Vehicle lamp
The vehicle lamp design addresses the issue of reduced radar detection accuracy by using prisms with a pitch and height of 0.43 mm or less to minimize radio wave reflection, enabling efficient light and radio wave emission with a decorative light-emitting surface.
Patent Information
- Application Number
- JP2024105221
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Filing Date
- 2024-06-28
- Publication Date
- 2026-01-16
AI Technical Summary
The arrangement of an optical element with a prism structure that forms a light-emitting surface overlapping with a radar device's radio wave emitting side leads to a decrease in detection accuracy due to radio wave reflection and refraction by the prism.
A vehicle lamp design with an optical element having prisms on its surface opposite the radio wave emission direction, where the prisms have a pitch and height of 0.43 mm or less, configured to minimize radio wave reflection and refraction, and a lens element to introduce light in the same direction, allowing both light and radio wave emission without significant interference.
The design suppresses the decrease in radar detection accuracy while maintaining a decorative light-emitting surface, ensuring efficient radio wave transmission and enhancing the vehicle's aesthetic appeal.
Smart Images

Figure 2026006331000001_ABST
Abstract
Description
[Technical Field]
[0001] The present disclosure relates to a vehicle lamp. [Background technology]
[0002] A radar device is known that emits radio waves such as microwaves and millimeter waves outside a vehicle and uses the reflected waves to determine the distance to an obstacle, etc. The radar device is provided with a cover that transmits radio waves on the radio wave emitting side. The cover reflects a portion of the radio waves from its back surface, and the reflected waves are received by the radar device. As a result, the detection accuracy of the radar device is reduced by the waves reflected by the cover. To address this, a cover with an uneven back surface has been proposed (see, for example, Patent Document 1). This cover utilizes the fact that radio waves are diffused by the uneven structure. The radio waves emitted by the radar device are reflected in a diffused state by the back surface of the cover. As a result, the cover reduces the amount of radio waves received by the radar device through reflection from the back surface, thereby preventing a decrease in detection accuracy. [Prior art documents] [Patent documents]
[0003] [Patent Document 1] Japanese Patent Application Publication No. 2019-110428 Summary of the Invention [Problem to be solved by the invention]
[0004] The present inventors have been researching a vehicle lamp having an optical element. The optical element includes a prism and introduces light from a light source. The optical element uses reflection from the reflective surface of the prism to emit the light introduced from the light source toward the outside of the vehicle. Furthermore, the present inventors have discovered that it is possible to reduce installation space by arranging the radar device and the optical element in an overlapping manner. However, since the optical element reflects light to form a light-emitting surface, the prism cannot be removed. Therefore, if the optical element is overlapped on the radio wave emitting side of the radar device, the radio waves from the radar device will be reflected by the prism, resulting in a decrease in detection accuracy.
[0005] The present disclosure has been made to solve such conventional problems, and its purpose is to provide a vehicle lamp that can suppress a decrease in detection accuracy when an optical element having a structure that forms a light-emitting surface using the reflective surface of a prism and a radio wave emitting means are arranged in an overlapping manner. [Means for solving the problem]
[0006] The vehicle lamp according to the present disclosure comprises: a radio wave emitting means for emitting radio waves in a predetermined direction; an optical element that is arranged so as to overlap a radio wave emitting area on the side of the radio wave emitting means in the predetermined direction, and that has a plurality of prisms on at least a surface opposite the predetermined direction, the prisms having a reflective surface that introduces light from a light source from a direction intersecting the predetermined direction and reflects it toward the predetermined direction, the reflective surfaces of the plurality of prisms forming a light-emitting surface; and a lens element that is arranged on the side of the optical element in the predetermined direction and introduces light from the optical element and emits it in the predetermined direction, the optical element having the radio wave emitting area and the light-emitting surface overlapping each other, and the pitch and height of the plurality of prisms at least within the radio wave emitting area being 0.43 mm or less. [Effects of the Invention]
[0007] According to the present disclosure, it is possible to provide a vehicle lamp that can suppress a decrease in detection accuracy when an optical element having a structure that forms a light-emitting surface using the reflective surface of a prism and a radio wave emitting means are arranged in an overlapping manner. [Brief explanation of the drawings]
[0008] [Figure 1] 1 is a side cross-sectional view showing a vehicle lamp according to a first embodiment. [Figure 2] FIG. 2 is an exploded perspective view showing a partial configuration of FIG. 1. [Figure 3] 3A and 3B are diagrams showing a partial configuration of the radar device shown in FIG. 2, in which (a) is a cross-sectional view from above, and (b) is an enlarged view of a portion of (a). [Figure 4] 10A and 10B are diagrams showing a partial configuration of a radar device according to a second embodiment, in which (a) is a top cross-sectional view and (b) is a partially enlarged view of (a). [Figure 5] FIG. 10 is a cross-sectional view showing a modified example of a plurality of prisms. DETAILED DESCRIPTION OF THE INVENTION
[0009] Vehicle lighting devices according to embodiments of the present disclosure will be described below, but the present disclosure is not limited to the following embodiments and can be modified as appropriate without departing from the spirit of the present disclosure. Furthermore, in the embodiments, some configurations are omitted from illustration and description, but it goes without saying that publicly known or well-known technologies are applied as appropriate to the details of the omitted technologies within the scope of the content described below.
