Vehicle headlights
The vehicle headlamp maintains consistent light distribution patterns by adjusting power supply to individual light-emitting elements, addressing the issue of reduced visibility during temperature derating, ensuring optimal illumination and heat management.
Patent Information
- Application Number
- JP2025004959
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2021-11-15
- Filing Date
- 2025-01-14
- Publication Date
- 2026-02-24
- Estimated Expiration
- 2041-12-09
AI Technical Summary
Existing vehicle headlamps experience a decrease in forward visibility due to temperature derating, which reduces the power supplied to light-emitting elements, causing uneven light distribution patterns and reduced illumination.
A vehicle headlamp design with multiple light source units and a control unit that adjusts power supply to individual light-emitting elements to maintain a low-beam and high-beam light distribution pattern, ensuring consistent illumination by reducing power to some elements while increasing it to others, thereby minimizing brightness loss.
The solution effectively suppresses the decrease in forward visibility by maintaining consistent light distribution patterns during temperature derating, ensuring optimal illumination and reducing the impact of heat on the light source units.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present invention relates to a vehicle headlamp. [Background technology]
[0002] A known vehicle headlamp includes a light source unit including a light-emitting element such as an LED (Light Emitting Diode) or an LD (Laser Diode) and a circuit board on which the light-emitting element is mounted, and a temperature sensor such as a thermistor mounted on the circuit board. In such a light source unit, the greater the power supplied to the light-emitting element, the greater the amount of light emitted and heat generated by the light-emitting element, resulting in a rise in the temperature of the light-emitting element. Heat from the light-emitting element is transmitted to the circuit board, and the temperature of the circuit board is estimated by the temperature sensor. If the estimated temperature is equal to or higher than a predetermined value, a control unit of the vehicle headlamp may perform temperature derating, which reduces the power supplied to the light-emitting element in accordance with the temperature. Temperature derating protects the light source unit from heat and ensures the reliability of the light source unit.
[0003] However, when a light source unit and a temperature sensor are housed in housings of different shapes, if the light emitting elements of each light source unit are turned on with the same power, the estimated temperature may differ for each housing. For this reason, in the vehicle headlamp described in Patent Document 1 below, the power supplied according to the temperature is set based on software such as an arbitrary function or table, and temperature derating suitable for the light source unit is performed by changing the software.
[0004] [Patent Document 1] Japanese Patent Application Laid-Open No. 2016-91730 Summary of the Invention
[0005] The light source unit may have a configuration in which multiple light-emitting elements are arranged, such as an LED array or a micro LED array. In such a light source unit, a light distribution pattern is projected ahead of the vehicle using light emitted from each light-emitting element. When temperature derating is performed on such a light source unit, even if the power supplied to only some of the light-emitting elements is reduced, the light distribution pattern may become darker, and forward visibility may be reduced.
[0006] SUMMARY OF THE INVENTION It is therefore an object of the present invention to provide a vehicle headlamp that can suppress a decrease in forward visibility when temperature derating is performed.
[0007] In order to achieve the above object, a first aspect of the present invention provides a vehicle headlamp comprising: a first light source unit having a plurality of light-emitting elements, the plurality of light-emitting elements being arranged so that the illumination areas of the first light emitted forward from the plurality of light-emitting elements are arranged in a matrix; a second light source unit that emits second light; and a control unit, wherein a low-beam light distribution pattern is formed by a first light distribution pattern formed by at least a portion of the first light and a second light distribution pattern formed by the second light, the low-beam light distribution pattern including a first region in which a portion of the first light distribution pattern overlaps a portion of the second light distribution pattern, and a second region in which another portion of the first light distribution pattern does not overlap with the second light distribution pattern, is continuous with the first region, and is located above the first region; and when temperature derating is performed on the first light source unit based on the temperature of the first light source unit while the low-beam light distribution pattern is being formed, the control unit controls the power supplied to each of the plurality of light-emitting elements so that the amount of light of at least a portion of the first light that irradiates at least the first region of the first light distribution pattern is reduced compared to before the temperature derating.
[0008] In the vehicle headlamp of the first aspect, the first light and the second light are irradiated in the first region in the low beam light distribution pattern. Therefore, when temperature derating is performed, even if the amount of the first light in the first region is reduced as described above, the decrease in brightness of the low beam light distribution pattern is suppressed compared to when the second light does not irradiate the first region, and the decrease in forward visibility can be suppressed.
[0009] Furthermore, in the vehicle headlamp of the first aspect, when the temperature derating is performed on the first light source unit while the low beam light distribution pattern is being formed, the control unit may control the power supplied to each of the plurality of light-emitting elements so that the amount of light of at least some of the first light that illuminates the first region is reduced compared to before the temperature derating, and the amount of light of at least some of the first light that illuminates the first region is reduced more than the amount of light of at least some of the first light that illuminates the second region.
[0010] For example, the upper edge of the second region may form part of the cutoff line of the low beam light distribution pattern. According to the above configuration, the decrease in brightness on the cutoff line side is suppressed, and the decrease in forward visibility can be suppressed, compared to when the amount of first light irradiating the second region is reduced more than the amount of first light irradiating the first region. Furthermore, according to the above configuration, when the first region is larger than the second region, the temperature rise of the first light source unit can be suppressed, compared to when the first region is smaller than the second region.
[0011] Furthermore, in the vehicle headlamp of the first aspect, when the temperature derating is performed on the first light source unit while the low beam light distribution pattern is being formed, the control unit may control the power supplied to each of the plurality of light-emitting elements so that the amount of light of at least some of the first light that irradiates the second region decreases compared to before the temperature derating, and the amount of light of at least some of the first light that irradiates the second region decreases later than the amount of light of at least some of the first light that irradiates the first region.
[0012] For example, the upper edge of the second region may form part of the cutoff line of the low beam light distribution pattern. With the above configuration, the decrease in brightness on the cutoff line side may start later than when the amount of first light irradiating the second region decreases before the amount of first light irradiating the first region decreases. Therefore, the decrease in visibility of the cutoff line may start later.
[0013] Furthermore, in the vehicle headlamp of the first aspect, when the control unit performs the temperature derating on the first light source unit while the low beam light distribution pattern is formed, the control unit may control the power supplied to each of the plurality of light-emitting elements so that the amount of light in the first light distribution pattern decreases from an upper edge side of the first light distribution pattern included in the second region toward a lower edge side of the first light distribution pattern included in the first region.
[0014] For example, the upper edge of the second region may form part of the cutoff line of the low beam light distribution pattern. According to the above configuration, the decrease in brightness on the cutoff line side of the low beam light distribution pattern can be suppressed compared to when the light amount decreases from the lower edge side of the first light distribution pattern toward the upper edge side of the first light distribution pattern. Therefore, the decrease in visibility of the cutoff line can be slowed and suppressed.
[0015] Furthermore, in the vehicle headlamp of the first aspect, when the control unit performs the temperature derating on the first light source unit while the low beam light distribution pattern is formed, the control unit may control the power supplied to each of the plurality of light-emitting elements so that the amount of light in the first light distribution pattern decreases from a hot zone of the low beam light distribution pattern toward the peripheral edge of the first light distribution pattern.
[0016] The line of sight of the vehicle driver tends to be concentrated on the hot zone side rather than the peripheral side of the first light distribution pattern. With the above configuration, the decrease in brightness on the hot zone side where the line of sight of the driver is concentrated can be suppressed compared to when the light amount decreases from the peripheral side of the first light distribution pattern toward the hot zone.
[0017] Moreover, the vehicle headlamp of the first aspect may further include a third light source unit that emits a third light, wherein a high beam light distribution pattern is formed by the first light distribution pattern, the second light distribution pattern, and a third light distribution pattern formed by the third light, and in the high beam light distribution pattern, at least a portion of the second region overlaps with a portion of the third light distribution pattern, and when the control unit performs the temperature derating on the first light source unit while the high beam light distribution pattern is being formed, the control unit may control the power supplied to each of the plurality of light-emitting elements so that the amount of light of at least a portion of the first light that irradiates at least one of the first region and a third region of the second region that overlaps with a portion of the third light distribution pattern is reduced compared to before the temperature derating.
[0018] In the high beam light distribution pattern, the first region is illuminated with the first light and the second light, and the third region is illuminated with the first light and the third light. With the above configuration, when temperature derating is performed, even if the amount of the first light decreases, the decrease in brightness of the high beam light distribution pattern can be suppressed compared to when the second light does not illuminate the first region and when the third light does not illuminate the third region. Therefore, the decrease in forward visibility can be suppressed.
[0019] Furthermore, in the vehicle headlamp of the first aspect, when the control unit performs the temperature derating on the first light source unit while the high beam light distribution pattern is formed, the control unit may control the power supplied to each of the plurality of light-emitting elements so that the amount of light of at least a portion of the first light that illuminates the first region is reduced more than the amount of light of at least a portion of the first light that illuminates the third region.
[0020] Because the third region is located higher than the first region, the driver's line of sight tends to be focused on the third region rather than the first region. With the above configuration, the decrease in brightness of the third region of the high beam light distribution pattern, where the driver's line of sight is focused, is suppressed compared to when the light amount of the first region is reduced to be less than the light amount of the third region, and the decrease in forward visibility can be suppressed.
[0021] Furthermore, in the vehicle headlamp of the first aspect, when the control unit performs the temperature derating on the first light source unit while the high beam light distribution pattern is formed, the control unit may control the power supplied to each of the plurality of light-emitting elements so that the light intensity of at least some of the first light that irradiates the third region decreases later than the light intensity of at least some of the first light that irradiates the first region.
[0022] When a high beam light distribution pattern is formed in which the third region is larger than the first region, the driver's line of sight tends to be concentrated on the third region rather than the first region. When the third region is larger than the first region, the above configuration allows the brightness of the third region, where the driver's line of sight is concentrated, to start decreasing more slowly, and the decrease in visibility in the third region can be delayed, compared to when the light amount in the third region decreases before the light amount in the first region.
[0023] Furthermore, in the vehicle headlamp of the first aspect, when the control unit performs the temperature derating on the first light source unit while the high beam light distribution pattern is formed, the control unit may control the power supplied to each of the plurality of light-emitting elements so that the amount of light in the first light distribution pattern decreases from an upper edge side of the first light distribution pattern included in the third region toward a lower edge side of the first light distribution pattern included in the first region.
[0024] When a high beam light distribution pattern is formed, the driver's line of sight tends to be concentrated on the third region rather than the first region. With the above configuration, the decrease in brightness of the third region of the high beam light distribution pattern, where the driver's line of sight is concentrated, is suppressed compared to when the light amount decreases from the lower edge side to the upper edge side of the first light distribution pattern, and the decrease in visibility in the third region can be suppressed.
[0025] Furthermore, in the vehicle headlamp of the first aspect, when the control unit performs the temperature derating on the first light source unit while the high beam light distribution pattern is formed, the control unit may control the power supplied to each of the plurality of light-emitting elements so that the amount of light in the first light distribution pattern decreases from a hot zone of the high beam light distribution pattern toward the peripheral edge of the first light distribution pattern.
[0026] The driver's line of sight tends to be concentrated on the hot zone side rather than the peripheral side of the first light distribution pattern. With the above configuration, the decrease in brightness on the hot zone side where the driver's line of sight is concentrated can be suppressed compared to when the light amount decreases from the peripheral side of the first light distribution pattern toward the hot zone.
[0027] In addition, in order to achieve the above-mentioned object, a second aspect of the present invention provides a vehicle headlamp comprising a light source unit having a plurality of light-emitting elements and a control unit that controls the power supplied to each of the light-emitting elements, and when performing temperature derating on the light source unit based on the temperature of the light source unit, the control unit reduces the power supplied to at least some of the light-emitting elements that are driven at a second power greater than the first power from the second power to less than the first power, and increases the power supplied to at least some of the light-emitting elements that are driven at a third power less than the first power.
[0028] According to the above configuration, when the control unit performs temperature derating on the light source unit, the power of at least some of the light-emitting elements driven at the second power is reduced from the second power to the first power or less. This protects the light source unit from heat from the light-emitting elements, but the light distribution pattern formed by the light emitted from the light source unit tends to become darker. Therefore, in the above configuration, when the control unit performs temperature derating on the light source unit, the control unit increases the power supplied to at least some of the light-emitting elements driven at the third power. Increasing the power can brighten the light distribution pattern. This can prevent a decrease in forward visibility.
[0029] In addition, in the vehicle headlamp of the second aspect, when the control unit performs the temperature derating on the light source unit, the control unit may increase the power supplied to at least some of the light-emitting elements driven at the third power to the first power.
[0030] According to the above configuration, the light distribution pattern becomes brighter than when the electric power does not increase to the first electric power, and deterioration of forward visibility can be suppressed.
[0031] Alternatively, in the vehicle headlamp of the second aspect, when the control unit performs the temperature derating on the light source unit, the control unit may increase the power supplied to at least some of the light-emitting elements driven with the third power to be higher than the first power.
[0032] According to the above configuration, the light distribution pattern becomes brighter than when the electric power does not exceed the first electric power, and the deterioration of forward visibility can be further suppressed.
[0033] In addition, in the vehicle headlamp of the second aspect, the control unit may increase the power supplied to at least some of the light-emitting elements driven by the third power above the first power and, after a certain period of time has elapsed, reduce the power supplied to the light-emitting elements to less than the first power.
[0034] If the power remains higher than the first power, the temperature of the light source unit will rise. With the above configuration, after a certain period of time has passed, the power drops to the first power or lower, so the temperature of the light source unit drops and the rise in temperature of the light source unit can be suppressed.
[0035] Alternatively, in the vehicle headlamp of the second aspect, when the control unit performs the temperature derating on the light source unit, the control unit may increase the power supplied to at least some of the light-emitting elements driven at the third power to a fourth power that is greater than the third power and less than the first power.
[0036] Alternatively, in the vehicle headlamp of the second aspect, when the control unit performs the temperature derating on the light source unit, the control unit may increase the amount of power supplied to at least some of the light-emitting elements driven at the third power as the amount of reduction in the power supplied to at least some of the light-emitting elements driven at the second power becomes greater.
[0037] According to the above configuration, the light distribution pattern can be brighter as the amount of power reduction increases compared to when the amount of power increase is small.
[0038] In addition, in the vehicle headlamp of the second aspect, when the control unit performs the temperature derating on the light source unit, the control unit may increase the power supplied to at least some of the light-emitting elements driven at the third power before reducing the power supplied to at least some of the light-emitting elements driven at the second power from the second power to the first power or lower.
[0039] According to the above configuration, the light distribution pattern becomes brighter as the power increases from the third power before it becomes darker as the power decreases from the second power to the first power or lower. Therefore, compared to when the light distribution pattern becomes dark and then brightens, it is possible to prevent the light distribution pattern from becoming darker than before the temperature derating is applied to the light source unit, and it is possible to prevent a decrease in visibility.
[0040] In addition, in the vehicle headlamp of the second aspect, when the control unit performs the temperature derating on the light source unit after changing the light intensity distribution in a light distribution pattern formed by light emitted from the light source unit, the control unit may reduce the power supplied to at least some of the light-emitting elements driven at the second power to be equal to or lower than the first power, and may increase the power supplied to at least some of the light-emitting elements driven at the third power before changing the light intensity distribution.
[0041] According to the above configuration, even when the control unit performs temperature derating on the light source unit after changing the light intensity distribution, the light source unit is protected from heat from the light-emitting elements, but the light distribution pattern tends to become darker. Therefore, in the above configuration, when the control unit performs temperature derating on the light source unit after changing the light intensity distribution, the control unit increases the power supplied to at least some of the light-emitting elements driven at the third power before changing the light intensity distribution. Increasing the power can brighten the light distribution pattern. Therefore, even when the control unit performs temperature derating on the light source unit after changing the light intensity distribution, the deterioration of forward visibility can be suppressed compared to when the power is not increased.
[0042] As described above, according to the present invention, it is possible to provide a vehicle headlamp that can suppress a decrease in forward visibility when temperature derating is performed. [Brief explanation of the drawings]
[0043] [Figure 1] 1 is a plan view conceptually showing a vehicle according to a first embodiment of the present invention; [Figure 2] FIG. 2 is a side view schematically showing the first lamp of the first embodiment shown in FIG. [Figure 3] 3 is a front view schematically showing a first light source unit and a temperature sensor shown in FIG. 2. FIG. [Figure 4] 4A and 4B are diagrams illustrating a first light distribution pattern of the first embodiment formed by a first light emitted from a first lamp fixture. [Figure 5] FIG. 2 is a side view schematically showing the second lamp of the first embodiment shown in FIG. [Figure 6] 6 is a front view schematically showing the second light source unit and the shade shown in FIG. 5. FIG. [Figure 7] 10 is a diagram showing a second light distribution pattern of the first embodiment formed by second light emitted from a second lamp fixture. FIG. [Figure 8] FIG. 2 is a side view schematically showing the third lamp of the first embodiment shown in FIG. [Figure 9] 9 is a front view schematically showing the third light source unit shown in FIG. 8. FIG. [Figure 10] FIG. 10 is a diagram showing a third light distribution pattern of the first embodiment formed by third light emitted from a third lamp. [Figure 11] FIG. 3 is a diagram showing an example of a control flowchart of a control unit in the first embodiment. [Figure 12] FIG. 2 is a diagram showing a low beam light distribution pattern in the first embodiment. [Figure 13] FIG. 2 is a diagram showing a high beam light distribution pattern in the first embodiment. [Figure 14] FIG. 10 is a front view schematically showing a second light source unit and a shade according to a first modified example of the first embodiment. [Figure 15] FIG. 10 is a diagram showing a second light distribution pattern formed by second light emitted from a second lamp fixture of a first modified example of the first embodiment. [Figure 16] FIG. 10 is a diagram showing a low beam light distribution pattern of a first modified example of the first embodiment. [Figure 17] FIG. 10 is a diagram showing a high beam light distribution pattern of a first modified example of the first embodiment. [Figure 18] FIG. 10 is a front view schematically showing a second light source unit and a shade according to a second modified example of the first embodiment. [Figure 19] FIG. 10 is a diagram showing a second light distribution pattern formed by second light emitted from a second lamp fixture of a second modified example of the first embodiment. [Figure 20] FIG. 10 is a diagram showing a low beam light distribution pattern of a second modified example of the first embodiment. [Figure 21] FIG. 10 is a diagram showing a high beam light distribution pattern of a second modified example of the first embodiment. [Figure 22]FIG. 10 is a front view schematically showing a light source section and a temperature sensor according to a second embodiment as a second aspect of the present invention. [Figure 23] FIG. 10 is a diagram illustrating an example of the duty ratio of each light-emitting element when the vehicle is traveling straight. [Figure 24] FIG. 10 is a diagram showing the relationship between the temperature of the light source unit and the duty ratio. [Figure 25] FIG. 10 is a diagram showing an example of a control flowchart of a control unit in the second embodiment. [Figure 26] FIG. 10 is a diagram showing an example of the duty ratio of each light-emitting element in step SP32 when the vehicle is traveling straight. [Figure 27] FIG. 10 is a diagram showing an example of the duty ratio of each light-emitting element in step SP33 when the vehicle is traveling straight. [Figure 28] FIG. 10 is a diagram illustrating an example of the duty ratio of each light-emitting element when the vehicle is turning left. [Figure 29] FIG. 10 is a diagram showing an example of the duty ratio of each light-emitting element in step SP32 when the vehicle is turning left. [Figure 30] FIG. 10 is a diagram showing an example of the duty ratio of each light-emitting element in step SP33 when the vehicle is turning left. [Figure 31] FIG. 10 is a diagram showing an example of the duty ratio of each light-emitting element after temperature derating when the vehicle switches from a straight-ahead state to a left turn and the light intensity distribution in the light distribution pattern changes. [Figure 32] FIG. 10 is a diagram showing another example of the duty ratio of each light-emitting element after temperature derating when the vehicle switches from a straight-ahead state to a left turn and the light intensity distribution in the light distribution pattern changes. [Figure 33] FIG. 10 is a diagram showing an example of the duty ratio of each light-emitting element of the third embodiment as the second aspect of the present invention when the distance between the vehicle and the preceding vehicle is less than a predetermined distance. [Figure 34]10 is a diagram showing an example of the duty ratio of each light-emitting element after temperature derating in a state in which the distance between a vehicle and a preceding vehicle is less than a predetermined distance. FIG. [Figure 35] FIG. 10 is a diagram showing an example of the duty ratio of each light-emitting element when the vehicle is in the rain. [Figure 36] FIG. 10 is a diagram showing an example of the duty ratio of each light-emitting element after temperature derating when the vehicle is in the rain. DETAILED DESCRIPTION OF THE INVENTION
[0044] Preferred embodiments of a vehicle headlamp according to the present invention will be described in detail below with reference to the drawings. The embodiments exemplified below are intended to facilitate understanding of the present invention and are not intended to limit the present invention. The present invention can be modified and improved without departing from the spirit thereof. Furthermore, the present invention may also be realized by appropriately combining the components in the embodiments exemplified below. Note that in the drawings referred to below, the dimensions of each component may be changed to facilitate understanding.
