Image generation device, reflector, and head-up display
The image generation device and improved reflector design address the challenges of cost, display range, and moldability in head-up displays, achieving efficient and effective image projection.
Patent Information
- Application Number
- JP2025009050
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2020-05-20
- Filing Date
- 2025-01-22
- Publication Date
- 2025-05-09
- Estimated Expiration
- 2041-03-10
AI Technical Summary
Existing head-up displays face challenges in reducing manufacturing costs, expanding the display range of images at a low cost, improving the moldability and size of concave mirrors, and suppressing distortion during the molding process.
The development of an image generation device that includes a light source board with a light source, an optical member, a display device, and a heat sink, along with a reflector that can be rotated and has improved moldability, allowing for a wider display range and reduced manufacturing costs.
The solution achieves cost-effective manufacturing, expands the display range of images, improves the moldability and size of concave mirrors, and suppresses distortion, resulting in a more efficient and effective head-up display system.
Smart Images

Figure 2025072410000001_ABST
Abstract
Description
[Technical field]
[0001] The present invention relates to an image generating device and a head-up display including the image generating device.
[0002] The present invention also relates to a reflector and a head-up display including the reflector.
[0003] The present invention also relates to a head-up display. [Background technology]
[0004] In the future autonomous driving society, it is expected that visual communication between vehicles and humans will become increasingly important. For example, it is expected that visual communication between a vehicle and its occupants will become increasingly important. In this regard, visual communication between a vehicle and its occupants can be realized by using a head-up display (HUD). A head-up display can realize so-called AR (Augmented Reality) by projecting an image or video onto a windshield or combiner, and allowing the occupant to view the image by superimposing it on the real space through the windshield or combiner.
[0005] Patent Document 1 discloses a display device used in a head-up display device that displays information on the windshield or the like of a vehicle.
[0006] Patent Document 2 discloses an in-vehicle HUD device that displays predetermined content in a predetermined display area provided in front of the driver's seat.
[0007] Patent Document 3 discloses a head-up display device for a vehicle that includes a display and a reflector and displays a virtual image of display information in front of the driver's field of vision. The head-up display device for a vehicle disclosed in Patent Document 1 includes a concave mirror that is rectangular in shape from the front, and the concave mirror has a holder portion disposed on the back side.
[0008] Patent Document 4 discloses a head-up display device for a vehicle that is mounted on a vehicle and displays a virtual image of display information in front of the driver's field of vision. The head-up display device for a vehicle disclosed in Patent Document 1 includes a display, a reflecting unit that reflects light emitted from the display, a step motor that rotates the reflecting unit, and a control device that controls the rotation of the reflecting unit by controlling the step motor.
[0009] In a head-up display, light emitted from an image generating device is reflected by a reflecting mirror and irradiated onto a windshield or a combiner of a vehicle. As a reflecting mirror, a concave mirror as disclosed in Patent Document 5 and Patent Document 6 is generally known. [Prior art documents] [Patent documents]
[0010] [Patent Document 1] Japanese Patent Application Publication No. 2018-83593 [Patent Document 2] Japanese Patent Application Publication No. 2019-119262 [Patent Document 3] Japanese Patent Application Publication No. 2018-54966 [Patent Document 4] Japanese Patent Publication No. 2016-46650 [Patent Document 5] Japanese Patent Application Publication No. 2019-132990 [Patent Document 6] International Application Publication No. WO2017 / 208961 Summary of the Invention [Problem to be solved by the invention]
[0011] Incidentally, in existing head-up displays such as that disclosed in Patent Document 1, there is a demand for reducing the manufacturing cost of a substrate on which a light source included in a display device is mounted.
[0012] Therefore, an object of the present invention is to provide an image generating device capable of reducing manufacturing costs, and a head-up display including the image generating device.
[0013] Furthermore, there is room for improvement in the configuration of existing head-up displays to expand the display range of predetermined content.
[0014] Therefore, an object of the present invention is to provide an image generating device that can expand the image display range at low cost and suppress the adverse effects of external light or reflected light on image generation, and a head-up display equipped with such an image generating device.
[0015] Moreover, there is room for further improvement in the concave mirror disclosed in Patent Document 3.
[0016] Therefore, an object of the present invention is to provide a reflector that can be made larger and has improved formability, and a head-up display including the reflector.
[0017] Furthermore, in a head-up display, there is room for improvement in the mounting structure of the reflector on the housing.
[0018] Therefore, an object of the present invention is to provide a head-up display capable of mounting a reflector with a low-cost and simple configuration.
[0019] In addition, in the general manufacturing method of concave mirrors, a substrate is molded from resin using a mold, and a reflective film is formed on the surface of the molded substrate by deposition processing. When the substrate is molded, the corners of the substrate are more likely to cool and solidify than other parts because the two surfaces that make up the corners are in contact with the mold, and are less likely to shrink during molding. This can cause a difference in shrinkage between the outer corners and other parts, which can distort the substrate. When a concave mirror with a distorted substrate is used in a head-up display, there is a problem that the characters on the outer periphery of the image are displayed distorted.
[0020] Therefore, an object of the present invention is to provide a reflecting mirror in which distortion of the substrate during molding is suppressed, and a head-up display using the same. [Means for solving the problem]
[0021] In order to achieve one of the above objects, an image generating apparatus according to one aspect of the present invention comprises: An image generating device that generates an image for a head-up display, a light source board on which a light source is mounted; an optical member that transmits light emitted from the light source; a display device that forms light for generating the predetermined image using light transmitted through the optical member; and a heat sink that dissipates heat generated from the light source substrate; a holder for holding the optical member, the holder has a plurality of first engagement portions, and the heat sink has a plurality of second engagement portions provided at locations corresponding to the plurality of first engagement portions, By fixing each of the multiple first engagement portions and each of the multiple second engagement portions, the light source substrate is positioned and fixed while being sandwiched between the holder and the heat sink and accommodated in the space formed between the multiple first engagement portions.
[0022] In order to achieve one of the above objects, an image generating apparatus according to one aspect of the present invention comprises: An image generating device that generates an image for a head-up display, a varying image generating unit that generates a varying image among the images that varies depending on a situation of the vehicle; a fixed image generating unit that generates a fixed image among the images that is fixed regardless of the situation, the transition image generating unit includes a light source substrate on which a light source is mounted, an optical member that transmits light emitted from the light source, and a display device that forms light for generating a predetermined image using the light that has transmitted through the optical member; the light source substrate is disposed at a certain angle with respect to a first light emitting surface of the display device; The second light exit surface of the fixed image generating unit is a surface parallel to the first light exit surface.
[0023] Further, a head-up display according to one aspect of the present invention includes: Any of the image generating devices described above; At least one reflecting unit that reflects the light emitted by the image generating device so that the light is irradiated onto a windshield or a combiner; It is equipped with:
[0024] In order to achieve one of the above objects, a reflecting mirror according to one aspect of the present invention comprises: A reflecting mirror that can rotate around a rotation axis, a plate-shaped main body having a reflecting surface for reflecting light, a first end surface, and a second end surface located on the opposite side of the reflecting surface from the first end surface; a plate-shaped first protruding portion that protrudes from the first end surface toward a rear side of the reflecting surface; a plate-shaped second protruding portion protruding toward the back surface side so as to be continuous with the second end surface; a first shaft portion provided on the first protrusion portion for rotating the main body portion around the rotation axis; a second shaft portion provided on the second protrusion portion for rotating the main body portion around the rotation axis, A tip end of the first protrusion is located at a position different from the first end surface in the direction along the rotation axis and on the opposite side to the reflecting surface.
[0025] In order to achieve one of the above objects, a reflecting mirror according to one aspect of the present invention comprises: a substrate having a first surface and a second surface opposite the first surface; a reflective film formed on the first surface and configured to reflect light, At least a portion of the edge of the substrate has a surface between the first surface and the second surface that forms at least three obtuse angles in a cross section in the thickness direction of the substrate.
[0026] Further, a head-up display according to one aspect of the present invention includes: A head-up display provided in a vehicle and configured to display a predetermined image toward an occupant of the vehicle, The reflector as described above, an image generating device that generates the predetermined image and emits light toward the reflecting mirror; It is equipped with:
[0027] In order to achieve one of the above objects, a head-up display according to one aspect of the present invention comprises: A head-up display provided in a vehicle and configured to display a predetermined image toward an occupant of the vehicle, an image generating unit that emits light for generating the predetermined image; A reflecting unit that reflects the light emitted by the image generating unit so that the light is irradiated onto a windshield or a combiner; a housing that accommodates the image generating unit and the reflecting unit; Equipped with the reflecting portion has a main body portion, a first shaft portion protruding outward from one end of the main body portion, and a second shaft portion protruding outward from the other end of the main body portion, The housing has at least a first accommodating portion capable of accommodating an end portion of the first shaft portion, The end portion is exposed to the outside from the first storage portion. Effect of the Invention
[0028] According to the present invention, it is possible to provide an image generating device capable of reducing manufacturing costs, and a head-up display including the image generating device.
[0029] Furthermore, according to the present invention, it is possible to provide an image generating device that can expand the image display range at low cost and suppress the adverse effects of external light or reflected light on the generation of an image, and a head-up display equipped with the image generating device.
[0030] Furthermore, according to the present invention, it is possible to provide a reflecting mirror that can be made larger and has improved moldability, and a head-up display including the reflecting mirror.
[0031] Furthermore, according to the reflecting mirror of the present invention, a surface that forms at least three obtuse angles is formed on a portion of the edge of the substrate, so that the portion of the edge is less likely to cool and solidify during molding compared to when an acute angle or a 90 degree angle is formed on the portion of the edge, and therefore distortion of the substrate during molding is suppressed.
[0032] Furthermore, according to the present invention, it is possible to provide a head-up display capable of mounting a reflector with a low-cost and simple configuration. [Brief description of the drawings]
[0033] [Figure 1] FIG. 1 is a block diagram of a vehicle system equipped with a head-up display (HUD) according to this embodiment. [Diagram 2] FIG. 2 is a schematic diagram showing the configuration of a HUD. [Diagram 3] FIG. 3 is an exploded perspective view showing the configuration of an image generating device included in the HUD of FIG. [Figure 4] FIG. 4 is a front view of the image generating device of FIG. [Diagram 5] FIG. 5 is a cross-sectional view taken along line AA of FIG. [Figure 6] FIG. 6 is a rear perspective view of the lens holder. [Figure 7] FIG. 7 is a top view of the image generating device of FIG. [Figure 8] FIG. 8 is a cross-sectional view taken along line BB of FIG. [Figure 9]FIG. 9 is a block diagram of a vehicle system equipped with a HUD according to the second embodiment. [Figure 10] FIG. 10 is a schematic diagram showing the configuration of a HUD according to the second embodiment. [Figure 11] FIG. 11 is a perspective view showing a reflecting mirror, an image generating device, and a rotation mechanism according to the second embodiment. [Figure 12] FIG. 12 is a perspective view of the reflector of FIG. [Figure 13] FIG. 13 is a top view of the reflector. [Figure 14] FIG. 14 is a side view of the reflector. [Figure 15] FIG. 15 is a perspective view of the reflecting mirror to which the rotation mechanism is attached. [Figure 16] FIG. 16 is a side view of the state shown in FIG. [Figure 17] FIG. 17 is a perspective view showing a state in which a reflecting mirror and an image generating device are accommodated in a housing in the second embodiment. [Figure 18] FIG. 18 is a perspective view of a housing with a reflecting mirror removed in the second embodiment. [Figure 19] FIG. 19 is a side view of the state shown in FIG. [Figure 20] FIG. 20 is a perspective view of a reflector of the head-up display shown in FIG. 2 in the third embodiment. [Figure 21] FIG. 21 is a bottom view of the reflector of FIG. [Figure 22] FIG. 22 is an enlarged cross-sectional view of the end of the reflector. [Diagram 23] FIG. 23 is a cross-sectional view of the reflector substrate during molding. [Figure 24] FIG. 24 is a cross-sectional view showing a comparative example of FIG. [Diagram 25] FIG. 25 is an enlarged cross-sectional view of a modified example of the end portion of the reflector. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0034] Hereinafter, an embodiment of the present invention (hereinafter, referred to as the present embodiment) will be described with reference to the drawings. For the sake of convenience of explanation, the dimensions of each component shown in the drawings may differ from the actual dimensions of each component.
[0035] In addition, in the description of this embodiment, for convenience of description, the "left-right direction", "up-down direction", and "front-rear direction" may be appropriately mentioned. These directions are relative directions set for the HUD (Head-Up Display) 20 shown in FIG. 2. Here, the "left-right direction" is a direction including the "left direction" and the "right direction". The "up-down direction" is a direction including the "upward direction" and the "downward direction". The "front-rear direction" is a direction including the "forward direction" and the "rearward direction". Although the left-right direction is not shown in FIG. 2, it is a direction perpendicular to the up-down direction and the front-rear direction.
[0036] A vehicle system 2 including a HUD 20 according to this embodiment will be described below with reference to Fig. 1. Fig. 1 is a block diagram of the vehicle system 2. A vehicle 1 equipped with the vehicle system 2 is a vehicle (automobile) capable of running in an autonomous driving mode.
