WO2018187119A1 - Constant output current led driver - Google Patents

Constant output current led driver Download PDF

Info

Publication number
WO2018187119A1
WO2018187119A1 PCT/US2018/024774 US2018024774W WO2018187119A1 WO 2018187119 A1 WO2018187119 A1 WO 2018187119A1 US 2018024774 W US2018024774 W US 2018024774W WO 2018187119 A1 WO2018187119 A1 WO 2018187119A1
Authority
WO
WIPO (PCT)
Prior art keywords
current
voltage
full bridge
bridge inverter
led
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Ceased
Application number
PCT/US2018/024774
Other languages
French (fr)
Inventor
Alireza SAFAEE
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Osram Sylvania Inc
Original Assignee
Osram Sylvania Inc
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Osram Sylvania Inc filed Critical Osram Sylvania Inc
Priority to DE112018001847.4T priority Critical patent/DE112018001847T5/en
Publication of WO2018187119A1 publication Critical patent/WO2018187119A1/en
Anticipated expiration legal-status Critical
Ceased legal-status Critical Current

Links

Classifications

    • HELECTRICITY
    • H05ELECTRIC TECHNIQUES NOT OTHERWISE PROVIDED FOR
    • H05BELECTRIC HEATING; ELECTRIC LIGHT SOURCES NOT OTHERWISE PROVIDED FOR; CIRCUIT ARRANGEMENTS FOR ELECTRIC LIGHT SOURCES, IN GENERAL
    • H05B45/00Circuit arrangements for operating light-emitting diodes [LED]
    • H05B45/10Controlling the intensity of the light
    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02MAPPARATUS FOR CONVERSION BETWEEN AC AND AC, BETWEEN AC AND DC, OR BETWEEN DC AND DC, AND FOR USE WITH MAINS OR SIMILAR POWER SUPPLY SYSTEMS; CONVERSION OF DC OR AC INPUT POWER INTO SURGE OUTPUT POWER; CONTROL OR REGULATION THEREOF
    • H02M1/00Details of apparatus for conversion
    • H02M1/08Circuits specially adapted for the generation of control voltages for semiconductor devices incorporated in static converters
    • H02M1/083Circuits specially adapted for the generation of control voltages for semiconductor devices incorporated in static converters for the ignition at the zero crossing of the voltage or the current
    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02MAPPARATUS FOR CONVERSION BETWEEN AC AND AC, BETWEEN AC AND DC, OR BETWEEN DC AND DC, AND FOR USE WITH MAINS OR SIMILAR POWER SUPPLY SYSTEMS; CONVERSION OF DC OR AC INPUT POWER INTO SURGE OUTPUT POWER; CONTROL OR REGULATION THEREOF
    • H02M1/00Details of apparatus for conversion
    • H02M1/14Arrangements for reducing ripples from DC input or output
    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02MAPPARATUS FOR CONVERSION BETWEEN AC AND AC, BETWEEN AC AND DC, OR BETWEEN DC AND DC, AND FOR USE WITH MAINS OR SIMILAR POWER SUPPLY SYSTEMS; CONVERSION OF DC OR AC INPUT POWER INTO SURGE OUTPUT POWER; CONTROL OR REGULATION THEREOF
    • H02M1/00Details of apparatus for conversion
    • H02M1/44Circuits or arrangements for compensating for electromagnetic interference in converters or inverters
    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02MAPPARATUS FOR CONVERSION BETWEEN AC AND AC, BETWEEN AC AND DC, OR BETWEEN DC AND DC, AND FOR USE WITH MAINS OR SIMILAR POWER SUPPLY SYSTEMS; CONVERSION OF DC OR AC INPUT POWER INTO SURGE OUTPUT POWER; CONTROL OR REGULATION THEREOF
    • H02M3/00Conversion of DC power input into DC power output
    • H02M3/22Conversion of DC power input into DC power output with intermediate conversion into AC
    • H02M3/24Conversion of DC power input into DC power output with intermediate conversion into AC by static converters
    • H02M3/28Conversion of DC power input into DC power output with intermediate conversion into AC by static converters using discharge tubes with control electrode or semiconductor devices with control electrode to produce the intermediate AC
    • H02M3/325Conversion of DC power input into DC power output with intermediate conversion into AC by static converters using discharge tubes with control electrode or semiconductor devices with control electrode to produce the intermediate AC using devices of a triode or a transistor type requiring continuous application of a control signal
    • H02M3/335Conversion of DC power input into DC power output with intermediate conversion into AC by static converters using discharge tubes with control electrode or semiconductor devices with control electrode to produce the intermediate AC using devices of a triode or a transistor type requiring continuous application of a control signal using semiconductor devices only
    • H02M3/33569Conversion of DC power input into DC power output with intermediate conversion into AC by static converters using discharge tubes with control electrode or semiconductor devices with control electrode to produce the intermediate AC using devices of a triode or a transistor type requiring continuous application of a control signal using semiconductor devices only having several active switching elements
    • H02M3/33573Full-bridge at primary side of an isolation transformer
    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02MAPPARATUS FOR CONVERSION BETWEEN AC AND AC, BETWEEN AC AND DC, OR BETWEEN DC AND DC, AND FOR USE WITH MAINS OR SIMILAR POWER SUPPLY SYSTEMS; CONVERSION OF DC OR AC INPUT POWER INTO SURGE OUTPUT POWER; CONTROL OR REGULATION THEREOF
    • H02M7/00Conversion of AC power input into DC power output; Conversion of DC power input into AC power output
    • H02M7/42Conversion of DC power input into AC power output without possibility of reversal
    • H02M7/44Conversion of DC power input into AC power output without possibility of reversal by static converters
    • H02M7/48Conversion of DC power input into AC power output without possibility of reversal by static converters using discharge tubes with control electrode or semiconductor devices with control electrode
    • H02M7/53Conversion of DC power input into AC power output without possibility of reversal by static converters using discharge tubes with control electrode or semiconductor devices with control electrode using devices of a triode or transistor type requiring continuous application of a control signal
    • H02M7/537Conversion of DC power input into AC power output without possibility of reversal by static converters using discharge tubes with control electrode or semiconductor devices with control electrode using devices of a triode or transistor type requiring continuous application of a control signal using semiconductor devices only, e.g. single switched pulse inverters
    • H02M7/5387Conversion of DC power input into AC power output without possibility of reversal by static converters using discharge tubes with control electrode or semiconductor devices with control electrode using devices of a triode or transistor type requiring continuous application of a control signal using semiconductor devices only, e.g. single switched pulse inverters in a bridge configuration
