Optical unit

Provided is an optical unit capable of preventing unintended light distribution and having a small assembly error while using a plurality of light sources and a plurality of lenses. An optical unit (10) includes: a plurality of light sources (26); a plurality of first lenses (30) integrally formed, respectively arranged to correspond to each of the light sources (26), condensing light from the corresponding light sources (26), and forming corresponding light source images on a predetermined virtual plane; a second lens (12) projecting projected images of the light source images forward; and a light-shielding member (31) extending between two adjacent first lenses (30) in the first lenses (30), and shielding light passing through one first lens (30) so as not to enter the other first lens (30), in which the light-shielding member (31) and the first lenses (30) are integrally formed by two-color molding.

TECHNICAL FIELD

The present invention relates to an optical unit, and more particularly to the optical unit including a plurality of light sources.

BACKGROUND ART

In the related art, an optical unit for a vehicle lamp is known in which a plurality of light sources and a plurality of lenses respectively provided to correspond to each of the light sources are used, to form a plurality of light source images on a rear focal plane of a projection lens, and projected images of the light source images are projected forward by the projection lens, so that an integrated light distribution pattern is formed (see, for example, PATENT LITERATURE 1).

In the optical unit using the light sources and the lenses, a light ray emitted from one light source is incident on lenses other than the corresponding lens, to form an unintended light distribution, which may give glare to a vehicle in front.

Therefore, in PATENT LITERATURE 1, it is proposed to provide partition members extending to partition two adjacent lenses among the lenses.

CITATION LIST

Patent Literature

SUMMARY OF INVENTION

Problems to be Solved by Invention

However, the lens provided for condensing light from the light source to form the light source image on the rear focal plane of the projection lens has a small size, and there has been a problem that a configuration in which the partition members are provided between the lenses is complicated, the number of parts is large and an assembly work is difficult. Therefore, there has been a problem that an assembly error increases.

The present invention has been made in view of such circumstances, and an object of the present invention is to provide an optical unit capable of preventing unintended light distribution and having a small assembly error while using a plurality of light sources and a plurality of lenses.

Solution to Problems

In order to achieve the object described above, an optical unit according to an aspect of the present invention includes: a plurality of light sources; a plurality of first lenses integrally formed, respectively arranged to correspond to each of the light sources, condensing light from the corresponding light sources, and forming corresponding light source images on a predetermined virtual plane; a second lens projecting projected images of the light source images forward; and a light-shielding member extending between two adjacent first lenses in the first lenses, and shielding light passing through one first lens so as not to enter the other first lens, in which the light-shielding member and the first lenses are integrally formed by two-color molding.

According to the above aspect, in the optical unit including the light sources and the first lenses, since it is configured such that the light-shielding member is provided between the two adjacent first lenses, and light from an unintended light source is not emitted forward, unintended light distribution can be prevented.

Further, according to the above aspect, the first lenses are integrally formed, and the light-shielding member and the first lenses are integrally formed by two-color molding. Therefore, it is possible to assemble the lenses and to assemble the lenses and the light-shielding members at the same time, and a manufacturing time can be reduced, so that the assembly work is simple. Further, it is possible to reduce an assembly error that occurs when the first lenses and the light-shielding members are separate members.

In the above aspect, it is preferred that the light-shielding member is provided to project from an inside toward a rear surface in a thickness direction of the first lens, and the light-shielding member is formed in a wedge shape that increases in thickness toward the rear surface of the first lens.

Further, in the above aspect, it is preferred that the light-shielding member is provided to project from an inside toward a rear surface in a thickness direction of the first lens, and the light-shielding member is formed in an inverted wedge shape that decreases in thickness toward the rear surface of the first lens.

Further, in the above aspect, it is preferred that the light-shielding member is made of a material having transmittivity.

Effects of Invention

According to the above aspect, it is possible to provide an optical unit capable of preventing unintended light distribution and having a small assembly error while using a plurality of light sources and a plurality of lenses.

