Light system with anti-parallel LEDs
11785689 · 2023-10-10
Assignee
Inventors
Cpc classification
International classification
Abstract
Example embodiments relate to light system with anti-parallel LEDs. One example light system includes a driver configured to generate a DC current. The light system also includes at least one first group, a first group thereof including a first and a second LED connected in anti-parallel. The light system also includes at least one second group, a second group thereof including a first and a second LED connected in anti-parallel. The at least one second group is connected in series with the at least one first group. Additionally, the light system includes control circuitry configured for selectively operating the first and second group in at least one first one and at least one second mode.
Claims
1. A light system, comprising: a driver configured to generate a DC current, at least one first group, a first group thereof comprising a first and a second LED connected in anti-parallel, at least one second group, a second group thereof comprising a first and a second LED connected in anti-parallel; said at least one second group being connected in series with said at least one first group, and control circuitry configured for selectively operating the at least one first group and the at least one second group in at least one first mode and at least one second mode, wherein in the at least one first mode, the DC current is used to activate the first LED(s) of at least one of: the at least one first group or the at least one second group, in the at least one second mode, the DC current is used to activate the second LED(s) of at least one of: the at least one first group or the at least one second group, the light system further comprising: a first optical element overlaying the first and second LED of the first group; and a second optical element overlaying the first and second LED of the second group; or at least two optical elements integrated in a single optical plate, wherein an optical element of the at least two optical elements overlays a single LED or multiple LEDs, wherein each optical element is a lens having a lens portion with a concave or convex surface.
2. The light system according to claim 1, wherein the at least one first group comprises at least two first groups connected in series.
3. The light system according to claim 1, further comprising an optical plate with a plurality of optical elements, wherein each first and/or second group is associated with an optical element of said optical plate.
4. The light system according to claim 1, wherein the at least one first mode comprises at least two of the following: a common first mode wherein the first LEDs of the at least one first group and the at least one second group are activated; a first mode wherein the first LED(s) of the at least one first group are activated and the first LED(s) of the at least one second group are not activated; a further first mode wherein the first LED(s) of the at least one second group are activated and the first LED(s) of the at least one first group are not activated; and/or wherein the at least one second mode comprises at least two of the following: a common second mode wherein the second LEDs of the at least one first group and the at least one second group are activated; a second mode wherein the second LED(s) of the at least one first group are activated and the second LED(s) of the at least one second group are not activated; a further second mode wherein the second LED(s) of the at least one second group are activated and the second LED(s) of the at least one first group are not activated.
5. The light system according to claim 1, wherein the first and second LED of the first group each have a first terminal connected to a first common line portion, and wherein the first and second LED of the second group each have a first terminal connected to a second common line portion.
6. The light system according to claim 1, wherein the control circuitry is configured for at least one of: switching between a first mode of the at least one first mode and a second mode of the at least one second mode, such that the DC current provided by the driver before, during, and after the switching, is substantially the same; and receiving the DC drive current from the driver and directing the DC current through the at least one first and/or second group, without dimming, in accordance with a first or second mode of the at least one first and second mode.
7. The light system according to claim 1, wherein the control circuitry comprises at least a first branch with two switching elements connected in series, and a second branch with two switching elements connected in series, said first branch being connected in parallel with said second branch between a first current line for receiving the DC current from the driver and a second current line, wherein a first intermediate node between the two switching elements of the first branch is connected to the first group and a second intermediate node between the two switching elements of the second branch is connected to the second group.
8. The light system according to claim 7, wherein the control circuitry further comprises a third branch with two switching elements connected in series, said third branch being arranged in parallel with the first and second branch, wherein a third intermediate node between the two switching elements of the third branch is connected to an intermediate node between the at least one first group and the at least one second group.
9. The light system according to claim 1, wherein the control circuitry is configured to: receive at least one of: a desired light pattern or a control parameter, as an input, to select a control scheme out of a plurality of different stored control schemes in accordance with the at least one of: the desired light pattern or the control parameter; and control the control circuitry in accordance with the selected control scheme.
10. The light system according to claim 1, wherein the first LED and the second LED have substantially the same forward biasing voltage.
11. The light system according to claim 1, wherein the first group comprises a plurality of first LEDs connected in anti-parallel with one or more second LED(s); and/or wherein the second group comprises a plurality of first LEDs connected in anti-parallel with one or more second LED(s).
12. The light system according to claim 1, wherein the first LED is different from the second LED.
13. A luminaire comprising a light system according to claim 1.
14. A light system, comprising: a driver configured to generate a DC current, at least one first group, a first group thereof comprising a first and a second LED connected in anti-parallel, at least one second group, a second group thereof comprising a first and a second LED connected in anti-parallel; said at least one second group being connected in series with said at least one first group, and control circuitry configured for selectively operating the at least one first group and the at least one second group in at least one first mode and at least one second mode, wherein in the at least one first mode, the DC current is used to activate the first LED(s) of the at least one first group and/or the at least one second group, in the at least one second mode, the DC current is used to activate the second LED(s) of the at least one first group and/or the at least one second group, wherein the first and second LED of the first group each have a first terminal connected to a first common line portion, and wherein the first and second LED of the second group each have a first terminal connected to a second common line portion; and wherein the first and second LED of the first group each have a second terminal which is connected to a further common line portion in line with the first common line portion, and wherein the first and second LED of the second group each have a second terminal which is connected to a further common line portion in line with the second common line portion.