[0037] 1, the vehicle system 2 includes a vehicle control unit 3, a sensor 5, a camera 6, a radar 7, an HMI (Human Machine Interface) 8, a GPS (Global Positioning System) 9, a wireless communication unit 10, and a storage device 11. The vehicle system 2 also includes a steering actuator 12, a steering device 13, a brake actuator 14, a brake device 15, an accelerator actuator 16, and an accelerator device 17. The vehicle system 2 also includes a HUD 20.
[0038] The vehicle control unit 3 is configured to control the traveling of the vehicle 1. The vehicle control unit 3 is configured, for example, by at least one electronic control unit (ECU: Electronic Control Unit). The electronic control unit includes a computer system (for example, SoC (System on a Chip) or the like) having one or more processors and a memory, and an electronic circuit configured of active elements such as transistors and passive elements such as resistors. The processor includes, for example, at least one of a CPU (Central Processing Unit), an MPU (Micro Processing Unit), a GPU (Graphics Processing Unit), and a TPU (Tensor Processing Unit). The CPU may be configured by multiple CPU cores. The GPU may be configured by multiple GPU cores. The memory includes a ROM (Read Only Memory) and a RAM (Random Access Memory). A vehicle control program may be stored in the ROM. For example, the vehicle control program may include an artificial intelligence (AI) program for autonomous driving. The AI program is a program (trained model) constructed by supervised or unsupervised machine learning (particularly, deep learning) using a multi-layer neural network. The RAM may temporarily store a vehicle control program, vehicle control data, and / or surrounding environment information indicating the surrounding environment of the vehicle 1. The processor may be configured to load a program specified from various vehicle control programs stored in the ROM onto the RAM and execute various processes in cooperation with the RAM. The computer system may also be configured with a non-von Neumann type computer such as an ASIC (Application Specific Integrated Circuit) or an FPGA (Field-Programmable Gate Array). Furthermore, the computer system may be configured with a combination of a von Neumann type computer and a non-von Neumann type computer.
[0039] The sensor 5 includes at least one of an acceleration sensor, a speed sensor, and a gyro sensor. The sensor 5 is configured to detect the driving state of the vehicle 1 and output driving state information to the vehicle control unit 3. The sensor 5 may further include a seating sensor that detects whether the driver is sitting in the driver's seat, a face direction sensor that detects the direction of the driver's face, an external weather sensor that detects the external weather conditions, and a human presence sensor that detects whether a person is inside the vehicle.
[0040] The camera 6 is a camera including an imaging element such as a CCD (Charge-Coupled Device) or a CMOS (Complementary MOS), etc. The camera 6 includes one or more external cameras 6A and an internal camera 6B. The external camera 6A is configured to acquire image data showing the surrounding environment of the vehicle 1 and then transmit the image data to the vehicle control unit 3. The vehicle control unit 3 acquires surrounding environment information based on the transmitted image data. Here, the surrounding environment information may include information on objects (pedestrians, other vehicles, signs, etc.) present outside the vehicle 1. For example, the surrounding environment information may include information on attributes of objects present outside the vehicle 1 and information on the distance and position of the objects relative to the vehicle 1. The external camera 6A may be configured as a monocular camera or as a stereo camera.
[0041] The internal camera 6B is disposed inside the vehicle 1 and configured to acquire image data showing the occupant. The internal camera 6B functions, for example, as an eye tracking camera that tracks the occupant's viewpoint E (described later in FIG. 2). The internal camera 6B is provided, for example, near the rearview mirror or inside the instrument panel.
[0042] The radar 7 includes at least one of a millimeter wave radar, a microwave radar, and a laser radar (e.g., a LiDAR unit). For example, the LiDAR unit is configured to detect the surrounding environment of the vehicle 1. In particular, the LiDAR unit is configured to obtain 3D mapping data (point cloud data) indicating the surrounding environment of the vehicle 1, and then transmit the 3D mapping data to the vehicle control unit 3. The vehicle control unit 3 identifies surrounding environment information based on the transmitted 3D mapping data.
[0043] The HMI 8 is composed of an input unit that accepts input operations from the driver, and an output unit that outputs driving information, etc. to the driver. The input unit includes a steering wheel, an accelerator pedal, a brake pedal, a driving mode changeover switch that changes the driving mode of the vehicle 1, etc. The output unit is a display (excluding the HUD) that displays various driving information.
[0044] The GPS 9 is configured to acquire current position information of the vehicle 1 and output the acquired current position information to the vehicle control unit 3.
[0045] The wireless communication unit 10 is configured to receive information (e.g., travel information, etc.) about other vehicles around the vehicle 1 from the other vehicles and transmit information (e.g., travel information, etc.) about the vehicle 1 to the other vehicles (vehicle-to-vehicle communication). The wireless communication unit 10 is also configured to receive infrastructure information from infrastructure equipment such as traffic lights and marker lights and transmit travel information of the vehicle 1 to the infrastructure equipment (road-to-vehicle communication). The wireless communication unit 10 is also configured to receive information about pedestrians from portable electronic devices (smartphones, tablets, wearable devices, etc.) carried by pedestrians and transmit vehicle travel information of the vehicle 1 to the portable electronic device (pedestrian-to-vehicle communication). The vehicle 1 may directly communicate with other vehicles, infrastructure equipment, or portable electronic devices in an ad-hoc mode, or may communicate via an access point. The vehicle 1 may also communicate with other vehicles, infrastructure equipment, or portable electronic devices via a communication network not shown. The communication network includes at least one of the Internet, a local area network (LAN), a wide area network (WAN), and a radio access network (RAN). The wireless communication standard is, for example, Wi-Fi (registered trademark), Bluetooth (registered trademark), ZigBee (registered trademark), LPWA, DSRC (registered trademark), or Li-Fi. The vehicle 1 may also communicate with other vehicles, infrastructure equipment, or portable electronic devices using a fifth generation mobile communication system (5G).
[0046] The storage device 11 is an external storage device such as a hard disk drive (HDD) or a solid state drive (SSD). Two-dimensional or three-dimensional map information and / or a vehicle control program may be stored in the storage device 11. For example, the three-dimensional map information may be composed of 3D mapping data (point cloud data). The storage device 11 is configured to output the map information and the vehicle control program to the vehicle control device 3 in response to a request from the vehicle control device 3. The map information and the vehicle control program may be updated via the wireless communication unit 10 and a communication network.
[0047] When the vehicle 1 travels in the autonomous driving mode, the vehicle control unit 3 automatically generates at least one of a steering control signal, an accelerator control signal, and a brake control signal based on the driving state information, the surrounding environment information, the current position information, the map information, and the like. The steering actuator 12 is configured to receive the steering control signal from the vehicle control unit 3 and control the steering device 13 based on the received steering control signal. The brake actuator 14 is configured to receive the brake control signal from the vehicle control unit 3 and control the brake device 15 based on the received brake control signal. The accelerator actuator 16 is configured to receive the accelerator control signal from the vehicle control unit 3 and control the accelerator device 17 based on the received accelerator control signal. In this way, the vehicle control unit 3 automatically controls the traveling of the vehicle 1 based on the driving state information, the surrounding environment information, the current position information, the map information, and the like. That is, in the autonomous driving mode, the traveling of the vehicle 1 is automatically controlled by the vehicle system 2.
[0048] On the other hand, when the vehicle 1 runs in the manual driving mode, the vehicle control unit 3 generates a steering control signal, an accelerator control signal, and a brake control signal in accordance with the driver's manual operation of the accelerator pedal, the brake pedal, and the steering wheel. In this way, in the manual driving mode, the steering control signal, the accelerator control signal, and the brake control signal are generated by the driver's manual operation, so that the running of the vehicle 1 is controlled by the driver.
[0049] As described above, the driving mode includes an automatic driving mode and a manual driving mode. The automatic driving mode includes, for example, a fully automatic driving mode, an advanced driving assistance mode, and a driving assistance mode. In the fully automatic driving mode, the vehicle system 2 automatically performs all driving control, including steering control, braking control, and accelerator control, and the driver is not in a state where he can drive the vehicle 1. In the advanced driving assistance mode, the vehicle system 2 automatically performs all driving control, including steering control, braking control, and accelerator control, and the driver is in a state where he can drive the vehicle 1 but does not drive the vehicle 1. In the driving assistance mode, the vehicle system 2 automatically performs some driving control, including steering control, braking control, and accelerator control, and the driver drives the vehicle 1 under the driving assistance of the vehicle system 2. On the other hand, in the manual driving mode, the vehicle system 2 does not automatically perform driving control, and the driver drives the vehicle 1 without the driving assistance of the vehicle system 2.
[0050] The HUD 20 is configured to display predetermined information (hereinafter referred to as HUD information) as an image toward the occupant of the vehicle 1 so that the HUD information is superimposed on the real space outside the vehicle 1 (particularly, the surrounding environment in front of the vehicle 1). The HUD information displayed by the HUD 20 is, for example, vehicle driving information related to the driving of the vehicle 1 and / or surrounding environment information related to the surrounding environment of the vehicle 1 (particularly, information related to objects existing outside the vehicle 1). The HUD 20 is an AR display that functions as a visual interface between the vehicle 1 and the occupant.
[0051] The HUD 20 includes an image generating unit (PGU) 24. The image generating unit 24 includes a changing image generating section 24A, a fixed image generating section 24B, and a control section 25. The image generating device 24 is configured to emit light for generating a predetermined image to be displayed toward the occupants of the vehicle 1. The varying image generating unit 24A emits light for generating a varying image, among the predetermined images, that changes according to the situation of the vehicle 1. The fixed image generating unit 24B emits light for generating a fixed image, among the predetermined images, that is fixed regardless of the situation of the vehicle 1.
[0052] The control unit 25 controls the operation of each part of the HUD 20. The control unit 25 is connected to the vehicle control unit 3, and generates a control signal for controlling the operation of the changing image generating unit 24A and the fixed image generating unit 24B based on vehicle driving information and surrounding environment information transmitted from the vehicle control unit 3, and transmits the generated control signal to the changing image generating unit 24A and the fixed image generating unit 24B. The control unit 25 is equipped with a processor such as a CPU (Central Processing Unit) and a memory, and the processor executes a computer program read from the memory to control the operation of the changing image generating unit 24A, the fixed image generating unit 24B, and the like. In this embodiment, the vehicle control unit 3 and the control unit 25 are provided as separate configurations, but the vehicle control unit 3 and the control unit 25 may be configured as an integrated unit. For example, the vehicle control unit 3 and the control unit 25 may be configured as a single electronic control unit.
[0053] 2 is a schematic diagram of the HUD 20 as viewed from the side of the vehicle 1. At least a portion of the HUD 20 is located inside the vehicle 1. Specifically, the HUD 20 is installed at a predetermined location inside the vehicle 1. For example, the HUD 20 may be disposed inside the dashboard of the vehicle 1.
[0054] 2, the HUD 20 includes a HUD main body 21. The HUD main body 21 has a main body housing 22 and an exit window 23. The exit window 23 is made of a transparent plate that transmits visible light. The HUD main body 21 has an image generating device 24 and a concave mirror 26 (an example of a reflecting section) inside the main body housing 22.
[0055] The concave mirror 26 is disposed on the optical path of the light emitted from the image generating device 24 (changing image generating section 24A, fixed image generating section 24B). The concave mirror 26 is configured to reflect the light emitted from the image generating device 24 toward the windshield 18 (for example, the front window of the vehicle 1). The concave mirror 26 has a reflective surface curved concavely to form a predetermined image, and reflects the light image emitted from the image generating device 24 and formed at a predetermined magnification. The concave mirror 26 has a drive (rotation) mechanism 27, and may be configured to rotate the orientation of the concave mirror 26 based on a control signal transmitted from the control section 25 (see FIG. 1).
[0056] The image generating device 24 is installed in the main housing 22 so as to face the front of the HUD 20. The light emitted from the image generating device 24 (changing image generating section 24A, fixed image generating section 24B) is reflected by the concave mirror 26 and emitted from the exit window 23 of the HUD main body 21. The light emitted from the exit window 23 of the HUD main body 21 is irradiated onto the windshield 18. A part of the light irradiated from the exit window 23 onto the windshield 18 is reflected toward the occupant's viewpoint E. As a result, the occupant recognizes the light emitted from the HUD main body 21 as a virtual image (predetermined image) formed at a predetermined distance in front of the windshield 18. In this way, the image displayed by the HUD 20 is superimposed on the real space in front of the vehicle 1 through the windshield 18, so that the occupant can visually recognize the virtual image object I formed by the predetermined image as floating above the road located outside the vehicle.
[0057] Here, the occupant's viewpoint E may be either the viewpoint of the left eye or the viewpoint of the right eye of the occupant. Alternatively, the viewpoint E may be defined as the midpoint of a line segment connecting the viewpoints of the left eye and the right eye. The position of the occupant's viewpoint E is identified based on image data acquired by the internal camera 6B, for example. The position of the occupant's viewpoint E may be updated at a predetermined cycle, or may be determined only once when the vehicle 1 is started.
