Vehicle lighting fixtures
The vehicle lamp design with multiple LED light sources and adjustable brightness modes addresses aesthetic issues and maintains illumination in low voltage states, enhancing user experience and efficiency.
Patent Information
- Application Number
- JP2023515523
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2021-07-27
- Filing Date
- 2022-04-21
- Publication Date
- 2026-01-09
- Estimated Expiration
- 2042-04-21
AI Technical Summary
Existing vehicle lamps with LED lights switch between high and low beams cause aesthetic appeal issues due to bright and dark areas changing, and they fail to maintain illumination in low voltage states.
A vehicle lamp design using multiple semiconductor light sources with a lighting circuit that switches between lighting modes, ensuring continuous illumination and aesthetic consistency by maintaining some light sources on at lower brightness levels.
The solution maintains aesthetic appeal by preventing sudden darkening and ensures minimal field of view illumination even in low voltage conditions, reducing power consumption and heat generation.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present disclosure relates to a lamp for use in an automobile or the like. [Background technology]
[0002] A vehicle lamp (for example, a headlamp) has multiple functions such as a high beam, a low beam, a clearance lamp (position lamp), and a DRL (Daytime Running Lamp).
[0003] Fig. 1 is a circuit diagram of a vehicle lamp that can switch between high beam and low beam. The vehicle lamp 300R includes LEDs 301 to 303, switches SW1 and SW2, a constant current driver 310, and a switching circuit 320. The vehicle lamp 300R has the same interface as a conventional bi-halogen lamp. Specifically, the vehicle lamp 300R has a main input terminal VIN and a high / low switching terminal SEL, and an input voltage V IN (Battery voltage V BAT ) is supplied, the vehicle lamp 300R lights up in a mode corresponding to the switching terminal SEL. Specifically, when the switching terminal SEL is in a low state (no input, high impedance), the vehicle lamp 300R lights up as a low beam, and when a high signal (battery voltage) is input to the switching terminal SEL, the vehicle lamp 300R lights up as a high beam.
[0004] The constant current driver 310 receives an input voltage V IN is supplied, the drive current I LED When the switching terminal SEL is low, the switching circuit 320 turns on the switch SW1 and turns off the switch SW2. At this time, the LEDs 301 and 302 are supplied with a driving current I LED On the other hand, when the switching terminal SEL is high, the switching circuit 320 turns off the switch SW1 and turns on the switch SW2. At this time, a driving current I LED is playing.
[0005] Figure 2 is a diagram showing an example of the light distribution of the vehicle lamp 300R of Figure 1. The dashed-dotted lines indicate the horizontal cutoff line CL1 and the oblique cutoff line CL2, with a low beam light distribution formed below the cutoff lines CL1 and CL2 and a high beam light distribution H formed above them. The low beam region includes a first portion L1 below a horizontal line passing through the elbow point ELB and a second portion L2 above it.
[0006] For example, since LED 301 in Fig. 1 lights up in both high beam and low beam, the optical system of vehicle lamp 300R is designed so that the light emitted from LED 301 irradiates an area below the horizontal cutoff line (area A1 in Fig. 2, referred to as the low beam diffusion area). The optical system is also designed so that the light emitted from LED 302 in Fig. 1 irradiates area A2 in Fig. 2 (referred to as the low beam concentration area), and the light emitted from LED 303 in Fig. 1 irradiates area A3 in Fig. 2 (referred to as the high beam area). [Prior art documents] [Patent documents]
[0007] [Patent Document 1] International Publication No. WO2021 / 020537 Summary of the Invention [Problem to be solved by the invention]
[0008] (Task 1) 1, the LEDs 302 and 303 are turned on exclusively. Therefore, when the vehicle lamp 100 is viewed from the surroundings, the bright and dark areas change between the low beam and high beam, which can cause a loss of aesthetic appeal.
[0009] The present disclosure has been made in light of such a situation, and one exemplary purpose of an embodiment thereof is to provide a vehicle lamp that can achieve two functions without impairing aesthetics.
[0010] ) Another exemplary object of an embodiment of the present disclosure is to provide a vehicle lamp that can illuminate a minimum field of view even in a low voltage state. [Means for solving the problem]
[0011] 1. A vehicle lamp according to one aspect of the present disclosure includes a first semiconductor light source connected between a first node and a second node, a second semiconductor light source connected to form a first path between the second node and a third node, a third semiconductor light source connected to form a second path parallel to the first path between the second node and the third node, and a lighting circuit that drives the first semiconductor light source, the second semiconductor light source, and the third semiconductor light source. The lighting circuit is configured to be switchable between a first lighting mode in which the first semiconductor light source and the second semiconductor light source are turned on and the third semiconductor light source is turned off, and a second lighting mode in which the first semiconductor light source and the third semiconductor light source are turned on and the second semiconductor light source is turned on at a dimming level lower than in the first lighting mode.
[0012] 2. A vehicle lamp according to one embodiment of the present disclosure includes: a first semiconductor light source connected between a first node and a second node; a second semiconductor light source connected to form a first path between the second node and a third node; a third semiconductor light source connected between the second node and the third node to form a second path parallel to the first path; a lighting circuit that receives a power supply voltage and turns on the first semiconductor light source and the second semiconductor light source in a first lighting mode and turns on the first semiconductor light source and the third semiconductor light source in a second lighting mode; and a bypass circuit that is provided between the second node and the third node and includes a bypass switch that turns on when the power supply voltage falls below a predetermined first threshold.
[0013] Any combination of the above components, or mutual substitution of components or expressions between methods, devices, systems, etc. are also valid aspects of the present invention. [Effects of the Invention]
[0014] According to one aspect of the present disclosure, two functions can be achieved without compromising aesthetics. [Brief explanation of the drawings]
[0015] [Figure 1] 1 is a circuit diagram of a vehicle lamp that can switch between high beam and low beam. [Figure 2] FIG. 2 is a diagram showing an example of light distribution of the vehicle lamp of FIG. 1. [Figure 3] 1 is a circuit diagram of a vehicle lamp according to a first embodiment. [Figure 4] 4 is an equivalent circuit diagram of the vehicle lamp of FIG. 3 in a first lighting mode (low beam). FIG. [Figure 5] 4 is an equivalent circuit diagram of the vehicular lamp of FIG. 3 in a second lighting mode (high beam). FIG. [Figure 6] FIG. 2 is a circuit diagram showing a specific example of the configuration of a vehicle lamp. [Figure 7] 7(a) to 7(c) are diagrams showing modified examples of the first switch. [Figure 8] 1 is a perspective view of a light source module, which is an example of a vehicle lamp; [Figure 9] FIG. 10 is a block diagram of a vehicle lamp according to Modification 1.1. [Figure 10] FIG. 10 is a block diagram of a vehicle lamp according to Modification 1.2. [Figure 11] FIG. 10 is a block diagram of a vehicle lamp according to Modification 1.5. [Figure 12] FIG. 10 is a block diagram of a vehicle lamp according to Modification 1.6. [Figure 13] FIG. 11 is a block diagram of a vehicle lamp according to Modification 1.7. [Figure 14] FIG. 10 is a block diagram of a vehicle lamp according to a second embodiment. [Figure 15] FIG. 15 is a circuit diagram showing a specific example of the configuration of the vehicle lamp of FIG. [Figure 16] FIG. 10 is a circuit diagram of a vehicle lamp according to Modification 2.1. [Figure 17] FIG. 10 is a block diagram of a vehicle lamp according to a third embodiment. [Figure 18] FIG. 18 is a circuit diagram showing a specific example of the configuration of the vehicle lamp of FIG. 17. [Figure 19]FIG. 10 is a circuit diagram of a vehicle lamp according to a fourth embodiment. [Figure 20] 20(a) and 20(b) are equivalent circuit diagrams of the first and second lighting modes in the normal voltage state. [Figure 21] 21(a) and 21(b) are equivalent circuit diagrams of the first and second lighting modes in a low voltage state. [Figure 22] FIG. 20 is a circuit diagram showing a specific example of the configuration of the vehicle lamp of FIG. 19. [Figure 23] FIG. 10 is a circuit diagram of a vehicle lamp according to a fifth embodiment. [Figure 24] 24(a) and 24(b) are equivalent circuit diagrams of the first and second lighting modes in the normal voltage state. [Figure 25] FIG. 24 is a circuit diagram showing a specific example of the configuration of the vehicle lamp of FIG. 23. [Figure 26] 26(a) to 26(c) are diagrams showing modified examples of the first switch. [Figure 27] 1 is a perspective view of a light source module, which is an example of a vehicle lamp; [Figure 28] FIG. 5 is a block diagram of a vehicle lamp according to a modified example 5.1. [Figure 29] FIG. 10 is a block diagram of a vehicle lamp according to a modified example 5.2. [Figure 30] FIG. 10 is a block diagram of a vehicle lamp according to Modification 5.5. [Figure 31] FIG. 10 is a block diagram of a vehicle lamp according to a modified example 5.6. [Figure 32] FIG. 10 is a block diagram of a vehicle lamp according to Modification 5.7. [Figure 33] FIG. 10 is a block diagram of a vehicle lamp according to a sixth embodiment. [Figure 34] FIG. 34 is a circuit diagram showing a specific example of the configuration of the vehicle lamp of FIG. 33. [Figure 35] FIG. 6 is a circuit diagram of a vehicle lamp according to Modification 6.1. [Figure 36] FIG. 11 is a block diagram of a vehicle lamp according to a seventh embodiment. [Figure 37]FIG. 37 is a circuit diagram showing a specific example of the configuration of the vehicle lamp of FIG. 36. DETAILED DESCRIPTION OF THE INVENTION
[0016] (Outline of the embodiment) A summary of some exemplary embodiments of the present disclosure is provided. This summary is intended to provide a simplified overview of some concepts of one or more embodiments in order to provide a basic understanding of the embodiments as a prelude to the more detailed description that follows. It is not intended to limit the scope of the invention or disclosure. This summary is not an exhaustive overview of all possible embodiments, and is not intended to identify key elements of all embodiments or to delineate the scope of some or all aspects. For convenience, the term "one embodiment" may refer to one embodiment (example or variant) or multiple embodiments (examples or variants) disclosed herein.
[0017] A vehicle lamp according to one embodiment includes a first semiconductor light source connected between a first node and a second node, a second semiconductor light source connected to form a first path between the second node and a third node, a third semiconductor light source connected to form a second path parallel to the first path between the second node and the third node, and a lighting circuit that drives the first semiconductor light source, the second semiconductor light source, and the third semiconductor light source. The lighting circuit is configured to be switchable between a first lighting mode in which the first semiconductor light source and the second semiconductor light source are turned on and the third semiconductor light source is turned off, and a second lighting mode in which the first semiconductor light source and the third semiconductor light source are turned on and the second semiconductor light source is turned on at a brightness dimmer than in the first lighting mode.
[0018] In this configuration, when switching from the first lighting mode to the second lighting mode, the third semiconductor light source is additionally turned on while the second semiconductor light source remains on, thereby improving the aesthetic appearance of the vehicle lamp when viewed from the surroundings compared to when the third semiconductor light source is turned on in exchange for turning off the second semiconductor light source.
[0019] In one embodiment, the vehicular lamp may further include an input terminal that receives a power supply voltage and also serves as a lighting instruction, and a switching terminal that is externally controlled to be in a first state in a first lighting mode and in a second state in a second lighting mode. The lighting circuit may include a first constant current driver that outputs a first drive current when an output node is connected to the first node and when a power supply voltage is supplied to the input terminal, a first switch that is connected on the first path between the second node and the second semiconductor light source, a second switch that is connected on the second path in series with the third semiconductor light source, a switching circuit that turns on the first switch and turns off the second switch when the switching terminal is in the first state, and turns off the first switch and turns on the second switch when the switching terminal is in the second state, and a second constant current driver that supplies a second drive current that is less than the first drive current to an intermediate node connecting the second semiconductor light source and the first switch when the switching terminal is in the second state.
[0020] When the switching terminal is set to the first state, the first lighting mode is established, the first switch is turned on, and a first drive current is supplied to the first semiconductor light source and the second semiconductor light source, causing them to light up. When the switching terminal is set to the second state, the second lighting mode is established, the first switch is turned off, and the first drive current no longer flows to the second semiconductor light source, but instead a second drive current is supplied by the second constant current driver. As a result, in the second lighting mode, the second semiconductor light source can be lit at a brightness lower than in the first lighting mode.