DESCRIPTION OF EMBODIMENTS

Hereinafter, preferred embodiments of the present invention will be described with reference to the drawings. The embodiments are not limited to the invention, but are exemplary, and all features and combinations thereof described in the embodiments are not necessarily essential to the invention.

In the following description of the embodiments, the same components and members are denoted by the same reference numerals, and the components and members having the same functions are denoted by the same names, and duplicate description will be omitted as appropriate. Further, unless otherwise specified, directions such as front, rear, left, and right mean directions when an optical unit, that is, a lamp including the optical unit is viewed from the front. Further, in each figure, an arrow Up-Lo indicates an upper-lower direction, an arrow Le-Ri indicates a left-right direction, and an arrow Fr-Re indicates a front-rear direction.

First Embodiment

FIG. 1is a side view of an optical unit10according to a first embodiment. The optical unit10is an optical unit used for a vehicle lamp, and is used, for example, for vehicle headlights.

The optical unit10mainly includes a second lens12, a light source unit14including a plurality of first lenses30(FIG. 2) described in detail below, and a heat sink16.

The second lens12is a projection lens formed of a transparent resin, which is a plano-convex aspherical lens having a convex front surface and a flat rear surface. The second lens12projects a projected image of a light source image formed on a rear focal plane of the second lens12as an inverted image on a predetermined virtual plane in front of the lamp.

The heat sink16is, for example, made of a metal such as aluminum, has a rectangular plate-like front surface, and has a rear portion formed in a shape forming a cooling fin16a. Further, screw holes (not illustrated) for attaching the light source unit14are provided at four positions near a center of the front surface of the heat sink16.

As illustrated inFIG. 2, the light source unit14includes a rectangular substrate18, a lens holder20, a lens module22, and a metal cover24in this order from the rear.

A plurality of light sources26is mounted on a front surface of the substrate18at a predetermined distance from each other. As the light source26, for example, a light emitting module formed of a light emitting element such as a light emitting diode (LED) or a laser diode and emitting white light is employed. For example, specifically, the light source26is configured by covering a blue LED that emits blue light with a phosphor that converts the blue light into yellow light.

In an illustrated example, four light sources26a,26b,26c, and26dare used, but the number of light sources is not limited to four, and can be appropriately set according to the purpose and need of the lamp. Further, in the illustrated example, the light sources26are arranged at equal intervals, but the intervals of the light sources can also be appropriately set according to the purpose and need of the lamp.

Further, although not illustrated, the light sources26are connected to a power supply connector and a control connector by a conductive wire of a metal wire provided on the substrate18, and constitute an excitation light source array that is supplied with power from a power source and is turned on and off under the control of a control device, to be used for variable light distribution vehicle headlights.

The lens holder20is a horizontally long rectangular plate-like member made of a metal such as aluminum or stainless steel, having a horizontal width equal to that of the substrate18and a vertical width shorter than that of the substrate18. Further, the lens holder20has a horizontally long rectangular opening28having a size corresponding to the first lenses30, in a center thereof. The lens module22is disposed at a predetermined distance from the light source26by the lens holder20.

The lens module22is a lens complex mainly formed of a transparent or translucent resin, and includes the first lenses30. The lens module22has an outer shape formed in a shape of a horizontally long rectangular plate that is congruent with the front view lens holder20.

The first lenses30(30a,30b,30c, and30d) are integrally formed in series in a longitudinal direction in a center of the lens module22. The first lens30is a biconvex lens in which a front surface is a convex surface and a rear surface is also a convex surface, and is formed to project in the front-rear direction from a base portion32extending to the peripheral edge of the lens module22. Note that the front surface and the rear surface of each of the first lenses30a,30b,30c, and30dare lenses having a free curved surface and having a substantially elliptical shape vertically long in a front view, but for convenience of drawing, they are illustrated as circular lenses in a front view inFIG. 2.

