LIGHT SOURCE MODULE AND LIGHTING CIRCUIT
20230112753 · 2023-04-13
Inventors
- Tomoyuki Ichikawa (Shizuoka, JP)
- Atsushi OZAWA (Shizuoka, JP)
- Mariko MIWA (Shizuoka, JP)
- Yutaka MATSUMOTO (Shizuoka, JP)
Cpc classification
F21V29/763
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21S43/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60Q1/44
PERFORMING OPERATIONS; TRANSPORTING
F21S43/19
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60Q11/005
PERFORMING OPERATIONS; TRANSPORTING
Y02B20/30
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
F21W2103/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21W2103/35
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
B60Q11/00
PERFORMING OPERATIONS; TRANSPORTING
Abstract
There is provided a rear sign lamp capable of enhancing safety. An LED string (502) includes four LEDs (504_1 to 504_4) connected in series. An LED driver circuit (610) receives a battery voltage (V.sub.IN) and supplies a drive current (I.sub.LED) stabilized at a target current (I.sub.REF) to the LED string (502). A bypass circuit (620) is provided in parallel with a bypassed portion (503) including two adjacent LEDs (504_3 and 504_4) of the LED string (502), and sinks a bypass current (I.sub.BYPASS) according to a battery voltage (V.sub.IN).
Claims
1. A light source module comprising: an LED string including four LEDs (light-emitting diodes) connected in series; an LED driver circuit that receives a battery voltage and supplies a drive current stabilized at a target current to the LED string; and a bypass circuit that is provided in parallel with a bypassed portion including two adjacent LEDs of the LED string and sinks a bypass current according to the battery voltage.
2. The light source module according to claim 1, further comprising a break detection circuit that disables the bypass circuit when a break of the bypassed portion is detected.
3. The light source module according to claim 2, wherein when a voltage drop in the bypassed portion exceeds Vf×2, the break detection circuit determines that the bypassed portion is broken.
4. The light source module according to claim 1, wherein a slope of light quantities of the two LEDs included in the bypassed portion to a change in the battery voltage is 5%/0.1 V or less.
5. The light source module according to claim 1, wherein the light source module is an LED socket.
6. The light source module according to claim 1, further comprising a reverse connection protection diode provided between an input terminal of the LED driver circuit and a battery.
7. A lighting circuit that drives an LED string including four LEDs (light-emitting diodes) connected in series, the lighting circuit comprising: an LED driver circuit that receives a battery voltage and supplies a drive current stabilized at a target current to the LED string; and a bypass circuit that is provided in parallel with a bypassed portion including two adjacent LEDs of the LED string and sinks a bypass current according to the battery voltage.
8. The lighting circuit according to claim 7, further comprising a break detection circuit that disables the bypass circuit when a break of the bypassed portion is detected.
9. The lighting circuit according to claim 8, wherein when a voltage drop in the bypassed portion exceeds Vf×2, the break detection circuit determines that the bypassed portion is broken.
10. The lighting circuit according to claim 7, wherein a slope of a current at which the bypass circuit sinks to a change in the battery voltage is 5%/0.1 V or less when the target current is 100%.
11. The lighting circuit according to claim 7, further comprising a reverse connection protection diode provided between an input terminal of the LED driver circuit and a battery.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0016]
[0017]
[0018]
[0019]
[0020]
[0021]
DESCRIPTION OF THE EMBODIMENTS
Outline of Embodiment
[0022] An embodiment disclosed herein relates to a light source module. A light source module includes an LED string including four LEDs (light-emitting diodes) connected in series, an LED driver circuit that receives a battery voltage and supplies a drive current stabilized at a target current to the LED string, and a bypass circuit that is provided in parallel with a bypassed portion including two adjacent LEDs of the LED string and sinks a bypass current according to the battery voltage.
[0023] According to this configuration, since the two LEDs are bypassed when the battery voltage drops, even in the case in which a load on the battery increases during idling stop, it is possible to prevent the LED string from being turned off. Therefore, in the case in which this light source module is used for a rear sign lamp, it is possible to prevent the LED string from unintentionally turning off and from sending an erroneous message to the subsequent vehicle while the vehicle is stopped.
[0024] The light source module may further include a break detection circuit that disables the bypass circuit when a break of a bypassed portion is detected. When the current bypass is performed in a voltage-reduced state in the case in which the bypassed portion is broken, an undesirable situation occurs in which the LED string is turned on in the voltage-reduced state although the LED string is turned off in the normal battery voltage. Therefore, with the provision of the break detection circuit, when a break occurs, it is possible to turn off the LED string regardless of the voltage level of the battery voltage.
