projector
The projector addresses poor lens positioning and foreign matter entry by ensuring high accuracy and sealing, resulting in clear, graded, and three-dimensional images.
Patent Information
- Application Number
- JP2024107347
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2024-07-03
- Publication Date
- 2025-09-17
- Estimated Expiration
- 2041-11-09
AI Technical Summary
Existing vehicle lamps suffer from poor relative positioning accuracy of condenser, filter, and projection lenses, leading to unclear projected images and potential entry of foreign matter that can reflect in the image.
A projector design with high relative positioning accuracy of condenser and projection lenses, sealed to prevent foreign matter entry, using a pattern plate with fine light-transmitting and light-shielding portions to create clear, graded, and three-dimensional images.
The projector achieves clear images with reduced foreign matter reflection and maintains image clarity by ensuring precise lens alignment and sealing, preventing dust entry.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present invention relates to a projector, and more particularly to a projector for use in a vehicle interior. [Background technology]
[0002] Conventionally, a vehicle lamp has been known that includes a focusing lens that focuses light emitted from a light source, a light blocking member that partially transmits the light focused by the focusing lens, and a projection lens that projects the light that has passed through the light blocking member to form an illumination pattern (see Patent Document 1).
[0003] In the vehicle lamp described in Patent Document 1, a condenser lens, a filter, and a projection lens are housed in a housing, and are fitted and fixed in a condenser lens groove, a filter groove, and a projection lens groove, respectively, of the housing. [Prior art documents] [Patent documents]
[0004] [Patent Document 1] Japanese Patent Publication No. 2020-205237 Summary of the Invention [Problem to be solved by the invention]
[0005] However, in the vehicle lamp described in Patent Document 1, the condenser lens, filter, and projection lens are each fixed in position by a housing, which results in poor relative positioning accuracy among the condenser lens, filter, and projection lens, and there is a risk that the projected image will be unclear.In addition, there is a risk that foreign matter such as dust may enter the space where the filter is installed from the outside through the gap between the condenser lens in the condenser lens groove and the housing, or the gap between the projection lens in the projection lens groove and the housing, and that the foreign matter will be reflected in the projected image.
[0006] An object of the present invention is to provide a projector that can project a clear image with reduced reflection of foreign matter. [Means for solving the problem]
[0007] In order to achieve the above object, one aspect of the present invention provides the following projectors [1] to [4].
[0008] [1] A projector comprising: a light source that emits light; a pattern plate having light-transmitting and light-shielding portions that constitute a pattern for projection; and a lens component including a projection lens for projecting the pattern of the pattern plate; wherein at least a portion of the pattern of the pattern plate has a fine portion formed by the light-transmitting and light-shielding portions and having a fine pattern that exceeds the resolution of the projection lens; the fine portion forms an area in a projected image having a brightness between a first brightness and a second brightness; the first brightness is the brightness of an area formed by a portion of the light-transmitting portion when the portion of the light-shielding portion constitutes a portion of the pattern other than the fine portion; and the second brightness is the brightness of an area formed by the portion of the light-shielding portion when the portion of the light-shielding portion constitutes a portion of the pattern other than the fine portion. [2] The projector according to [1] above, wherein the minimum width of the light-shielding portion is less than 10 μm. [3] The projector according to [1] or [2] above, wherein the projected image is expressed in a gradation by arranging areas of different brightness. [4] The projector according to [1] or [2], wherein the projected image is a three-dimensional representation in which different surfaces of a three-dimensional object are represented by areas of different brightness. [Effects of the Invention]
[0009] According to the present invention, it is possible to provide a projector that can project a clear image with reduced reflection of foreign matter. [Brief explanation of the drawings]