    • HELECTRICITY
    • H05ELECTRIC TECHNIQUES NOT OTHERWISE PROVIDED FOR
    • H05BELECTRIC HEATING; ELECTRIC LIGHT SOURCES NOT OTHERWISE PROVIDED FOR; CIRCUIT ARRANGEMENTS FOR ELECTRIC LIGHT SOURCES, IN GENERAL
    • H05B45/00Circuit arrangements for operating light-emitting diodes [LED]
    • H05B45/30Driver circuits
    • H05B45/37Converter circuits
    • H05B45/3725Switched mode power supply [SMPS]
    • H05B45/39Circuits containing inverter bridges
    • HELECTRICITY
    • H05ELECTRIC TECHNIQUES NOT OTHERWISE PROVIDED FOR
    • H05BELECTRIC HEATING; ELECTRIC LIGHT SOURCES NOT OTHERWISE PROVIDED FOR; CIRCUIT ARRANGEMENTS FOR ELECTRIC LIGHT SOURCES, IN GENERAL
    • H05B45/00Circuit arrangements for operating light-emitting diodes [LED]
    • H05B45/40Details of LED load circuits
    • H05B45/44Details of LED load circuits with an active control inside an LED matrix
    • H05B45/48Details of LED load circuits with an active control inside an LED matrix having LEDs organised in strings and incorporating parallel shunting devices
    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02MAPPARATUS FOR CONVERSION BETWEEN AC AND AC, BETWEEN AC AND DC, OR BETWEEN DC AND DC, AND FOR USE WITH MAINS OR SIMILAR POWER SUPPLY SYSTEMS; CONVERSION OF DC OR AC INPUT POWER INTO SURGE OUTPUT POWER; CONTROL OR REGULATION THEREOF
    • H02M1/00Details of apparatus for conversion
    • H02M1/0048Circuits or arrangements for reducing losses
    • H02M1/0054Transistor switching losses
    • H02M1/0058Transistor switching losses by employing soft switching techniques, i.e. commutation of transistors when applied voltage is zero or when current flow is zero
    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02MAPPARATUS FOR CONVERSION BETWEEN AC AND AC, BETWEEN AC AND DC, OR BETWEEN DC AND DC, AND FOR USE WITH MAINS OR SIMILAR POWER SUPPLY SYSTEMS; CONVERSION OF DC OR AC INPUT POWER INTO SURGE OUTPUT POWER; CONTROL OR REGULATION THEREOF
    • H02M7/00Conversion of AC power input into DC power output; Conversion of DC power input into AC power output
    • H02M7/42Conversion of DC power input into AC power output without possibility of reversal
    • H02M7/44Conversion of DC power input into AC power output without possibility of reversal by static converters
    • H02M7/48Conversion of DC power input into AC power output without possibility of reversal by static converters using discharge tubes with control electrode or semiconductor devices with control electrode
    • H02M7/4815Resonant converters
    • YGENERAL 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
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02BCLIMATE CHANGE MITIGATION TECHNOLOGIES RELATED TO BUILDINGS, e.g. HOUSING, HOUSE APPLIANCES OR RELATED END-USER APPLICATIONS
    • Y02B20/00Energy efficient lighting technologies, e.g. halogen lamps or gas discharge lamps
    • Y02B20/30Semiconductor lamps, e.g. solid state lamps [SSL] light emitting diodes [LED] or organic LED [OLED]
    • YGENERAL 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
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02BCLIMATE CHANGE MITIGATION TECHNOLOGIES RELATED TO BUILDINGS, e.g. HOUSING, HOUSE APPLIANCES OR RELATED END-USER APPLICATIONS
    • Y02B70/00Technologies for an efficient end-user side electric power management and consumption
    • Y02B70/10Technologies improving the efficiency by using switched-mode power supplies [SMPS], i.e. efficient power electronics conversion e.g. power factor correction or reduction of losses in power supplies or efficient standby modes

Definitions

  • the present disclosure relates to power supplies suitable for driving light emitting diode (LED) lighting systems, as well as other constant current electronic loads.
  • LED light emitting diode
  • Strings of light emitting diodes such as those used in advanced automotive headlights, also referred to as "matrix" headlights, use an LED driver to control the brightness of the headlight.
  • Pulse Width Modulation (PWM) dimming is often used to control the light pattern and brightness of the LED string.
  • Each LED in the LED string is configured to be controlled individually in order to control the overall light pattern and brightness of the headlight.
  • PWM dimming a boost stage is generally used to boost the voltage, resulting in a two-stage system.
  • FIG. 1 A typical LED driver that uses PWM dimming for each individual LED is shown in Figure 1.
  • the LEDs (D112, D114, ... D118, D120) are connected in series as an LED string 110. Although four LEDs are illustrated in Figure 1, any number of LEDs can be provided in the LED string 110.
  • Figure 1 illustrates a block diagram of an LED driver system having a direct current (DC) current source which provides for PWM dimming of each LED in an LED string.
  • DC direct current
  • Figure 2 illustrates a block diagram of an LED driver system configured in accordance with an embodiment of the present disclosure.
  • Figure 3 illustrates a schematic diagram of the full bridge inverter, the auxiliary circuit and the voltage-current converter of Figure 2, configured in accordance with an embodiment of the present disclosure.
  • Figure 4 illustrates a graphical diagram of example waveforms for the various components of the system using a phase shift modulation scheme.
  • Figure 5 illustrates a graphical diagram of example waveforms of the voltage- current converter simulated using a simulation software environment for a DC power voltage of 8V.
  • Figure 6 illustrates a graphical diagram of example waveforms of the voltage- current converter simulated using a simulation software environment for a DC power voltage of 24V.
  • Figure 7 illustrates a graphical diagram showing the effect on the LED current, the source current, and an inductor of the voltage current converter, when transitioning from twelve illuminated LEDs to eleven illuminated LEDs.
  • Figure 8 illustrates a graphical diagram showing the effect on the LED current, the source current, and an inductor of the voltage current converter, when transitioning from twelve illuminated LEDs to six illuminated LEDs.
  • Figure 9 illustrates a schematic diagram of a full bridge inverter and an auxiliary circuit of Figure 3, and further expanded to accommodate multiple LED chains, in accordance with an embodiment of the present disclosure.
  • a constant output current power supply or driver
  • the driver is capable of operating with a wide range of input direct current (DC) voltages, and is particularly well-suited for powering switchable LED strings, but can also be used with other switchable load types as will be appreciated in light of this disclosure.
