Vehicle display device

The vehicle display device uses a transparent heat conducting member and temperature detecting element to improve temperature detection accuracy and heat dissipation, addressing the low thermal conductivity issues of conventional devices.

JP7794783B2Pending Publication Date: 2026-01-06YAZAKI CORP
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Patent Information

Application Number
JP2023121240
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2023-07-26
Publication Date
2026-01-06
Estimated Expiration
2043-07-26

AI Technical Summary

Technical Problem

Conventional vehicle display devices face challenges in accurately detecting the temperature of TFTs and FPCs due to their low thermal conductivity.

Method used

A vehicle display device with a liquid crystal display element, a transparent heat conducting member (such as sapphire glass) adhered to its surface or back surface, and a temperature detecting element that is in direct contact with the heat conducting member, allowing for improved thermal conductivity and accurate temperature detection.

Benefits of technology

The device achieves high-accuracy temperature detection of the liquid crystal display element, suppressing temperature rises, and enhancing heat dissipation through multiple heat transfer paths.

✦ Generated by Eureka AI based on patent content.

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Abstract

To provide a vehicle display device which can accurately detect a temperature of a liquid crystal display element.SOLUTION: A vehicle display device 1 includes: a liquid crystal display element 20 which emits display light L to be reflected on a windshield 101 provided at a vehicle 100; sapphire glass 21 which is disposed adhering to a back surface 20b of the liquid crystal display element 20; and a temperature detection body 24 which is provided at the sapphire glass 21 and configured to detect a temperature of the liquid crystal display element 20. Heat generated in the liquid crystal display element 20 is transmitted to the temperature detection body 24 through the sapphire glass 21.SELECTED DRAWING: Figure 3
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Description

[Technical Field]

[0001] The present invention relates to a display device for a vehicle. [Background technology]

[0002] Some conventional vehicle display devices have a thermistor on a TFT (Thin Film Transistor) panel to detect the temperature of the TFT (see Patent Document 1). Other conventional vehicle display devices have a thermistor on a flexible printed circuit (FPC) on which a TFT drive circuit is formed (see Patent Document 2). [Prior art documents] [Patent documents]

[0003] [Patent Document 2] Japanese Patent Publication No. 2022-130236 [Patent Document 1] Japanese Patent Application Laid-Open No. 2006-235252 Summary of the Invention [Problem to be solved by the invention]

[0004] However, in the above-described conventional vehicle display device, for example, the thermal conductivity of the TFT and FPC is low, so there is room for improvement in terms of accurately detecting the temperature of the TFT in response to temperature increases.

[0005] SUMMARY OF THE INVENTION An object of the present invention is to provide a vehicle display device that can accurately detect the temperature of a liquid crystal display element. [Means for solving the problem]

[0006] In order to achieve the above object, a vehicle display device according to the present invention includes a liquid crystal display element that emits display light to be reflected by a transparent reflecting member provided in a vehicle, a transparent plate-shaped heat conducting member that is adhered to either a display surface or a back surface of the liquid crystal display element, and a temperature detecting element that is provided on the heat conducting member and detects the temperature of the liquid crystal display element. The temperature detector is composed of a temperature detection element that is electrically connected to a temperature detection circuit, and the temperature detection element is in direct contact with the heat conduction member. It is characterized by the following. [Effects of the Invention]

[0007] The vehicle display device according to the present invention has the advantage that the temperature of the liquid crystal display element can be detected with high accuracy. [Brief explanation of the drawings]

[0008] [Figure 1] FIG. 1 is a schematic diagram showing an example of the configuration of a vehicle display device according to an embodiment. [Figure 2] FIG. 2 is a perspective view showing the appearance of a display unit of the vehicle display device according to the embodiment. [Figure 3] FIG. 3 is a cross-sectional view of the display device shown in FIG. 2 taken along line AA. [Figure 4] FIG. 4 is a partially enlarged view of FIG. [Figure 5] 5 is a cross-sectional view of the display device shown in FIG. 2 taken along line BB. [Figure 6] FIG. 6 is a plan view of the display shown in FIG. [Figure 7] FIG. 7 is a partial cross-sectional view of a display device according to a modified example of the embodiment. DETAILED DESCRIPTION OF THE INVENTION

[0009] Hereinafter, embodiments of the present invention will be described in detail with reference to the drawings. Note that the present invention is not limited to the following embodiments. That is, the components in the following embodiments include those that can be easily imagined by a person skilled in the art or those that are substantially the same, and various omissions, substitutions, and modifications can be made without departing from the spirit of the invention.