The metal cover24is made of a metal such as aluminum or stainless steel, and is a horizontally long rectangular plate-like member having the same size as the lens module22. Further, in a center of the metal cover24, a rectangular opening34having a size corresponding to the first lenses30of the lens module22is provided.

Screw holes36are respectively provided at four corners of the metal cover24. Further, four screw holes for each of screw holes38,40, and42are respectively provided at positions of the lens module22, the lens holder20, and the substrate18corresponding to the four screw holes36of the metal cover.

The light source unit14is attached to the front surface of the heat sink16by stacking the substrate18, the lens holder20, the lens module22, and the metal cover24in this order from the rear, and by screwing four mounting screws from the front respectively into four screw holes (not illustrated) provided on the front surface of the heat sink16(FIG. 1). The light source unit14is disposed so that an optical axis X1(FIG. 4) of the second lens12passes through a center of the light sources26.

Here, a detailed structure of the lens module22will be described with reference toFIGS. 3 and 4.

FIG. 3is a front view of the light source unit14,FIG. 4(A)is a cross-sectional view of the light source unit14taken along a line IVA-IVA ofFIG. 3, andFIG. 4(B)is a cross-sectional view of the light source unit14taken along a line IVB-IVB ofFIG. 3.

As described above, the lens module22is the lens complex formed of a transparent or translucent resin. As the resin of a material, for example, a transparent or translucent silicone resin is used. Alternatively, a transparent or translucent melamine resin, phenol resin, or epoxy resin may be used. Further, the resin of the material preferably has high heat resistance.

As illustrated inFIG. 4(a), the first lenses30a,30b,30c, and30dare respectively arranged to correspond to each of the light sources26a,26b,26c, and26d. Specifically, optical axes X2a, X2b, X2c, and X2dof the first lenses30a,30b,30c, and30dare respectively arranged to pass through centers of the light sources26a,26b,26c, and26d.

Light-shielding members31(31a,31b, and31c) are provided between two adjacent lenses among the first lenses30.

The light-shielding member31has an elliptical shape with a flat horizontal cross-section, is a flat elliptical cylinder extending in the upper-lower direction substantially the same as a length in the upper-lower direction of the first lens30, and is made of a light-shielding resin such as a colored silicon resin. The light-shielding member31is provided to project from an inside toward a rear surface in a thickness direction of the first lenses30.

Note that in this specification, the term “light-shielding property” does not only mean completely shielding a light ray, but also shielding light to an extent that glare is not generated even when the light incident on the light-shielding member is incident on an unintended lens.

Therefore, as the light-shielding resin, one that does not completely shield the light but has transmittivity may be used. As described above, when the light-shielding member31has transmittivity, light energy is hard to be absorbed and heat generation of the light-shielding member31is suppressed, so that it is advantageous because deformation or the like of the lens module can be prevented.

The lens module22and the light-shielding member31are integrally formed by two-color molding. First, the first lens30and the base portion32are integrally formed by a primary mold. Subsequently, the light-shielding resin is injected into a secondary mold.

FIG. 5is a diagram schematically illustrating optical paths of light passing through the first lenses30a,30b,30c, and30dwith arrows. Solid arrows indicate light emitted from upper ends of the light sources26a,266,26c, and26d, and broken arrows indicate light emitted from lower ends of the light sources26(26a,26b,26c, and26d).

Further,FIG. 5illustrates the same cross-sectional view as that ofFIG. 4(a), but hatching indicating a cross-section is omitted as appropriate. Further, although a rear focal plane Y of the second lens12is actually formed in a curved surface shape, the rear focal plane Y is illustrated here as a flat surface for convenience. Furthermore, for convenience of explanation, the light sources26a,26b,26c, and26dare illustrated in an enlarged manner.

As illustrated inFIG. 5, the first lenses30a,30b,30c, and30drespectively condense emitted light of the corresponding light sources26a,26b,26c, and26d, and form individual light source images48a,48b,48c, and48dhaving edges in contact with each other and lined up in a row, on the rear focal plane Y. The second lens12projects projected images of the individual light source images to the front of the lamp, to form an integrated light distribution pattern.