[0010] [Figure 1] 1(a) and 1(b) are perspective views of a projector according to an embodiment of the invention viewed from different angles. [Figure 2] Figure 2(a) is a side view of a projector according to an embodiment of the present invention as viewed from the light extraction side, and Figure 2(b) is a cross-sectional view of the projector cut along the cutting line AA shown in Figure 2(a). [Figure 3] FIG. 3 is an exploded perspective view of the projector according to the embodiment of the invention. [Figure 4] 4(a) to 4(d) are perspective views showing the process of assembling the first lens component, the handle plate, and the second lens component to the housing components. [Figure 5] FIG. 5(a) is a cross-sectional view of the housing component, the first lens component, and the second lens component taken along the cutting line BB shown in FIG. 4(d). [Figure 6] FIG. 6 is a vertical cross-sectional view of one form of a handle plate according to an embodiment of the present invention. [Figure 7] Figure 7(a) is a schematic diagram showing an example of a pattern on a pattern plate in an embodiment of the present invention, and Figure 7(b) is a schematic diagram showing a projected image onto which the pattern of Figure 7(a) is projected. [Figure 8] FIG. 8 is a vertical cross-sectional view of another embodiment of the handle plate according to the present invention. [Figure 9] FIG. 9 is a schematic diagram for explaining the conditions under which total reflection occurs when the light-shielding portion of the handle plate is formed of a protrusion including two opposing inclined surfaces. [Figure 10] 10(a), (b), and (c) are schematic diagrams showing the optical paths of light that enters the pattern plate when the angles θt are 90°, 140°, and 40°, respectively. DETAILED DESCRIPTION OF THE INVENTION
[0011] [Embodiment] 1(a) and 1(b) are perspective views of a projector 1 according to an embodiment of the invention viewed from different angles. Fig. 2(a) is a side view of the projector 1 viewed from the light extraction side, and Fig. 2(b) is a cross-sectional view of the projector 1 taken along the cutting line AA shown in Fig. 2(a). Fig. 3 is an exploded perspective view of the projector 1.
[0012] The projector 1 is mainly used inside a vehicle and is attached, for example, to the side panels, instrument panel, or door of the vehicle interior, and projects images onto the doors, floor mats, ceiling, decorative panels and decorative ornaments included in the instrument panel or door trim, etc.
[0013] The projector 1 comprises a light source 11 that emits light, a pattern plate 20 having a pattern for projection, a first lens component 21 including a condenser lens 211 that collects the light emitted from the light source 11 and sends it to the pattern plate 20, and a second lens component 22 including a projection lens 221 for projecting the pattern on the pattern plate 20. In the projector 1, the first lens component 21 and the second lens component 22 securely sandwich the pattern plate 20 inside the first lens component 21 and the second lens component 22 so that it is sealed.
[0014] The light source 11 is a light emitting element equipped with an LED chip, etc. The light source 11 is mounted on a circuit board 10, and a connector 12 for transmitting power and signals to the light source 11 is connected to the circuit board 10.
[0015] The circuit board 10 on which the light source 11 is mounted, the first lens component 21, the second lens component 22, and the handle plate 20 are housed in a housing 30 composed of components 30a, 30b, and 30c. The housing 30 has an opening 301 for extracting light from the projection lens 221 and an opening 302 for connecting a connector of an external device to the connector 12. The housing 30 is made of resin such as polybutylene terephthalate (PBT) resin, polypropylene (PP) resin, or ABS resin.
[0016] Components 30a and 30b are fixed together by snap-fitting protrusions 305 on both sides of component 30b into holes 304 in component 30a. Components 30a and 30c are fixed together by snap-fitting protrusions 307 on both sides of component 30c into holes 306 in component 30a. Circuit board 10 is sandwiched and fixed between components 30a and 30c.
[0017] First lens component 21 has condenser lens 211, frame portion 212 having a box-like shape (for example, a rectangular parallelepiped) with one open face, and fixing portion 215 for fixing first lens component 21 to second lens component 22 and housing component 30b. Collector lens 211 is located within a plane facing the open face of frame portion 212. First lens component 21 is made of resin, such as polycarbonate (PC) resin or polymethyl methacrylate (PMMA) resin.
[0018] The second lens component 22 has a projection lens 221, a frame portion 222 having a box-like shape (e.g., a rectangular parallelepiped) with one open side, and a fixing portion 225 for fixing the second lens component 22 to the first lens component 21 and the housing component 30b. The projection lens 221 is located in a plane facing the open surface of the frame portion 222. The second lens component 22 is made of a resin such as polycarbonate resin or polymethyl methacrylate resin.
