Lamp for vehicle and vehicle including same
11454368 · 2022-09-27
Assignee
Inventors
Cpc classification
F21S41/30
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21W2102/155
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
G02B26/0841
PHYSICS
F21S41/365
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21S41/143
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21S41/25
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21W2102/165
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21W2102/13
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21S41/675
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F21S41/675
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21S41/30
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21S41/24
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
Disclosed are a lamp for a vehicle and a vehicle including the lamp. A lamp for a vehicle according to one aspect of the present disclosure includes: a light source configured to emit first light; and a beam splitter configured to form transmitted light by transmitting a part of the first light and form reflected light by reflecting another part of the first light, in which the transmitted light transmitted through the beam splitter and the reflected light reflected by the beam splitter form beam patterns outside.
Claims
1. A lamp configured to output a light beam having an output beam pattern, comprising: a printed circuit board (PCB) having a plane surface; a light source mounted on the plane surface of the PCB and configured to emit a light beam; a beam splitter configured to: transmit a first portion of the light beam emitted from the light source; and reflect a second portion of the light beam emitted from the light source; a reflector configured to reflect the second portion of the light beam reflected by the beam splitter; and a digital micro-mirror device (DMD) mounted on the plane surface of the PCB along with the light source and configured to reflect the second portion of the light beam reflected by the reflector, wherein the light beam output from the lamp comprises the first portion of the light beam transmitted by the beam splitter and the second portion of light beam reflected by the DMD.
2. The lamp of claim 1, further comprising an illumination unit positioned between the light source and the beam splitter, the illumination unit comprising a light guide and a collimator, wherein: the light guide is configured to transmit the light beam emitted from the light source to the collimator, and the collimator is configured to convert the light beam transmitted from the light guide into a parallel light beam and transmit the parallel light beam to the beam splitter.
3. The lamp of claim 1, further comprising a spread unit configured to disperse the first portion of the light beam transmitted from the beam splitter.
4. The lamp of claim 2, further comprising a projection unit configured to transmit the second portion of the light beam reflected by the DMD.
5. The lamp of claim 4, wherein the DMD and the projection unit are disposed in a first direction parallel to a second direction in which the light source and the illumination unit are disposed.
6. The lamp of claim 1, wherein the first portion of the light beam transmitted from the beam splitter and the second portion of the light beam reflected by the DMD partially overlap each other outside the lamp.
7. The lamp of claim 6, wherein an overlapping region between the first portion of the light beam transmitted from the beam splitter and the second portion of the light beam reflected by the DMD constitutes a part of a low beam pattern.
8. A vehicle comprising the lamp of claim 1.
9. The vehicle of claim 8, wherein the DMD comprises a plurality of micro-mirrors individually controlled to change the output beam pattern.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
(4)
DETAILED DESCRIPTION
(5) Hereinafter, a lamp for a vehicle according to the present disclosure will be described with reference to the drawings.
(6) Lamp for Vehicle
(7)
(8) As illustrated in
(9) In addition, the lamp 10 may include a beam splitter 200 which transmits a part of the first light emitted from the light source 100 to form transmitted light from the part of the first light and reflects another part of the first light to form reflected light from another part of the first light. In the present specification, the part of the first light, which is emitted from the light source 100 and transmitted through the beam splitter 200, is referred to as the ‘transmitted light’, and the part of the first light which is emitted from the light source 100 and reflected by the beam splitter 200, is referred to as the ‘reflected light’.
(10) The beam splitter refers to an optical element that divides the incident light into two types of light on the basis of a predetermined ratio. The beam splitter may be classified into a cube-type beam splitter and a plate-type beam splitter. The beam splitter 200 of the lamp 10 according to the present disclosure may also be the cube-type beam splitter or the plate-type beam splitter.
(11) Referring to
(12) According to the present disclosure, the transmitted light transmitted through the beam splitter 200 and the reflected light reflected by the beam splitter 200 propagate to the outside, thereby forming a predetermined beam pattern. Therefore, according to the present disclosure, the first light emitted from the light source 100 is divided into the transmitted light and the reflected light by the beam splitter 200, and the transmitted light and the reflected light propagate to the outside along different routes, such that various types of beam patterns may be formed by the single light source. For example, as described below, the transmitted light may serve as a low beam. The reflected light may serve as an adaptive driving beam (ADB) that forms a dark portion only in a corresponding region in which another vehicle or a pedestrian exists in front of the vehicle, thereby ensuring a visual field of a driver and preventing light blindness from being caused to the pedestrian or the driver in another vehicle. The reflected light may also serve to display predetermined information on a road surface and may form a part of the low beam.
(13) Continuing to refer to
(14) According to the present disclosure, the reflected light reflected by the beam splitter 200 is reflected again by the reflector 300 and then propagates to the outside, thereby forming the beam pattern.
