Image projection device

By arranging light-emitting elements in a specific pattern and using lenses with controlled divergence angles, the device enhances brightness and uniformity, addressing uneven brightness issues in image projection devices.

JP2026056362APending Publication Date: 2026-04-01KOITO MFG CO LTD
View PDF 2 Cites 0 Cited by

Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Filing Date
2024-09-19
Publication Date
2026-04-01

AI Technical Summary

Technical Problem

Existing image projection devices face issues with uneven brightness distribution when increasing light-emitting element density to enhance brightness, leading to decreased image quality.

Method used

The device arranges multiple light-emitting elements two-dimensionally within an arrangement area divided by long and short sides, with specific angles and lens configurations to achieve high density and uniform brightness distribution.

Benefits of technology

This arrangement allows for increased brightness while maintaining uniform brightness distribution, improving image quality.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure 2026056362000001_ABST
    Figure 2026056362000001_ABST
Patent Text Reader

Abstract

The present invention provides an image projection device that can increase brightness by arranging multiple light-emitting elements at high density while simultaneously achieving a uniform brightness distribution. [Solution] An image projection device comprising an image display unit in which a display area for displaying an image is set in part of the entire display area, a plurality of light-emitting elements (12) that irradiate the image display unit with backlight light, and a plurality of first lenses (13) provided corresponding to the plurality of light-emitting elements (12), wherein the plurality of light-emitting elements (12) are arranged two-dimensionally within an arrangement area demarcated by the long side direction (X) and the short side direction (Y), along a direction (a) along the long side direction (X) and a direction (b) that is different by a predetermined angle from the short side direction (Y).
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The present invention relates to an image projection device.

Background Art

[0002] [[ID=I2]]Conventionally, as a device for displaying various information in a vehicle, an instrument panel that lights up icons has been used. In addition, with an increase in the amount of information to be displayed, it has also been proposed to embed an image display device in the instrument panel or to configure the entire instrument panel with an image display device.

[0003] However, since the instrument panel is located below the front glass (windshield) of the vehicle, in order for passengers such as the driver to visually recognize the information displayed on the instrument panel, it is necessary to move the line of sight downward during driving, which is not preferable. Therefore, an image projection device such as a head-up display (hereinafter referred to as HUD: Head Up Display) has been proposed that projects an image onto the front glass so that information can be read when the passenger visually recognizes the front of the vehicle. (For example, refer to Patent Documents 1 and 2).

[0004] The image projection devices of Patent Documents 1 and 2 irradiate image light including an image with an image irradiation unit, reflect the image light with a free-form mirror or the like, and cause the image to be formed in space through a display unit such as a windshield so as to reach the position of the passenger's viewpoint. As a result, the passenger can recognize that a virtual image is displayed at the imaging position in the depth direction by the image light incident on the viewpoint.

Prior Art Documents

Patent Documents

[0005]

Patent Document 1

Patent Document 2

Summary of the Invention

Problems to be Solved by the Invention

[0006] The virtual image projected from an image projection device is required to have increased brightness to improve visibility. However, increasing the density of light-emitting elements to increase brightness leads to uneven brightness distribution within the image display area, resulting in a decrease in image quality.

[0007] Therefore, the present invention has been made in view of the above-mentioned conventional problems, and aims to provide an image projection device that can increase brightness by arranging multiple light-emitting elements at high density while also making the brightness distribution uniform. [Means for solving the problem]

[0008] To solve the above problems, the image projection device of the present invention comprises an image display unit in which a display area for displaying an image is set in a part of the entire display area, a plurality of light-emitting elements that irradiate the image display unit with backlight light, and a plurality of first lenses provided corresponding to the plurality of light-emitting elements, wherein the plurality of light-emitting elements are arranged two-dimensionally within an arrangement area divided by the long side direction and the short side direction, along a direction along the long side direction and a direction different by a predetermined angle from the short side direction.

[0009] In the image projection apparatus of the present invention, multiple light-emitting elements are arranged two-dimensionally within an arrangement area divided by the long side and the short side, along a direction parallel to the long side and a direction different by a predetermined angle from the short side. This makes it possible to increase brightness by arranging multiple light-emitting elements at high density while simultaneously achieving a uniform brightness distribution.