[0058] When a 2D image (planar image) is formed as the virtual image object I, a predetermined image is projected so as to become a virtual image at a single distance that is arbitrarily determined. When a 3D image (stereoscopic image) is formed as the virtual image object I, a plurality of predetermined images that are the same or different from each other are projected so as to become virtual images at different distances. In addition, the distance of the virtual image object I (the distance from the occupant's viewpoint E to the virtual image) can be appropriately adjusted by adjusting the distance from the image generating device 24 to the occupant's viewpoint E (for example, by adjusting the distance between the image generating device 24 and the concave mirror 26).
[0059] Fig. 3 is an exploded perspective view showing the configuration of the image generating device 24. Fig. 4 is a front view of the image generating device 24. 3 and 4, the image generating device 24 includes a changing image generating section 24A disposed at the center when viewed from the front, and fixed image generating sections 24B disposed on both the left and right sides of the changing image generating section 24A. The changing image generating section 24A and the fixed image generating section 24B are housed in a PGU housing 160. A circuit board 170 having a control section 25 mounted thereon for controlling the changing image generating section 24A and the fixed image generating section 24B, and a rear cover 180 for covering the rear surface of the PGU housing 160 are attached to the PGU housing 160.
[0060] FIG. 5 is a cross-sectional view taken along line AA of the image generating device 24 shown in FIG. 4, that is, a cross-sectional view of the transition-image generating section 24A in the image generating device 24. As shown in FIG. 3 to 5, the changing-image generating unit 24A has a light source substrate 110 on which a light source 111 is mounted, a lens 120 (an example of an optical member) arranged in front of the light source 111, and a display device 130 arranged in front of the lens 120. The changing-image generating unit 24A further has a lens holder 140 arranged in front of the light source substrate 110, and a heat sink 150 arranged in the rear of the light source substrate 110.
[0061] The light source 111 is, for example, a laser light source or an LED light source. The laser light source is, for example, an RGB laser light source configured to emit red laser light, green laser light, and blue laser light, respectively. The light source substrate 110 is, for example, a printed board made of an insulator with electrical circuit wiring printed on the surface or inside of the board. The light source substrate 110 has, for example, a plurality of (two in this example) laser light sources arranged side by side in the left-right direction. In addition, the light source substrate 110 has at least one hole 112 for fixing the mounting position of the light source substrate 110 relative to the lens holder 140. In this embodiment, one hole 112 is formed on each of the left and right ends of the light source substrate 110.
[0062] The lens 120 is composed of, for example, a plano-convex lens. Instead of using the lens 120, a prism, a diffusion plate, a magnifying glass, or the like may be used. The lens 120 is attached to a lens holder 140. The lens 120 is configured to transmit or reflect light emitted from the light source 111 and emit the light toward the display device 130. In this embodiment, two plano-convex lenses corresponding to the two light sources 111 are provided in parallel in the left-right direction.
[0063] The display device 130 is a liquid crystal display, a DMD (Digital Mirror Device), or the like. The drawing method of the change image generating unit 24A may be a raster scan method, a DLP method, or an LCOS method. When the DLP method or the LCOS method is adopted, the light source 111 of the change image generating unit 24A may be an LED light source. Note that, when the liquid crystal display method is adopted, the light source 111 of the change image generating unit 24A may be a white LED light source. The display device 130 is attached to the front part of the PGU housing 160. The display device 130 is attached to the PGU housing 160 in a state where a light emission surface 130a for emitting light for generating a change image faces the front of the change image generating unit 24A. The display device 130 is configured so that it can be attached to the PGU housing 160 from the front side of the PGU housing 160, for example. The display device 130 is connected to an FPC (Flexible Printed Circuits) 131 that connects the display device 130 and the control unit 25. The display device 130 is configured to generate light for generating a predetermined transition image using the light from the light source 111 transmitted through the lens 120 .
[0064] Fig. 6 is a rear perspective view of lens holder 140. As shown in Fig. 3 to Fig. 6, lens holder 140 has a pair of holder attachment parts 141 in which a plurality of attachment holes 142 (an example of a first engagement part) are formed, and a fixing recess 143 provided between the pair of holder attachment parts 141.
[0065] The holder attachment portion 141 is formed, for example, in a flat plate shape. An attachment surface 141a (an example of a first surface) of the flat holder attachment portion 141 is formed so as to be parallel to the light emission surface 130a of the display device 130 attached to the PGU housing 160. In this specification, "parallel" does not necessarily mean completely parallel, but also includes a direction within ±5 degrees from a completely parallel direction. In this embodiment, two attachment holes 142 of the holder attachment portion 141 are formed in each holder attachment portion 141 in parallel in the vertical direction.
[0066] The fixing recess 143 is formed in a recessed state further forward than the pair of holder mounting parts 141. The fixing recess 143 has an inclined surface 143a (an example of a second surface) that is inclined relative to the mounting surface 141a of the holder mounting part 141. The inclined surface 143a is formed such that an upper side of the inclined surface 143a is inclined forward relative to the mounting surface 141a.
[0067] An opening 144 is formed in the center of the fixing recess 143, and a frame portion 145 is formed around the opening 144. The opening 144 is formed in a size and shape such that the periphery of the light source substrate 110 arranged on the rear side of the lens holder 140 overlaps with the frame portion 145, and the light source 111 mounted on the light source substrate 110 is accommodated inside the opening 144. In this embodiment, two openings 144 are formed in the left and right directions.
[0068] A pin 147 is provided on the frame portion 145 of the inclined back surface 143a1, which is the rear side of the fixing recess 143 of the inclined surface 143a. The pin 147 is provided so as to protrude rearward from the frame portion 145. The pin 147 is provided at a position where it can be inserted into the hole portion 112 of the light source substrate 110. In this example, one pin 147 is provided on each of the left and right frame portions 145 of the inclined back surface 143a1. The height of the protruding portion of the pin 147 protruding rearward from the frame portion 145 is formed to be equal to or less than the thickness of the light source substrate 110.
[0069] The lens 120 is attached to an inclined front surface 143a2 of the inclined surface 143a, which is in front of the fixing recess 143. The lens 120 attached to the inclined front surface 143a2 is held in the PGU housing 160 in a state inclined with respect to the light emission surface 130a of the display device 130.
[0070] 3, the heat sink 150 is made of a material having high thermal conductivity, such as aluminum or copper. The heat sink 150 is provided so as to contact the rear surface of the light source substrate 110 in order to dissipate heat generated from the light source substrate 110. The heat sink 150 has a pair of heat sink attachment portions 151 in which a plurality of attachment holes 152 (an example of a second engagement portion) are formed, and a fixing protrusion 153 provided between the pair of heat sink attachment portions 151.
[0071] The heat sink attachment portion 151 is formed, for example, in a flat plate shape. An attachment surface 151a (an example of a third surface) of the flat heat sink attachment portion 151 is formed so as to be parallel to the attachment surface 141a of the lens holder 140 when the heat sink 150 is attached to the PGU housing 160 together with the lens holder 140. The attachment hole 152 of the heat sink attachment portion 151 is formed at a position corresponding to the attachment hole 142 formed in the attachment surface 141a of the lens holder 140. In this embodiment, two attachment holes 152 arranged in parallel in the vertical direction are formed in each of the pair of heat sink attachment portions 151.
[0072] The fixing protrusions 153 are formed so as to protrude forward from the pair of heat sink attachment parts 151. The fixing protrusions 153 have an inclined surface 153a (an example of a fourth surface) that is inclined with respect to the attachment surface 151a of the heat sink attachment part 151. The inclined surface 153a is formed so that an upper side of the inclined surface 153a is inclined forward with respect to the attachment surface 151a. The inclined surface 153a is also formed so as to be parallel to the inclined surface 143a of the lens holder 140.
[0073] A plurality of heat dissipation fins 154 are formed on an inclined back surface 153a1 of the inclined surface 153a, which is the rear side of the fixing protrusion 153. An inclined front surface 153a2 of the inclined surface 153a, which is the front side of the fixing protrusion 153, is formed in a flat shape as a surface that comes into contact with the light source substrate 110.
[0074] The heat sink 150 is screwed to the PGU housing 160 by mounting screws 155 through mounting holes 152 of the heat sink attachment portion 151. The lens holder 140 is screwed to the PGU housing 160 by mounting screws 155 through mounting holes 142 of the attachment surface 141a. The heat sink 150 is screwed to the PGU housing 160 together with the lens holder 140 by the common mounting screws 155 with the fixing convex portion 153 fitted into the fixing concave portion 143 of the lens holder 140 and with the attachment surface 151a of the heat sink attachment portion 151 facing the attachment surface 141a of the holder attachment portion 141 of the lens holder 140.
[0075] Fig. 7 is a top view of the image generating device 24. Fig. 7 shows a state in which the components of the image generating device 24 shown in Fig. 3 are assembled. 3, 6 and 7, the light source board 110 is attached to the PGU housing 160 in a state where it is sandwiched between an inclined rear surface 143a1 of the fixing recess 143 of the lens holder 140 and an inclined front surface 153a2 of the fixing protrusion 153 of the heat sink 150. That is, the light source board 110 is attached inside the pair of holder attachment portions 141 of the lens holder 140 and the pair of heat sink attachment portions 151 of the heat sink 150 in the left-right direction of the lens holder 140 and the heat sink 150.
[0076] The depth of the fixing recess 143 of the lens holder 140 is formed deeper than the height of the fixing protrusion 153 of the heat sink 150. Specifically, the depth of the fixing recess 143 is formed deeper than the height of the fixing protrusion 153 by approximately the thickness of the light source substrate 110. Therefore, when the fixing protrusion 153 of the heat sink 150 is fitted into the fixing recess 143 of the lens holder 140, a space 148 is formed between the inclined rear surface 143a1 of the lens holder 140 and the inclined front surface 153a2 of the heat sink 150, the space 148 being approximately the thickness of the light source substrate 110 (see FIGS. 5 and 7). The light source substrate 110 is accommodated in the space 148 formed between the fixing recess 143 of the lens holder 140 and the fixing protrusion 153 of the heat sink 150. Specifically, the light source board 110 is placed on a frame portion 145 of the fixing recess 143 , and is accommodated in a space 148 with a pin 147 provided on the frame portion 145 inserted into a hole portion 112 of the light source board 110 .
[0077] By being accommodated in the space 148, the light source board 110 has its movement in the left-right and up-down directions regulated by the pins 147 inserted through the holes 112. Furthermore, by being accommodated in the space 148, the movement in the front-back directions of the light source board 110 is regulated by the fixing recess 143 of the lens holder 140 and the fixing protrusion 153 of the heat sink 150. In this manner, by accommodating the light source board 110 in the space 148, the position of the light source board 110 relative to the lens 120 and the display device 130 is fixed. Note that by accommodating the light source board 110 in the space 148, the light source 111 mounted on the light source board 110 is disposed within the opening 144 of the fixing recess 143.
[0078] The light source substrate 110 is attached to the PGU housing 160 so as to be parallel to the inclined surface 143a of the fixing recess 143 in the lens holder 140 and the inclined surface 153a of the fixing protrusion 153 in the heat sink 150, that is, in a state inclined at a certain angle with respect to the light emission surface 130a of the display device 130 attached to the PGU housing 160. The lens 120 arranged on the front side of the light source substrate 110 is also attached to the PGU housing 160 in a state inclined at a certain angle with respect to the light emission surface 130a of the display device 130, similar to the light source substrate 110.
[0079] FIG. 8 is a cross-sectional view of the image generating device 24 taken along line BB shown in FIG. 4, that is, a cross-sectional view of the fixed image generating section 24B in the image generating device 24. As shown in FIG. As shown in FIG. 8, the fixed image generating unit 24B has a light source substrate 510 on which a light source 511 is mounted, a lens 520 arranged in front of the light source 511, a diffusion plate 530 arranged in front of the lens 520, and a shading member 540 arranged in front of the diffusion plate 530.
[0080] The light source 511 is, for example, a laser light source or an LED light source, similar to the light source 111. The light source board 510 is, for example, a printed board made of an insulator with electrical circuit wiring printed on the surface or inside of the board. The lens 520 is formed in a predetermined shape that can improve the utilization efficiency of the light emitted from the light source 511. The lens 520 is configured to transmit or reflect the light emitted from the light source 511 and uniformly emit the light toward the diffusion plate 530. Note that, instead of using the lens 520, at least one of a prism, a diffusion plate, a magnifying glass, a reflector, etc. may be used. The diffusion plate 530 is, for example, formed so as to provide fine steps for diffusing light on the front surface of a synthetic resin film. Alternatively, the diffusion plate 530 may be composed of, for example, a film to which a light diffusing agent for diffusing light is added. The light shielding member 540 is, for example, composed of a synthetic resin film and a light shielding film (shade) formed on at least one surface of the synthetic resin film.
[0081] The diffusion plate 530 is attached to the PGU housing 160 so as to be parallel to the light exit surface 130a of the display device 130 attached to the PGU housing 160. Furthermore, the diffusion plate 530 is attached to the PGU housing 160 so as to be parallel to the light exit surface 130a of the display device 130 attached to the PGU housing 160. In this embodiment, the diffusion plate 530 is attached to the PGU housing 160 so as to be parallel to the light exit surface 130a of the display device 130 in the left-right direction.
