AN ISOLATED PRIMARY SIDE SWITCHED CONVERTER FOR LED LOADS
20230132668 · 2023-05-04
Assignee
Inventors
Cpc classification
H05B45/355
ELECTRICITY
H02M1/0058
ELECTRICITY
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
H02M3/33571
ELECTRICITY
Y02B70/10
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
International classification
Abstract
The invention relates to an isolated primary side switched converter (100), comprising a galvanic isolation stage (105) separating a primary side (101) and a secondary side (103) of the converter (100), a secondary side winding (107) of the isolation stage (105), wherein the secondary side winding (107) is coupled to a primary side winding, and wherein the secondary side winding (107) comprises a center tap, a first terminal (T1), a second terminal (T2) and a third terminal (T3) for connecting an LED load (LED1, LED2) on the secondary side (103) of the converter (100), a rectification circuit (109) on the secondary side (103) of the converter (100), wherein the rectification circuit (109) is configured to set the first terminal (T1) at a first electrical polarity, and to set the second and the third terminal (T2, T3) at a second electrical polarity that is different to the first electrical polarity, wherein the third terminal (T3) is electrically connected to the center tap, and wherein a voltage between the first and the second terminal (T1, T2) is larger than a voltage between the first and the third terminal (T1, T3).
Claims
1. An isolated primary side switched converter (100), comprising: a galvanic isolation stage (105) separating a primary side (101) and a secondary side (103) of the converter (100), a secondary side winding (107) of the isolation stage (105), wherein the secondary side winding (107) is coupled to a primary side winding, and wherein the secondary side winding (107) comprises a center tap, a first terminal (T1), a second terminal (T2) and a third terminal (T3) for connecting an LED load (LED1, LED2) on the secondary side (103) of the converter (100), and a rectification circuit (109) on the secondary side (103) of the converter (100), wherein the rectification circuit (109) is configured to set the first terminal (T1) at a first electrical polarity, and to set the second and the third terminal (T2, T3) at a second electrical polarity that is different to the first electrical polarity, wherein the third terminal (T3) is electrically connected to the center tap, and wherein a voltage between the second and the first terminal (T2, T1) is larger than a voltage between the third and the first terminal (T3, T1).
2. The converter (100) according to claim 1, wherein the LED load (LED1, LED2) is connected between the first and the second terminal (T1, T2), between the first and the third terminal (T1, T3) and/or between the second and the third terminal (T2, T3).
3. The converter (100) according to claim 1, wherein the secondary side (103) winding comprises no further tapping besides the center tap.
4. The converter (100) according to claim 1, comprising a decoupling circuit for reducing voltage fluctuations between the first and the second terminal (T1, T2), between the first and the third terminal (T1, T3) and/or between the second and the third terminal (T2, T3).
5. The converter (100) according to claim 4, wherein the decoupling circuit comprises a first capacitor (C1) that is connected between the first and the second terminal (T1, T2) or between the second and the third terminal (T2, T3).
6. The converter (100) according to claim 4, wherein the decoupling circuit comprises a second capacitor (C2) that is connected between the first and the third terminal (T1, T3).
7. The converter (100) according to claim 6, wherein the first and the second capacitor (C1, C2) have the same capacitance.
8. The converter (100) according to claim 1, wherein the rectification circuit (109) comprises a center tap rectifier.
9. The converter (100) according to claim 1, wherein the rectification circuit (109) comprises a full wave bridge rectifier.
10. The converter (100) according to claim 1, wherein the rectification circuit (109) comprises four diodes (D1, D2, D7, D8) or four switches.
11. The converter (100) according to claim 1, wherein the isolated primary side switched converter (100) is an LLC converter, in particular a resonant half bridge LLC converter.
12. A driver (400) for light sources, in particular LEDs, comprising the isolated primary side switched converter (100) of claim 1.
13. A lighting system comprising a driver according to claim 12 and an LED light source operated by the driver.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0036] The invention will be explained in the followings together with the figures.