[0045] (First embodiment) A first embodiment as a first aspect of the present invention will be described. FIG. 1 is a plan view conceptually showing a vehicle 10 of the first embodiment. The vehicle 10 includes a vehicle headlamp 20, a detection device 150, and a light switch 200. The vehicle headlamp 20 of this embodiment is a headlamp for an automobile. The vehicle headlamp 20 includes a pair of lamp units 30 disposed on the left and right sides of the front portion of the vehicle 10, a control unit 110 that controls the pair of lamp units 30, and a recording unit 130. In this specification, "right" means the right side in the traveling direction of the vehicle 10, and "left" means the left side in the traveling direction of the vehicle 10.
[0046] The pair of lamp units 30 have the same configuration except that the shapes of the lamp units 30 are generally symmetrical in the left-right direction. Therefore, the configuration of each lamp unit 30 will be described below using one of the lamp units 30.
[0047] The lighting unit 30 comprises a first lighting fixture 40, a second lighting fixture 60, and a third lighting fixture 80 arranged horizontally. The second lighting fixture 60 is arranged at the centermost side of the vehicle 10, the third lighting fixture 80 is arranged at the outermost side of the vehicle 10, and the first lighting fixture 40 is arranged between the second lighting fixture 60 and the third lighting fixture 80. The arrangement order of the lighting fixtures 40, 60, and 80 is not particularly limited.
[0048] Next, the first lighting fixture 40 will be described with reference to Fig. 2. Fig. 2 is a side view that schematically shows the first lighting fixture 40. The first lighting fixture 40 includes a first light source unit 41 that emits first light forward, a temperature sensor 47 that is disposed in the first light source unit 41, a projection lens 49 that is disposed in front of the first light source unit 41, and a housing 51 that houses the first light source unit 41, the temperature sensor 47, and the projection lens 49. In Fig. 2, the housing 51 is shown in a schematic cross section taken along the vertical direction of the first lighting fixture 40.
[0049] The housing 51 includes a lamp housing 51a, a front cover 51b, and a back cover 51c. The lamp housing 51a has an opening at the front, and the front cover 51b is fixed to the lamp housing 51a to close the opening. A smaller opening is formed at the rear of the lamp housing 51a than at the front, and the back cover 51c is fixed to the lamp housing 51a to close the opening. Thus, a lamp chamber 51d is formed in the housing 51, surrounded by the lamp housing 51a, the front cover 51b, and the back cover 51c. The first light source unit 41, the temperature sensor 47, and the projection lens 49 are disposed within the lamp chamber 51d. The lamp housing 51a and the back cover 51c are made of, for example, resin. The front cover 51b is made of a translucent material, and the first light emitted from the first light source unit 41 passes through the projection lens 49 and the front cover 51b.
[0050] FIG. 3 is a front view schematically illustrating the first light source unit 41 and the temperature sensor 47 shown in FIG. 2. As shown in FIGS. 2 and 3, the first light source unit 41 includes a plurality of light-emitting elements 43 that emit a first light, which is white light, and a circuit board 45 on which the plurality of light-emitting elements 43 are mounted. The light-emitting elements 43 may be LEDs or LDs. The light-emitting elements 43 are arranged in a matrix in the vertical and horizontal directions. There are 96 light-emitting elements 43 arranged in the horizontal direction and 32 light-emitting elements 43 arranged in the vertical direction, but the number is not particularly limited. The light-emitting elements 43 are preferably micro LEDs, or a so-called micro LED array. The shape of the light-emitting surface of each light-emitting element 43 is generally square and of the same size, but is not particularly limited. The light-emitting elements 43 may be LEDs or LDs that emit light of different wavelengths.
[0051] When power is individually supplied from a power supply unit (not shown) via the circuit board 45, each light-emitting element 43 emits a first light, and generates heat when emitting the first light. The heat from each light-emitting element 43 is transferred to the circuit board 45. The greater the power supplied to each light-emitting element 43, the greater the amount of light emitted and heat generated by each light-emitting element 43, and the higher the temperature of the first light source unit 41. Note that the amount of heat generated by the circuit board 45 is much smaller than the total amount of heat generated by each light-emitting element 43, so the temperature of the first light source unit 41 can be considered to be a temperature based on the total amount of heat generated by each light-emitting element 43.
[0052] The temperature sensor 47 is mounted on the circuit board 45 and estimates the temperature of the first light source unit 41. An example of such a temperature sensor 47 is a thermistor. The temperature sensor 47 is electrically connected to the control unit 110 and outputs a temperature signal related to the estimated temperature to the control unit 110. In this embodiment, the temperature sensor 47 is disposed away from each light-emitting element 43, and the heat of each light-emitting element 43 may drop before being transmitted to the temperature sensor 47. Therefore, the control unit 110 may estimate the temperature of the first light source unit 41 based on the temperature signal from the temperature sensor 47 and the distance between each light-emitting element 43 and the temperature sensor 47. Alternatively, the control unit 110 may estimate the temperature of the first light source unit 41 based on the amount of power of each light-emitting element 43.
[0053] The configuration and mounting position of the temperature sensor 47 are not particularly limited as long as the temperature sensor 47 can estimate the temperature of the first light source unit 41. For example, the temperature sensor 47 may be attached to each light-emitting element 43, or may be mounted on a separate circuit board electrically connected to the circuit board 45.
[0054] The projection lens 49 is a lens that adjusts the divergence angle of the first light that is incident on the projection lens 49. In the projection lens 49, the incident surface is formed convexly toward the rear, and the exit surface is formed convexly toward the front. The rear focal point of the projection lens 49 is located on or near the exit surface of one of the light-emitting elements 43. The first light, whose divergence angle has been adjusted by the projection lens 49, passes through the front cover 51b of the housing 51 and is emitted from the first lamp 40 toward the front of the vehicle 10.
[0055] Next, a first light distribution pattern 400 formed by the first light emitted from the first lamp 40 will be described with reference to Fig. 4. Fig. 4 is a diagram showing the first light distribution pattern 400 formed on a virtual vertical screen placed 25 m ahead of the vehicle 10. In Fig. 4, S indicates the horizontal line, and V indicates a vertical line passing through the center of the vehicle 10 in the lateral direction.
[0056] The first light distribution pattern 400 includes illumination areas 401a illuminated with the first light emitted from each light-emitting element 43. Since the multiple light-emitting elements 43 are arranged in a matrix, the illumination areas 401a are arranged in a matrix. Each illumination area 401a corresponds to one light-emitting element 43. The relative position of a specific light-emitting element 43 among the multiple light-emitting elements 43 and the relative position of a specific illumination area 401a among the multiple illumination areas 401a corresponding to the specific light-emitting element 43 are inverted vertically and horizontally. In FIG. 4, for ease of understanding, the number of illumination areas 401a is made smaller than the number of light-emitting elements 43. The illumination areas 401a correspond to the shape of the emission surface of the light-emitting elements 43.
[0057] For ease of understanding, in FIG. 4, adjacent illumination areas 401a are shown to be in contact with but overlap each other. In FIG. 4, the area formed by all of the illumination areas 401a is shown as illumination area 401b, and illumination area 401b is an area onto which the first lighting fixture 40 can emit the first light. Illumination area 401b has a rectangular shape that is long in the left-right direction and overlaps with the horizontal line S and the vertical line V. The upper edge of illumination area 401b is located above the horizontal line S and extends horizontally. The lower edge of illumination area 401b is located below the horizontal line S and extends horizontally. The position, orientation, etc. of light-emitting element 43 are adjusted so that illumination area 401b is arranged as described above.
[0058] Adjacent irradiation areas 401a may be in contact with each other or may be separated by gaps. However, it is preferable that the multiple irradiation areas 401a are arranged in a matrix with no gaps. Furthermore, the size and shape of the irradiation areas 401a are not particularly limited, and the size and shape of each irradiation area 401a may differ from each other.
[0059] The size and shape of the first light distribution pattern 400 change depending on the selection of the light-emitting element 43 that emits the first light. In addition, the intensity distribution of the first light in the first light distribution pattern 400 is adjusted by adjusting the light emission amount of each light-emitting element 43.
[0060] Next, the second lighting fixture 60 will be described with reference to Fig. 5. Fig. 5 is a side view that schematically shows the second lighting fixture 60. The second lighting fixture 60 includes a second light source unit 61 that emits second light forward, a shade 67, a projection lens 69 that is disposed in front of the second light source unit 61, and a housing 51 that houses the second light source unit 61, the shade 67, and the projection lens 69. In Fig. 5, the housing 51 is shown in a schematic cross section taken along the vertical direction of the second lighting fixture 60.
[0061] FIG. 6 is a front view schematically showing the second light source unit 61 and the shade 67 shown in FIG. 5. As shown in FIGS. 5 and 6, the second light source unit 61 includes a light-emitting element 63 that emits the second light, which is white light, and a circuit board 65 on which the light-emitting element 63 is mounted. The light-emitting element 63 may be an LED or an LD. The shape of the light-emitting surface of the light-emitting element 63 is generally rectangular and elongated in the left-right direction, but is not particularly limited thereto. The light-emitting surface is larger than the light-emitting surface of the light-emitting element 43 of the first light source unit 41.
[0062] The shade 67 has a light-shielding portion 67a and a fixing portion 67b that are integrally formed by bending a plate-shaped member. The light-shielding portion 67a extends in the left-right direction in front of the light-emitting element 63, and the fixing portion 67b is connected to the lower end of the light-shielding portion 67a. The fixing portion 67b extends rearward from the lower end of the light-shielding portion 67a, and an end of the fixing portion 67b is fixed to the circuit board 65. The upper edge of the light-shielding portion 67a is located below the optical axis of the light-emitting element 63. A protrusion 67c that protrudes upward in a generally isosceles trapezoidal shape is provided at the center of the upper edge of the light-shielding portion 67a in the left-right direction. This light-shielding portion 67a blocks a portion of the second light emitted from the light-emitting element 63.
[0063] The projection lens 69 has the same configuration as the projection lens 49, is disposed forward of the shade 67, and is a lens that adjusts the divergence angle of the second light incident on the projection lens 69. The rear focal point of the projection lens 69 is located at or near the upper edge of the light-shielding portion 67a. As described above, a portion of the second light emitted from the light-emitting element 63 is blocked by the light-shielding portion 67a of the shade 67, and another portion of the second light emitted from the light-emitting element 63 is incident on the projection lens 69. The second light, whose divergence angle has been adjusted by the projection lens 69, passes through the front cover 51b of the housing 51 and is emitted from the second lamp 60 toward the front of the vehicle 10.
[0064] Next, a second light distribution pattern 600 formed by the second light emitted from the second lamp 60 will be described with reference to Fig. 7. Fig. 7 is a diagram showing the second light distribution pattern 600 formed on a virtual vertical screen placed 25 m ahead of the vehicle 10. The shape of the second light distribution pattern 600 corresponds to the shape of the shading portion 67a, and is a light distribution pattern obtained by vertically and horizontally inverting the light distribution pattern when a portion of the second light is blocked by the shading portion 67a.
[0065] The second light distribution pattern 600 overlaps the horizontal line S and the vertical line V. The upper edge of the second light distribution pattern 600 corresponds to the shape of the upper edge of the light-blocking portion 67a, including the protrusion 67c. The upper edge of the second light distribution pattern 600 includes a first edge 601, a second edge 602, a third edge 603, a fourth edge 604, and a fifth edge 605. The first edge 601 is located below the horizontal line S and extends horizontally from the vertical line V to the right, which is one side in the horizontal direction, and to the left, which is the other side in the horizontal direction. The second edge 602 extends diagonally upward from the left end of the first edge 601 to the left. The end of the second edge 602 opposite the first edge 601 is located above the horizontal line S. The third edge 603 extends horizontally to the left from the end of the second edge 602 opposite the first edge 601 and is located above the horizontal line S. The fourth edge 604 and the fifth edge 605 are positioned approximately symmetrically to the second edge 602 and the third edge 603 with respect to the first edge 601. The lower edge of the second light distribution pattern 600 is positioned below the horizontal line S, intersects with the vertical line V, and extends horizontally. The left edge of the second light distribution pattern 600 extends from the end of the third edge 603 opposite to the second edge 602 toward the left end of the lower edge of the second light distribution pattern 600. The right edge of the second light distribution pattern 600 extends from the end of the fifth edge 605 opposite to the fourth edge 604 toward the right end of the lower edge of the second light distribution pattern 600.
[0066] The intensity distribution of the second light in the second light distribution pattern 600 is adjusted by adjusting the amount of light emitted by the light emitting element 63.
[0067] Next, the third lighting fixture 80 will be described with reference to Fig. 8. Fig. 8 is a side view that schematically shows the third lighting fixture 80. The third lighting fixture 80 includes a third light source unit 81 that emits third light forward, a projection lens 89 that is disposed in front of the third light source unit 81, and a housing 51 that houses the third light source unit 81 and the projection lens 89. In Fig. 8, the housing 51 is shown in a schematic cross section taken along the vertical direction of the third lighting fixture 80.
[0068] FIG. 9 is a front view schematically illustrating the third light source unit 81 shown in FIG. 8. The third light source unit 81 includes a plurality of light-emitting elements 83a to 83j that emit third light, which is white light, and a circuit board 85 on which the plurality of light-emitting elements 83a to 83j are mounted. The light-emitting elements 83a to 83j may be LEDs or LDs, and the light-emitting elements 83a to 83j are arranged in a line in the left-right direction in an array. The shape of the light-emitting surface of each of the light-emitting elements 83a to 83j is generally rectangular and of approximately the same size and elongated in the up-down direction, but is not particularly limited thereto. The light-emitting surface is larger than the light-emitting surface of the light-emitting element 43 in the first light source unit 41. The number of light-emitting elements is not particularly limited as long as it is one or more. The light-emitting elements 83a to 83j may be LEDs or LDs that emit light of different wavelengths. The number of light-emitting elements may be two or more. Each of the light emitting elements 83a to 83j emits the third light when power is individually supplied from a power supply unit (not shown) via a circuit board 85, and generates heat when emitting the third light. The greater the power supplied to each, the greater the amount of light emitted by each of the light emitting elements 83a to 83j.
[0069] The projection lens 89 has the same configuration as the projection lens 49, and is a lens that adjusts the divergence angle of the third light that is incident on the projection lens 89. The rear focal point of the projection lens 89 is located on or near the emission surface of the light-emitting element 83f that is located approximately in the center on the left and right sides of the plurality of light-emitting elements 83a to 83j. The third light whose divergence angle has been adjusted by the projection lens 89 passes through the front cover 51b of the housing 51 and is emitted from the third lamp 80 toward the front of the vehicle 10.
[0070] Next, a third light distribution pattern 800 formed by the third light emitted from the third lamp 80 will be described with reference to Fig. 10. Fig. 10 is a diagram showing the third light distribution pattern 800 formed on a virtual vertical screen placed 25 m ahead of the vehicle 10.
[0071] The third light distribution pattern 800 includes illumination areas 801a to 801j that are illuminated with the third light emitted from the light-emitting elements 83a to 83j. Since the light-emitting elements 83a to 83j are arranged in a row in the left-right direction, the illumination areas 801a to 801j are also arranged in a row in the left-right direction. The illumination areas 801a to 801j individually correspond to the shapes of the emission surfaces of the light-emitting elements 83a to 83j, and are generally rectangular in shape and of the same size that are elongated in the up-down direction. Adjacent illumination areas are in contact with each other.
[0072] Third light distribution pattern 800 has a rectangular shape that is long in the left-right direction, and illumination areas 801a-801j overlap with horizontal line S, and illumination areas 801e and 801f are in contact with vertical line V. The upper edge of each illumination area, which is the upper edge of third light distribution pattern 800, is located above horizontal line S and extends horizontally. The lower edge of each illumination area, which is the lower edge of third light distribution pattern 800, is located below horizontal line S and extends horizontally. The positions, orientations, etc. of light-emitting elements 83a-83j are adjusted so that illumination areas 801a-801j are arranged as described above.
[0073] Note that adjacent irradiation areas may partially overlap each other. Alternatively, adjacent irradiation areas may be separated from each other, forming a gap. However, it is preferable that irradiation areas 801a to 801j are aligned side by side with no gaps in the left-right direction. Furthermore, the size and shape of irradiation areas 801a to 801j are not particularly limited, and they may be different from each other, as long as they are larger than irradiation area 401a.
[0074] The size and shape of the third light distribution pattern 800 change depending on the selection of the light emitting elements 83a to 83j that emit the third light. Furthermore, the intensity distribution of the third light in the third light distribution pattern 800 is adjusted by adjusting the light emission amount of each of the light emitting elements 83a to 83j.
[0075] Returning to FIG. 1, the description of vehicle 10 will continue.
