A display device for a vehicle includes: a display unit; a light guide plate disposed on a viewing side of the display unit and having translucency; and a light source unit that causes a light source light to enter inside of the light guide plate through an outer peripheral portion of the light guide plate. The light guide plate includes a reflecting portion having a plurality of reflecting elements to reflect the light source light from the light source unit to the viewing side. The reflecting element has a reflective curved surface formed in a curved surface shape to face the outer peripheral portion where the light source light is incident.
1. A display device for a vehicle, comprising:
a display unit for displaying; a light guide plate disposed on a viewing side of the display unit and formed in a plate shape having translucency; and a light source unit that causes a light source light to enter inside of the light guide plate through an outer peripheral portion of the light guide plate, wherein the light guide plate includes a reflecting portion having a plurality of reflecting elements to reflect the light source light from the light source unit to the viewing side, the reflecting element has a reflective curved surface formed in a curved surface shape to face the outer peripheral portion where the light source light is incident, and an inclination angle of the reflective curved surface and an inclination angle of a reflective back surface of the reflecting element are different from each other with respect to a thickness direction of the light guide plate. 2. The display device according to the light source unit has a plurality of light emitting elements to emit the light source light in illumination ranges of the light guide plate offset from each other, and the reflective curved surface has a curvature in a direction where at least the illumination ranges are offset. 3. The display device according to the plurality of light emitting elements are arranged in an arrangement direction along an extending direction of the light guide plate, and the reflective curved surface of each of the reflecting elements opposes the light source unit. 4. The display device according to 5. The display device according to 6. The display device according to the reflective curved surface has a cylindrical surface shape with a generating line arranged along an imaginary plane perpendicular to the direction where the illumination ranges are offset. 7. The display device according to the reflecting element has a reflective back surface provided on a side opposite to the reflective curved surface through a ridge portion to reflect a display light from the display unit, the light guide plate has a flat portion formed flat, the reflecting elements are spaced from each other through the flat portion, and each of the reflecting elements has a side surface between a side end of the reflective curved surface and a side end of the reflective back surface to cross the direction where the illumination ranges are offset. 8. The display device according to the reflecting element has a reflective back surface provided on a side opposite to the reflective curved surface through a ridge portion to reflect a display light from the display unit, and the reflective back surface is inclined with respect to a thickness direction of the light guide plate so that the display light reflected on the reflective back surface is directed outside a predetermined area. 9. The display device according to the display unit has an image display portion that displays an image by emitting a display light to the viewing side, and the reflecting portion is arranged to overlap with the image display portion in a thickness direction of the light guide plate. 10. A display device for a vehicle, comprising:
a light source unit that provides a light source light; and a translucent display plate made of a translucent plate having
a front plate surface facing a viewing side, and a back plate surface facing a side opposite to the viewing side, wherein the translucent display plate introduces the light source light inside through an outer peripheral portion, the translucent display plate includes:
a plurality of reflecting elements recessed from the back plate surface and having a reflective surface to reflect the light source light introduced into the translucent display plate to the viewing side; and a reflective display portion to display a pattern design by an arrangement of the reflecting elements, wherein the reflective display portion includes a composite reflection element having two inclined surfaces with opposite orientations to be separated from the outer peripheral portion as going from the back plate surface to the front plate surface, to reflect the light source light, as the reflective surface of the plurality of reflecting elements, and an inclination angle of a reflective curved surface of the composite reflection element and an inclination angle of a reflective back surface of the composite reflection element are different from each other with respect to a thickness direction of the translucent display plate. 11. The display device according to the composite reflection element is recessed in a triangular pyramid shape from the back plate surface, and the two inclined surfaces are two surfaces of the triangular pyramid shape of the composite reflection element facing the outer peripheral portion on which the light source light is incident. 12. The display device according to the light source unit has a plurality of point light sources arranged to each other, and the reflective display portion displays an image by the plurality of point light sources in an area of the composite reflection element in the pattern design. 13. The display device according to 14. The display device according to 15. The display device according to a superimposing display part arranged to face the back plate surface to perform an overlapping display superimposed on the reflective display portion toward the viewing side. 16. The display device according to the reflective back surface of the reflecting element is provided on a side opposite to the reflective curved surface through a ridge portion to reflect a display light from the display unit, the reflective curved surface is inclined in the thickness direction and configured to reflect the light source light to be directed to inside a predetermined area of the vehicle, and the reflective back surface is inclined in the thickness direction and configured to reflect the display light entering the reflective back surface to be directed outside the predetermined area. 17. The display device according to the two inclined surfaces form the reflective curved surface configured to change a brightness in an area of the pattern design, the reflective curved surface is inclined in the thickness direction and configured to reflect the light source light to be directed to inside of a predetermined area of the vehicle, the reflective back surface is formed in a triangular planar shape inclined in the thickness direction and configured to reflect the display light entering the reflective back surface to be directed outside the predetermined area, and an inclination angle of a connecting edge that connects the two inclined surfaces of the composite reflection element and an inclination angle of the reflective back surface of the composite reflection element with respect to a thickness direction of the translucent display plate are different from each other.