[0037]
[0038]
[0039]
[0040]
[0041]
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0042] The present invention is described more fully hereinafter with reference to the accompanying drawings, in which various aspects of the present invention are shown. This invention however may be embodied in many different forms and should not be construed as limited to the various aspects of the present invention presented through this disclosure. Rather, these aspects are provided so that this disclosure will be thorough and complete, and will fully convey the scope of the present invention to those skilled in the art. The various aspects of the present invention illustrated in the drawings may not be drawn to scale. Rather, the dimensions of the various features may be expanded or reduced for clarity. In addition, some of the drawings may be simplified for clarity. Thus, the drawings may not depict all of the components of a given apparatus.
[0043] Various aspects of an isolated primary side switched converter will be presented. However, as those skilled in the art will readily appreciate, these aspects may be extended to aspects of converters in general without departing from the invention.
[0044] The term “LED luminaire” shall mean a luminaire with a light source comprising one or more LEDs and a driver to operate the LEDs as well as a housing. LEDs are well-known in the art, and therefore, will only briefly be discussed to provide a complete description of the invention.
[0045] It is further understood that the aspect of the present invention might contain integrated circuits that are readily manufacturable using conventional semiconductor technologies, such as complementary metal-oxide semiconductor technology, short “CMOS”. In addition, the aspects of the present invention may be implemented with other manufacturing processes for making optical as well as electrical devices. Reference will now be made in detail to implementations of the exemplary aspects as illustrated in the accompanying drawings. The same references signs will be used throughout the drawings and the following detailed descriptions to refer to the same or like parts.
[0046]
[0047] The converter 100 comprises a galvanic isolation stage 105 separating a primary side 101 and a secondary side 103 of the converter 100, a secondary side winding 107 of the isolation stage 105, wherein the secondary side winding 107 is coupled to a primary side winding, and wherein the secondary side winding 107 comprises a center tap, a first terminal T1, a second terminal T2 and a third terminal T3 for connecting an LED load LED1, LED2 on the secondary side 103 of the converter 100.
[0048] The converter 100 further comprises a rectification circuit 109 on the secondary side 103 of the converter 100, wherein the rectification circuit 109 is configured to set the first terminal T1 at a first electrical polarity, and to set the second terminal T2 and the third terminal T3 at a second electrical polarity that is different to the first electrical polarity.
[0049] The third terminal T3 is electrically connected to the center tap of the secondary side winding 107, wherein a voltage between the second terminal T2 and the first terminal T1 is larger than a voltage between the third terminal T3 and the first terminal T1.
[0050] In particular, the first polarity is a negative polarity and the second polarity is a positive polarity.
[0051] Preferably, the second terminal T2 is at a larger electrical potential than the third terminal T3. In particular, the absolute value of the electrical potential at the second terminal T2 is larger than that at the third terminal T3.
[0052] As shown in
[0053] The first terminal T1, the second terminal T2 and/or the third terminal T3 can be configured to allow connecting multiple LED loads, in particular multiple LED or modules, simultaneously.
[0054] In other words, the first terminal T1 and the second terminal T2 form a first connection for connecting the LED load, and the first terminal T1 and the third terminal T3 form a second connection for connecting LED load, wherein the first connection provides larger supply voltage to the LED load than the second connection. Furthermore, also the second terminal T2 and the third terminal T3 can form a connection for connecting the LED load.
[0055] In particular, the first terminal T1 is connected to ground.
[0056] In
[0057] In
[0058] Preferably, the secondary side winding 107 comprises no additional tapping besides said center tap.
[0059] In
[0060] Preferably, the rectification circuit 109 is configured to rectify an AC voltage provided by the secondary side winding 107 to a DC voltage of constant polarity.
[0061] The rectification circuit 109 comprises a center tap (or middle tap) rectifier having two diodes D1, D2 on its two branches.
[0062] Preferably, each branch of this center tap rectifier is extended by one additional diode D7, D8. In particular, the additional diodes D7, D8 are connected antiparallel to the respective diodes D1, D2 of each branch.