[0021] In one embodiment, the second constant current driver may include a current limiting resistor provided between the switching terminal and the intermediate node.
[0022] In one embodiment, the second constant current driver may further include a diode disposed in series with the current limiting resistor between the switching terminal and the intermediate node.
[0023] In one embodiment, the second drive current may flow via a switching terminal. In one embodiment, the second drive current may be greater than 10 mA. In this case, during the second lighting mode, the second drive current can be passed through the switching terminal as a contact current. In other words, the drive current for the second semiconductor light source can also be used as a contact current for preventing oxidation, thereby preventing unnecessary increases in power consumption.
[0024] In one embodiment, the switching terminal may receive a non-zero switching voltage in the second state, and the second constant current driver may be powered via the switching terminal in the second state, such that in the first state, when the switching terminal is at high impedance or low level (zero voltage), the second constant current driver is inactive.
[0025] In one embodiment, the vehicular lamp may further include an input terminal that receives a power supply voltage and also serves as a lighting instruction, and a switching terminal that is externally controlled to be in a first state in a first lighting mode and in a second lighting mode. The lighting circuit may include: a first constant current driver whose output node is connected to the first node and that outputs a first drive current when the power supply voltage is supplied to the input terminal; a second constant current driver connected on the first path between the second semiconductor light source and a third node and configured to be switchable between a constant current state in which the second drive current is smaller than the first drive current and a full-on state; a second switch connected on the second path in series with the third semiconductor light source; and a switching circuit that, when the switching terminal is in the first state, sets the second constant current driver to the full-on state and turns the second switch off, and that, when the switching terminal is in the second state, sets the second constant current driver to the constant current state and turns the second switch on.
[0026] When the switching terminal is in the first state, the second constant current driver is in the full-on state, and the first drive current is supplied to the first semiconductor light source and the second semiconductor light source, causing them to light up (first lighting mode).When the switching terminal is in the second state, the second drive current generated by the second constant current driver flows through the second semiconductor light source, causing them to light up dimly, and the first drive current flows through the first semiconductor light source and the third semiconductor light source, causing them to light up brightly (second lighting mode).
[0027] In one embodiment, the second constant current driver may include a first transistor and a first resistor connected in series in order on the first path between the second semiconductor light source and the third node, and a feedback circuit that is active when the switching terminal is in the second state and controls the voltage of the control terminal of the first transistor so that the voltage drop across the first resistor approaches a target voltage. When the switching terminal is in the second state, the first transistor has a current I=V REF The second drive current of / R1 flows. REF is a reference voltage, and R1 is the resistance value of the first resistor. As a result, in the second lighting mode, the second semiconductor light source can be lit at a brightness lower than in the first lighting mode.
[0028] In this specification, when circuit A "outputs a current," it includes both the case where circuit A sources a current and the case where circuit A sinks a current.
[0029] In one embodiment, the vehicle lamp may further include an input terminal that receives a power supply voltage also serving as a lighting instruction, and a switching terminal that is externally controlled to be in a first state in a first lighting mode and in a second state in a second lighting mode. The lighting circuit includes a first constant current driver that outputs a first driving current when a power supply voltage is supplied to the input terminal with an output node connected to a first node, a first switch connected in series with a second semiconductor light source on a first path, a second switch connected in series with a third semiconductor light source on a second path, and a switch control circuit that turns on the first switch and turns off the second switch when the switching terminal is in the first state, and switches the first switch in response to a pulse signal having a first duty cycle lower than 50% and switches the second switch in response to a complementary signal of the pulse signal when the switching terminal is in the second state.
[0030] When the switching terminal is in the first state, the first lighting mode is entered, the first switch is turned on, and the first driving current is supplied to the first semiconductor light source and the second semiconductor light source, causing them to light up. When the switching terminal is in the second state, the second lighting mode is entered, the first switch and the second switch are switched with complementary duty cycles d1, d2 (d1 < d2), and the first driving current is divided between the second semiconductor light source and the third semiconductor light source at a ratio of d1:d2. Therefore, the second semiconductor light source can be lit with a brightness darker than that in the first lighting mode.
[0031] In one embodiment, the first constant current driver may increase the first driving current in the second lighting mode compared to the first lighting mode.
[0032] In one embodiment, when switching between the first lighting mode and the second lighting mode, a period during which the first switch and the second switch are simultaneously turned on may be inserted. Thereby, it is possible to prevent the first switch and the second switch from being simultaneously turned off, all the semiconductor light sources from being turned off, and the field of view from becoming dark. Also, an overvoltage state can be suppressed, and an overcurrent can be suppressed.
[0033] In one embodiment, the light emitted from the first semiconductor light source may form a light distribution pattern whose upper edge has a horizontal cutoff line, the light emitted from the second semiconductor light source may form a light distribution pattern whose upper edge has a diagonal cutoff line, and the light emitted from the third semiconductor light source may form a light distribution pattern for high beam.
[0034] A vehicle lamp according to one embodiment includes: a first semiconductor light source connected between a first node and a second node; a second semiconductor light source connected to form a first path between the second node and a third node; a third semiconductor light source connected between the second node and the third node to form a second path parallel to the first path; a lighting circuit that receives a power supply voltage and turns on the first semiconductor light source and the second semiconductor light source in a first lighting mode and turns on the first semiconductor light source and the third semiconductor light source in a second lighting mode; and a bypass circuit that is provided between the second node and the third node and includes a bypass switch that turns on when the power supply voltage falls below a predetermined first threshold.
[0035] According to this configuration, by turning on the bypass switch in a low voltage state, it is possible to maintain light emission from the first semiconductor light source regardless of the lighting mode, and to illuminate a minimum field of view.
[0036] In one embodiment, the bypass switch may be turned off when the power supply voltage exceeds a second threshold higher than the first threshold. By providing hysteresis to the threshold voltage, it is possible to prevent the bypass switch from repeatedly turning on and off, causing the second or third semiconductor light source to flicker.
[0037] In one embodiment, the light emitted from the first semiconductor light source may form a light distribution pattern whose upper edge has a horizontal cutoff line, the light emitted from the second semiconductor light source may form a light distribution pattern whose upper edge has a diagonal cutoff line, and the light emitted from the third semiconductor light source may form a light distribution pattern for high beams, thereby enabling the area below the horizontal cutoff line to continue to be illuminated even in a low-voltage state.
[0038] In one embodiment, the lighting circuit may light the second semiconductor light source more dimly in the second lighting mode than in the first lighting mode.
[0039] In this configuration, when switching from the first lighting mode to the second lighting mode, the third semiconductor light source is additionally turned on while the second semiconductor light source remains on, thereby improving the aesthetic appearance of the vehicle lamp when viewed from the surroundings compared to when the third semiconductor light source is turned on in exchange for turning off the second semiconductor light source.
[0040] In one embodiment, the vehicular lamp may further include an input terminal that receives a power supply voltage and also serves as a lighting instruction, and a switching terminal that is externally controlled to be in a first state in a first lighting mode and in a second state in a second lighting mode. The lighting circuit may include a first constant current driver that outputs a first drive current when the output node is connected to the first node and the power supply voltage is supplied to the input terminal, a first switch that is connected on the first path between the second node and the second semiconductor light source, a second switch that is connected on the second path in series with the third semiconductor light source, a switching circuit that turns on the first switch and turns off the second switch when the switching terminal is in the first state, and turns off the first switch and turns on the second switch when the switching terminal is in the second state, and a second constant current driver that supplies a second drive current that is less than the first drive current to an intermediate node connecting the second semiconductor light source and the first switch when the switching terminal is in the second state.
[0041] When the switching terminal is set to the first state, the first lighting mode is established, the first switch is turned on, and a first drive current is supplied to the first semiconductor light source and the second semiconductor light source, causing them to light up. When the switching terminal is set to the second state, the second lighting mode is established, the first switch is turned off, and the first drive current no longer flows to the second semiconductor light source, but instead a second drive current is supplied by the second constant current driver. As a result, in the second lighting mode, the second semiconductor light source can be lit at a brightness lower than in the first lighting mode.
[0042] In one embodiment, the vehicular lamp may further include an input terminal that receives a power supply voltage and also serves as a lighting instruction, and a switching terminal that is externally controlled to be in a first state in a first lighting mode and in a second lighting mode. The lighting circuit may include: a first constant current driver whose output node is connected to the first node and that outputs a first drive current when the power supply voltage is supplied to the input terminal; a second constant current driver connected on the first path between the second semiconductor light source and a third node and configured to be switchable between a constant current state in which the second drive current is smaller than the first drive current and a full-on state; a second switch connected on the second path in series with the third semiconductor light source; and a switching circuit that, when the switching terminal is in the first state, sets the second constant current driver to the full-on state and turns the second switch off, and that, when the switching terminal is in the second state, sets the second constant current driver to the constant current state and turns the second switch on.
[0043] When the switching terminal is in the first state, the second constant current driver is in the full-on state, and the first drive current is supplied to the first semiconductor light source and the second semiconductor light source, causing them to light up (first lighting mode).When the switching terminal is in the second state, the second drive current generated by the second constant current driver flows through the second semiconductor light source, causing them to light up dimly, and the first drive current flows through the first semiconductor light source and the third semiconductor light source, causing them to light up brightly (second lighting mode).
[0044] In one embodiment, the vehicle lamp may further include an input terminal that receives a power supply voltage also serving as a lighting instruction, and a switching terminal that is externally controlled to be in a first state in a first lighting mode and in a second state in a second lighting mode. The lighting circuit includes a first constant current driver that outputs a first drive current when a power supply voltage is supplied to the input terminal with an output node connected to a first node, a first switch connected in series with a second semiconductor light source on a first path, a second switch connected in series with a third semiconductor light source on a second path, and a switch control circuit that turns on the first switch and turns off the second switch when the switching terminal is in the first state, and switches the first switch according to a pulse signal with a first duty cycle lower than 50% and switches the second switch according to a complementary signal of the pulse signal when the switching terminal is in the second state.
[0045] When the switching terminal is in the first state, it becomes the first lighting mode, the first switch is turned on, and the first drive current is supplied to the first semiconductor light source and the second semiconductor light source to light up. When the switching terminal is in the second state, it becomes the second lighting mode, the first switch and the second switch are switched with complementary duty cycles d1, d2 (d1 < d2), and the first drive current is divided between the second semiconductor light source and the third semiconductor light source at a ratio of d1:d2. Therefore, the second semiconductor light source can be lit with a brightness darker than that in the first lighting mode.
[0046] (Embodiment) Hereinafter, the present invention will be described based on preferred embodiments with reference to the drawings. The same or equivalent components, members, and processes shown in each drawing are denoted by the same reference numerals, and redundant descriptions will be omitted as appropriate. Also, the embodiments are illustrative and not restrictive of the invention, and all features and combinations thereof described in the embodiments are not necessarily essential to the invention.
[0047] In this specification, "a state in which component A is connected to component B" includes not only a case in which component A and component B are directly physically connected to each other, but also a case in which component A and component B are indirectly connected to each other via other components that do not substantially affect the electrical connection between them or that do not impair the function or effect achieved by their connection.
[0048] Similarly, "a state in which component C is provided between component A and component B" includes not only cases in which components A and C, or components B and C, are directly connected, but also cases in which they are indirectly connected via other components that do not substantially affect the electrical connection state between them or impair the functions or effects achieved by their combination.
[0049] In addition, in this specification, symbols attached to electrical signals such as voltage signals and current signals, or circuit elements such as resistors and capacitors, represent the respective voltage values, current values, resistance values, and capacitance values as necessary.
[0050] (Embodiment 1) 3 is a circuit diagram of the vehicular lamp 100 according to embodiment 1. The vehicular lamp 100 is a lamp having two different functions, and has an interface similar to that of a bihalogen lamp.
[0051] The vehicle lamp 100 has a main input terminal VIN, a switching terminal SEL, and a ground terminal GND. The ground terminal GND is grounded. The input terminal VIN receives a voltage V from the battery 2 via a switch 4 on the vehicle side. BAT On the vehicle side, when the driver turns on the headlamp switch, switch 4 turns on and the power supply voltage V IN The power supply voltage V IN serves both as a power supply voltage for the vehicle lamp 100 and as a lighting instruction.