[0076] The detection device 150 includes a steering sensor, which detects the rotation direction and rotation angle of the steering wheel of the vehicle 10, i.e., the direction in which the vehicle 10 turns and the steering angle of the vehicle 10. Therefore, the steering sensor detects rightward steering angles and leftward steering angles while distinguishing these steering angles as different steering angles. The steering sensor is electrically connected to the control unit 110, and outputs a signal to the control unit 110 according to the steering angle based on when the vehicle 10 is traveling straight ahead. Note that the steering sensor may be electrically connected to the control unit 110 via an ECU (Electronic Control Unit) (not shown) of the vehicle 10, or may input a signal to the control unit 110 via the ECU.
[0077] The recording unit 130 is electrically connected to the control unit 110. The recording unit 130 is, for example, a non-transitory recording medium, and is preferably a semiconductor recording medium such as a random access memory (RAM) or a read only memory (ROM), but may include any type of recording medium, such as an optical recording medium or a magnetic recording medium. Note that the term "non-transitory" recording medium includes all computer-readable recording media except for transient, propagating signals, and does not exclude volatile recording media.
[0078] The control unit 110 is composed of, for example, an integrated circuit such as a microcontroller, an integrated circuit (IC), a large-scale integrated circuit (LSI), or an application specific integrated circuit (ASIC), or an NC (Numerical Control) device. Furthermore, when the control unit 110 uses an NC device, the control unit 110 may or may not use a machine learning device. The control unit 110 may be part of the ECU of the vehicle 10.
[0079] A light switch 200 is electrically connected to the control unit 110. The light switch 200 is a switch that selects whether to emit a low beam, a high beam, or no light. For example, the light switch 200 outputs a control signal indicating low beam emission to the control unit 110 when low beam emission is selected, and outputs a control signal indicating high beam emission to the control unit 110 when high beam emission is selected. In this way, the control signal is a signal that instructs the lighting unit 30 to start emitting light. Furthermore, the light switch 200 does not output a control signal to the control unit 110 when no light emission is selected. The control unit 110 stops driving the lighting unit 30 when no control signal is input.
[0080] When a control signal is input from the light switch 200, the control unit 110 supplies or stops the supply of power to the light-emitting elements 43, 63, 83a to 83j via the power supply unit and the circuit boards 45, 65, 85. This selects the light-emitting elements 43, 63, 83a to 83j that emit light, and the light distribution patterns 400, 600, 800 formed by the light emitted from the lighting unit 30 change in accordance with the selection. The control unit 110 also adjusts the power supplied to the light-emitting elements 43, 63, 83a to 83j. This adjusts the amount of light emitted by each of the light-emitting elements 43, 63, 83a to 83j, and adjusts the light intensity distribution in the light distribution patterns 400, 600, 800.
[0081] Next, the temperature derating in the first light source unit 41 will be described.
[0082] In the first light source unit 41, the light emitting elements 43 are arranged more densely than in the other light source units 61 and 81, and therefore the temperature of the first light source unit 41 is more likely to rise than in the other light source units 61 and 81. Therefore, in this embodiment, the control unit 110 performs temperature derating on the first light source unit 41.
[0083] The control unit 110 does not perform temperature derating when the temperature T of the first light source unit 41 estimated by the temperature sensor 47 is lower than a temperature T0, such as 80°C, which is a predetermined value for starting temperature derating. Furthermore, the control unit 110 performs temperature derating when the temperature T is equal to or higher than the temperature T0. When the temperature T is equal to the temperature T0, the control unit 110 supplies the light-emitting element 43 with a power E0 that is lower than the power that would be supplied if temperature derating were not performed. In this case, the control unit supplies the power E0 to the light-emitting element 43 that is supplied with a power higher than the power E0, thereby reducing the power supplied to the light-emitting element 43. Furthermore, when the temperature T is a temperature T1 that is higher than the temperature T0, the control unit 110 supplies the light-emitting element 43 with a power E1 that is lower than the power E0. In this case, the control unit 110 supplies the light-emitting element 43 with a power E1 that is lower than the power E0 to the light-emitting element 43. In this case, the control unit 110 supplies the light-emitting element 43 with a power E1 that is supplied with a power higher than the power E1, among the plurality of light-emitting elements 43, thereby reducing the power supplied to the light-emitting element 43. If the temperature T0 is 80°C, the temperature T1 is, for example, 110°C. If the estimated temperature T is a temperature T2 that is greater than the temperature T1, the control unit 110 supplies the light-emitting element 43 with power E2 that is less than the power E1. If the temperature T1 is 110°C, the temperature T2 is, for example, 120°C. If the estimated temperature T is greater than the temperature T2, the control unit 110 supplies the light-emitting element 43 with power E2, for example, to prevent the light from going out. In this manner, when the temperature T is equal to or greater than the temperature T0, the control unit 110 controls the power E according to the temperature T. As the power E decreases, the light emission and heat generation of each light-emitting element 43 decrease, and the temperature of the first light source unit 41 decreases. Note that the temperature T1 may be the same when a high beam is emitted and when a low beam is emitted, or may be higher or lower when a high beam is emitted than when a low beam is emitted.
[0084] Next, the operation of the vehicle headlamp 20 of this embodiment will be described.
[0085] 11 is a diagram showing an example of a control flowchart of the control unit 110 in this embodiment. As shown in FIG. 11, the control flow of this embodiment includes steps SP11 to SP18. However, the control flow is not limited to this. In the start state shown in FIG. 11, it is assumed that the temperature sensor 47 estimates the temperature T of the first light source unit 41, and the temperature signal is input to the control unit 110.
[0086] (Step SP11) If a control signal is not input from the light switch 200, the control unit 110 does not supply power to the light emitting elements 43, 63, 83a to 83j and repeats step SP11. If the light switch 200 is turned ON and a control signal is input from the light switch 200, the control unit 110 advances the control flow to step SP12.
[0087] (Step SP12) In this step, if the control signal from the light switch 200 is a signal indicating the emission of a low beam, the control unit 110 advances the control flow to step SP13. If the control signal from the light switch 200 is not a signal indicating the emission of a low beam, the control unit 110 advances the control flow to step SP16.
[0088] (Step SP13) In this step, the control unit 110 supplies power to the light-emitting elements 43 and 63 to emit the first and second light beams, thereby forming a low-beam light distribution pattern. Fig. 12 is a diagram showing a low-beam light distribution pattern 910 formed on a virtual vertical screen placed 25 m ahead of the vehicle 10. In Fig. 12, the light distribution pattern 910 is indicated by a thick line.
[0089] In this step, the first light forms the first light distribution pattern 400, and the second light forms the second light distribution pattern 600. When a low beam is emitted, the first light distribution pattern 400 is formed by the first light from some of the light-emitting elements 43 rather than from all of the light-emitting elements 43, but may be formed by the first light from at least some of the light-emitting elements 43. In Fig. 12, the upper edge, part of the left edge, and part of the right edge of the illumination area 401b in the first light distribution pattern 400 are indicated by dashed lines.
[0090] The light distribution pattern 910 is formed by overlapping the first light distribution pattern 400 and the second light distribution pattern 600. Specifically, a portion of the first light distribution pattern 400 overlaps at least a portion of the second light distribution pattern 600. Another portion of the first light distribution pattern 400 does not overlap the second light distribution pattern 600, but is located outside the second light distribution pattern 600 above the height position of a first edge 601 of the upper edge of the second light distribution pattern 600.
[0091] The light distribution pattern 910 as described above has cutoff lines CL11 to CL15 on the upper edge. The cutoff line CL11 extends horizontally to the right, which is one side in the left-right direction, from the elbow point EP, which is located below the horizontal line S and on or near the vertical line V. The cutoff line CL12 extends obliquely upward from the elbow point EP to the left, which is the other side in the left-right direction. An end of the cutoff line CL12 opposite to the elbow point EP is located above the horizontal line S. The cutoff line CL13 extends horizontally from an end of the cutoff line CL12 opposite to the elbow point EP to the other side in the left-right direction. The cutoff line CL13 is located above the horizontal line S. The cutoff line CL14 extends obliquely upward to one side in the left-right direction from an end of the cutoff line CL11 opposite to the elbow point EP. The end of the cutoff line CL14 opposite to the cutoff line CL11 side is located above the horizontal line S, and is located at approximately the same height as the cutoff line CL13. The cutoff line CL15 extends horizontally to one side in the left-right direction from the end of the cutoff line CL14 opposite to the cutoff line CL11 side. The cutoff line CL15 is located above the horizontal line S, and is located at approximately the same height as the cutoff line CL13.
[0092] The cutoff lines CL11, CL12, and CL14 of the light distribution pattern 910 are parts of the upper edge of the first light distribution pattern 400. A part of the cutoff line CL13 that is continuous with the cutoff line CL12 is another part of the upper edge of the first light distribution pattern 400. Another part of the cutoff line CL13 is a third edge 603 at the upper edge of the second light distribution pattern 600. A part of the cutoff line CL15 that is continuous with the cutoff line CL14 is the remaining part of the upper edge of the first light distribution pattern 400. Another part of the cutoff line CL15 is a fifth edge 605 at the upper edge of the second light distribution pattern 600. The controller 110 controls the supply of power to the light-emitting element 43 so that the upper edge of the first light distribution pattern 400 is the cutoff lines CL11, CL12, CL14, part of the cutoff line CL13, and part of the cutoff line CL15. Therefore, the first light distribution pattern 400 of the light distribution pattern 910 is formed by the first light emitted not from all the light emitting elements 43 of the first lamp 40 but from some of the light emitting elements 43 .
[0093] The left edge, right edge, and bottom edge of the light distribution pattern 910 are the left edge, right edge, and bottom edge of the second light distribution pattern 600. Therefore, the second light distribution pattern 600 is longer in the left-right direction than the first light distribution pattern 400. The left edge of the second light distribution pattern 600 is located to the left of the left edge of the first light distribution pattern 400, and the right edge of the second light distribution pattern 600 is located to the right of the right edge of the first light distribution pattern 400. The bottom edge of the first light distribution pattern 400 is located between the top and bottom edges of the second light distribution pattern 600.
[0094] The light distribution pattern 910 includes a first region 911 where a portion of the first light distribution pattern 400 overlaps a portion of the second light distribution pattern 600, and a second region 913 where another portion of the first light distribution pattern 400 does not overlap the second light distribution pattern 600. In the light distribution pattern 910, the first light from the first lamp 40 and the second light from the second lamp 60 illuminate the region 911, and the first light from the first lamp 40 illuminates the region 913. The region 911 is larger than the region 913. Note that if the amount of the second light is lower than a predetermined percentage of the peak value of the amount of the second light, the region where the first light and the second light overlap can be considered to be the region 913. The predetermined percentage is, for example, 2%, and in this case, the first light and the second light can be considered to not overlap visually. Alternatively, a region where the first light is overlapped with second light having a luminous intensity lower than the predetermined luminous intensity of the second light forming the outer edge of the second light distribution pattern 600, such as edges 601, 602, and 604, can be regarded as region 913. The predetermined luminous intensity is, for example, 500 cd, and it can be visually regarded by humans as a region where the first light and the second light do not overlap.
[0095] There are two regions 913. One region 913 is surrounded by cutoff lines CL12 and parts of cutoff lines CL13, a part of the first edge 601 passing through the elbow point EP, and the second edge 602 on the left side of the vertical line V. The other region 913 is surrounded by cutoff lines CL14 and parts of cutoff lines CL15, another part of the first edge 601 passing through the elbow point EP, and the fourth edge 604 on the right side of the vertical line V. The respective regions 913 are located apart in the left-right direction. Such region 913 is a region of the first light distribution pattern 400 excluding region 911, is continuous with region 911, and is located above region 911 outside of the second light distribution pattern 600.
[0096] A hot zone HZL, which is the region in light distribution pattern 910 where the light intensity is highest, is located near elbow point EP within region 911. The control unit 110 adjusts the light intensities of the first and second light beams emitted from the light-emitting elements 43 and 63, respectively, so that the light intensity in this light distribution pattern 910 decreases, for example, with increasing distance from the hot zone HZL.
[0097] After forming the low beam light distribution pattern 910 ahead of the vehicle 10, the control unit 110 advances the control flow to step SP14.
[0098] (Step SP14) In this step, if the temperature T indicated by the temperature signal from the temperature sensor 47 is lower than the temperature T0, the control unit 110 returns the control flow to step SP11. If the temperature T is equal to or higher than the temperature T0, the control unit 110 advances the control flow to step SP15.
[0099] (Step SP15) The control unit 110 performs temperature derating on the first light source unit 41 based on the temperature of the first light source unit 41 in a state in which the low beam light distribution pattern 910 is formed.
[0100] In this step, the control unit 110 reduces the power supplied to the light-emitting element 43 that emits at least a portion of the first light that irradiates at least an area 911 of the first light distribution pattern 400 in the light distribution pattern 910, compared to the power before the temperature derating. As a result, the amount of first light that irradiates the area 911 is reduced compared to the power before the temperature derating. When the amount of first light is reduced, the amount of heat generated by the light-emitting element 43 is reduced, and a temperature rise in the first light source unit 41 is suppressed. Note that when the temperature T of the first light source unit 41 becomes lower than the temperature T0, the control unit 110 returns the power supplied to the light-emitting element 43 to the power before the temperature derating.
[0101] Furthermore, when performing temperature derating on the first light source unit 41, the control unit 110 keeps the power supplied to the plurality of light-emitting elements 43 that emit the first light that irradiates the region 913 of the first light distribution pattern 400 the same as before the temperature derating. As a result, the amount of the first light that irradiates the region 913 becomes the same as before the temperature derating, and changes in brightness in the region 913 are suppressed even when temperature derating is performed. Furthermore, changes in brightness on the sides of the cutoff lines CL12, parts of CL13, and parts of CL14 and CL15 of the light distribution pattern 910 are suppressed.
[0102] When performing temperature derating on the first light source unit 41, the control unit 110 may reduce the power supplied to the light-emitting element 43 that emits at least a portion of the first light that illuminates the region 913, compared to before the temperature derating. This reduces the amount of heat generated by the light-emitting element 43 compared to before the temperature derating, and may suppress a temperature increase in the first light source unit 41. Furthermore, for example, if the region 913 is brighter than the second light distribution pattern 600 before the temperature derating, the region 913 may become the same brightness as the second light distribution pattern 600 as a result of the temperature derating. When the region 913 becomes the same brightness as the second light distribution pattern 600, an excessive change in brightness between the region 913 and the second light distribution pattern 600 may be suppressed compared to when the region 913 does not become the same brightness as the second light distribution pattern 600.
[0103] Furthermore, when temperature derating is performed on the first light source unit 41, the control unit 110 keeps the power supplied to the light-emitting element 63 that emits the second light the same as before temperature derating. As a result, the amount of second light that irradiates the second light distribution pattern 600 of the low beam light distribution pattern 910 remains the same as before temperature derating, and changes in brightness of the second light distribution pattern 600 are suppressed even when temperature derating is performed.
[0104] After performing the temperature derating on the first light source unit 41, the control unit 110 returns the control flow to step SP11.
[0105] (Step SP16) In this step, the control signal in step SP12 becomes a signal indicating emission of a high beam, and control unit 110 supplies power to light-emitting elements 43, 63, 83a to 83j, causing them to emit the first, second, and third light beams and form a high-beam light distribution pattern. Fig. 13 is a diagram showing a high-beam light distribution pattern 930 formed on a virtual vertical screen placed 25 m ahead of vehicle 10. In Fig. 13, light distribution pattern 930 is shown by a thick line, and low-beam light distribution pattern 910 shown in Fig. 12 is shown by a dashed line.
[0106] In this step, similar to when a low beam is emitted, light distribution patterns 400 and 600 are formed, and third light distribution pattern 800 is formed by the third light. When a high beam is emitted, unlike when a low beam is emitted, first light distribution pattern 400 is formed by the first light from all of the light-emitting elements 43. Therefore, when a high beam is emitted, first light distribution pattern 400 is larger than when a low beam is emitted.
[0107] The light distribution pattern 930 is formed by the overlap of the light distribution patterns 400, 600, and 800. Specifically, in the light distribution pattern 930, the third light distribution pattern 800 is aligned with the second light distribution pattern 600 in the up-down direction. A portion of the third light distribution pattern 800 overlaps a portion of the second light distribution pattern 600, while another portion of the third light distribution pattern 800 does not overlap the second light distribution pattern 600 and is located outside the second light distribution pattern 600. In the light distribution pattern 930, a portion of the first light distribution pattern 400 overlaps only with the second light distribution pattern 600, while another portion of the first light distribution pattern 400 overlaps only with the third light distribution pattern 800. The remaining portions of the first light distribution pattern 400 overlap with the second light distribution pattern 600 and the third light distribution pattern 800.
[0108] The second light distribution pattern 600 is longer in the left-right direction than the third light distribution pattern 800. The left edge of the second light distribution pattern 600 is located to the left of the left edge of the third light distribution pattern 800, and the right edge of the second light distribution pattern 600 is located to the right of the right edge of the third light distribution pattern 800. The lower edge of the second light distribution pattern 600 is located below the lower edge of the third light distribution pattern 800. Of the upper edges of the second light distribution pattern 600, edges 602 to 605 are located above the lower edge of the third light distribution pattern 800. The second edge 602, part of the third edge 603, the fourth edge 604, and part of the fifth edge 605 are located inside the third light distribution pattern 800, while another part of the third edge 603 and another part of the fifth edge 605 are located outside the third light distribution pattern 800. The first edge 601 overlaps part of the lower edge of the third light distribution pattern 800. Therefore, a part of the second light distribution pattern 600 overlaps a part of the third light distribution pattern 800 , and another part of the second light distribution pattern 600 does not overlap the third light distribution pattern 800 and is located outside the third light distribution pattern 800 .
[0109] The second light distribution pattern 600 is longer in the left-right direction than the first light distribution pattern 400. The left edge of the second light distribution pattern 600 is located to the left of the left edge of the first light distribution pattern 400, and the right edge of the second light distribution pattern 600 is located to the right of the right edge of the first light distribution pattern 400. The upper edge of the second light distribution pattern 600 crosses between the upper and lower edges of the first light distribution pattern 400. Edges 601, 602, and 604 are located inside the first light distribution pattern 400, and edges 603 and 605 are located outside the first light distribution pattern 400.
[0110] The first light distribution pattern 400 is shorter in the left-right direction than the third light distribution pattern 800. The left edge of the first light distribution pattern 400 is located to the right of the left edge of the third light distribution pattern 800, and the right edge of the first light distribution pattern 400 is located to the left of the right edge of the third light distribution pattern 800. The lower edge of the first light distribution pattern 400 is located below the lower edge of the third light distribution pattern 800 and the upper edge of the second light distribution pattern 600. In addition, the upper edge of the first light distribution pattern 400 is located below the upper edge of the third light distribution pattern 800 and above the upper edge of the second light distribution pattern 600.