(15) In addition, as illustrated in
(16) The DMD includes a large number of micro-mirrors and may be configured to implement a predetermined beam pattern by individually controlling angles of the micro-mirrors using micro-currents. According to the present disclosure, the reflected light reflected again by the DMD 400 may propagate to the outside, thereby forming the beam pattern.
(17) In particular, since the angles of the large number of micro-mirrors provided in the DMD 400 are individually controlled, it is possible to implement various types of beam patterns by using the DMD 400. For example, the DMD 400 may be used to implement a beam pattern for displaying predetermined information on a road surface or implement a beam pattern having a dark portion formed in a corresponding region in which another vehicle or a pedestrian exists in front of the vehicle.
(18) Meanwhile, the lamp 10 according to the present disclosure may have a plurality of optical systems. Hereinafter, the optical systems will be described in detail.
(19) Referring to
(20) In addition, as illustrated in
(21) Meanwhile, as illustrated in
(22) Meanwhile, as illustrated in
(23) Meanwhile, the lamp 10 according to the present disclosure may further include a printed circuit board (PCB) 800 to which the light source 100 and the DMD 400 are attached. In this case, as illustrated in
(24) In the case of a lamp for a vehicle mounted with a DMD in the related art, light generated by a light source needs to directly enter a reflector because there is no beam splitter. However, in this case, because an optical path along which the light generated by the light source enters the reflector needs to intersect an optical path along which the light is reflected by the DMD and then enters a projection unit, an imaginary plane including a surface of a board on which the light source is installed also intersects an imaginary plane including a surface of the board on which the DMD is installed. Therefore, the board on which the light source is installed and the board on which the DMD is installed need to be separately provided.
(25) Meanwhile, the board to which the light source is attached and the board to which the DMD is attached are generally attached to a heat dissipation unit for dissipating heat generated from the lamp to the outside. In the related art, in order to dispose the light source and the DMD, the heat dissipation unit inevitably has an angled portion corresponding to an angle defined between the board on which the light source is installed and the board on which the DMD is installed. However, if the heat dissipation unit has the above-mentioned structure, it is difficult to manage tolerance of the heat dissipation unit and components around the heat dissipation unit, which causes a deterioration in assembly properties. Further, because components are required to fix the board to which the light source is attached and the board to which the DMD is attached to the heat dissipation unit, the number of components required to manufacture the lamp is also increased.
(26) However, according to the present disclosure, since the light source 100 and the DMD 400 may be attached to the single PCB 800, a portion of the heat dissipation unit to which the PCB is fixed may have a planar shape. Therefore, according to the present disclosure, the assembly property of the lamp may be improved, and the number of components required to manufacture the lamp may be reduced.
(27)
(28) Referring to
(29) The first region R1 is a region formed by the reflected light and may form a part of the low beam. In more detail, the first region R1 may form a cut-off region having a stepped shape formed at an upper end of the low beam.
(30) The second region R2 is also a region formed by the reflected light and may form an ADB. In more detail, when a pedestrian or another vehicle exists in front of the vehicle at night, the angles of the plurality of micro-mirrors provided in the DMD 400 (see
(31) The third region R3 is a region that the reflected light and the transmitted light simultaneously reach. The third region R3 may define a central region of the low beam with relatively high luminous intensity. That is, according to the present disclosure, the third region R3 may be understood as a region in which the reflected light and the transmitted light overlap each other. In more detail, according to the present disclosure, the beam pattern, which is formed outside the vehicle by the transmitted light transmitted through the beam splitter 200 (see
(32) The fourth region R4 is a region formed by the transmitted light and may form a peripheral region of the low beam with relatively low luminous intensity. As described above, according to the present disclosure, since the lamp for a vehicle having the DMD may form the fourth region R4, it is possible to implement the low beam having a wide-ranging beam pattern shape without a separate module.
(33) Vehicle
(34) A vehicle according to the present disclosure may include the lamp 10. In this case, the lamp 10 may be a headlamp.
(35) In this case, referring to
(36) Meanwhile, the lamp 10 for a vehicle according to the present disclosure may further include the reflector 300 configured to reflect again the reflected light reflected by the beam splitter 200, and the DMD 400 configured to reflect again the reflected light reflected by the reflector 300. The DMD 400 may include the plurality of micro-mirrors.
(37) In this case, the reflected light reflected by the DMD 400 propagates to the outside, thereby forming the beam pattern. As the plurality of micro-mirrors provided in the DMD 400 is individually controlled, a plurality of types of beam patterns may be formed outside the vehicle by the reflected light reflected by the DMD 400. In more detail, since the angles of the plurality of micro-mirrors provided in the DMD 400 are individually controlled, a plurality of types of beam patterns may be formed.
(38) The present disclosure has been described with reference to the limited exemplary embodiments and the drawings, but the present disclosure is not limited thereto. The described exemplary embodiments may be carried out in various forms by those skilled in the art to which the present disclosure pertains within the technical spirit of the present disclosure and within the scope equivalent to the appended claims.