  • the driver includes a full bridge inverter, an auxiliary circuit, and a voltage current converter.
  • the driver operates under zero voltage switching (ZVS) for all switches in the driver circuit for all of the input voltage levels and for all of the output power levels. By maintaining ZVS in all output voltage conditions, the system may operate at very high frequencies and be compact yet still achieve high power density.
  • ZVS zero voltage switching
  • the full bridge inverter uses a phase shift modulation scheme and, together with the voltage current converter, provides a constant output current to one LED string (or other switchable load).
  • the phase shift modulation controller operates such that the main harmonic of the voltage appearing across the AC nodes of the full bridge inverter is kept constant.
  • the phase shift modulation controller decreases the phase shift ( ⁇ ) as the input DC voltage increases, and likewise increases the phase as the input voltage decreases. This configuration may be used to provide constant first harmonic voltage to the voltage-current converter block.
  • the auxiliary circuit may operate with ZVS in all input voltage conditions.
  • a typical LED driver architecture for automotive headlight systems includes two stages of conversion, a boost converter stage followed by one or more buck converters.
  • the current source is implemented using a feedback and controller of the buck stage. Therefore the dynamic behavior of the buck stage determines how fast the LED may be switched by the matrix manager unit. When an additional LED is turned on, the current drops until the controller reacts and pushes the current up again. And when an LED is turned off (i.e., the corresponding switch being turned on) the current suddenly goes up until the feedback reduces it back to the desired level.
  • the dynamics of the control has an impact on the quality of the light (e.g., over- and undershoots in light output) of all the LEDs, not only the one being switched.
  • the boost stage ensures that the buck input voltage is always beyond the total voltage of LEDs.
  • Buck and boost converters are very well established and there are many low-cost controllers and components available for them. In any case, such typical circuits are hard switching topologies which limit the high frequency operation and high power density designs.
  • the voltage stress across the switches can be large which, leading to the use of switches with higher voltage ratings and therefore higher cost and conduction losses. Also, collecting feedback to generate current source behavior has several practical limitations. Moreover, in a typical automotive application the battery voltage can vary greatly. For example, for a nominal 12V battery system the headlights operate with no derating for the DC voltages from 8 to 24 volts and with derating down to 6 or up to 28 volts. Therefore there is a need for single stage compact and reliable drivers, and particularly drivers for LED-based automotive headlights with many individually-dimmable LEDs.
  • FIG. 2 illustrates a block diagram of a single stage LED driver system configured in accordance with an example embodiment of the present disclosure.
  • the system includes a full bridge inverter and auxiliary circuit block 232 and a voltage-current converter 234.
  • An electromagnetic interference (EMI) filter 230 is provided between block 232 and a DC voltage source 205.
  • a diode rectifier 236 and filter 238 are between the voltage-current converter 234 and the LED string 210.
  • the LEDs of the LED string 210 are switchable, and a controller 220 is used to control the switches.
  • Block 232 operates to provide a phase shift modulated AC voltage with a constant first harmonic to the voltage-current converter 234.
  • the example embodiment overcomes disadvantages of conventional two-stage system by providing a single stage converter capable of operating with wide input voltage and zero voltage switching (ZVS) and low voltage stress across the switches.
  • ZVS zero voltage switching
  • Power is provided to the LED driver system by DC voltage source 205, in this example embodiment.
  • the LED driver system provides power to the LEDs (Dl, D2, ... Dn- 1, Dn) in LED string 210.
  • Each LED has a respective switch (S I, S2, ... Sn-1, Sn) under control of the controller 220.
  • a given string may include any number of LEDs, as denoted by Dn.
  • the EMI filter block 230 eliminates the high frequency current components exchanged with the DC power source 205, which can cause interference with other electrical systems, particularly in a vehicle or other complex system with several electrical components and interconnections. In other embodiments, the EMI block 230 may not be needed, depending on the EMI sensitivity of the given application. Any suitable EMI circuitry can be used here, whether it be custom or proprietary, as will be appreciated.
  • the full bridge inverter and auxiliary circuit block 232 is shown and described as a single block, but note that it may be implemented as distinct circuits. Further details regarding block 232 are shown in Figure 3.
  • the full bridge inverter portion of block 232 has the main function of converting the input signal from the DC voltage source 205 to a quasi- square AC waveform using a phase-shift modulation scheme, explained in detail below.
  • the auxiliary circuit of block 232 has the function of maintaining zero voltage switching (ZVS) for all the output voltage conditions of the circuit. The auxiliary circuit also reduces the current in the leading leg of the full bridge inverter at higher voltage levels.
  • the voltage-current converter block 234 is a passive circuit which generates AC current proportional to the fundamental harmonic of the voltage generated by the full bridge inverter of block 232.
  • the diode bridge rectifier 236 rectifies the AC current from the voltage-current converter 234 and the filter circuit 238 reduces the ripple content of the rectified output current for LEDs in the LED string 210.
  • FIG. 3 illustrates a further detailed schematic diagram of the block diagram shown in Figure 2.
  • the full bridge inverter portion of block 232 includes two switch legs, the leading leg denoted by symbol A (with switches Sw and SIL) and the lagging leg denoted by symbol B (with switches Sw and SIL). All four switches operate at constant frequency f sw and are on for 50% of the time (disregarding the short dead-time to avoid shoot-through, during which switches from both legs are on, which would cause an undesirable short-circuit condition).
  • the auxiliary circuit of block 232 includes two capacitors C Auxl and C Aux2 and inductor L Aux .
  • Each switch symbol in block 232 includes the switch in parallel with a diode and a capacitor.
  • the switching component can include the body diode of the switch and the internal capacitor of the switch.
  • the diode rectifier 236 includes one or more diodes 320 that rectify the AC current from the voltage-current converter 234.
  • the inductor L in the filter circuit 238 has two functions: a) it ensures the continuity of the current Zsrc in block 234, and b) reduces the ripple content of the rectified output current for LEDs in the LED string 210.
  • Waveform 410 shows the gate signal of switch Sw
  • waveform 412 shows the gate signal of switch SIL
  • waveform 414 shows the gate signal of switch Sw
  • waveform 416 shows the gate signal of switch SIL
  • waveform 418 shows the v AB waveform of the voltage between nodes A and B in Figure 3
  • waveform 420 shows the current of the inductor Ls (i Ls ) in the voltage current converter 234
  • waveform 422 shows the current of the auxiliary inductor (J-L A ) ⁇
  • the phase shift ( ⁇ ) between the waveform of the two legs in block 232 is determined by a phase shift modulation controller such that the fundamental harmonic of the waveform v AB is kept constant.
