Lighting circuit
11382194 · 2022-07-05
Assignee
Inventors
Cpc classification
F21V23/003
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H05B45/50
ELECTRICITY
H05B45/14
ELECTRICITY
Y02B20/40
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
F21Y2115/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
H05B45/14
ELECTRICITY
F21V23/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A driving circuit turns on and off a driving current I.sub.LED that flows through a light source, so as to control the lighting on/off state of the light source. A judgment circuit compares a voltage V.sub.LED across the light source with a threshold value, and judges the lighting on/off state of the light source based on the comparison result. A first resistor R is provided in parallel with the light source.
Claims
1. A lighting circuit for a light source, comprising: a driving circuit structured to turn on and off a driving current that flows through the light source based on an instruction, so as to control an instructed lighting on/off state of the light source; a judgment circuit structured to compare a voltage across the light source with a threshold value, and to judge the actual lighting on/off state of the light source based on a comparison result; and a first resistor arranged in parallel with the light source, wherein judgment circuit is configured to determine the light source is in the actual lighting-off state when the voltage across the light source is zero, and to determine the light source is in the actual lighting-on state when the voltage across the light source is higher than a threshold value, and the actual lighting on/off state is compared to the instructed on/off state.
2. The lighting circuit according to claim 1, wherein the judgment circuit comprises a second resistor and a third resistor structured to divide the voltage across the light source, and to judge the actual lighting on/off state of the light source based on the voltage thus divided, and wherein the first resistor has a resistance value that is lower than the sum total of resistance values of the second resistor and the third resistor.
3. The lighting circuit according to claim 1, wherein the first resistor is structured as a series connection of a second resistor element and a third resistor element, and wherein the judgment circuit is configured to judge the actual lighting on/off state of the light source based on a voltage that occurs at a connection node between the second resistor element and the third resistor element.
4. The lighting circuit according to claim 1, wherein the resistance value of the first resistor is such that, when sunlight is input to the light source in the actual lighting-off state, the voltage across the light source is lower than ½ of the threshold value.
5. An automotive lamp comprising a light source, and the lighting circuit according to claim 1, which is structured to drive the light source.
6. The lighting circuit according to claim 1, wherein when a reverse current flows through the light source in a reverse direction when high-intensity light is input to the light source in the actual lighting-off state, the first resistor is configured so that the reverse current flows through the first resistor.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) Embodiments will now be described, by way of example only, with reference to the accompanying drawings which are meant to be exemplary, not limiting, and wherein like elements are numbered alike in several Figures, in which:
(2)
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DETAILED DESCRIPTION
Overview of the Embodiments
(7) A summary of several example embodiments of the disclosure follows. This summary is provided for the convenience of the reader to provide a basic understanding of such embodiments and does not wholly define the breadth of the disclosure. This summary is not an extensive overview of all contemplated embodiments, and is intended to neither identify key or critical elements of all embodiments nor to delineate the scope of any or all aspects. Its sole purpose is to present some concepts of one or more embodiments in a simplified form as a prelude to the more detailed description that is presented later. For convenience, the term “one embodiment” may be used herein to refer to a single embodiment or multiple embodiments of the disclosure.
(8) An embodiment disclosed in the present specification relates to a lighting circuit for a light source. The lighting circuit includes: a driving circuit structured to turn on and off a driving current that flows through the light source, so as to control a lighting on/off state of the light source; a judgment circuit structured to compare a voltage across the light source with a threshold value, and to judge the lighting on/off state of the light source based on a comparison result; and a first resistor arranged in parallel with the light source.
(9) When high-intensity light such as sunlight is input to the light source in the lighting-off state, this arrangement allows the current that flows through the light source in the reverse direction to be released via the first resistor. With this arrangement, in a state in which the light source is in the lighting-off state, the voltage across the light source can be maintained at a level that is lower than the threshold value. This arrangement is capable of preventing false judgment in the lighting on/off detection, thereby preventing false detection of an abnormal state.
(10) Also, the judgment circuit may include a second resistor and a third resistor structured to divide the voltage across the light source, and to judge the lighting on/off state of the light source based on the voltage thus divided. Also, the first resistor may be designed to have a resistance value that is lower than the sum total of resistance values of the second resistor and the third resistor.