[0010] [Embodiment] The vehicular display device 1 shown in FIG. 1 is a head-up display device mounted on a vehicle 100 such as an automobile. The vehicular display device 1 projects a display image onto a windshield 101 of the vehicle 100, for example. The vehicular display device 1 projects the display image onto the windshield 101 to display a virtual image in front of the driver's (not shown) eye point EP. The windshield 101 is an example of a reflective member and is semi-transparent, reflecting part of incident light and transmitting the other part. The windshield 101 transmits the view in front of the vehicle 100 while reflecting the display image projected from the vehicular display device 1 as display light L toward the driver's eye point EP. The vehicular display device 1 of this embodiment includes a case 2, two reflective mirrors 3 and 4, a display 5, and a display control unit 6.

[0011] In the following description, for convenience, of the illustrated X, Y, and Z directions, the X direction refers to the "width direction X," the Y direction refers to the "depth direction Y," and the Z direction refers to the "height direction Z." The width direction X, depth direction Y, and height direction Z are perpendicular to one another. The width direction X corresponds to, for example, the front-to-rear direction of the vehicle 100. The depth direction Y corresponds to, for example, the width direction of the vehicle 100. The height direction Z corresponds to, for example, the up-and-down direction of the vehicle 100. Unless otherwise specified, the directions used in the following description will be described as directions when the various components of the vehicle display device 1 are assembled.

[0012] The case 2 is formed, for example, from a synthetic resin material into a box shape. The case 2 accommodates and supports the reflecting mirrors 3 and 4, the display 5, and the display control unit 6. The case 2 has an opening 2a that communicates between the inside and outside of the vehicle display device 1. The opening 2a is provided in a position on the case 2 facing the windshield 101. The vehicle display device 1 emits display light L from the case 2 toward the windshield 101 through the opening 2a. The display light L is light that is emitted from the display 5 and reflected by the reflecting mirrors 3 and 4.

[0013] The reflecting mirrors 3 and 4 are arranged on the optical path of the display light L from the display 5 to the windshield 101, and are an optical system that reflects the display light L emitted from the display 5 toward the windshield 101. The reflecting mirror 3 has a flat reflecting surface and is arranged in a position facing the display 5. The reflecting mirror 3 totally reflects the display light L emitted from the display 5 toward the reflecting mirror 4. The reflecting mirror 4 has a concave curved reflecting surface and is arranged in a position facing the reflecting mirror 3. The reflecting mirror 4 totally reflects the display light L reflected by the reflecting mirror 3 toward the windshield 101 through the opening 2a. The reflecting mirror 4 functions as a magnifying mirror. That is, the reflecting mirror 4 magnifies and reflects the display image represented by the display light L after reflection by the reflecting mirror 4 so that the display image represented by the display light L after reflection by the reflecting mirror 4 is relatively larger than the display image represented by the display light L before reflection by the reflecting mirror 4.

[0014] The display device 5 emits a display image to be projected onto the windshield 101 as display light L. As shown in FIG. 2, the display device 5 includes a housing 10, a backlight unit 11, and a liquid crystal display unit 14.

[0015] The housing 10 is composed of an upper cover 12 and a lower case 13, and has an accommodation space 10a therein. The housing 10 accommodates a backlight unit 11 including a light source LS, and a liquid crystal display unit 14 in the accommodation space 10a.

[0016] The upper cover 12 is attached to the lower case 13 from above in the height direction Z. The upper cover 12 has a rectangular opening 12a when viewed from the height direction Z. The opening 12a is a portion through which display light L emitted from the liquid crystal display unit 14 passes toward the reflective mirror 3 when the upper cover 12 is attached to the lower case 13.

[0017] The lower case 13 is made of a thermally conductive metal material and is a box-shaped member that opens upward in the height direction Z. The lower case 13 houses the liquid crystal display unit 14 on its upper side, which is one side in the height direction Z, and houses the backlight unit 11 on its lower side, which is the other side in the height direction Z, and supports these. As shown in Figures 3 to 5, the lower case 13 has an outer peripheral wall 40 made of a thermally conductive metal material, and supports the liquid crystal display unit 14 by means of support parts 41 provided on the outer peripheral wall 40.