[0010] Fig. 1 is a side cross-sectional view showing a vehicle lamp according to a first embodiment, and Fig. 2 is an exploded perspective view showing a partial configuration of Fig. 1. The vehicle lamp 1 shown in Fig. 1 is installed, for example, near the center of the front of a vehicle. The vehicle lamp 1 includes a case 10, a radar irradiation unit 20, and an outer lens 30.
[0011] The case 10 is a member that houses each element such as the radar irradiation unit 20. The case 10 has an opening O on the light emission side. The opening O of the case 10 is configured to be closed by an outer lens 30. The outer lens 30 is configured, for example, by a clear lens.
[0012] As shown in FIG. 2, the radar irradiation unit 20 includes a radar device (radio wave emission means) 21, a housing 22, an optical member 23, a light guide member 24, a light source 25, a lens (lens member) 26, and a mask (pattern forming unit) 27.
[0013] The radar device 21 emits millimeter waves, a type of radio wave, forward (in a predetermined direction). The radar device 21 also receives reflected waves that are the emitted millimeter waves reflected by obstacles and returned. The radar device 21 includes a calculation unit (not shown). The calculation unit detects the situation around the vehicle, for example, by measuring the received reflected waves to determine the distance to an obstacle. The calculation unit is not limited to being provided within the radar device 21, and may be configured by a CPU (Central Processing Unit) or the like external to the radar device 21.
[0014] The radar device 21 is configured to emit radio waves with a predetermined directivity, so that a radio wave emission area (see symbol RA in FIG. 3 described later) is formed in front of the radar device 21, which is the radio wave emission side.
[0015] The housing 22 is a support member that supports the optical member 23. The optical member 23 emits light forward. The optical member 23 includes a rectangular plate 23a and a circular portion 23b that is provided so as to roughly surround the rectangular plate 23a. Light introduction portions 23c are formed on both sides of the circular portion 23b. A light guide member 24 is optically connected to the introduction portion 23c. In FIG. 2, the light guide member 24 is separated from the introduction portion 23c, but they may be in contact with each other. The light guide member 24 may also be integrated with the optical member 23. A light source 25 is provided near the end of the light guide member 24 that is opposite to the introduction portion 23c. Light from the light source 25 is guided from the introduction portion 23c through the light guide member 24 into the optical member 23.
[0016] Since the housing 22 supports the optical member 23 having such a shape, it is formed of, for example, a circular plate. Note that the introduction portion 23c is not limited to being provided on both sides, but may be provided on only one side. Also, the introduction portion 23c may be provided on the top or bottom. Furthermore, the introduction portion 23c may introduce light from a direction intersecting the front-to-rear direction, or may introduce light from a slightly oblique direction. In addition, the number of introduction portions 23c is not limited to two, but may be one or three or more.
