Heat dissipation structure and vehicle lighting fixtures

The heat dissipation structure in vehicle lamps uses a fan, heat sink, and deflection member to enhance cooling efficiency, addressing the challenge of heat dissipation in densely packed light emitting elements, thereby improving performance and reducing short circuit risks.

JP2026058894APending Publication Date: 2026-04-06KOITO MFG CO LTD
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Filing Date
2024-09-25
Publication Date
2026-04-06

AI Technical Summary

Technical Problem

Conventional vehicle lamp units face challenges in heat dissipation due to the increased heat generation from densely mounted light emitting elements required for multiple light distribution patterns, necessitating improved heat dissipation performance.

Method used

A heat dissipation structure incorporating a fan, heat sink with a through-hole, and a substrate with openings, along with a deflection member to direct airflow towards the light sources, enhancing cooling efficiency.

Benefits of technology

The structure effectively cools the light sources, improving heat dissipation performance, reducing the risk of short circuits, and extending the lifespan of the vehicle lighting equipment.

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Abstract

This invention provides a new heat dissipation structure that improves the heat dissipation performance of vehicle lighting fixtures. [Solution] The heat dissipation structure comprises a fan 27, a heat sink 20 to which the air generated by the fan 27 blows, a circuit board 18 mounted on the surface of the heat sink 20 facing the front of the vehicle, and light sources 30a to 30c mounted on the circuit board so that their light-emitting surfaces face the front of the vehicle. The circuit board 18 has an opening 18a formed above or below the light source. The heat sink 20 has a through-hole 20b formed so that the air flows towards the circuit board 18, and the through-hole 20b overlaps with the opening 18a in a front view from the front of the vehicle.
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Description

Technical Field

[0001] The present invention relates to a heat dissipation structure used in vehicle lamps.

Background Art

[0002] Conventionally, a projector-type lamp unit has been devised that mainly includes a plurality of light sources, a common substrate on which the plurality of light sources are mounted on the surface, a light guide, a projection lens, and a heat sink (see Patent Document 1). Specifically, a primary lens as a light guide is disposed between the projection lens and the light source, and the incident surface of the primary lens and the light emitting surface of the light source are close to each other so that the light emitted from the light source efficiently enters the projection lens. Further, a heat sink is disposed on the back surface of the substrate on which the light source is mounted on the surface.

Prior Art Documents

Patent Documents

[0003]

Patent Document 1

Summary of the Invention

Problems to be Solved by the Invention

[0004] By the way, when trying to realize a plurality of light distribution patterns such as a high beam light distribution pattern and a low beam light distribution pattern in one lamp unit, it is necessary to densely mount many light emitting elements on the substrate, and the amount of heat generation increases. Therefore, an improvement in heat dissipation performance more than ever is required.

[0005] The present invention has been made in view of such a situation, and one of its exemplary purposes is to provide a new heat dissipation structure with improved heat dissipation performance for vehicle lamps. -

Means for Solving the Problems

[0006] To solve the above problems, a heat dissipation structure according to one aspect of the present invention comprises a fan, a heat sink to which the air generated by the fan blows, a substrate mounted on the surface of the heat sink facing the front of the vehicle, and a light source mounted on the substrate such that its light-emitting surface faces the front of the vehicle. The substrate has an opening formed above or below the light source. The heat sink has a through-hole formed so that the air blows towards the substrate, and the through-hole overlaps with the opening in a front view taken from the front of the vehicle.

[0007] In this configuration, the air that passes through the heatsink's penetration point is blown out directly from the opening in the circuit board. This allows the air generated by the fan to directly cool the light source near the opening, thus improving heat dissipation.

[0008] The circuit board may have power supply wiring for supplying power to the light source. The power supply wiring may be located outside the insulating area at the periphery of the opening on the surface on which the light source is mounted. The width of the insulating area may be smaller than the width of the power supply wiring. This allows for a larger opening. In addition, the presence of an insulating area between the opening and the power supply wiring makes it less likely for short circuits to occur between the power supply wiring and other components near the opening.