[0018] The backlight unit 11 illuminates the liquid crystal display unit 14 from the back side. The backlight unit 11 is driven by, for example, power obtained from a battery (not shown) in the vehicle 100. The light source LS emits light toward the liquid crystal display unit 14 and is, for example, an LED (Light Emitting Diode) as a light-emitting element. The light source LS is mounted on, for example, a light source board (not shown). The light source board is connected to a heat dissipation section 11a exposed to the outside of the housing 10.

[0019] The liquid crystal display unit 14 includes a liquid crystal display element 20, sapphire glass 21, an adhesive portion 22, and a temperature detector 24.

[0020] The liquid crystal display element 20 is disposed on the optical path of the display light L from the light source LS to the reflecting mirror 3, and transmits or reflects the display light L incident from a back surface 20b facing the backlight unit 11, thereby displaying an image on a display surface 20a facing the reflecting mirror 3. The liquid crystal display element 20 is, for example, a TFT-LCD (Thin Film Transistor-Liquid Crystal Display). The liquid crystal display element 20 is a film-like member including a liquid crystal layer, glass electrodes, polarizing plates, etc. One end of the liquid crystal display element 20 in the width direction X is physically and electrically connected to the display control unit 6 via wiring 15. The wiring 15 is formed, for example, of a flexible printed circuit (FPC) or the like.

[0021] 6, the liquid crystal display element 20 has an image display area 30 and an image non-display area 31. The image display area 30 is a portion that displays an image and is formed in a rectangular shape when viewed from a height direction Z that is perpendicular to the planar direction of the liquid crystal display element 20. The image non-display area 31 is provided on the opposite side of the image display area 30 along the planar direction, across a first display edge 30a, which is one of the four sides that make up the image display area 30, and is a portion that does not display an image.

[0022] The sapphire glass 21 is a transparent glass member formed in a rectangular, flat plate shape, and transmits display light L. The sapphire glass 21 of this embodiment is an example of a thermally conductive member, and is formed by artificially growing high-purity alumina (aluminum oxide) into large crystals, and has a thermal conductivity at least higher than that of air. As shown in FIGS. 3 to 5, the sapphire glass 21 is adhered to the back surface 20b of the liquid crystal display element 20 by an adhesive 22. The sapphire glass 21 is adhered to the liquid crystal display element 20 by optical bonding such as OCA (Optical Clear Adhesive) or OCR (Optical Clear Resin).

[0023] By bringing the sapphire glass 21 into contact with the liquid crystal display element 20, heat from the liquid crystal display element 20 is more easily conducted to the sapphire glass 21. The contact area of ​​the sapphire glass 21 with the liquid crystal display element 20 is desirably large. For example, the sapphire glass 21 is in contact with the entire back surface 20b of the liquid crystal display element 20. The sapphire glass 21 preferably covers the entire image display area 30 of the liquid crystal display element 20. This allows the sapphire glass 21 to prevent stress from being applied to localized areas of the liquid crystal display element 20, thereby preventing whitening. The thickness of the sapphire glass 21 may be greater than the thickness of the liquid crystal display element 20. The sapphire glass 21 in contact with the liquid crystal display element 20 can increase the heat capacity of the liquid crystal display element 20 and absorb heat generated by the liquid crystal display element 20.

[0024] 6, the sapphire glass 21 is larger than the size of the liquid crystal display element 20 in the depth direction Y, and is disposed so that the image display region 30 is located inside the outer periphery. Specifically, the sapphire glass 21 is formed so that at least one end (on the wiring 15 side) in the width direction X extends to face, in the height direction Z, the image non-display region 31 adjacent to the image display region 30 with the first display edge 30a in between. The sapphire glass 21 of this embodiment has an image display region facing region 21a and a non-image non-display region facing region 21b.

[0025] The image display area facing region 21a is located opposite the image display area 30 in the height direction Z when the sapphire glass 21 is bonded to the liquid crystal display element 20. On the other hand, the image non-display area facing region 21b is located opposite the image non-display area 31 in the height direction Z when the sapphire glass 21 is bonded to the liquid crystal display element 20. The sapphire glass 21 of this embodiment has a temperature detector 24 provided below (on the light source LS side) the image non-display area facing region 21b in the height direction Z.

[0026] The temperature detector 24 is provided on the sapphire glass 21 and detects the temperature of the liquid crystal display element 20. The temperature detector 24 includes a temperature detector 25 and a printed circuit board .