[0111] The upper edge of the light distribution pattern 930 as described above is a part of the third edge 603 of the second light distribution pattern 600 located outside the third light distribution pattern 800, and a part of the left edge of the third light distribution pattern 800 located outside the second light distribution pattern 600. The upper edge of the light distribution pattern 930 is the upper edge of the third light distribution pattern 800, the right edge of the third light distribution pattern 800 located outside the second light distribution pattern 600, and a part of the fifth edge 605 of the second light distribution pattern 600 located outside the third light distribution pattern 800. The left edge, right edge, and lower edge of the light distribution pattern 930 are the left edge, right edge, and lower edge of the second light distribution pattern 600.
[0112] The light distribution pattern 930 includes a region 931, which is a first region where a part of the first light distribution pattern 400 overlaps with a part of the second light distribution pattern 600, and a region 933, which is a second region where another part of the first light distribution pattern 400 does not overlap with the second light distribution pattern 600.
[0113] The region 931 is the same as the region 911, which is the first region in the low-beam light distribution pattern 910, but for ease of explanation, different reference numerals are used. In part of the region 931, part of the first light distribution pattern 400 overlaps only with the second light distribution pattern 600. In another part of the region 931, another part of the first light distribution pattern 400 overlaps with the second light distribution pattern 600 and the third light distribution pattern 800. Therefore, the region 931 is a region where the first light distribution pattern 400 overlaps with at least the second light distribution pattern 600. A part of the region 931 is larger than the other part of the region 931. In the light distribution pattern 930, the first and second lights are irradiated onto a part of the region 931, and the first to third lights are irradiated onto another part of the region 931.
[0114] At least a portion of the region 933 includes a third region in which a remaining portion of the first light distribution pattern 400 overlaps with a portion of the third light distribution pattern 800. In this embodiment, since a remaining portion of the first light distribution pattern 400 overlaps with a portion of the third light distribution pattern 800 over the entire region 933, the entire region 933 is also the third region. The region 933 is larger than the region 931. In this embodiment, the region 933 includes the region 913, which is the second region in the low beam light distribution pattern 910, and is larger than the region 913. The region 933 is continuous with the region 931 in the up-down direction, and the lower edge of the region 933 is continuous with the upper edge of the region 931. In the light distribution pattern 930, the region 933 is illuminated with the first and third lights.
[0115] A hot zone HZH, which is an area in light distribution pattern 930 where the light intensity is the highest, is located on or near the intersection of a horizontal line S and a vertical line V in an area 933 where light distribution patterns 400, 800 overlap each other. The control unit 110 adjusts the light intensities of the first and third lights emitted from the light-emitting elements 43, 83a to 83j so that the light intensity in light distribution pattern 930 decreases, for example, with increasing distance from the hot zone HZH.
[0116] After forming the high beam light distribution pattern 930 ahead of the vehicle 10, the control unit 110 advances the control flow to step SP17.
[0117] (Step SP17) In this step, if the temperature T indicated by the temperature signal from the temperature sensor 47 is lower than the temperature T0, the control unit 110 returns the control flow to step SP11. If the temperature T is equal to or higher than the temperature T0, the control unit 110 advances the control flow to step SP18.
[0118] (Step SP18) The control unit 110 performs temperature derating on the first light source unit 41 based on the temperature of the first light source unit 41 in a state in which the high beam light distribution pattern 930 is formed.
[0119] In this step, the control unit 110 reduces the power supplied to the light-emitting element 43 that emits at least a portion of the first light that irradiates at least one of the region 931 and the region 933 of the first light distribution pattern 400 in the light distribution pattern 930, compared to the power before the temperature derating. As a result, the amount of light of the at least a portion of the first light that irradiates at least one of the region 931 and the region 933 is reduced, compared to the power before the temperature derating. When the amount of light of the first light is reduced, the amount of heat generated by the light-emitting element 43 is reduced, and a temperature rise in the first light source unit 41 is suppressed. Note that when the temperature T of the first light source unit 41 becomes lower than the temperature T0, the control unit 110 restores the power supplied to the light-emitting element 43 to the power before the temperature derating.
[0120] Furthermore, when temperature derating is performed on the first light source unit 41, the control unit 110 keeps the power supplied to the light-emitting element 63 that emits the second light and the power supplied to the light-emitting elements 83a to 83j that emit the third light the same as before temperature derating. As a result, the amount of second light that irradiates the second light distribution pattern 600 and the amount of third light that irradiates the third light distribution pattern 800 of the high beam light distribution pattern 930 remain the same as before temperature derating. Therefore, even when temperature derating is performed, changes in brightness in the light distribution patterns 600 and 800 are suppressed.
[0121] After performing the temperature derating on the first light source unit 41, the control unit 110 returns the control flow to step SP11.
[0122] As described above, in the vehicle headlamp 20 of this embodiment, when temperature derating is performed on the first light source unit 41 while the low beam light distribution pattern 910 is formed, the control unit 110 controls the power supplied to each of the multiple light-emitting elements 43 so that the amount of light of at least a portion of the first light that irradiates at least an area 911 of the first light distribution pattern 400 is reduced compared to before the temperature derating.
[0123] In this vehicle headlamp 20, the first light and the second light are irradiated in the region 911 of the low beam light distribution pattern 910. Therefore, when temperature derating is performed, even if the amount of the first light is reduced in the region 911 as described above, the decrease in brightness of the low beam light distribution pattern 910 is suppressed compared to when the second light does not irradiate the first region, and the decrease in forward visibility can be suppressed. Furthermore, when the amount of the first light is reduced, the amount of heat generated by the light emitting element 43 is reduced, and the temperature rise of the first light source unit 41 can be suppressed.
[0124] Furthermore, in the vehicle headlamp 20 of this embodiment, at least a portion of the region 933 includes a third region that overlaps with a portion of the third light distribution pattern 800. In this embodiment, the entire region 933 is the third region. When temperature derating is performed on the first light source unit 41 in a state in which the high beam light distribution pattern 930 is formed, the control unit 110 controls the power supplied to each of the multiple light-emitting elements 43 so that the amount of light of at least a portion of the first light that irradiates at least one of the region 931 and the region 933 is reduced compared to before the temperature derating.
[0125] In this vehicle headlamp 20, in a high beam light distribution pattern 930, the first light, the second light, and the third light are irradiated in an area 931, and the first light and the third light are irradiated in an area 933. According to the above configuration, when temperature derating is performed, even if the amount of the first light is reduced, the decrease in brightness of the high beam light distribution pattern 930 can be suppressed compared to when the second light and the third light do not irradiate the area 931 and when the third light does not irradiate the area 933. Therefore, a decrease in forward visibility can be suppressed. Furthermore, when the amount of the first light is reduced, the amount of heat generated by the light-emitting element 43 decreases, and a temperature rise in the first light source unit 41 can be suppressed.
[0126] When the control unit 110 performs temperature derating on the first light source unit 41 while the low-beam light distribution pattern 910 is being formed, the control unit 110 may stop the supply of power to the light-emitting element 43 that emits the first light that irradiates the region 911, thereby reducing the amount of light of the first light to zero. This can further suppress a rise in temperature of the first light source unit 41. Furthermore, when the supply of power is stopped, only the second light is irradiated in the region 911. Even if the amount of light of the first light becomes zero in the region 911, the decrease in brightness of the low-beam light distribution pattern 910 is suppressed compared to when the second light does not irradiate the region 911, and a decrease in forward visibility can be suppressed.
[0127] Furthermore, when the control unit 110 performs temperature derating on the first light source unit 41 while the high beam light distribution pattern 930 is being formed, the control unit 110 may stop the supply of power to the light-emitting element 43, thereby reducing the amount of light emitted by the first light. This may further reduce the temperature rise of the first light source unit 41. Furthermore, when the supply of power is stopped, only the second light is emitted in a portion of the region 931, the second and third lights are emitted in another portion of the region 931, and only the third light is emitted in the region 933. Even if the amount of light emitted by the first light is reduced to zero in the regions 931 and 933, the reduction in brightness of the high beam light distribution pattern 930 is reduced compared to when the second and third lights are not irradiating the region 931 and when the third light is not irradiating the region 933, thereby reducing the reduction in forward visibility.
[0128] When temperature derating is performed on the first light source unit 41 in a state in which the low beam light distribution pattern 910 is formed, the control unit 110 of the present embodiment controls the power supplied to each of the light-emitting elements 43 that emit the first light that irradiates the areas 911 and 913, as described above. However, the control of the light-emitting elements 43 by the control unit 110 is not necessarily limited to the above. Other control of the light-emitting elements 43 by the control unit 110 will be described below.
[0129] When temperature derating is performed on the first light source unit 41 in a state in which a low-beam light distribution pattern 910 is formed, the control unit 110 may control the power supplied to each of the light-emitting elements 43 so that the amount of light of at least a portion of the first light irradiating the region 911 is reduced more than the amount of light of at least a portion of the first light irradiating the region 913. This can suppress a decrease in brightness on the side of the cutoff lines CL12, parts of CL13, CL14, and CL15 of the light distribution pattern 910 compared to a case in which the amount of light of the first light irradiating the region 913 is reduced more than the amount of light of the first light irradiating the region 911. Furthermore, according to the above configuration, when the region 911 is larger than the region 913, a temperature rise of the first light source unit 41 is suppressed more than when the region 911 is smaller than the region 913. Note that the amount of light in the region 911 may be reduced by the same amount as the amount of light in the region 913, or may be reduced less than the amount of light in the region 913.
[0130] Furthermore, when temperature derating is performed on the first light source unit 41 while the low-beam light distribution pattern 910 is being formed, the control unit 110 may control the power supplied to each of the light-emitting elements 43 so that the light intensity of at least a portion of the first light irradiating the region 913 decreases later than the light intensity of at least a portion of the first light irradiating the region 911. This may delay the start of the decrease in brightness on the cutoff lines CL11, CL12, parts of CL13, and parts of CL14 and CL15 of the light distribution pattern 910 compared to when the light intensity of the first light irradiating the region 913 decreases before the light intensity of the first light irradiating the region 911. This may delay the start of the decrease in visibility of the cutoff lines. Note that the light intensity of the region 913 may decrease simultaneously with the light intensity of the region 911 or may decrease before the light intensity of the region 911.
[0131] Furthermore, when performing temperature derating on the first light source unit 41 while a low-beam light distribution pattern 910 is being formed, the control unit 110 may control the power supplied to each of the light-emitting elements 43 so that the light intensity in the first light distribution pattern 400 decreases from the upper edge of the first light distribution pattern 400 included in the region 913 toward the lower edge of the first light distribution pattern 400 included in the region 911. This may suppress a decrease in brightness on the sides of the cutoff lines CL11, CL12, and parts of CL13, and parts of CL14 and CL15 of the light distribution pattern 910, compared to when the light intensity decreases from the lower edge toward the upper edge of the first light distribution pattern 400. This may suppress a decrease in visibility of the cutoff lines. Note that the light intensity in the first light distribution pattern 400 may decrease from the lower edge toward the upper edge of the first light distribution pattern 400. In the above configuration, the control unit 110 may gradually or stepwise decrease the light intensity. When the amount of light gradually decreases from the upper edge side to the lower edge side of the first light distribution pattern 400, excessive changes in the brightness of the first light distribution pattern 400 that decrease from the upper edge side to the lower edge side of the first light distribution pattern 400 can be suppressed compared to when the amount of light does not gradually decrease.
[0132] Furthermore, when temperature derating is performed on the first light source unit 41 while the low-beam light distribution pattern 910 is being formed, the control unit 110 may control the power supplied to each of the light-emitting elements 43 so that the amount of light in the first light distribution pattern 400 decreases from the hot zone HZL side toward the periphery of the first light distribution pattern 400. The line of sight of the driver of the vehicle 10 tends to be concentrated on the hot zone HZL side rather than the periphery of the first light distribution pattern 400. With the above configuration, the decrease in brightness on the hot zone HZL side, where the driver's line of sight is concentrated, can be suppressed compared to when the amount of light decreases from the periphery of the first light distribution pattern 400 toward the hot zone HZL.
[0133] Furthermore, when performing temperature derating on the first light source unit 41, the control unit 110 may control the power supplied to each of the light-emitting elements 43 so that the amount of light of at least some of the first light irradiating the upper edge side of the first light distribution pattern 400 decreases later than the amount of light of at least some of the first light irradiating the lower edge side of the first light distribution pattern 400. According to the above configuration, the brightness of the cutoff lines CL11, CL12, and some of CL13, and some of CL14 and CL15 of the light distribution pattern 910 may start to decrease later than when the amount of light on the upper edge side of the first light distribution pattern 400 decreases before the amount of light on the lower edge side. This may delay the start of the decrease in visibility of the cutoff lines. The amount of light on the upper edge side of the first light distribution pattern 400 may decrease simultaneously with the amount of light on the lower edge side of the first light distribution pattern 400, or may decrease before the amount of light on the lower edge side of the first light distribution pattern 400.
[0134] In addition, when performing temperature derating on the first light source unit 41, the control unit 110 may control the power supplied to each of the light-emitting elements 43 so that the amount of light in the area 911 decreases from the upper edge side toward the lower edge side of the first light distribution pattern 400.
[0135] Alternatively, when performing temperature derating on the first light source unit 41, the control unit 110 may control the power supplied to each of the light-emitting elements 43 so that the amount of light in the region 913 decreases from the upper edge side toward the lower edge side of the first light distribution pattern 400.
[0136] Furthermore, the control unit 110 may control the power supplied to each of the plurality of light-emitting elements 43 so that the amount of light in the region 913 is the same as the amount of light in the region 911 .
[0137] When temperature derating is performed on the first light source unit 41 in a state in which the high beam light distribution pattern 930 is formed, the control unit 110 of this embodiment controls the power supplied to each of the light-emitting elements 43 that emit the first light that irradiates at least one of the areas 931 and 933, as described above. However, the control of the light-emitting elements 43 by the control unit 110 is not necessarily limited to the above. Other control of the light-emitting elements 43 by the control unit 110 will be described below.
[0138] For example, when temperature derating is performed on the first light source unit 41 while a high-beam light distribution pattern 930 is being formed, the control unit 110 may control the power supplied to each of the light-emitting elements 43 so that the amount of light of at least some of the first light irradiating the region 931 is reduced more than the amount of light of at least some of the first light irradiating the region 933. Because the region 933 is located above the region 931, the driver's line of sight tends to be focused on the region 933 rather than the region 931. With the above configuration, the decrease in brightness of the region 933 of the high-beam light distribution pattern, where the driver's line of sight is focused, is suppressed compared to when the amount of light of the region 931 is reduced less than the amount of light of the region 933, thereby suppressing a decrease in forward visibility. Note that the amount of light in the region 931 may be reduced by the same amount as the amount of light in the region 933, or may be reduced less than the amount of light in the region 933.
[0139] Furthermore, when temperature derating is performed on the first light source unit 41 in a state in which a high beam light distribution pattern 930 is formed, the control unit 110 may control the power supplied to each of the light-emitting elements 43 so that the amount of light of at least a portion of the first light irradiating the region 933 decreases later than the amount of light of at least a portion of the first light irradiating the region 931. When a light distribution pattern 930 is formed in which the region 933 is larger than the region 931, the driver's line of sight tends to be focused on the region 933 rather than on the region 931. When the region 933 is larger than the region 931, according to the above configuration, the brightness of the region 933, on which the driver's line of sight is focused, may start to decrease later than when the amount of light of the region 933 decreases before the amount of light of the region 931 decreases, and a decrease in visibility in the region 933 is suppressed.
[0140] The light intensity of the region 933 may decrease simultaneously with the light intensity of the region 931, or may decrease before the light intensity of the region 931. When the region 933 is larger than the region 931, if the light intensity of the region 933 decreases before the light intensity of the region 931 decreases, the temperature rise of the first light source unit 41 is more suppressed than when the light intensity of the region 933 decreases after the light intensity of the region 931 decreases.
[0141] Furthermore, when performing temperature derating on the first light source unit 41 while the high-beam light distribution pattern 930 is being formed, the control unit 110 may control the power supplied to each of the light-emitting elements 43 so that the amount of light in the first light distribution pattern 400 decreases from the upper edge of the first light distribution pattern 400 included in the third region toward the lower edge of the first light distribution pattern 400 included in the region 931. When the light distribution pattern 930 is formed, the driver's gaze tends to be focused on the region 933 rather than the region 931. With the above configuration, the decrease in brightness of the region 933, where the driver's gaze is focused, is suppressed compared to when the amount of light decreases from the lower edge of the first light distribution pattern 400 toward the upper edge of the first light distribution pattern 400, and the decrease in visibility in the region 933 can be suppressed. Note that the amount of light in the first light distribution pattern 400 may decrease from the lower edge of the first light distribution pattern 400 toward the upper edge of the first light distribution pattern 400. In the above, control unit 110 may gradually reduce the light amount or may reduce the light amount in stages. When the light amount gradually decreases from the upper edge side to the lower edge side of first light distribution pattern 400, an excessive change in brightness of first light distribution pattern 400 that decreases from the upper edge side to the lower edge side of first light distribution pattern 400 can be suppressed compared to when the light amount does not gradually decrease.
[0142] Furthermore, when temperature derating is performed on the first light source unit 41 while the high beam light distribution pattern 930 is being formed, the control unit 110 may control the power supplied to each of the light-emitting elements 43 so that the amount of light in the first light distribution pattern 400 decreases from the hot zone HZH side toward the peripheral side of the first light distribution pattern 400. The driver's gaze tends to be concentrated on the hot zone HZH side rather than the peripheral side of the first light distribution pattern 400. With the above configuration, the decrease in brightness on the hot zone HZH side, where the driver's gaze is concentrated, can be suppressed compared to when the amount of light decreases from the peripheral side of the first light distribution pattern 400 toward the hot zone HZH.
[0143] Furthermore, the control unit 110 may control the power supplied to each of the light-emitting elements 43 so that the amount of light of at least some of the first light illuminating the upper edge side of the first light distribution pattern 400 decreases later than the amount of light of at least some of the first light illuminating the lower edge side of the first light distribution pattern 400. According to the above configuration, when the area 933 is larger than the area 931, the start of the decrease in brightness of the upper edge side of the light distribution pattern 930, where the driver's gaze is focused, is suppressed compared to when the amount of light on the upper edge side of the first light distribution pattern 400 decreases before the amount of light on the lower edge side. Therefore, the decrease in visibility on the upper edge side is suppressed. The amount of light on the upper edge side of the first light distribution pattern 400 may decrease simultaneously with the amount of light on the lower edge side of the first light distribution pattern 400, or may decrease before the amount of light on the lower edge side of the first light distribution pattern 400.
[0144] Furthermore, the control unit 110 may control the light emitting element 43 so that the amount of light in the region 933 is the same as the amount of light in the region 931 .
[0145] Next, a detailed description will be given of a first modified example of the second lighting fixture 60. Note that the same components as those described above are given the same reference numerals, and redundant description will be omitted unless otherwise specified.
[0146] 14 is a front view schematically illustrating the second light source unit 61 and the shade 67 of this modification. The upper edge of the light-shielding portion 67a extends substantially horizontally, unlike the upper edge of the embodiment. The light-shielding portion 67a of the shade 67 blocks a portion of the second light from the light-emitting element 63.