[0063] The so extended rectification circuit 109 with four diodes D1, D2, D7, D8, can form a full wave bridge rectifier that connects the secondary side winding 107 to the terminals T1, T2, T3.
[0064] Instead of diodes D1, D2, D7, D8, the rectification circuit 109 can comprise four switches, in particular MOSFETs.
[0065] The rectification circuit 109 can be configured to rectify the AC voltage provided by the secondary side winding 107 in synchronous fashion, in particular by using synchronously switched switches instead of the diodes D1, D2, D7, D8.
[0066] The converter 100 can further comprise a decoupling circuit for reducing voltage fluctuations, in particular a ripple voltage, on the connected LED load LED1, LED2.
[0067] In
[0068] Preferably, the first capacitor C1 and the second capacitor C2 have the same capacitance.
[0069] In
[0070] This allows several configurations for connecting an LED load of two separate LED LED1, LED2:
[0071] If one LED LED2 is connected between second terminal T2 and third terminal T3, in parallel to the first capacitor C1, and a further LED LED1 is connected between the third terminal T3 and the first terminal T1, in parallel to the second capacitor C2, than both LEDs LED1, LED2 are supplied with an identical lower voltage (LV) (this configuration is not shown in
[0072] If, however, one LED LED2 is connected between the second terminal T2 and the first terminal, as shown in
[0073]
[0074] In
[0075] Hence, the decoupling circuit in
[0076] In this case, the higher voltage (HV) is present at the first capacitor, while the lower voltage (LV) is present at the second capacitor. Hence, an LED load that requires a higher voltage can be connected to the second terminal T2 (and the first capacitor C1).
[0077] In contrast to the circuit in
[0078] The converter 100 in
[0079]
[0080] In
[0081] The high voltage LED module 301 can comprise a plurality of individual LEDs D5, D6, D9, D10, D11, D12, in particular an LED track.
[0082] In
[0083] The low voltage LED module 303 can be designed to receive a lower supply voltage than the high voltage module 301 in
[0084] The connections shown in
[0085]
[0086] In this configuration, both LED modules 305, 307 are supplied with the low voltage LV.
[0087] Each of the low voltage LED modules 305, 307 in
[0088] The converter 100 shown in
[0089]
[0090] The driver 400 can comprise an electromagnetic interference (EMI) filter 401 that forwards an input voltage, e.g. a mains voltage, to a PFC circuitry 403, in particular a boost PFC circuit. The PFC circuitry 403 can in turn supply an LLC transformer 407 with a bus voltage via a half bridge 405. The voltage that is generated in the LLC transformer 407 can be forwarded to an LED load 411 via a rectification and filter unit 409.
[0091] The half bridge 405, the LLC transformer 407 and the rectification and filter unit 409 can form the converter 100 as shown in
[0092] The driver 400 can further comprise a controller 413, e.g. an ASIC. The controller 413 can be configured to control the PFC circuitry 403 and the half bridge 405. Furthermore, the controller can be connected to the LLC transformer 407 via an output current sensing unit 415, to monitor an output voltage of the driver 400.
[0093] The driver can further comprise an interface 417, e.g. a DALI interface, for communicating with the controller 413.
[0094]
[0095] The invention further related to a lighting system, in particular a LED luminaire, comprising a driver according to the invention and a light source operated by the driver.
[0096] All features of all embodiments described, shown and/or claimed herein can be combined with each other.
[0097] While various embodiments of the present invention have been described above, it should be understood that they have been presented by way of example only and not limitation. Numerous changes to the disclosed embodiments can be made in accordance with the disclosure herein without departing from the spirit of scope of the invention. Thus, the breadth and scope of the present invention should not be limited by any of the above-described embodiments. Rather, the scope of the invention should be defined in accordance with the following claims and their equivalence.
[0098] Although the invention has been illustrated and described with respect to one or more implementations, equivalent alternations and modifications will occur to those skilled in the art upon the reading of the understanding of the specification and the annexed drawings. In addition, while a particular feature of the invention may have been disclosed with respect to only one of the several implementations, such features may be combined with one or more other features of the other implementations as may be desired and advantage for any given or particular application.