[0027] The temperature detection element 25 is provided in the image non-display area facing area 21b of the sapphire glass 21 via the printed circuit board 26 and a thermally conductive sheet member 28 (e.g., a thermal sheet). The temperature detection element 25 is, for example, a thermistor. As shown in FIG. 5, the temperature detection element 25 is arranged on the printed circuit board 26 at a position corresponding to a center P in the extension direction (width direction X) of the image non-display area facing area 21b. This center P is the position in the image non-display area facing area 21b that is closest to the heat source in the liquid crystal display unit 14.

[0028] The printed circuit board 26 is provided with a temperature detection element 25 and is made of a thermally conductive metal material. The printed circuit board 26 is, for example, an aluminum board. The printed circuit board 26 forms a temperature detection circuit 27 that is electrically connected to the temperature detection element 25. As shown in FIG. 6, the printed circuit board 26 is disposed in a position facing the non-image area facing region 21b and extends along the first display edge 30a. The printed circuit board 26 has a rectangular shape when viewed from the height direction Z. The printed circuit board 26 has a connector 29 disposed at one end in the depth direction Y, protruding toward the outside of the printed circuit board 26. The connector 29 electrically connects the temperature detection circuit 27 of the printed circuit board 26 to an external device or the like.

[0029] Here, we will explain the support structure of the liquid crystal display unit 14 in the lower case 13 of the housing 10. The support portion 41 is formed on the outer peripheral wall 40 of the lower case 13 so as to protrude from the inner wall surface 40a toward the housing space 10a, and is a portion that supports the sapphire glass 21 that is arranged and bonded to the back surface 20b of the liquid crystal display element 20. As shown in Figure 4, this support portion 41 has a first support surface 42 and a second support surface 43.

[0030] The first support surface 42 is a portion that supports the sapphire crystal 21 when the liquid crystal display unit 14 is housed in the lower case 13. The first support surface 42 is in direct contact with the sapphire crystal 21 when the liquid crystal display unit 14 is housed in the lower case 13, and heat transferred to the sapphire crystal 21 is easily conducted to the support portion 41 via the first support surface 42.

[0031] The second support surface 43 is formed continuously with the first support surface 42, and is a portion that supports the sapphire glass 21 via the printed circuit board 26 and the sheet member 28. The second support surface 43 is in direct contact with the printed circuit board 26 when the liquid crystal display unit 14 is housed in the lower case 13, and heat transferred to the support part 41 via the first support surface 42 is easily conducted to the printed circuit board 26 via the second support surface 43.

[0032] The display control unit 6 is electrically connected to the liquid crystal display element 20 and the printed circuit board 26 and controls their operation. The display control unit 6 is configured, for example, with an IC chip or the like, and is driven by power obtained from a battery in the vehicle 100. For example, when the temperature detected by the temperature detector 24 is higher than a threshold value, the display control unit 6 executes a temperature reduction operation to reduce the temperature of the display unit 5. Here, the temperature reduction operation includes, for example, dimming or turning off the display unit 5. Specifically, when the temperature detected by the temperature detector 24 is higher than the threshold value, the display control unit 6 transmits a dimming signal or a turning off signal to the display unit 5 in accordance with the detection signal received from the temperature detector 24, thereby dimming or turning off the display unit 5.

[0033] Next, the heat transfer path for the temperature detector 24 of the liquid crystal display unit 14 of the vehicle display device 1 will be described with reference to FIG. 4. As described above, the heat source in the liquid crystal display unit 14 is, for example, the image display area 30 of the liquid crystal display element 20. Heat transferred from the image display area 30 to the sapphire glass 21 via the adhesive portion 22 is conducted from the image non-display area facing area 21b through the sheet member 28 to the printed circuit board 26, and then from the printed circuit board 26 to the temperature detection element 25 (heat transfer path R1). Furthermore, the heat transferred to the image non-display area facing area 21b is conducted to the support portion 41 via the first support surface 42 and then to the printed circuit board 26 via the second support surface 43 (heat transfer path R2). As described above, in the vehicle display device 1 of this embodiment, heat transferred from the liquid crystal display element 20 to the sapphire glass 21 is transferred to the temperature detection element 25 via multiple heat transfer paths R1 and R2.

[0034] As described above, the vehicle display device 1 according to this embodiment comprises a liquid crystal display element 20 that emits display light L to be reflected by a windshield 101 provided on the vehicle 100, a sapphire glass 21 that is adhered to the back surface 20b of the liquid crystal display element 20, and a temperature detector 24 that is provided on the sapphire glass 21 and detects the temperature of the liquid crystal display element 20.

