Light device for a motor vehicle
10488030 ยท 2019-11-26
Assignee
Inventors
- Franck Dinant (Meslin l'Eveque, BE)
- Dirkie Sacchet (Meslin l'Eveque, BE)
- Florestan Debert (Meslin l'Eveque, BE)
Cpc classification
B60Q1/0683
PERFORMING OPERATIONS; TRANSPORTING
F21S45/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V29/74
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21S41/255
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21S45/47
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60Q1/0433
PERFORMING OPERATIONS; TRANSPORTING
F21S43/50
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21S43/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21S45/48
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21S41/143
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21S41/192
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21S41/26
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60Q1/0483
PERFORMING OPERATIONS; TRANSPORTING
International classification
F21V21/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21S45/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21S43/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V29/74
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21S41/143
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21S45/47
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A light device for a motor vehicle, the light device including: a housing; a heat sink over moulded with the housing; at least one light source arranged directly on the heat sink; a control device for the electrical power supply of the at least one light source arranged in the housing and electrically connected to the light source; an optical element suitable for cooperating with light rays emitted by the at least one light source.
Claims
1. Light device for a motor vehicle, said light device comprising: a housing; a heat sink over moulded with said housing, the heat sink including a central part and a planar part protruding from the central part; at least one light source arranged directly on the planar part of the heat sink; a control device for an electrical power supply of said at least one light source arranged in said housing and electrically connected to said light source; an optical element suitable for cooperating with light rays emitted by said at least one light source.
2. The light device according to claim 1, wherein said heat sink is made of sheet metal.
3. The light device according to claim 2, wherein the sheet metal is made of aluminium.
4. The light device according to claim 1, wherein said light device is a fog light or a headlight.
5. The light device according to claim 1, wherein said heat sink further comprises two lateral parts.
6. The light device according to claim 5, wherein the central part has a thickness substantially equal to 2 mm, and the two lateral parts have a thickness substantially equal to 1.8 mm.
7. The light device according to claim 1, wherein said control device comprises an electronic support arranged in said housing.
8. The light device according to claim 1, wherein said housing comprises an accommodating surface for said control device.
9. The light device according to claim 1, wherein said optical element is a lens or a reflector or a light guide.
10. The light device according to claim 1, wherein said at least one light source is a semiconductor light source.
11. The light device according to claim 10, wherein the semiconductor light source forms a part of a light-emitting diode.
12. The light device according to claim 1, wherein said light device comprises a plurality of light sources.
13. The light device according to claim 2, wherein said light device is a fog light or a headlight.
14. The light device according to claim 3, wherein said light device is a fog light or a headlight.
15. The light device according to claim 2, wherein said heat sink further comprises two lateral parts.
16. The light device according to claim 3, wherein said heat sink further comprises two lateral parts.
17. The light device according to claim 4, wherein said heat sink further comprises two lateral parts.
18. The light device according to claim 2, wherein said control device comprises an electronic support arranged in said housing.
19. The light device according to claim 3, wherein said control device comprises an electronic support arranged in said housing.
20. The light device according to claim 4, wherein said control device comprises an electronic support arranged in said housing.
Description
BRIEF DESCRIPTION OF THE FIGURES
(1) The invention and its various applications will be better understood on reading the following description and on studying the accompanying figures.
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DESCRIPTION OF EMBODIMENTS OF THE INVENTION
(17) The elements that are identical, by structure or by function, appearing in different figures retain, unless specified otherwise, the same references.
(18) The light device 1 for a motor vehicle according to the invention is described with reference to
(19) In a nonlimiting embodiment, the light device 1 is a headlight and/or a fog light for a motor vehicle.
(20) A motor vehicle should be understood to mean any type of motorised vehicle. In nonlimiting embodiments, a headlight is adapted to ensure a photometric function: Called High Beam to produce a high beam; and/or Called Low Beam to produce, for example, a low beam; and/or called DRL to produce a daytime running light; and/or called Turn Indicator to produce an indicator light.
(21) As illustrated in
(22) In a nonlimiting embodiment, the light device 1 further comprises a mask 15 and an outer lens 17.
(23) In a nonlimiting embodiment, the light device 1 further comprises a gear screw 18, also called setting a screw.
(24) In a nonlimiting embodiment, the light device 1 comprises a plurality of light sources 12. This embodiment is taken as a nonlimiting example hereinafter in the description.
(25) The elements of the light device 1 are described in detail herein below.
(26) Housing 10
(27) The housing 10 is illustrated in
(28) In a nonlimiting embodiment, the housing 10 is made of plastic material. In a nonlimiting example, the plastic material is PCSAN (polycarbonate and styrene-acrylonitrile) filled with glass fibres.