[0052] The electrical state of the switching terminal SEL of the vehicular lamp 100 is switched between a first state and a second state depending on the lighting mode of the vehicular lamp 100. In this embodiment, the first state is a no-input (high impedance) state, and the second state is a state in which a non-zero voltage is input. Specifically, the switching terminal SEL is connected to the battery 2 via a switch 6 on the vehicle side. On the vehicle side, when the driver selects low beam (first lighting mode), the switch 6 is off, and the switching terminal SEL is in a no-input state (high impedance). When the driver selects high beam (second lighting mode), the switch 6 is turned on, and a high-level (battery voltage) switching voltage V is applied to the switching terminal SEL. SEL is supplied.
[0053] Vehicle lamp 100 constitutes a lamp module that can switch between high beam and low beam. Vehicle lamp 100 includes first semiconductor light source 101, second semiconductor light source 102, third semiconductor light source 103, and lighting circuit 200. First semiconductor light source 101, second semiconductor light source 102, and third semiconductor light source 103 are, for example, white LEDs (light emitting diodes).
[0054] First semiconductor light source 101 to third semiconductor light source 103 are connected so that the current flowing through first semiconductor light source 101 is the sum of the currents flowing through second semiconductor light source 102 and third semiconductor light source 103. Specifically, first semiconductor light source 101 is connected between a first node n1 and a second node n2. Second semiconductor light source 102 is connected between the second node n2 and a third node n3 so as to form a first path. Third semiconductor light source 103 is connected between the second node n2 and the third node n3 so as to form a second path that is parallel to the first path.
[0055] Lighting circuit 200 drives first semiconductor light source 101 to third semiconductor light source 103. In a first lighting mode (low beam), lighting circuit 200 turns on first semiconductor light source 101 and second semiconductor light source 102 and turns off third semiconductor light source 103. In a second lighting mode, lighting circuit 200 turns on first semiconductor light source 101 and third semiconductor light source 103 and turns on second semiconductor light source 102 darker than in the first lighting mode. It is preferable that the brightness of first semiconductor light source 101 hardly changes between the first lighting mode and the second lighting mode.
[0056] The lighting circuit 200 includes a first constant current driver 210, a switching circuit 220, a second constant current driver 230, a first switch SW1, and a second switch SW2.
[0057] First constant current driver 210 has an output node OUT connected to the anode (first node n1) of first semiconductor light source 101. First constant current driver 210 receives power supply voltage V IN is supplied, and the first drive current I OUT1 The first constant current driver 210 may be a switching converter that outputs a constant current, or may be a linear regulator that outputs a constant current, or other constant current circuits.
[0058] In this embodiment, the third node n3, i.e., the cathode of second semiconductor light source 102 and the cathode of third semiconductor light source 103, is grounded. The first switch SW1 is provided between the cathode (second node n2) of first semiconductor light source 101 and the anode of second semiconductor light source 102. The second switch SW2 is provided between the cathode (second node n2) of first semiconductor light source 101 and the anode of third semiconductor light source 103.
[0059] When the switching terminal SEL is in the first state (high impedance, no input state), the switching circuit 220 turns on the first switch SW1 and turns off the second switch SW2. When the switching terminal SEL is in the second state, that is, when the switching voltage V SELWhen this voltage is supplied, the first switch SW1 is turned off and the second switch SW2 is turned on.
[0060] The second constant current driver 230 is connected to the switching terminal SEL, and supplies a switching voltage V SEL is supplied to the anode of the second semiconductor light source 102, and a first driving current I OUT1 Lower second drive current I OUT2 The second drive current I OUT2 The second driving current I may be set to a value such that, when the vehicle lamp 100 is viewed from the outside in the second state, the area including the second semiconductor light source 102 is visually recognized as being lit. OUT2 is preferably set to be greater than 10 mA.
[0061] The above is the configuration of the vehicle lamp 100. Next, the operation thereof will be described.
[0062] 4 is an equivalent circuit diagram of the vehicle lamp 100 in the first lighting mode (low beam) of FIG. 3. In the first lighting mode, the first driving current I OU T1 flows through first semiconductor light source 101, first switch SW1, and second semiconductor light source 102. Therefore, first semiconductor light source 101 and second semiconductor light source 102 are turned on.
[0063] 5 is an equivalent circuit diagram of the vehicular lamp 100 in the second lighting mode (high beam) of FIG. 3. In the second lighting mode, the first driving current I OU T1 flows through first semiconductor light source 101, second switch SW2, and third semiconductor light source 103. Therefore, first semiconductor light source 101 and third semiconductor light source 103 are turned on. Also, second drive current I generated by second constant current driver 230 flows through second semiconductor light source 102. OUT2 flows, the light remains on, but the light intensity is lower than in the first lighting mode.
[0064] The operation of the vehicle lamp 100 has been described above.
[0065] According to the vehicle lamp 100, when switching from the first lighting mode (low beam) to the second lighting mode (high beam), the third semiconductor light source 103 is additionally turned on while the second semiconductor light source 102 remains lit. Therefore, when the vehicle lamp 100 is viewed from the surroundings, it is possible to prevent a portion that was bright just before from suddenly becoming dark, thereby improving the aesthetic appearance.
[0066] Furthermore, according to the vehicle lamp 100, the second semiconductor light source remains lit even in the second lighting mode, so that the illuminance of the area illuminated by the second semiconductor light source 102 on the virtual vertical screen can be prevented from changing significantly.
[0067] For example, suppose the optical system of vehicle lamp 100 is designed so that the emitted light from first semiconductor light source 101, second semiconductor light source 102, and third semiconductor light source 103 illuminates areas A1, A2, and A3 in Fig. 2. That is, the emitted light from first semiconductor light source 101 forms a light distribution pattern A1 whose upper edge has a horizontal cutoff line, the emitted light from second semiconductor light source 102 forms a light distribution pattern A2 whose upper edge has a diagonal cutoff line, and the emitted light from third semiconductor light source 103 forms a light distribution pattern for high beams.
[0068] In this case, if the second semiconductor light source 102 is turned off in the second lighting mode, the area A2 will be dark. In particular, the range L2 will be unilluminated by any light source. In contrast, in this embodiment, the second semiconductor light source 102 is kept lit in the second lighting mode, so that the area A2 is irradiated with light, thereby suppressing unnatural changes in the light distribution.
[0069] In the second lighting mode, the driving current I OUT2 is the driving current I that flows in the first lighting mode. OUT1Since the amount of heat generated (power consumption) is less than the amount of heat generated in the first lighting mode, there is only a slight increase in the amount of heat generated (power consumption) caused by maintaining the lighting of second semiconductor light source 102. Therefore, when second semiconductor light source 102 is turned on in the second lighting mode, no additional heat dissipation measures are required, or only a slight amount is required, and an increase in costs can also be suppressed.
[0070] Furthermore, the second drive current I OUT2 By making the amount of current greater than 10 mA, a contact current exceeding 10 mA, which is necessary to prevent oxidation of the connector terminal, can be passed through the switching terminal SEL. OUT2 This can be used as a contact current to prevent oxidation, so that unnecessary increases in power consumption can be suppressed.
[0071] 6 is a circuit diagram showing a specific example of the configuration of the vehicular lamp 100. The second constant current driver 230 includes a current limiting resistor R3 and a diode D3. When the forward voltage of the diode D3 is Vf3 and the forward voltage of the second semiconductor light source 102 is Vf2, the second drive current I OU T2 is expressed by the following formula: I OUT2 =(V SEL -Vf2-Vf3) / R3=(V BAT -Vf2-Vf3) / R3
[0072] In other words, the second drive current I OUT2 Furthermore, by providing the diode D3, the amount of the first driving current I generated by the first constant current driver 210 can be determined. OUT1 However, this can prevent the current from flowing into the switching terminal SEL or the switching circuit 220. If the input impedance of the switching circuit 220 is sufficiently high, the diode D3 may be omitted.
[0073] The first switch SW1 includes a first transistor M1, which is an N-channel MOSFET, and resistors R11 and R12. Similarly, the second switch SW2 includes a second transistor M2, which is also a MOSFET, and resistors R21 and R22. The first switch SW1 and the second switch SW2 are turned on by inputting a high level to their gates, and turned off by inputting a low level to their gates. Note that the configuration of the switches SW1 and SW2 is not limited to this.
[0074] When the switching terminal SEL is in the first state (no input, low level, high impedance), the switching circuit 220 sets the control terminal of the first switch SW1 to high level and the control terminal of the second switch SW2 to low level. SEL =V BAT )), the control terminal of the first switch SW1 is set to low level, and the control terminal of the second switch SW2 is set to high level.
[0075] That is, the switching circuit 220 supplies a first output S1 having a logical value complementary to the signal at the switching terminal SEL to the first switch SW1, and supplies a second output S2 having the same logical value as the signal at the switching terminal SEL to the second switch SW2.
[0076] The switching circuit 220 includes transistors Q11 to Q14 and a resistor R4. When the switching terminal SEL is low or at high impedance, the transistor Q11 is off, the transistor Q12 is off, and the transistor Q14 is on, and a high signal S1 is input to the control terminal of the first switch SW1. At this time, the transistor Q13 is off, so the control terminal of the second switch SW2 is low.
[0077] Conversely, when the switching terminal SEL is high, the transistor Q11 is on, the transistor Q12 is on, and the transistor Q14 is off, so the control terminal of the first switch SW1 is low. At this time, the transistor Q13 is on, so the control terminal of the second switch SW2 is high.
[0078] Those skilled in the art will understand that the configurations of the first switch SW1, the second switch SW2, the switching circuit 220, and the second constant current driver 230 are not limited to those shown in FIG.
[0079] 7(a) to 7(c) are diagrams showing modified examples of the first switch SW1. Figures 7(a) to 7(c) show the output stage of the switching circuit 220. The same applies to the second switch SW2.
[0080] 7(a), the switching circuit 220 has an open-drain / open-collector output stage, similar to that of FIG. 6, and the control signal S1 can be in two states: high level (Hi) or high impedance (Hi-Z). When the control signal S1 is in high impedance, the output node of the switching circuit 220 is pulled down to low level by resistors R11 and R12, and the transistor M1 is turned off.
[0081] In this modification, the first switch SW1 further includes a capacitor C1, one end of which is connected to the drain (or collector) of the transistor M1, and the other end of which is connected to the control electrode (i.e., gate or base) of the switching transistor M1.
[0082] The turn-on operation of switch SW1 is explained. Gate voltage V G is the gate-source threshold voltage V of transistor M1. GS(th) When the voltage rises to around V, the Miller effect caused by capacitor C1 G This allows the switch SW1 to be turned on slowly.
[0083] The same applies to turn-off, with the gate voltage V G is the gate-source threshold voltage V of transistor M1. GS(th) When the voltage drops to around V, the Miller effect caused by capacitor C1 G This allows the switch SW1 to be turned off gradually.
[0084] By adding the capacitor C1 to the first switch SW1 (and the second switch SW2), the turn-on and turn-off of the switch become gentle. As a result, the brightness of the second semiconductor light source 102 and the third semiconductor light source 103 can be gently changed, and gradual lighting and gradual extinguishing are possible. Also, it is possible to prevent the potential of the anode or cathode of each of the first semiconductor light source 101 to the third semiconductor light source 103 from changing abruptly.
[0085] Also, in FIG. 7(a), by making the resistance R11 lower than the resistance R12, the turn-on time of the transistor can be made relatively shorter than the turn-off time. As a result, the on-times of the first switch SW1 and the second switch SW2 can be overlapped. If there is a section where both the first switch SW1 and the second switch SW2 are off, all of the first semiconductor light source 101, the second semiconductor light source 102, and the third semiconductor light source 103 will turn off, and the driver's field of vision will become dark. In contrast, in the configuration of FIG. 7(a), by setting R11 < R12, it is guaranteed that one of the first switch SW1 and the second switch SW2 is on, so it is possible to prevent the field of vision from becoming dark.
[0086] Furthermore, if there is a section where both the first switch SW1 and the second switch SW2 are off, the first constant current driver 210 will be in a no-load state, so the output voltage V OUT will rise and enter an overvoltage state. When the first switch SW1 or the second switch SW2 turns on in a state where the output voltage V OUT has risen, an overcurrent will flow through the LED. In contrast, in the configuration of FIG. 7(a), by setting R11 < R12, it is guaranteed that one of the first switch SW1 and the second switch SW2 is on, so the overvoltage state can be suppressed and the overcurrent can also be suppressed.