(11) Also, the first resistor may be structured as a series connection of a second resistor element and a third resistor element. Also, the judgment circuit may judge the lighting on/off state of the light source based on a voltage that occurs at a connection node between the second resistor element and the third resistor element. In a case in which the resistance value of the dividing circuit including the second resistor element and the third resistor element is designed to be sufficiently low, this allows the dividing circuit to function as the first resistor.
(12) Also, the resistance value of the first resistor may be designed such that, when sunlight is input to the light source in a lighting-off state, the voltage across the light source may preferably be lower than ½ of the threshold value, and may more preferably be lower than ⅕ of the threshold value.
Embodiment
(13) Description will be made below regarding the present disclosure based on preferred embodiments with reference to the drawings. The same or similar components, members, and processes are denoted by the same reference numerals, and redundant description thereof will be omitted as appropriate. The embodiments have been described for exemplary purposes only, and are by no means intended to restrict the present disclosure. Also, it is not necessarily essential for the present disclosure that all the features or a combination thereof be provided as described in the embodiments.
(14) In the present specification, a state represented by the phrase “the member A is coupled to the member B” includes a state in which the member A is indirectly coupled to the member B via another member that does not substantially affect the electric connection between them, or that does not damage the functions or effects of the connection between them, in addition to a state in which they are physically and directly coupled.
(15) Similarly, a state represented by the phrase “the member C is provided between the member A and the member B” includes a state in which the member A is indirectly coupled to the member C, or the member B is indirectly coupled to the member C via another member that does not substantially affect the electric connection between them, or that does not damage the functions or effects of the connection between them, in addition to a state in which they are directly coupled.
(16) In the present specification, the vertical axis and the horizontal axis shown in the waveform diagrams and the time charts in the present specification are expanded or reduced as appropriate for ease of understanding. Also, each waveform shown in the drawing is simplified or exaggerated for emphasis or ease of understanding.
(17) In the present specification, the reference symbols denoting electric signals such as a voltage signal, current signal, or the like, and the reference symbols denoting circuit elements such as a resistor, capacitor, or the like, also represent the corresponding voltage value, current value, resistance value, or capacitance value as necessary.
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(19) The lighting circuit 200 includes a driving circuit 210 and a control circuit 220. The driving circuit 210 turns on and off a driving current I.sub.LED that flows through the light source 102 according to a control signal S1 supplied from the control circuit 220, so as to control the lighting on/off state of the light source 102. Also, the driving circuit 210 may control the driving current I.sub.LED in an analog manner so as to control the luminance of the light source 102. The on/off state of the light source 102 based on the control signal S1 may be switched on a long time scale. Also, the on/off state of the light source 102 may be switched in a short cycle as with a PWM dimming control operation.
(20) The control circuit 220 includes a controller 222 and a judgment circuit 224. The controller 222 supplies the control signal S1 to the driving circuit 210. The judgment circuit 224 compares a voltage V.sub.LED across the light source 102 with a threshold value V.sub.TH, and judges whether the light source 102 is in the lighting-on state or the lighting-off state based on the comparison result. Specifically, when V.sub.LED>V.sub.TH, the judgment circuit 224 judges that the light source 102 is in the lighting-on state. Conversely, when V.sub.LED<V.sub.TH, the judgment circuit 224 judges that the light source 102 is in the lighting-off state.
(21) A first resistor R1 is arranged in parallel with the light source 102. The resistance value of the first resistor R1 is designed such that, when high-intensity light is input to the light source 102 in the lighting-off state of the light source 102, the voltage V.sub.LED′ across the light source 102 is lower than the threshold value V.sub.TH. For example, description will be made assuming that, when the light source 102 is in the lighting-on state, the voltage V.sub.LED across the light source 102 becomes V.sub.F=3 V, and the threshold voltage V.sub.TH is set to V.sub.F/2=1.5 V. In this case, the resistance value of the first resistor R1 is designed such that, when high-intensity light is input to the light source 102, the voltage V.sub.LED′ across the light source 102 is lower than 1.5 V.