[0019] In the projector 1, the first lens component 21 and the second lens component 22 are fixed in a state in which the opening surfaces of the frame portions 212 and 222 face each other, and the end surfaces 213, which are the edges of the opening surfaces of the frame portions 212, and the end surfaces 223, which are the edges of the opening surfaces of the frame portions 222, are in close contact around the entire periphery. This seals the space inside the first lens component 21 and the second lens component 22, including the handle plate 20. To improve the close contact, it is preferable that the end surfaces 213 and 223 are polished.
[0020] When the first lens part 21 and the second lens part 22 are brought into close contact with each other, parts 214 projecting inward from the four corners of the internal space of the frame part 212 and parts 224 projecting inward from the four corners of the internal space of the frame part 222 sandwich and fix the four corners of the handle plate 20 from the front and back.
[0021] 4(a) to 4(d) are perspective views showing the process of assembling the first lens component 21, the handle plate 20, and the second lens component 22 to the component 30b of the housing 30. FIG.
[0022] 4(a) and 4(b), the second lens component 22 is assembled to the component 30b of the housing 30. With the opening surface of the frame portion 222 facing upward, the fixing portion 225 is fitted into the component 30b of the housing 30.
[0023] 4(b) and (c), the handle plate 20 is fitted into the opening of the frame portion 222 of the second lens component 22. The handle plate 20 is fitted into the opening of the frame portion 222 so that it rests on the portion 224 inside the frame portion 222 of the second lens component 22.
[0024] Next, as shown in Figures 4(c) and (d), the first lens component 21 is assembled to the component 30b of the housing. With the opening of the frame 212 facing downward, the fixing portion 215 is fitted into the component 30b of the housing 30. At this time, the protrusions 226 on the fixing portion 225 of the second lens component 22 are fitted into the holes 216 on the fixing portion 215 of the first lens component 21. Furthermore, when the fixing portion 215 is fitted into the component 30b, the protrusions 217 on both side surfaces of the fixing portion 215 snap-fit into the holes 303 on the component 30b.
[0025] FIG. 5(a) is a cross-sectional view of the component 30b of the housing 30, the first lens component 21, and the second lens component 22 taken along the cutting line BB shown in FIG. 4(d).
[0026] 5(a), the second lens component 22 compresses from above the protrusion 308 provided on the inner bottom surface of component 30b, causing elastic deformation, and is subjected to an upward repulsive force from the protrusion 308. On the other hand, the protrusion 217 of the first lens component 21 is caught in the hole 303, preventing the first lens component 21 and the second lens component 22 from moving upward, and therefore the first lens component 21 and the second lens component 22 are fixed to component 30b.
[0027] FIG. 5(b) is a cross-sectional view of the first lens component 21, the second lens component 22, and the handle plate 20 taken along the cutting line CC shown in FIG. 4(d).
[0028] 5(b), first lens component 21 and second lens component 22 are fixed in place with end surface 213, which is the edge of the opening of frame portion 212, and end surface 223, which is the edge of the opening of frame portion 222, in close contact with each other, thereby sealing the internal spaces of first lens component 21 and second lens component 22. Handle plate 20 is fixed by being sandwiched between portions 214, which protrude inward from the four corners of the internal space of frame portion 212, and portions 224, which protrude inward from the four corners of the internal space of frame portion 222.
[0029] In the projector 1, the first lens component 21, the second lens component 22, and the handle plate 20 are fixed in close contact with each other, so there is high relative positioning accuracy between the condenser lens 211 included in the first lens component 21, the projection lens 221 included in the second lens component 22, and the handle plate 20. This makes it possible to prevent the projected image from becoming unclear due to relative positional deviation between the condenser lens 211, the projection lens 221, and the handle plate 20.
[0030] Furthermore, since the internal spaces of the first lens component 21 and the second lens component 22 are sealed, it is possible to prevent foreign matter such as dust from entering the periphery of the handle plate 20. This makes it possible to prevent foreign matter from appearing in the projected image.