[0087] 7(b), the switching circuit 220 has a push-pull output stage including a high-side transistor MP and a low-side transistor MN, and the control signal S1 has two states: high level (Hi) and low level (Lo). In this modification, the first switch SW1 further includes a resistor R13 and a diode D11.
[0088] When the high-side transistor MP of the output stage of the switching circuit 220 is turned on, the gate of the transistor M1 is charged via the parallel connection circuit of the resistors R11 and R13, and the gate voltage V G When the low-side transistor MN in the output stage of the switching circuit 220 is turned on, the gate of the transistor M1 is discharged via the resistor R11, and the gate voltage V G decreases.
[0089] Therefore, the impedance of the charge and discharge paths is different, so the gate voltage V G The rate at which the gate voltage V G The rate at which the voltage Vcc drops is faster than the rate at which the voltage Vcc drops. This allows first switch SW1 to be turned on in a short time and turned off slowly. In other words, the luminance of second semiconductor light source 102 can be gradually reduced (gradual extinguishing). The same applies to third semiconductor light source 103.
[0090] 7(a), the ON times of the first switch SW1 and the second switch SW2 can be made to overlap, which ensures that either the first switch SW1 or the second switch SW2 is ON, preventing the field of view from becoming dark and suppressing overvoltage and overcurrent conditions.
[0091] 7(c) further includes an inverter including transistors M11 and M12 and resistor R14. That is, the first switch SW1 has a negative control logic, and is off when the input signal S1 is high and on when it is low. Therefore, the output S1 of the switching circuit 220 has a logic value opposite to that of the previous one.
[0092] When the high-side transistor MP of the output stage of the switching circuit 220 is turned on, the gate of the transistor M1 is charged via the parallel connection circuit of the resistors R11 and R13, and the gate voltage V G When the low-side transistor MN in the output stage of the switching circuit 220 is turned on, the gate of the transistor M1 is discharged via the resistor R11, and the gate voltage V G decreases.
[0093] When the control signal S1 is low, the transistor M11 is turned on, and the gate of the transistor M1 is charged through the resistor R11, and the gate voltage V G When the control signal S1 is high, the transistor M12 is turned on, discharging the gate of the transistor M1 through the resistors R11 and R14, and the gate voltage V G drops, turning off transistor M1.
[0094] Therefore, the impedance of the charge and discharge paths is different, so the gate voltage V G The rate at which the gate voltage V G 7(a) and 7(b), the speed at which the second semiconductor light source 102 is turned on is faster than the speed at which the second semiconductor light source 102 is turned off. This allows the first switch SW1 to be turned on in a short time and then turned off slowly. In other words, the brightness of the second semiconductor light source 102 can be gradually reduced (gradual extinguishing). The same applies to the third semiconductor light source 103.
[0095] In the configuration of FIG. 7(c), similarly to the configurations of FIGS. 7(a) and 7(b), the on times of the first switch SW1 and the second switch SW2 can be made to overlap, and it is possible to prevent the first semiconductor light source 101 to the third semiconductor light source 103 from being turned off simultaneously, which would result in a darkened field of view.
[0096] Furthermore, the configuration of FIG. 7(c) ensures that one of the first switch SW1 and the second switch SW2 is on, thereby suppressing an overvoltage state and also suppressing an overcurrent.
[0097] 8 is a perspective view of a light source module, which is an example of vehicle lamp 100. First semiconductor light source 101, second semiconductor light source 102, and third semiconductor light source 103 are mounted on heat sink 146 and aligned in one direction. The order of first semiconductor light source 101, second semiconductor light source 102, and third semiconductor light source 103 is not particularly limited. Alternatively, the three semiconductor light sources, first semiconductor light source 101 to third semiconductor light source 103, may be arranged at the vertices of a triangle.
[0098] Components of lighting circuit 200 and connector 144 are mounted on printed circuit board 142. Connector 144 includes three terminals, namely, input terminal VIN, switching terminal SEL, and ground terminal GND. Wiring on printed circuit board 142 is connected to electrodes of first semiconductor light source 101 to third semiconductor light source 103 via bonding wires. Note that printed circuit board 142 may be omitted, and components of lighting circuit 200 and connector 144 may be mounted directly on heat sink 146. In this embodiment, since heat generation by vehicular lamp 100 is reduced, a thin heat sink 146 can be employed, but a thick heat sink may be used instead of thin heat sink 146. Connector 144 is not limited to a mounted connector and may be another type, such as a card edge connector.
[0099] The lens module 150 includes a first lens 151, a second lens 152, and a third lens 153. The first lens 151 receives the beam emitted from the first semiconductor light source 101 and projects it onto a low beam diffusion region A1. The second lens 152 receives the beam emitted from the second semiconductor light source 102 and projects it onto a low beam concentration region A2. The third lens 153 receives the beam emitted from the third semiconductor light source 103 and projects it onto a high beam region A3.
[0100] Next, a modification related to the first embodiment will be described.
[0101] (Variation 1.1) 9 is a block diagram of a vehicle lamp 100A according to Modification 1.1. In this modification, the second constant current driver 230A is configured with a constant current source 232 that receives power supply from a switching terminal SEL. In the second lighting mode, the switching signal V SEL When goes high, the constant current source 232 turns on and the second drive current I OUT2 is supplied to the second semiconductor light source 102.
[0102] According to this modification, the same effects as those of the vehicle lamp 100 of FIG. 6 can be obtained.
[0103] (Variation 1.2) 10 is a block diagram of a vehicle lamp 100B according to Modification 1.2. In this modification, the second constant current driver 230B is configured with a constant current source 234 with an enable function that receives power supply from an input terminal VIN. The enable terminal EN of this constant current source 234 receives a switching signal V SEL is input, and in the second lighting mode, the switching signal V SEL When goes high, the constant current source 232 turns on and the second drive current I OUT2 is supplied to the second semiconductor light source 102.
[0104] According to this vehicular lamp 100B, in the second lighting mode, it is possible to prevent the area illuminated by the second semiconductor light source 102 from becoming significantly dark.
[0105] In the vehicular lamp 100B, since the switching terminal SEL has high impedance, almost no contact current flows during the second lighting mode. Therefore, in order to prevent oxidation of the connector terminal, it is necessary to add a separate configuration for flowing contact current. In other words, as shown in FIG. 6, a configuration in which the power supply voltage of the second constant current driver 230 is supplied from the switching terminal SEL, in other words, the second driving current I OUT2 is supplied from the switching terminal SEL, the operating current of the second constant current driver 230 continues to flow as a contact current during the second lighting mode, so no additional configuration is required to prevent oxidation of the connector terminals.
[0106] (Variation 1.3) The positions of second switch SW2 and third semiconductor light source 103 may be interchanged.
[0107] (Variation 1.4) Bipolar transistors and MOSFETs (Metal Oxide Semiconductor Field Effect Transistors) can be interchangeable. In this case, the base, collector, and emitter are replaced by gates. The terms "gate," "drain," and "source" can be replaced with "NPN type (N-channel)" and "PNP type (P-channel)."
[0108] (Variation 1.5) Fig. 11 is a block diagram of a vehicular lamp 100C according to Modification 1.5. In this modification, the arrangement of first semiconductor light source 101 to third semiconductor light source 103 is upside down compared to the previous arrangements. That is, while in Figs. 3, 9, and 10, first node n1 is on the high potential side and third node n3 is on the ground side, in Fig. 11, the first node n1 is on the ground side and third node n3 is on the high potential side. Other than that, it is the same as vehicular lamp 100A in Fig. 9.
[0109] In this modification, the current I generated by the second constant current driver 230A in the second lighting mode is OUT2 9 in that the current flows not only through second semiconductor light source 102 but also through first semiconductor light source 101.
[0110] (Variation 1.6) 12 is a block diagram of a vehicular lamp 100D according to Modification 1.6. In this modification, the first node n1 is arranged on the ground side and the third node n3 is arranged on the high potential side. Other than that, it is the same as the vehicular lamp 100B in FIG. 10.
[0111] In this modification, the current I generated by the second constant current driver 230A in the second lighting mode is OUT2 10 in that the current flows not only through second semiconductor light source 102 but also through first semiconductor light source 101.
[0112] (Variation 1.7) 13 is a block diagram of a vehicle lamp 100H according to Modification 1.7. In this modification, too, the first node n1 is arranged on the ground side, and the third node n3 is arranged on the high potential side.
[0113] The second constant current driver 230H is connected in parallel to the first switch SW1. In the first lighting mode, the switching circuit 220 turns on the first switch SW1 and turns off the second switch SW2, and in the second lighting mode, the switching circuit 220 turns off the first switch SW1 and turns on the second switch SW2.
[0114] The second constant current driver 230H is disabled when the switching terminal SEL is in the first state, and is enabled when the switching terminal SEL is in the second state, and supplies a second driving current I OUT2 Generate.
[0115] (Embodiment 2) 14 is a block diagram of a vehicle lamp 100E according to embodiment 2. The lighting circuit 200E includes a first constant current driver 210, a switching circuit 220, a second constant current driver 230E, and a second switch SW2.
[0116] The second constant current driver 230E is connected on the first path between the second semiconductor light source 102 and the third node n3. The second constant current driver 230E supplies a first driving current I OUT1 Lower second drive current I OUT2 The full-on state is a state in which the impedance is very small, and corresponds to the on state of the first switch SW1.
[0117] When the switching terminal SEL is in the first state, the switching circuit 220 puts the second constant current driver 230E in the full-on state and turns off the second switch SW2. When the switching terminal SEL is in the second state, the switching circuit 220 puts the second constant current driver 230E in the constant current state and turns on the second switch SW2.
[0118] According to the second embodiment, similarly to the first embodiment, in the first lighting mode, the first semiconductor light source 101 and the second semiconductor light source 102 are driven by the first driving current I OUT1 In the second lighting mode, the first semiconductor light source 101 and the third semiconductor light source 103 are driven by a first driving current I OUT1 The second semiconductor light source 102 can be made to emit light brightly by the second driving current I OUT2 This allows the light to be emitted darker than in the first lighting mode.
[0119] 15 is a circuit diagram showing a specific example of the configuration of the vehicular lamp 100E of FIG. 14. The second constant current driver 230E includes a first transistor M31, a first resistor R31, a feedback circuit 240, and a diode D31. The first transistor M31 and the first resistor R31 are connected in series between the second semiconductor light source 102 and the third node n3. The feedback circuit 240 is configured to reduce the voltage drop V across the first resistor R31. R31 is the target voltage V REF The feedback circuit 240 controls the voltage of the control terminal (gate) of the first transistor M31 so that the voltage approaches . The feedback circuit 240 includes an operational amplifier OA31 and a resistor R32. The cathode of the diode D31 is connected to the gate of the first transistor M31, and the inverted enable signal ENB is input to the anode of the diode D31.
[0120] The switching circuit 220 controls the second switch SW2 and the second constant current driver 230E according to the state of the switching terminal SEL. In this example, when the switching terminal SEL is in a first state (high impedance, low), the switching circuit 220 outputs a high inverted enable signal ENB and outputs a low signal to the gate of the second switch SW2. When the switching terminal SEL is in a second state (high), the switching circuit 220 outputs a low inverted enable signal ENB and outputs a high signal to the gate of the second switch SW2. The switching circuit 220 includes an inverter 222.
[0121] When the switching terminal SEL is in the first state, a high inverted enable signal EN is input to the second constant current driver 230E. When the inverted enable signal EN becomes high, the gate of the first transistor M31 is fixed at a high level, and the feedback circuit 240 is disabled. At this time, the first transistor M31, i.e., the second constant current driver 230E, is in a full-on state. Also, the second switch SW2 is off. Therefore, the first lighting mode is selected.
[0122] When the switching terminal SEL is in the second state, a low inverted enable signal EN is input to the second constant current driver 230E. At this time, the feedback circuit 240 becomes active, and the second constant current driver 230E is in the constant current state. In the constant current state, the second driving current I OU T2 I OUT2 =V REF The current is stabilized to / R31. At this time, the second switch SW2 is on, so the second lighting mode is selected.
[0123] A modification related to the second embodiment will be described.