[0025] When the voltage drop in the bypassed portion exceeds Vf×2, the break detection circuit may determine that the bypassed portion is broken.
[0026] The slope of the bypass current to the battery voltage may be determined such that the slope of the quantities of light emitted from the four LEDs to changes in the battery voltage is 5%/0.1 V or less. As a result, it is difficult for a person to feel fluctuations in the quantity of emitted light due to short-term fluctuations in the battery voltage.
Embodiment
[0027] 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 the drawings are denoted with the same reference numerals, and redundant description will be omitted as appropriate. In addition, the embodiment does not limit the invention but is an example, and all features described in the embodiment and combinations of the features are not necessarily essential to the invention.
[0028] In the present DESCRIPTION, “a member A is in a state in which the member A is connected to a member B” includes not only the case in which the member A and the member B are physically and directly connected to each other but also the case in which the member A and the member B are indirectly connected to each other through another member, which does not substantially affect an electrical connection state between the member A and the member B or which does not impair a function or an effect exerted by coupling of the member A to the member B.
[0029] Similarly, “a member C is provided between the member A and the member B” includes not only the case in which the member A and the member C, or the member B and the member C are directly connected to each other but also the case in which the members are indirectly connected to each other through another member, which does not substantially affect an electrical connection state between the members or which does not impair a function or an effect exhibited by the connection between the members.
[0030] In addition, in the present DESCRIPTION, an electric signal such as a voltage signal or a current signal, or a sign attached to a circuit element such as a resistor or a capacitor represents a voltage value, a current value, a resistance value, or a capacitance value as necessary.
[0031]
[0032] A preferred aspect of the vehicle lighting fixture 500 is a light source module in which the LED string 502 and the lighting circuit 600 are housed in one package. For example, the vehicle lighting fixture 500 is an LED socket having a shape attachable to and detachable from a lamp body (not shown), similarly to a conventional automotive bulb. Since the LED socket is a consumable, a cost reduction is strongly demanded as well as a long life.
[0033] The lighting circuit 600 includes a reverse connection protection diode 602, an LED driver circuit 610, a bypass circuit 620, and a break detection circuit 630.
[0034] The LED driver circuit 610 receives an input voltage VIN through the reverse connection protection diode 602 and supplies a drive current LED stabilized at a target amount I.sub.REF to the LED string 502. The LED driver circuit 610 can be constituted of any of (i) a constant current linear regulator, (ii) a buck switching converter at a constant current output, (iii) a combination of a buck switching converter at a constant voltage output and a constant current circuit, and (iv) a resistor.
[0035] The bypass circuit 620 is connected in parallel with two (504_3 and 504_4) of the plurality of LEDs 504_1 to 504_4. The LEDs 504_3 and 504_504_4 are also referred to as bypassed portions 503. The bypass circuit 620 can switch between an enable state and a disable state, and in the enable state, the bypass circuit 620 sinks a bypass current I.sub.BYPASS corresponding to the input voltage V.sub.IN from the LED string 502. When the bypass current I.sub.BYPASS is carried, a current carried through the bypassed portion 503 becomes I.sub.LED−I.sub.BYPASS. When I.sub.BYPASS=0, the bypassed portion 503 emits light with the same luminance as the remaining LEDs 504_1 and 504_2, whereas when I.sub.BYPASS=I.sub.LED, the bypassed portion 503 is turned off.
[0036] The break detection circuit 630 is formed capable of detecting a break of the bypassed portion 503. Upon detecting a break failure of the bypassed portion 503, the break detection circuit 630 disables the bypass circuit 620. In the bypass circuit 620 in the disabled state, the bypass current I.sub.BYPASS becomes zero, and sinking the current fails.
[0037] The method of detecting a break in the break detection circuit 630 is not specifically limited. However, for example, when the voltage drop of the bypassed portion 503, that is, a voltage V.sub.A of the node A exceeds a threshold voltage Vf×2, it may be determined that a break failure of the bypassed portion 503 occurs. Vf is the forward voltage of the LED string 502.
[0038] For example, the break detection circuit 630 may include a voltage comparator that compares the voltage of the node A with a threshold voltage V.sub.OPEN. The threshold voltage V.sub.OPEN may be set slightly higher than Vf×2.
[0039]
[0040] In the case in which there is one bypassed portion, when the input voltage V.sub.IN drops below a certain voltage V.sub.1, one LED of the four LEDs is bypassed by the bypass circuit, and thus the quantity of light drops toward 75%. When the input voltage V.sub.IN then drops below a certain voltage V.sub.2 (e.g., 1.8 V×3+0.8 V=6.2 V), the quantity of light drops to zero.