This application is a continuation application of International Patent Application No. PCT/JP2017/033184 filed on Sep. 14, 2017, which designated the United States and claims the benefit of priority from based on Japanese Patent Application No. 2016-218280 filed on Nov. 8, 2016 and Japanese Patent Application No. 2017-089369 filed on Apr. 28, 2017. The entire disclosures of all of the above applications are incorporated herein by reference. The present disclosure relates to a display device mounted on a vehicle. Conventionally, a display device for a vehicle is known, which includes a display unit, a light guide plate, and a light source unit. The display unit performs display. The light guide plate is disposed on a viewing side of the display unit, and is formed in a plate shape having translucency. In one aspect of the present disclosure, a display device for vehicles includes: a display unit for displaying; a light guide plate disposed on a viewing side of the display unit and formed in a plate shape having translucency; and a light source unit that causes a light source light to enter inside of the light guide plate through an outer peripheral portion of the light guide plate. The light guide plate includes a reflecting portion having a plurality of reflecting elements to reflect the light source light from the light source unit to the viewing side, and the reflecting element has a reflective curved surface formed in a curved surface shape to face the outer peripheral portion where the light source light is incident. To begin with, examples of relevant techniques will be described. The light source unit has plural light emitting elements to emit light source light in illumination ranges of the light guide plate offset in the extending direction of the light guide plate. The light guide plate includes a reflecting portion having plural reflecting elements for reflecting the light source light from the light source unit to the viewing side. Each of the reflecting elements has a reflection plane formed in a planar shape to face the outer peripheral part where the light source light is incident. The reflection plane extends in a direction in which the illumination ranges of the light emitting elements are offset. In such a device, it is possible to visually recognize a pattern design at a position where the reflecting portion is disposed by reflecting the light source light, while a display on the display unit is visually recognized through the light guide plate. It can be said that the device includes a light source unit and a translucent display plate. The translucent display plate has translucent property and is made of a plate having a front plate face facing the viewing side and a back plate face facing a side opposite to the viewing side, to introduce light source light from the light source unit inside through the outer peripheral portion. A reflective display portion provided on the translucent display plate displays a pattern design by appropriate arrangement of plural reflecting elements. Each of the reflecting elements is recessed from the back plate face, and has a reflective surface for reflecting the light source light introduced into the translucent display plate to the viewing side. The reflective surface reflects the light source light to the viewing side, so that the pattern design can be displayed. Each of the reflecting elements has one inclined surface, as the reflective surface, which is inclined to be apart from the outer peripheral portion into which the light source light is introduced as going from the back plate face to the front plate face. The following issue has been found in the configuration of the reflecting portion. Specifically, when a display light from the display unit passes through the light guide plate, there are a path visible without being refracted at the reflection plane and a path visible with being refracted at the reflection plane. When display lights with different paths enter the eye of an occupant of the vehicle, the display on the display unit may be visually recognized as multiple image such as double image in which the display positions are shifted from each other. This is because the image of the display light reaches the eye of the occupant without much disturbance, due to the refraction of the display light by the flat reflection plane. In addition, each reflecting element is defined of one reflective surface having common orientation in the reflective display portion. However, in the case of one reflecting surface, even when a viewer changes the viewing position, the brightness of the reflective display portion is simply changed, and the glittering effect cannot be felt by the viewer, which is not attractive. The present disclosure provides a display device with improved appearance for a viewer in a vehicle. In one aspect of the present disclosure, a display device for vehicles includes: a display unit for displaying; a light guide plate disposed on a viewing side of the display unit and formed in a plate shape having translucency; and a light source unit that causes a light source light to enter inside of the light guide plate through an outer peripheral portion of the light guide plate. The light guide plate includes a reflecting portion having a plurality of reflecting elements to reflect the light source light from the light source unit to the viewing side, and the reflecting element has a reflective curved surface formed in a curved surface shape to face the outer peripheral portion where the light source light is incident. Accordingly, the reflecting portion having the