[0009] The device may further include a deflection member that directs the airflow from the opening towards the light source. This allows the airflow from the opening to be efficiently directed towards the light source.

[0010] The deflection member may be provided on the edge of the opening. This allows, for example, the deflection member to be formed integrally with the heat sink.

[0011] The system may further include a resin lens positioned opposite the light-emitting surface to deflect the light emitted from the light source.

[0012] The resin lens is made of silicone and may further include a deflection member that directs the airflow from the opening towards the incident surface of the resin lens. This allows the deflection member to be molded integrally with the resin lens.

[0013] The opening may be rectangular in shape, with its longer side aligned with the vehicle width. The length of the opening in the vehicle width direction may be greater than the length of the area where the light source is located in the vehicle width direction. This allows air to reach the entire light source more easily.

[0014] The light source may have a plurality of first light-emitting elements arranged in a line in the vehicle width direction, a plurality of second light-emitting elements arranged in a line above the plurality of first light-emitting elements, and a plurality of third light-emitting elements arranged in a line below the plurality of first light-emitting elements. An opening may be formed between the plurality of first light-emitting elements and the plurality of second light-emitting elements. This allows the first light-emitting elements and the second light-emitting elements to be efficiently cooled by the air coming out of the opening.

[0015] Another aspect of the present invention is a vehicle light fixture. This vehicle light fixture comprises the heat dissipation structure described above and a control unit that controls the on / off switching of the light source. The control unit may form a low-beam light distribution pattern by lighting up a plurality of first light-emitting elements and a plurality of second light-emitting elements, and form a high-beam light distribution pattern by lighting up a plurality of first light-emitting elements and a plurality of third light-emitting elements.

[0016] According to this embodiment, the first and second light-emitting elements that form a low-beam light distribution pattern, which is illuminated for a high proportion of the time when the vehicle lighting is in use, can be efficiently cooled.

[0017] Any combination of the above components, or any conversion of the expression of the present invention between manufacturing methods, devices such as luminaires and lighting fixtures, light-emitting modules, light sources, etc., are also valid embodiments of the present invention. [Effects of the Invention]

[0018] According to the present invention, the heat dissipation performance of vehicle lighting equipment can be improved. [Brief explanation of the drawing]

[0019] [Figure 1] This is a perspective view of a vehicle light fixture according to this embodiment. [Figure 2]It is an exploded perspective view of a vehicle lamp shown in FIG. 1. [Figure 3] It is a schematic diagram for explaining the layout of each component arranged near the circuit board in the vehicle lamp according to the present embodiment as viewed from above. [Figure 4] It is a schematic diagram for explaining the heat dissipation structure according to the present embodiment. [Figure 5] FIG. 5(a) is a schematic diagram showing an example of a deflection member according to the present embodiment, and FIG. 5(b) is a schematic diagram showing another example of the deflection member according to the present embodiment. [Figure 6] It is a front view of the circuit board according to the present embodiment. [Figure 7] It is a schematic diagram for explaining the heat dissipation structure according to another example of the present embodiment. [Figure 8] FIGS. 8(a) to 8(c) are diagrams showing modified examples of the heat sink according to the present embodiment.

Embodiments for Carrying Out the Invention

[0020] Hereinafter, the present invention will be described with reference to the drawings based on preferred embodiments. The same or equivalent components, members, and processes shown in each drawing shall be denoted by the same reference numerals, and redundant explanations will be omitted as appropriate. Further, the embodiments are illustrative and not restrictive of the invention, and all features and combinations thereof described in the embodiments are not necessarily essential to the invention.

[0021] FIG. 1 is a perspective view of a vehicle lamp according to the present embodiment. FIG. 2 is an exploded perspective view of the vehicle lamp shown in FIG. 1. The vehicle lamp shown in FIGS. 1 and 2 is a vehicle headlamp and is configured to be able to form both a low-beam and a high-beam light distribution pattern.