[0010] Furthermore, in one aspect of the present invention, the predetermined angle is in the range of 15 degrees or more and 45 degrees or less.

[0011] Furthermore, in one aspect of the present invention, the plurality of light-emitting elements are arranged to form an isosceles triangle with the longer side as the base and the shorter side as the height, and the predetermined angle is less than 30 degrees.

[0012] Furthermore, in one aspect of the present invention, the first lens has an elliptical surface with the long side direction as the minor axis and the short side direction as the major axis.

[0013] Furthermore, in one aspect of the present invention, the first lens has a large divergence angle of the backlight light at the center in the direction of the long side, and a small divergence angle of the backlight light at the ends.

[0014] Furthermore, in one aspect of the present invention, a second lens is provided for adjusting the light distribution of the backlight light emitted from the first lens, the second lens being provided with a plurality of fine steps, the divergence angle of the backlight light being large at the center in the direction of the long side and small at the ends.

[0015] Furthermore, in order to solve the above problems, the image projection device of the present invention comprises an image display unit in which a display area for displaying an image is set in a part of the entire display area, a plurality of light-emitting elements that irradiate the image display unit with backlight light, and a plurality of first lenses provided corresponding to the plurality of light-emitting elements, wherein the plurality of light-emitting elements are arranged in an arrangement area divided by the long side direction and the short side direction, and the first lenses are characterized in that the divergence angle of the backlight light is large at the center in the long side direction and small at the ends.

[0016] In the image projection apparatus of the present invention, the multiple first lenses have a large divergence angle of backlight light at the center in the direction of the long side and a small divergence angle of backlight light at the ends. This makes it possible to arrange multiple light-emitting elements at high density to increase brightness while making the brightness distribution uniform.

[0017] Furthermore, in order to solve the above problems, the image projection device of the present invention comprises an image display unit in which a display area for displaying an image is set in a part of the entire display area, a plurality of light-emitting elements that irradiate the image display unit with backlight light, a plurality of first lenses provided corresponding to the plurality of light-emitting elements, and a second lens that adjusts the light distribution of the backlight light emitted from the first lens, wherein the plurality of light-emitting elements are arranged in an arrangement area divided by the long side direction and the short side direction, and the second lens is provided with a plurality of fine steps, characterized in that the divergence angle of the backlight light is large in the center of the long side direction and small at the ends.

[0018] In the image projection apparatus of the present invention, the second lens is provided with multiple fine steps, and the divergence angle of the backlight light is large in the center in the direction of the long side, and small at the edges. This makes it possible to increase the brightness by arranging multiple light-emitting elements at high density while making the brightness distribution uniform.

[0019] Furthermore, in one aspect of the present invention, the area of ​​the arrangement area is smaller than the total display area, and the backlight is irradiated onto the display area. [Effects of the Invention]

[0020] The present invention provides an image projection device that can increase brightness by arranging multiple light-emitting elements at high density while simultaneously achieving a uniform brightness distribution. [Brief explanation of the drawing]

[0021] [Figure 1] This is a schematic diagram illustrating the projection of a virtual image using the image projection device 100 according to the first embodiment. [Figure 2] This is a schematic cross-sectional view illustrating the outline of the image irradiation unit 10 according to the first embodiment. [Figure 3] This is a schematic diagram illustrating the diffusion of backlight light by the fine step 15. Figure 3(a) shows an example where the light divergence angle changes in steps, and Figure 3(b) shows an example where the light divergence angle changes gradually. [Figure 4] It is a schematic cross-sectional view for explaining the outline of the image irradiation unit 10 according to the second embodiment. [Figure 5] It is a schematic diagram for explaining the two-dimensional arrangement of the light emitting element 12 and the first lens 13 in the image irradiation unit 10 according to the third embodiment. [Figure 6] It is a schematic diagram for explaining the two-dimensional arrangement of the light emitting element 12 and the first lens 13 in the image irradiation unit 10 according to the fourth embodiment.