(29) In a nonlimiting embodiment, the housing 10 has a substantially rounded form. That makes it possible to obtain, for example, a fog light of standard form.
(30) As illustrated in
(31) As illustrated in
(32) As illustrated in
(33) As illustrated in
(34) As illustrated in
(35) Heat Sink 11
(36) The heat sink 11 is illustrated in
(37) It is suitable for thermally dissipating the heat given off by the light sources 12 out of the housing 10. It can also dissipate a portion of the heat given off by the control device 13 (electronic components and printed circuit board on which the electronic components rest) out of the housing 10.
(38) The heat sink 11 also makes it possible to position the light sources 12 relative to the optical element 14. It is thus used for indexing.
(39) As illustrated in
(40) In a nonlimiting embodiment, the central part 110 has a width substantially equal to 15 mm and a length substantially equal to 30 mm (millimetres). In a nonlimiting embodiment, the central part 110 has a thickness e1 substantially equal to 2 mm.
(41) In a nonlimiting embodiment, the lateral parts 111 have a width substantially equal to 34 mm and a length substantially equal to 33 mm. In a nonlimiting embodiment, the lateral parts 111 have a thickness e2 substantially equal to 1.8 mm.
(42) The two lateral parts 111 form two dissipation fins.
(43) In nonlimiting embodiments, the heat sink 11 further comprises: a planar part 112 protruding from the central part 110 suitable for accommodating the light sources 12; at least one indexing orifice 113. In a nonlimiting embodiment that is illustrated, there are two indexing orifices 113. The indexing orifices 113 are suitable for positioning the heat sink 11 in the mould which will mould the housing 10 and make it possible to locate the placement of the light sources 12 when they are glued onto the heat sink 11.
(44) In a nonlimiting embodiment, the heat sink 11 is made of sheet metal. It is thus easy to produce. Thus, the sheet metal can be stamped and folded and cut, or cut and stamped, or cut and folded, etc. Moreover, that makes it possible to render the heat sink 11 more compact compared to a heat sink produced in injection-moulded aluminium. In a nonlimiting variant embodiment, the sheet metal is made of aluminium. This is a material that is lightweight and which has good thermal performance levels.
(45) The heat sink 11 is over moulded with said housing 10 as illustrated in
(46) Thus, after the production of the heat sink 11, it is placed as an insert in a mould of the housing 10, then plastic is injected to produce the housing 10. A housing 10 with over moulded heat sink 11 assembly is thus obtained.
(47) Thus, it is pointless in this case to have a fixing interface between the housing and the heat sink as in the prior art. The weight of the heat sink 11, its bulk and its production costs are thus reduced. It will also be noted that because of the elimination of this fixing interface, a silicon seal conventionally of O-ring type, which was necessary between said fixing interface and the housing to seal the light device assembly, has also been eliminated. Consequently, a step of mechanical coupling for such a seal has been eliminated. In a nonlimiting embodiment, this O-ring silicone seal is replaced by a seal 6 (illustrated in
(48) Light Source 12
(49) Said at least one light source 12 is illustrated in
(50) It emits light rays which, when they cooperate with the optical element 14, make it possible to produce a light beam from the light device 1.
(51) In a nonlimiting embodiment, said at least one light source 12 is a semiconductor light source.
(52) In a nonlimiting embodiment, the semiconductor light source forms part of a light-emitting diode. Light-emitting diode should be understood to mean any type of light-emitting diode, whether it be, in nonlimiting examples, LEDs (Light Emitting Diode), an OLED (Organic LED) or an AMOLED (Active-Matrix-Organic LED), or even an FOLED (Flexible OLED).
(53) In a nonlimiting embodiment, the light device 1 comprises a plurality of light sources 12. In the nonlimiting example of
(54) As illustrated in
(55) Thus, by being mounted directly on the heat sink 11 and therefore being in direct contact with said heat sink 11, it becomes possible to improve the thermal dissipation of said light sources 12. Thus, it is possible: to use high-performance light sources 12, such as light sources used for fog lights. In a nonlimiting example, the high-performance light sources 12 make it possible to emit light rays of 530 Lm (lumens). It will be noted that, for a conventional headlight, the power is 350 Lm. to reduce the heat exchange surface of the heat sink 11 with the light sources 12. The size of the heat sink 11 can thus be reduced (central part 110 and fins 111).