[0022] The vehicle light fixture 10 comprises a projection lens 12, a lens holder 14, a reflector 16, a circuit board 18, a heat sink 20, and a fan 27. The heat sink 20 is configured so that the air generated by the fan 27 hits multiple fins 20a. The projection lens 12 consists of two parts: a first projection lens 12a located below and a second projection lens 12b located above, which control the optical path of the light emitted from each light source. Each lens is mounted in a predetermined position on the lens holder 14. Each lens is manufactured by injection molding using a resin material with high transparency and heat resistance, such as acrylic or polycarbonate. The lens holder 14 is fastened to the heat sink 20 by screws 22.

[0023] The reflector 16 is made of a metal or resin material. The reflector 16 has a horizontally elongated base surface portion 16a facing in the front-to-back direction, openings 16b and 16c formed in the center of the reflector 16, lateral reflective portions 16d provided to protrude forward from both the left and right sides of the opening 16b, and an upper reflector 16e whose inner surface of the beam-like portion above the opening 16b is a reflective surface.

[0024] A plate-shaped member, a shade 24, is attached to the lower surface of the lateral reflector 16d, and it protrudes forward from the lower edge of the opening 16b. The shade 24 is held by the reflector 16 so that its plate surface is aligned with the horizontal direction of the vehicle. A plate-shaped member, a shade 26, is attached to the base surface 16a. The shade 26 is a plate-shaped member, and it is held by the reflector 16 so that its plate surface is aligned with the vertical direction of the vehicle.

[0025] The circuit board 18 includes a first light source 30a in which a plurality of light-emitting elements 28a for forming a first region of the low-beam light distribution pattern are arranged in a horizontal row on a horizontally elongated first mounting area 29a; a second light source 30b in which a plurality of light-emitting elements 28b for forming a second region of the low-beam light distribution pattern are arranged in a horizontal row on a horizontally elongated second mounting area 29b; a third light source 30c in which a plurality of light-emitting elements 28c for forming a high-beam light distribution pattern are arranged in a horizontal row on a horizontally elongated third mounting area 29c; and a drive circuit (not shown) for driving each light-emitting element. An opening 18a is formed between the first mounting area 29a and the second mounting area 29b. The opening 18a may be formed above or below any of the first light source 30a, the second light source 30b, or the third light source 30c.

[0026] The third light source 30c, mounted on the circuit board 18, is positioned adjacent to the first light source 30a. The first light source 30a is located on the upper side, and the third light source 30c is located on the lower side. The drive circuit is a combination of passive elements such as capacitors and coils, active elements such as transistors and diodes, an IC chip, and memory, and functions as a control unit that controls the on / off switching of the first light source 30a, the second light source 30b, and the third light source 30c. The circuit board 18 is the mounting section on which each light source is mounted and is fixed to a predetermined position on the heat sink 20. In other words, the circuit board 18 and the heat sink 20 are an integrated mounting section. The heat sink 20 also has a horizontally elongated rectangular through-hole 20b formed so that the air generated by the fan 27 is directed towards the circuit board 18.

[0027] Lens plates 32 are positioned in front of the first light source 30a and the third light source 30c to concentrate or partially block the light emitted from the first light source 30a and the third light source 30c. A lens plate 34 is positioned in front of the second light source 30b to concentrate the light emitted from the second light source 30b. Lens plates 32 and 34 are sandwiched between the reflector 16 and the circuit board 18. The positional relationship of each component is determined by fastening the reflector 16 to the heat sink 20 with screws 36 in this state. Furthermore, lens plates 32 and 34 are positioned opposite the light-emitting surfaces of each light-emitting element, deflecting the light emitted from each light-emitting element.

[0028] The first light emitted from the first light source 30a is partially blocked by the shade 24. The first projection lens 12a projects the blocked first light onto a first region below the horizon. The second light emitted from the second light source 30b is partially blocked by the shade 26. The second projection lens 12b projects the blocked second light onto a second region below the horizon.

[0029] The control unit according to this embodiment forms a low-beam light distribution pattern including a first region and a second region by lighting up the first light source 30a and the second light source 30b.

[0030] As described above, the vehicle light fixture 10 according to this embodiment further includes a third light source 30c in which a plurality of light-emitting elements 28c are arranged in an array. The third light source 30c is mounted on the circuit board 18 so as to be positioned below the first light source 30a when viewed from the front of the vehicle. The shade 24 blocks a portion of the third light emitted from the third light source 30c. The first projection lens 12a projects the blocked third light into a third region above the horizontal line.