[0017] 3A and 3B are diagrams showing a partial configuration of the radar device 21 shown in FIG. 2, where (a) is a top cross-sectional view and (b) is a partial enlarged view of (a). As shown in FIG. 3A, in the first embodiment, the optical member 23 is provided so that at least a portion of it overlaps with the radio wave emission area RA. In the first embodiment, it is preferable that the light source 25 (see FIG. 2) is located outside the radio wave emission area RA and introduces light into the optical member 23 via the light-guiding member 24 (see FIG. 2).
[0018] The optical member 23 also has a plurality of prisms P on its rear surface (surface opposite to the predetermined direction) 23d. As shown in FIG. 3(b), the plurality of prisms P have, for example, a triangular cross section. However, the plurality of prisms P are not limited to a triangular cross section and may have other shapes, such as an arc-shaped cross section. The optical member 23 reflects the introduced light forward by the reflecting surfaces Pa of the plurality of prisms P. The optical member 23 forms a light-emitting surface LS by the reflecting surfaces Pa of the plurality of prisms P, and allows pedestrians and others in front of the vehicle to see the light-emitting state.
[0019] The lens 26 shown in Fig. 2 is provided in front of the optical member 23 and receives light from the optical member 23 and emits it forward. This lens 26 is configured, for example, as a clear lens, similar to the outer lens 30 (see Fig. 1). Note that in the first embodiment, the lens 26 is a separate member from the outer lens 30, but this is not particularly limited. In the vehicle lamp 1, the lens 26 itself may be configured as an outer lens.
[0020] The mask 27 is provided behind the lens 26. The mask 27 partially blocks light reflected by the prisms P of the optical member 23, thereby illuminating the light with a predetermined pattern. The pattern includes not only figures and patterns but also character strings. The lens 26 is concave and open at the rear. Therefore, the mask 27 is provided to fit into the recess of the lens 26. The mask 27 may also be provided outside the recess. The mask 27 may be a member having a certain thickness or a thin plate-like member. The mask 27 may block light using a black portion with high light absorption, or may block light by utilizing reflection from a silver portion with high light reflectivity. Furthermore, although the mask 27 is provided behind the lens 26 in the first embodiment, this is not a limitation, and the mask 27 may also be provided in front of the lens 26 or even in front of the outer lens 30. The mask 27 may also be formed integrally with the lens 26 by coating the lens 26 with paint or vapor deposition.
[0021] The radar irradiation unit 20 as described above can emit radio waves from the radar device 21 while also emitting light by utilizing the light-emitting surface LS of the optical member 23. However, because the light-emitting surface LS of the optical member 23 overlaps with the radio wave emission area RA, the radio waves are reflected and refracted by the multiple prisms P, which reduces the detection accuracy of the radar device 21.
[0022] 2 and 3, the pitch p and height h of the prisms P are set to 0.43 mm or less, at least within the radio wave emission area RA. Here, the pitch p indicates the distance between adjacent prisms P, and refers to the distance between the same points of a specific prism P and its nearest neighbor. The height h refers to the difference between the foremost and rearmost points of the prism P. By setting the pitch p and height h of the prisms P to 0.43 mm or less, the prisms P are less likely to reflect and refract radio waves. This allows the vehicular lamp 1 to suppress a decrease in the detection accuracy of the radar device 21.
[0023] This is based on the following theory. First, the center frequency of radio waves emitted from a vehicle radar device 21 is set to 77 GHz. The present inventors discovered that by configuring multiple prisms P with a pitch p and height h equal to or less than the value obtained by multiplying the wavelength of the radio waves by a subwavelength, the radio waves are less likely to be reflected. Specifically, the wavelength of a 77 GHz frequency is 1 / 77 G, and the subwavelength is 1 / 10 of that, or 1 / 770 G. Since the speed of light is 299,792,458 km per second, 299,792,458 km × (1 / 770 G) ≒ 0.39 mm. Therefore, when 77 GHz radio waves are irradiated onto multiple prisms P with a pitch p and height h equal to or less than 0.39 mm, the radio waves pass through the multiple prisms P with almost no reflection or refraction. Furthermore, given that the center frequency of the radio waves is 77 GHz, the frequency of the radio waves emitted by the radar device 21 can be considered to be in the range of 70 GHz to approximately 85 GHz. Therefore, by setting the pitch p and height h of the multiple prisms P to 0.43 mm or less, radio waves are less likely to be reflected and refracted, and a decrease in detection accuracy can be suppressed. Note that when the width of the radio waves emitted by the radar device 21 is narrower, for example, between 76 GHz and 78 GHz, the pitch p and height h of the multiple prisms P are preferably 0.395 mm or less.