(56) As illustrated in
(57) As illustrated in
(58) Control Device 13
(59) The control device 13 is illustrated in
(60) The control device 13 is suitable for controlling the electrical power supply of the light sources 12. To this end, the control device 13 is linked electrically to the light sources 12 by ribbon bonding 114 for each light source 12 illustrated in
(61) As illustrated in
(62) The electronic components 131 are arranged on at least one face of the electronic support 130. In the nonlimiting example illustrated in
(63) The electronic support 130 is arranged in said housing 10. In particular, it rests on the accommodating surface 103 of the housing 10.
(64) In a nonlimiting embodiment, the electronic support 130 is a printed circuit board assembly PCBA.
(65) Moreover, the control device 13 comprises: a power supply connector 132 suitable for connecting the control device 13 to a power source of the motor vehicle via a client connector. The power supply connector 132 comprises two pins, one positive and one negative. In a nonlimiting example, said power source is a 12 V battery; and a fixing orifice 133 suitable for accommodating a fixing screw 3 (illustrated in
(66) The control device 13 is arranged in such a way as to be able to be incorporated in said housing 10 as illustrated in
(67) Optical Element 14
(68) The optical element 14 is suitable for distributing the light rays originating from the light sources 12 on the road. It thus cooperates with the light rays from the light sources 12 to give a light beam which lights the road.
(69) In a nonlimiting example, the optical element 14 is a lens and/or a reflector and/or a light guide. In the nonlimiting example illustrated it is a lens.
(70) The optical element 14 comprises a gear portion 140 (illustrated in
(71) The gear portion 140 is suitable for inserting into the through orifice 104 of the housing 10 so as to cooperate with said gear screw 18.
(72) Gear Screw 18
(73) The gear screw 18 is suitable for adjusting the rotation of the optical element 14 so as to have a cut-off line of the light beam at the desired level relative to the horizontal of the road. It thus takes up the level control of the motor vehicle. Said gear screw 18 is suitable for being manually controlled by a screwdriver or by a power screwdriver. It allows for an adjustment under the light device 1.
(74) In a nonlimiting embodiment, the light device 1 further comprises an adjustment pinion 19 illustrated in
(75) Mask 15 and Outer Lens 17
(76) The mask 15 has an aesthetic function. It also has a mechanical function, namely it makes it possible to hold the optical element 14 in position in the housing 10.
(77) The outer lens 17 is made of plastic material and is domed. It makes it possible to protect the elements in the housing 10 against dust and the ingress of water.
(78) It is screwed onto the edge 100 of the housing 10.
(79) Obviously, the description of the invention is not limited to the embodiments described above.
(80) Thus, in a nonlimiting embodiment, the electronic components 131 can be arranged on both faces of the electronic support 130.
(81) Thus, in a nonlimiting embodiment, the housing 10 can have a form other than rounded, for example substantially rectangular.
(82) Thus, in a nonlimiting embodiment, the heat sink 11 can comprise more than two fins 111.
(83) Thus, in a nonlimiting embodiment, a connecting wire (called wire bonding) can be used in place of the ribbon bonding 114.
(84) Thus, the invention described offers in particular the following advantages: the heat dissipation is better by virtue of the mounting of the light sources 12 directly on the heat sink 11; since the heat dissipation is better, it makes it possible to reduce the dimensions of the heat sink 11, in particular the number of its fins, its surface and its thickness. Its volume and its weight and consequently its cost, are thus reduced; the possibility of reducing the dimensions of the heat sink 11 makes it possible to reduce the cost and the weight of the heat sink by using a sheet metal production method instead of an aluminium injection moulding production method; it thus makes it possible to considerably reduce the cost of the heat sink 11. The reduction of the cost of the heat sink 11 is roughly 70%; it thus makes it possible to reduce the volume and the weight of the heat sink 11. Thus, the reduction of the weight of the heat sink 11 is roughly 80% compared to a heat sink made of injection-moulded aluminium with a plurality of fins; it makes it possible to reduce the surface of the electronic support 130 which no longer comprises the light sources 12, contrary to the prior art; it thus makes it possible to reduce the volume, the weight and the cost of the light device 1 as a whole compared to a light device which comprises a heat sink made of injection-moulded aluminium with a plurality of fins, a fixing interface and an O-ring silicone seal; it makes it possible to have a lower thermal resistance of the light device 1. Indeed, in the prior art, the printed circuit board on which the light sources are located is not a good conductor of heat and thus constitutes a barrier between said light sources and said heat sink for heat dissipation of said light sources. In the light device 1 described in the description and that is the subject of the invention, the printed circuit board no longer forms an obstacle for the conduction of heat between the light sources 12 and the heat sink 11.