FIG. 6is a diagram schematically illustrating the optical path of the light emitted from the light source26bas a representative in order to explain a function of the light-shielding members31(31a,31b, and31c) according to the present embodiment. The light emitted from the center of the light source26bis indicated by arrows as a representative, solid arrows indicate the optical path of actual light, and broken arrows indicate the optical path of light assuming that the light-shielding members31are not present.

Specifically, the light emitted from the light source26bexhibits Lambertian characteristics and is incident on the first lens30b. Therefore, light50aand50bincident on the lens module22is present outside a range of a capture angle of the corresponding first lens30b, but the light-shielding members31aand31bshield such light, to prevent the light emitted from the specific light source26bfrom entering the unintended first lenses30aand30c.

Therefore, a length d1of a portion of the light-shielding member31extending in the first lens30bis designed so that the light traveling in the first lens30bdoes not enter the adjacent first lenses30aand30c. Further, the length d1is also preferably designed to be long enough to prevent the light50cfrom entering the further adjacent first lens30dwhen the light50cfrom the light source26bis not incident on the light-shielding member31b

Further, a length d2of the light-shielding member31projecting rearward of the first lens is designed to be long enough to prevent the light of the light source26bfrom entering the adjacent first lenses30aand30c.

Note that when the light-shielding members31are not present, the light incident on the first lens30btravels through the adjacent first lenses30aand30c, to be emitted forward of the lamp as indicated by the broken line. This causes a light distribution pattern as if the light sources26aand26care unintentionally turned on when the light source26bis turned on and the light sources26aand26care turned off, which causes glare on an oncoming vehicle. In the present embodiment, by providing the light-shielding members31, such unintended light distribution is prevented, and glare is prevented from being given to the oncoming vehicle.

Further, in the present embodiment, the first lenses are integrally formed as the lens module22, and the light-shielding members31and the first lenses30are integrally formed by two-color molding. Therefore, it is possible to assemble the lenses and to assemble the lenses and the light-shielding members31at the same time, the manufacturing time can be reduced, so that the assembly work is simple. Further, it is possible to reduce the assembly error that occurs when the first lenses30and the light-shielding members31are separate members.

Second Embodiment

An optical unit100according to a second embodiment of the present invention has substantially the same configuration as the optical unit10according to the first embodiment except for light-shielding members131in a lens module122.FIGS. 7(a) and 7(b)are cross-sectional views of a light source unit114of the optical unit100, which correspond toFIGS. 4(a) and 4(a)of the light source unit14. The light-shielding members131(131a,131b, and131c) are provided to project from the inside toward the rear surface in the thickness direction of the first lenses30, and are formed in a shape of a wedge that increases in thickness toward the rear surface of the first lenses30. That is, the light-shielding member131is a flat triangular prism body having a horizontal cross-section of an isosceles triangle with an acute-angled apex on the front side, and extending in the upper-lower direction at least as long as the length in the upper-lower direction of the first lens.

With such a shape, a portion occupied by the light-shielding member in the lens is small, and the light passing through the inside of the lens can be effectively used.

As a modification of the present embodiment, as illustrated inFIG. 8, the shape of the light-shielding members131A (131Aa,131Ab, and131Ac) may has a horizontal cross-section in which a portion extending in the lens is an isosceles triangle with an acute-angled apex on the front side, and a portion projecting rearward of the lens has a semi-elliptical shape elongated in the front-rear direction. When the light-shielding members131a,131b, and131caccording to the second embodiment are to be integrally formed with the first lenses by two-color molding, since a width of a rear end portion of the light-shielding members131a,131b, and131cis larger than that of a joint portion with the first lens30, it is necessary to forcibly pull out the light-shielding member in mold opening of the secondary mold. If it is configured like the light-shielding members131A (131Aa,131Ab, and131Ac), it is not necessary to forcibly pull out the light-shielding members131A, and yield of the product is not reduced.