Embodiments for Carrying out the Invention

[0022] (First Embodiment) Hereinafter, embodiments of the present invention will be described in detail with reference to the drawings. The same or equivalent components, members, and processes shown in each drawing are denoted by the same reference numerals, and redundant explanations will be omitted as appropriate. In the following description, a form in which the image projection apparatus 100 according to the present invention is applied to a HUD mounted on a vehicle or the like will be exemplified. FIG. 1 is a schematic diagram for explaining the projection of virtual images P1 and P2 using the image projection apparatus 100 according to the present embodiment. The broken line shown in FIG. 1 indicates the optical path of the first image light L1 described later, and the alternate long and short dash line indicates the optical path of the second image light L2. As shown in FIG. 1, the first image light L1 and the second image light L2 projected from the image projection apparatus 100 are reflected by the windshield (display unit) WS and irradiated to the driver's viewpoint position. The driver visually recognizes the virtual images P1 and P2 formed on the extension of the optical paths along which the first image light L1 and the second image light L2 are incident. In the present embodiment, an example in which the image projection apparatus 100 projects the first image light L1 and the second image light L2 and two virtual images P1 and P2 are formed is shown, but the number of virtual images P1 and P2 is not limited.

[0023] The windshield WS is a visible light-transmitting part located in front of the driver's seat of the vehicle. On its inner surface, the windshield WS reflects the first image light L1 and second image light L2 incident from the image projection device 100 toward the viewpoint direction, and transmits light from outside the vehicle toward the viewpoint direction, thus corresponding to the display unit in this invention. Here, an example using the windshield WS as the display unit is shown, but a combiner may be prepared separately as a display unit and reflect the light from the image projection device 100 toward the viewpoint direction. Furthermore, it is not limited to being located in front of the vehicle; it may be placed to the side or rear as long as it projects an image toward the occupant's viewpoint.

[0024] The virtual images P1 and P2 are images that appear to be projected into space when the first image light L1 and second image light L2, reflected by the windshield WS, reach the occupant's viewpoint (eyebox). The position where the virtual images P1 and P2 are projected is determined by the combined focal length of the projection optics unit included in the image projection device 100 and the windshield WS.

[0025] In the image projection device 100 of this embodiment, the distant image displayed in the distant display area of ​​the image irradiation unit 10 is irradiated as the first image light L1, and the near image displayed in the near display area is irradiated as the second image light L2. Examples of distant images displayed in the distant display area include warning images and emergency information, which are auxiliary information related to driving. Examples of near images displayed in the near display area include speed and volume indicators and direction of travel guides.

[0026] The image projection device 100 also includes an image irradiation unit 10, a first mirror 20, a second mirror 30, and a housing 40, as shown in Figure 1. In the image projection device 100, each part is controlled by a control unit (not shown) which is connected to each part for information communication. The configuration of the control unit is not limited, but one example is one which includes a CPU (Central Processing Unit) for information processing, a memory device, a recording medium, an information communication device, etc. The control unit controls the operation of each part according to a predetermined program and sends information including images (image information) to the image irradiation unit 10.

[0027] The image illumination unit 10 is the part that illuminates the first mirror 20 with light containing an image as image light, based on image information from the control unit. In this embodiment, an example is shown in which two image lights displayed in two image display areas are illuminated on the first mirror 20 as the first image light L1 and the second image light L2. Details of the image illumination unit 10 will be described later.

[0028] The first mirror 20 is an optical element that reflects the first image light L1 and the second image light L2 arriving from the image illumination unit 10 toward the second mirror 30. In the example shown in Figure 1, the first mirror 20 is shown as a flat reflector, but a concave or convex reflector may also be used. Furthermore, if the first mirror 20 is made of a curved surface, it is not limited to a surface with constant curvature, and a paraboloid of revolution, an ellipsoid, a free-form mirror, etc., can be used.

[0029] The second mirror 30 is an optical element that reflects the first image light L1 and the second image light L2 that have arrived from the first mirror 20 in the direction of the windshield WS. In the example shown in Figure 1, the second mirror 30 is a free-form concave mirror optically designed to project the first image light L1 and the second image light L2 as virtual images P1 and P2.

[0030] The reflective surfaces of the first mirror 20 and the second mirror 30 are designed so that the optical diameter expands in the direction of the driver's viewpoint in order to project the first image light L1 and the second image light L2 as virtual images P1 and P2 via the windshield WS. Here, expansion of the optical diameter in the direction of the viewpoint includes not only cases where the optical diameter expands consistently after reflection, but also cases where the optical diameter contracts, forms an image at an intermediate point, and then expands. The combination of the first mirror 20 and the second mirror 30 has the function of projecting the first image light L1 and the second image light L2 via the windshield WS and corresponds to the backlight optical unit in the present invention.