[0124] (Variation 2.1) Fig. 16 is a circuit diagram of a vehicular lamp 100G according to Modification 2.1. This vehicular lamp 100G can be understood as having a configuration in which the second constant current driver 230E in Fig. 14 is divided into a second constant current driver 230G and a first switch SW1.
[0125] (Variation 2.2) The first constant current driver 210 generates a first driving current I in the second lighting mode that is larger than that in the first lighting mode. OUT1 may be increased.
[0126] (Variation 2.3) In the second embodiment, first to third semiconductor light sources 101 to 103 may also be arranged upside down, as described in Modification 1.5 (FIG. 9) and Modification 1.6 (FIG. 10) of the first embodiment.
[0127] (Embodiment 3) 17 is a block diagram of a vehicular lamp 100F according to embodiment 3. When the switching terminal SEL is in a first state (low, high impedance), the switch control circuit 260 turns on the first switch SW1 and turns off the second switch SW2. When the switching terminal SEL is in a second state (high), the switch control circuit 260 switches on the first switch SW1 in response to a pulse signal Spwm having a first duty cycle d1 lower than 50%, and switches on the second switch SW2 in response to a complementary signal SpwmB of the pulse signal Spwm.
[0128] The switch control circuit 260 includes a pulse width modulator 262 and an inverter 264. The pulse width modulator 262 outputs a high signal when the switching terminal SEL is in a first state (low, high impedance), and outputs a pulse signal Spwm when the switching terminal SEL is in a second state (high). The output of the pulse width modulator 262 is supplied to the first switch SW1, and is also inverted by the inverter 264 and supplied to the second switch SW2.
[0129] Fig. 18 is a circuit diagram showing a specific configuration example of the vehicle lamp 100F of Fig. 17. The first switch SW1 and the second switch SW2 are N-channel transistors M41, M42.
[0130] The pulse width modulator 262 includes a voltage generator 266, a comparator COMP1, and an oscillator 268. The voltage generator 266 generates a voltage Vd that is 0 V in a first state and has a predetermined level in a second state. The oscillator 268 generates a periodic signal Vd that is a ramp wave or a triangular wave. RAMP The comparator COMP1 converts the voltage Vd into a periodic signal V RAMP Compare with.
[0131] In the first state, the output of the comparator COMP1 is fixed at a high level, and in the second state, the output of the comparator COMP1 is a pulse signal Spwm having a duty cycle d1 that corresponds to the voltage Vd.
[0132] The voltage generator 266 includes resistors R41 to R43 and transistors Q41 and Q42. When the switching terminal SEL is in a first state (low, high impedance), the transistor Q42 is off and the transistor Q41 is on. As a result, the voltage Vd becomes 0 V. When the switching terminal SEL is in a second state (high), the transistor Q42 is on and the transistor Q41 is off. As a result, the voltage Vd becomes the power supply voltage Vcc divided by the resistors R41 and R42.
[0133] The operation of the vehicular lamp 100F of Figures 17 and 18 will be described. When the switching terminal SEL is in the first state (low), the first switch SW1 is turned on and the second switch SW2 is turned off. Therefore, the first drive current I generated by the first constant current driver 210 is OUT1 flows to first semiconductor light source 101 and second semiconductor light source 102, resulting in a first lighting mode.
[0134] When the switching terminal SEL is in the first state (low), the switch control circuit 260 generates a pulse signal Spwm having a duty cycle d1 smaller than 50% to drive the transistor M41. The transistor M42 is driven by an inverted signal of the pulse signal Spwm. The first driving current I OUT1 After flowing to first semiconductor light source 101, it flows to second semiconductor light source 102 for Tp×d1, and then flows to third semiconductor light source 103 for Tp×(1-d1). Tp is the period of pulse signal Spwm. Since d1<50%, second semiconductor light source 102 lights up relatively dimly, and third semiconductor light source 103 lights up relatively brightly. This realizes the second lighting mode.
[0135] A modification related to the third embodiment will be described.
[0136] (Variation 3.1) The first constant current driver 210 generates a first driving current I in the second lighting mode that is larger than that in the first lighting mode. OUT1 may be increased.
[0137] (Variation 3.2) In the third embodiment, first to third semiconductor light sources 101 to 103 may also be arranged upside down, as described in Modification 1.5 (FIG. 9) and Modification 1.6 (FIG. 10) of the first embodiment.
[0138] (Embodiment 4) 19 is a circuit diagram of a vehicle lamp 400 according to embodiment 4. The vehicle lamp 400 is a lamp having two different functions, and has an interface similar to that of a bi-halogen lamp.
[0139] The vehicle lamp 400 has a main input terminal VIN, a switching terminal SEL, and a ground terminal GND. The ground terminal GND is grounded. The input terminal VIN is supplied with a voltage V from the battery 2 via a switch 4 on the vehicle side. BAT On the vehicle side, when the driver turns on the headlamp switch, switch 4 turns on and the power supply voltage V IN The power supply voltage V IN serves both as a power supply voltage for the vehicle lamp 400 and as a lighting instruction.
[0140] The electrical state of the switching terminal SEL of the vehicular lamp 400 is switched between a first state and a second state depending on the lighting mode of the vehicular lamp 400. In this embodiment, the first state is a no-input (high impedance) state, and the second state is a state in which a non-zero voltage is input. Specifically, the switching terminal SEL is connected to the battery 2 via a switch 6 on the vehicle side. On the vehicle side, when the driver selects low beam (first lighting mode), the switch 6 is off, and the switching terminal SEL is in a no-input state (high impedance). When the driver selects high beam (second lighting mode), the switch 6 is turned on, and a high-level (battery voltage) switching voltage V is applied to the switching terminal SEL. SEL is supplied.
[0141] Vehicle lamp 400 constitutes a lamp module that can switch between high beam and low beam. Vehicle lamp 400 includes first semiconductor light source 101, second semiconductor light source 102, third semiconductor light source 103, and lighting circuit 500. First semiconductor light source 101, second semiconductor light source 102, and third semiconductor light source 103 are, for example, white LEDs (light emitting diodes).
[0142] First semiconductor light source 101 to third semiconductor light source 103 are connected so that the current flowing through first semiconductor light source 101 is the sum of the currents flowing through second semiconductor light source 102 and third semiconductor light source 103. Specifically, first semiconductor light source 101 is connected between a first node n1 and a second node n2. Second semiconductor light source 102 is connected between the second node n2 and a third node n3 so as to form a first path. Third semiconductor light source 103 is connected between the second node n2 and the third node n3 so as to form a second path that is parallel to the first path.
[0143] The lighting circuit 500 drives the first to third semiconductor light sources 101 to 103. In a first lighting mode (low beam), the lighting circuit 500 turns on the first semiconductor light source 101 and the second semiconductor light source 102 and turns off the third semiconductor light source 103. In a second lighting mode, the lighting circuit 500 turns on the first semiconductor light source 101 and the third semiconductor light source 103 and turns on the second semiconductor light source 102 at a brightness dimmer than in the first lighting mode. It is preferable that the brightness of the first semiconductor light source 101 hardly changes between the first lighting mode and the second lighting mode.
[0144] The lighting circuit 500 includes a first constant current driver 210, a switching circuit 220, a first switch SW1, a second switch SW2, and a bypass circuit 270.
[0145] First constant current driver 210 has an output node OUT connected to the anode (first node n1) of first semiconductor light source 101. First constant current driver 210 receives power supply voltage V IN is supplied, and the first drive current I OUT1The first constant current driver 210 may be a constant current output step-down converter, a constant current output linear regulator, or other constant current circuits.
[0146] In this embodiment, the third node n3, i.e., the cathode of second semiconductor light source 102 and the cathode of third semiconductor light source 103, is grounded. The first switch SW1 is provided between the cathode (second node n2) of first semiconductor light source 101 and the anode of second semiconductor light source 102. The second switch SW2 is provided between the cathode (second node n2) of first semiconductor light source 101 and the anode of third semiconductor light source 103.
[0147] When the switching terminal SEL is in the first state (high impedance, no input state), the switching circuit 220 turns on the first switch SW1 and turns off the second switch SW2. When the switching terminal SEL is in the second state, that is, when the switching voltage V SEL When this voltage is supplied, the first switch SW1 is turned off and the second switch SW2 is turned on.
[0148] In the first lighting mode or the second lighting mode, in order to light up the two semiconductor light sources connected in series between the first node n1 and the third node n3, a voltage greater than Vf×2 must be applied between the first node n1 and the third node n3. OUT is V OUT(TH) = 2 × Vf, where Vf is the forward voltage of the semiconductor light source. If the first constant current driver 210 is configured as a linear regulator or a step-down converter, its output voltage V OUT is the power supply voltage V IN Since it is lower than the power supply voltage V IN There is a threshold voltage V IN(TH) When the voltage drops below OUT is the threshold voltage V OUT(TH) , and the semiconductor light source is turned off. To solve this problem, a bypass circuit 270 is provided.
[0149] The bypass circuit 270 includes a bypass switch SW3 and a low-voltage detection circuit 280. The bypass switch SW3 is provided between the second node n2 and the third node n3. The low-voltage detection circuit 280 detects a power supply voltage V IN is a predetermined threshold V IN(TH) When the power supply voltage V IN is the threshold V IN(TH) In the higher state, the bypass switch SW3 is turned on.
[0150] Preferably, the threshold voltage V IN(TH) In this case, the low voltage detection circuit 280 has two threshold voltages V THL ,V THH (However, V THL <V THH The low voltage detection circuit 280 detects the power supply voltage V IN the first threshold voltage V THL and the second threshold voltage V THH Compared to V IN <V THL When it detects this, it turns on the bypass switch SW3 and V IN >V THH When this is detected, the bypass switch SW3 is turned off.
[0151] The above is the configuration of the vehicle lamp 400. Next, the operation thereof will be described.
[0152] Normal voltage condition Figure 20(a) and (b) show the normal voltage state (V IN >V THH ) is an equivalent circuit diagram of the first lighting mode and the second lighting mode. IN >V THH When this occurs, the bypass switch SW3 is off.
[0153] 20(a), in the first lighting mode, the first driving current I generated by the first constant current driver 210 is OUT1flows through first semiconductor light source 101, first switch SW1, and second semiconductor light source 102. Therefore, first semiconductor light source 101 and second semiconductor light source 102 are turned on.
[0154] 20(b), in the second lighting mode, the first driving current I generated by the first constant current driver 210 OUT1 flows through first semiconductor light source 101, second switch SW2, and third semiconductor light source 103. Therefore, first semiconductor light source 101 and third semiconductor light source 103 are turned on.
[0155] Low voltage condition Figure 21(a) and (b) show the low voltage state (V IN <V THL ) is an equivalent circuit diagram of the first lighting mode and the second lighting mode. IN <V THL When this occurs, the bypass switch SW3 is on.
[0156] 21(a), in the first lighting mode, the first driving current I generated by the first constant current driver 210 is OUT1 flows to first semiconductor light source 101 and bypass switch SW3. Therefore, only first semiconductor light source 101 is turned on.
[0157] 21(b), in the second lighting mode, the first driving current I generated by the first constant current driver 210 OUT1 flows to first semiconductor light source 101 and bypass switch SW3. Therefore, only first semiconductor light source 101 is turned on.
[0158] The operation of the vehicle lamp 400 has been described above.
[0159] According to this vehicular lamp 400, by turning on the bypass switch SW3 in a low voltage state, it is possible to maintain the light emission of the first semiconductor light source 101 regardless of the lighting mode.
[0160] It is preferable that first semiconductor light source 101 is a light source that illuminates low beam diffusion area A1 in Fig. 2. This makes it possible to keep at least low beam diffusion area A1 bright in both high beam and low beam modes under low voltage conditions, thereby ensuring a minimum field of view.
[0161] As a comparative technology, a bypass switch SW3 is provided in parallel with the first semiconductor light source 101, in other words, between the first node n1 and the second node n2. In the comparative technology, in a low-voltage state, in the first lighting mode (low beam mode), only the low-beam concentration area A2 is illuminated, and in the second lighting mode (high beam mode), only the high-beam area A3 is illuminated. In the comparative technology, in the second lighting mode in a low-voltage state, only distant objects are illuminated, and the illumination range of the low-beam diffusion area A1 closer to the vehicle is darkened. In contrast, in the embodiment, a more preferable light distribution can be formed in a low-voltage state compared to the comparative technology.