[0035] The vehicle display device 1 according to this embodiment has the above-described configuration, which enables the temperature detector 24 to detect the temperature of the liquid crystal display element 20 via the sapphire glass 21. The thermal conductivity of this sapphire glass 21 is at least 40 times that of the liquid crystal display element 20, allowing the temperature detector 24 to accurately detect the temperature of the liquid crystal display element 20. Furthermore, by bonding the sapphire glass 21 to the liquid crystal display element 20, the vehicle display device 1 can suppress a rise in temperature of the liquid crystal display element 20 due to the heat dissipation effect of the sapphire glass 21.

[0036] Furthermore, in the vehicle display device 1 according to this embodiment, the temperature detector 24 includes a temperature detection element 25 and a printed circuit board 26 on which the temperature detection element 25 is provided and which is made of a thermally conductive metal material. The temperature detection element 25 is provided on the sapphire glass 21 via the printed circuit board 26 and a thermally conductive sheet member 28. Thus, in the vehicle display device 1, by interposing the thermally conductive sheet member 28 between the sapphire glass 21 and the printed circuit board 26, the thermal conductivity from the sapphire glass 21 to the printed circuit board 26 can be improved. Furthermore, if the printed circuit board 26 is made of aluminum, for example, its thermal conductivity is four to five times higher than that of sapphire glass. This improves the heat transfer from the printed circuit board 26 to the temperature detection element 25, and also enables the printed circuit board 26 to have a heat dissipation effect.

[0037] Furthermore, in the vehicle display device 1 according to this embodiment, the printed circuit board 26 is disposed in a position facing the image non-display area facing region 21b of the sapphire glass 21 and extends along the first display edge 30a. This allows the vehicle display device 1 to expand the heat transfer area for heat transferred from the image non-display area facing region 21b to the printed circuit board 26. As a result, the temperature detection element 24 can detect temperatures with improved accuracy compared to conventional printed circuit boards. Furthermore, in the vehicle display device 1, the temperature detection element 25 is disposed in a position on the printed circuit board 26 corresponding to the center P in the extension direction of the image non-display area facing region 21b. In conventional liquid crystal display units, when a temperature detection element is provided for a liquid crystal display element, it is difficult to provide it near the image display area, which is a heat source, due to the layout of the wiring connected to the liquid crystal display element (see, for example, FIG. 2 of Patent Document 2). In the vehicle display device 1 according to this embodiment, the sapphire glass 21 is provided on the back surface 20b side of the liquid crystal display element 20, and the temperature detection element 24 is provided on the back surface side of the sapphire glass 21. As a result, the vehicle display device 1 allows the temperature detection element 25 to be positioned closer to the image display area 30, which is a heat source, compared to conventional vehicle display devices, thereby improving the accuracy of temperature detection of the liquid crystal display element 20 by the temperature detection element 25.

[0038] Furthermore, in the vehicle display device 1 according to this embodiment, the housing 10 has an outer peripheral wall 40 made of a thermally conductive metal material, and the outer peripheral wall 40 has a support portion 41 that supports the sapphire glass 21 and the printed circuit board 26. This allows the vehicle display device 1 to transmit heat from the liquid crystal display element 20 to the temperature detection element 25 not only via the sapphire glass 21 but also via the support portion 41, thereby improving the accuracy of temperature detection.

[0039] In the above embodiment, the sapphire glass 21 is bonded to the rear surface 20b of the liquid crystal display element 20, but this is not limiting and the sapphire glass 21 may be bonded to the display surface 20a of the liquid crystal display element 20. In addition, the sapphire glass 21 is used as a transparent member having thermal conductivity, but this is not limiting.

[0040] Furthermore, in the above-described embodiment, the temperature detecting body 24 includes the temperature detecting element 25 and the printed circuit board 26, but is not limited to this. FIG. 7 is a partial cross-sectional view of a display according to a modified embodiment. The temperature detecting body 25A shown in FIG. 7 is, for example, a thermocouple or a thermistor. The temperature detecting body 25A is connected to an external temperature detecting circuit (not shown) via wiring W. The temperature detecting body 25A is provided between the image non-display area facing region 21b of the sapphire glass 21 and the support portion 41 of the housing 10, and is disposed in contact with the sapphire glass 21 while being accommodated in a recess of the support portion 41. In this manner, the temperature detecting body 24 may be a temperature detecting element.