reflecting elements to reflect the light source light from the light source unit to the viewing side is provided on the light guide plate, and the reflective curved surface of the reflecting element faces the outer peripheral portion where the light source unit is incident. The reflective curved surface is formed in the curved surface shape. In case where the display light from the display unit passes through the light guide plate to the viewing side, when a part of the display light is refracted by the reflective curved surface, the display light is deflected (for example, diffused). In contrast to an image formed by the display light transmitted through the light guide plate without being deflected, a display light deflected by the refraction at the reflective curved surface is difficult to present as multiple image (for example, double image). Therefore, the appearance of the display unit becomes good. As a factor hindering a good appearance, when a light source light is reflected on a planar reflection plane extending in a direction in which the illumination ranges are shifted, a path of the light source light from one light emitting element to the eye is uniquely determined within a narrow range. For this reason, it is visually recognized that the light source light is reflected only by a specific position in the reflecting portion. More specifically, a striped luminance unevenness corresponding to the arrangement interval of the light emitting elements is visually recognized. In contrast, according to one aspect of the present disclosure, the light source unit includes the plural light emitting elements to emit light source light in illumination ranges of the light guide plate partially offset from each other, and the reflective curved surface has a curvature at least in the offset direction. Accordingly, when the light source light from the light source unit is reflected, the light source light from one light emitting element can be reflected by one reflective curved surface in various directions. In addition, since the reflective curved surface has a curvature in the offset direction of the illumination range, the light source light from other light emitting elements can be reflected to reach the eye of an occupant of the vehicle, without being limited to a corresponding single light emitting element. Since various paths are realized with respect to the light source light, it is visually recognized that the light source light is reflected by each position of the reflecting portion, to suppress the striped luminance unevenness due to the arrangement interval of the light emitting elements. Therefore, the appearance of the reflecting portion becomes good. As described above, it is possible to provide a display device for vehicles, that is excellent both in the appearance of the display unit and the appearance of the reflecting portion. In one aspect of the present disclosure, a display device for vehicles includes: a light source unit that provides a light source light; and a translucent display plate made of a translucent plate having a front plate surface facing a viewing side, and a back plate surface facing a side opposite to the viewing side. The translucent display plate introduces the light source light inside through an outer peripheral portion. The translucent display plate includes: a plurality of reflecting elements recessed from the back plate surface and having a reflective surface to reflect the light source light introduced into the translucent display plate to the viewing side; and a reflective display portion to display a pattern design by an arrangement of the reflecting elements. The reflective display portion includes a composite reflection element having two inclined surfaces with opposite orientations and separated from the outer peripheral portion as going from the back plate surface to the front plate surface, to reflect the light source light, as the reflective surface of the reflecting elements. Accordingly, the two inclined surfaces of the composite reflective surface of the composite reflection element are different in the orientation while the two inclined surfaces are inclined to separate from the outer periphery portion where the light source light is introduced as going from the back plate surface toward the front plate surface. In case where the light source light is reflected to the viewing side by the composite reflection element, when the viewer changes the viewing position, the change in the brightness is different between the two inclined surfaces. Thus, the pattern design of the reflective display portion including the composite reflection element can be recognized as shining brilliantly. Since the glittering display of a pattern design is realized by the reflective display portion, it is possible to provide a display device with improved appearance for a viewer in a vehicle. A first embodiment will be described with reference to the drawings. As shown in In the present embodiment, a lower side of the vehicle indicates a gravity direction relative to the vehicle on the horizontal plane. An upper side of the vehicle indicates the opposite direction to the lower side of the vehicle. As shown in The display unit 20 displays a state of the vehicle with the use of a display plate 21. The display plate 21 is also generally called a dial and is disposed behind the light guide plate 30 on the side opposite to the viewing side. The display plate 21 is formed in a flat plate shape by partially applying semi-translucent or light-shielding print on the viewing side surface of a base material made