  • V ⁇ c 205 increases, the phase shift controller decreases ⁇ , and as V ⁇ c decreases, the phase shift modulation controller increases the ⁇ .
  • the voltage of node A, v A is a complete square waveform and therefore the current in L Aux has a triangular waveform 422 in synchronization with v A . This current has a negative value at the rising edge of v A and helps to provide ZVS for the leading leg. The lagging leg does not need an auxiliary circuit for ZVS .
  • the voltage -current converter block 234 includes inductor L s and capacitor C s tuned at the switching frequency f sw .
  • This arrangement acts as an AC current source which keeps its output current i src proportional to the first harmonic of v A that is kept constant by the aforementioned phase shift modulation controller.
  • This current is rectified by the full bridge diode rectifier 236.
  • Inductor L of the filter circuit 238 has two functions: it reduces the ripple content of the rectified output current for better light out of the LEDs and also ensures that the rectifier diodes conduct fully to guarantee the continuity of i src . Because of the high impedance of the combination of L s and C s the higher harmonics of the current in L s are negligible.
  • i L waveform 420 is in phase with v AB waveform 418. Also, the rising zero crossing of i L waveform 420 happens before rising edge of v AB waveform 418. A negative current from the auxiliary circuit is provided so the net current leaving node A at the rising edge of v AB remains negative and ZVS of the leading leg is maintained.
  • Another aspect of the driver circuit is that at higher V ⁇ c the width of the waveform 418 v AB gets narrower to keep the fundamental harmonic of v AB constant.
  • the consequence of the narrower v AB is that, as shown in the waveform 420, i L is more leading in respect to i t . Therefore a larger portion of i L ⁇ goes to L Aux instead of passing through the leading leg switches Sw and SIL and this reduces the conduction loss in them.
  • the current leaving node B of the lagging leg is always negative at the rising edge of v B thus the ZVS property is always maintained.
  • the positive portion of the DC bus is represented by a positive rail ( + ) denoted at a topmost side of a DC capacitor (C DC ) and a negative portion of the DC bus represented by a negative rail ( - ) denoted at the bottommost side of the DC capacitor (C DC ).
  • C DC DC capacitor
  • - negative rail
  • Such a branch provides a low impedance path for the main harmonic of the ripple current injected to the DC bus, with no or otherwise negligible impact on the other functions of the system.
  • Shrinking the size of these elements contributes considerably in having a more compact design and increasing the power density of the system.
  • Figure 5 and Figure 6 show the major waveforms of the converter simulated in a simulation software environment for two extreme cases with Vdc of 8 and 24 volts, respectively.
  • Graphs 510, 520, 530, 540, 540, 550, 560, 570 and 580 show various major waveforms with the Vdc of eight volts.
  • Graph 510 shows the gate voltage of the switching circuit Sw (G_S 1U - shown in solid line) and of the switching circuit SIL (G_S lL - shown in dotted line);
  • graph 520 shows the gate voltage of the switching circuit Sw (G_S2U - shown in solid line) and of the switching circuit SIL (G_S2L - shown in dotted line);
  • graph 530 shows the voltage of node B (V_B) and the voltage of node A (V_A);
  • graph 540 shows the voltage difference between the voltage of node B and the voltage of node A (V_AB);
  • graph 550 shows the current of the node A (I_A), the current of the auxiliary inductor (I(Laux)) and the current of the inductor of the voltage-current converter (I(LS));
  • graph 560 shows the current of node A (I_A) and the current of node B (I_B);
  • graph 570 shows the source current (I_src) and graph
  • Graphs 610, 620, 630, 640, 650, 660, 670 and 680 show various major waveforms with the Vdc of 24 volts.
  • Graph 610 shows the gate voltage of the switching circuit Siu (G_S 1U - shown in solid line) and of the switching circuit SIL (G_S 1L - shown in dotted line);
  • graph 620 shows the gate voltage of the switching circuit S 2 u (G_S2U - shown in solid line) and of the switching circuit S 2 L (G_S2L - shown in dotted line);
  • graph 630 shows the voltage of node B (V_B) and the voltage of node A (V_A);
  • graph 640 shows the voltage difference between the voltage of node B and the voltage of node A (V_AB);
  • graph 650 shows the current of the node A (I_A), the current of the auxiliary inductor (I(Laux)) and the current of the inductor of the voltage- current converter (I(LS
  • the average of i L (graph 580 in Figure 5, graph 680 in Figure 6) is about 1A in both cases.
  • v AB which is the same as rising edge of v A
  • the value of i Ls shown in graph 550 in Figure 5, and graph 650 in Figure 6
  • Figure 7 illustrates a graphical diagram showing the effect on the LED current (i L ), the source current (i src ), and the current of an inductor of the voltage-current converter when transitioning from twelve illuminated LEDs to eleven illuminated LEDs.
  • Figure 8 illustrates a graphical diagram showing the effect on the LED current (t L ), the source current (i src ), and an inductor of the voltage-current converter when transitioning from twelve illuminated LEDs to six illuminated LEDs.
  • the LED current i L (shown by graph 710 in Figure 7, and graph 810 of Figure 8) settles down to its nominal value in less than 10 cycles.
  • Graph 710 shows the LED current i L when transitioning from twelve illuminated LEDs to eleven illuminated LEDs
  • graph 720 shows the source current i src when transitioning from twelve illuminated LEDs to eleven illuminated LEDs
  • graph 730 shows the current of an inductor of the voltage-current converter (i Ls ) when transitioning from twelve illuminated LEDs to eleven illuminated LEDs.
  • Graph 810 shows the LED current i L when transitioning from twelve illuminated LEDs to six illuminated LEDs
  • graph 820 shows the source current i src when transitioning from twelve illuminated LEDs to six illuminated LEDs
  • graph 830 shows the current of an inductor of the voltage-current converter (i Ls ) when transitioning from twelve illuminated LEDs to six illuminated LEDs.