[0082] As shown in FIG. 3, the circuit board 170 of the image generating device 24 is attached to the PGU housing 160 so as to be disposed between the heat sink 150 and the rear cover 180. The circuit board 170 is formed with a plurality of mounting holes 171 for mounting the circuit board 170 to the PGU housing 160. In this embodiment, the mounting holes 171 are formed at opposite corners of the rectangular circuit board 170. The PGU housing 160 is formed with a boss 161 for mounting the circuit board 170. The boss 161 is formed so as to protrude toward the rear of the PGU housing 160. The circuit board 170 is screwed to the boss 161 of the PGU housing 160 by a mounting screw 172 through the mounting hole 171.
[0083] The boss 161 is formed so as to be perpendicular to the inclined surface 153a of the fixing protrusion 153 of the heat sink 150 attached to the PGU housing 160. Therefore, the circuit board 170 attached to the boss 161 is attached to the PGU housing 160 so as to be parallel to the inclined surface 153a of the fixing protrusion 153 of the heat sink 150, that is, so as to be inclined with respect to the attachment surface 151a of the radiator attachment portion 151 of the heat sink 150. As a result, the circuit board 170 is attached at a certain interval from the fins 154 for heat dissipation formed on the inclined back surface 153a1 of the fixing protrusion 153 so as not to come into contact with the fins 154. The circuit board 170 is connected to the changing image generating unit 24A and the fixed image generating unit 24B via the FPC 131. The display device 130 and the light source boards 110, 210, etc. are controlled by the control unit 25 mounted on the circuit board 170.
[0084] 3, rear cover 180 of image generation device 24 is attached to PGU housing 160 so as to cover the rear of circuit board 170, with circuit board 170 attached to the rear side of heat sink 150. Rear cover 180 has rear portion 181 and side portion 182 that rises forward from rear portion 181.
[0085] The rear portion 181 is formed with mounting holes 183 (an example of engagement holes) for mounting the rear cover 180 to the PGU housing 160. The area of the rear portion 181 where the mounting holes 183 are formed is formed to form recesses 184 recessed toward the mounting direction (forward direction) of the rear cover 180 to the PGU housing 160, relative to other areas of the rear portion 181. In this embodiment, the recesses 184 are formed at the four corners of the rear portion 181 having a rectangular shape. The PGU housing 160 is formed with bosses 162 for mounting the rear cover 180. The bosses 162 are formed to protrude from the PGU housing 160 toward the rear cover 180 (rearward). The rear cover 180 is screwed to the bosses 162 of the PGU housing 160 by mounting screws 185 through the mounting holes 183.
[0086] The boss 162 is formed so as to be perpendicular to the mounting surface 151a of the heat sink mounting portion 151 of the heat sink 150 attached to the PGU housing 160. The region in which the recess 184 is formed in the rear portion 181 of the rear cover 180 is formed so as to be parallel to the mounting surface 151a of the heat sink mounting portion 151 of the heat sink 150 when the rear cover 180 is attached to the PGU housing 160. In contrast, the region other than the recess 184 in the rear portion 181 of the rear cover 180, i.e., in this embodiment, the region other than the four corners of the rear portion 181, is formed so as to be parallel to the inclined surface 153a of the fixing protrusion 153 of the heat sink 150 when the rear cover 180 is attached to the PGU housing 160.
[0087] For this reason, when rear cover 180 is attached to PGU housing 160, the area of rear portion 181 where recess 184 is formed is screwed in a direction perpendicular to boss 162 of PGU housing 160. On the other hand, the area of rear portion 181 of rear cover 180 other than recess 184 is attached so as to be parallel to the rear surface of circuit board 170 when rear cover 180 is attached to PGU housing 160.
[0088] As described above, the image generating device 24 according to this embodiment includes the light source substrate 110 on which the light source 111 is mounted, the lens 120 that transmits the light emitted from the light source 111, the display device 130 that forms light for generating a predetermined image by the light transmitted through the lens 120, the heat sink 150 that dissipates heat generated from the light source substrate 110, and the lens holder 140 that holds the lens 120. The lens holder 140 has a plurality of mounting holes 142 (first engagement portion), and the heat sink 150 has a plurality of mounting holes 152 (second engagement portion) provided at positions corresponding to the plurality of mounting holes 142. By fixing each of the plurality of mounting holes 142 to each of the plurality of mounting holes 152, the light source substrate 110 is positioned and fixed in a state in which it is sandwiched between the lens holder 140 and the heat sink 150 and accommodated in the space 148 formed between the plurality of mounting holes 142. According to this configuration, compared to the case where mounting holes similar to mounting holes 142, 152 formed in lens holder 140 and heat sink 150 are formed in light source substrate 110 and these mounting holes are fixed together, there is no need to form mounting holes in light source substrate 110. Therefore, the size of light source substrate 110 can be reduced, and the manufacturing cost of light source substrate 110 in image generating device 24 can be reduced.
[0089] In the image generating device 24, the lens holder 140 has a pair of mounting surfaces 141a parallel to the light exit surface 130a of the display device 130, and an inclined surface 143a formed between the pair of mounting surfaces 141a and inclined with respect to the pair of mounting surfaces 141a. The pair of mounting surfaces 141a are each provided with a mounting hole 142. The inclined surface 143a is provided with an opening 144 and a frame portion 145 surrounding the periphery of the opening 144. Then, the light source substrate 110 is attached to the frame portion 145, so that the light source 111 is disposed within the opening 144. According to this configuration, the light exit surface of the light source 111 is inclined with respect to the light exit surface 130a of the display device 130. Therefore, it is possible to suppress the reflection of external light on the light exit surface 130a of the display device 130 to become stray light, and to suppress the adverse effect on the virtual image. In addition, it is possible to prevent the reflected light of the light emitted from the light source 111 from directly entering the light source 111. Furthermore, by sandwiching and fixing the light source substrate 110 between the lens holder 140 and the heat sink 150 as in this configuration, the light source 111 can be easily assembled with the light emission surface of the light source 111 inclined relative to the light emission surface 130a of the display device 130.
[0090] In the image generating device 24, the light source substrate 110 has at least one hole 112, and at least one pin 147 that can be inserted into the at least one hole 112 protrudes from the frame 145. Therefore, the light source substrate 110 can be accurately positioned with a simple configuration in which the light source substrate 110 is sandwiched between the lens holder 140 and the heat sink 150 and at least one pin 147 is inserted into the at least one hole 112.
[0091] In the image generating device 24, the heat sink 150 has a pair of mounting surfaces 151a parallel to the pair of mounting surfaces 141a of the lens holder 140 and each of which has a plurality of mounting holes 152 formed therein, and an inclined surface 153a formed between the pair of mounting surfaces 151a and parallel to the inclined surface 143a of the lens holder 140. The light source substrate 110 is accommodated in a space 148 formed between the inclined surface 143a and the inclined surface 153a. In this way, the heat sink 150 has the mounting surface 151a and the inclined surface 153a having different inclinations, so that the light source substrate 110, which needs to have an inclination different from that of the light emission surface 130a of the display device 130, can be stably held in a state in which the light source substrate 110 has a different inclination between the lens holder 140 and the heat sink 150.
[0092] The image generating device 24 further includes a PGU housing 160 capable of mounting the display device 130. The lens holder 140 and the heat sink 150 are attached to the PGU housing 160 by mounting screws 155 through a plurality of mounting holes 142 and a plurality of mounting holes 152. Therefore, the miniaturized light source board 110 can be fixed by being sandwiched between the lens holder 140 and the heat sink 150 with a simple configuration.
[0093] The image generating device 24 further includes a circuit board 170 that controls at least the display device 130, and a rear cover 180 that covers the rear surface of the PGU housing 160. The circuit board 170 is attached to the PGU housing 160 so as to be disposed between the heat sink 150 and the rear cover 180, and the rear cover 180 is attached to the PGU housing 160. This allows the circuit board 170, on which a circuit for controlling the display device 130 is mounted, to be unitized. This improves the ease of assembly compared to when the image generating device 24 and the circuit board 170 are separately assembled to the HUD main body 21. Furthermore, by previously assembling and fixing the circuit board 170 to the PGU housing 160, the connection work of the FPC 131 that connects the circuit board 170 and the display device 130 is facilitated. Furthermore, the length of the FPC 131 can be shortened compared to when the image generating device 24 and the circuit board 170 are separately assembled to the HUD main body 21, which leads to cost reduction.
[0094] In the image generating device 24, the rear cover 180 includes a rear portion 181 and a side portion 182 rising from the rear portion 181, and the rear portion 181 is formed with at least one mounting hole 183 that can be screwed to a boss 162 that protrudes from the PGU housing 160 toward the rear cover 180. The area in which the at least one mounting hole 183 is formed is recessed toward the mounting direction of the rear cover 180 to the PGU housing 160 more than other areas of the rear portion 181. This allows the distance from the area in which the mounting hole 183 of the rear cover 180 is formed to the boss 162 of the PGU housing 160 to be shortened, and the length of the mounting screw 185 and the boss 162 for mounting the PGU housing 160 to the rear cover 180 to be as short as possible.
[0095] Furthermore, in the image generating device 24, the light source substrate 110 of the variable image generating section 24A is disposed at a certain angle inclined with respect to the light exit surface 130a (an example of a first light exit surface) of the display device 130. Moreover, the diffusion plate 230 (an example of a second light exit surface) of the fixed image generating section 24B is a surface parallel to the light exit surface 130a. With this configuration, the fixed image generated by the fixed image generating section 24B can be appropriately generated by adding it to the variable image generated by the variable image generating section 24A. Therefore, the image display range can be expanded by adding the image of the fixed image generating section 24B without enlarging the variable image generating section 24A, which is expensive. Furthermore, since the light source substrate 110 is disposed so that the light exit surface of the light source 111 is inclined with respect to the light exit surface 130a of the display device 130, it is possible to suppress the reflected light from the outside light and the emitted light from the light source 111 being reflected by the display device 130, which adversely affects the generation of the image.
[0096] However, if the light exit surfaces of the variable image generating section 24A and the fixed image generating section 24B are not parallel, it is necessary to adjust the reflecting surface by providing a step portion in the concave mirror, and the deposition process for forming a reflecting film by depositing aluminum or the like on the concave mirror may become complicated. In contrast, according to the image generating device 24 of this embodiment, the light exit surface 130a of the variable image generating section 24A and the diffusion plate 230, which is the light exit surface of the fixed image generating section 24B, are parallel, so that the concave mirror 26 can be configured as a single continuous surface without a complex configuration. This simplifies the deposition process.
[0097] In the image generating device 24, the diffusion plate 230 of the fixed image generating unit 24B is attached to the PGU housing 160 so as to be parallel to the light exit surface 130a of the display device 130 of the changing image generating unit 24A attached to the PGU housing 160. Therefore, the light exit surface 130a of the display device 130 of the changing image generating unit 24A and the diffusion plate 230 of the fixed image generating unit 24B can be kept parallel with a simple configuration.
[0098] The HUD 20 of this embodiment includes the image generating device 24 configured as described above, and at least one concave mirror 26 (an example of a reflecting section) that reflects light so that the light emitted by the image generating device 24 is irradiated onto the windshield 18. This reduces the manufacturing cost of the image generating device 24 in the HUD 20. Furthermore, it is possible to provide a HUD 20 that can expand the image display range at low cost and suppress the adverse effect of external light or reflected light on the generation of a virtual image.
[0099] Second Embodiment Hereinafter, a HUD according to the second embodiment will be described with reference to Fig. 9 to Fig. 19. Fig. 9 is a block diagram of a vehicle system equipped with a HUD according to the second embodiment. Fig. 10 is a schematic diagram showing the configuration of a HUD according to the second embodiment. In the second embodiment, the same components as those in the first embodiment are denoted by the same reference numerals, and the description thereof will be omitted.
[0100] 9, the HUD 1020 includes an image generating device 1024 and a control unit 25. The image generating device 1024 has a changing image generating unit 24A and a fixed image generating unit 24B. Note that, in the HUD 1020 of the second embodiment, the image generating device 1024 and the control unit 25 are provided separately, but the control unit 25 may be provided within the image generating device 1024, similar to the HUD 20 of the first embodiment (FIG. 1).
[0101] 10, the HUD 1020 includes a HUD main body 21. The HUD main body 21 includes a main body housing 22 and an exit window 23. The exit window 23 is made of a transparent plate that transmits visible light. The HUD main body 21 includes, inside the main body housing 22, an image generating device 1024 (an example of an image generating unit), a concave mirror 26 (an example of a reflecting mirror), a rotation mechanism 27 for rotating the concave mirror 26, and a plane mirror 28.
[0102] The image generating device 1024 is installed in the main housing 22 so as to emit light upward. The plane mirror 28 is disposed on the optical path of the light emitted from the image generating device 1024. Specifically, the plane mirror 28 is disposed above the image generating device 1024 and configured to reflect the light emitted from the image generating device 1024 towards the concave mirror 26.
[0103] The concave mirror 26 is disposed on the optical path of the light emitted from the image generating device 1024 and reflected by the plane mirror 28. Specifically, the concave mirror 26 is disposed in front of the image generating device 1024 and the plane mirror 28 inside the main body housing 22. The concave mirror 26 is configured to reflect the light emitted from the image generating device 1024 toward the windshield 18 (e.g., the front window of the vehicle 1). The concave mirror 26 has a reflective surface that is curved concavely to form a predetermined image, and reflects the image of the light emitted from the image generating device 1024 and formed at a predetermined magnification.