of, for example, a light transmissive synthetic resin. The printing may be replaced with coating. The display unit 20 includes multiple mechanical display units 22 In this example, since the three mechanical display units 22 The pointer 24 integrally includes a coupling portion 24 In the present embodiment, the ticks 21 In the present embodiment, the left mechanical display unit 22 The image display portion 27 includes a liquid crystal display 28 disposed on the back side of the display plate 21 and in close to the display plate 21. The liquid crystal display 28 of the present embodiment is a liquid crystal panel using thin film transistors (Thin Film Transistor, TFTs) and employs an active matrix liquid crystal display panel formed of plural liquid crystal pixels arranged two-dimensionally. The liquid crystal display 28 displays an image by emitting display light from a rectangular display surface 28 Further, as shown in Further, as shown in As shown in The light source unit 50 for the light guide plate includes multiple light emitting elements 52 that emit light source light. In the present embodiment, the light emitting element 52 is a light emitting diode mounted on a circuit board 19 for the light source, and emits light by being connected to a power supply through a control circuit. Each of the light emitting elements 52 is provided to be switchable on or off, and emits light of the same color with each other. The light emitting elements 52 are arranged along a side of the outer peripheral portion 32 of the light guide plate 30, and oppose to a side surface of the outer peripheral portion 32. The light emitting elements 52 are arranged in the arrangement direction AD along the arrangement direction ED of the light guide plate 30, and spaced from each other by a predetermined distance in the arrangement direction AD. The light source light enters inside of the light guide plate 30 from each light emitting element 52 of the light source unit 50 through the outer peripheral portion 32 of the light guide plate 30. In this embodiment, as shown in An outer edge member 70, as shown in The light shielding portion 76 is made of, for example, an elastomer having a light shielding property, and has a cylindrical shape surrounding a part of the outer peripheral light guide portion 72 except for the facing surfaces 73 and 74. As a result, when the light source light emitted by the light emitting element 52 is guided by the outer peripheral light guide portion 72, the light source light is less likely to leak to the outside of the light shielding portion 76. The light shielding portion 76 extends toward the light guide plate 30 than the plate facing surface 74. The outer edge member 70 is held between the rear case 12 and the window plate 14. Further, the outer edge member 70 holds the light guide plate 30 between the ends of the light shielding portion 76 adjacent to the light guide plate 30. The flexibility of the elastomer of the light shielding portion 76 reduces abnormal noises such as collision noises between the light guide plate 30 and the case portion 10, which may occur in response to vibration of the vehicle. The light source lights from the light emitting elements 52 that enter the inside of the light guide plate 30 through the outer peripheral portion 32 illuminate illumination ranges partially shifted from each other in the extending direction ED. In this embodiment, since the light source light emitted from the light emitting elements 52 arranged in the arrangement direction AD directly illuminates the corresponding illumination range, the illumination ranges are offset in the arrangement direction AD. In other words, the direction in which the illumination ranges are offset substantially coincides with the arrangement direction AD. As shown in As shown in The reflective curved surface 37 The reflective back surface 37 The two side surfaces 37 In the reflecting portion 36, the reflecting elements 37 are disposed one by one, being separated from each other, through the flat portion 38 formed flat along the extending direction of the light guide plate 30. The reflecting elements 37 of the present embodiment are arranged in a lattice pattern in two directions, e.g., the arrangement direction AD of the light emitting elements 52 and the vertical direction VD perpendicular to the arrangement direction AD. The width dimension of the reflecting element 37 in the arrangement direction AD is set to 75 μm, for example. The arrangement pitch in the arrangement direction AD is preferably set in the range of 100 to 200 μm, for example, 150 μm. The arrangement pitch in the vertical direction is preferably set to 60 to 120 μm, for example, 75 μm. In this way, the arrangement pitch of the reflecting elements 37 is set to be sufficiently smaller than the arrangement pitch of the light emitting elements 52. The reflecting elements 37 of the present embodiment are arranged at a predetermined constant density within the reflecting portion 36, thereby constituting a pattern design, due to the pitch setting. In case where each light emitting element 52 of the light source unit 50 is turned on, the pattern design is displayed when each reflecting element 37 of the reflecting portion 36 reflects the light from the light source unit 50 to the viewing side. When each light emitting element 52 of the light source unit 50 is turned off, the pattern design is not displayed. More specifically, when each light emitting element 52 of the light source unit 50 is turned on, as described above, the light source light incident from the outer peripheral portion 