  • some possible advantages include a single stage of conversion (rather than two-stages of conversion); wide DC input voltage range (e.g., 8 to 24 volts), voltage boosting functionality (out of the current source nature of voltage-current converter circuit) with no extra boost stage needed; ZVS for all the switches, for all input voltage values and output power values (full load to zero load), thereby allowing for high frequency operation with no or little sacrifice in efficiency; small size and low-cost passive components; constant output current behavior, no need for a controller to intervene when LEDs turn on or off; low harmonic content in the input currents and small EMI filter components; equal or otherwise more balanced utilization of switches; switch voltage stresses limited to input DC voltage level, thereby allowing the use of lower voltage switches which have a lower cost and/or smaller on-state resistance and hence lower conduction losses; wide range of off-the-shelf options for the LED switches; reduced current in the leading leg switches at higher input
  • Figure 9 includes the schematic diagram of Figure 3 which has been extended to accommodate three LED chains (210, 910, and 930) with their controllers (230, 920 and 940, respectively) totally independent of each other. Sharing the AC source voltage v AB allows the three LED chains to be driven with only one full bridge converter and auxiliary block 232 and reduces the total cost compared to a configuration having three instances of the circuit shown in Figure 3. Note that only a single full bridge inverter and auxiliary circuit stage 232 is used to feed three separate voltage current converters, which greatly reduces the overall component count of the LED driver system.
  • a first voltage-current converter is comprised of Ls and Cs
  • a second voltage-current converter is comprised of Lsi and Csi
  • a third voltage-current converter is comprised of Ls3 and Csi-
  • constant current as used herein is not intended to imply a literal constant current; rather, reference to constant current is intended to be a current that varies only within a given tolerance that is relatively small, such as a +/-10 variation, or a +1-5% variation, or a +1-2% variation, or a +/-1% variation, or a +1-0.5% variation. Further note that the tolerance may be asymmetric in some cases. In a more general sense, the tolerance of the constant current may vary from one embodiment to the next, depending on the given application.
  • one example embodiment of the present disclosure provides a power supply system having a full bridge inverter, an auxiliary circuit, a voltage-current converter and a diode bridge.
  • the full bridge inverter may be configured to convert energy from a DC power source to an AC voltage waveform using phase-shift modulation, the full bridge inverter having a leading leg and a lagging leg.
  • the auxiliary circuit may be configured to maintain zero voltage switching of the switches in the leading leg for all output voltage conditions of the power supply system.
  • the voltage-current converter may be configured to generate an AC current that is proportional to a fundamental harmonic of the AC voltage waveform generated by the full bridge inverter.
  • the diode bridge may be configured to rectify the AC current from the voltage-current converter and produce a rectified output current.
  • the power supply system includes a filter configured to reduce ripple content of the rectified output current.
  • the full bridge inverter and the auxiliary circuit collectively operate to provide a phase shift modulated AC waveform between the AC nodes of the leading leg and the lagging leg of the full bridge inverter.
  • the leading leg includes a first top switch and a first bottom switch
  • the lagging leg includes a second top switch and a second bottom switch.
  • all the switches operate with the same switching frequency.
  • the voltage-current converter includes a first inductor and a first capacitor that are tuned to the switching frequency.
  • the auxiliary circuit includes two auxiliary capacitors connected in series and an auxiliary inductor having one of it terminals connected between the two auxiliary capacitors.
  • the full bridge inverter, the auxiliary circuit, and the voltage-current converter together act as an AC current source with its output AC current to be rectified and filtered to feed a light emitting diode (LED) string.
  • the power supply system further includes one or more light emitting diode (LED) strings, and each LED string shares the full bridge inverter to draw power from the DC power source.
  • the power supply system also includes a second voltage-current converter configured to generate a second AC current that is proportional to the fundamental harmonic of the AC voltage waveform generated by the full bridge inverter, and a second diode bridge that is configured to rectify the second AC current from the second voltage-current converter and produce a second rectified output current.
  • a second voltage-current converter configured to generate a second AC current that is proportional to the fundamental harmonic of the AC voltage waveform generated by the full bridge inverter
  • a second diode bridge that is configured to rectify the second AC current from the second voltage-current converter and produce a second rectified output current.
  • Another example embodiment of the present disclosure provides a method of delivering constant current from a DC power source.
  • the method includes converting, by a full bridge inverter, DC power provided by the DC power source into an AC voltage waveform with a constant first harmonic using phase-shift modulation; maintaining, by an auxiliary circuit that is operatively connected to the full bridge inverter, zero voltage switching (ZVS) for all output voltage conditions; generating, by a voltage-current converter that is operatively connected to the full bridge inverter, an AC current that is proportional to a fundamental harmonic of the AC voltage waveform generated by the full bridge inverter; and rectifying, by a diode bridge that is operatively connected to the voltage -current converter, the AC current to produce a rectified output current.
  • ZVS zero voltage switching
  • the full bridge inverter comprises a leading leg having a first top switch and a first bottom switch, and a lagging leg having a second top switch and a second bottom switch that all operate at the same switching frequency.
  • the auxiliary circuit is further configured to reduce the current in the leading leg of the full bridge inverter.
  • the method further includes reducing, by a filter circuit, ripple content of the rectified output current from the diode bridge.
  • the method further includes providing a low impedance path for a main harmonic of the ripple content by a branch inductor and a branch capacitor in parallel with a capacitor of the voltage-current converter.
  • the method further includes filtering, by an electromagnetic interference (EMI) filter, high frequency current components of the DC power from the DC power source before the full bridge invert converts the DC power into the AC voltage waveform.
  • EMI electromagnetic interference
  • the full bridge inverter can be configured to convert a signal from a DC power source to an AC waveform using phase- shift modulation.
  • the auxiliary circuit can be configured to maintain zero voltage switching for all output voltage conditions of the driver.
  • the voltage-current converter can be configured to generate an AC current that is proportional to a fundamental harmonic of the AC waveform generated by the full bridge inverter.
  • the diode bridge can be configured to rectify the AC current and produce a rectified output current.
  • the full bridge inverter includes a leading leg having a first top switch and a first bottom switch, and a lagging leg having a second top switch and a second bottom switch.
  • the voltage-current converter includes a first inductor and a first capacitor that are tuned to a switching frequency.
  • the LED driver further includes a second voltage- current converter configured to generate a second AC current that is proportional to the fundamental harmonic of the AC voltage waveform generated by the full bridge inverter, and a second diode bridge that is configured to rectify the second AC current from the second voltage-current converter and produce a second rectified output current.

Landscapes

  • Engineering & Computer Science (AREA)
  • Power Engineering (AREA)
  • Physics & Mathematics (AREA)
  • Electromagnetism (AREA)
  • Circuit Arrangement For Electric Light Sources In General (AREA)

Abstract

A constant output current LED driver is disclosed. The driver is capable of operating with a wide range of input direct current (DC) voltage, and is configured with a full bridge inverter, an auxiliary circuit, and a voltage current converter. The full bridge inverter and auxiliary circuit collectively operate to provide a phase shift controller for the LED driver system. The LED driver operates under zero voltage switching (ZVS) for all switches in the LED driver circuit for all of the input voltage levels and for all of the output voltage levels. By maintaining ZVS in all conditions, the system can operate at very high frequency and be compact yet still achieve high power density. The resulting topology is applicable for a wide range of constant output current LED drivers. Switchable loads other than LEDs can also be driven.