[0104] The rotation mechanism 27 is configured to be able to change the orientation of the concave mirror 26 by rotating the concave mirror 26. The rotation mechanism 27 is housed in the main body housing 22 so as to be parallel to the image generating device 1024 in the left-right direction. A detailed configuration of the main body housing 22 will be described later with reference to Figs. 17 to 19. The rotation mechanism 27 is connected to the control unit 25 (see Fig. 9), and rotates the concave mirror 26 based on a control signal transmitted from the control unit 25. The rotation mechanism 27 may also be connected to a control unit outside the HUD main body 21. The position of the concave mirror 26 may be changed by the rotation mechanism 27 or another member.
[0105] The light emitted from the image generating device 1024 is reflected by the plane mirror 28 and the concave mirror 26 and emitted from the exit window 23 of the HUD main body 21. The light emitted from the exit window 23 of the HUD main body 21 is irradiated onto the windshield 18. A part of the light irradiated from the exit window 23 onto the windshield 18 is reflected toward the viewpoint E of the occupant. As a result, the occupant recognizes the light emitted from the HUD main body 21 as a virtual image (predetermined image) formed at a predetermined distance in front of the windshield 18. In this way, the image displayed by the HUD 1020 is superimposed on the real space in front of the vehicle 1 through the windshield 18, so that the occupant can visually recognize the virtual image object I formed by the predetermined image as floating above the road located outside the vehicle 1.
[0106] Fig. 11 is a perspective view showing the image generating device 1024, concave mirror 26, and rotation mechanism 27 with the main body housing 22 of the HUD 1020 removed. In Fig. 11, the plane mirror 28 is omitted. Fig. 12 is a perspective view of the concave mirror 26 as seen from the front surface (reflective surface) side. Fig. 13 is a view of the concave mirror 26 as seen from above. Fig. 14 is a view of the concave mirror 26 as seen from the left side.
[0107] 11, the image generating device 1024 of this example has a changing image generating unit 24A and a pair of fixed image generating units 24B, 24B arranged in parallel in the left-right direction so as to sandwich the changing image generating unit 24A. The light exit surface of the changing image generating unit 24A and the light exit surfaces of the pair of fixed image generating units 24B, 24B are arranged facing upward so as to emit light to a plane mirror 28 (see FIG. 10) arranged above the image generating device 1024.
[0108] As shown in FIG. 11 to FIG. 14, the concave mirror 26 can rotate about a rotation axis D extending in the left-right direction. The concave mirror 26 has a main body 31, a first protruding portion 33, a second protruding portion 34, a first shaft portion 35, and a second shaft portion 36. The main body 31 is formed in a plate shape. In this embodiment, the main body 31 is formed in a horizontally long rectangular plate shape, for example. The main body 31 is made of a resin such as polycarbonate. The main body 31 has a first surface 261 (an example of a reflecting surface) on which the reflective film 32 is formed, and a second surface 262 on the opposite side of the first surface 261 (the back surface side of the main body 31). The first surface 261 is formed in a concave shape, and the second surface 262 is formed in a convex shape. The concave mirror 26 is disposed so that the concave first surface 261 faces the image generating device 1024 and the plane mirror 28.
[0109] The main body 31 has four faces between the first face 261 and the second face 262, namely, a first end face 263, a second end face 264, a third end face 265, and a fourth end face 266. The second end face 264 is located on the opposite side of the first face 261 from the first end face 263. The fourth end face 266 is located on the opposite side of the first face 261 from the third end face 265. The first end face 263 to the fourth end face 266 are formed so that their areas are smaller than the area of the first face 261. The first end face 263 and the second end face 264 are formed so that their areas are smaller than the areas of the third end face 265 and the fourth end face 266. That is, the third end face 265 and the fourth end face 266 constitute the end faces of the horizontally elongated rectangular main body 31 in the longitudinal direction A (the direction of the arrow A in FIG. 12 and FIG. 13). The first end surface 263 and the second end surface 264 constitute end surfaces in the short-side direction B (the direction of the arrow B in FIGS. 12 and 14) of the main body portion 31 having a horizontally elongated rectangular shape.
[0110] The reflective film 32 is formed on the surface of the first surface 261 of the main body 31. The reflective film 32 is made of a material that reflects light. The reflective film 32 is formed, for example, by depositing a metal such as aluminum on the surface of the first surface 261 of the main body 31. Note that instead of forming the reflective film 32 on the first surface 261 by aluminum deposition or the like, the main body 31 itself may be made of a white resin material that can reflect light.
[0111] The first protrusion 33 is a plate-like member formed at the end of the main body 31 on the first end surface 263 side. The first protrusion 33 is provided so as to be continuous with the first end surface 263 of the main body 31 and to protrude from the first surface 261 toward the second surface 262 side. The tip of the first protrusion 33 is located at a position different from the first end surface 263 in the direction along the rotation axis D and on the opposite side of the first surface 261, which is a reflecting surface, that is, outside the first end surface 263. Specifically, the first protrusion 33 is provided so as to extend in a direction inclined by an angle θ1 toward the outside from a direction C (the direction of the arrow C in FIG. 13 and FIG. 14 ) perpendicular to the longitudinal direction A and the lateral direction B of the main body 31. The angle θ1 is, for example, 15 degrees.
[0112] As shown in Fig. 14, the first protruding portion 33 has a first continuous surface 231 continuous with the first end surface 263. The first continuous surface 231 is formed in a so-called flared shape, in which the width in the short direction B of the main body portion 31 increases as it approaches the first end surface 263. The inclinations on both sides of the flared first continuous surface 231 are formed so that the inclination angle θ2 is, for example, 15 degrees or more with respect to the direction C in which the first protruding portion 33 protrudes substantially perpendicularly from the first end surface 263. The inclinations on both sides of the first continuous surface 231 are formed so that the rising portions 232 rising from the first end surface 263 are formed in an arc shape.
[0113] The second protrusion 34 is a plate-like member formed at the end of the main body 31 on the second end surface 264 side. The second protrusion 34 is provided so as to protrude from the first surface 261 toward the second surface 262 side so as to be continuous with the second end surface 264 of the main body 31. The tip of the second protrusion 34 is located at a position different from the second end surface 264 in the direction along the rotation axis D and on the opposite side to the first surface 261 which is a reflecting surface, that is, outside the second end surface 264. The second protrusion 34 is provided so as to extend in a direction inclined by an angle θ1 from the direction C toward the outside, similar to the first protrusion 33.
[0114] The second protruding portion 34 has a second continuous surface 241 that is continuous with the second end surface 264. Similar to the first continuous surface 231, the second continuous surface 241 is formed in a flared shape that widens in width in the short direction B of the main body portion 31 as it approaches the second end surface 264. The shape of the second continuous surface 241 is similar to that of the first protruding portion 33, and therefore is not shown in the drawings.
[0115] The first shaft portion 35 is provided on the first continuous surface 231 of the first protruding portion 33, i.e., on the surface opposite to the surface facing the second protruding portion 34. The first shaft portion 35 is formed so as to extend from the first continuous surface 231 to the opposite side to the main body portion 31, i.e., toward the left outward direction along the rotation axis D. The first shaft portion 35 has a fitting shaft portion 35a and a fitting target shaft portion 35b that is an object with which the fitting shaft portion 35a fits. The fitting shaft portion 35a is formed integrally with the first protruding portion 33 and is formed continuously from the first continuous surface 231. On the other hand, the fitting target shaft portion 35b is a part separate from the main body portion 31, and is attached to the main body portion 31 by fitting with the fitting shaft portion 35a.
[0116] The fitting shaft portion 35a is formed in a D-shape with a part of the outer circumferential surface cut out. The fitting target shaft portion 35b is formed in a circular outer surface. The diameter of the fitting shaft portion 35a is formed smaller than the diameter of the fitting target shaft portion 35b. The fitting target shaft portion 35b has a fitting hole into which the fitting shaft portion 35a fits. Although not shown, the fitting hole of the fitting target shaft portion 35b is D-shaped like the fitting shaft portion 35a, and is formed to have a diameter of approximately the same size as that of the fitting shaft portion 35a. The fitting target shaft portion 35b is attached to the main body portion 31 by fitting with the fitting shaft portion 35a, and constitutes the first shaft portion 35 together with the fitting shaft portion 35a. The first shaft portion 35 functions as a shaft portion for rotating the main body portion 31 around the rotation axis D.
[0117] The second shaft portion 36 is provided on the second continuous surface 241 of the second protruding portion 34, i.e., the surface opposite to the surface facing the first protruding portion 33. The second shaft portion 36 is formed so as to extend from the second continuous surface 241 along the rotation axis D toward the opposite side to the main body portion 31, i.e., toward the right outward. The second shaft portion 36 is formed in a cylindrical shape. The diameter of the second shaft portion 36 is formed so as to be approximately the same as the diameter of the fitting target shaft portion 35b of the first shaft portion 35. The second shaft portion 36 functions as a shaft portion for rotating the main body portion 31 around the rotation axis D together with the first shaft portion 35.
[0118] 13, the first shaft portion 35 and the second shaft portion 36 are disposed so that their rotation axes D pass through the first surface 261 side of the apex P of the convex second surface 262, which is the back surface side of the main body portion 31. Alternatively, the first shaft portion 35 and the second shaft portion 36 may be disposed so as to be in contact with the apex P.
[0119] Fig. 15 is a perspective view of concave mirror 26 and rotation mechanism 27 attached to concave mirror 26, as viewed from the front surface side of concave mirror 26. Fig. 16 is a side view of the state shown in Fig. 15. As shown in FIGS. 15 and 16, the rotation mechanism 27 includes a fitting target shaft portion 35b, an arm portion 251, and a drive portion 252. As shown in FIG.
[0120] The fitting target shaft portion 35b is a part of the first shaft portion 35 constituting the concave mirror 26 described above. The fitting target shaft portion 35b extends along the rotation axis D in a state where it is fitted with the fitting shaft portion 35a of the concave mirror 26. The fitting target shaft portion 35b has a flange 271 at an end portion on the first protruding portion 33 side of the main body portion 31. The flange 271 is provided so as to protrude in the radial direction on the outer periphery of the fitting target shaft portion 35b. In this embodiment, the disk-shaped flange 271 is provided around the entire circumference of the fitting target shaft portion 35b.
[0121] The arm 251 is a plate-like member extending from the fitting target shaft portion 35b toward the driving portion 252. One end of the arm 251 is integrally formed with the fitting target shaft portion 35b. The driving portion 252 is attached to the other end of the arm 251. The driving portion 252 is composed of, for example, a worm gear and a DC motor. The driving portion 252 has an extendable shaft portion 253, and operates the arm 251 by the extension and contraction of the shaft portion 253. The rotation mechanism 27 rotates the concave mirror 26 around the rotation axis D by moving the arm 251 in a direction along the radial direction of the fitting target shaft portion 35b (first shaft portion 35) by the driving portion 252. This changes the orientation of the first surface 261, which is the reflective surface of the concave mirror 26.
[0122] Fig. 17 is a perspective view showing a state in which the concave mirror 26 and the rotation mechanism 27 are housed in the main body housing 22. Fig. 18 is a perspective view of the main body housing 22 in a state in which the concave mirror 26 and the rotation mechanism 27 have been removed. Fig. 19 is a side view of the main body housing 22 in the state shown in Fig. 18. As shown in Figures 17 to 19, the main housing 22 has a first accommodating portion 310 capable of accommodating the first axis portion 35 of the concave mirror 26, a second accommodating portion 320 capable of accommodating the second axis portion 36 of the concave mirror 26, and a regulating portion 360 for regulating the movement of the concave mirror 26.
[0123] The first accommodating portion 310 is disposed at the left end of the main body housing 22, and the second accommodating portion 320 is disposed at the right end of the main body housing 22. The restricting portion 360 is provided between the first accommodating portion 310 and the second accommodating portion 320. In other words, the first accommodating portion 310, the second accommodating portion 320, and the restricting portion 360 are provided side by side on a straight line in the left-right direction of the main body housing 22.
[0124] In this example, the first accommodating portion 310 is provided on the left side wall 340 of the main housing 22. The first accommodating portion 310 has a circular hole 311 in which the first shaft portion 35 is accommodated, and a deformed portion 312 provided diagonally above and on the front side of the hole 311 so as to form a part of the shape of the hole 311. The hole 311 accommodates the mating target shaft portion 35b of the first shaft portion 35. The mating target shaft portion 35b is accommodated with its tip end accommodated in the hole 311 and its tip surface 272 exposed to the outside of the first accommodating portion 310 from the hole 311.
[0125] The deformation portion 312 is defined in a substantially rectangular shape by a pair of slits 313a, 313b provided in the left side wall 340 of the main housing 22. The pair of slits 313a, 313b are provided so as to continue to the hole 311. In other words, one end of the deformation portion 312 continues to the left side wall 340 of the main housing 22, and the other end forms part of the shape of the hole 311. The deformation portion 312 is elastically deformable and is configured to be easily deformed in the left-right direction of the main housing 22.