32 of the light guide plate 30 to the inside is reflected by the reflective curved surface 37 As the density of the reflecting elements 37 is higher, the amount of reflected light of the light source light increases, so that the pattern design can be displayed with high luminance. However, as a contrary, if the density of the reflecting elements 37 is increased, there is a possibility that the reflecting portion 36 is perceived as whitish even when the light emitting elements 52 of the light source unit 50 are turned off. The density of the reflecting elements 37 is obtained by dividing the area occupied by the reflecting elements 37 in the reflecting portion 36 by the total area of the reflecting portion 36 (that is, the sum of the area occupied by the reflecting elements 37 and the area occupied by the flat portion 38 in the reflecting portion 36). According to experiments conducted by the present inventors, in case where the density of the reflecting elements 37 is 7% and 9%, when each of the light emitting elements 52 of the light source unit 50 is turned off, the light guide plate 30 is transparent. In the case of 12%, the transparency of the light guide plate 30 could not be obtained. Therefore, the transparency limit at which the light guide plate 30 is recognized as a transparent plate is considered to be 10%. Therefore, it can be said that it is preferable that the density of the reflection elements 37 is set to 9%. Further, in the present embodiment, the reflecting portion 36 is disposed to include a portion overlapping with the image display portion 27 of the light guide plate 30 in the thickness direction TD. Therefore, as shown in The display light entering the reflective back surface 37 On the other hand, since the reflective curved surface 37 The operation and effects of the first embodiment will be described below. According to the first embodiment, the light guide plate 30 includes the reflecting portion 36 in which the plural reflecting elements 37 are arranged in the arranging direction ED to reflect the light source light from the light source unit 50 to the viewing side, and the reflective curved surface 37 According to the first embodiment, in the reflection of the light source light from the light source unit 50, the light source light from one light emitting element 52 can be reflected by one reflective curved surface 37 As described above, it is possible to provide the display device 100 which is good both in the appearance of the display unit 20 and the appearance of the reflecting portion 36. According to the first embodiment, since the reflecting element 37 is formed in a concave hole shape recessed inward from the back side of the light guide plate 30, the reflecting element 37 cannot to be visually recognized when the light source unit 50 is turned off, and the appearance becomes favorable. According to the first embodiment, the reflective curved surface 37 According to the first embodiment, the generating line GL of the reflective curved surface 37 According to the first embodiment, the reflective back surface 37 According to the first embodiment, each of the reflecting elements 37 spaced from each other via the flat portion 38 has the side surface 37 Multiple images (for example, double images) and moiré are likely to occur remarkably when the display light from the image display portion 27 passes through the light guide plate 30 through the reflecting portion 36. However, in the reflective curved surface 37 Although the first embodiment has been described above, it can be applied to various embodiments and combinations without departing from the gist of the present disclosure. As a first modification, the image display portion 27 may include, for example, an organic EL display in addition to the liquid crystal display 28. In a second modification, the density of the reflecting element 37 may be changed depending on places, for example, in a gradation manner, in the reflecting portion 36, such that a pattern design whose luminance changes in a gradation manner may be displayed. Further, the recess dimension of the reflecting element 37 may be changed according to the location, to display a pattern design whose luminance changes in a gradation pattern. In a third modification, the reflective curved surface 37 In a fourth modification, the reflective curved surface 37 In a fifth modification, the side surface 37 As a sixth modification, the patterns formed by the reflecting portion 36 are not limited. As a seventh modification, as shown in An eighth modification provides a vehicle display device 200 as shown in The reflecting portion 236 provides a pattern design in a region of the light guide plate 230 corresponding to the outer periphery of the mechanical display unit 222, annularly arranged over the entire circumference to border the tick 221 The reflection plane 237 In this shape, the density of the reflecting element 237 can be calculated from the equation of D=W·H/[(Ph+H)·(W+Pw)]. W is the width dimension of the reflection element 237 in the arrangement direction AD. H is the height dimension of the reflection element in the vertical direction VD. Pw is the arrangement pitch in the arrangement direction AD. Ph is the arrangement pitch in the vertical direction VD. Here, the results of experiments by the inventors will be described to compare the reflection element 37 of the first embodiment and the reflection element 237 of the eighth modification. In the comparative experiments, the visually-recognized luminance unevenness of the pattern design reflected by the reflecting portion 36 or 236 is