Optical unit
11209145 · 2021-12-28
Assignee
Inventors
Cpc classification
F21S41/365
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21S41/675
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F21S8/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21S41/675
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
An optical unit includes: a light source; a first reflector that reflects emitted light emitted from the light source, at a first reflection region of which the reflecting direction is periodically changed; and a second reflector that further reflects first reflected light reflected by the first reflector, at a second reflection region of which the reflecting direction is periodically changed. The first reflector is configured such that the second reflection region is scanned with the first reflected light. In the second reflector, the second reflection region is formed such as to reflect the first reflected light to provide second reflected light with which scanning is performed to produce a light distribution pattern.
Claims
1. An optical unit, comprising: a light source; a first reflector that reflects emitted light emitted from the light source, at a first reflection region of which the reflecting direction is periodically changed; and a second reflector that further reflects first reflected light reflected by the first reflector, at a second reflection region of which the reflecting direction is periodically changed, wherein: the first reflector is configured such that the second reflection region is scanned with the first reflected light; and, in the second reflector, the second reflection region is formed such as to reflect the first reflected light to provide second reflected light with which scanning is performed to produce a light distribution pattern, wherein the first reflector reflects the emitted light at the first reflection region while rotating about a first rotational axis in only one direction and comprises at least one first blade functioning as the first reflection region and provided around the first rotational axis, wherein the second reflector reflects the first reflected light at the second reflection region while rotating about a second rotational axis in only one direction and comprises at least one second blade functioning as the second reflection region and provided around the second rotational axis, wherein the radius of the second blade is larger than the radius of the first blade.
2. The optical unit of claim 1, further comprising a control unit that controls the magnitude of a drive current of the light source appropriately for the light distribution pattern.
3. The optical unit of claim 1, wherein the second blade has a shape formed such that the angle between the second rotational axis and the reflecting surface changes according to the position in a circumferential direction when the second rotational axis is regarded as the center.
4. The optical unit of claim 1, wherein the rotational speed of the first reflector is higher than the rotational speed of the second reflector.
5. The optical unit of claim 1, wherein: the first reflector produces a linear pattern by scanning the second reflection region with the first reflected light in a first direction; and the second reflector produces the light distribution pattern by performing scanning with the linear pattern as the second reflected light in a second direction that intersects the first direction.
6. An optical unit, comprising: a light source; a first reflector that reflects emitted light emitted from the light source, at a first reflection region of which the reflecting direction is periodically changed; and a second reflector that further reflects first reflected light reflected by the first reflector, at a second reflection region of which the reflecting direction is periodically changed, wherein: the first reflector is configured such that the second reflection region is scanned with the first reflected light; and, in the second reflector, the second reflection region is formed such as to reflect the first reflected light to provide second reflected light with which scanning is performed to produce a light distribution pattern, wherein the first reflector reflects the emitted light at the first reflection region while rotating about a first rotational axis in only one direction and comprises at least one first blade functioning as the first reflection region and provided around the first rotational axis, wherein the second reflector reflects the first reflected light at the second reflection region while rotating about a second rotational axis in only one direction and comprises at least one second blade functioning as the second reflection region and provided around the second rotational axis, wherein the radius of the second blade is larger than the radius of the first blade, and the second reflection region is broader than the first reflection region.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) Embodiments will now be described, by way of example only, with reference to the accompanying drawings which are meant to be exemplary, not limiting, and wherein like elements are numbered alike in several Figures, in which:
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DETAILED DESCRIPTION OF THE INVENTION
(16) In the following, the present invention will be described based on embodiments with reference to the drawings. Like reference characters denote like or corresponding constituting elements, members, and processes in each drawing, and repetitive description will be omitted as appropriate. Embodiments of the invention are provided for purposes of illustration and not limitation, and it should be understood that not all of the features or combinations thereof described in the embodiments are necessarily essential to the invention.
(17) To solve the problem above, an optical unit of one embodiment of the present invention includes: a light source; a first reflector that reflects emitted light emitted from the light source, at a first reflection region of which the reflecting direction is periodically changed; and a second reflector that further reflects first reflected light reflected by the first reflector, at a second reflection region of which the reflecting direction is periodically changed. The first reflector is configured such that the second reflection region is scanned with the first reflected light, and, in the second reflector, the second reflection region is formed such as to reflect the first reflected light to provide second reflected light with which scanning is performed to produce a light distribution pattern.
(18) According to this embodiment, the emitted light from the light source is reflected by the first reflection region of which the reflecting direction is periodically changed and, with the first reflected light thus reflected, the second reflection region is scanned at least linearly. Thereafter, the linear pattern is further reflected by the second reflection region of which the reflecting direction is periodically changed and, with the second reflected light thus reflected, a two-dimensional range is scanned. Accordingly, even if the light source is provided with only one light emitting element, a non-illuminated region can be formed at a predetermined position in a light distribution pattern by controlling turning on and off of the light emitting element, thereby enabling production of more light distribution patterns.