[0031] In Figure 1, the optical paths of the first image light L1 and the second image light L2 are depicted as a single straight line. However, in reality, the first image light L1 and the second image light L2 are displayed in a predetermined area on the image illumination unit 10, and have a predetermined area in a direction perpendicular to the direction of propagation. Furthermore, the first image light L1 and the second image light L2 may be reflected by the first mirror 20, reducing their optical diameter as they propagate, and intermediate imaging may occur at an intermediate imaging position F (not shown) between the first mirror 20 and the second mirror 30.

[0032] The housing 40 constitutes the external shape of the image projection device 100 and is a container that houses its various parts. The housing 40 is provided with light output ports for emitting the first image light L1 and the second image light L2. The housing 40 may also be provided with an angle adjustment unit for adjusting the angle of the second mirror 30, thereby adjusting the illumination angle of the first image light L1 and the second image light L2 projected onto the windshield WS and changing the image formation height of the virtual images P1 and P2. The housing 40 may also be provided with an optical filter to cut out ultraviolet and infrared light contained in the light (external light) that arrives from the outside.

[0033] Figure 2 is a schematic cross-sectional view illustrating the outline of the image illumination unit 10 according to this embodiment. As shown in Figure 2, the image illumination unit 10 of this embodiment includes a substrate 11, a light-emitting element 12, a first lens 13, a second lens 14, a microstep 15, and an image display unit 16.

[0034] The substrate portion 11 is a roughly plate-shaped member on which the light-emitting elements 12 are mounted and held. Although not shown in Figure 2, a wiring pattern is formed on the surface of the substrate portion 11, and multiple light-emitting elements 12 are electrically connected to the wiring pattern. A drive circuit that supplies current to the light-emitting elements 12 to drive and control their emission may also be formed on the substrate portion 11. Furthermore, a control unit that controls various parts of the image projection device 100 may be mounted on the substrate portion 11.

[0035] The light-emitting element 12 is a component that illuminates the image display unit 16 with backlight light via the first lens 13 and the second lens 14. Multiple light-emitting elements 12 are arranged two-dimensionally within an arrangement area divided by the long side direction and the short side direction. In the example shown in Figure 2, the left-right direction in the figure corresponds to the long side direction, and the direction perpendicular to the plane of the paper corresponds to the short side direction. The light-emitting element 12 is, for example, a semiconductor light-emitting element such as an LED (Light Emitting Diode), and is arranged two-dimensionally on the substrate 11 in the depth direction of the paper in Figure 2. The light-emitting color of the light-emitting element 12 is not particularly limited, but in this embodiment, it is white as an example. Furthermore, the light-emitting element 12 is not limited to an LED, but may also be a semiconductor laser or an organic EL (Electro Luminescence) element, etc.

[0036] The first lens 13 is an optical component positioned in the light emission direction of the multiple light-emitting elements 12, and has the function of focusing the backlight light emitted from the light-emitting elements 12 and emitting the light at a predetermined divergence angle. Each of the multiple first lenses 13 is provided corresponding to one of the multiple light-emitting elements 12, and is arranged two-dimensionally within an arrangement area divided by the long side direction and the short side direction. The material constituting the first lens 13 is not limited, and for example, resins such as acrylic resin, glass, etc. can be used.

[0037] In the example shown in Figure 2, a bullet-shaped convex lens structure is shown as an example of the first lens 13, but the shape is not limited. Here, the divergence angle of the first lens 13 refers to the angle of spread of light from parallel light, where the divergence angle of parallel light is 0 degrees, and the divergence angle when light spreads at an angle of 10 degrees from parallel light is 10 degrees. In Figure 2, the first lens 13 shows the case where the backlight light is emitted as parallel light, or light that is close to parallel light (hereinafter, both are collectively referred to as "approximately parallel light").