[0041] On the other hand, according to the present embodiment, when the input voltage V.sub.IN becomes lower than the voltage V.sub.1, the light quantity drops toward 50%. However, even though the input voltage V.sub.IN further drops, the light quantity is maintained at 50%. When the input voltage V.sub.IN further drops to a voltage V.sub.3, the light quantity becomes 0%.
[0042] The above is the operation of the vehicle lighting fixture 500. According to the vehicle lighting fixture 500, when the battery voltage V.sub.BAT drops, the two LEDs 504_3 and 504_4 are bypassed, and thus even in the case in which a load on the battery increases during idling stop, it is possible to prevent the LED string 502 from being turned off. Therefore, in the case in which the vehicle lighting fixture 500 is used as a rear sign lamp, it is possible to prevent the LED string 502 from unintentionally turning off and from sending an erroneous message to the subsequent vehicle while the vehicle is stopped.
[0043] Next, the operation of the break detection circuit 630 will be described. In a state in which the normal battery voltage V.sub.BAT is supplied, I.sub.BYPASS=0. At this time, when the bypassed portion 503 is broken, the current I.sub.LED is not carried through the LED string 502, and the LED string 502 is turned off. On the other hand, when the battery voltage V.sub.BAT (input voltage V.sub.IN) drops while the bypassed portion 503 is broken, the bypassed portion 503, which is the broken portion, is bypassed by the bypass circuit 620, and the LED string 502 is lit, which is not preferable.
[0044] In the present embodiment, the break detection circuit 630 is provided, and when a break occurs, the bypass circuit 620 is disabled and I.sub.BYPASS=0 is set, and thus it is possible to turn off the LED string regardless of the voltage level of battery voltage V.sub.BAT (V.sub.IN).
[0045] When the slope of the bypass current I.sub.BYPASS to the fluctuation of the battery voltage V.sub.BAT is large, a slight fluctuation in the battery voltage V.sub.BAT appears as a large light quantity change. Therefore, the slope of the bypass current I.sub.BYPASS may be designed such that the slope of the quantities of light emitted from the four LEDs to the change in battery voltage is 5%/0.1 V or less. As a result, it is difficult for a person to feel fluctuations in the quantity of light due to short-term fluctuations in the battery voltage.
[0046]
[0047]
[0048] The bypass circuit 620 of
[0049] Next, the application of the vehicle lighting fixture 500 will be described.
[0050] A housing 702 has a shape attachable to and detachable from a lamp body (not shown). In the center part, a plurality of LEDs 504 is mounted, and the LEDs 504 are covered with a transparent sealing resin 704. The components of the lighting circuit 600 are mounted on a substrate 710. The plurality of LEDs 504 is red LED chips and is used as stop lamps.
[0051] In the LED socket serving as both the stop lamp and the tail lamp, a light-emitting element for the tail lamp is mounted adjacent to the plurality of LEDs 504, and a lighting circuit for the tail lamp is mounted on the substrate 710.
[0052] On the bottom surface side of the housing 702, three pins 721, 722, and 723 are exposed. The input voltage V.sub.IN is supplied to the pin 721 through the switch, and the ground voltage is supplied to the pin 722. The pin 723 is supplied with an input voltage that becomes high when the tail lamp is turned on. The pins 721 to 723 penetrate through the inside of the housing 702, and one ends of the pins 721 to 723 are connected to the wiring pattern of the substrate 710.
[0053] Although the present invention has been described using specific phrases based on the embodiments, the embodiments merely show the principle and application of the present invention, and many modifications and changes in arrangement are appreciated in the embodiments without departing from the idea of the present invention defined in the claims.
[0054] The present international application claims priority based on Japanese Patent Application No. 2020-047976 filed on Mar. 18, 2020, and the entire contents of Japanese Patent Application No. 2020-047976, which is Japanese Patent Application of the present international application, are incorporated herein by reference.
[0055] The above description of the specific embodiments of the present invention has been presented for the purpose of illustration. The embodiments are not intended to be exhaustive or to limit the invention as it is in the form described. It is obvious to those skilled in the art that many modifications and alterations are possible in light of the above description.
LIST OF REFERENCE NUMERALS
[0056] 500 Vehicle lighting fixture [0057] 502 LED string [0058] 503 Bypassed portion [0059] 504 LED [0060] 600 Lighting circuit [0061] 602 Diode [0062] 610 LED driver circuit [0063] 620 Bypass circuit [0064] 630 Break detection circuit