[0162] Fig. 22 is a circuit diagram showing a specific configuration example of the vehicular lamp 400 of Fig. 19. The first switch SW1 includes a first transistor M1, which is an N-channel MOSFET, and resistors R11 and R12. Similarly, the second switch SW2 includes a second transistor M2, which is a MOSFET, and resistors R21 and R22. The first switch SW1 and the second switch SW2 are turned on by inputting a high level to their gates, and turned off by inputting a low level to their gates. Note that the configuration of the switches SW1 and SW2 is not limited to this.
[0163] When the switching terminal SEL is in the first state (no input, low level, high impedance), the switching circuit 220 sets the control terminal of the first switch SW1 to high level and the control terminal of the second switch SW2 to low level. SEL =V BAT )), the control terminal of the first switch SW1 is set to low level, and the control terminal of the second switch SW2 is set to high level.
[0164] That is, the switching circuit 220 supplies a first output S1 having a logical value complementary to the signal at the switching terminal SEL to the first switch SW1, and supplies a second output S2 having the same logical value as the signal at the switching terminal SEL to the second switch SW2.
[0165] The switching circuit 220 includes transistors Q11 to Q14 and a resistor R4. When the switching terminal SEL is low or at high impedance, the transistor Q11 is off, the transistor Q12 is off, and the transistor Q14 is on, and a high signal S1 is input to the control terminal of the first switch SW1. At this time, the transistor Q13 is off, so the control terminal of the second switch SW2 is low.
[0166] Conversely, when the switching terminal SEL is high, the transistor Q11 is on, the transistor Q12 is on, and the transistor Q14 is off, so the control terminal of the first switch SW1 is low. At this time, the transistor Q13 is on, so the control terminal of the second switch SW2 is high.
[0167] Those skilled in the art will understand that the configurations of the first switch SW1, the second switch SW2, the switching circuit 220, and the second constant current driver 230 are not limited to those shown in FIG.
[0168] The bypass switch SW3 includes a third transistor M3 which is an N-channel MOSFET. The low voltage detection circuit 280 is a hysteresis comparator, and includes transistors Q51 and Q52, resistors R51 to R53, and a Zener diode ZD51.
[0169] Consider a state in which transistor Q52 is off and the output of low voltage detection circuit 280 is H (high). At this time, transistor Q51 is on, and the voltage Vx at the connection node between resistors R51 and R52 is Vx=(V IN -V ZD )×R52 / (R51+R52) When this voltage Vx is lower than the threshold voltage (0.6 to 0.7V) of transistor Q52, transistor Q52 remains off, and the output of low voltage detection circuit 280 is high.
[0170] When the voltage Vx exceeds the threshold voltage (0.6 to 0.7 V) of the transistor Q52, the transistor Q52 turns on, and the output of the low voltage detection circuit 280 goes low.
[0171] Consider a state in which transistor Q52 is on and the output of low voltage detection circuit 280 is L (low). At this time, transistor Q51 is off, and the voltage Vx at the connection node between resistors R51 and R52 is Vx=(V IN -V ZD ) Here, the base resistance of transistor Q52 is assumed to be sufficiently high.
[0172] When this voltage Vx is higher than the threshold voltage (0.6 to 0.7V) of transistor Q52, transistor Q52 remains on, and the output of low voltage detection circuit 280 is low.
[0173] When the voltage Vx becomes lower than the threshold voltage (0.6 to 0.7 V) of the transistor Q52, the transistor Q52 turns off, and the output of the low voltage detection circuit 280 goes high.
[0174] The configuration of the low voltage detection circuit 280 is not limited to that shown in FIG. 22, and may be configured with a hysteresis comparator using an operational amplifier.
[0175] (Embodiment 5) 23 is a circuit diagram of a vehicular lamp 400K according to embodiment 5. The vehicular lamp 400K of FIG. 23 includes a second constant current driver 230 in addition to the components of the vehicular lamp 400 of FIG.
[0176] The second constant current driver 230 is connected to the switching terminal SEL, and supplies a switching voltage V SELis supplied to the anode of the second semiconductor light source 102, and a first driving current I OUT1 Lower second drive current I OUT2 The second drive current I OUT2 The second driving current I may be set to a value such that, when the vehicle lamp 400 is viewed from the outside in the second state, the area including the second semiconductor light source 102 is visually recognized as being lit. OUT2 is preferably set to be greater than 10 mA.
[0177] The above is the configuration of the vehicle lamp 400. Next, the operation thereof will be described.
[0178] Figure 24(a) and (b) show the normal voltage state (V IN >V THH ) is an equivalent circuit diagram of the first lighting mode and the second lighting mode. IN >V THH When this occurs, the bypass switch SW3 is off.
[0179] 24(a), in the first lighting mode, the first driving current I generated by the first constant current driver 210 is OUT1 flows through first semiconductor light source 101, first switch SW1, and second semiconductor light source 102. Therefore, first semiconductor light source 101 and second semiconductor light source 102 are turned on.
[0180] 24(b), in the second lighting mode, the first driving current I generated by the first constant current driver 210 OUT1 flows through first semiconductor light source 101, second switch SW2, and third semiconductor light source 103. Therefore, first semiconductor light source 101 and third semiconductor light source 103 are turned on.
[0181] The second semiconductor light source 102 is supplied with a second driving current I generated by a second constant current driver 230. OUT2 flows, the light remains on, but the light intensity is lower than in the first lighting mode.
[0182] The operation of the vehicle lamp 400 has been described above.
[0183] According to the vehicle lamp 400, when switching from the first lighting mode (low beam) to the second lighting mode (high beam), the third semiconductor light source 103 is additionally turned on while the second semiconductor light source 102 remains lit. Therefore, when the vehicle lamp 400 is viewed from the surroundings, it is possible to prevent a previously bright area from suddenly becoming dark, thereby improving the aesthetic appearance.
[0184] Furthermore, according to the vehicle lamp 400, the second semiconductor light source remains lit even in the second lighting mode, so that the illuminance of the range illuminated by the second semiconductor light source 102 on the virtual vertical screen can be prevented from changing significantly.
[0185] For example, suppose the optical system of vehicle lamp 400 is designed so that the emitted light from first semiconductor light source 101, second semiconductor light source 102, and third semiconductor light source 103 illuminates areas A1, A2, and A3 in Fig. 2. That is, the emitted light from first semiconductor light source 101 forms a light distribution pattern A1 whose upper edge has a horizontal cutoff line, the emitted light from second semiconductor light source 102 forms a light distribution pattern A2 whose upper edge has a diagonal cutoff line, and the emitted light from third semiconductor light source 103 forms a light distribution pattern for high beam.
[0186] In this case, if the second semiconductor light source 102 is turned off in the second lighting mode, the area A2 will be dark. In particular, the range L2 will be unilluminated by any light source. In contrast, in this embodiment, the second semiconductor light source 102 is kept lit in the second lighting mode, so that the area A2 is irradiated with light, thereby suppressing unnatural changes in the light distribution.
[0187] In the second lighting mode, the driving current I OUT2 is the driving current I that flows in the first lighting mode. OUT1Since the amount of heat generated (power consumption) is less than the amount of heat generated in the first lighting mode, there is only a slight increase in the amount of heat generated (power consumption) caused by maintaining the lighting of second semiconductor light source 102. Therefore, when second semiconductor light source 102 is turned on in the second lighting mode, no additional heat dissipation measures are required, or only a slight amount is required, and an increase in costs can also be suppressed.
[0188] Furthermore, the second drive current I OUT2 By making the amount of current greater than 10 mA, a contact current exceeding 10 mA, which is necessary to prevent oxidation of the connector terminal, can be passed through the switching terminal SEL. OUT2 This can be used as a contact current to prevent oxidation, so that unnecessary increases in power consumption can be suppressed.
[0189] 25 is a circuit diagram showing a specific example of the configuration of the vehicle lamp 400K of FIG. 23. The second constant current driver 230 includes a current limiting resistor R3 and a diode D3. When the forward voltage of the diode D3 is Vf3 and the forward voltage of the second semiconductor light source 102 is Vf2, the second drive current I OUT2 is expressed by the following formula: I OUT2 =(V SEL -Vf2-Vf3) / R3=(V BAT -Vf2-Vf3) / R3
[0190] In other words, the second drive current I OUT2 Furthermore, by providing the diode D3, the amount of the first driving current I generated by the first constant current driver 210 can be determined. OUT1 However, this can prevent the current from flowing into the switching terminal SEL or the switching circuit 220. If the input impedance of the switching circuit 220 is sufficiently high, the diode D3 may be omitted.
[0191] Figures 26(a) to 26(c) are diagrams showing modified examples of the first switch SW1. Figures 26(a) to 26(c) show the output stage of the switching circuit 220. The same applies to the second switch SW2.
[0192] 26(a), the switching circuit 220 has an open-drain / open-collector output stage, similar to that of FIG. 22 or 25, and the control signal S1 can be in two states: high level (Hi) or high impedance (Hi-Z). When the control signal S1 is in high impedance, the output node of the switching circuit 220 is pulled down to low level by resistors R11 and R12, and the transistor M1 is turned off.
[0193] In this modification, the first switch SW1 further includes a capacitor C1, one end of which is connected to the drain (or collector) of the transistor M1, and the other end of which is connected to the control electrode (i.e., gate or base) of the switching transistor M1.
[0194] The turn-on operation of switch SW1 is explained. Gate voltage V G is the gate-source threshold voltage V of transistor M1. GS(th) When the voltage rises to around V, the Miller effect caused by capacitor C1 G This allows the switch SW1 to be turned on slowly.
[0195] The same applies to turn-off, with the gate voltage V G is the gate-source threshold voltage V of transistor M1. GS(th) When the voltage drops to around V, the Miller effect caused by capacitor C1 G This allows the switch SW1 to be turned off gradually.
[0196] By adding the capacitor C1 to the first switch SW1 (and the second switch SW2), the turn-on and turn-off of the switch become gentle. As a result, the brightness of the second semiconductor light source 102 and the third semiconductor light source 103 can be gently changed, and gradual lighting and gradual extinguishing are possible. Also, it is possible to prevent the potential of the anode or cathode of each of the first semiconductor light source 101 to the third semiconductor light source 103 from changing abruptly.
[0197] Also, in FIG. 26(a), by making the resistance R11 lower than the resistance R12, the turn-on time of the transistor can be made relatively shorter than the turn-off time. As a result, the on-times of the first switch SW1 and the second switch SW2 can be overlapped. If there is a section where both the first switch SW1 and the second switch SW2 are off, all of the first semiconductor light source 101, the second semiconductor light source 102, and the third semiconductor light source 103 will turn off, and the driver's field of vision will become dark. In contrast, in the configuration of FIG. 26(a), by setting R11 < R12, it is guaranteed that one of the first switch SW1 and the second switch SW2 is on, so it is possible to prevent the field of vision from becoming dark.
[0198] Furthermore, if there is a section where both the first switch SW1 and the second switch SW2 are off, the first constant current driver 210 will be in a no-load state, so the output voltage V OUT will rise and enter an overvoltage state. When the first switch SW1 or the second switch SW2 turns on in a state where the output voltage V OUT has risen, an overcurrent will flow through the LED. In contrast, in the configuration of FIG. 26(a), by setting R11 < R12, it is guaranteed that one of the first switch SW1 and the second switch SW2 is on, so the overvoltage state can be suppressed and the overcurrent can also be suppressed.
[0199] 26(b), the switching circuit 220 has a push-pull output stage including a high-side transistor MP and a low-side transistor MN, and the control signal S1 has two states: high level (Hi) and low level (Lo). In this modification, the first switch SW1 further includes a resistor R13 and a diode D11.
[0200] When the high-side transistor MP of the output stage of the switching circuit 220 is turned on, the gate of the transistor M1 is charged via the parallel connection circuit of the resistors R11 and R13, and the gate voltage V G When the low-side transistor MN in the output stage of the switching circuit 220 is turned on, the gate of the transistor M1 is discharged via the resistor R11, and the gate voltage V G decreases.
[0201] Therefore, the impedance of the charge and discharge paths is different, so the gate voltage V G The rate at which the gate voltage V G The rate at which the voltage Vcc drops is faster than the rate at which the voltage Vcc drops. This allows first switch SW1 to be turned on in a short time and turned off slowly. In other words, the luminance of second semiconductor light source 102 can be gradually reduced (gradual extinguishing). The same applies to third semiconductor light source 103.