[0041] In the above embodiment, the printed circuit board 26 is preferably made of aluminum, but is not limited to this, and may be an FR4 PCB with many vias, or an FPC with good thermal conductivity.

[0042] In the above embodiment, sapphire glass 21 has been described as an example of a heat-conducting member, but the present invention is not limited to this. For example, blue plate glass or white plate glass may be used as the heat-conducting member instead of sapphire glass 21, although these have lower thermal conductivity than sapphire glass.

[0043] Furthermore, in the above embodiment, the sapphire glass 21 is in contact with the printed circuit board 26 via the sheet member 28, but this is not limited to this, and the structure may be such that the sapphire glass 21 is in direct contact with the printed circuit board 26 without the sheet member 28 being interposed therebetween.

[0044] In the above embodiment, the windshield 101 is used as the reflective member of the vehicle 100, but the present invention is not limited to this and may be, for example, a combiner.

[0045] In the above embodiment, the vehicle display device 1 has two reflecting mirrors 3 and 4, but is not limited to this and may have one reflecting mirror. Also, the vehicle display device 1 may directly emit the display light L to the windshield 101. [Explanation of symbols]

[0046] 1. Vehicle display device 5 Display 10. Cabinet 20 Liquid crystal display element 20a Display surface 20b back 21 Sapphire glass 24 Temperature detector 100 vehicles 101 Windshield L display light

Claims

1. a liquid crystal display element that emits display light to be reflected by a transparent reflecting member provided in the vehicle; a transparent plate-shaped heat conductive member that is adhered to either the display surface or the back surface of the liquid crystal display element; a temperature detector provided on the heat conductive member for detecting the temperature of the liquid crystal display element; Equipped with The temperature detector is It consists of a temperature detection element that is electrically connected to the temperature detection circuit. The temperature detection element is The vehicle display device is in direct contact with the heat conduction member.

2. A liquid crystal display element that emits display light that is reflected by a transparent reflective member provided in a vehicle; a transparent plate-shaped heat conductive member that is adhered to either the display surface or the back surface of the liquid crystal display element; a temperature detector provided on the heat conductive member for detecting the temperature of the liquid crystal display element, The temperature detector is A temperature detection element; a printed circuit board formed of a thermally conductive metal material and provided with the temperature detection element, The printed circuit board is forming a temperature detection circuit conductively connected to the temperature detection element; The temperature detection element is the printed circuit board and the heat conduction member are provided via a thermally conductive sheet member, The liquid crystal display element is an image display area that displays an image and is formed in a rectangular shape when viewed from a direction perpendicular to the planar direction of the liquid crystal display element; an image non-display area provided on the opposite side of the image display area along the planar direction, with a first display side being one of four sides constituting the image display area, The heat conduction member is the heat conductive member has an image non-display area facing region at a position facing the image non-display area when the heat conductive member is attached to the back surface of the liquid crystal display element, The printed circuit board is the image display area facing the non-display area is disposed at a position facing the image display area facing the first display edge, and the image display area facing the first display edge is formed to extend along the first display edge; The temperature detection element is The display device for a vehicle is characterized in that the display device is disposed on the printed circuit board at a position corresponding to a center portion in an extension direction of the area facing the image non-display area.

3. A liquid crystal display element that emits display light that is reflected by a transparent reflective member provided in a vehicle; a transparent plate-shaped heat conductive member that is adhered to either the display surface or the back surface of the liquid crystal display element; a temperature detector provided on the heat conductive member for detecting the temperature of the liquid crystal display element; a housing having an accommodation space for accommodating the liquid crystal display element, the heat conduction member, and the temperature detection body; The temperature detector is A temperature detection element; a printed circuit board formed of a thermally conductive metal material and provided with the temperature detection element, The printed circuit board is forming a temperature detection circuit conductively connected to the temperature detection element; The temperature detection element is the printed circuit board and the heat conduction member are provided via a thermally conductive sheet member, The housing includes: an outer peripheral wall formed of a thermally conductive metal material; The outer peripheral wall is a support portion formed to protrude from an inner wall surface toward the storage space and to support the heat conduction member disposed in contact with the rear surface of the liquid crystal display element; The support portion is a first support surface that supports the heat conduction member; a second support surface that is formed continuously with the first support surface and that supports the heat conduction member via the printed circuit board and the sheet member.

Citation Information

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