[0126] The second accommodating portion 320 has a recess 321 in which the second shaft portion 36 is accommodated. The recess 321 is formed to have the same diameter as the second shaft portion 36 or a diameter slightly larger than the second shaft portion 36 so that the accommodated second shaft portion 36 can rotate within the recess 321. The recess 321 of the second accommodating portion 320 is formed, for example, in a substantially U-shape having an opening through which the second shaft portion 36 can be inserted and removed.
[0127] The restricting portion 360 is formed in a plate shape and is provided so as to extend in substantially the same direction as the extending direction of the pair of slits 313a, 313b. The restricting portion 360 is provided at a position close to the first accommodating portion 310 between the first accommodating portion 310 and the second accommodating portion 320. The restricting portion 360 has a recess 361 capable of accommodating the first shaft portion 35. The recess 361 accommodates the fitting target shaft portion 35b of the first shaft portion 35 in the same manner as the first accommodating portion 310. The recess 361 is formed to have the same diameter as the fitting target shaft portion 35b or a diameter slightly larger than the fitting target shaft portion 35b so that the accommodated fitting target shaft portion 35b can rotate within the recess 361. The recess 361 of the restricting portion 360 is formed, for example, in a substantially U-shape having an opening through which the fitting target shaft portion 35b can be inserted and removed. The fitting target shaft portion 35b is accommodated in the recess 361 such that the flange 271 provided on the first protruding portion 33 side is disposed inside the restricting portion 360 (the side closer to the second accommodating portion 320). When the concave mirror 26 is accommodated in the main body housing 22, i.e., when the fitting target shaft portion 35b is accommodated in the recess 361 of the restricting portion 360, the flange 271 of the fitting target shaft portion 35b abuts against the restricting portion 360, whereby the restricting portion 360 restricts the movement of the concave mirror 26 in the direction toward the first accommodating portion 310 side (leftward).
[0128] The concave mirror 26 is attached to the main housing 22 as follows. First, the worker inserts the second shaft portion 36 of the concave mirror 26 into the recess 321 of the second accommodation portion 320 of the main housing 22 to accommodate the second shaft portion 36 in the recess 321. Next, the worker accommodates the fitting target shaft portion 35b in the recess 361 of the restricting portion 360 so that the flange 271 of the fitting target shaft portion 35b is disposed inside the restricting portion 360. Furthermore, the worker uses the tip end of the fitting target shaft portion 35b to push the deformation portion 312 of the first accommodation portion 310 of the main housing 22 outward (leftward) of the main housing 22 to elastically deform the deformation portion 312, and moves the end of the fitting target shaft portion 35b to the hole portion 311 of the first accommodation portion 310. By moving the end of the fitting target shaft portion 35b into the hole portion 311, the deformed portion 312 that was pushed outward from the main body housing 22 returns to its original shape and is disposed in front of the hole portion 311 so as to form part of the shape of the hole portion 311. The fitting target shaft portion 35b is accommodated in the hole portion 311 with its tip surface 272 exposed from the hole portion 311 to the outside of the first accommodating portion 310. As a result, the concave mirror 26 is accommodated in the main body housing 22 while being positioned relative to the main body housing 22, and is capable of rotating about the rotation axis D.
[0129] The rotation mechanism 27 is housed behind the first shaft portion 35 of the concave mirror 26, i.e., at the rear left end portion of the main body housing 22. The arm portion 251 of the rotation mechanism 27 is disposed between the first housing portion 310 (left side wall 340) and the restriction portion 360. The drive portion 252 of the rotation mechanism 27 is disposed at the side of the PGU housing portion 350 in which the image generation device 1024 (PGU) is housed, specifically, at the left side of the PGU housing portion 350.
[0130] As described above, the concave mirror 26 according to the second embodiment is rotatable about the rotation axis D, and includes a plate-shaped main body 31 having a first surface 261, a first end surface 263, and a second end surface 264 on which a reflective film 32 that reflects light is formed, a plate-shaped first protruding portion 33 that protrudes from the first end surface 263 toward a second surface 262 that is the back surface of the first surface 261, and a plate-shaped second protruding portion 34 that protrudes from the second end surface 264 toward the second surface 262. The concave mirror 26 further includes a first shaft portion 35 provided on the first protruding portion 33 and a second shaft portion 36 provided on the second protruding portion 34 in order to rotate the main body 31 about the rotation axis D. The tip of the first protruding portion 33 is located at a position different from the first end surface 263 in the direction along the rotation axis D and on the opposite side to the first surface 261. Similarly, the tip of the second protrusion 34 is located at a position different from the second end surface 264 in the direction along the rotation axis D and on the opposite side to the first surface 261. According to this configuration, the first protrusion 33 and the second protrusion 34, which respectively protrude from both ends of the main body 31 toward the second surface 262, extend in a direction inclined outward from the main body 31, making it easy to manufacture the concave mirror 26 by molding. Therefore, a large-sized concave mirror 26 can be molded in one part using a mold. Therefore, the moldability of the concave mirror 26 can be improved. Furthermore, according to this configuration, when the concave mirror 26 is attached to the main body housing 22, the gap between the main body 31 and the main body housing 22 is sufficiently secured by the first protrusion 33 and the second protrusion 34, which are inclined outward. Therefore, even when the concave mirror 26 is rotated, the main body 31 does not directly come into contact with the main body housing 22, so that the reflective film 32 formed on the first surface 261 of the main body 31 can be prevented from being damaged by contact with the main body housing 22.
[0131] In the concave mirror 26 of the second embodiment, the first surface 261 is formed in a concave shape, and the first shaft portion 35 and the second shaft portion 36 are arranged so that the rotation axis D of the first shaft portion 35 and the second shaft portion 36 contacts the apex P on the back side of the concave first surface 261 or passes through the front side of the apex P. In this way, by increasing the curvature rate of the main body portion 31, the surface area of the curved first surface 261 becomes larger than the surface area of the first surface when the distance between the first shaft portion 35 and the second shaft portion 36 is the same as that of this example and the main body portion is flat. This makes it possible to increase the effective area of light reflected by the concave mirror 26.
[0132] In the concave mirror 26 of the second embodiment, the fitting shaft portion 35a of the first shaft portion 35 is formed in a D-shape with a portion of the outer circumferential surface cut out. This makes it possible to easily regulate the rotation direction of the fitting shaft portion 35a and the fitting target shaft portion 35b when the fitting shaft portion 35a is fitted into the fitting target shaft portion 35b that is the fitting target of the rotation mechanism 27. This makes it possible to smoothly rotate the fitting shaft portion 35a of the concave mirror 26 by the rotation mechanism 27, and to accurately adjust the position and angle of the concave mirror 26.
[0133] In the concave mirror 26 of the second embodiment, the first continuous surface 231 continuing with the first end surface 263 of the first protruding portion 33 and the second continuous surface 241 continuing with the second end surface 264 of the second protruding portion 34 are formed in a flared shape that widens toward the first end surface 263 and the second end surface 264, respectively. Specifically, the inclination of both sides of each of the first continuous surface 231 and the second continuous surface 241 is preferably 15 degrees or more with respect to the direction C. This configuration makes it possible to ensure the draft angle of the mold when molding the concave mirror 26. In addition, the strength of the first protruding portion 33 and the second protruding portion 34 can be increased by widening the bottom portions of the first protruding portion 33 and the second protruding portion 34 continuing with the first end surface 263 and the second end surface 264.
[0134] In the concave mirror 26 of the second embodiment, the portion of the first protruding portion 33 rising from the first end face 263 and the portion of the second protruding portion 34 rising from the second end face 264 are formed to have an arc shape. Therefore, when the concave mirror 26 is molded, the generation of burrs in the rising portions of the first protruding portion 33 and the second protruding portion 34 can be suppressed.
[0135] Furthermore, the HUD 1020 according to the second embodiment includes an image generating device 1024 (an example of an image generating unit) that emits light for generating a predetermined image, a concave mirror 26 (an example of a reflecting unit) that reflects the light emitted by the image generating device 1024 so that the light is irradiated onto the windshield, and a main body housing 22 that accommodates the image generating device 1024 and the concave mirror 26. The concave mirror 26 has a main body 31, a first shaft portion 35 that protrudes outward from one end of the main body 31, and a second shaft portion 36 that protrudes outward from the other end of the main body 31. The first shaft portion 35 and the second shaft portion 36 are both attached to the main body housing 22. Furthermore, the main body housing 22 has at least a first housing portion 310 that can accommodate an end portion of the first shaft portion 35, and a tip surface 372 of the end portion of the first shaft portion 35 is exposed to the outside from the first housing portion 310. According to this configuration, it is possible to reduce the number of parts because the first shaft portion 35 and the second shaft portion 36 of the concave mirror 26 are directly attached to the main body housing 22. This allows the concave mirror 26 to be mounted on the HUD 1020 at low cost and with a simple configuration.
[0136] According to the HUD 1020, the first housing portion 310 has a hole portion 311 and a deformation portion 312 that is defined by a pair of slits 313a, 313b provided continuously with the hole portion 311 and is capable of elastic deformation. The concave mirror 26 is attached to the main body housing 22 by the fitting target shaft portion 35b moving to the hole portion 311 while elastically deforming the deformation portion 312 and being accommodated in the hole portion 311 with the second shaft portion 36 accommodated in the second housing portion 320. Therefore, the fitting target shaft portion 35b can be accommodated in the hole portion 311 by a simple operation of pushing the deformation portion 312 with the end portion of the fitting target shaft portion 35b to elastically deform it, and a part of the outer periphery of the fitting target shaft portion 35b accommodated in the hole portion 311 can be surrounded by the deformation portion 312 that has returned to its original state. This allows the concave mirror 26 accommodated in the main body housing 22 to be reliably positioned and fixed.
[0137] Moreover, according to the HUD 1020, the main body housing 22 has a restricting portion 360 for restricting movement of the concave mirror 26 along a predetermined direction, and the fitting target shaft portion 35b has a flange 271 protruding from its outer periphery. When the concave mirror 26 is accommodated in the main body housing 22, the flange 271 abuts against the restricting portion 360, restricting movement of the concave mirror 26 in one direction. Therefore, rattling of the concave mirror 26 when the concave mirror 26 is attached to the main body housing 22 can be suppressed with a simple configuration.
[0138] Moreover, according to the HUD 1020, the rotation mechanism 27 for rotating the concave mirror 26 is composed of the fitting target shaft portion 35b, an arm portion 251 extending from the fitting target shaft portion 35b along the radial direction of the fitting target shaft portion 35b, and a drive unit 252 connected to the end of the arm portion 251 opposite to the fitting target shaft portion 35b. This allows the drive unit 252 for rotating the concave mirror 26 to be disposed, for example, on the side of the PGU housing portion 350 in which the image generating device 1024 is housed. Therefore, when the concave mirror 26 is attached to the main body housing 22, the rotation mechanism 27 does not get in the way of the attachment work, and the attachment workability of the concave mirror 26 can be improved.
[0139] Furthermore, according to the HUD 1020, the fitting target shaft portion 35b of the first shaft portion 35 is provided as a separate part from the main body portion 31, and can be attached to the fitting shaft portion 35a of the first shaft portion 35 protruding from the end portion of the main body portion 31. Therefore, the reflective film 32 can be aluminum-deposited on the first surface 261 of the main body portion 31 in a state in which the fitting target shaft portion 35b is removed from the main body portion 31, thereby improving workability during aluminum deposition.
[0140] Third embodiment Hereinafter, the concave mirror according to the third embodiment will be described with reference to FIGS. Fig. 20 is a perspective view of a concave mirror 326 according to a third embodiment. As shown in Fig. 20, the concave mirror 326 includes a substrate 330 having a first surface 331 and a second surface 332 located on the opposite side to the first surface 331. In addition to the substrate 330, the concave mirror 326 includes a reflective film 333 formed on the first surface 331 and reflecting light emitted from the image generating device 24. In this embodiment, the first surface 331 and the reflective film 333 are located on the rear side of the substrate 330, and the second surface 332 is located on the front side of the substrate 330.
[0141] The substrate 330 is a member that serves as a base for defining the shape of the concave mirror 326. The substrate 330 is injection molded using a mold, using, for example, polycarbonate resin as a raw material. A metal such as aluminum is deposited on a first surface 331 of the molded substrate 330 to form a reflective film 333. The reflective film 333 is configured to reflect light emitted from the image generating device 24 and irradiate the light toward the windshield 18. Note that, although the material of the substrate 330 is resin in this embodiment, it may be glass.
[0142] The shape of the substrate 330 is rectangular when viewed from the direction in which light emitted from the image generating device 24 enters the substrate 330. In this embodiment, one (upper) long side of the substrate 330 is defined as an upper end 334, the other (lower) long side as a lower end 335, one (right) short side as a right end 336, and the other (left) short side as a left end 337. The entire outer periphery of the substrate 330 includes the upper end 334, the lower end 335, the right end 336, and the left end 337. The reflective film 333 may also be deposited on each end of the substrate 330.