[0024] Furthermore, in the first embodiment, the optical member 23 is configured to introduce light from both sides. When light is introduced from the left side, the light is guided from left to right. In the optical member 23, the right surface S1 of the multiple prisms P, which is the surface facing the light guide direction, serves as the reflecting surface Pa. Similarly, the optical member 23 also introduces light from the right side. In this case, the light is guided from right to left, and the left surface S2 of the multiple prisms P, which is the surface facing the light guide direction, serves as the reflecting surface Pa.
[0025] Here, it is preferable that the angle θ of the reflective surface Pa with respect to a plane perpendicular to the front-to-rear direction in a cross section along the light guide direction is 50° or less, because this makes it easier for light from the light guide direction to be reflected forward, thereby increasing the reflection efficiency.
[0026] Furthermore, in the first embodiment, it is preferable that the height h of the multiple prisms P is equal to or less than the pitch p. This also makes it possible to reduce the angle θ and increase the reflection efficiency of light from the light guide direction.
[0027] Next, the operation of the vehicle lamp 1 according to the first embodiment will be described. First, in the vehicle lamp 1 according to the first embodiment, light is emitted from the light source 25. The light from the light source 25 passes through the light-guiding member 24 and is introduced into the optical member 23 from the introduction portion 23c.
[0028] Light introduced into the optical member 23 is incident on a plurality of prisms P formed on the rear surface 23d of the optical member 23. In the plurality of prisms P, surfaces S1 and S2 directly facing the light guide direction function as reflecting surfaces Pa. In particular, when the angle θ of the reflecting surfaces Pa of the plurality of prisms P is 50° or less and the height h is equal to or less than the pitch p, the introduced light is efficiently reflected forward.
[0029] The light reflected by the multiple prisms P reaches the mask 27. A portion of the light that reaches the mask 27 is cut off and emitted outside the vehicle through the lens 26 and the outer lens 30. As a result, the viewer perceives the light in the shape cut off by the mask 27. For example, if the mask 27 is formed in the shape of an emblem, the viewer will perceive the emblem in a glowing state.
[0030] The radar device 21 also emits millimeter waves toward the front of the vehicle. An optical member 23 is located within a radio wave radiation area RA of the millimeter waves. Among the multiple prisms P of the optical member 23, at least those within the radio wave radiation area RA are formed with a pitch p and a height h of 0.43 mm or less.
[0031] Therefore, the millimeter waves from the radar device 21 are less likely to be reflected and refracted by the plurality of prisms P. As a result, the deterioration of the detection accuracy of the radar device 21 is suppressed.
[0032] Thus, in the optical member 23 of the vehicular lamp 1 according to the first embodiment, the pitch p and height h of the prisms P are 0.43 mm or less, at least within the radio wave emission area RA. The radar device 21 used in a vehicle emits radio waves centered at approximately 77 GHz. The inventors discovered that by configuring the prisms P with a pitch p and height h that are equal to or less than the value obtained by multiplying the speed of light by a subwavelength of the radio wave wavelength, the radio waves from the radar device 21 are less likely to be reflected and are properly transmitted through the optical member 23. Therefore, the vehicular lamp 1 can suppress a decrease in detection accuracy when the radar device 21 is arranged overlapping the optical member 23, which has a structure in which the light-emitting surface LS is formed using the reflecting surface Pa of the prisms P.
[0033] The vehicle lamp 1 also includes a mask 27 for partially cutting the light from the multiple prisms P to illuminate the light in a predetermined pattern. This allows for highly decorative expressions such as manufacturer emblems depending on the shape of the mask 27. As a result, the vehicle lamp 1 can suppress a decrease in detection accuracy while achieving a highly decorative light-emitting form.