(22) Here, description will be made assuming that, when high-intensity light is input, the light source 102 has the same characteristics as those of a photodiode.
(23) Returning to
V.sub.LED′=I.sub.SC×R1
(24) The current I.sub.SC that flows in a state in which a possible maximum light amount is input in the actual use of the vehicle is represented by “I.sub.SC(MAX)”. In this case, the resistance value of the first resistor R1 may preferably be designed so as to satisfy the following relation.
V.sub.LED′=R1×I.sub.SC(MAX)<V.sub.TH
(25) By transforming this relation expression, the following expression is obtained.
R1<V.sub.TH/I.sub.SC(MAX)
(26) It should be noted that, giving consideration to variation in elements or variation in the light amount, V.sub.LED′ may preferably be designed to be lower than ½ of the threshold voltage V.sub.TH. More preferably, V.sub.LED′ may be designed to be lower than ⅕ of the threshold voltage V.sub.TH. Even more preferably, V.sub.LED′ may be designed to be on the order of 1/10 of the threshold voltage V.sub.TH. As an example, in a case in which V.sub.TH=1.5 V, V.sub.LED′ may be designed to be on the order of 0.2 V. In a case in which I.sub.SC(MAX)=200 μA, the resistance value of the first resistor R1 is designed such that R1=1 kΩ.
(27) The above is the configuration of the automotive lamp 100. Next, description will be made regarding the operation thereof.
(28) Normal State with Lighting-on Instruction without Input Light
(29) The driving current I.sub.LED is supplied to the light source 102. In this state, V.sub.LED=V.sub.F>V.sub.TH holds true. The judgment circuit 224 is able to make a correct judgment that the light source 102 is in the lighting-on state. It should be noted that, in a case in which V.sub.F=3 V, a current of 3 mA flows through the first resistor R1 having a resistance of 1 kΩ. In a case in which I.sub.LED=600 mA, the current that flows through the first resistor R1 is 0.5% of I.sub.LED, which is consumed in the first resistor R1.
Normal State with Lighting-Off Instruction without Input Light
(30) The driving circuit 210 sets the driving current I.sub.LED to zero. In this state, the voltage V.sub.LED across the light source 102 becomes zero. Accordingly, the relation V.sub.LED<V.sub.TH holds true. Thus, the judgment circuit 224 is able to make a correct judgment that the light source 102 is in the lighting-off state.
Abnormal State with Lighting-on Instruction without Input Light
(31) When a short-circuited state occurs across the light source 102, the voltage V.sub.LED across light source 102 becomes substantially zero. In this state, the relation expression V.sub.LED<V.sub.TH holds true. Accordingly, the judgment circuit 224 is able to make a correct judgment that the light source 102 is in the lighting-off state. It should be noted that the light source 102 has been judged to be in the lighting-off state although a lighting-on instruction has been issued. Accordingly, the judgment circuit 224 is able to make a correct judgment that an abnormal state has occurred.
Normal State with Lighting-Off Instruction with Input Light
(32) When light is input to the light source 102, the current I.sub.SC flows through the light source 102 in the reverse direction. A reverse current I.sub.SC flows into the first resistor R1. In this state, the voltage V.sub.LED′ across the light source 102 is represented by I.sub.SC×R1. This arrangement ensures that the voltage V.sub.LED′ is lower than the threshold voltage V.sub.TH. Accordingly, the judgment circuit 224 is able to make a correct judgment that the light source 102 is in the lighting-off state.
(33) The above is the operation of the automotive lamp 100. With the automotive lamp 100, this arrangement is capable of preventing false judgement of the lighting on/off state, thereby allowing false detection of an abnormal state to be prevented.
(34) The present disclosure encompasses various kinds of apparatuses and methods that can be regarded as a block configuration or a circuit configuration shown in
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(37) In the examples shown in
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(40) A driving circuit 210B shown in
(41) While the preferred embodiments of the present disclosure have been described using specific terms, such description is for illustrative purposes only, and it is to be understood that changes and variations may be made without departing from the spirit or scope of the appended claims.