[0143] Fig. 21 is a bottom view of the concave mirror 326. As shown in Fig. 21, the concave mirror 326 has a pair of ribs 338 configured to hold the substrate 330. One rib 338 is provided on the second surface 332 at the right end 336, and the other rib 338 is provided on the second surface 332 at the left end 337. The pair of ribs 338 reinforce the strength of the substrate 330. Although not shown, the concave mirror 326 may be supported by the main body housing 22 via the pair of ribs 338.
[0144] A gate portion 339, which is a resin pouring port when injection molding the substrate 330, is provided at the lower end portion 335 of the substrate 330. In this embodiment, the gate portion 339 is located at the center of the substrate 330 in the left-right direction. In this embodiment, one gate portion 339 is provided at the lower end portion 335, but it may be provided at the upper end portion 334. Furthermore, a gate portion 339 may be provided at each of the upper end portion 334 and the lower end portion 335.
[0145] In the thickness direction of the substrate 330, the shape of the gate portion 339 is, for example, a hexagonal shape extending in the left-right direction. As shown in FIG. 21, the hexagonal shape of the gate portion 339 is composed of a first gate surface 91, a second gate surface 92, a third gate surface 93, a fourth gate surface 94, a fifth gate surface 95, and a sixth gate surface 96. The first gate surface 91 is a surface extending downward from the first surface 331. The second gate surface 92 is a surface extending downward from the second surface 332. The third gate surface 93 is a surface extending from the first gate surface 91 and is a surface that defines the upper left of the hexagonal shape. The fourth gate surface 94 is a surface extending from the second gate surface 92 and is a surface that defines the lower left of the hexagonal shape. The fifth gate surface 95 is a surface extending from the first gate surface 91 and is a surface that defines the upper right of the hexagonal shape. The sixth gate surface 96 extends from the second gate surface 92 and defines the lower right corner of the hexagon.
[0146] All angles defining the hexagonal shape of the gate portion 339 are obtuse angles. In other words, the angle between the first gate surface 91 and the third gate surface 93 is an obtuse angle. The angle between the second gate surface 92 and the fourth gate surface 94 is an obtuse angle. The angle between the first gate surface 91 and the fifth gate surface 95 is an obtuse angle. The angle between the second gate surface 92 and the sixth gate surface 96 is an obtuse angle. The angle between the third gate surface 93 and the fourth gate surface 94 is an obtuse angle. The angle between the fifth gate surface 95 and the sixth gate surface 96 is an obtuse angle. In the present disclosure, an obtuse angle is an angle greater than 90 degrees. The angles defining the hexagonal shape of the gate portion 339 are, for example, 120 degrees.
[0147] Because the gate portion 339 is hexagonal, the resin injection pressure at the corners of the spout is dispersed more uniformly than when the gate portion is square. Therefore, the resin is injected more uniformly. Furthermore, because the angles that define the hexagonal shape of the gate portion 339 are obtuse angles, the areas near these obtuse angles are less likely to cool and solidify during molding and are more likely to shrink during molding than when the angles are acute angles or 90 degrees. Therefore, the areas near these obtuse angles are less likely to experience differences in molding shrinkage compared to areas other than the obtuse angles, and distortion of the gate portion 339 during molding is suppressed.
[0148] Fig. 22 is an enlarged cross-sectional view of the lower end 335 of the concave mirror 326 shown in Fig. 21 in the thickness direction of the substrate 330. The substrate 330 shrinks slightly when it is molded. In Fig. 22, the dashed line shows an imaginary position where the substrate 330 does not shrink during molding, that is, where it has the same size as the mold. The first surface 331 and the second surface 332 are the rear side and the front side of the substrate 330 after it has shrunk during molding.
[0149] 22, at least a part of the lower end 335 has a third surface 343 and a fourth surface 344 between the first surface 331 and the second surface 332. The third surface 343 is a surface extending from the most distal end 341 of the lower end 335 to the first surface 331. The fourth surface 344 is a surface extending from the most distal end 341 of the lower end 335 to the second surface 332. The most distal end 341 is located on the center C1 in the thickness direction of the substrate 330. The third surface 343 and the fourth surface 344 are formed line-symmetrically with respect to the center C1 in the thickness direction of the substrate 330.
[0150] The third surface 343 and the fourth surface 344 are provided on a lower end portion 335 which is one of the long sides of the substrate 330, but in addition to the lower end portion 335, an upper end portion 334 which is the other long side is also formed. The shape of the upper end portion 334 is the same as the shape of the lower end portion 335, so a description thereof will be omitted. Furthermore, the third surface 343 and the fourth surface 344 are formed on at least a portion of the lower end portion 335 other than the gate portion 339, but may also be formed on the gate portion 339.
[0151] Angle θ1 between first surface 331 and third surface 343 is an obtuse angle. Angle θ2 between second surface 332 and fourth surface 344 is an obtuse angle. Angle θ3 between third surface 343 and fourth surface 344 is an obtuse angle. In other words, at least three obtuse angles θ1, θ2, and θ3 are formed in each of upper end 334 and lower end 335 in a cross section in the thickness direction of the substrate.
[0152] Next, injection molding of the substrate 330 will be described. Fig. 23 shows a cross-sectional view of the substrate 330 during molding. As shown in Fig. 23, the resin 50 of the substrate 330 is injected into the cavities of a pair of molds 61 and 62. A parting line P of the pair of molds 61 and 62 coincides with the center C1 of the substrate 330 in the thickness direction.
[0153] In FIG. 23, of the resin 50 injected into the cavity of a pair of molds 61 and 62, the surface corresponding to the first surface 331 of the substrate 330 is surface 51, the surface corresponding to the second surface 332 is surface 52, the surface corresponding to the third surface 343 is surface 53, and the surface corresponding to the fourth surface 344 is surface 54. The pair of molds 61 and 62 are formed such that the angle θ1' between the surface 51 and the surface 53, the angle θ2' between the surface 52 and the surface 54, and the angle θ3' between the surface 53 and the surface 54 are obtuse angles. The angles θ1', θ2', and θ3' correspond to the obtuse angles θ1, θ2, and θ3, respectively. For example, the angles θ1', θ2', and θ3' are each about 120 degrees.
[0154] Resin 50 passes through gate portion 339 and is injected into the cavities of the pair of molds 61 and 62, and is then cooled via the pair of molds 61 and 62. Resin 50 is gradually cooled from the surface in contact with the pair of molds 61 and 62 toward the center. The state of cooling and solidification at this time will be described with reference to a comparative example shown in FIG.
[0155] FIG. 24 is a cross-sectional view of a substrate in which the corners of the substrate end are formed at 90 degrees instead of obtuse angles, as a comparative example. As shown in FIG. 24, resin 50 is injected into the cavity of a pair of molds 61' and 62'. In the cross-sectional view, the angle between adjacent faces of the injected resin 50 is 90 degrees. When the angle is 90 degrees, the two faces that make up the angle are in contact with the mold, so the resin 50 is cooled from both of the two faces. As a result, the corners are cooled and solidified more quickly than other parts, and are less likely to shrink during molding. On the other hand, the other parts are not cooled from two directions, so they are cooled more slowly than the corners, are less likely to solidify, and are more likely to shrink during molding. For this reason, a difference in molding shrinkage occurs between the corners and the other parts, and the substrate may be distorted. When the angle of the corners is an acute angle, the corners are cooled more easily than when the angle is 90 degrees, so that a difference in molding shrinkage is more likely to occur.
[0156] In contrast, in this embodiment, the substrate 330 is molded so that at least three obtuse angles θ1, θ2, and θ3 are formed in the thickness direction cross section of the substrate 330 at least in a part of the end of the substrate 330. For example, the vicinity of the angle θ3' is cooled from both sides of the surface 53 and the surface 54, but since the angle θ3' is an obtuse angle, it is cooled more slowly and is less likely to solidify compared to when the angle is 90 degrees. Similarly, the vicinity of the angle θ1' is cooled from both sides of the surface 51 and the surface 53, and the vicinity of the angle θ2' is cooled from both sides of the surface 52 and the surface 54, but it is cooled more slowly and is less likely to solidify compared to when the angle is 90 degrees. As a result, the vicinity of the angles θ1', θ2', and θ3' is prone to molding shrinkage. Even when comparing the vicinity of the angles θ1', θ2', and θ3' with the portions other than the angles θ1', θ2', and θ3', a difference in molding shrinkage is unlikely to occur.
[0157] Thus, according to the third embodiment, since the surfaces forming at least three obtuse angles θ1, θ2, and θ3 are generated at the lower end 335 of the substrate 330, the vicinity of these obtuse angles is less likely to be cooled and solidified compared to when the angle of the corner portion is an acute angle or 90 degrees. Therefore, distortion of the substrate 330 during molding is suppressed. The concave mirror 26 having the substrate 330 and a concave curved surface can reflect the light emitted from the image generating device 24 while suppressing the influence of the distortion of the substrate 330. In the head-up display 20 having the concave mirror 26, distortion of the displayed image is suppressed. Furthermore, since the third surface 343 and the fourth surface 344 forming the obtuse angles θ1, θ2, and θ3 are generated at the lower end 335, a part of the light emitted from the image generating device 24 is reflected by these third surface 343 and fourth surface 344 in a direction different from the exit window 23. Since the light in the area where distortion is likely to occur during molding is reflected in a different direction, distortion of the displayed image is further suppressed.
[0158] In the third embodiment, three obtuse angles θ1, θ2, and θ3 are generated at an upper end 334 and a lower end 335 corresponding to each long side of a rectangular substrate 330. Therefore, a substrate 330 in which distortion of each of the upper end 334 and the lower end 335 is suppressed can be formed.
[0159] In addition, if the third surface 343 and the fourth surface 344 (the three obtuse angles θ1, θ2, θ3) are not formed line-symmetrically, a portion that is cooled rapidly and another portion that is cooled slowly will be generated in the cross-sectional view of one end surface, and distortion may occur during molding. However, in this embodiment, the third surface 343 and the fourth surface 344 (the three obtuse angles θ1, θ2, θ3) are formed line-symmetrically with respect to the center of the substrate 330 in the thickness direction. Therefore, the resin 50 of the substrate 330 is evenly cooled from the third surface 343 and the fourth surface 344, and distortion of the substrate 330 during molding is further suppressed.
[0160] In the third embodiment, the three obtuse angles θ1, θ2, and θ3 are formed on each long side of the rectangular substrate 330, but the three obtuse angles θ1, θ2, and θ3 may be formed around the entire outer periphery of the substrate 330. That is, the three obtuse angles θ1, θ2, and θ3 may also be formed on the right end 336 and the left end 337 where the pair of ribs 338 are formed. By forming the three obtuse angles θ1, θ2, and θ3 around the entire outer periphery, distortion of the substrate 330 during molding is further suppressed.
[0161] In the third embodiment, three obtuse angles θ1, θ2, and θ3 are formed, but the number of obtuse angles is not limited to three. FIG. 25 shows an enlarged cross-sectional view of a modified example of the lower end portion 335. As shown in FIG. 25, in this modified example, four obtuse angles θ4, θ5, θ6, and θ7 are formed at the lower end portion 335'. Specifically, a fifth surface 345, a sixth surface 346, and a seventh surface 347 are provided between the first surface 331 and the second surface 332. The fifth surface 345 is a surface extending from the first surface 331 to the seventh surface 347. The sixth surface 346 is a surface extending from the second surface 332 to the seventh surface 347. The seventh surface 347 is a surface extending from the fifth surface 345 to the sixth surface 346. The fifth surface 345, the sixth surface 346, and the seventh surface 347 are formed symmetrically with respect to the center C1 in the thickness direction of the substrate 330. The fifth surface 345, the sixth surface 346, and the seventh surface 347 are provided on a bottom end 335' which is one of the long sides of the substrate 330, but in addition to the bottom end 335', they are also formed on the other long side, that is, an upper end 334'. Furthermore, the fifth surface 345, the sixth surface 346, and the seventh surface 347 may be formed around the entire outer periphery of the substrate 330.
[0162] Angle θ4 between the first surface 331 and the fifth surface 345 is an obtuse angle. An angle θ5 between the second surface 332 and the sixth surface 346 is an obtuse angle. An angle θ6 between the fifth surface 345 and the seventh surface 347 is an obtuse angle. An angle θ7 between the sixth surface 346 and the seventh surface 347 is an obtuse angle. In other words, four obtuse angles θ4, θ5, θ6, and θ7 are formed on each of the two long sides of the substrate 330 in the cross section in the thickness direction of the substrate. Except for the shape of the mold, the injection molding method of this modified example is the same as the method of FIG. 23, so a description thereof will be omitted.
[0163] According to this modification, because the four obtuse angles θ4, θ5, θ6, and θ7 are formed at the bottom end 335' of the substrate 330, the areas near these obtuse angles are less likely to cool and solidify compared to when the angles of the corners are acute angles or 90 degrees. Therefore, distortion of the substrate 330 during molding is suppressed.
[0164] Although the embodiment of the present invention has been described above, it goes without saying that the technical scope of the present invention should not be interpreted as being limited by the description of the above embodiment. The above embodiment is merely an example, and it is understood by those skilled in the art that various modifications of the embodiment are possible within the scope of the invention described in the claims. The technical scope of the present invention should be determined based on the scope of the invention described in the claims and its equivalents.