[0202] 26(b), as in the case of Fig. 26(a), the on-times of the first switch SW1 and the second switch SW2 can be made to overlap, which ensures that either the first switch SW1 or the second switch SW2 is on, preventing the field of view from becoming dark and also suppressing overvoltage and overcurrent conditions.
[0203] 26(c) further includes an inverter including transistors M11 and M12 and a resistor R14. That is, the first switch SW1 has a negative control logic, and is off when the input signal S1 is high and on when it is low. Therefore, the output S1 of the switching circuit 220 has a logic value opposite to that of the previous one.
[0204] When the high-side transistor MP of the output stage of the switching circuit 220 is turned on, the gate of the transistor M1 is charged via the parallel connection circuit of the resistors R11 and R13, and the gate voltage V G When the low-side transistor MN in the output stage of the switching circuit 220 is turned on, the gate of the transistor M1 is discharged via the resistor R11, and the gate voltage V G decreases.
[0205] When the control signal S1 is low, the transistor M11 is turned on, and the gate of the transistor M1 is charged through the resistor R11, and the gate voltage V G When the control signal S1 is high, the transistor M12 is turned on, discharging the gate of the transistor M1 through the resistors R11 and R14, and the gate voltage V G drops, turning off transistor M1.
[0206] Therefore, the impedance of the charge and discharge paths is different, so the gate voltage V G The rate at which the gate voltage V G 26(a) and 26(b), the speed at which the second semiconductor light source 102 decreases is faster than the speed at which the second semiconductor light source 102 decreases. This allows the first switch SW1 to be turned on in a short time and then turned off slowly, as in FIGS. 26(a) and 26(b). In other words, the luminance of the second semiconductor light source 102 can be gradually reduced (gradual extinguishing). The same applies to the third semiconductor light source 103.
[0207] In the configuration of Figure 26(c), similar to the configurations of Figures 26(a) and (b), the on times of the first switch SW1 and the second switch SW2 can be made to overlap, which prevents the first semiconductor light source 101 to the third semiconductor light source 103 from being turned off simultaneously, thereby preventing the field of view from becoming dark.
[0208] Furthermore, with the configuration of FIG. 26(c), it is guaranteed that one of the first switch SW1 and the second switch SW2 is on, so that an overvoltage state and an overcurrent can be suppressed.
[0209] 27 is a perspective view of a light source module, which is an example of vehicle lamp 400. First semiconductor light source 101, second semiconductor light source 102, and third semiconductor light source 103 are mounted on heat sink 146 and aligned in one direction. The order of first semiconductor light source 101, second semiconductor light source 102, and third semiconductor light source 103 is not particularly limited. Alternatively, the three semiconductor light sources, first semiconductor light source 101 to third semiconductor light source 103, may be arranged at the vertices of a triangle.
[0210] Components of lighting circuit 500 and connector 144 are mounted on printed circuit board 142. Connector 144 includes three terminals, namely, input terminal VIN, switching terminal SEL, and ground terminal GND. Wiring on printed circuit board 142 is connected to electrodes of first semiconductor light source 101 to third semiconductor light source 103 via bonding wires. Note that printed circuit board 142 may be omitted, and components of lighting circuit 500 and connector 144 may be mounted directly on heat sink 146. In this embodiment, since heat generation from vehicular lamp 400 is reduced, a thin heat sink 146 can be employed, but a thick heat sink may be used instead of thin heat sink 146. Connector 144 is not limited to the mounted connector, and may be another type, such as a card edge connector.
[0211] The lens module 150 includes a first lens 151, a second lens 152, and a third lens 153. The first lens 151 receives the beam emitted from the first semiconductor light source 101 and projects it onto a low beam diffusion region A1. The second lens 152 receives the beam emitted from the second semiconductor light source 102 and projects it onto a low beam concentration region A2. The third lens 153 receives the beam emitted from the third semiconductor light source 103 and projects it onto a high beam region A3.
[0212] Next, a modification related to the fifth embodiment will be described.
[0213] (Variation 5.1) 28 is a block diagram of a vehicle lamp 400A according to Modification 5.1. In this modification, the second constant current driver 230A is configured with a constant current source 232 that receives power supply from a switching terminal SEL. In the second lighting mode, the switching signal V SEL When goes high, the constant current source 232 turns on and the second drive current I OUT2 is supplied to the second semiconductor light source 102.
[0214] According to this modification, the same effects as those of the vehicle lamp 400 in FIG. 23 can be obtained.
[0215] (Variation 5.2) 29 is a block diagram of a vehicle lamp 400B according to Modification 5.2. In this modification, the second constant current driver 230B is configured with a constant current source 234 with an enable function that receives power supply from an input terminal VIN. The enable terminal EN of this constant current source 234 receives a switching signal V SEL is input, and in the second lighting mode, the switching signal V SEL When goes high, the constant current source 232 turns on and the second drive current I OUT2 is supplied to the second semiconductor light source 102.
[0216] According to this vehicular lamp 400B, in the second lighting mode, it is possible to prevent the area illuminated by the second semiconductor light source 102 from becoming significantly dark.
[0217] In the vehicular lamp 400B, since the switching terminal SEL has high impedance, almost no contact current flows during the second lighting mode. Therefore, in order to prevent oxidation of the connector terminal, it is necessary to add a separate configuration for flowing contact current. In other words, as shown in FIG. 23, a configuration in which the power supply voltage of the second constant current driver 230 is supplied from the switching terminal SEL, in other words, the second driving current I OUT2 is supplied from the switching terminal SEL, the operating current of the second constant current driver 230 continues to flow as a contact current during the second lighting mode, so no additional configuration is required to prevent oxidation of the connector terminals.
[0218] (Variation 5.3) The positions of second switch SW2 and third semiconductor light source 103 may be interchanged.
[0219] (Variation 5.4) Bipolar transistors and MOSFETs (Metal Oxide Semiconductor Field Effect Transistors) can be interchangeable. In this case, the base, collector, and emitter are replaced by gates. The terms "gate," "drain," and "source" can be replaced with "NPN type (N-channel)" and "PNP type (P-channel)."
[0220] (Variation 5.5) Fig. 30 is a block diagram of a vehicular lamp 400C according to modification 5.5. In this modification, the arrangement of first semiconductor light source 101 to third semiconductor light source 103 is upside down compared to the previous examples. That is, while in Figs. 19, 23, 28, and 29, first node n1 is on the high potential side and third node n3 is on the ground side, in Fig. 30, first node n1 is on the ground side and third node n3 is on the high potential side. Other than that, it is the same as vehicular lamp 400A in Fig. 28.
[0221] In this modification, the current I generated by the second constant current driver 230A in the second lighting mode is OUT2 28 in that the current flows not only through second semiconductor light source 102 but also through first semiconductor light source 101.
[0222] (Variation 5.6) 31 is a block diagram of a vehicular lamp 400D according to Modification 5.6. In this modification, the first node n1 is arranged on the ground side and the third node n3 is arranged on the high potential side. Other than that, it is the same as the vehicular lamp 400B in FIG. 29.
[0223] In this modification, the current I generated by the second constant current driver 230A in the second lighting mode is OUT2 29 in that the current flows not only through second semiconductor light source 102 but also through first semiconductor light source 101.
[0224] (Variation 5.7) 32 is a block diagram of a vehicle lamp 400H according to Modification 5.7. In this modification as well, the first node n1 is arranged on the ground side, and the third node n3 is arranged on the high potential side.
[0225] The second constant current driver 230H is connected in parallel to the first switch SW1. In the first lighting mode, the switching circuit 220 turns on the first switch SW1 and turns off the second switch SW2, and in the second lighting mode, the switching circuit 220 turns off the first switch SW1 and turns on the second switch SW2.
[0226] The second constant current driver 230H is disabled when the switching terminal SEL is in the first state, and is enabled when the switching terminal SEL is in the second state, and supplies a second driving current I OUT2 Generate.
[0227] (Embodiment 6) 33 is a block diagram of a vehicular lamp 400E according to embodiment 6. The lighting circuit 500E includes a first constant current driver 210, a switching circuit 220, a second constant current driver 230E, and a second switch SW2.
[0228] The second constant current driver 230E is connected on the first path between the second semiconductor light source 102 and the third node n3. The second constant current driver 230E supplies a first driving current I OUT1 Lower second drive current I OUT2 The full-on state is a state in which the impedance is very small, and corresponds to the on state of the first switch SW1.
[0229] When the switching terminal SEL is in the first state, the switching circuit 220 puts the second constant current driver 230E in the full-on state and turns off the second switch SW2. When the switching terminal SEL is in the second state, the switching circuit 220 puts the second constant current driver 230E in the constant current state and turns on the second switch SW2.
[0230] According to the sixth embodiment, similarly to the fifth embodiment, in the first lighting mode, the first semiconductor light source 101 and the second semiconductor light source 102 are driven by the first driving current I OUT1 In the second lighting mode, the first semiconductor light source 101 and the third semiconductor light source 103 are driven by a first driving current I OUT1 The second semiconductor light source 102 can be made to emit light brightly by the second driving current I OUT2 This allows the light to be emitted darker than in the first lighting mode.
[0231] Fig. 34 is a circuit diagram showing a specific example of the configuration of the vehicular lamp 400E of Fig. 33. The second constant current driver 230E includes a first transistor M31, a first resistor R31, a feedback circuit 240, and a diode D31. The first transistor M31 and the first resistor R31 are connected in series between the second semiconductor light source 102 and the third node n3. The feedback circuit 240 is configured to reduce the voltage drop V of the first resistor R31. R31 is the target voltage V REF The feedback circuit 240 controls the voltage of the control terminal (gate) of the first transistor M31 so that the voltage approaches . The feedback circuit 240 includes an operational amplifier OA31 and a resistor R32. The cathode of the diode D31 is connected to the gate of the first transistor M31, and the inverted enable signal ENB is input to the anode of the diode D31.
[0232] The switching circuit 220 controls the second switch SW2 and the second constant current driver 230E according to the state of the switching terminal SEL. In this example, when the switching terminal SEL is in a first state (high impedance, low), the switching circuit 220 outputs a high inverted enable signal ENB and outputs a low signal to the gate of the second switch SW2. When the switching terminal SEL is in a second state (high), the switching circuit 220 outputs a low inverted enable signal ENB and outputs a high signal to the gate of the second switch SW2. The switching circuit 220 includes an inverter 222.
[0233] When the switching terminal SEL is in the first state, a high inverted enable signal EN is input to the second constant current driver 230E. When the inverted enable signal EN becomes high, the gate of the first transistor M31 is fixed at a high level, and the feedback circuit 240 is disabled. At this time, the first transistor M31, i.e., the second constant current driver 230E, is in a full-on state. Also, the second switch SW2 is off. Therefore, the first lighting mode is selected.
[0234] When the switching terminal SEL is in the second state, a low inverted enable signal EN is input to the second constant current driver 230E. At this time, the feedback circuit 240 becomes active, and the second constant current driver 230E is in the constant current state. In the constant current state, the second driving current I OU T2 I OUT2 =V REF The current is stabilized to / R31. At this time, the second switch SW2 is on, so the second lighting mode is selected.
[0235] A modification related to the sixth embodiment will be described.
[0236] (Variation 6.1) Fig. 35 is a circuit diagram of a vehicular lamp 400G according to Modification 6.1. This vehicular lamp 400G can be understood as having a configuration in which the second constant current driver 230E in Fig. 33 is divided into a second constant current driver 230G and a first switch SW1.
[0237] (Variation 6.2) The first constant current driver 210 generates a first driving current I in the second lighting mode that is larger than that in the first lighting mode. OUT1 may be increased.
[0238] (Variation 6.3) In the sixth embodiment, first to third semiconductor light sources 101 to 103 may also be arranged upside down, as described in Modification 5.5 (FIG. 28) and Modification 5.6 (FIG. 29) of the fifth embodiment.
[0239] (Embodiment 7) 36 is a block diagram of a vehicular lamp 400F according to embodiment 7. When the switching terminal SEL is in a first state (low, high impedance), the switch control circuit 260 turns on the first switch SW1 and turns off the second switch SW2. When the switching terminal SEL is in a second state (high), the switch control circuit 260 switches on the first switch SW1 in response to a pulse signal Spwm having a first duty cycle d1 lower than 50%, and switches on the second switch SW2 in response to a complementary signal SpwmB of the pulse signal Spwm.