Third Embodiment

An optical unit200according to a third embodiment of the present invention has substantially the same configuration as the optical unit10according to the first embodiment except for the light-shielding members231(231a,231b, and231c) in a lens module222.FIGS. 9(a) and 9(b)are cross-sectional views of the light source unit214of the optical unit200, which correspond toFIGS. 4(a) and 4(b)of the light source unit14. The light-shielding member231is provided to project from the inside toward the rear side in the thickness direction of the first lens30, and is formed in an inverted wedge shape that decreases in thickness toward the rear surface of the first lens30. That is, the light-shielding member231(231a,231b, and231c) is a flat triangular prism body having a horizontal cross-section of an isosceles triangle with an acute-angled apex on the rear side, and extending in the upper-lower direction at least as long as the length in the upper-lower direction of the first lens.

When the lens module222and the light-shielding members231a,231b, and231care formed by two-color molding, since the materials thereof are different, boundary surfaces between a smaller member (here, the light-shielding member231) and a larger member (here, the lens module22) may be separated from each other, and the smaller member may fall off. However, if it is configured like the light-shielding member231, a lens inner side of the light-shielding member231is wider than a lens surface side thereof, so that the light-shielding member231can be prevented from falling off.

Fourth Embodiment

An optical unit300according to a fourth embodiment of the present invention has substantially the same configuration as the optical unit10according to the first embodiment except for dimensions of a lens module322, a light-shielding member331, and the light source unit. As illustrated inFIGS. 10(a) and 10(b), the lens module322includes a plurality of first lenses330. The first lenses330are integrally formed in a matrix shape that is not only juxtaposed in a horizontal direction but also juxtaposed in a vertical direction.

Between two adjacent first lenses330on the rear surface of the lens module322, the light-shielding member331made of the same material as the light-shielding member31is integrally formed with the lens module322(first lenses330) by two-color molding.

The light-shielding member331has a vertical portion331aextending in the upper-lower direction and a horizontal portion331bextending in the left-right direction. Like the light-shielding member31, the vertical portion331aand the horizontal portion331bare elliptical columnar bodies having a cross-section of a flat elliptical shape, and by forming the vertical portion331aand the horizontal portion331bcombined in a grid pattern, the light emitted from a specific light source is prevented from entering an unintended first lens that is adjacent to the corresponding first lens in the left-right and upper-lower directions and causing an unintended light distribution.

Needless to say, arrangement and the number of the first lenses330can be set as needed. As described above, according to the present embodiment, since various lens arrangements can be supported, a degree of freedom in design is increased.

When the first lenses330and the light-shielding member331are separate bodies, if the number of the first lenses330increases, the number of parts increases and an assembling work is complicated. In addition, the assembly error is large. In the present embodiment, since the first lens330and the light-shielding member331are integrally formed, the light source unit can be assembled by simply screwing the lens module322together with the substrate, the lens holder, and the metal cover to the front surface of the heat sink as in the first embodiment, which simplifies the assembly work and reduces the assembly error.

Other Modifications

Further, in each of the above embodiments, the same lenses are used as the first lenses, but shapes and sizes of the lenses can be appropriately designed.

Although the preferred embodiments of the present invention have been described above, the present invention is not limited to the embodiments, and various modifications and changes based on the present disclosure are included in the scope of the present invention.

This international application claims priority based on Japanese Patent Application No. 2019-041268 filed on Mar. 7, 2019, and the entire contents of Japanese Patent Application No. 2019-041268, which is the Japanese patent application, is incorporated by reference in this international application.

The above description of a specific embodiment of the present invention is presented for purposes of illustration. They are not intended to be exhaustive or to limit the present invention to the embodiments described above as they are. It is self-evident to those skilled in the art that numerous modifications and changes can be made in the light of the above description.

LIST OF REFERENCE SIGNS