[0034] Furthermore, in the vehicular lamp 1, the light source 25 is located outside the radio wave radiation area RA and introduces light to the optical member 23 via the light-guiding member 24. Therefore, in the vehicular lamp 1, the presence of the light source 25 is less likely to affect the radiation of radio waves.
[0035] The optical member 23 has surfaces S1 and S2 directly facing the light guide direction as reflecting surfaces Pa of a plurality of prisms P. The angle θ of the reflecting surfaces Pa is set to 50° or less. Therefore, the vehicle lamp 1 can increase the light reflection efficiency of the plurality of prisms P.
[0036] Furthermore, the height h of the plurality of prisms P is set to be equal to or less than the pitch p. Therefore, the reflective surfaces Pa of the plurality of prisms P have a more acute angle. Therefore, the vehicle lamp 1 can improve the light reflection efficiency of the plurality of prisms P.
[0037] Next, a second embodiment of the present disclosure will be described. The vehicle lamp according to the second embodiment is similar to that of the first embodiment, but has a partial configuration different from that of the first embodiment. The differences from the first embodiment will be described below.
[0038] 4A and 4B are diagrams showing a partial configuration of a radar device 21 according to a second embodiment, where (a) is a top cross-sectional view and (b) is a partial enlarged view of (a). As shown in FIG. 4, the optical member 23 has a plurality of second prisms P2 on its front surface (surface facing the predetermined direction) 23e. The plurality of second prisms P2 are similar to the plurality of prisms P. The plurality of second prisms P2 reflect light from the light source 25 (see FIG. 2) backward by the reflecting surface Pb. Furthermore, the plurality of second prisms P2 have a pitch p2 and a height h2 of 0.43 mm or less at least within the radio wave emission area RA.
[0039] The pitch p2 and height h2 of the multiple second prisms P2 are 0.43 mm or less for the same reasons as the pitch p and height h of the multiple prisms P are 0.43 mm or less. The pitch p2 and height h2 of the multiple second prisms P2 are preferably 0.395 mm or less. Each of the multiple second prisms P2 has a surface directly facing the light guide direction as a reflecting surface Pb of the second prism P2. Furthermore, the angle θ2 between the reflecting surface Pb and a plane perpendicular to the front-to-rear direction in a cross section along the light guide direction is preferably 50° or less. Additionally, the height h2 of the multiple second prisms P2 is preferably equal to or less than the pitch p2.
[0040] The optical member 23, which includes such a plurality of second prisms P2, reflects light from the light source 25 backward. A housing 22 (see FIG. 2) is provided behind the optical member 23. Therefore, the optical member 23 according to the second embodiment illuminates the housing 22. Therefore, if the housing 22 is made of a material or color with high reflectivity, such as white, the reflected light from the housing 22 can be directed further toward the optical member, thereby reducing the loss of light from the light source 25 and enabling more uniform irradiation of light from the optical member (emblem portion) 23.
[0041] In this way, the vehicular lamp 1 according to the second embodiment can suppress a decrease in detection accuracy, as in the first embodiment. Furthermore, the vehicular lamp 1 can also have a light-emitting form with a highly aesthetic design. Furthermore, in the vehicular lamp 1, the light source 25 is located outside the radio wave emission area RA, so the presence of the light source 25 is less likely to affect the emission of radio waves. Furthermore, since the angle θ of the reflective surface Pa is 50° or less, the vehicular lamp 1 can increase the light reflection efficiency of the multiple prisms P. Furthermore, since the height h of the multiple prisms P is equal to or less than the pitch p, the vehicular lamp 1 can increase the light reflection efficiency of the multiple prisms P.
[0042] Furthermore, according to the second embodiment, the optical member 23 has a plurality of second prisms P2 on the front surface 23e, the plurality of second prisms P2 having a pitch p2 and a height h2 of 0.43 mm or less. Therefore, the vehicle lamp 1 can further improve its design by reflecting light backward by the reflective surfaces Pb of the plurality of second prisms P2, thereby illuminating the housing 22, etc.
[0043] The present disclosure has been described above based on the embodiments, but the present disclosure is not limited to the above embodiments, and modifications may be made without departing from the spirit of the present disclosure, and techniques from the above embodiments or publicly known or well-known techniques may be combined.