[0240] The switch control circuit 260 includes a pulse width modulator 262 and an inverter 264. The pulse width modulator 262 outputs a high signal when the switching terminal SEL is in a first state (low, high impedance), and outputs a pulse signal Spwm when the switching terminal SEL is in a second state (high). The output of the pulse width modulator 262 is supplied to the first switch SW1, and is also inverted by the inverter 264 and supplied to the second switch SW2.
[0241] Fig. 37 is a circuit diagram showing a specific configuration example of the vehicle lamp 400F of Fig. 36. The first switch SW1 and the second switch SW2 are N-channel transistors M41, M42.
[0242] The pulse width modulator 262 includes a voltage generator 266, a comparator COMP1, and an oscillator 268. The voltage generator 266 generates a voltage Vd that is 0 V in a first state and has a predetermined level in a second state. The oscillator 268 generates a periodic signal Vd that is a ramp wave or a triangular wave. RAMP The comparator COMP1 converts the voltage Vd into a periodic signal V RAMP Compare with.
[0243] In the first state, the output of the comparator COMP1 is fixed at a high level, and in the second state, the output of the comparator COMP1 is a pulse signal Spwm having a duty cycle d1 that corresponds to the voltage Vd.
[0244] The voltage generator 266 includes resistors R41 to R43 and transistors Q41 and Q42. When the switching terminal SEL is in a first state (low, high impedance), the transistor Q42 is off and the transistor Q41 is on. As a result, the voltage Vd becomes 0 V. When the switching terminal SEL is in a second state (high), the transistor Q42 is on and the transistor Q41 is off. As a result, the voltage Vd becomes the power supply voltage Vcc divided by the resistors R41 and R42.
[0245] The operation of the vehicular lamp 400F of Figures 36 and 37 will be described. When the switching terminal SEL is in the first state (low), the first switch SW1 is turned on and the second switch SW2 is turned off. Therefore, the first drive current I generated by the first constant current driver 210 is OUT1 flows to first semiconductor light source 101 and second semiconductor light source 102, resulting in a first lighting mode.
[0246] When the switching terminal SEL is in the first state (low), the switch control circuit 260 generates a pulse signal Spwm having a duty cycle d1 smaller than 50% to drive the transistor M41. The transistor M42 is driven by an inverted signal of the pulse signal Spwm. The first driving current I OUT1 After flowing to first semiconductor light source 101, it flows to second semiconductor light source 102 for Tp×d1, and then flows to third semiconductor light source 103 for Tp×(1-d1). Tp is the period of pulse signal Spwm. Since d1<50%, second semiconductor light source 102 lights up relatively dimly, and third semiconductor light source 103 lights up relatively brightly. This realizes the second lighting mode.
[0247] A modification related to the seventh embodiment will be described.
[0248] (Variation 7.1) The first constant current driver 210 generates a first driving current I in the second lighting mode that is larger than that in the first lighting mode. OUT1 may be increased.
[0249] (Variation 7.2) In the seventh embodiment, first to third semiconductor light sources 101 to 103 may also be arranged upside down, as described in Modification 5.5 (FIG. 28) and Modification 5.6 (FIG. 29) of the fifth embodiment.
[0250] The above is a description of an embodiment. This embodiment is merely an example, and it will be understood by those skilled in the art that various modifications are possible in the combination of each component and each treatment process, and that such modifications also fall within the scope of the present invention. [Industrial Applicability]
[0251] The present disclosure can be used for lighting automobiles and the like. [Explanation of symbols]
[0252] 100, 400...vehicle lamp, VIN...input terminal, SEL...switching terminal, 101...first semiconductor light source, 102...second semiconductor light source, 103...third semiconductor light source, 200, 500...lighting circuit, 210...first constant current driver, SW1...first switch, SW2...second switch, 220...switching circuit, 230...second constant current driver, 240...feedback circuit, 260...switch control circuit, 262...pulse width modulator, 264...inverter.
Claims
1. a first semiconductor light source connected between the first node and the second node; a second semiconductor light source connected to form a first path between the second node and a third node; a third semiconductor light source connected between the second node and the third node to form a second path parallel to the first path; a lighting circuit that drives the first semiconductor light source, the second semiconductor light source, and the third semiconductor light source; Equipped with the lighting circuit is switchable between a first lighting mode and a second lighting mode, and is configured to supply a first drive current of a first current amount to the first semiconductor light source and the second semiconductor light source in the first lighting mode, and not supply a drive current to the third semiconductor light source; a first driving current of the first current amount being supplied to the first semiconductor light source and the third semiconductor light source, and a driving current of the second current amount being smaller than the first current amount being supplied to the second semiconductor light source, in the second lighting mode;
2. An input terminal for receiving a power supply voltage that also serves as a lighting instruction terminal; a switching terminal that is externally controlled to be in a first state in the first lighting mode and in a second state in the second lighting mode; Furthermore, The lighting circuit comprises: a first constant current driver having an output node connected to the first node and outputting a first drive current when the power supply voltage is supplied to the input terminal; a first switch connected on the first path between the second node and the second semiconductor light source; a second switch connected in series with the third semiconductor light source on the second path; a switching circuit that turns on the first switch and turns off the second switch when the switching terminal is in the first state, and turns off the first switch and turns on the second switch when the switching terminal is in the second state; a second constant current driver that supplies a second drive current, which is smaller than the first drive current, to an intermediate node that connects the second semiconductor light source and the first switch when the switching terminal is in the second state; 2. The vehicle lamp according to claim 1, further comprising:
3. 3. The vehicular lamp according to claim 2, wherein the second constant current driver includes a current limiting resistor provided between the switching terminal and the intermediate node.
4. 4. The vehicular lamp according to claim 3, wherein the second constant current driver further includes a diode connected in series with the current limiting resistor between the switching terminal and the intermediate node.
5. 5. The vehicle lamp according to claim 2, wherein the second driving current flows via the switching terminal.
6. 6. The vehicle lamp according to claim 5, wherein the second driving current is greater than 10 mA.
7. In the second state, a non-zero switching voltage is input to the switching terminal, 5. The vehicular lamp according to claim 2, wherein the second constant current driver is supplied with power via the switching terminal in the second state.
8. An input terminal for receiving a power supply voltage that also serves as a lighting instruction terminal; a switching terminal that is externally controlled to be in a first state in the first lighting mode and in a second state in the second lighting mode; Furthermore, The lighting circuit comprises: a first constant current driver having an output node connected to the first node and outputting a first drive current when the power supply voltage is supplied to the input terminal; a second constant current driver connected on the first path between the second semiconductor light source and the third node, the second constant current driver being switchable between a constant current state generating a second drive current less than the first drive current and a full-on state; a second switch connected in series with the third semiconductor light source on the second path; a switching circuit that, when the switching terminal is in the first state, sets the second constant current driver to the full-on state and turns off the second switch, and, when the switching terminal is in the second state, sets the second constant current driver to the constant current state and turns on the second switch; 2. The vehicle lamp according to claim 1, further comprising:
9. The second constant current driver a first transistor and a first resistor connected in series between the second semiconductor light source and the third node on the first path; a feedback circuit that is active when the switching terminal is in the second state and controls the voltage of the control terminal of the first transistor so that the voltage drop of the first resistor approaches a target voltage; 9. The vehicle lamp according to claim 8, further comprising:
10. An input terminal for receiving a power supply voltage that also serves as a lighting instruction terminal; a switching terminal that is externally controlled to be in a first state in the first lighting mode and in a second state in the second lighting mode; Furthermore, The lighting circuit comprises: a first constant current driver having an output node connected to the first node and outputting a first drive current when the power supply voltage is supplied to the input terminal; a first switch connected in series with the second semiconductor light source on the first path; a second switch connected in series with the third semiconductor light source on the second path; a switch control circuit that turns on the first switch and turns off the second switch when the switching terminal is in the first state, and switches the first switch in response to a pulse signal having a first duty cycle lower than 50% and switches the second switch in response to a complementary signal of the pulse signal when the switching terminal is in the second state; 2. The vehicle lamp according to claim 1, further comprising:
11. 11. The vehicular lamp according to claim 8, wherein the first constant current driver increases the first drive current in the second lighting mode more than in the first lighting mode.
12. 11. The vehicular lamp according to claim 2, wherein a period in which the first switch and the second switch are simultaneously turned on is inserted when switching between the first lighting mode and the second lighting mode.
13. the light emitted from the first semiconductor light source forms a light distribution pattern whose upper edge has a horizontal cutoff line; the light emitted from the second semiconductor light source forms a light distribution pattern whose upper edge has an oblique cutoff line, 11. A vehicle lamp according to claim 1, wherein the light emitted from the third semiconductor light source forms a light distribution pattern for high beam.
14. a first semiconductor light source connected between the first node and the second node; a second semiconductor light source connected to form a first path between the second node and a third node; a third semiconductor light source connected between the second node and the third node to form a second path parallel to the first path; a lighting circuit that receives a power supply voltage and lights up the first semiconductor light source and the second semiconductor light source in a first lighting mode and lights up the first semiconductor light source and the third semiconductor light source in a second lighting mode; a bypass circuit provided between the second node and the third node, the bypass circuit including a bypass switch that is turned on when the power supply voltage falls below a predetermined first threshold; A vehicle lamp comprising:
15. 15. The vehicular lamp according to claim 14, wherein the bypass switch is turned off when the power supply voltage exceeds a second threshold value that is higher than the first threshold value.
16. the light emitted from the first semiconductor light source forms a light distribution pattern whose upper edge has a horizontal cutoff line; the light emitted from the second semiconductor light source forms a light distribution pattern whose upper edge has an oblique cutoff line, 16. The vehicle lamp according to claim 14, wherein the light emitted from the third semiconductor light source forms a light distribution pattern for high beam.
17. 16. The vehicular lamp according to claim 14, wherein the lighting circuit lights the second semiconductor light source darker in the second lighting mode than in the first lighting mode.
18. An input terminal for receiving a power supply voltage that also serves as a lighting instruction terminal; a switching terminal that is externally controlled to be in a first state in the first lighting mode and in a second state in the second lighting mode; Furthermore, The lighting circuit comprises: a first constant current driver having an output node connected to the first node and outputting a first drive current when the power supply voltage is supplied to the input terminal; a first switch connected on the first path between the second node and the second semiconductor light source; a second switch connected in series with the third semiconductor light source on the second path; a switching circuit that turns on the first switch and turns off the second switch when the switching terminal is in the first state, and turns off the first switch and turns on the second switch when the switching terminal is in the second state; a second constant current driver that supplies a second drive current, which is smaller than the first drive current, to an intermediate node that connects the second semiconductor light source and the first switch when the switching terminal is in the second state; 16. The vehicular lamp according to claim 14, further comprising:
19. An input terminal for receiving a power supply voltage that also serves as a lighting instruction terminal; a switching terminal that is externally controlled to be in a first state in the first lighting mode and in a second state in the second lighting mode; Furthermore, The lighting circuit comprises: a first constant current driver having an output node connected to the first node and outputting a first drive current when the power supply voltage is supplied to the input terminal; a second constant current driver connected on the first path between the second semiconductor light source and the third node, the second constant current driver being switchable between a constant current state generating a second drive current less than the first drive current and a full-on state; a second switch connected in series with the third semiconductor light source on the second path; a switching circuit that, when the switching terminal is in the first state, sets the second constant current driver to the full-on state and turns off the second switch, and, when the switching terminal is in the second state, sets the second constant current driver to the constant current state and turns on the second switch; 16. The vehicular lamp according to claim 14, further comprising:
20. An input terminal for receiving a power supply voltage that also serves as a lighting instruction terminal; a switching terminal that is externally controlled to be in a first state in the first lighting mode and in a second state in the second lighting mode; Furthermore, The lighting circuit comprises: a first constant current driver having an output node connected to the first node and outputting a first drive current when the power supply voltage is supplied to the input terminal; a first switch connected in series with the second semiconductor light source on the first path; a second switch connected in series with the third semiconductor light source on the second path; a switch control circuit that turns on the first switch and turns off the second switch when the switching terminal is in the first state, and switches the first switch in response to a pulse signal having a first duty cycle lower than 50% and switches the second switch in response to a complementary signal of the pulse signal when the switching terminal is in the second state; 16. The vehicular lamp according to claim 14, further comprising:
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