Description

CONSTANT OUTPUT CURRENT LED DRIVER
CROSS-REFERENCE TO RELATED APPLICATION
[0001] The present application is an international application of, and claims priority to, United States Patent Application No. 15/478,360, filed April 4, 207, and entitled "Constant Output Current LED Drive", which is herein incorporated by reference in its entirety.
FIELD OF THE DISCLOSURE
[0002] The present disclosure relates to power supplies suitable for driving light emitting diode (LED) lighting systems, as well as other constant current electronic loads.
BACKGROUND
[0003] Strings of light emitting diodes (LEDs), such as those used in advanced automotive headlights, also referred to as "matrix" headlights, use an LED driver to control the brightness of the headlight. Pulse Width Modulation (PWM) dimming is often used to control the light pattern and brightness of the LED string. Each LED in the LED string is configured to be controlled individually in order to control the overall light pattern and brightness of the headlight. To implement PWM dimming a boost stage is generally used to boost the voltage, resulting in a two-stage system.
[0004] A typical LED driver that uses PWM dimming for each individual LED is shown in Figure 1. The LEDs (D112, D114, ... D118, D120) are connected in series as an LED string 110. Although four LEDs are illustrated in Figure 1, any number of LEDs can be provided in the LED string 110. There is a bypass switch (S I 12, S I 14, ... S I 18, S 120) in parallel with each LED (respectively, D112, D114, ... D118, D120) controlled by a controller 130. If a switch is open (e.g., S I 12), the voltage across the corresponding LED (e.g., D112) is greater than its threshold voltage, and thus the current flows through the LED and it emits light. On the other hand, when the switch is closed, the voltage across the corresponding LED is less than the threshold so the LED is turned off. By selecting the relative duration of the on and off times of the switches, the average brightness of each LED may be individually controlled.
BRIEF DESCRIPTION OF THE DRAWINGS
[0005] Figure 1 illustrates a block diagram of an LED driver system having a direct current (DC) current source which provides for PWM dimming of each LED in an LED string.
[0006] Figure 2 illustrates a block diagram of an LED driver system configured in accordance with an embodiment of the present disclosure.
[0007] Figure 3 illustrates a schematic diagram of the full bridge inverter, the auxiliary circuit and the voltage-current converter of Figure 2, configured in accordance with an embodiment of the present disclosure.
[0008] Figure 4 illustrates a graphical diagram of example waveforms for the various components of the system using a phase shift modulation scheme.
[0009] Figure 5 illustrates a graphical diagram of example waveforms of the voltage- current converter simulated using a simulation software environment for a DC power voltage of 8V.
[0010] Figure 6 illustrates a graphical diagram of example waveforms of the voltage- current converter simulated using a simulation software environment for a DC power voltage of 24V.
[0011] Figure 7 illustrates a graphical diagram showing the effect on the LED current, the source current, and an inductor of the voltage current converter, when transitioning from twelve illuminated LEDs to eleven illuminated LEDs.
[0012] Figure 8 illustrates a graphical diagram showing the effect on the LED current, the source current, and an inductor of the voltage current converter, when transitioning from twelve illuminated LEDs to six illuminated LEDs. [0013] Figure 9 illustrates a schematic diagram of a full bridge inverter and an auxiliary circuit of Figure 3, and further expanded to accommodate multiple LED chains, in accordance with an embodiment of the present disclosure.
DETAILED DESCRIPTION
[0014] A constant output current power supply, or driver, is disclosed. The driver is capable of operating with a wide range of input direct current (DC) voltages, and is particularly well-suited for powering switchable LED strings, but can also be used with other switchable load types as will be appreciated in light of this disclosure. In accordance with an embodiment, the driver includes a full bridge inverter, an auxiliary circuit, and a voltage current converter. The driver operates under zero voltage switching (ZVS) for all switches in the driver circuit for all of the input voltage levels and for all of the output power levels. By maintaining ZVS in all output voltage conditions, the system may operate at very high frequencies and be compact yet still achieve high power density. The resulting topology is applicable for a wide range of constant output current drivers. The full bridge inverter uses a phase shift modulation scheme and, together with the voltage current converter, provides a constant output current to one LED string (or other switchable load). The phase shift modulation controller operates such that the main harmonic of the voltage appearing across the AC nodes of the full bridge inverter is kept constant. The phase shift modulation controller decreases the phase shift (φ) as the input DC voltage increases, and likewise increases the phase as the input voltage decreases. This configuration may be used to provide constant first harmonic voltage to the voltage-current converter block. The auxiliary circuit may operate with ZVS in all input voltage conditions. General Overview
[0015] Implementing a constant current driver system using PWM involves a number of non-trivial issues, particularly in a switchable LED string application. For example, a typical LED driver architecture for automotive headlight systems includes two stages of conversion, a boost converter stage followed by one or more buck converters. The current source is implemented using a feedback and controller of the buck stage. Therefore the dynamic behavior of the buck stage determines how fast the LED may be switched by the matrix manager unit. When an additional LED is turned on, the current drops until the controller reacts and pushes the current up again. And when an LED is turned off (i.e., the corresponding switch being turned on) the current suddenly goes up until the feedback reduces it back to the desired level. The dynamics of the control has an impact on the quality of the light (e.g., over- and undershoots in light output) of all the LEDs, not only the one being switched. For the buck converter to act as a current source feeding a string of LEDs (e.g., N switchable LEDs connected in series, where N=12 or some other suitable number), there is a need to have a prior boost stage, particularly in applications with potentially relatively low input DC voltages. The boost stage ensures that the buck input voltage is always beyond the total voltage of LEDs. Buck and boost converters are very well established and there are many low-cost controllers and components available for them. In any case, such typical circuits are hard switching topologies which limit the high frequency operation and high power density designs. The voltage stress across the switches can be large which, leading to the use of switches with higher voltage ratings and therefore higher cost and conduction losses. Also, collecting feedback to generate current source behavior has several practical limitations. Moreover, in a typical automotive application the battery voltage can vary greatly. For example, for a nominal 12V battery system the headlights operate with no derating for the DC voltages from 8 to 24 volts and with derating down to 6 or up to 28 volts. Therefore there is a need for single stage compact and reliable drivers, and particularly drivers for LED-based automotive headlights with many individually-dimmable LEDs.