[0038] The second lens 14 is positioned between the first lens 13 and the image display unit 16, and is an optical element that adjusts the light distribution of the backlight light irradiated from multiple first lenses 13 and irradiates the image display unit 16 with it. The material constituting the second lens 14 is not limited, and for example, resins such as acrylic resin, glass, etc. can be used. In the example shown in Figure 2, the light incident surface side of the second lens 14 has a curved concave lens shape that is thinner in the center and thicker on both sides in the left-right direction in the figure. In addition, multiple fine steps 15 are formed on the light emission surface of the second lens 14. Therefore, the backlight light incident on the second lens 14 is amplified in the left-right direction in the figure by the second lens 14 and irradiates the image display unit 16.

[0039] The microsteps 15 are a plurality of uneven shapes provided on the second lens 14, and each of these uneven shapes has the function of scattering backlight light. The material constituting the microsteps 15 is not limited, and for example, resins such as acrylic resin, glass, etc. can be used. The microsteps 15 may be formed integrally with the second lens 14, or they may be formed separately and bonded to the second lens 14. The shape of the microsteps 15 is not limited, but it is preferable that the components of the backlight light are scattered in the direction of the long side (left and right direction in the figure) of the display area of ​​the image display unit 16. It is also preferable that the microsteps 15 be arranged two-dimensionally so as to scatter the components of the backlight light in the direction of the short side (direction perpendicular to the paper plane) of the display area of ​​the image display unit 16. Figure 2 shows an example in which the microsteps 15 are provided on the light emission side, but the microsteps 15 may also be provided on the light incidence side. Also, Figure 2 shows an example in which fine concave shapes are repeatedly provided as the microsteps 15, but the shape and size are not limited.

[0040] The image display unit 16 functions as a spatial light modulation unit, receiving backlight light emitted from the light-emitting element 12 from the back and emitting light modulated by image information from the output surface. The specific configuration of the image display unit 16 is not limited, but as an example, a transmissive liquid crystal display device that transmits light incident from the back and emits it from the front can be used.

[0041] The image display unit 16 includes a display area that is a portion of the total display area, where an image is actually displayed, when the total display area is defined as the entire area where an image can be displayed. In this embodiment, the backlight light from the light-emitting element 12 is irradiated onto the display area of ​​the image display unit 16, and the backlight light may not be irradiated onto the non-display area of ​​the total display area where an image is not actually displayed. The image display unit 16 may also be provided with a light-shielding mask (not shown) having an opening corresponding to the display area on the incident side of the backlight light or the outgoing side of the image light.

[0042] As shown by the arrows in Figure 2, in the image illumination unit 10, the backlight light emitted from the light-emitting element 12 is refracted by the first lens 13 and the second lens 14, respectively, and diffused by the fine step 15 before illuminating the back of the image display unit 16. As a result, the image displayed in the display area of ​​the image display unit 16 is illuminated by the backlight light emitted from the light-emitting element 12 and emitted as the first image light L1 or the second image light L2. At this time, the backlight light is made into approximately parallel light by the first lens 13, its light distribution is adjusted by the second lens 14, and it is diffused by the fine step 15. As a result, the backlight light is uniformly illuminating the display area of ​​the image display unit 16.

[0043] Figure 3 is a schematic diagram illustrating the diffusion of backlight light by the fine steps 15. Figure 3(a) shows an example where the light divergence angle changes in steps, and Figure 3(b) shows an example where the light divergence angle changes gradually. The upper part of Figures 3(a) and (b) schematically shows the size of the fine steps 15 along the long side direction in the display area of ​​the image display unit 16. The lower part of Figures 3(a) and (b) shows the divergence angle of the fine steps 15 along the long side direction in the display area of ​​the image display unit 16. As shown in Figures 3(a) and (b), the curvature of the fine steps 15 is relatively small at the center of the long side direction of the display area and relatively large at the edges. As a result, the divergence angle of the fine steps 15 is relatively large at the center of the long side direction of the display area and relatively small at the edges.

[0044] When multiple light-emitting elements 12 are arranged in a high-density two-dimensional array, the backlight light emitted from each light-emitting element 12 overlaps, resulting in a tendency for the light intensity to be higher near the center of the arrangement area where the light-emitting elements 12 are located, and relatively lower at the periphery. However, in this embodiment, the light distribution of the backlight light is adjusted by the second lens 14, and further diffused by distributing the curvature of the fine step 15. This makes it possible to reduce the backlight light illuminating the center of the long side of the display area of ​​the image display unit 16, increase the backlight light illuminating the edges, and equalize the brightness distribution.