[0031] The method of fixing the first lens component 21, the second lens component 22, and the handle plate 20 in close contact with each other is not limited to the method using a snap fit with the above-mentioned component 30b; for example, the first lens component 21 and the second lens component 22 may be fixed with an adhesive.
[0032] 6 is a vertical cross-sectional view of a pattern plate 20a, which is one form of the pattern plate 20. The pattern plate 20a includes a transparent substrate 201 that transmits light from the light source 11, and an opaque film 202 that does not transmit light from the light source 11. The opaque film 202 has a predetermined opening pattern that forms the pattern of the pattern plate 20a, and has light-transmitting portions 203 that are openings and light-shielding portions 204 that are not openings.
[0033] The image projected by the projector 1 is made up of high-brightness areas having a pattern corresponding to the pattern of the light-transmitting portions 203 and low-brightness areas having a pattern corresponding to the pattern of the light-blocking portions 204.
[0034] In order to form a fine opening pattern in the opaque film 202 and make the pattern of the pattern plate 20a fine, it is preferable to form the pattern by metal etching on the opaque film 202 made of metal deposited on the transparent substrate 201 made of glass. By depositing the metal film by vapor deposition, a very thin (about 100 nm) opaque film 202 can be obtained, and the pattern can be formed with high precision by etching.
[0035] In this case, the opaque film 202 is made of, for example, a laminated film of an opaque film 202a made of CrO and an opaque film 202b made of Cr. Also, for example, the thicknesses of the opaque film 202, the opaque film 202a, and the opaque film 202b are 1.1 mm, 8 nm, and 62 nm, respectively, and the planar size of the handle plate 20 is 8 mm × 8 mm.
[0036] When forming a pattern on an opaque film 202 made of metal deposited on a transparent substrate 201 made of glass, the minimum width of the patterned opaque film 202 (the minimum width of the light-shielding portion 204 having light-transmitting portions 203 formed on both sides) can be set to 1 μm or more and less than 10 μm, or more precisely, 1 μm or more and 5 μm or less.
[0037] Furthermore, if the pattern of the pattern plate 20a includes fine parts that exceed the resolution of the projection lens 221, those fine parts will not be resolved even in a focused projected image. Specifically, in the projected image, the boundary between the high-brightness area formed by the light-transmitting portion 203 and the low-brightness area formed by the light-shielding portion 204 will become invisible, and the high-brightness area and the low-brightness area will blend together, resulting in an area with a brightness between those brightness levels (lower than the brightness of the resolved high-brightness area and higher than the brightness of the resolved low-brightness area).
[0038] In other words, by using the fine details contained in the pattern of the pattern plate 20a that are not resolved in a focused projected image, it is possible to express a brightness in the projected image that is between the brightness of the part formed by the light-transmitting part 203 and the brightness of the part formed by the light-shielding part 204.
[0039] FIG. 7(a) is a schematic diagram showing an example of a pattern on the pattern plate 20a, and FIG. 7(b) is a schematic diagram showing a projected image of the pattern of FIG. 7(a). The line-and-space pattern (the second triangle from the left and the top surface of the cube) and the dot pattern (the third triangle from the left and the side surface of the cube) included in the pattern of FIG. 7(a) are so fine that they exceed the resolution of the projection lens 221. In the projected image shown in FIG. 7(b), the area formed by these fine patterns is visually recognized as a gray area with a brightness between the white of the area formed by the light-transmitting portion 203 (the first triangle from the left and the front surface of the cube) and the black of the area (base portion) formed by the light-shielding portion 204. In this way, a gradation effect, as shown by the difference in brightness of the three triangles in FIG. 7(b), and a three-dimensional effect, as exemplified by the cube in FIG. 7(b), can be achieved.