Circuit Architecture
[0016] Figure 2 illustrates a block diagram of a single stage LED driver system configured in accordance with an example embodiment of the present disclosure. As can be seen, the system includes a full bridge inverter and auxiliary circuit block 232 and a voltage-current converter 234. An electromagnetic interference (EMI) filter 230 is provided between block 232 and a DC voltage source 205. In addition, a diode rectifier 236 and filter 238 are between the voltage-current converter 234 and the LED string 210. As can be further seen, the LEDs of the LED string 210 are switchable, and a controller 220 is used to control the switches. Block 232 operates to provide a phase shift modulated AC voltage with a constant first harmonic to the voltage-current converter 234. The example embodiment overcomes disadvantages of conventional two-stage system by providing a single stage converter capable of operating with wide input voltage and zero voltage switching (ZVS) and low voltage stress across the switches.
[0017] Power is provided to the LED driver system by DC voltage source 205, in this example embodiment. The LED driver system provides power to the LEDs (Dl, D2, ... Dn- 1, Dn) in LED string 210. Each LED has a respective switch (S I, S2, ... Sn-1, Sn) under control of the controller 220. Note that a given string may include any number of LEDs, as denoted by Dn.
[0018] The EMI filter block 230 eliminates the high frequency current components exchanged with the DC power source 205, which can cause interference with other electrical systems, particularly in a vehicle or other complex system with several electrical components and interconnections. In other embodiments, the EMI block 230 may not be needed, depending on the EMI sensitivity of the given application. Any suitable EMI circuitry can be used here, whether it be custom or proprietary, as will be appreciated.
[0019] The full bridge inverter and auxiliary circuit block 232 is shown and described as a single block, but note that it may be implemented as distinct circuits. Further details regarding block 232 are shown in Figure 3. The full bridge inverter portion of block 232 has the main function of converting the input signal from the DC voltage source 205 to a quasi- square AC waveform using a phase-shift modulation scheme, explained in detail below. The auxiliary circuit of block 232 has the function of maintaining zero voltage switching (ZVS) for all the output voltage conditions of the circuit. The auxiliary circuit also reduces the current in the leading leg of the full bridge inverter at higher voltage levels.
[0020] The voltage-current converter block 234 is a passive circuit which generates AC current proportional to the fundamental harmonic of the voltage generated by the full bridge inverter of block 232. The diode bridge rectifier 236 rectifies the AC current from the voltage-current converter 234 and the filter circuit 238 reduces the ripple content of the rectified output current for LEDs in the LED string 210.
[0021] Figure 3 illustrates a further detailed schematic diagram of the block diagram shown in Figure 2. As can be seen, the full bridge inverter portion of block 232 includes two switch legs, the leading leg denoted by symbol A (with switches Sw and SIL) and the lagging leg denoted by symbol B (with switches Sw and SIL). All four switches operate at constant frequency fsw and are on for 50% of the time (disregarding the short dead-time to avoid shoot-through, during which switches from both legs are on, which would cause an undesirable short-circuit condition). The auxiliary circuit of block 232 includes two capacitors CAuxl and CAux2 and inductor LAux . Each switch symbol in block 232 (for example Sw) includes the switch in parallel with a diode and a capacitor. In some embodiments, the switching component can include the body diode of the switch and the internal capacitor of the switch. The diode rectifier 236 includes one or more diodes 320 that rectify the AC current from the voltage-current converter 234. The inductor L in the filter circuit 238 has two functions: a) it ensures the continuity of the current Zsrc in block 234, and b) reduces the ripple content of the rectified output current for LEDs in the LED string 210.
[0022] The main waveforms of the driver system are illustrated in Figure 4, and will further assist in explaining operation of the circuitry shown in Figure 3. Waveform 410 shows the gate signal of switch Sw, waveform 412 shows the gate signal of switch SIL, waveform 414 shows the gate signal of switch Sw, waveform 416 shows the gate signal of switch SIL, waveform 418 shows the vAB waveform of the voltage between nodes A and B in Figure 3, waveform 420 shows the current of the inductor Ls (iLs) in the voltage current converter 234, and waveform 422 shows the current of the auxiliary inductor (J-LA )■ The phase shift (φ) between the waveform of the two legs in block 232 is determined by a phase shift modulation controller such that the fundamental harmonic of the waveform vAB is kept constant. In other words, as V^c 205 increases, the phase shift controller decreases φ, and as V^c decreases, the phase shift modulation controller increases the φ. The voltage of node A, vA, is a complete square waveform and therefore the current in LAux has a triangular waveform 422 in synchronization with vA . This current has a negative value at the rising edge of vA and helps to provide ZVS for the leading leg. The lagging leg does not need an auxiliary circuit for ZVS .
[0023] The voltage -current converter block 234 includes inductor Ls and capacitor Cs tuned at the switching frequency fsw. This arrangement acts as an AC current source which keeps its output current isrc proportional to the first harmonic of vA that is kept constant by the aforementioned phase shift modulation controller. This current is rectified by the full bridge diode rectifier 236. Inductor L of the filter circuit 238 has two functions: it reduces the ripple content of the rectified output current for better light out of the LEDs and also ensures that the rectifier diodes conduct fully to guarantee the continuity of isrc . Because of the high impedance of the combination of Ls and Cs the higher harmonics of the current in Ls are negligible. Note that, as shown in Figure 4, iL waveform 420 is in phase with vAB waveform 418. Also, the rising zero crossing of iL waveform 420 happens before rising edge of vAB waveform 418. A negative current from the auxiliary circuit is provided so the net current leaving node A at the rising edge of vAB remains negative and ZVS of the leading leg is maintained.
[0024] Another aspect of the driver circuit is that at higher V^c the width of the waveform 418 vAB gets narrower to keep the fundamental harmonic of vAB constant. The consequence of the narrower vAB is that, as shown in the waveform 420, iL is more leading in respect to it . Therefore a larger portion of iL∑ goes to LAux instead of passing through the leading leg switches Sw and SIL and this reduces the conduction loss in them. The current leaving node B of the lagging leg is always negative at the rising edge of vB thus the ZVS property is always maintained.