[0045] As described above, in the image projection device 100 of this embodiment, the second lens 14 is provided with a plurality of fine steps 15, and the divergence angle of the backlight light is large in the center in the direction of the long side, and small at the edges, so that a plurality of light-emitting elements 12 can be arranged at high density to increase brightness while making the brightness distribution uniform.

[0046] (Second Embodiment) Next, a second embodiment of the present invention will be described with reference to Figure 4. Details that overlap with the first embodiment will be omitted. Figure 4 is a schematic cross-sectional view illustrating the outline of the image irradiation unit 10 according to this embodiment. As shown in Figure 4, the image irradiation unit 10 of this embodiment includes a substrate 11, a light-emitting element 12, and first lenses 13a and 13b. In Figure 4, the second lens 14, the micro-step 15, and the image display unit 16 are omitted from the illustration.

[0047] The first lens 13a is positioned near the end in the long-side direction in the arrangement region where the multiple light-emitting elements 12 are arranged two-dimensionally. The first lens 13b is positioned near the center in the long-side direction in the arrangement region where the multiple light-emitting elements 12 are arranged two-dimensionally. Furthermore, the curvature of the first lens 13a is relatively smaller than that of the first lens 13b. Therefore, as indicated by the arrows in Figure 4, the divergence angle of the backlight light is relatively larger for the first lens 13b than for the first lens 13a.

[0048] This makes it possible to reduce the backlight light illuminating the center of the long side of the display area of ​​the image display unit 16, increase the backlight light illuminating the edges, and make the brightness distribution more uniform.

[0049] As described above, in the image projection device 100 of this embodiment, the multiple first lenses 13 have a large divergence angle of backlight light at the center in the long side direction and a small divergence angle of backlight light at the ends. Therefore, it is possible to increase the brightness by arranging multiple light-emitting elements 12 at high density while making the brightness distribution uniform.

[0050] (Third embodiment) Next, a third embodiment of the present invention will be described with reference to Figure 5. Content that overlaps with the first embodiment will be omitted from the explanation. Figure 5 is a schematic diagram illustrating the two-dimensional arrangement of the light-emitting element 12 and the first lens 13 in the image irradiation unit 10 according to this embodiment.

[0051] As shown in Figure 5, the multiple light-emitting elements 12 and the first lens 13 are arranged two-dimensionally within the arrangement region. The light-emitting elements 12 are positioned corresponding to the center position of the first lens 13. In Figure 5, the outer shape of the first lens 13 is shown as a circle, but it actually has a curved shape such as a paraboloid of revolution, and the overlapping parts of adjacent circles actually form a boundary where the curved surfaces contact each other in a valley-like manner. Also, Figure 5 shows an example in which there is a region that is not included in the circle of the first lens 13, but the diameter may be such that there is no gap between adjacent circles.

[0052] The x-axis and y-axis directions shown in Figure 5 correspond to the long and short sides of the arrangement area where multiple light-emitting elements 12 are arranged, respectively. The x-axis and y-axis directions also correspond to the long and short sides of the display area of ​​the image display unit 16. In the example shown in Figure 5, the light-emitting elements 12 are arranged in three rows along direction a, which is parallel to the x-axis direction, but the number of rows is not limited. Furthermore, the light-emitting elements 12 are positioned with their x-axis positions shifted in each row along direction b, which is a predetermined angle θ away from the y-axis direction, so that adjacent light-emitting elements 12 are positioned at the vertices of a triangle, and this arrangement is repeated two-dimensionally.

[0053] Because the arrangement of the light-emitting elements 12 is a two-dimensional repeating triangular shape, the mounting density of the light-emitting elements 12 within the arrangement area cut out in the long and short sides can be increased compared to arranging them in a rectangular shape. This makes it possible to increase the brightness of the backlight light illuminating the display area of ​​the image display unit 16.