[0031] The control unit according to this embodiment forms a high-beam light distribution pattern including the first region and the third region by lighting the first light source 30a and the third light source 30c. This makes it possible to form a high-beam light distribution pattern that includes a region above the low-beam light distribution pattern.

[0032] Furthermore, the control unit can form a variable light distribution pattern that includes the first region and a portion of the third region by lighting up the first light source 30a, lighting up only a portion of the multiple light-emitting elements 28c of the third light source 30c, and turning off or dimming the second light source 30b.

[0033] Figure 3 is a schematic diagram illustrating the layout of the components arranged near the circuit board in the vehicle lighting device according to this embodiment, as viewed from above. The distance D1 between the surface of the circuit board 18 and the back surface of the reflector 16 is 3.5 mm ± 0.5 mm. The height D2 of the light-emitting element 28a mounted on the circuit board 18 is 0.75 mm ± 0.25 mm. The distance D3 between the surface of the circuit board 18 and the back surface of the lens plate 32 is 1.05 mm ± 0.25 mm. As a result, the distance D4 between the light-emitting surface of the light-emitting element 28a and the lens plate 32 is 0.3 mm ± 0.25 mm, meaning the light-emitting element 28a and the lens plate 32 are very close together. Note that if the distance D4 is at least 1 mm or less, the heat from the light-emitting element 28a will have a greater impact on the lens plate 32, and the heat dissipation structure according to this embodiment is very useful in such a layout.

[0034] With the above configuration, much of the light emitted from the light-emitting element 28a is incident on the lens plate 32, improving the luminous efficiency as a vehicle light fixture. On the other hand, because the light-emitting element 28a, which is a heat source, and the lens plate 32 are very close together, the lens plate 32 (lens plate 34) requires a heat-resistant material. In addition, a resin material that does not change shape easily due to temperature changes is required. Therefore, in this embodiment, a resin lens made of silicone is used for the lens plate.

[0035] If the heat dissipation of the aforementioned vehicle lighting fixtures can be further improved, the Tj temperature will decrease and the lifespan will be extended. It will also contribute to miniaturization of the heat sink and reduction of fan power. Furthermore, distortion due to temperature rise in the lens plate and output reduction due to temperature rise in the light-emitting elements can be suppressed.

[0036] Therefore, in the heat dissipation structure according to this embodiment, not only is the heat sink cooled by the airflow generated by the fan, but a portion of that airflow is also directed directly towards the circuit board. Figure 4 is a schematic diagram illustrating the heat dissipation structure according to this embodiment. The heat dissipation structure 100 comprises a fan 27, a heat sink 20 to which the airflow W generated by the fan 27 hits, a circuit board 18 mounted on the surface 20c of the heat sink 20 facing forward of the vehicle, and a light source 30a mounted on the circuit board 18 such that its light-emitting surface 30a1 faces forward of the vehicle. The circuit board 18 has an opening 18a formed above the light source 30a. The heat sink 20 has a through-hole 20b formed so that the airflow W is directed towards the board, and the through-hole 20b overlaps with the opening 18a in a front view from the front of the vehicle.

[0037] As a result, the air W that passes through the penetration 20b of the heatsink 20 is blown out directly from the opening 18a of the circuit board 18. This allows the air W generated by the fan 27 to directly cool the light source 30a located near the opening 18a, thus improving heat dissipation.

[0038] Figure 5(a) is a schematic diagram showing an example of a deflection member according to this embodiment, and Figure 5(b) is a schematic diagram showing another example of a deflection member according to this embodiment. The heat dissipation structure 100 further includes a deflection member 38 that directs the airflow W exiting from the opening 18a toward the light source 30a. This allows the airflow W exiting from the opening 18a to be efficiently directed toward the light source 30a.