[0040] Furthermore, if a fine pattern can be formed on the opaque film 202, the pattern plate 20 can be made smaller. Since the size of the projected image is calculated by multiplying the size of the pattern on the pattern plate 20 by the magnification factor of the optical system, if the pattern plate 20 can be made smaller, the magnification factor can be increased while maintaining the size of the projected image. Therefore, by reducing the distance between the pattern plate 20 and the projection lens 221 (increasing the magnification factor), the projector 1 can be made smaller. In other words, by making the pattern plate 20 smaller, the projector 1 can be made smaller while maintaining the size of the projected image. For example, the width W1 of the projector 1 in the optical axis direction can be set to 35 mm or less, the width W2 in the direction perpendicular to the optical axis direction to 13 mm or less, and the angle of view to 20° or more.
[0041] 8 is a vertical cross-sectional view of a handle plate 20b, which is another embodiment of the handle plate 20. The handle plate 20b is made of a transparent resin that transmits light from the light source 11, and has, on one surface, a light-transmitting portion 207 composed of a flat surface 205 and a light-shielding portion 208 composed of an inclined surface 206 inclined relative to the flat surface.
[0042] The light-shielding portion 208 blocks light from the light source 11 by utilizing total reflection of light at the inclined surface 206. Therefore, the inclination angle of the inclined surface 206 is set so that light that is perpendicularly incident on the handle plate 20b is totally reflected. Therefore, light does not pass through the light-shielding portion 208 formed by the inclined surface 206. For example, if the handle plate 20b is made of polycarbonate (refractive index 1.6), total reflection occurs when the angle of incidence is 38.7° or more, and if the handle plate 20b is made of polymethyl methacrylate (refractive index 1.5), total reflection occurs when the angle of incidence is 41.8° or more.
[0043] The image projected by the projector 1 is made up of high-brightness areas having a pattern corresponding to the pattern of the light-transmitting portions 207 and low-brightness areas having a pattern corresponding to the pattern of the light-blocking portions 208.
[0044] The handle plate 20b is formed by microfabrication of a plate-shaped resin molded product, and therefore can be produced inexpensively compared to the handle plate 20a, which requires complex processes such as metal film deposition, resist pattern formation by photolithography, and etching.
[0045] The light shielding portion 208 is provided with a protrusion formed by an inclined surface 206. The protrusion formed by the inclined surface 206 is, for example, a linear protrusion with a triangular cross section formed by two opposing inclined surfaces 206, or a polygonal pyramidal protrusion formed by three or more inclined surfaces 206. Note that if the height of the protrusion is limited (for example, 30 μm or less) due to factors such as the transferability during molding of the handle plate 20b, the area of the light shielding portion 208 can be secured by arranging multiple low protrusions in succession.
[0046] 9 is a schematic diagram for explaining the conditions for total reflection when the light shielding portion 208 of the pattern plate 20b is composed of a protrusion including two opposing inclined surfaces 206 (for example, a linear protrusion with a triangular cross section formed by the two opposing inclined surfaces 206, or a protrusion with a quadrangular pyramid shape). Here, the incident angle of the light that enters the pattern plate 20b perpendicularly to the inclined surface 206 (inclined surface 206a) that is the first incident angle is θ1, the incident angle of the light that is reflected by the inclined surface 206a that is the next incident angle is θ2, and the cross-sectional angle of the apex of the protrusion is θ t Let's say.
[0047] In order for the light that enters the handle plate 20b perpendicularly to be totally reflected by the inclined surface 206a, if the handle plate 20b is made of polycarbonate, θ1 must be 38.7° or more. t When the handle plate 20b is made of polymethyl methacrylate, θ1 must be 41.8° or more. t will be less than 96.4°.
[0048] Furthermore, in order for the light totally reflected by the inclined surface 206a to be totally reflected by the inclined surface 206b, when the handle plate 20b is made of polycarbonate, θ2 must be 38.7° or more. t When the handle plate 20b is made of polymethyl methacrylate, θ2 must be 41.8° or more. t is over 87.9°.
[0049] Therefore, when the handle plate 20b is made of polycarbonate, in order to effectively shield light at the light shielding portion 208, the angle θ of the cross section of the apex of the protrusion is t It is preferable to set the angle θ of the cross section of the apex of the projection to 85.8° or more and 102.6° or less. In addition, when the handle plate 20b is made of polymethyl methacrylate, in order to effectively shield light at the light shielding portion 208, t It is preferable to set the angle to 87.9° or more and 96.4° or less.