(19) The second reflector may reflect the first reflected light at the second reflection region while rotating about a rotational axis in one direction.
(20) The second reflector may include at least one blade functioning as the second reflection region and provided around the rotational axis.
(21) The first reflector may reflect the emitted light at the first reflection region while rotating about a rotational axis in one direction.
(22) The first reflector may be constituted by a micro electro mechanical system.
(23) The optical unit may further include a control unit that controls the magnitude of a drive current of the light source appropriately for the light distribution pattern.
(24) Optional combinations of the aforementioned constituting elements, and implementation of the present invention in the form of methods, apparatuses, or systems may also be practiced as additional modes of the present invention. According to the present invention, more light distribution patterns can be produced using a light source with a simple configuration.
First Embodiment
(25) An optical unit in the present embodiment can be used for various vehicular lamps. For example, when the optical unit is mounted on a vehicular headlamp, it can produce high beam light distribution patterns appropriate for various situations in front of the vehicle.
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(27) An optical unit 10 includes: a light source 12; a first reflector 14 that reflects emitted light L emitted from the light source 12, at a first reflection region R1 of which the reflecting direction is periodically changed; and a second reflector 16 that further reflects first reflected light L1 reflected by the first reflector 14, at a second reflection region R2 of which the reflecting direction is periodically changed.
(28) The first reflector 14 is configured such that the second reflection region R2 is scanned with the first reflected light L1. In the second reflector 16, the second reflection region R2 is formed such as to reflect the first reflected light L1 to provide second reflected light L2 with which scanning is performed to produce a high beam light distribution pattern PH.
(29) The light source 12 is not particularly limited, as long as it is appropriate for light distribution of the illumination or lamp; however, in terms of downsizing, a semiconductor light emitting element, such as an LED element and a laser diode (an LD) element, may be suitable. At least one light emitting element may be included in the light source 12.
(30) There will now be described the shapes of the first reflector 14 and the second reflector 16.
(31) A rotating reflector 50 shown in
(32) In the rotating reflector 50, two blades 50a, having the same shape and functioning as reflecting surfaces, are provided around a rotating part 50b of cylindrical shape. Each of the blades 50a has a twisted shape such that the angle between the rotational axis R and the reflecting surface changes according to the position in a circumferential direction when the rotational axis R is regarded as the center. This enables scanning with the first reflected light L1 or the second reflected light L2 as shown in
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(35) In the optical unit 10 configured as described above, the emitted light L from the light source 12 is reflected by the first reflection region R1 of which the reflecting direction is periodically changed and, with the first reflected light L1 thus reflected, the second reflection region R2 is scanned at least linearly. Thereafter, the linear pattern P1 is further reflected by the second reflection region R2 of which the reflecting direction is periodically changed and, with the second reflected light L2 thus reflected, a two-dimensional range is scanned, so that the high beam light distribution pattern PH is produced.
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(38) A control unit controls driving of the light source 12 and, as shown in
(39) Thereafter, the turning on and off of the light source 12 is repetitively performed at similar timing, so that the high beam light distribution pattern PH is periodically produced. Accordingly, by persistence of vision, the driver feels that a wider range of an area in front of the vehicle is always bright.
(40) Therefore, even the light source 12 provided with only one light emitting element can produce a light distribution pattern for illuminating a significantly wider range compared to the size of the light source image of the light source 12.
(41) Meanwhile, depending on the situation in front of the vehicle, there may be a case where the high beam light distribution pattern PH is not appropriate.
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(43) For each of the time between t.sub.1 and t.sub.2, the time between t.sub.3 and t.sub.4, the time between t.sub.5 and t.sub.6, and the time between t.sub.7 and t.sub.8, the output P of the light source 12 is set to zero. This produces the partial high beam light distribution pattern PH′ in which a range corresponding to each of the preceding vehicle 18, oncoming vehicle 20, and pedestrian 22 is not illuminated. The control unit also controls, besides on and off states of the output, the magnitude of the output P so as to adjust the brightness within the illumination range.
(44) In this way, with the optical unit 10 of the present embodiment, even if the light source 12 is provided with only one light emitting element, a non-illuminated region can be formed at a predetermined position in a light distribution pattern by controlling turning on and off of the light emitting element, thereby enabling production of more light distribution patterns. In other words, without a light source with multiple light emitting elements arranged in a matrix, a non-illuminated region can be formed at a predetermined position in a light distribution pattern.
(45) Since the second reflection region R2 of the second reflector 16 reflects the linear pattern P1 formed by scanning with the light source image 13 of rectangular or circular shape, the second reflection region R2 may preferably be broader than the first reflection region R1 of the first reflector 14. Accordingly, the radius of a blade 16a of the second reflector 16 may preferably be larger than the radius of a blade 14a of the first reflector 14.