[0054] The predetermined angle θ is not limited, but it is preferably in the range of 15 degrees to 45 degrees. Furthermore, it is preferable that the triangle formed by adjacent light-emitting elements 12 as vertices be an isosceles triangle with the longer side (x-axis direction) as the base and the shorter side (y-axis direction) as the height. This allows the light-emitting elements 12 arranged in multiple rows to be arranged symmetrically in the x-axis direction, thereby improving the uniformity of the backlight.

[0055] Furthermore, it is even more preferable that the predetermined angle θ is less than 30 degrees. When the predetermined angle θ is less than 30 degrees, the mounting density of the light-emitting elements 12 in the x-axis direction is greater than that in the y-axis direction. This makes it possible to make the brightness of the display area uniform even when the backlight light is diverted in the x-axis direction by the first lens 13, the second lens 14, and the fine step 15.

[0056] As described above, in the image projection device 100 of this embodiment, multiple light-emitting elements 12 are arranged two-dimensionally within an arrangement area divided by the long side direction and the short side direction, along a direction along the long side direction and a direction different by a predetermined angle θ from the short side direction. Therefore, it is possible to increase the brightness by arranging multiple light-emitting elements 12 at high density while making the brightness distribution uniform.

[0057] (Fourth Embodiment) Next, a fourth embodiment of the present invention will be described with reference to Figure 6. Content that overlaps with the third embodiment will be omitted from the explanation. Figure 6 is a schematic diagram illustrating the two-dimensional arrangement of the light-emitting element 12 and the first lens 13 in the image irradiation unit 10 according to this embodiment.

[0058] As shown in Figure 6, the multiple light-emitting elements 12 and the first lens 13 are arranged two-dimensionally within the arrangement region. The light-emitting elements 12 are also positioned corresponding to the center position of the first lens 13. In Figure 6, the outer shape of the first lens 13 is shown as an oval, but it actually has a curved shape such as a paraboloid of revolution, and the overlapping parts of adjacent ovals actually form a boundary where the curved surfaces contact each other in a valley-like manner.

[0059] As shown in the rectangular shape in Figure 6, the horizontal and vertical directions in the figure correspond to the long and short sides of the arrangement area where multiple light-emitting elements 12 are arranged, respectively. Furthermore, the long and short sides of the arrangement area also correspond to the long and short sides of the display area of ​​the image display unit 16, respectively. In the example shown in Figure 6, the light-emitting elements 12 are arranged in two rows along the long side, but the number of rows is not limited. In addition, the light-emitting elements 12 are arranged with their positions along the long side in each row offset, and an arrangement in which adjacent light-emitting elements 12 are located at the vertices of an isosceles triangle is repeated two-dimensionally.

[0060] The first lens 13 has an elliptical surface in a plan view, with the long side of the arrangement area as the minor axis and the short side as the major axis. In the example shown in Figure 6, the light-emitting surface of the first lens 13 has a curvature greater in the short side direction than in the long side direction, and a greater divergence angle in the short side direction than in the long side direction. However, the curvature may be the same in both the long and short sides, with only the lengths of the major and minor axes being changed. Therefore, the backlight light emitted from the light-emitting element 12 is amplified in the long side direction and reaches the second lens 14. Since the light-emitting element 12 is arranged to form an isosceles triangle with the long side as the base and the short side as the height, the density in the long side direction is higher than in the short side direction.

[0061] Therefore, in the placement area, the backlight light from the light-emitting element 12 is irradiated at high density in the direction of the longer side, but the divergence angle in the direction of the longer side increases at the oval-shaped first lens 13. As a result, the backlight light, which is also amplified in the direction of the longer side at the second lens 14, is uniformly irradiated onto the display area of ​​the image display unit 16.

[0062] In the image projection device 100 of this embodiment, multiple light-emitting elements 12 are arranged two-dimensionally within an arrangement area divided by the long side direction and the short side direction, along a direction along the long side direction and a direction different by a predetermined angle θ from the short side direction. This makes it possible to increase brightness by arranging multiple light-emitting elements 12 at high density while simultaneously making the brightness distribution uniform.

[0063] (Fifth embodiment) Next, a fifth embodiment of the present invention will be described. Details that overlap with the first to fourth embodiments will be omitted. In this embodiment, the area of ​​the arrangement region where the light-emitting elements 12 are arranged two-dimensionally is smaller than the entire display area of ​​the image display unit 16, and the backlight is irradiated onto the display area.