[0165] In the above embodiment, the light emitted from the image generating device 24, 1024 is configured to be reflected by the concave mirror 26 and irradiated onto the windshield 18, but this is not limited thereto. For example, the light reflected by the concave mirror 26 may be irradiated onto a combiner (not shown) provided inside the windshield 18. The combiner is formed of, for example, a transparent plastic disk. A portion of the light irradiated onto the combiner from the image generating device 24, 1024 of the HUD main body 21 is reflected toward the occupant's viewpoint E, similar to the case where the light is irradiated onto the windshield 18.
[0166] In the above embodiment, the vehicle driving modes are described as including the fully automated driving mode, the advanced driving assistance mode, the driving assistance mode, and the manual driving mode, but the vehicle driving modes should not be limited to these four modes. The vehicle driving modes may include at least one of these four modes. For example, the vehicle driving modes may be executable in only one of the four modes.
[0167] Furthermore, the classification and display form of the vehicle driving mode may be appropriately changed in accordance with the laws or regulations related to autonomous driving in each country. Similarly, the definitions of the "fully autonomous driving mode", the "advanced driving assistance mode", and the "driving assistance mode" described in the description of the present embodiment are merely examples, and these definitions may be appropriately changed in accordance with the laws or regulations related to autonomous driving in each country.
[0168] In the second embodiment described above, both the tip of the first protruding portion 33 and the tip of the second protruding portion 34 are located outside the first end face 263 and the second end face 264, respectively, in the direction along the rotation axis D, but this is not limited to this example. The tip of the first protruding portion 33 may be located outside the first end face 263 in the direction along the rotation axis D, and the tip of the second protruding portion 34 may be located at the same position as the second end face 264 in the direction along the rotation axis D. Alternatively, the opposite configuration may be used. Even in this configuration, the mold draft angle can be ensured, so that the main body portion 31 can be increased in size while maintaining the moldability of the concave mirror 26.
[0169] In the second embodiment described above, the first shaft portion 35 and the second shaft portion 36 of the concave mirror 26 are directly attached to the first storage portion 310 and the second storage portion 320 of the main body housing 22, respectively, but this is not limited to the above. For example, a mounting member configured as a separate member from the concave mirror 26 may be provided on the second shaft portion 36 side of the concave mirror 26, and the concave mirror 26 may be indirectly attached to the main body housing 22 via the mounting member. In this manner, if at least one of the first shaft portion 35 and the second shaft portion 36 is directly attached to the main body housing 22, the effect of reducing the number of parts can be expected.
[0170] This application is based on Japanese Patent Application No. 2020-55742 filed on March 26, 2020, Japanese Patent Application No. 2020-55743 filed on March 26, 2020, Japanese Patent Application No. 2020-77611 filed on April 24, 2020, Japanese Patent Application No. 2020-77612 filed on April 24, 2020, and Japanese Patent Application No. 2020-88272 filed on May 20, 2020, the contents of which are incorporated herein by reference.
Claims
1. An image generating device that generates an image for a head-up display, a light source board on which a light source is mounted; an optical member that transmits light emitted from the light source; a display device that forms light for generating a predetermined image using light transmitted through the optical member; a heat sink that dissipates heat generated from the light source substrate; a holder for holding the optical member, the holder has a plurality of first engagement portions, the heat sink has a plurality of second engagement portions provided at locations corresponding to the plurality of first engagement portions, An image generating device in which each of the multiple first engagement portions and each of the multiple second engagement portions are fixed, so that the light source substrate is positioned and fixed while being sandwiched between the holder and the heat sink and accommodated in the space formed between the multiple first engagement portions.
2. the holder has a pair of first surfaces parallel to a light emission surface of the display device, and a second surface formed between the pair of first surfaces and inclined with respect to the pair of first surfaces; The plurality of first engagement portions are holes formed in the pair of first surfaces, The second surface has an opening and a frame portion surrounding the periphery of the opening, The image generating device of claim 1 , wherein the light source substrate is attached to the frame and the light source is disposed within the opening.
3. The light source substrate has at least one hole, The image generating device of claim 2 , wherein at least one pin capable of being inserted into the at least one hole protrudes from the frame.
4. the heat sink has a pair of third surfaces parallel to the pair of first surfaces and on which the second engagement portions are respectively formed, and a fourth surface formed between the pair of third surfaces and parallel to the second surface, The image generating device according to claim 2 , wherein the light source substrate is accommodated in a space formed between the second surface and the fourth surface.
5. Further comprising a housing in which the display device can be mounted, The image production device according to claim 1 , wherein the holder and the heat sink are attached to the housing by the first engagement portions and the second engagement portions.
6. a circuit board that controls at least the display device; a rear cover that covers a rear surface of the housing; Further equipped with The image production device of claim 5 , wherein the back cover is attached to the housing with the circuit board attached to the housing such that the circuit board is disposed between the heat sink and the back cover.
7. The rear cover includes a rear portion and a side portion extending from the rear portion.
7. The image generating device of claim 6, wherein the rear portion is formed with at least one engagement hole that can be screwed to a boss protruding from the housing toward the rear cover, and the area in which the at least one engagement hole is formed is recessed toward the mounting direction of the rear cover to the housing more than other areas of the rear portion.
8. An image generating device that generates an image for a head-up display mounted in a vehicle, a varying image generating unit that generates a varying image among the images that varies depending on a situation of the vehicle; a fixed image generating unit that generates a fixed image among the images that is fixed regardless of the situation, the transition image generating unit includes a light source substrate on which a light source is mounted, an optical member that transmits light emitted from the light source, and a display device that forms light for generating a predetermined image using the light that has transmitted through the optical member; the light source substrate is disposed at a certain angle with respect to a first light emitting surface of the display device; An image generating device, wherein a second light exit surface of the fixed image generating unit is a surface parallel to the first light exit surface.
9. The transition image generating unit further includes a holder that holds the optical member and a housing in which the display device can be mounted, the holder has a pair of first surfaces parallel to the first light emission surface of the display device mounted on the housing, and a second surface formed between the pair of first surfaces and inclined with respect to the pair of first surfaces; The pair of first surfaces has a plurality of first engagement portions, The second surface has an opening and a frame portion surrounding the periphery of the opening, The image generating device according to claim 8 , wherein the light source substrate is attached to the frame and the light source is disposed within the opening.
10. The transition image generating unit further includes a heat sink that dissipates heat generated from the light source substrate, the heat sink has a pair of third surfaces parallel to the pair of first surfaces and on which a plurality of second engagement portions are formed, and a fourth surface formed between the pair of third surfaces and parallel to the second surface, The image generating device of claim 9 , wherein the light source substrate is accommodated in a space formed between the second surface and the fourth surface.
11. 11. The image generating device of claim 9 or 10, wherein the second light exit surface is attached to the housing so as to be parallel to the first light exit surface attached to the housing.
12. An image generating device according to any one of claims 1 to 11; A head-up display comprising: at least one reflecting portion that reflects the light emitted by the image generating device so that the light is irradiated onto a windshield or a combiner.
13. A reflecting mirror that can rotate around a rotation axis, a plate-shaped main body having a reflecting surface for reflecting light, a first end surface, and a second end surface located on the opposite side of the reflecting surface from the first end surface; a plate-shaped first protruding portion that is continuous with the first end surface and protrudes toward a rear side of the reflecting surface; a plate-shaped second protruding portion protruding toward the back surface side so as to be continuous with the second end surface; a first shaft portion provided on the first protrusion portion for rotating the main body portion around the rotation axis; a second shaft portion provided on the second protrusion portion for rotating the main body portion around the rotation axis, A reflecting mirror, wherein a tip of the first protrusion is located at a position different from the first end face in a direction along the rotation axis and on the opposite side from the reflecting surface.
14. The reflecting mirror according to claim 13 , wherein a tip of the second protrusion is located at a position different from the second end surface in a direction along the rotation axis and opposite to the reflecting surface.
15. The reflecting surface is formed in a concave shape, 15. The reflecting mirror according to claim 13, wherein the first axis portion and the second axis portion are arranged so that the rotation axis is in contact with an apex on the back side of the concave reflecting surface or passes through the reflecting surface side of the apex.
16. One of the first shaft portion and the second shaft portion is formed in a D-shape with a part of an outer circumferential surface cut out, 16. The reflecting mirror according to claim 13, wherein a rotation mechanism for rotating the main body can be connected to either the first shaft portion or the second shaft portion formed in the D-shape.
17. 17. A reflecting mirror as claimed in any one of claims 13 to 16, wherein a first continuous surface continuous with the first end face of the first protrusion and a second continuous surface continuous with the second end face of the second protrusion are formed in a flared shape that widens as they approach the first end face and the second end face, respectively.
18. 18. The reflecting mirror according to claim 17, wherein a portion of the first continuous surface rising from the first end face and a portion of the second continuous surface rising from the second end face are arc-shaped.
19. a substrate having a first surface and a second surface opposite the first surface; a reflective film formed on the first surface and configured to reflect light, A reflecting mirror, wherein a surface is formed on at least a portion of an end portion of the substrate, the surface forming at least three obtuse angles between the first surface and the second surface in a cross section in the thickness direction of the substrate.
20. The substrate is rectangular in shape; 20. The reflector according to claim 19, wherein each long side of the substrate has a surface that forms the at least three obtuse angles.
21. 21. The reflecting mirror according to claim 20, wherein the surfaces forming the at least three obtuse angles are formed around the entire outer periphery of the substrate.
22. 22. The reflecting mirror according to claim 19, wherein the faces forming the at least three obtuse angles are formed line-symmetrically with respect to a center in the thickness direction.
23. 23. A reflector as claimed in any one of claims 19 to 22, wherein the first surface has a concave curved surface.
24. A head-up display provided in a vehicle and configured to display a predetermined image toward an occupant of the vehicle, A reflector according to any one of claims 13 to 23; an image generating device that generates the predetermined image and emits light toward the reflecting mirror; Equipped with a head-up display.
25. A head-up display provided in a vehicle and configured to display a predetermined image toward an occupant of the vehicle, an image generating unit that emits light for generating the predetermined image; A reflecting unit that reflects the light emitted by the image generating unit so that the light is irradiated onto a windshield or a combiner; a housing that accommodates the image generating unit and the reflecting unit; Equipped with the reflecting portion has a main body portion, a first shaft portion protruding outward from one end of the main body portion, and a second shaft portion protruding outward from the other end of the main body portion, The housing has at least a first accommodating portion capable of accommodating an end portion of the first shaft portion, The end portion of the head-up display is exposed to the outside from the first housing portion.
26. The first accommodating portion has a hole portion and a deformation portion defined by a pair of slits provided continuously to the hole portion and capable of elastic deformation, 26. The head-up display of claim 25, wherein with the second axis portion directly or indirectly attached to the housing, the end of the first axis portion moves to the hole portion while elastically deforming the deformation portion and is accommodated within the hole portion, thereby positioning the reflection portion relative to the housing.
27. A head-up display provided in a vehicle and configured to display a predetermined image toward an occupant of the vehicle, an image generating unit that emits light for generating the predetermined image; A reflecting unit that reflects the light emitted by the image generating unit so that the light is irradiated onto a windshield or a combiner; a housing that accommodates the image generating unit and the reflecting unit; Equipped with the reflecting portion has a main body portion, a first shaft portion provided at one end of the main body portion, and a second shaft portion provided at the other end of the main body portion, A head-up display, wherein the first axis portion and the second axis portion are both attached to the housing.
28. The housing has a first accommodating portion capable of accommodating the first shaft portion and a second accommodating portion capable of accommodating the second shaft portion, The first accommodating portion has a hole portion and a deformation portion defined by a pair of slits provided continuously to the hole portion and capable of elastic deformation, 28. The head-up display of claim 27, wherein with the second axis portion accommodated in the second accommodation portion, the end of the first axis portion moves to the hole portion while elastically deforming the deformation portion and is accommodated within the hole portion, thereby attaching the reflection portion to the housing.
29. the housing has a restricting portion for restricting movement of the reflecting portion along a predetermined direction, The first shaft portion is provided with a flange protruding from its outer periphery, The head-up display according to claim 25 , wherein the movement of the reflecting portion is restricted by the flange abutting against the restricting portion when the reflecting portion is housed.
30. The reflecting portion is rotatable around a rotation axis, 30. A head-up display as described in any one of claims 25 to 29, wherein the rotation mechanism for rotating the reflecting portion is composed of the first axis portion, an arm portion extending from the first axis portion, and a drive unit connected to the end of the arm portion opposite the first axis portion.
31. The first shaft portion is formed of a separate part from the main body portion, The head-up display according to any one of claims 25 to 30, wherein the first shaft portion is attachable to an end portion of the main body portion.
32. The reflecting portion is rotatable around a rotation axis, The reflecting portion further includes a plate-shaped first protruding portion protruding from an end portion of the main body portion on the first axis portion side toward a back surface side, and a plate-shaped second protruding portion protruding from an end portion of the main body portion on the second axis portion side toward the back surface side, the first shaft portion is provided on the first protruding portion, and the second shaft portion is provided on the second protruding portion; 32. The head-up display according to claim 25, wherein a tip of the first protrusion and a tip of the second protrusion are positioned outside an end of the reflecting portion in a direction along the rotation axis.
Citation Information
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