15. A light system, comprising: a driver configured to generate a DC current, at least one first group, a first group thereof comprising a first and a second LED connected in anti-parallel, at least one second group, a second group thereof comprising a first and a second LED connected in anti-parallel; said at least one second group being connected in series with said at least one first group, wherein the at least one first group and the at least one second group are arranged on a PCB, and control circuitry configured for selectively operating the at least one first group and the at least one second group in at least one first mode and at least one second mode, wherein in the at least one first mode, the DC current is used to activate the first LED(s) of at least one of: the at least one first group or the at least one second group, in the at least one second mode, the DC current is used to activate the second LED(s) of at least one of: the at least one first group or the at least one second group, the light system further comprising a single optical element overlaying the first and second LEDs of the first group and the second group, wherein the single optical element is a lens having a lens portion with a concave or convex surface, and wherein the single optical element is part of an optical plate arranged above the PCB.
Description
BRIEF DESCRIPTION OF THE FIGURES
(1) The accompanying drawings are used to illustrate presently preferred non-limiting exemplary embodiments of light systems of the present invention. The above and other advantages of the features and objects of the invention will become more apparent and the invention will be better understood from the following detailed description when read in conjunction with the accompanying drawings, in which:
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DESCRIPTION OF EMBODIMENTS
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(15) In the first mode M1, the DC current I is used to activate the first LEDs 1 of the first group G1 and the second group G2, whilst the second LEDs 2 are off. In the second mode M2, the DC current I is used to activate the second LEDs 2 of the first group G1 and the second group G2, whilst the first LEDs 1 are off. In other words, depending on the mode M1, M2, either the first LEDs 1 or the second LEDs 2 are switched on.
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(17) In the first mode M1′, the DC current I is used to activate the first LED 1 of the first group G1, whilst all other LEDs 1, 2 are off. In the second mode M2′, the DC current I is used to activate the second LED 2 of the first group G1, whilst all other LEDs 1, 2 are off. In the other first mode M1″, the DC current I is used to activate the first LED 1 of the second group G2, whilst all other LEDs 1, 2 are off. In the other second mode M2″, the DC current I is used to activate the second LED 2 of the second group G2, whilst all other LEDs 1, 2 are off. In other words, depending on the mode M1′, M1″, M2′, M2″, any one of the LEDs 1, 2 can be switched on, whilst the other LEDs 1, 2 are switched off. Thus, using three control channels A, B, C, four LEDs 1, 2 can be individually controlled. Thus, in such an embodiment, the load seen by the driver 10 is substantially constant and consists in this example of one LED 1 or 2.
(18) In the embodiments of
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(20) Preferably, the control circuitry 20 is further configured for switching between a first mode of the at least one first mode and a second mode of the at least one second mode, such that the DC current I provided by the driver before, during, and after the switching, is within 30% of a nominal value, preferably within 20% of a nominal value, more preferably within 10% of a nominal value. This may be achieved by appropriately controlling the switches Q1-Q6 and optionally by adding filter elements and/or cross conduction elements such as the optional branch 350 in order to reduce any current ripple and/or flicker. More generally, any solution known to the skilled person to achieve this goal may be used. The control circuitry 20 is configured for receiving the DC drive current I from the driver, and for directing the DC current through the at least one first and/or second group, without dimming, in accordance with a first or second mode of the at least one first and second mode, by switching the switches Q1-Q6. It is noted that in this embodiment the control circuitry 20 does not perform dimming. However, dimming may be implemented in the driver 10. Embodiments of the invention may be performed with any standard driver 10 and optionally the driver 10 may include dimming functionalities.
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(22) The control circuitry 20 is further configured for controlling the switching elements Q1, Q2, Q3, Q4 such that in a first common mode M1, the current I from the driver 10 flows from the first intermediate node 105 through the first LEDs 1 of the at least one first and second group G1, G2 to the second intermediate node 205, i.e. the current flows from A to B in mode M1. This is achieved by switching on Q1 and Q4 and by switching off Q2 and Q3, as shown in the table of
(23) As illustrated in the two circuit diagrams of
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(25) The control circuitry 20 is further configured for controlling the switching elements Q1, Q2, Q3, Q4, Q5, Q6 such that in a first common mode M1′, the current I from the driver 10 flows from the first intermediate node 105 through the first LEDs 1 of the at least one first group G1 to the second intermediate node 205, i.e. the current flows from A to B in mode M1′. This is achieved by switching on Q1, Q4 and Q6 and by switching off Q2, Q3 and Q5, as shown in the table of
(26) As illustrated in the two circuit diagrams of
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(28) In the embodiments of
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(30) The control circuitry 20 may control the LEDs 1, 2 according to different modes. The modes may comprise at least one first mode and at least one second mode. The at least one first mode may comprise: a first mode (M1′) wherein the first LEDs 1 of the first groups G1 is/are activated and the first LEDs 1 of the second groups G2 is/are not activated; a further first mode (M1″) wherein the first LEDs 1 of the second groups G2 is/are activated and the first LEDs 1 of the first groups G1 is/are not activated.
