 6. The two lateral walls 4.sup.2 form a cavity housing light sources (not visible in
(11) The longitudinal axis of the module 2 represented in
(12) The collimators 10 and 12 are parts made of transparent or translucent material, such as glass or polycarbonate (PC) or polymethylmethacrylate (PMMA). They comprise input and/or output surfaces oriented in such a way as to deflect the rays in a main direction, by applying the Snell-Descartes refraction principle. The input and output faces in effect each form a diopter, namely a surface separating two homogeneous and isotropic transparent media, of different refractive indices. The refractive index of air is in effect of the order of 1 whereas that of glass and of polycarbonate lies between approximately 1.4 and 1.6. The principle of operation of a collimator is well known in itself to those skilled in the art; there is consequently no need to provide more detail thereof.
(13) The substrate 4 is made of plastic material produced by molding and supports the light sources and the electrical tracks, in accordance with the MID (molded interconnect device) technology.
(14)
(15)
(16)
(17) The LED diodes 14 and 16 are preferentially glued onto the substrate 4. In effect, because of the thermoplastic nature of the substrate 4, the use of conventional soldering methods for the electrical contacts is not suitable. The LED diodes 14 and 16 are thus fixed mechanically and electrically by the application of a glue based on polymer and filled with metal elements. It is thus a so-called cold application method that does not damage the substrate 4. After the glue has polymerized, the latter ensures that the LED diodes 14 and 16 are mechanically and electrically fixed.
(18) Electrical tracks are deposited directly on the substrate 4 for the electrical power supply to the LED diodes 14 and 16. The electrical tracks can be produced by the technology designated by the acronym LDS, which stands for Laser Direct Structuring. This involves passing a light ray over the corresponding surface of the substrate 4, according to the configuration of the tracks to be produced. The laser ray has the effect of forming a roughness suitable for promoting the bonding. This step is followed by a metallization by dip-coating of the substrate 4 in one or more successive metal baths.
(19) Alternatively, or complementarily, the electrical tracks can be produced by printing of the ink-jet type with ink that includes metal particles.
(20) The tracks can also be produced by a molding of the substrate 4 in two steps, also called two-shot molding. This is an injection molding process using two different resins in which only one of the two resins can be metallized. Typically, the metallizable resin is ABS and the non-metallizable resin is polycarbonate. The substrate 4 is then subjected to an auto-catalytic deposition process in which butadiene is used to chemically roughen the surface and allow for the adhesion of a primary coat of copper.
(21)
(22)
(23) As mentioned previously, the OLED diodes 8 consist of a superposition of a number of organic semiconductor layers between two electrodes, of which one is transparent. In this case, the electrode situated at the rear is reflecting so that, on the one hand, the light emitted by the semiconductor layers is effectively directed toward the front, and, on the other hand, the rays emitted by the LED diodes 14 toward the OLED diodes 8 are reflected. The electrode situated at the front can consequently be totally or at least mostly transparent.
(24) Still referring to
(25) The LED diodes 14, the collimator 12 and the OLED diode 8 can thus be configured in such a way that the angle of incidence ? of the rays outgoing from the collimator 12 lie between 10? and 40?, preferentially between 15? and 35?, more preferentially between 15? and 30?.
(26) The OLED diodes 8 advantageously form an angle ? with a direction at right angles to the optical axis of the module 2, this angle ? being able to lie between 3? and 30?, preferentially between 5? and 25?, more preferentially between 8? and 20?. The OLED diodes 8 are moreover inclined toward the front. The angle ? is greater than 0, preferentially than 3?, so as to allow the formation of the light beam corresponding to the ray 18. This angle ? is also limited so that the light beam produced by the light rays 20 emitted by the OLED diodes 8 is not too divergent relative to the optical axis.
(27) The light beam produced by reflection of the rays 18 from the LED diodes 14 can thus be produced independently of the activation of the OLED diodes 8. In other words, the light beam from the LED diodes 14 can be added to the light beam produced.
(28)
(29) The module 2 which has just been described can thus ensure a number of light indication functions. In this case, the central part comprising the LED diodes 16 and the collimator 10 housed in the cavity of the substrate 4 can ensure a direction indicator (flashing) function. The surface OLED diodes 8 can ensure a side marker indicator function. The LED diodes 14 with the collimators 12 and the property of reflection of the OLED diodes 8 can ensure a brake indicator function (stop function). In effect, the photometric regulatory requirements are more stringent for the stop function than for the side marker function. The presence of a number of LED diodes 14, more particularly on either side of the optical axis, and the quality of reflection of the surface OLED diodes 8 makes it possible to achieve these requirements.
(30) While the system, apparatus, process and method herein described constitute preferred embodiments of this invention, it is to be understood that the invention is not limited to this precise system, apparatus, process and method, and that changes may be made therein without departing from the scope of the invention which is defined in the appended claims.