(46) Also, in the optical unit 10 of the present embodiment, multiple times of scanning with the light source image 13 is required while a region corresponding to the high beam light distribution pattern PH is scanned once with the pattern P1. Accordingly, in the optical unit 10 of the present embodiment, the rotational speed of the first reflector 14 is higher than that of the second reflector 16 when the high beam light distribution pattern PH or partial high beam light distribution pattern PH′ is produced.
Second Embodiment
(47) The first embodiment describes the case where the rotating reflector 50 shown in
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(49) Thus, using a MEMS mirror as the first reflector 24 enables downsizing of the rotating reflector, compared to the rotating reflector 50 shown in
Third Embodiment
(50) In the optical unit of each aforementioned embodiment, a horizontally long pattern is formed by scanning in a horizontal (lateral) direction by means of the first reflector and used for scanning in a vertical (longitudinal) direction by means of the second reflector, thereby producing the high beam light distribution pattern PH.
(51) In the optical unit of the third embodiment, on the other hand, a vertically long pattern is formed by scanning in a vertical (longitudinal) direction by means of the first reflector and used for scanning in a horizontal (lateral) direction by means of the second reflector, thereby producing the high beam light distribution pattern PH.
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(53) An optical unit 30 includes: a light source 12; a first reflector 14 that reflects emitted light L emitted from the light source 12, at a first reflection region R1 of which the reflecting direction is periodically changed; and a second reflector 26 that further reflects first reflected light L1 reflected by the first reflector 14, at a second reflection region R2 of which the reflecting direction is periodically changed.
(54) The first reflector 14 is configured such that the second reflection region R2 is scanned with the first reflected light L1. In the second reflector 26, the second reflection region R2 is formed such as to reflect the first reflected light L1 to provide a second reflected light L2 with which scanning is performed to produce a high beam light distribution pattern PH.
(55) The second reflector 26 is different from the second reflector 16 of the first embodiment in the shape of the reflecting surfaces of blades 26a.
(56) The second reflector 26 is configured such that, when the rotation angle of the boundary between the two blades 26a is defined as zero degrees, the angle between the normal line of the reflecting surface at the position and the rotational axis R is a degrees (see
(57) Also with the optical unit 30 configured as described above, effects similar to those provided by the optical unit 10 in the first embodiment can be obtained.
Fourth Embodiment
(58) Each aforementioned embodiment describes the case where the light source is provided with one light emitting element; however, there may be a case where the light source needs to be provided with multiple light emitting elements or where multiple light sources need to be provided. It may be the case where the output of one light emitting element is insufficient, where the illumination range needs to be broadened, or where the drive frequency (rotational speed) of each reflector is insufficient, for example.
(59) When the output of one light emitting element is insufficient and when the drive frequency (rotational speed) of each reflector is kept unchanged, the high beam light distribution patterns become darker overall. Also, when the drive frequency (rotational speed) of each reflector is low, a space where scanning with the light source image is not performed may be made in part of the illumination range.
(60) Accordingly, each light source in the present embodiment is provided with multiple light emitting elements. For example, the light source may be provided with light emitting elements arranged in an m×n matrix (m and n are natural numbers, and m≠1 or n≠1). This can provide a situation where the upper half region of a high beam light distribution pattern is produced using light emitted from a first light emitting element, and the lower half region of the high beam light distribution pattern is produced using light emitted from a second light emitting element, for example. As a result, even when the output of one light emitting element is insufficient or the illumination range needs to be broadened, a light distribution pattern with desired characteristics can be produced.
(61) The present invention has been described with reference to each aforementioned embodiment. However, the present invention is not limited thereto and also includes a form resulting from appropriate combination or replacement of the configurations in each embodiment. It is also to be understood that appropriate changes of the combination or the order of processes in each embodiment or various modifications, including design modifications, may be made based on the knowledge of those skilled in the art and that such changes and modifications also fall within the scope of the present invention.
(62) For example, the light source in each aforementioned embodiment may preferably emit visible light appropriate for light distribution of the illumination or lamp, but may also be a laser light source for light detection and ranging (LiDAR), for example. Also, the optical unit may be provided with an optical receiver for receiving scattered light resulting from irradiation of pulsed laser light emitted from the LiDAR light source. The laser light source as used herein emits electromagnetic waves with relatively short wavelengths, such as ultraviolet rays, visible light rays, and near infrared rays. Accordingly, conditions around the vehicle (whether or not a pedestrian or another vehicle is present, the position of such a pedestrian or another vehicle, the road shape, and the position of a building, for example) can be accurately comprehended, enabling appropriate light distribution control based on the conditions around the vehicle.