(31) Similarly, the at least one second mode may comprise: a second mode M2′, wherein the second LEDs 2 of the first groups G1 is/are activated and the second LEDs 2 of the second groups G2 are not activated; a further second mode M2″, wherein the second LEDs 2 of the second groups G2 is/are activated and the second LEDs 2 of the first groups G1 is/are not activated.
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(33) The width dc of a common line portion 401, 402, 403, 404, 405, 406 may be e.g. between 0.5 and 20 mm Preferably, the distance di between two parallel common lines portions 401, 402 may be smaller than 20 mm, e.g. between 0.2 and 5 mm Preferably, the distance dl between the centers of adjacent LEDs 1, 2 of a first or second group G1, G2 may be between 0.1 mm and 5 mm, e.g. between 0.1 mm and 1 mm. The line portions 401, 402, 403, 404, 405, 406 may be provided in copper, and may be provided in or on a PCB. The line portions 401, 402, 403, 404, 405, 406 are flat portions extending in a plane of the PCB. The PCB may be a metal core PCB (MCPCB) with only one copper layer.
(34) A typical prior art implementation is shown in
(35) In order to illustrate the advantages of embodiments of the invention,
(36) In
(37) TABLE-US-00001 2 2 1 1 2 2 1 1
(38) However, it is also possible to arrange the LEDs as illustrated in
(39) TABLE-US-00002 1 2 2 1 2 1 1 2
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(43) In all embodiments of the figures, the first LED 1 and the second LED 2 may be the same or different. Also, the first LED 1 of the first group G1 may be the same as or different from the first LED 1 of the second group G2. Also, the second LED 2 of the second group G2 may be the same as or different from the second LED 2 of the second group G2. In most examples a single first LED 1 is shown to be connected in anti-parallel with a single second LED 2. However, as shown in
(44) The first and second LEDs 1, 2 may be any one of the following: a red LED, a green LED, a blue LED, a white LED, a warm white LED, a cool white LED, etc. Optionally the LEDs may comprise a phosphor coating.
(45) The first LED 1 and the second LED 2 may have substantially the same forward biasing voltage. The first LED 1 may have a phosphor coating which is the same as or different from a phosphor coating of the second LED 2. Also, some first and/or second LEDs 1, 2 may have a phosphor coating and other first and/or second LEDs 1, 2 may not have a phosphor coating.
(46) The skilled person understands that the first and second LEDs 1, 2 of the at least one first and second group G1, G2 may be arranged in any suitable manner on a support, typically a PCB. Optionally, the first and second LEDs 1, 2 of the at least one first and second group G1, G2 may be arranged in an array comprising at least two rows and at least two columns, see for example the embodiments of
(47) By choosing an appropriate position for the LEDs 1, 2 in the array on the PCB a different light output can be achieved with different control schemes as described above. A different light output may refer to a different light pattern on the ground, a different color, a different color temperature, a different intensity, a different flashing pattern, etc.
(48) In the embodiments of the figures, preferably, the control circuitry 20 is configured to receive a desired light pattern and/or a control parameter as an input, to select a control scheme out of a plurality of different stored control schemes in accordance with the input, and to control the control circuitry 20 in accordance with the selected control scheme. The plurality of different stored control schemes may correspond with two or more of the modes described above. The control circuitry 20 may comprise any one or more of the following: a field programmable gate array, an ASIC, a microcontroller, control switches. Those components are then configured to implement the various control schemes.
(49) Optionally, the driver 10 may comprise dimming circuitry configured to change the DC current in function of a dimming input. In that manner, the light intensity of the light emitted by the LEDs which are switched on can be regulated. Optionally, the driver 10 is further configured to deliver a supply voltage for the control circuitry 20.
(50) The invention further relates to a luminaire comprising a light system according to any one of the embodiments described above. The luminaire comprises a luminaire head, and optionally a luminaire pole. The luminaire head may be connected in any manner known to the skilled person to the luminaire pole. In other embodiments, the luminaire head may be connected to a wall or a surface, e.g. for illuminating buildings or tunnels. The luminaire head comprises a luminaire housing in which one or more supports, typically one or more PCBs 40, 40′, with the LEDs 1, 2 are arranged. The driver 10 may be arranged in or on a luminaire head, in or on the luminaire pole, or in any other suitable location of the luminaire system. Preferably, the control circuitry 20 is arranged in the luminaire head.
(51) Whilst the principles of the invention have been set out above in connection with specific embodiments, it is to be understood that this description is merely made by way of example and not as a limitation of the scope of protection which is determined by the appended claims.