[0044] For example, the shapes of various components in the above-described embodiments are not limited to those shown in the drawings. FIG. 5 is a cross-sectional view showing a modified example of the multiple prisms P. The multiple prisms P shown in FIG. 3 have a bilaterally symmetrical structure. However, this is not limiting, and the multiple prisms P may be bilaterally asymmetrical, as shown in FIG. 5. This is because, particularly when the light guide direction is one direction, if the multiple prisms P are asymmetrical, it becomes easier to set the angle of the reflecting surface Pa. Furthermore, the multiple prisms P are not limited to being bilaterally asymmetrical, but may also be asymmetrical in a direction intersecting the bilaterally, such as up and down. In addition, the multiple second prisms P2 may be asymmetrical.
[0045] Furthermore, the multiple prisms P and the multiple second prisms P2 may have different shapes inside and outside the radio wave emission area RA.
[0046] In addition, in the above embodiment, the vehicle lamp 1 is provided at the front center of the vehicle, but this is not limited to this, and it may be provided at a different position, such as a position slightly spaced to the left or right in front, or at the rear center.
[0047] Furthermore, in the above embodiment, the vehicle lamp 1 is provided with the mask 27, but is not limited to this, and the mask 27 may not be provided.
[0048] Furthermore, in the above embodiment, the radar device 21 has both the function of emitting and receiving radio waves, but this is not limited to this. Only the receiving part may be located outside the vehicle lamp 1, and only the radio wave emitting part of the radar device 21 may be provided in the vehicle lamp 1. [Explanation of symbols]
[0049] 1: Vehicle lighting fixtures 21: Radar device (radio wave emission means) 23: Optical components 23c: Introduction 23d: Rear surface (surface opposite to the specified direction) 23e: Front face (face facing in a specified direction) 24: Light guide member 25:Light source 26: Lens (lens component) 27: Mask (pattern forming part) LS: Light emitting surface P: Multiple prisms P2: Multiple second prisms Pa,Pb: Reflective surface RA: Radio wave radiation area S1, S2: The opposite sides h, h2: height p, p2: pitch θ,θ2: angles
Claims
1. a radio wave emitting means for emitting radio waves in a predetermined direction; an optical member that is provided so as to overlap with the radio wave emitting area on the side of the radio wave emitting means in the predetermined direction, and that has a plurality of prisms on at least a surface opposite to the predetermined direction, the prisms having reflective surfaces that introduce light from a light source in a direction intersecting the predetermined direction and reflect it toward the predetermined direction, the reflective surfaces of the plurality of prisms forming a light emitting surface; a lens member that is provided on the predetermined direction side of the optical member and that introduces light from the optical member and then emits the light in the predetermined direction, The light emitting surface of the optical member overlaps with the radio wave emitting area, and the pitch and height of the plurality of prisms at least within the radio wave emitting area are 0.43 mm or less. A vehicle lamp characterized by:
2. The optical element further includes a pattern forming unit for partially cutting the light from the plurality of prisms of the optical element to form a light irradiation state with a predetermined pattern.
2. A vehicle lamp according to claim 1.
3. The light source is located outside the radio wave radiation area and introduces light into the optical member through a light guide member.
2. A vehicle lamp according to claim 1.
4. the optical member has a surface facing a light guide direction of the introduced light from the light source as the reflecting surface of the plurality of prisms, The reflection surface has an angle of 50° or less with respect to a plane perpendicular to the predetermined direction in a cross section along the light guide direction.
2. A vehicle lamp according to claim 1.
5. The height of the plurality of prisms is equal to or less than the pitch.
2. A vehicle lamp according to claim 1.
6. The optical member has a plurality of second prisms on the surface on the predetermined direction side, and reflects light from the light source to the opposite side of the predetermined direction by the reflecting surfaces of the plurality of second prisms, and the pitch and height of the plurality of second prisms are 0.43 mm or less at least within the radio wave emission area.
2. A vehicle lamp according to claim 1.
Citation Information
Patent Citations
Radio wave transmission cover
JP2019110428A