[0147] 15 is a diagram showing a second light distribution pattern 600 of this modified example. The second light distribution pattern 600 has a rectangular shape that is elongated in the left-right direction and overlaps with a vertical line V. The upper edge of the second light distribution pattern 600 corresponds to the shape of the upper edge of the light-blocking portion 67a in the third lighting fixture 80, is positioned below the horizontal line S, intersects with the vertical line V, and extends horizontally.
[0148] Next, a low beam light distribution pattern 910 of this modified example will be described with reference to Fig. 16. Fig. 16 is a diagram showing a low beam light distribution pattern 910 of this modified example. The relative positions of the light distribution patterns 400 and 600 in the light distribution pattern 910 of this modified example are different from the relative positions of the light distribution patterns 400 and 600 in the light distribution pattern 910 of the embodiment, and will be described below.
[0149] The light distribution pattern 910 has cutoff lines CL21 to CL29 on the upper edge. The cutoff line CL21 extends horizontally from the elbow point EP to the right, which is one side in the left-right direction. The cutoff line CL22 extends diagonally upward from the elbow point EP to the left, which is the other side in the left-right direction. The end of the cutoff line CL22 opposite to the elbow point EP is located above the horizontal line S. The cutoff line CL23 extends horizontally from the end of the cutoff line CL22 opposite to the elbow point EP to the other side in the left-right direction. The cutoff line CL23 is located above the horizontal line S. The cutoff line CL24 extends downward along the vertical line V from the end of the cutoff line CL23 opposite to the cutoff line CL22 side. The end of the cutoff line CL24 opposite to the cutoff line CL23 side is located below the horizontal line S. The cutoff line CL25 extends horizontally to the other side in the left-right direction from the end of the cutoff line CL24 opposite to the cutoff line CL23. The cutoff line CL25 is located at approximately the same height as the cutoff line CL21.
[0150] The cutoff line CL26 extends obliquely upward to one side in the left-right direction from the end of the cutoff line CL21 opposite to the elbow point EP. The end of the cutoff line CL26 opposite to the cutoff line CL21 is located above the horizontal line S and is located at approximately the same height as the cutoff line CL23. The cutoff line CL27 extends horizontally to one side in the left-right direction from the end of the cutoff line CL26 opposite to the cutoff line CL21. The cutoff line CL27 is located above the horizontal line S. The cutoff line CL28 extends downward along the vertical line V from the end of the cutoff line CL27 opposite to the cutoff line CL26 side. The end of the cutoff line CL28 opposite to the cutoff line CL27 side is located below the horizontal line S. The cutoff line CL29 extends horizontally to one side in the left-right direction from the end of the cutoff line CL28 opposite to the cutoff line CL27 side. The cutoff line CL29 is located at approximately the same height as the cutoff line CL21.
[0151] In the light distribution pattern 910 described above, the cutoff lines CL21 to CL23, CL26, and CL27 of the light distribution pattern 910 are the upper edge of the first light distribution pattern 400. The cutoff line CL24 is part of the left edge of the first light distribution pattern 400, and the cutoff line CL28 is part of the right edge of the first light distribution pattern 400. The cutoff line CL25 is the upper edge of the second light distribution pattern 600 extending horizontally to the left of the left edge of the first light distribution pattern 400. The cutoff line CL29 is the upper edge of the second light distribution pattern 600 extending horizontally to the right of the right edge of the first light distribution pattern 400. The controller 110 controls the power supplied to each of the light-emitting elements 43 so that the upper edge of the first light distribution pattern 400 is the cutoff lines CL21 to CL23, CL26, and CL27, part of the left edge is the cutoff line CL24, and part of the right edge is the cutoff line CL28. Therefore, similar to the light distribution pattern 910 of the embodiment, the first light distribution pattern 400 of the light distribution pattern 910 of this modified example is formed by the first light emitted from some of the light-emitting elements 43 rather than from all of the light-emitting elements 43 of the first lamp 40.
[0152] Similarly to the light distribution pattern 910 of the embodiment, the left, right, and bottom edges of the light distribution pattern 910 are the left, right, and bottom edges of the second light distribution pattern 600. Therefore, the second light distribution pattern 600 is longer in the left-right direction than the first light distribution pattern 400. The left edge of the second light distribution pattern 600 is located to the left of the left edge of the first light distribution pattern 400, and the right edge of the second light distribution pattern 600 is located to the right of the right edge of the first light distribution pattern 400. In addition, the top edge of the second light distribution pattern 600 crosses between the top and bottom edges of the first light distribution pattern 400.
[0153] Like the light distribution pattern 910 of the embodiment, the light distribution pattern 910 includes areas 911 and 913. Unlike the embodiment, the area 911 is smaller than the area 913. The area 913 is adjacent to the area 911 and is located above the area 911.
[0154] There are two regions 913. One region 913 is surrounded by cutoff lines CL22 to CL24 and a part of the upper edge of the second light distribution pattern 600 located inside the first light distribution pattern 400 on the left side of the vertical line V. The other region 913 is surrounded by cutoff lines CL26 to CL28 and another part of the upper edge of the second light distribution pattern 600 located inside the first light distribution pattern 400 on the right side of the vertical line V. The respective regions 913 are positioned apart in the left-right direction.
[0155] When performing temperature derating on the first light source unit 41 in a state in which the low beam light distribution pattern 910 is formed, the control unit 110 controls the light emitting elements 43 and 63 in the same manner as the light emitting elements 43 and 63 in the embodiment. Therefore, a description of the control of the light emitting elements 43 and 63 will be omitted.
[0156] Next, a high beam light distribution pattern 930 of this modified example will be described with reference to Fig. 17. Fig. 17 is a diagram showing a high beam light distribution pattern 930 of this modified example. In Fig. 17, the light distribution pattern 910 is shown by a thick line, and the low beam light distribution pattern 910 shown in Fig. 16 is shown by a dashed line.
[0157] The relative positions of the light distribution patterns 400, 600, and 800 in the light distribution pattern 930 of this modification are different from the relative positions of the light distribution patterns 400, 600, and 800 in the light distribution pattern 930 of the embodiment, and will be described below.
[0158] The third light distribution pattern 800 and the second light distribution pattern 600 are lined up without any gaps in the vertical direction. The lower edge of the third light distribution pattern 800 is in contact with the upper edge of the second light distribution pattern 600, and the third light distribution pattern 800 does not overlap the second light distribution pattern 600 but is positioned outside the second light distribution pattern 600 at a height higher than the upper edge of the second light distribution pattern 600.
[0159] The upper edge of the second light distribution pattern 600 crosses between the upper and lower edges of the first light distribution pattern 400 .
[0160] In the light distribution pattern 930 of this modification, the upper edge of the light distribution pattern 930 is a part of the upper edge of the second light distribution pattern 600 that is not in contact with the lower edge of the third light distribution pattern 800. The upper edge of the light distribution pattern 930 is the left edge, upper edge, and right edge of the third light distribution pattern 800, and another part of the upper edge of the second light distribution pattern 600 that is not in contact with the upper edge of the third light distribution pattern 800. The left edge, right edge, and lower edge of the light distribution pattern 930 of this modification are the left edge, right edge, and lower edge of the second light distribution pattern 600, as with the light distribution pattern 930 of the embodiment.
[0161] The light distribution pattern 930 includes regions 931 and 933, similar to the light distribution pattern 930 of the embodiment. Unlike the embodiment, in the region 933, the first light distribution pattern 400 overlaps only with the third light distribution pattern 800. Therefore, in the light distribution pattern 930, the first light and the second light irradiate the region 931, and the first light and the third light irradiate the region 933. In this way, in the light distribution pattern 930 of this modification, no region is formed where the light distribution patterns 400, 600, and 800 overlap.
[0162] A hot zone HZH, which is the region in light distribution pattern 930 where the light intensity is the highest, is located on or near the intersection of a horizontal line S and a vertical line V within region 933. The control unit 110 adjusts the light intensities of the first and third light beams emitted from the light-emitting elements 43, 83a to 83j so that the light intensity in light distribution pattern 930 decreases, for example, with increasing distance from the hot zone HZH.
[0163] When the control unit 110 performs temperature derating on the first light source unit 41 in a state in which the high beam light distribution pattern 930 is formed, the control unit 110 controls the light emitting elements 43, 63, 83a to 83j in the same manner as the light emitting elements 43, 63, 83a to 83j in the embodiment. Therefore, a description of the control of the light emitting elements 43, 63, 83a to 83j will be omitted.
[0164] Next, a detailed description will be given of a second modified example of the second lighting fixture 60. Note that the same components as those described above are given the same reference numerals, and redundant description will be omitted unless otherwise specified.
[0165] FIG. 18 is a front view schematically illustrating the second light source unit 61 and the shade 67 of this modified example. Unlike the upper edge of the first modified example, the upper edge of the light-shielding portion 67a includes a first edge 67e, a second edge 67f, and a third edge 67g. The first edge 67e extends generally horizontally. The second edge 67f extends linearly downward from one end of the first edge 67e toward the opposite side of the first edge 67e. The third edge 67g extends generally horizontally from the end of the second edge 67f opposite the first edge 67e toward the opposite side of the first edge 67e. The light-shielding portion 67a of the shade 67 thus configured blocks a portion of the second light from the light-emitting element 63.
[0166] 19 is a diagram showing a second light distribution pattern 600 of this modified example. The second light distribution pattern 600 overlaps the vertical line V. The upper edge of the second light distribution pattern 600 corresponds to the shape of the upper edge of the light-blocking portion 67a in the third lighting fixture 80 and includes a first edge 601, a second edge 602, and a third edge 603. The first edge 601 is located below the horizontal line S and extends horizontally from the vertical line V to the right, which is one side in the horizontal direction, and to the left, which is the other side in the horizontal direction. A portion of the first edge 601 extending from the vertical line V to one side in the horizontal direction is longer than another portion of the first edge 601 extending from the vertical line V to the other side in the horizontal direction.
[0167] Next, a low beam light distribution pattern 910 of this modified example will be described with reference to Fig. 20. Fig. 20 is a diagram showing the low beam light distribution pattern 910 of this modified example. In Fig. 20, S indicates the horizontal line, V indicates the vertical line passing through the center of the vehicle 10 in the left-right direction, and the light distribution pattern 910 formed on a virtual vertical screen placed 25 m ahead of the vehicle 10 is indicated by a thick line.
[0168] The light distribution pattern 910 has cutoff lines CL31 to CL33 on the upper edge. The cutoff line CL31 extends horizontally from the elbow point EP to the right, which is one side in the left-right direction. The cutoff line CL32 extends diagonally upward from the elbow point EP to the left, which is the other side in the left-right direction. The end of the cutoff line CL32 opposite to the elbow point EP is located above the horizontal line S. The cutoff line CL33 extends horizontally from the end of the cutoff line CL32 opposite to the elbow point EP to the other side in the left-right direction. The cutoff line CL33 is located above the horizontal line S.
[0169] In the light distribution pattern 910 described above, the cutoff line CL31 of the light distribution pattern 910 is a part of the upper edge of the first light distribution pattern 400 and a part of a first edge 601 of the second light distribution pattern 600 extending to the right of the right edge of the first light distribution pattern 400 in the horizontal direction. The cutoff line CL32 is another part of the upper edge of the first light distribution pattern 400. The cutoff line CL33 is the remaining part of the upper edge of the first light distribution pattern 400 and a third edge 603 of the second light distribution pattern 600 extending to the left of the left edge of the first light distribution pattern 400 in the horizontal direction. The controller 110 controls the supply of power to the light-emitting element 43 so that the upper edge of the first light distribution pattern 400 becomes a part of the cutoff line CL31, the cutoff lines CL32, and the cutoff lines CL33. Therefore, similar to the light distribution pattern 910 of the first modified example, the first light distribution pattern 400 of the light distribution pattern 910 of this modified example is formed by the first light emitted from some of the light-emitting elements 43 rather than from all of the light-emitting elements 43 of the first lamp 40.
[0170] Similarly to the light distribution pattern 910 of the first modified example, the left edge, right edge, and bottom edge of the light distribution pattern 910 of this modified example are the left edge, right edge, and bottom edge of the second light distribution pattern 600. Similarly to the light distribution pattern 910 of the first modified example, the bottom edge of the first light distribution pattern 400 is located between the top and bottom edges of the second light distribution pattern 600 in the up-down direction.
[0171] Like the light distribution pattern 910 of the first modified example, the light distribution pattern 910 includes areas 911 and 913. The area 911 is larger than the area 913, as in the embodiment.
[0172] The region 913 is surrounded by the cutoff line CL32, part of the cutoff line CL33, part of the first edge 601, and the second edge 602 on the left side of the vertical line V.
[0173] When performing temperature derating on the first light source unit 41 in a state in which the low beam light distribution pattern 910 is formed, the control unit 110 controls the light emitting elements 43 and 63 in the same manner as the light emitting elements 43 and 63 in the embodiment. Therefore, a description of the control of the light emitting elements 43 and 63 will be omitted.
[0174] Next, a high beam light distribution pattern 930 of this modified example will be described with reference to Fig. 21. Fig. 21 is a diagram showing a high beam light distribution pattern 930 of this modified example. In Fig. 21, the light distribution pattern 910 is indicated by a thick line, and the low beam light distribution pattern 910 shown in Fig. 20 is indicated by a dashed line.
[0175] The relative positions of the light distribution patterns 400, 600, and 800 in the light distribution pattern 930 of this modified example are different from the relative positions of the light distribution patterns 400, 600, and 800 in the light distribution pattern 930 of the first modified example, as will be described below.
[0176] The second light distribution pattern 600 is longer in the left-right direction than the third light distribution pattern 800. The left edge of the second light distribution pattern 600 is located to the left of the left edge of the third light distribution pattern 800, and the right edge of the second light distribution pattern 600 is located to the right of the right edge of the third light distribution pattern 800. The lower edge of the second light distribution pattern 600 is located below the lower edge of the third light distribution pattern 800. Of the upper edges of the second light distribution pattern 600, a first edge 601 partially overlaps with a lower edge of the third light distribution pattern 800, and another portion of the first edge 601 is located outside the third light distribution pattern 800. Furthermore, of the upper edges of the second light distribution pattern 600, a second edge 602 and a third edge 603 are located above the lower edge of the third light distribution pattern 800. The second edge 602 and a part of the third edge 603 are located inside the third light distribution pattern 800, and another part of the third edge 603 is located outside the third light distribution pattern 800. Therefore, a part of the second light distribution pattern 600 overlaps a part of the third light distribution pattern 800, and another part of the second light distribution pattern 600 does not overlap the third light distribution pattern 800 and is located outside the third light distribution pattern 800.
[0177] Of the upper edge of the second light distribution pattern 600, a part of the first edge 601 and the second edge 602 are located inside the first light distribution pattern 400. Also, of the upper edge of the second light distribution pattern 600, a third edge 603 and another part of the first edge 601 are located outside the first light distribution pattern 400.
[0178] In the light distribution pattern 930 of this modification, the upper edge of the light distribution pattern 930 is part of the third edge 603, which is part of the upper edge of the second light distribution pattern 600 and is located outside the third light distribution pattern 800. The upper edge of the light distribution pattern 930 is part of the left edge of the third light distribution pattern 800, which is located outside the second light distribution pattern 600, and the upper and right edges of the third light distribution pattern 800. The upper edge of the light distribution pattern 930 is part of the first edge 601, which is part of the upper edge of the second light distribution pattern 600 and is located outside the third light distribution pattern 800. The left, right, and lower edges of the light distribution pattern 930 are the left, right, and lower edges of the second light distribution pattern 600, as with the light distribution pattern 930 of the first modification.
[0179] Like the light distribution pattern 930 of the first modified example, the light distribution pattern 930 includes areas 931 and 933. The configuration of the areas 931 and 933 is the same as the configuration of the areas 931 and 933 of the first modified example.
[0180] When the control unit 110 performs temperature derating on the first light source unit 41 in a state in which the high beam light distribution pattern 930 is formed, the control unit 110 controls the light emitting elements 43, 63, 83a to 83j in the same manner as the light emitting elements 43, 63, 83a to 83j in the embodiment. Therefore, a description of the control of the light emitting elements 43, 63, 83a to 83j will be omitted.
[0181] The first aspect of the present invention has been described above using the first embodiment and the modified examples as examples, but the present aspect is not limited to these.
[0182] The configuration of the first lighting fixture 40 is not particularly limited to the above. The configuration of the first lighting fixture 40 may be, for example, a configuration in which light emitted from a light source is scanned using a MEMS (Micro Electro Mechanical Systems), a galvanometer mirror, or the like, and the light is emitted forward. The configuration of the first lighting fixture 40 may be a configuration in which light emitted from a light source is diffracted using an LCOS (Liquid Crystal On Silicon), a diffraction grating, or the like, and a desired light distribution pattern is formed and emitted forward.
[0183] The configurations of the second lighting fixture 60 and the third lighting fixture 80 are not particularly limited and may be the same as the configurations of other lighting fixtures. Therefore, the second light source unit 61 may be a micro LED array like the first light source unit 41, or may be an LED array like the third light source unit 81. Furthermore, the third light source unit 81 may be a micro LED array like the first light source unit 41. The first lighting fixture 40 and the third lighting fixture 80 may be, for example, a parabolic type or a direct lens type lighting fixture.
[0184] One of the area 911 and the area 913 may be the same size as the other, or may be smaller than the other.
[0185] The light distribution pattern 930 may include only the area 933 .
[0186] In the light distribution pattern 930, the first edge 601 of the second light distribution pattern 600 may be in contact with a portion of the lower edge of the third light distribution pattern 800, or may cross the first light distribution pattern 400 and be located above or below a portion of the lower edge of the third light distribution pattern 800.
[0187] In the light distribution pattern 930, the lower edge of the first light distribution pattern 400 may be in contact with a portion of the lower edge of the third light distribution pattern 800, may overlap the lower edge of the third light distribution pattern 800, or may be positioned higher than the lower edge of the third light distribution pattern 800.
[0188] In the light distribution pattern 930, the upper edge of the first light distribution pattern 400 may be in contact with the upper edge of the third light distribution pattern 800, may overlap with the upper edge of the third light distribution pattern 800, or may be positioned higher than the upper edge of the third light distribution pattern 800.
[0189] In the light distribution pattern 930 of the first modified example, the lower edge of the third light distribution pattern 800 may overlap the lower edge of the second light distribution pattern 600, or may be located lower than the lower edge of the second light distribution pattern 600. In the light distribution pattern 930 of the embodiment and the second modified example, a part of the lower edge of the third light distribution pattern 800 may contact the first edge 601 of the second light distribution pattern 600, or the lower edge of the third light distribution pattern 800 may be located above or below the first edge 601.
[0190] Furthermore, in the light distribution pattern 930, a gap may be formed in the vertical direction between the third light distribution pattern 800 and the second light distribution pattern 600. In this case, the first light distribution pattern 400 may be formed so as to overlap the gap, the third light distribution pattern 800, and the second light distribution pattern 600.