[0039] The deflection member 38 shown in Figure 5(a) is a plate-shaped member provided to protrude from the upper edge of the horizontally elongated rectangular opening 18a. This allows the deflection member 38 to be formed integrally with the heat sink 20. The amount of protrusion of the deflection member 38 from the surface of the heat sink 20 is, for example, about 3 to 5 mm. Furthermore, the deflection member 38 should be provided such that the angle θ between the direction X1 from the front of the heat sink 20 toward the front of the light fixture and the plate surface 38a of the deflection member 38 is 0 to 60°. This makes it easier for the wind W passing through the opening 18a to be directed toward the light source 30a and lens plate 32 below.

[0040] The light source 30a illuminates in both low-beam and high-beam light distribution patterns, and the light source 30a and lens plate 32 tend to become hotter than other light sources and lens plate 34. Therefore, by providing the deflection member 38 on the upper edge of the opening 18a or by angling the plate surface 38a downwards, the light source 30a and lens plate 32 can be cooled preferentially.

[0041] The deflection member 40 shown in Figure 5(b) is provided so as to protrude from the upper and left and right edges of the opening 18a. This makes it easier for the wind W passing through the opening 18a to be directed towards the light source 30a below, rather than escaping to the sides. The deflection member 40 may also be provided so that the protruding portion widens as it moves towards the front of the vehicle. This can widen the range over which the wind exiting the opening 18a is directed.

[0042] Figure 6 is a front view of the circuit board according to this embodiment. The circuit board 18 has power supply wiring 42 that supplies power to light sources 30a to 30c. The power supply wiring 42 is located outside the insulating region 18b at the periphery of the opening 18a on the surface on which the light sources 30a to 30c are mounted. The width W1 of the insulating region 18b is smaller than the width W2 of the power supply wiring 42. In this embodiment, the width W1 of the insulating region 18b is 0.5 mm. This allows the opening 18a to be made larger. In addition, the presence of the insulating region 18b between the opening 18a and the power supply wiring 42 makes it less likely for the power supply wiring 42 to short-circuit between other components near the opening 18a and the power supply wiring 42. For example, as shown in Figure 6, even if a deflection member 38 is provided on the edge of the opening 18a, the presence of the insulating region 18b prevents a short circuit between the power supply wiring 42 and the deflection member 38.

[0043] The opening 18a has a rectangular shape with its longer side aligned with the vehicle width direction. The length W3 of the opening 18a in the vehicle width direction is greater than the length in the vehicle width direction of the area where the light sources 30a to 30c are located. This makes it easier for air to reach the entire area of ​​the light sources 30a to 30c.

[0044] Light source 30a has a plurality of first light-emitting elements 28a arranged in a line in the vehicle width direction. Light source 30b has a plurality of second light-emitting elements 28b arranged in a line above the plurality of first light-emitting elements 28a. Light source 30c has a plurality of third light-emitting elements 28c arranged in a line below the plurality of first light-emitting elements 28a. An opening 18a is formed between the plurality of first light-emitting elements 28a and the plurality of second light-emitting elements 28b. This allows the first light-emitting elements 28a, the second light-emitting elements 28b, and the third light-emitting elements 28c to be efficiently cooled by the air coming out of the opening 18a.

[0045] Furthermore, the vehicle lighting device 10 according to this embodiment includes the heat dissipation structure described above and a control unit that controls the on / off switching of the light sources 30a to 30c. The control unit forms a low-beam light distribution pattern by lighting up a plurality of first light-emitting elements 28a and a plurality of second light-emitting elements 28b, and forms a high-beam light distribution pattern by lighting up a plurality of first light-emitting elements 28b and a plurality of third light-emitting elements 28c. This allows for efficient cooling of the first light-emitting elements 28a and the second light-emitting elements 28b, which form the low-beam light distribution pattern and are illuminated for a high proportion of the time when the vehicle lighting device is in use.

[0046] Figure 7 is a schematic diagram illustrating another example of a heat dissipation structure according to this embodiment. The heat dissipation structure 110 according to this embodiment includes a deflection member 44 that directs the airflow W exiting from the opening 18a towards the incident surface of the lens plate 32. This allows the deflection member 44 to be molded integrally with the lens plate 32.

