LIGHT-EMITTING DIODE LIGHTING SYSTEM AND SCANNING DEVICE, FOR AN AUTOMOTIVE VEHICLE HEADLIGHT
20190154227 · 2019-05-23
Assignee
Inventors
Cpc classification
F21S41/148
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21S41/25
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21S41/151
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21S41/663
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F21S41/675
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21S41/663
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A lighting system having a light source with a light-emitting diode and a scanning device receiving light radiation generated by the light source is provided. The scanning device generally includes a rotatably mobile reflection system and a unit for moving the reflection system. The light source configured such that a generally substantially rectangular light beam oriented along a vertical direction is emitted. The scanning device may be configured to scan the generally substantially rectangular light beam along a horizontal direction substantially orthogonal to the first direction carried out at a speed making it possible to benefit from a persistence of vision, and an activation/deactivation control of the light source may be synchronised with the scanning of the scanning device.
Claims
1. A lighting system for an automotive vehicle headlight, the lighting system comprising: a light source comprising a light-emitting diode, said light source configured to selectively activate and deactivate and, when activated, generate a light radiation; a focusing means; and a scanning device receiving the light radiation generated by the light source and transmitted by the focusing means, the scanning device comprising: at least one rotatably mobile reflection system; and a unit configured to move the reflection system, the scanning device configured to reflect and to distribute the light radiation spatially by emitting a light beam, wherein at least said light source is configured such that a generally substantially rectangular light beam, oriented along a vertical direction, is emitted, wherein the scanning device is configured to scan the generally substantially rectangular light beam along a horizontal substantially orthogonal to said vertical direction, wherein the scanning is carried out at a speed making it possible to benefit from a persistence of vision, and wherein an activation/deactivation control of the light source is synchronised with the scanning of the scanning device.
2. The lighting system according to claim 1, wherein the activation/deactivation control of the light source is synchronised with the scanning of the scanning device, such that the light source is deactivated for at least one given position of the light beam emitted during the scanning, to obtain at least one non-lit part in a lighting zone of the lighting system.
3. The lighting system according to claim 1, wherein the light source comprises a plurality of light-emitting diodes arranged to form a set of diodes having a rectangular shape.
4. The lighting system according to claim 1, wherein the reflection system is mobile about an axis parallel to said vertical direction.
5. The lighting system according to claim 4, wherein the reflection system is configured to carry out a complete rotational movement of the light beam.
6. The lighting system according to claim 5, wherein the reflection system comprises a cylindrical part disposed on an outer periphery of the reflection system and having a plurality of mirrors arranged on either side around the outer periphery.
7. The lighting system according claim 4, wherein the reflection system is configured to carry out an oscillatory rotational movement of the light beam, the oscillatory rotational movement having an angle of rotation less than 180.
8. The lighting system according to claim 1, wherein the unit comprises a direct current brushless motor.
9. The lighting system according to claim 1, wherein the unit comprises a piezoelectric motor.
10. The lighting system according to claim 1, wherein the unit is configured to move the scanning device at an angular speed greater than 3000 per second.
11. A headlight for an automotive vehicle comprising one or more lighting systems of claim 1.
12. A method for controlling an automotive vehicle headlight having the lighting system of claim 1, comprising synchronising the activation/deactivation of the light source with the scanning of the scanning device, so as to deactivate, if necessary, the light source for at least one given position of the light beam emitted, to obtain at least one non-lit part in a lighting zone.
Description
[0031] The invention will be best understood, and other aims, details, characteristics and advantages of this will appear more clearly during the following detailed explicatory description, of embodiments of the invention, giving purely illustrative and non-limiting examples, in reference to the appended schematic drawings. In these drawings:
[0032]
[0033]
[0034]
[0035]
[0036]
[0037] The present invention is applied to an automotive vehicle headlight (not shown), configured to generate a light beam. This headlight comprises a lighting system 1 such as schematically represented in
[0038] This lighting system 1 is mounted inside a casing (not shown) of the headlight, facing a protective glass, to emit a light beam directed towards the road scene situated in front of the automotive vehicle.
[0039] As schematically represented in
[0043] The scanning device 5A, 5B comprises at least one rotatably mobile reflection system 6A, 6B and a movement unit 7A, 7B, configured to move the reflection system 6A, 6B, as illustrated by an arrow 8A, 8B in a chain-dotted line in
[0044] The figure references to which the letter A is associated, relate to a first embodiment of the scanning device, shown in
[0045] According to the invention: [0046] at least said light source 2 is configured so that a generally substantially rectangular light beam F, is emitted, as shown in
[0050] Thus, thanks to the generation of a vertical rectangular light beam F (along the direction Z), associated with a horizontal scanning (along the direction Y) of this light beam F, the lighting system 1 is able to illuminate an overall usual lighting zone (laterally delimited by the positions P1 and P2 of
[0051] The lighting system 1 thus has a reduced cost, all the more than being able to use conventional (non-laser) light-emitting diodes which are cheaper.