[0050] Figure 10(a) shows the angle θ t 1 is a schematic diagram showing the optical path of light that enters the pattern plate 20b at an angle θ of 90°. In this case, the light that enters the pattern plate 20b perpendicularly is incident on the inclined surface 206a at an incident angle of 45° and is totally reflected, and then is incident on the inclined surface 206b at an incident angle of 45° and is totally reflected, returning to the light source 11 side. t A protrusion with an angle of 90° can be formed with a general tool, so the angle θ t A particularly preferable value is 90°.
[0051] Figure 10(b) shows the angle θ t 1 is a schematic diagram showing the optical path of light that enters the pattern plate 20b at an angle of 140°. In this case, the light that enters the pattern plate 20b perpendicularly is incident on the inclined surface 206a at an incident angle of 20°, and part of the light is refracted by the inclined surface 206a and passes through the pattern plate 20b.
[0052] Figure 10(c) shows the angle θ t1 is a schematic diagram showing the optical path of light that enters the pattern plate 20b at an angle of 40°. In this case, the light that enters the pattern plate 20b perpendicularly is incident on the inclined surface 206a at an incident angle of 70° and is totally reflected, but then it is incident on the inclined surface 206b at an incident angle of 30°, and part of it is refracted at the inclined surface 206b and passes through the pattern plate 20b.
[0053] (Effects of the embodiment) In the projector 1 according to the embodiment of the present invention described above, the first lens component 21, the second lens component 22, and the handle plate 20 are fixed in close contact with each other, so the relative positioning accuracy of the condenser lens 211 included in the first lens component 21, the projection lens 221 included in the second lens component 22, and the handle plate 20 is high. This makes it possible to prevent the projected image from becoming unclear due to relative positional deviation of the condenser lens 211, the projection lens 221, and the handle plate 20. Furthermore, because the internal spaces of the first lens component 21 and the second lens component 22 are sealed, it is possible to prevent foreign matter such as dust from entering around the handle plate 20. This makes it possible to prevent foreign matter from appearing in the projected image.
[0054] Although the embodiments of the present invention have been described above, the present invention is not limited to the above-described embodiments and various modifications can be made without departing from the spirit of the invention. Furthermore, the components of the above-described embodiments can be combined in any manner without departing from the spirit of the invention.
[0055] Furthermore, the above-described embodiments do not limit the scope of the invention as claimed, and it should be noted that not all of the combinations of features described in the embodiments are necessarily essential to the means for solving the problems of the invention. [Explanation of symbols]
[0056] 1 projector 11 Light source 20 Pattern Plates 21 First lens component 211 Condenser Lens 212 Frame 22 Second lens component 221 Projection Lens 222 Frame 30 Case
Claims
1. a light source that emits light; a pattern plate having a light-transmitting portion and a light-shielding portion that constitute a pattern for projection; a lens component including a projection lens for projecting the pattern of the pattern plate; Equipped with a fine pattern formed on at least a part of the pattern of the pattern plate, the fine pattern being composed of the light transmitting portion and the light blocking portion, and the light transmitting portions arranged on either side of the light blocking portion being in a position that cannot be separated by the resolution of the projection lens; the fine portion forms an area in the projected image having a brightness between a first brightness and a second brightness; the first brightness is a brightness of a region formed by a part of the light-transmitting portion when the part of the light-transmitting portion constitutes a part other than the fine part of the pattern, the second brightness is the brightness of a region formed by a part of the light-shielding portion when the part of the light-shielding portion constitutes a part other than the fine part of the pattern; projector.
2. The minimum width of the light-shielding portion is 1 μm or more and less than 10 μm. The projector according to claim 1 .
3. In the projected image, a gradation representation is performed by arranging areas of different brightness. The projector according to claim 1 or 2.
4. In the projected image, a three-dimensional representation is performed in which different surfaces of the three-dimensional object are represented by areas of different brightness. The projector according to claim 1 or 2.
Citation Information
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