[0047] Figures 8(a) to 8(c) show modified examples of the heat sink according to this embodiment. In the heat sink 46 shown in Figure 8(a), multiple cylindrical pins 46a are arranged in a grid pattern around the through-hole 20b. In the heat sink 48 shown in Figure 8(b), multiple rectangular prism-shaped pins 48a are arranged in a grid pattern around the through-hole 20b. In the heat sink 50 shown in Figure 8(c), multiple rectangular prism-shaped pins 50a are arranged in a staggered pattern around the through-hole 20b. In all of these heat sinks, air generated by a fan can easily pass between the pins, increasing the airflow from the through-hole toward the substrate.

[0048] Although the present invention has been described above with reference to the embodiments described above, the present invention is not limited to the embodiments described above, and the present invention also includes combinations and substitutions of the configurations of the embodiments as appropriate. Furthermore, it is possible to appropriately rearrange the combinations and processing order in the embodiments or to make various design changes and other modifications to the embodiments based on the knowledge of those skilled in the art, and such modified embodiments may also be included in the scope of the present invention. [Explanation of symbols]

[0049] 10 Vehicle lighting fixture, 18 Circuit board, 18a Opening, 18b Insulating area, 20 Heat sink, 20a Fin, 20b Through-hole, 27 Fan, 28a Light-emitting element, 28b Light-emitting element, 28c Light-emitting element, 30a First light source, 30b Second light source, 30c Third light source, 32 Lens plate, 34 Lens plate, 38 Deflection member, 40 Deflection member, 42 Power supply wiring, 44 Deflection member, 100 Heat dissipation structure, 110 Heat dissipation structure.

Claims

1. Fans, The heatsink is exposed to the airflow generated by the aforementioned fan, A circuit board mounted on the side of the heat sink facing forward of the vehicle, The system comprises a light source mounted on the substrate such that its light-emitting surface faces forward of the vehicle, The substrate has an opening formed above or below the light source. The heat sink has a through-hole formed so that the airflow is directed toward the substrate, and the through-hole overlaps with the opening when viewed from the front of the vehicle.

2. The substrate has power supply wiring for supplying power to the light source, The power supply wiring is located outside the insulating region at the periphery of the opening on the surface on which the light source is mounted. The heat dissipation structure according to claim 1, characterized in that the width of the insulating region is smaller than the width of the power supply wiring.

3. The heat dissipation structure according to claim 1, further comprising a deflection member that directs the air coming out of the opening toward the light source.

4. The heat dissipation structure according to claim 3, characterized in that the deflection member is provided on the edge of the opening.

5. The system further includes a resin lens provided opposite the light-emitting surface, which deflects the light emitted from the light source, The heat dissipation structure according to claim 1, characterized in that the shortest distance between the light-emitting surface of the light source and the incident surface of the resin lens is 1 mm or less.

6. The heat dissipation structure according to claim 5, characterized in that the resin lens is made of silicone and further comprises a deflection member that directs the air coming out of the opening towards the incident surface of the resin lens.

7. The aforementioned opening has a rectangular shape with its longer side aligned with the vehicle width direction. The heat dissipation structure according to claim 1, characterized in that the length of the opening in the vehicle width direction is greater than the length of the area in the vehicle width direction where the light source is arranged.

8. The aforementioned light source is Multiple first light-emitting elements arranged in a line in the vehicle width direction, A plurality of second light-emitting elements are arranged in a line above the plurality of first light-emitting elements, It comprises a plurality of third light-emitting elements arranged in a line below the plurality of first light-emitting elements, The heat dissipation structure according to any one of claims 1 to 7, characterized in that the opening is formed between the plurality of first light-emitting elements and the plurality of second light-emitting elements.

9. The heat dissipation structure according to claim 8, The system comprises a control unit that controls the on / off switching of the light source, The control unit, By lighting up the plurality of first light-emitting elements and the plurality of second light-emitting elements, a light distribution pattern for the low beam is formed. A vehicle light fixture characterized by forming a high beam light distribution pattern by lighting up the plurality of first light-emitting elements and the plurality of third light-emitting elements.

Citation Information

Patent Citations

  • Vehicular lamp

    WO2023282238A1