[0191] (Second embodiment) A second embodiment of the present invention will be described below. Components that are the same as or equivalent to those in the first embodiment will be given the same reference numerals and will not be described again unless otherwise specified.
[0192] In the first embodiment, three lamps 40, 60, and 80 are provided in each of the pair of lamp units 30, but in this embodiment, only the first lamp 40 is provided, and the configuration of the first light source section 41 of the first lamp 40 differs from that in the first embodiment. The first lamp 40 of this embodiment emits a low beam or a high beam ahead of the vehicle 10.
[0193] Fig. 22 is a front view schematically showing the first light source unit 41 and the temperature sensor 47 of this embodiment. In Fig. 22, the light-emitting elements 43 in the first light source unit 41 are shown as light-emitting elements 43a to 43l. The light-emitting elements 43a to 43l have the same configuration as the light-emitting elements 83a to 83j of the third lamp 80 of the first embodiment, and are arranged in an array in a line in the left-right direction, which is a so-called LED array. The light-emitting element 43a to 43l each emits white light, for example, and has an emission surface that is generally rectangular and elongated in the vertical direction.
[0194] The control unit 110 supplies or stops the supply of power to each of the light-emitting elements 43a to 43l via the power supply unit and the circuit board 45. This selects which of the light-emitting elements 43a to 43l emits light, and the size and shape of the light distribution pattern formed by the light emitted from the first light source unit 41 change according to the selection. The control unit 110 also adjusts the power supplied to each of the light-emitting elements 43a to 43l. For example, the control unit 110 may adjust the power using PWM (Pulse Width Modulation) control. In this case, the control unit 110 adjusts the power supplied to each of the light-emitting elements 43a to 43l by adjusting the duty ratio of each of the light-emitting elements 43a to 43l, and adjusts the light emission intensity of each of the light-emitting elements 43a to 43l by adjusting the power. The larger the duty ratio, the greater the power applied to the light-emitting element 43. The adjustment of the light emission intensity adjusts the light intensity distribution in the light distribution pattern formed by the light emitted from the first light source unit 41. The control unit 110 may adjust the amount of light emitted by each of the light emitting elements 43a to 43l by adjusting the current supplied to each of the light emitting elements 43b to 43l.
[0195] Next, the duty ratios 43aD to 43lD of the light-emitting elements 43a to 43l when the vehicle headlamp 20 emits a high beam when the steering angle is equal to or less than a reference angle will be described. The reference angle is set to 5°, for example, and in this case, the vehicle 10 is traveling straight. Fig. 23 is a diagram showing an example of the duty ratios 43aD to 43lD when the vehicle 10 is traveling straight, and in Fig. 23, the values of the duty ratios 43aD to 43lD are represented by the heights of the rectangles shown in Fig. 23. The duty ratios 43aD to 43lD shown in Fig. 23 are duty ratios when temperature derating is not performed.
[0196] In this embodiment, the control unit 110 sets the duty ratios 43aD to 43fD of the light-emitting elements 43a to 43f to 20%, 30%, 40%, 60%, 80%, and 100%, respectively. Similarly, the control unit 110 sets the duty ratios 43lD to 43gD of the light-emitting elements 43l to 43g to 20%, 30%, 40%, 60%, 80%, and 100%, respectively. The values of the duty ratios 43aD to 43lD are recorded in the recording unit 130, and the control unit 110 reads these values from the recording unit 130 and controls the duty ratios 43aD to 43lD as described above. The above values of the duty ratios are not particularly limited.
[0197] When the control unit 110 controls the duty ratios 43aD to 43lD as described above, the light-emitting elements 43f and 43g, which are located toward the center in the horizontal direction, emit the most light. The light-emitting elements 43f to 43a emit the most light, and the light-emitting elements 43g to 43l emit the least light. Since the light-emitting elements 43a to 43l emit the same amount of light if they have the same duty ratio, the light-emitting elements emit the same amount of light, so the light-emitting elements on the left and right are symmetrical with respect to the light-emitting elements 43f and 43g. As a result, the hot zone, which is the region with the highest light intensity in the high-beam light distribution pattern, is located approximately in the center of the high-beam light distribution pattern in the horizontal direction.
[0198] Each of the light-emitting elements 43a to 43l generates heat when emitting light at the above duty ratio. The temperature of the first light source unit 41 caused by the heat generated by each of the light-emitting elements 43a to 43l is estimated by the temperature sensor 47 as described above, and the temperature sensor 47 outputs a temperature signal to the control unit 110. The control unit 110 performs temperature derating on each of the light-emitting elements 43a to 43l based on the temperature signal.
[0199] Next, the temperature derating of the first light source unit 41 according to this embodiment will be described. FIG. 24 is a diagram showing the relationship between the temperature T (°C) of the first light source unit 41 estimated by the temperature sensor 47 and the duty ratio D (%) of the light-emitting element 43. The horizontal axis of FIG. 24 represents the temperature T, and the vertical axis represents the duty ratio D. In FIG. 24, temperatures T0, T1, and T2 are, for example, 80°C, 110°C, and 120°C. The temperature T0 is the temperature at which the control unit 110 starts temperature derating. If the temperature T is lower than the temperature T0, temperature derating is not performed. If the temperature T is equal to or higher than the temperature T0, temperature derating is performed. The duty ratio D0 corresponding to a temperature lower than the temperature T0 is set to 100%, and the duty ratios D1 and D2 corresponding to the temperatures T1 and T2 are set to, for example, 50% and 30%. At the duty ratio D2, the amount of reduction in the duty ratio when temperature derating is performed is maximized. The relationship between the temperature T and the duty ratio D, the values of the temperatures T0, T1, and T2, and the values of the duty ratios D1 and D2 are recorded in the recording unit 130. Note that these values are not particularly limited.
[0200] When performing temperature derating on the first light source unit 41, the control unit 110 sets a reference duty ratio D according to temperatures equal to or higher than temperature T0. For example, when temperature T is temperature T1, the control unit 110 sets the reference duty ratio D to duty ratio D1. When temperature T is temperature T2 or higher, the control unit 110 sets the reference duty ratio D to duty ratio D2 to avoid extinguishing the light. In the temperature derating of this embodiment, when temperature T is temperature T0 or higher, the control unit 110 reduces at least some of the duty ratios 43aD to 43lD that are higher than the reference duty ratio D corresponding to that temperature T. When the duty ratios are reduced, the light emission and heat generation of the light-emitting elements 43 decrease, and the temperature of the first light source unit 41 drops. While the control unit 110 performs temperature derating as described above based on the duty ratio, temperature derating may also be performed based on the current flowing through each of the light-emitting elements 43b to 43l. Therefore, the control unit 110 may perform temperature derating based on the power supplied to each of the light emitting elements 43b to 43l.
[0201] Next, the operation of the vehicle headlamp 20 of this embodiment will be described.
[0202] FIG. 25 is a diagram showing an example of a control flowchart of the control unit 110 in this embodiment. As shown in FIG. 25, the control flow of this embodiment includes steps SP31 to SP33. However, the control flow is not limited to this. In the starting state shown in FIG. 25, it is assumed that the vehicle VE is traveling straight and a high beam light distribution pattern is formed. The duty ratios 43aD to 43lD of the light-emitting elements 43a to 43l are as shown in FIG. 23. Also, in the starting state, it is assumed that the temperature sensor 47 estimates the temperature of the first light source unit 41 and the temperature signal is input to the control unit 110.
[0203] (Step SP31) In this step, the control unit 110 repeats step SP31 if the temperature T indicated by the temperature signal from the temperature sensor 47 is lower than the temperature T0. On the other hand, if the temperature T is equal to or higher than the temperature T0, the control unit 110 advances the control flow to step SP32.
[0204] If the temperature T is equal to or higher than the temperature T0, the control unit 110 performs temperature derating on the first light source unit 41. When performing temperature derating on the first light source unit 41, the control unit 110 controls the duty ratio of the light-emitting element 43 based on the duty ratio corresponding to the temperature T. Such control of the duty ratio will be described in steps SP32 and SP33, assuming that the temperature T in step SP31 is, for example, temperature T1, and the duty ratio D1 corresponding to the temperature T1 is used as an example of the duty ratio that serves as the reference for temperature derating.
[0205] (Step SP32) In this step, the control unit 110 increases the duty ratios of at least some of the light-emitting elements 43 that are driven at duty ratios equal to or less than duty ratio D1 before temperature derating. FIG. 26 shows an example of duty ratios 43aD to 43lD in this step. In FIG. 26, the portions of the duty ratios 43aD to 43lD shown in FIG. 23 before the increase are indicated by dashed lines for comparison with the duty ratios 43aD to 43lD shown in FIG. 23. Because duty ratio D1 is 50%, the duty ratios equal to or less than duty ratio D1 are the duty ratios 43aD to 43cD and 43jD to 43lD of the light-emitting elements 43a to 43c and 43j to 43l. Therefore, the control unit 110 increases the duty ratios 43aD to 43cD and 43jD to 43lD from the state shown in FIG. 23, for example. In this step, the control unit 110 increases the duty ratios 43aD and 43lD to a duty ratio that is greater than the duty ratios 43aD and 43lD shown in FIG. 23 and less than the duty ratio D1. The control unit 110 also increases the duty ratios 43bD and 43kD to the duty ratio D1, and increases the duty ratios 43cD and 43jD to a value greater than the duty ratio D1. In this case, the control unit 110 sets the duty ratios 43aD and 43lD to 30%, the duty ratios 43bD and 43kD to 50%, and the duty ratios 43cD and 43jD to 55%, for example. When the duty ratios 43aD to 43cD and 43jD to 43lD increase, the amount of light emitted by the first light source unit 41 increases, and the light distribution pattern becomes brighter.
[0206] Note that the control unit 110 may increase at least one of the duty ratios 43aD to 43cD, 43jD to 43lD in the manner described above, and the manner in which the duty ratios 43aD to 43cD, 43jD to 43lD are increased is not limited to the manner described above. For example, the control unit 110 may increase duty ratios that are equal to or less than the duty ratio D1 and have a large difference from the duty ratio D1, preferentially as described above, over other duty ratios. Alternatively, the control unit 110 may increase duty ratios that have a small difference from the duty ratio D1 preferentially as described above, over other duty ratios. Alternatively, the control unit 110 may increase duty ratios that have a large difference by a larger or smaller amount than duty ratios that have a small difference from the duty ratio D1. Alternatively, the control unit 110 may increase multiple duty ratios that are equal to or less than the duty ratio D1 by the same amount. Furthermore, the control unit 110 does not have to increase any of the duty ratios 43aD to 43cD, 43jD to 43lD.
[0207] When the light-emitting element 43 is driven at a duty ratio D1, the power supplied to the light-emitting element 43 is defined as a first power. In this case, a second power higher than the first power is supplied to the light-emitting element 43 driven at a duty ratio higher than the duty ratio D1, and a third power equal to or lower than the first power is supplied to the light-emitting element 43 driven at a duty ratio equal to or lower than the duty ratio D1. In step SP32, the control unit 110 increases the power supplied to at least some of the light-emitting elements 43a-43c, 43j-43l driven at the third power equal to or lower than the first power.
[0208] Furthermore, in step SP32, when performing temperature derating on the first light source unit 41, the control unit 110 increases the power supplied to at least some of the light-emitting elements 43a-43c, 43j-43l to the first power or above the first power. When the power is increased to the first power, the target light-emitting elements in FIG. 26 are light-emitting elements 43b and 43k, and the light distribution pattern becomes brighter than when the power is not increased to the first power, thereby reducing the deterioration of forward visibility. When the power is increased above the first power, the target light-emitting elements in FIG. 26 are light-emitting elements 43c and 43j, and the light distribution pattern becomes even brighter than when the power is not increased to the first power, thereby reducing the deterioration of forward visibility.
[0209] In step SP32, the control unit 110 may increase the power supplied to at least some of the light-emitting elements 43a-43c, 43j-43l driven at the third power above the first power for a certain period of time, and then reduce the power supplied to the light-emitting elements to the first power or lower. The certain period of time may be, for example, five minutes. In FIG. 26, the light-emitting elements 43c and 43j are the light-emitting elements affected in this case. If the power remains higher than the first power, the temperature of the first light source unit 41 will increase. With the above configuration, after the certain period of time has elapsed, the power is reduced to the first power or lower, thereby reducing the temperature of the first light source unit 41 and suppressing the temperature increase of the first light source unit 41. In addition, the control unit 110 does not have to reduce the power to the first power or lower after the certain period of time has elapsed.
[0210] Furthermore, a fourth power is supplied to the light-emitting elements 43 that are driven at a duty ratio smaller than duty ratio D1 when the third power is supplied. The fourth power is smaller than the first power and larger than the third power. When performing temperature derating on the first light source unit 41, the control unit 110 may increase the power supplied to at least some of the light-emitting elements 43a-43c and 43j-43l in step SP32 to a fourth power that is larger than the third power and smaller than the first power. In FIG. 26, the light-emitting elements that are the target in this case are the light-emitting elements 43a and 43l.
[0211] After increasing the duty ratios 43aD to 43cD and 43jD to 43lD, the control section 110 advances the control flow to step SP33.
[0212] (Step SP33) In this step, the control unit 110 performs temperature derating on the first light source unit 41. The control unit 110 performs temperature derating, for example, one second after the end of duty ratio control in step SP32. However, the control unit 110 may perform temperature derating immediately after the end of control; the timing of temperature derating is not particularly limited. In temperature derating, the control unit 70 reduces the duty ratios of at least some of the light-emitting elements 43 driven at duty ratios greater than duty ratio D1 to duty ratio D1 or less. FIG. 27 shows an example of duty ratios 43aD to 43lD in this step. In FIG. 27, the dotted lines indicate the duty ratios 43aD to 43lD shown in FIG. 26 before the reduction, for comparison with the duty ratios 43aD to 43lD shown in FIG. 26. Because duty ratio D1 is 50%, the duty ratios greater than duty ratio D1 are duty ratios 43cD to 43jD of the light-emitting elements 43c to 43j. Therefore, in this step, the control unit 110 reduces the duty ratios 43dD to 43iD of the light-emitting elements 43d to 43i to the duty ratio D1, for example, to 50%. When the duty ratios 43dD to 43iD are reduced, the amount of light emitted and the amount of heat generated by the first light source unit 41 decrease, and the temperature of the first light source unit 41 drops.
[0213] In this step, duty ratios greater than duty ratio D1 are set to duty ratios 43cD to 43jD greater than duty ratio D1 at the time shown in Fig. 26, but this is not limited to the above. For example, duty ratios greater than duty ratio D1 may be set to duty ratios 43dD to 43iD greater than duty ratio D1 at the start of the control flow. In this case, control unit 110 maintains duty ratios 43cD and 43jD shown in Fig. 27.
[0214] The control unit 110 may reduce at least one of the duty ratios 43dD to 43iD as described above, and the manner in which the duty ratios 43dD to 43iD are reduced is not limited to the above. For example, the control unit 110 may reduce duty ratios greater than duty ratio D1 that have a large difference from duty ratio D1 preferentially over other duty ratios as described above. Alternatively, the control unit 110 may reduce duty ratios with a small difference preferentially over other duty ratios as described above. Alternatively, the control unit 110 may reduce duty ratios with a large difference by a larger or smaller amount than duty ratios with a small difference. Alternatively, the control unit 110 may reduce multiple duty ratios greater than duty ratio D1 by the same amount. Furthermore, the control unit 110 may reduce the duty ratios of at least some of the light-emitting elements 43f and 43g driven at a duty ratio greater than duty ratio D1 to duty ratio D1 or less.
[0215] As described above, the light-emitting elements 43 driven at a duty ratio greater than the duty ratio D1 are supplied with a second power greater than the first power. In step SP33, the control unit 110 reduces the power supplied to at least some of the light-emitting elements 43d-43i driven at the second power greater than the first power from the second power to the first power or less.
[0216] Note that the control unit 110 may increase the amount of power supplied to at least some of the light-emitting elements 43a-43c and 43j-43l driven at the third power in step SP32 in advance, the greater the decrease in the power supplied to at least some of the light-emitting elements 43d-43i driven at the second power in step SP33. According to the above configuration, the light distribution pattern can be brighter as the decrease in the power increases compared to when the increase in the power is small. Note that the control unit 110 may not increase the amount of power supplied to at least some of the light-emitting elements 43a-43c and 43j-43l in advance, the greater the decrease in the power supplied to at least some of the light-emitting elements 43d-43i.
[0217] After reducing the duty ratios 43dD to 43iD, the control unit 110 ends the control flow.
[0218] As described above, when performing temperature derating on the first light source unit 41, the control unit 110 reduces the power supplied to at least some of the light-emitting elements 43d to 43i from the second power to the first power or less in step SP33. Furthermore, when performing temperature derating on the first light source unit 41, the control unit 110 increases the power supplied to at least some of the light-emitting elements 43a to 43c and 43j to 43l that are driven at the third power that is the first power or less in step SP32.
[0219] According to the above configuration, when the control unit 110 performs temperature derating on the first light source unit 41, the power of at least some of the light-emitting elements 43d to 43i driven at the second power is reduced from the second power to the first power or lower. Therefore, although the first light source unit 41 is protected from heat from the light-emitting elements 43, the light distribution pattern formed by the light emitted from the first light source unit 41 tends to become darker. Therefore, with the above configuration, when the control unit 110 performs temperature derating on the first light source unit 41, the control unit 110 increases the power supplied to at least some of the light-emitting elements 43a to 43c and 43j to 43l driven at the third power. Increasing the power can brighten the light distribution pattern. Therefore, a decrease in forward visibility can be suppressed.
[0220] Furthermore, when performing temperature derating on the first light source unit 41, the control unit 110 increases the power supplied to at least some of the light-emitting elements 43a to 43c, 43j to 43l in step SP32 before reducing the power supplied to at least some of the light-emitting elements 43d to 43i driven at the second power from the second power to the first power or less in step SP33.
[0221] According to the above configuration, the light distribution pattern becomes brighter as the power increases from the third power before it becomes darker as the power decreases from the second power to the first power or lower. Therefore, compared to when the light distribution pattern becomes dark and then brightens, it is possible to prevent the light distribution pattern from becoming darker than before the temperature derating is applied to the first light source unit 41, and it is possible to prevent a decrease in visibility.
[0222] The control unit 110 may perform steps SP32 and SP33 simultaneously. Accordingly, the control unit 110 may reduce the power supplied to at least some of the light-emitting elements 43d-43i driven at the second power from the second power to the first power or lower, and simultaneously increase the power supplied to at least some of the light-emitting elements 43a-43c and 43j-43l. Alternatively, the control unit 110 may proceed through the control flow in the order of steps SP33 and SP32. Accordingly, the control unit may reduce the power supplied to at least some of the light-emitting elements 43d-43i driven at the second power from the second power to the first power or lower, and then increase the power supplied to at least some of the light-emitting elements 43a-43c and 43j-43l. In this case, the control unit 110 may increase the power supplied to at least some of the light-emitting elements 43a-43c and 43j-43l, for example, one second after reducing the power to the first power or lower, or simultaneously with reducing the power to the first power or lower.