[0064] In the image projection device 100 of this embodiment, multiple light-emitting elements 12 are arranged two-dimensionally in an arrangement area smaller than the entire display area, and backlight light is irradiated onto the display area, which is a part of the entire display area. At this time, by arranging the light-emitting elements 12 two-dimensionally in directions that differ by a predetermined angle θ from the long side direction and the short side direction, an appropriate light distribution can be set. Furthermore, by using a first lens 13 that is an ellipse with a minor axis in the long side direction and a major axis in the short side direction, the divergence angle in the long side direction can be increased, and backlight light can be irradiated uniformly. In addition, by making the divergence angle of the fine step 15 large in the center in the long side direction and small at the edges, the overlap of backlight light from the light-emitting elements 12 near the center can be appropriately diffused, and backlight light can be irradiated uniformly.

[0065] The present invention is not limited to the embodiments described above, and various modifications are possible within the scope of the claims. Embodiments obtained by appropriately combining the technical means disclosed in different embodiments are also included in the technical scope of the present invention. [Explanation of Symbols]

[0066] 100…Image projection device 10…Image illumination area 20…First Mirror 30...Second Mirror 40…Cabinet 11... Circuit board section 12…Light-emitting element 13, 13a, 13b…First lens 14…Second lens 15…Microstep 16…Image display section

Claims

1. An image display unit has a display area set in which an image is displayed within a portion of the entire display area, Multiple light-emitting elements that irradiate the image display unit with backlight light, The device comprises a plurality of first lenses provided corresponding to the plurality of light-emitting elements, The image projection device is characterized in that the plurality of light-emitting elements are arranged two-dimensionally within an arrangement area divided by the long side direction and the short side direction, along a direction along the long side direction and a direction that is a predetermined angle different from the short side direction.

2. An image projection device according to claim 1, The image projection device is characterized in that the predetermined angle is in the range of 15 degrees or more and 45 degrees or less.

3. An image projection device according to claim 2, The plurality of light-emitting elements are arranged to form an isosceles triangle with the longer side as the base and the shorter side as the height, An image projection device characterized in that the predetermined angle is less than 30 degrees.

4. An image projection device according to claim 1, The image projection device is characterized in that the first lens has an oval surface with the long side direction as the minor axis and the short side direction as the major axis.

5. An image projection device according to claim 1, The first lens is characterized in that the divergence angle of the backlight light is large at the center in the direction of the long side and small at the ends of the image projection device.

6. An image projection device according to claim 1, The first lens is equipped with a second lens that adjusts the light distribution of the backlight light emitted from the first lens, The second lens is provided with a plurality of micro-steps, An image projection device characterized in that the divergence angle of the backlight light is large at the center in the direction of the long side, and the divergence angle of the backlight light is small at the ends.

7. An image display unit has a display area set in which an image is displayed within a portion of the entire display area, Multiple light-emitting elements that irradiate the image display unit with backlight light, The device comprises a plurality of first lenses provided corresponding to the plurality of light-emitting elements, The plurality of light-emitting elements are arranged within an arrangement area divided by the long side direction and the short side direction. The first lens is characterized in that the divergence angle of the backlight light is large at the center in the direction of the long side and small at the ends of the image projection device.

8. An image display unit has a display area set in which an image is displayed within a portion of the entire display area, Multiple light-emitting elements that irradiate the image display unit with backlight light, A plurality of first lenses provided corresponding to the plurality of light-emitting elements, The first lens is equipped with a second lens that adjusts the light distribution of the backlight light emitted from the first lens, The plurality of light-emitting elements are arranged within an arrangement area divided by the long side direction and the short side direction. The second lens is provided with a plurality of micro-steps, An image projection device characterized in that the divergence angle of the backlight light is large at the center in the direction of the long side, and the divergence angle of the backlight light is small at the ends.

9. An image projection device according to any one of claims 1 to 8, The area of ​​the arrangement area is smaller than the total display area. An image projection device characterized in that the backlight light is irradiated onto the display area.

Citation Information

Patent Citations

  • Head-up display device

    JP2019119248A

  • Head-up display device

    JP2019119262A