[0052] The lighting system 1, such as described above, is able to create, in the lighting zone, one or more non-lit zone parts (or zone parts all having at least one reduced lighting). This or these zone part(s) are obtained by synchronising the extinction of the light beam F at the level of the light source 2 with the scanning thereof, i.e. by deactivating the light source 2 at the moment when, during the scanning, the light beam F is meant to be located at a zone part that is not desired to be illuminated, as illustrated for a zone part Z1 in
[0053] The lighting system 1 is able to create, in the lighting zone, a plurality of different zone parts, non-lit (or all having at least one reduced lighting), thus generating a dynamic and selective lighting.
[0054] For the implementation of the invention, the scanning of the rectangular light beam is therefore carried out at a very high speed, in order to be able to benefit from a persistence of vision, i.e. so that the human eye sees a fully lit zone, despite the scanning.
[0055] To do this, the movement unit 7A, 7B is configured to generate a movement of the reflection system 6A, 6B, creating scanning of very high angular speed and greater, preferably, than 3000 per second.
[0056] As an illustration, with a scanning speed of frequency 100 Hz for an angular range of 40, an angular speed of 4000 per second is obtained.
[0057] The lighting system 1 is associated with a control unit (not shown which controls the synchronisation of the activation/deactivation of the light source 2 with the scanning of the lighting device 5, by usually generating suitable control orders, which are sent to the light source 2 (and possibly to the movement unit) according to the angular position of the light beam emitted.
[0058] Information relating to zone parts to not be illuminated, which are used to determine these control orders, are generated usually, for example using a camera for detecting an approaching vehicle. Acquiring this information does not come within the scope of the present invention and is not described further.
[0059] In a preferred embodiment shown in
[0060] In the example shown in
[0061] In this preferred embodiment, the rectangular shape of the light beam F emitted is created directly by the rectangular shape of the light source 2 generating the light beam R.
[0062] However, within the scope of the present invention, the rectangular light beam F can be created in different ways, in particular by a specific combination of the light source (with light-emitting diode(s)) and an optical shape generation means (not shown).
[0063] The reflection system 6A, 6B is mobile about an axis X which is parallel to said vertical direction Z.
[0064] In a first embodiment shown in
[0065] In this case, the reflection system 6A comprises a cylindrical part 10, having a symmetry of rotation about the axis X, which is provided on the outer periphery 11 thereof of a plurality of mirrors 12 (for example, eight or sixteen mirrors), arranged on either side around the periphery (or circumference). This cylindrical part 10 is driven in rotation by the movement unit 7A.
[0066] During the rotation of the reflection system 6A, the light radiation R is reflected successively, one after the other, by the mirrors which are arranged on either side, and at each moment by the mirror which is located at a position P0 facing the focussing means 4. In addition, because of the rotation of the reflection system 6A, which modifies the relative position of the mirror (achieving the reflection) with respect to the direction E for transmitting the light radiation R, the direction D for emitting the light beam F varies. This direction is within an angular range of angle which preferably has a value 40 or 60, i.e. with values of +/20 or of +/30 on either side of a central angular position.
[0067] In the examples in
[0068] Furthermore, in a second embodiment, schematically shown in
[0069] In the scope of the present invention, the movement unit 7A, 7B can comprise any type of motor capable of implementing the of rotational or oscillatory movement in question. In a specific embodiment, it can comprise: [0070] a direct current brushless motor; or [0071] a piezoelectric motor.
[0072] The functioning of the lighting system 1, such as described above, is as follows.
[0073] The lighting system 1 generates, using at least the light source 2, a vertical rectangular light beam F (along the direction Z). Simultaneously, the scanning device 5A, 5B carries out horizontal scanning of the vertical light beam F, along the direction Y.
[0074] The lighting system 1 thus scans an overall usual lighting zone of an automotive vehicle headlight.
[0075] The scanning of the rectangular light beam F is carried out at a very high speed, in order to benefit from a persistence of vision.
[0076] In addition, the lighting system 1 synchronises the activation and the deactivation of the light source 2 with the scanning of the scanning device 5A, 5B, so as to deactivate, if necessary, the light source 2 for at least one given position of the light beam emitted, in order to obtain at least one non-lit part in a lighting zone. The lighting system 1 thus generates a controllable dynamic lighting.