[0223] (First Modification) Next, a first modified example of this embodiment will be described. In the above embodiment, the control of the duty ratios 43aD to 43lD of the light-emitting elements 43a to 43l when the vehicle 10 is traveling straight is described. In contrast, this modified example will describe the control of the duty ratios 43aD to 43lD when the vehicle 10 is turning. In this modified example, the steering angle exceeds the reference angle and changes to a steering angle to the left, causing the vehicle 10 to turn left. Fig. 28 is a diagram showing an example of the duty ratios 43aD to 43lD when the vehicle 10 is turning left.
[0224] In the vehicle headlamp 20 of this modified example, when the steering angle indicated by the signal input from the steering sensor to the control unit 110 is a left steering angle, the control unit 110 sets the duty ratios 43bD and 43cD of the light-emitting elements 43b and 43c to 100%. The control unit 110 also sets the duty ratios 43aD and 43dD of the light-emitting elements 43a and 43d to 80%, the duty ratio 43eD of the light-emitting element 43e to 70%, and the duty ratio 43fD of the light-emitting element 43f to 60%. The control unit 110 also sets the duty ratio 43gD of the light-emitting element 43g to 50%, and the duty ratios 43hD and 43iD of the light-emitting elements 43h and 43i to 30%. Furthermore, the control unit 110 sets the duty ratios 43jD, 43kD of the light-emitting elements 43j, 43k to 20%, and the duty ratio 43lD of the light-emitting element 43l to 10%. In this modification, the values of the duty ratios 43aD to 43lD are also recorded in the recording unit 130, and the control unit 110 reads out the values from the recording unit 130 and controls the duty ratios 43aD to 43lD as described above. Note that the above values of the duty ratios are not particularly limited.
[0225] When control unit 110 controls duty ratios 43aD to 43lD as described above, the hot zone in the high beam light distribution pattern when vehicle 10 turns left shifts to the left compared to when vehicle 10 travels straight. Also, the light intensity distribution in the high beam light distribution pattern when vehicle 10 turns left changes compared to when vehicle 10 travels straight, so that the left area of the high beam light distribution pattern is brighter than the right area.
[0226] Incidentally, even when the vehicle 10 is turning left, the operation of the vehicle headlamp 20 is the same as in the above embodiment, and the control flow includes steps SP31 to SP33, and temperature derating is performed on the first light source unit 41.
[0227] FIG. 29 shows an example of the duty ratios 43aD to 43lD in step SP32. To compare the duty ratios 43aD to 43lD in FIG. 28 and FIG. 29, the portions of the duty ratios shown in FIG. 28 before they are increased are indicated by dashed lines in FIG. 29. In this modification, as in the above embodiment, the temperature T input to the control unit 110 from the temperature sensor 47 is temperature T1, and the duty ratio D1 corresponding to this temperature T1 is used as an example of a duty ratio used as a reference for temperature derating. In this step, the control unit 110 increases the duty ratios 43hD to 43lD of the light-emitting elements 43h to 43l from the state shown in FIG. 28. For example, the control unit 110 increases the duty ratios 43hD and 43iD above duty ratio D1 and increases the duty ratios 43jD and 43kD to duty ratio D1. 28. In this case, the control unit 110 sets the duty ratios 43lD and 43iD to 55%, the duty ratios 43jD and 43kD to 50%, and the duty ratio 43lD to 30%, for example. When the duty ratios 43hD to 43lD increase, the amount of light emitted by the first light source unit 41 increases, and the light distribution pattern becomes brighter.
[0228] After increasing the duty ratios 43hD to 43lD, the control section 110 advances the control flow to step SP33.
[0229] In step SP33, the control unit 110 performs temperature derating on the first light source unit 41. In the temperature derating, the control unit 110 reduces the duty ratios of at least some of the light-emitting elements 43 driven at a duty ratio greater than D1 to duty ratio D1 or less. FIG. 30 is a diagram showing an example of the duty ratios 43aD to 43lD in this step. In FIG. 30, the dotted lines indicate the duty ratios 43aD to 43lD shown in FIG. 29 before the reduction, for comparison with the duty ratios 43aD to 43lD shown in FIG. 29. In this step, for example, the control unit 110 reduces the duty ratios 43aD to 43fD of the light-emitting elements 43a to 43f to duty ratio D1, which is set to 50%. When the duty ratios 43aD to 43fD are reduced, the amount of light emitted and the amount of heat generated by the first light source unit 41 decrease, and the temperature of the first light source unit 41 drops.
[0230] In this modification, the control unit 110 ends the control flow after lowering the duty ratios 43aD to 43fD. Note that, in this modification, the control unit 110 controls the light-emitting elements 43 as described above using the duty ratios, but the light-emitting elements 43 can also be controlled as described above using the power supplied to the light-emitting elements 43 driven at the duty ratios as in the embodiment.
[0231] (Second Modification) Next, a second modified example of this embodiment will be described. This modified example will explain the duty ratios 43aD to 43lD of the light emitting elements 43a to 43l when the vehicle 10 switches from a straight-ahead state to a left turn and the light intensity distribution in the light distribution pattern is changed. In this modified example, as in the above embodiment, the duty ratio D1 will be used as an example of the duty ratio that serves as a reference for temperature derating.
[0232] In this modification, the steering angle exceeds the reference angle and changes to a leftward steering angle, and the steering sensor outputs a signal related to the steering angle to the control unit 110. FIG. 31 is a diagram showing an example of the duty ratios 43aD to 43lD of the light-emitting elements 43a to 43l after temperature derating when the vehicle 10 switches from a straight-ahead state to a leftward turn, changing the light intensity distribution in the light distribution pattern. In FIG. 31, for comparison with the duty ratios 43aD to 43lD shown in FIG. 28, the portions of the duty ratios 43aD to 43lD shown in FIG. 28 before the reduction are indicated by dotted lines. The control unit 110 reduces the duty ratios 43aD to 43fD of the light-emitting elements 43a to 43f that are greater than the duty ratio D1 among the light-emitting elements 43a to 43l. For example, the control unit 110 reduces the duty ratios 43aD to 43fD to the duty ratio D1 and sets the duty ratios 43aD to 43fD to 50%. The control unit 110 may reduce the duty ratios of at least some of the light-emitting elements 43a to 43f driven at a duty ratio greater than D1 to a duty ratio equal to or less than D1. The control unit 110 also maintains the duty ratios 43gD to 43lD of the light-emitting elements 43g to 43l driven at a duty ratio equal to or less than D1 in the state shown in FIG.
[0233] Furthermore, in this modification, the control unit 110 increases the duty ratios 43aD to 43cD shown in FIG. 31 compared to the duty ratios 43aD to 43cD of the light-emitting elements 43a to 43c shown in FIG. 23. In FIG. 31, for comparison with the duty ratios 43aD to 43cD shown in FIG. 23, the portions of the duty ratios 43aD to 43cD shown in FIG. 23 before they are increased are indicated by dashed lines. Therefore, when the control unit 110 performs temperature derating on the first light source unit 41 after changing the light intensity distribution in the light distribution pattern, the control unit 110 increases the duty ratios 43aD to 43cD that are equal to or less than duty ratio D1 before changing the light intensity distribution. In this case, for example, the control unit 110 increases the duty ratios 43aD to 43cD to duty ratio D1 and sets the duty ratios 43aD to 43cD to 50%. The control unit 110 may increase the duty ratio of at least some of the light emitting elements 43a to 43c as described above.
[0234] In this modification, the control unit 110 controls the light-emitting elements 43 as described above using the duty ratio. However, the light-emitting elements 43 can also be controlled as described above using the power supplied to the light-emitting elements 43 driven by the duty ratio. Therefore, the control of the light-emitting elements 43 using power will be described below. In this modification, when the control unit 110 performs temperature derating after changing the light intensity distribution as shown in FIG. 31 , the control unit 110 reduces the power supplied to at least some of the light-emitting elements 43a-43f driven at the second power higher than the first power to the first power or less. Furthermore, in this modification, when the control unit 110 performs temperature derating after changing the light intensity distribution as shown in FIG. 31 , the control unit 110 increases the power supplied to at least some of the light-emitting elements 43a-43c driven at the third power lower than the first power as shown in FIG. 23 before changing the light intensity distribution. In this modification, the control unit 110 increases the power to the first power as described above.
[0235] As described above, when the control unit 110 performs temperature derating on the first light source unit 41 after changing the light intensity distribution, the control unit 110 reduces the power supplied to at least some of the light emitting elements 43a to 43f driven at the second power to the first power or less. Furthermore, when the control unit 110 performs temperature derating on the first light source unit 41 after changing the light intensity distribution, the control unit 110 increases the power supplied to at least some of the light emitting elements 43a to 43c driven at the third power before changing the light intensity distribution.
[0236] According to the above configuration, even when the control unit 110 performs temperature derating on the first light source unit 41 after changing the light intensity distribution, the first light source unit 41 is protected from heat from the light-emitting elements 43, but the light distribution pattern tends to become darker. Therefore, with the above configuration, when performing temperature derating after changing the light intensity distribution, the control unit 110 increases the power supplied to at least some of the light-emitting elements 43a to 43c driven at the third power before changing the light intensity distribution. Increasing the power can brighten the light distribution pattern. Therefore, even when the control unit 110 performs temperature derating on the first light source unit 41 after changing the light intensity distribution, the deterioration of forward visibility can be suppressed compared to when the power is not increased. Furthermore, increasing the power can further suppress the deterioration of visibility at night.
[0237] Note that the control unit 110 may make the sum of the amounts by which the duty ratios 43aD to 43fD are reduced to the duty ratio D1 shown in Fig. 31 greater than, less than, or equal to the sum of the amounts by which the duty ratios 43dD to 43iD are reduced to the duty ratio D1 shown in Fig. 27. The duty ratios 43aD to 43cD of the light-emitting elements 43a to 43c shown in Fig. 31 are increased compared to the duty ratios 43aD to 43cD shown in Fig. 27. In this case, the control unit 110 makes the sum of the amounts by which the duty ratios 43aD to 43cD are increased to the duty ratio D1 shown in Fig. 31 less than the sum of the amounts by which the duty ratios 43dD to 43iD are reduced to the duty ratio D1 shown in Fig. 27, but it may also make the sum the same as or greater.
[0238] (Third Modification) Next, a third modified example of this embodiment will be described. The control of the duty ratios 43aD to 43lD of the light emitting elements 43a to 43l when the vehicle 10 switches from a straight-ahead state to a left turn and the light intensity distribution in the light distribution pattern is changed is not limited to the above. In this modified example, as in the embodiment, the duty ratio D1 will be used as an example of the duty ratio that serves as a reference for temperature derating.
[0239] Fig. 32 is a diagram showing another example of the duty ratios 43aD to 43lD of the light emitting elements 43a to 43l when the vehicle 10 switches from a straight-ahead state to a left turn and the light intensity distribution in the light distribution pattern is changed. In Fig. 32, for comparison with the duty ratios 43aD to 43lD shown in Fig. 28, the portions of the duty ratios 43aD to 43lD shown in Fig. 28 before they decrease are indicated by dotted lines.
[0240] As in the second modification, in this modification, the control unit 110 reduces the duty ratios 43dD to 43fD of the light-emitting elements 43d to 43f that are greater than the duty ratio D1 among the light-emitting elements 43a to 43l. For example, the control unit 110 reduces the duty ratios 43dD to 43fD to the duty ratio D1, and sets the duty ratios 43aD to 43fD to 50%.
[0241] Furthermore, the control unit 110 increases the duty ratios 43aD to 43cD shown in FIG. 32 compared to the duty ratios 43aD to 43cD shown in FIG. 23. In FIG. 32, for comparison with the duty ratios 43aD to 43cD shown in FIG. 23, the portions of the duty ratios 43aD to 43cD shown in FIG. 23 before they are increased are indicated by dashed lines. Therefore, when the control unit 110 performs temperature derating on the first light source unit 41 after changing the light intensity distribution in the light distribution pattern, the control unit 110 increases the duty ratios 43aD to 43cD equal to or less than duty ratio D1 above duty ratio D1 before changing the light intensity distribution. In this case, for example, the control unit 110 sets the duty ratios 43aD to 43cD to 80%, 100%, and 100%. Note that the control unit 110 may increase the duty ratios of at least some of the light-emitting elements 43a to 43c as described above.
[0242] In this modification, the control unit 110 controls the light-emitting elements 43 using the duty ratio as described above, but can also control the light-emitting elements 43 using power as described above. Therefore, the control of the light-emitting elements 43 using power will be described below. In this modification, when temperature derating is performed after changing the light intensity distribution as shown in FIG. 32 , the control unit 110 increases the power supplied to at least some of the light-emitting elements 43a to 43c, which are driven at a third power equal to or lower than the first power described above before changing the light intensity distribution, to a power higher than the first power.
[0243] With the above configuration, the light distribution pattern becomes brighter than when the electric power does not increase to the first electric power, and the deterioration of forward visibility can be further suppressed.
[0244] The control unit 110 may increase at least some of the duty ratios 43aD-43cD above duty ratio D1 and then reduce them to duty ratio D1 or less after a certain period of time has elapsed. Therefore, when the control unit 110 performs temperature derating on the first light source unit 41 after changing the light intensity distribution, the control unit 110 may increase the power supplied to at least some of the light-emitting elements 43a-43c driven at the third power above the first power before changing the light intensity distribution, and then reduce the power supplied to at least some of the light-emitting elements 43a-43c to the first power or less after a certain period of time has elapsed. If the power of the light-emitting elements 43a-43c remains higher than the first power, the temperature of the first light source unit 41 will rise. According to the above configuration, the power is reduced to the first power or less after a certain period of time has elapsed, and the temperature of the first light source unit 41 will drop, thereby suppressing the temperature rise of the first light source unit 41.
[0245] Furthermore, the control unit 110 may increase the amount of power supplied to at least some of the light-emitting elements 43a to 43c driven at the third power, the greater the decrease in the power supplied to at least some of the light-emitting elements 43d to 43f driven at the second power. According to the above configuration, the light distribution pattern may become brighter as the decrease in the power increases, compared to when the increase in the power is small. Note that the control unit 110 may not increase the amount of power supplied to at least some of the light-emitting elements 43a to 43c, the greater the decrease in the power supplied to at least some of the light-emitting elements 43d to 43f.
[0246] 32, the control unit 110 sets the sum of the increase amounts of the duty ratios 43aD to 43cD to be greater than the sum of the decrease amounts of the duty ratios 43dD to 43fD, but this is not particularly limited. The control unit 110 may set the sum of the increase amounts to be the same as the sum of the decrease amounts, or may set the sum of the increase amounts to be less than the sum of the decrease amounts.
[0247] (Third embodiment) Next, a third embodiment of the second aspect of the present invention will be described in detail. Note that components identical or equivalent to those in the second embodiment of the second aspect will be assigned the same reference numerals and redundant explanations will be omitted unless otherwise specified.
[0248] The configuration of the vehicle 10 of this embodiment is the same as the configuration of the vehicle 10 of the first embodiment, except for the detection device 150. The detection device 150 of this embodiment detects a preceding vehicle located in front of the vehicle 10. The detection device 150 mainly includes, for example, a camera, a detection unit, a calculation unit, a determination unit, and the like, which are not shown.
[0249] The camera is attached to a front portion of the vehicle 10 and captures images of the area in front of the vehicle 10 at predetermined time intervals, for example, 1 / 30 second intervals. The captured image captured by the camera includes at least a portion of the area illuminated by the light emitted from the pair of lamp units 30. Examples of the camera include a CMOS (Complementary Metal Oxide Semiconductor) camera and a CCD (Charged Coupled Device) camera.
[0250] The detection unit detects information from the captured image captured by the camera, such as the presence of a preceding vehicle in the captured image, the location of the preceding vehicle in the captured image, the proportion of the preceding vehicle in the captured image, and the temporal change in the size of the preceding vehicle in the captured image. As time passes, if a vehicle 10 that is far from the preceding vehicle approaches the preceding vehicle, the change in the size of the preceding vehicle in the captured image decreases. Furthermore, as time passes, if a vehicle 10 that is close to the preceding vehicle moves forward and approaches the preceding vehicle further, the change in the size of the preceding vehicle increases. The size of the preceding vehicle refers to, for example, the proportion of the preceding vehicle in the captured image or the width of the preceding vehicle in the captured image. A pair of red light spots emitted from the taillights of the preceding vehicle are captured in the captured image. The detection unit detects the preceding vehicle based on this light. When the detection unit detects a preceding vehicle in the captured image, it outputs a signal to the calculation unit indicating information such as the captured image, the presence of the preceding vehicle in the captured image, the location of the preceding vehicle in the captured image, the proportion of the preceding vehicle in the captured image, and the temporal change in the size of the preceding vehicle in the captured image. On the other hand, if the detection unit does not detect a preceding vehicle from the captured image, it does not output a signal to the calculation unit. Furthermore, the detection device 150 outputs the captured image to the recording unit 130, and the recording unit 130 records the captured image. The configuration of the detection unit may be the same as that of the control unit 110, for example.
[0251] The calculation unit calculates the distance between the vehicle 10 and the preceding vehicle based on the information from the detection unit. The calculation unit calculates the distance based on the above ratio and the above amount of change in the information from the detection unit. Note that the calculation unit may calculate the distance using other methods. For example, a pair of red light spots caused by light emitted from the taillights of the preceding vehicle are reflected in the captured image. The calculation unit calculates the distance between the vehicle 10 and the preceding vehicle based on the distance between the pair of red light spots, etc. The calculation unit outputs a signal indicating the calculated distance to the determination unit. The calculation unit may have a configuration similar to that of the control unit 110, for example.
[0252] When a signal indicating the distance between the vehicle 10 and the preceding vehicle is input from the calculation unit to the determination unit, the determination unit reads predetermined requirements from the recording unit 130 and determines whether the distance satisfies the predetermined requirements. If the distance satisfies the predetermined requirements, the determination unit outputs a signal indicating that the distance satisfies the predetermined requirements to the control unit 110. If the distance does not satisfy the predetermined requirements, the determination unit does not output the signal to the control unit 110. The signal from the determination unit may be input to the control unit 110 via an ECU. The state in which the predetermined requirements are satisfied indicates, for example, that the distance between the vehicle 10 and the preceding vehicle is less than a predetermined distance. In this way, the determination unit determines whether the distance satisfies the predetermined requirements in accordance with the signal input from the calculation unit. The predetermined distance is, for example, 130 m, and the distance value is recorded in the recording unit 130 as a threshold value. The value may be changeable as appropriate depending on the driving conditions of the vehicle 10, such as daytime or nighttime. The configuration of the determination unit may be similar to that of the control unit 110, for example.