compared. In order to easily compare differences in the luminance unevenness, a pattern constituted by the reflecting portion 36 is formed in a rectangular shape for the experiments. Further, in a ninth modification, each reflection element 337 of the reflecting portion 336 has the same shape as the reflection element 337 of the eighth modification. In each of the reflecting elements 237 of the eighth modification, the reflection planes 237 Specifically, the reflecting portion 336 includes three kinds of reflecting elements 337 The three kinds of reflecting elements 337 In a tenth modification, the plural light emitting elements 52 of the light source unit 50 may be replaced with, for example, a surface light source of organic EL to cause the light source light to be incident on the light guide plate 30. A second embodiment will be described with reference to the drawings. As shown in In the present embodiment, a lower side of the vehicle indicates a gravity direction relative to the vehicle on the horizontal plane. An upper side of the vehicle indicates the opposite direction to the lower side of the vehicle. A left side of the vehicle or a right side of the vehicle indicates a left side or a right side with respect to an occupant seated on the seat. As shown in The case portion 510 includes a back side case 511, a viewing side case 512, a plate window member 513, and a smoke plate 514. The back side case 511 is made of, for example, synthetic resin to have a light shielding property, and covers the display body 520 from the back side opposite to the viewing side. The viewing side case 512 disposed on the viewing side of the back side case 511 is made of, for example, synthetic resin with a light shielding property, and is formed in the shape of an outer frame case that surrounds the display body 520 from the outer peripheral side. Further, the viewing side case 512 holds the translucent display plate 530 and the light source unit 540. The plate window member 513 is made of, for example, a synthetic resin with a light shielding property, and is disposed on the viewing side of the display body 520. The plate window member 513 is formed in a pipe shape having openings on the viewing side and the back side along an outer peripheral contour of the device 500. The smoke plate 514 is made of a semi-translucent resin such as colored acrylic resin or polycarbonate resin, and is formed in a curved plate shape that closes the entire surface of the viewing-side opening of the plate window member 513. As a result, the display body 520 and the translucent display plate 530 are visually recognized by the occupant through the smoke plate 514. The transmittance of the smoke plate 514 according to the present embodiment is set to about 30% by smoke-like coloring, but may be set to an arbitrary value of 30% or more. The display body 520 includes a back side display plate 521, multiple pointer display units 522, and an image display portion 525. The back side display plate 521 is also generally called a dial plate, and is disposed between the back side case 511 and the translucent display plate 530. The back side display plate 521 is formed in a flat plate shape by partially applying semi-translucent or light shielding printing on the surface of a translucent base material such as an acrylic resin or a polycarbonate resin. The printing may be replaced with coating. In the present embodiment, two of the pointer display units 522 are provided, respectively in a left region and a right region of the back side display plate 521. In this example, since the two pointer display units 522 have the same configuration as each other, the left pointer display unit 522 will be described as a representative. The pointer display unit 522 includes a stepping motor 523 and a pointer 524. The stepping motor 523 is held by a main circuit board 526 disposed further on the back side of the back side display plate 521, between the back side case 511 and the back side display plate 521. The pointer 524 integrally includes a coupling portion 524 The ticks 521 The image display portion 525 is disposed in a central region of the back side display plate 521. The image display portion 525 includes a liquid crystal display 525 A region of the back side display plate 521 facing the display surface 525 The translucent display plate 530 is made of a synthetic resin such as an acrylic resin or a polycarbonate resin so as to be light transmissive, and has a flat plate shape having a front plate surface 531 The light source unit 540 has plural light emitting elements 541 arranged on a circuit board 542 for the light source in a straight line at an arrangement pitch PT0. Each light emitting element 541 employs a light emitting diode which is a point-state light source, and emits light by being connected to a power supply. In the present embodiment, each light emitting element 541 is a multicolor light emitting diode, but may be a single color light emitting diode. It is preferable that each light emitting element 541 in a lighting state is controlled to emit light with substantially the same color and substantially the same brightness. The light source unit 540 is arranged to face the outer peripheral portion 532 The light source light introduced into the translucent display plate 530 travels inside as a main traveling direction from the upper side toward the lower side. The translucent display plate 530 includes a reflective display portion 533. As shown in Specifically, in the present embodiment, the pattern design 534 includes a frame design 534 The plural reflecting elements 535 