[0253] The objects detected by the detection device 150, the number of types of objects, the configuration of the detection device 150, and the method for detecting a preceding vehicle by the detection device 150 are not particularly limited. Furthermore, the method for calculating the distance from the vehicle 10 to the preceding vehicle, the information detected by the detection unit, and the information input from the calculation unit to the determination unit are also not particularly limited. For example, the detection device 150 may further include an image processing unit that performs image processing on an image captured by a camera. The detection unit may detect information such as the presence of a preceding vehicle in the captured image, the position of the preceding vehicle in the captured image, the proportion of the preceding vehicle in the captured image, and the amount of change in the size of the preceding vehicle in the captured image over time, from the information processed by the image processing unit. Furthermore, the detection device 150 may further include a millimeter-wave radar, a lidar, or the like that can detect objects located ahead of the vehicle 10. The detection unit may detect the presence of a preceding vehicle located in front of vehicle 10, the position of the preceding vehicle relative to vehicle 10, and the distance from vehicle 10 to the preceding vehicle based on images captured by a camera and signals input from a millimeter-wave radar, lidar, etc.
[0254] Next, duty ratios 43aD to 43lD of the light-emitting elements 43a to 43l when the vehicle headlamp 20 emits a high beam when the distance between the vehicle 10 and the preceding vehicle is less than a predetermined distance will be described. FIG. 33 is a diagram showing an example of duty ratios 43aD to 43lD when the distance between the vehicle 10 and the preceding vehicle is less than a predetermined distance. The duty ratios 43aD to 43lD shown in FIG. 33 are duty ratios when temperature derating is not performed. When no signal is input from the determination unit to the control unit 110, the duty ratios 43aD to 43lD are as shown in FIG.
[0255] In the vehicle headlamp 20 of this embodiment, when a signal is input from the determination unit to the control unit 110, the control unit 110 sets the duty ratios 43eD to 43hD of the light-emitting elements 43e to 43h to 0% and the duty ratios 43dD and 43iD of the light-emitting elements 43d and 43i to 100%. In Fig. 33, since the duty ratios 43eD to 43hD are 0%, the rectangles for the light-emitting elements 43e to 43h are omitted. The control unit 110 also sets the duty ratios 43cD and 43jD of the light-emitting elements 43c and 43j to 80%, the duty ratios 43bD and 43kD of the light-emitting elements 43b and 43k to 60%, and the duty ratios 43aD and 43lD of the light-emitting elements 43a and 43l to 40%. The values of the duty ratios 43aD to 43lD are recorded in the recording unit 130, and the control unit 110 controls the duty ratios 43aD to 43lD as described above by reading the values from the recording unit 130. Note that the values of the duty ratios are not particularly limited.
[0256] When the control unit 110 controls the duty ratios 43aD-43lD as described above, the light-emitting elements 43e-43h are turned off, and the light emission intensity decreases in the order of light-emitting element 43d to light-emitting element 43a, and light-emitting element 43i to light-emitting element 43l, with the light emission intensity being symmetrical between the left and right light-emitting elements. As a result, the area of the high-beam light distribution pattern that overlaps with the preceding vehicle becomes a non-projection area where no light is projected, thereby reducing the illumination of the high beam on the preceding vehicle. Furthermore, light is projected onto the area of the high-beam light distribution pattern excluding the non-projection area. The values of the duty ratios 43aD-43lD are not particularly limited as long as the area of the light distribution pattern that overlaps with the preceding vehicle becomes dark. Therefore, the control unit 110 does not need to set the duty ratios 43eD-43hD to 0%.
[0257] Incidentally, even when the distance between the vehicle 10 and the preceding vehicle is less than the predetermined distance as described above, the control unit 110 performs temperature derating on the first light source unit 41. As with the first embodiment, the temperature derating of this embodiment will be described using duty ratio D1 as an example of the duty ratio that serves as a reference for temperature derating.
[0258] Fig. 34 is a diagram showing an example of duty ratios 43aD to 43lD of the light-emitting elements 43a to 43l after temperature derating when the distance between the vehicle 10 and the preceding vehicle is less than a predetermined distance. In Fig. 34, for comparison with the duty ratios 43aD to 43lD shown in Fig. 33, the portions of the duty ratios 43aD to 43lD shown in Fig. 33 before they decrease are indicated by dotted lines.
[0259] The control unit 110 reduces the duty ratios 43dD, 43iD of some of the light-emitting elements 43d, 43i among the light-emitting elements 43b to 43d, 43i to 43k that are driven at a duty ratio greater than D1 to 50%. The control unit 110 also maintains the duty ratios 43bD, 43cD, 43jD, 43kD of the remaining light-emitting elements 43b, 43c, 43j, 43k in the state shown in Fig. 33. The control unit 110 may reduce the duty ratios of at least some of the light-emitting elements 43b to 43d, 43i to 43k that are driven at a duty ratio greater than D1 to the duty ratio D1 or less. Furthermore, the control unit 110 maintains the duty ratios 43aD, 43eD to 43hD, and 43lD of the light emitting elements 43a to 43l that are driven at duty ratios equal to or less than the duty ratio D1 in the state shown in FIG.
[0260] When the duty ratios 43dD and 43iD decrease, the amount of light emitted and the amount of heat generated by the first light source unit 41 decrease, and the temperature of the first light source unit 41 drops.
[0261] Next, we will explain the control of duty ratios 43aD to 43lD of light-emitting elements 43a to 43l when vehicle 10 moves straight and the distance between vehicle 10 and the preceding vehicle changes from a state where the distance between vehicle 10 and the preceding vehicle is equal to or greater than a predetermined distance to a state where the distance between vehicle 10 and the preceding vehicle is less than the predetermined distance, thereby changing the light intensity distribution in the light distribution pattern.
[0262] Control unit 110 increases duty ratios 43aD to 43cD and 43jD to 43lD shown in Fig. 34 compared to duty ratios 43aD to 43cD and 43jD to 43lD shown in Fig. 23. In Fig. 34, for comparison with duty ratios 43aD to 43cD and 43jD to 43lD shown in Fig. 23, the portions of duty ratios 43aD to 43cD and 43jD to 43lD shown in Fig. 23 before they are increased are indicated by dashed lines. Control unit 110 increases duty ratios 43aD and 43lD to 40%, a duty ratio smaller than duty ratio D1. Therefore, when the control unit 110 performs temperature derating after changing the light intensity distribution in the light distribution pattern, it increases some of the duty ratios 43aD, 43lD that are smaller than the duty ratio D1 to duty ratios that are larger than the duty ratios 43aD, 43lD and smaller than the duty ratio D1 before changing the light intensity distribution.
[0263] In this modification, the control unit 110 controls the light-emitting elements 43 as described above using the duty ratio, but the light-emitting elements 43 can also be controlled as described above using the power supplied to the light-emitting elements 43 driven at the duty ratio. Therefore, the control of the light-emitting elements 43 using power will be described below. In this modification, when temperature derating is performed after changing the light intensity distribution, as shown in FIG. 34 , the control unit 110 increases the power supplied to at least some of the light-emitting elements 43 a, 43 l that are driven at the third power equal to or less than the first power before changing the light intensity distribution to a fourth power that is greater than the third power but less than the first power.
[0264] According to the above configuration, after the control unit 110 changes the light intensity distribution, the amount of light emitted by the first light source unit 41 increases and the light distribution pattern can become brighter compared to when the power does not increase to the fourth power.
[0265] Furthermore, for example, the control unit 110 increases the duty ratios 43bD, 43cD, 43jD, and 43kD shown in FIG. 34 compared to the duty ratios 43bD, 43cD, 43jD, and 43kD of the light-emitting elements 43b, 43c, 43j, and 43k shown in FIG. 23. For example, the control unit 110 increases the duty ratios 43bD, 43cD, 43jD, and 43kD above duty ratio D1. In this case, for example, the control unit 110 sets the duty ratios 43bD, 43cD, 43jD, and 43kD to 60%, 80%, 80%, and 60%. Therefore, when performing temperature derating after changing the light intensity distribution, the control unit 110 increases the remaining duty ratios 43bD, 43cD, 43jD, and 43kD, which are smaller than the duty ratio D1 used when performing temperature derating before changing the light intensity distribution, above duty ratio D1. Note that the control unit 110 may increase at least some of the duty ratios 43bD, 43cD, 43jD, and 43kD to duty ratio D1 or higher. In other words, when temperature derating is performed after changing the light intensity distribution as shown in Fig. 34, the control unit 110 increases the power supplied to at least some of the light emitting elements 43b, 43c, 43j, and 43k, which are driven at the third power equal to or lower than the first power before changing the light intensity distribution, to be higher than the first power.
[0266] With the above configuration, after the control unit 110 changes the light intensity distribution of the light distribution pattern, the amount of light emitted by the first light source unit 41 increases, the light distribution pattern becomes brighter, and a decrease in forward visibility can be suppressed.
[0267] Furthermore, when the duty ratios 43aD to 43cD and 43jD to 43lD are increased as described above, the areas of the light distribution pattern excluding the non-projection area become brighter than when the vehicle 10 is traveling straight, thereby suppressing a decrease in visibility for the driver. Note that the duty ratios 43aD to 43cD and 43jD to 43lD may be increased up to duty ratio D1.
[0268] (Variation) Next, a modified example of the present embodiment will be described. The configuration of the vehicle 10 of this modified example is the same as the configuration of the vehicle 10 of the first embodiment, except for the detection device 150. In this modified example, the detection device 150 detects raindrops.
[0269] The detection device 150 of this modified example primarily includes a rain sensor that detects raindrops on the windshield of the vehicle 10. The rain sensor includes an LED (light-emitting element) that emits infrared rays, a photodiode (light-receiving element), and a detection unit. Infrared rays emitted from the LED from the passenger compartment to the outside of the vehicle are totally reflected by the windshield. However, when raindrops adhere to the windshield, some of the infrared rays penetrate the raindrops and are released to the outside. This reduces the amount of infrared light reflected by the windshield, reducing the amount of infrared light entering the photodiode (light-receiving element). The detection unit detects the presence or absence of raindrops on the windshield and the amount of raindrops adhering to the windshield based on the amount of light reduction. Alternatively, the rain sensor may primarily include a camera that photographs the windshield of the vehicle 10 and a detection unit that detects raindrops on the windshield from the image of the windshield captured by the camera. The configuration of the detection unit is the same as that of the control unit 110. The configuration and installation location of the rain sensor are not particularly limited as long as it can detect raindrops. The rain sensor is electrically connected to the control unit 110 and outputs a signal indicating the presence of raindrops and the amount of raindrops to the control unit 110. Note that the rain sensor does not output a signal to the control unit 110 if it does not detect raindrops. The signal from the rain sensor may be input to the control unit 110 via the ECU. The rain sensor may also detect snow.
[0270] Next, the duty ratios 43aD to 43lD of the light-emitting elements 43a to 43l when the vehicle headlamp 20 emits a high beam while the vehicle 10 is in the rain will be described. Fig. 35 is a diagram showing an example of the duty ratios 43aD to 43lD when the vehicle 10 is in the rain. The duty ratios 43aD to 43lD shown in Fig. 35 are duty ratios when no temperature derating is performed. When no signal is input from the rain sensor to the control unit 110, the duty ratios 43aD to 43lD are as shown in Fig. 23.
[0271] In the vehicle headlamp 20 of this embodiment, when a signal is input from the rain sensor, the control unit 110 sets the duty ratios 43aD and 43lD of the light-emitting elements 43a and 43l to 80% and the duty ratios 43bD and 43kD of the light-emitting elements 43b and 43k to 70%. The control unit 110 also sets the duty ratios 43cD, 43dD, 43iD, and 43jD of the light-emitting elements 43c, 43d, 43i, and 43j to 60% and the duty ratios 43eD to 43hD of the light-emitting elements 43e to 43h to 40%. The values of the duty ratios 43aD to 43lD are recorded in the recording unit 130, and the control unit 110 reads these values from the recording unit 130 and controls the duty ratios 43aD to 43lD as described above. The above values of the duty ratios are not particularly limited.
[0272] When the control unit 110 controls the duty ratios 43aD to 43lD as described above, the light-emitting elements 43e to 43h located at the center in the left-right direction have the lowest light emission amounts. The light-emitting elements 43d to 43a and the light-emitting elements 43i to 43l have increasing light emission amounts, and the light-emitting elements 43e to 43h have symmetrical light emission amounts. As a result, the left and right end regions of the high beam light distribution pattern become brighter than the center region. The value of the duty ratio in this case is not particularly limited, as long as the left and right end regions of the high beam light distribution pattern become brighter than the center region.
[0273] Incidentally, even when the vehicle 10 is in the rain as described above, the control unit 110 performs temperature derating on the first light source unit 41. As with the first embodiment, the temperature derating of this modified example will be described using duty ratio D1 as an example of the duty ratio that serves as a reference for temperature derating.
[0274] Fig. 36 is a diagram showing an example of duty ratios 43aD to 43lD of light-emitting elements 43a to 43l after temperature derating when vehicle 10 is in the rain. In Fig. 36, for comparison with duty ratios 43aD to 43lD shown in Fig. 35, the portions of duty ratios 43aD to 43lD shown in Fig. 35 before they decrease are indicated by dotted lines.
[0275] The control unit 110 reduces the duty ratios 43dD, 43iD of some of the light-emitting elements 43d, 43i among the light-emitting elements 43a-43d, 43i-43l that are driven at a duty ratio greater than D1 to 50%. The control unit 110 also maintains the duty ratios 43aD-43cD, 43jD-43lD of the remaining light-emitting elements 43a-43c, 43j-43l among the light-emitting elements 43a-43d, 43i-43l in the state shown in Fig. 35. The control unit 110 may reduce the duty ratios of at least some of the light-emitting elements 43a-43d, 43i-43l that are driven at a duty ratio greater than D1 to duty ratio D1 or less. Furthermore, the control unit 110 maintains the duty ratios of the light emitting elements 43e to 43h, which are driven at duty ratios equal to or lower than the duty ratio D1, among the light emitting elements 43a to 43l, in the states shown in FIG.
[0276] When the duty ratios 43dD and 43iD decrease, the amount of light emitted and the amount of heat generated by the first light source unit 41 decrease, and the temperature of the first light source unit 41 drops.
[0277] Next, we will explain the control of the duty ratios 43aD to 43lD of the light-emitting elements 43a to 43l when the vehicle 10 moves straight and switches from a state in which the vehicle 10 is not in rain to a state in which the vehicle 10 is in rain, changing the light intensity distribution in the light distribution pattern.
[0278] Compared to duty ratios 43aD-43cD, 43jD-43lD of light-emitting elements 43a-43c, 43j-43l shown in Fig. 23, control unit 110 increases duty ratios 43aD-43cD, 43jD-43lD of light-emitting elements 43a-43c, 43j-43l shown in Fig. 36 above duty ratio D1. In Fig. 36, for comparison with duty ratios 43aD-43cD, 43jD-43lD shown in Fig. 23, the portions of duty ratios 43aD-43cD, 43jD-43lD shown in Fig. 23 before they are increased are indicated by dashed lines. Control unit 110 sets duty ratios 43aD, 43lD to 80%, duty ratios 43bD, 43kD to 70%, and duty ratios 43cD, 43jD to 90%. Therefore, when performing temperature derating after changing the light intensity distribution, the control unit 110 increases the duty ratios 43aD to 43cD and 43jD to 43lD, which are smaller than duty ratio D1, above duty ratio D1 before changing the light intensity distribution. Note that the control unit 110 may increase at least some of the duty ratios 43aD to 43cD and 43jD to 43lD as described above. In other words, as shown in FIG. 36 , when performing temperature derating after changing the light intensity distribution, the control unit 110 increases the power supplied to at least some of the light-emitting elements 43a to 43c and 43j to 43l, which are driven at the third power equal to or less than the first power, above the first power.
[0279] With the above configuration, after the control unit 110 changes the light intensity distribution of the light distribution pattern, the amount of light emitted by the first light source unit 41 increases, the light distribution pattern becomes brighter, and the decrease in forward visibility can be further suppressed.
[0280] The second aspect of the present invention has been described above using the second and third embodiments and the modified examples as examples, but the present aspect is not limited to these.
[0281] Although the control of the duty ratio has been described using the high beam light distribution pattern, the low beam light distribution pattern may also be controlled in the same manner as the high beam light distribution pattern.
[0282] The control unit 110 controls the duty ratio of the light-emitting element 43 in each of the left and right first lamps 40 based on the temperature of the first light source unit 41 measured by the temperature sensor 47 of each of the left and right first lamps 40, but this is not limited to this. For example, the temperature sensor 47 may be disposed in one of the left and right first lamps 40, and the control unit 110 may control the duty ratio of the light-emitting element in each of the left and right first lamps 40 based on the temperature of the first light source unit 41 in one of the lamps.
[0283] According to the present invention, a vehicle headlamp is provided that can suppress a decrease in forward visibility when temperature derating is performed, and can be used in fields such as vehicle headlamps for automobiles and the like.
Claims
1. a light source unit having a plurality of light-emitting elements; a control unit that controls power supplied to each of the light-emitting elements; Equipped with When the control unit performs temperature derating on the light source unit based on the temperature of the light source unit, the control unit reduces the power supplied to at least some of the light emitting elements driven at a second power greater than the first power from the second power to the first power or less, and increases the power supplied to at least some of the light emitting elements driven at a third power less than the first power above the first power, and after a certain period of time has elapsed, reduces the power supplied to the light emitting elements to the first power or less. A vehicle headlamp characterized by:
2. a light source unit having a plurality of light-emitting elements; a control unit that controls power supplied to each of the light-emitting elements; Equipped with When performing temperature derating on the light source unit based on the temperature of the light source unit, the control unit increases the power supplied to at least a portion of the light emitting elements driven at a third power equal to or less than the first power before reducing the power supplied to at least a portion of the light emitting elements driven at a second power greater than a first power from the second power to the first power or less. A vehicle headlamp characterized by:
3. When the control unit performs the temperature derating on the light source unit, the control unit increases the power supplied to at least a part of the light emitting elements driven at the third power to the first power.
3. The vehicle headlamp according to claim 2.
4. When the control unit performs the temperature derating on the light source unit, the control unit increases the power supplied to at least a part of the light emitting elements driven with the third power to a fourth power that is greater than the third power and smaller than the first power.
3. The vehicle headlamp according to claim 2.
5. When the control unit performs the temperature derating on the light source unit, the control unit increases the amount of increase in the power supplied to at least a portion of the light emitting elements driven at the third power as the amount of decrease in the power supplied to at least a portion of the light emitting elements driven at the second power increases.
3. The vehicle headlamp according to claim 1 or 2.
6. When the control unit performs the temperature derating on the light source unit after changing the light intensity distribution in a light distribution pattern formed by light emitted from the light source unit by changing the power supplied to the plurality of light-emitting elements, the control unit reduces the power supplied to at least some of the light-emitting elements driven with the second power to the first power or less, and increases the power supplied to at least some of the light-emitting elements driven with the third power before changing the light intensity distribution.
5. A vehicle headlamp according to claim 1.
Citation Information
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