include a composite reflecting element 536. In this embodiment, all the reflecting elements 535 constituting the reflective display portion 533 are composite reflecting elements 536. Each composite reflecting element 536 is recessed in a triangular pyramidal shape from the back plate surface 531 The two inclined surfaces 537 Each reflecting element 536 has a straight connecting edge 536 The two inclined surfaces 537 The element back surface 538 is disposed at a position corresponding to a base in the isosceles triangle shape on the plan view, and is formed to face opposite from the outer peripheral portion 532 As shown in In the present embodiment, the composite reflecting elements 536 are separated from each other by the arrangement pitch PT1, PT2 respectively set in the arrangement direction D1, D2 through the flat portion 539 formed flat on the back plate surface 531 The composite reflecting elements 536 are arrayed in a so-called staggered pattern in which the positions of the concave bottom portions 536 The reflective display portion 533 in which the composite reflecting elements 536 are arranged reflects light source light by each composite reflective surface 537 as described above so that an area where the composite reflecting elements 536 are located in the pattern design 534 is brightened and displayed in a surface light source. In the present embodiment, uneven illumination is intentionally generated in the light source unit 540 by arranging the light emitting elements 541 which are point light sources. At the outer peripheral portion 532 The introduction of such a light source image will be described in detail with reference to Specifically, as shown in As shown in As shown in If the viewer is, for example, a driver, the pattern design 534 is visually perceived as sparkling as the position of the eye moves accompanying the driving operation of the vehicle. The pattern design 534 of the reflective display portion 533 which is shiny is displayed together with the display by the display body 520 arranged to face the back plate surface 531 When the light source unit 540 does not introduce the light source light into the inside of the translucent display plate 530 by turning off the light, the reflecting elements 536 are not visually recognized due to the fine size and through the flat portion 539. According to the present embodiment, the two inclined surfaces 537 According to the present embodiment, the two inclined surfaces 537 According to the present embodiment, the image formed by the light emitting elements 541 as plural point light sources is displayed in the area where the composite reflecting elements 536 are arranged in the pattern design 534. That is, the image formed by the light emitting element 541 is visually recognized by being reflected by the two inclined surfaces 537 According to the present embodiment, the plural composite reflecting elements 536 are arranged to be separated from each other through the flat portion 539. Therefore, the luminance and appearance of the pattern design 534 can be adjusted by suitably setting the positional relationship and the ratio of the areas of the composite reflecting element 536 and the flat portion 539. Thus, the range of expression of the pattern design 534 can be expanded. In addition, the composite reflecting element 536 can be made almost invisible to the viewer when the light source unit 540 is turned off, by reducing the size of the composite reflecting element 536 and by setting the area of the flat portion 539 to be a certain percentage or more. Thus, the appearance is improved. According to the present embodiment, the composite reflecting elements 536 are arranged in a staggered manner in which the positions thereof are shifted by a half of the array pitch for each direction. In this case, a comparatively gentle impression can be provided to the pattern design 534, so that the appearance is improved. According to the present embodiment, the display body 520 is further provided to face the back plate surface 531 Although the embodiments are described above, the present disclosure is not construed as being limited to the embodiments, and can be applied to various embodiments within a scope not departing from the spirit of the present disclosure. Specifically, as a first modification, the composite reflecting element 536 having the composite reflective surface 537 may be only a part of the plural reflecting elements 535 of the reflective display portion 533. In a second modification, the reflecting elements 535 may be appropriately arranged, to display various symbols such as an index pointed by a pointer, as the pattern design 534. In a third modification, the composite reflecting element 536 may be formed in a concave shape that is more complicated than a triangular pyramidal shape while being provided with the composite reflective surface 537 constituted by the two inclined surfaces 537 In a fourth modification, the inclination angles of the two inclined surfaces 537 In a fifth modification, the composite reflection elements 536 may not be arranged in a staggered pattern. For example, the composite reflecting elements 535 may be arranged in a rectangular lattice shape, a triangular lattice shape, or a hexagonal lattice shape. In a sixth modification, the light source unit 540 may have a light source in the form of a surface light source instead of a light source in the form of a point light source. As a seventh modification, as shown in CROSS REFERENCE TO RELATED APPLICATIONS
TECHNICAL FIELD
BACKGROUND
SUMMARY
BRIEF DESCRIPTION OF THE DRAWINGS
DETAILED DESCRIPTION