[0025] The positive portion of the DC bus is represented by a positive rail ( + ) denoted at a topmost side of a DC capacitor (CDC) and a negative portion of the DC bus represented by a negative rail ( - ) denoted at the bottommost side of the DC capacitor (CDC). Because of the almost sinusoidal waveform 420 of iL the AC current injected to the DC bus of the full bridge inverter of block 232 has low higher level harmonic content. This reduces the size of CDC as well as the rating of the EMI filter block 230. To further reduce the size of the DC bus capacitor, a parallel branch including an inductor and a capacitor tuned at the switching frequency can be added to the circuit (parallel to the DC capacitor). Such a branch provides a low impedance path for the main harmonic of the ripple current injected to the DC bus, with no or otherwise negligible impact on the other functions of the system. Shrinking the size of these elements contributes considerably in having a more compact design and increasing the power density of the system.
[0026] Figure 5 and Figure 6 show the major waveforms of the converter simulated in a simulation software environment for two extreme cases with Vdc of 8 and 24 volts, respectively. Graphs 510, 520, 530, 540, 540, 550, 560, 570 and 580 show various major waveforms with the Vdc of eight volts. Graph 510 shows the gate voltage of the switching circuit Sw (G_S 1U - shown in solid line) and of the switching circuit SIL (G_S lL - shown in dotted line); graph 520 shows the gate voltage of the switching circuit Sw (G_S2U - shown in solid line) and of the switching circuit SIL (G_S2L - shown in dotted line); graph 530 shows the voltage of node B (V_B) and the voltage of node A (V_A); graph 540 shows the voltage difference between the voltage of node B and the voltage of node A (V_AB); graph 550 shows the current of the node A (I_A), the current of the auxiliary inductor (I(Laux)) and the current of the inductor of the voltage-current converter (I(LS)); graph 560 shows the current of node A (I_A) and the current of node B (I_B); graph 570 shows the source current (I_src) and graph 580 shows the current on the LED driver (I(L)). Graphs 610, 620, 630, 640, 650, 660, 670 and 680 show various major waveforms with the Vdc of 24 volts. Graph 610 shows the gate voltage of the switching circuit Siu (G_S 1U - shown in solid line) and of the switching circuit SIL (G_S 1L - shown in dotted line); graph 620 shows the gate voltage of the switching circuit S2u (G_S2U - shown in solid line) and of the switching circuit S2L (G_S2L - shown in dotted line); graph 630 shows the voltage of node B (V_B) and the voltage of node A (V_A); graph 640 shows the voltage difference between the voltage of node B and the voltage of node A (V_AB); graph 650 shows the current of the node A (I_A), the current of the auxiliary inductor (I(Laux)) and the current of the inductor of the voltage- current converter (I(LS)); graph 660 shows the current of node A (I_A) and the current of node B (I_B); graph 670 shows the source current (I_src) and graph 680 shows the current on the LED driver (I(L)).
[0027] The average of iL (graph 580 in Figure 5, graph 680 in Figure 6) is about 1A in both cases. In both the cases, at the rising edge of vAB (which is the same as rising edge of vA), shown in graph 540 of Figure 5 and graph 640 of Figure 6, the value of iLs (shown in graph 550 in Figure 5, and graph 650 in Figure 6) is positive but at this moment (also shown in graph 550 in Figure 5 and graph 650 in Figure 6) is negative enough to make iA = iL + iiAux negative to maintain ZVS in the leading leg. Also in both the cases, at the rising edge of vB (shown in graph 530 of Figure 5 and graph 630 of Figure 6) the value of iB is negative so ZVS of the lagging leg is maintained. Note that in the case of Vdc = 24V (Figure 6) the rms value of iA is considerably reduced compared to the case of Vdc = 8V (Figure 5).
[0028] Figure 7 illustrates a graphical diagram showing the effect on the LED current (iL), the source current (isrc), and the current of an inductor of the voltage-current converter when transitioning from twelve illuminated LEDs to eleven illuminated LEDs. Figure 8 illustrates a graphical diagram showing the effect on the LED current (tL), the source current (isrc), and an inductor of the voltage-current converter when transitioning from twelve illuminated LEDs to six illuminated LEDs.
[0029] In both Figure 7 and Figure 8, the LED current iL (shown by graph 710 in Figure 7, and graph 810 of Figure 8) settles down to its nominal value in less than 10 cycles. Graph 710 shows the LED current iL when transitioning from twelve illuminated LEDs to eleven illuminated LEDs, graph 720 shows the source current isrc when transitioning from twelve illuminated LEDs to eleven illuminated LEDs, and graph 730 shows the current of an inductor of the voltage-current converter (iLs) when transitioning from twelve illuminated LEDs to eleven illuminated LEDs. Graph 810 shows the LED current iL when transitioning from twelve illuminated LEDs to six illuminated LEDs, graph 820 shows the source current isrc when transitioning from twelve illuminated LEDs to six illuminated LEDs, and graph 830 shows the current of an inductor of the voltage-current converter (iLs) when transitioning from twelve illuminated LEDs to six illuminated LEDs.
[0030] The advantages of systems according to some embodiments of the present disclosure should be apparent in light of this disclosure. For instance, some possible advantages include a single stage of conversion (rather than two-stages of conversion); wide DC input voltage range (e.g., 8 to 24 volts), voltage boosting functionality (out of the current source nature of voltage-current converter circuit) with no extra boost stage needed; ZVS for all the switches, for all input voltage values and output power values (full load to zero load), thereby allowing for high frequency operation with no or little sacrifice in efficiency; small size and low-cost passive components; constant output current behavior, no need for a controller to intervene when LEDs turn on or off; low harmonic content in the input currents and small EMI filter components; equal or otherwise more balanced utilization of switches; switch voltage stresses limited to input DC voltage level, thereby allowing the use of lower voltage switches which have a lower cost and/or smaller on-state resistance and hence lower conduction losses; wide range of off-the-shelf options for the LED switches; reduced current in the leading leg switches at higher input DC voltages; and high reliability due to a reduced component count. Note that not all embodiments of the present disclosure may lead to all of these various advantages, and numerous configurations and variations will be apparent in light of this disclosure.
[0031] Figure 9 includes the schematic diagram of Figure 3 which has been extended to accommodate three LED chains (210, 910, and 930) with their controllers (230, 920 and 940, respectively) totally independent of each other. Sharing the AC source voltage vAB allows the three LED chains to be driven with only one full bridge converter and auxiliary block 232 and reduces the total cost compared to a configuration having three instances of the circuit shown in Figure 3. Note that only a single full bridge inverter and auxiliary circuit stage 232 is used to feed three separate voltage current converters, which greatly reduces the overall component count of the LED driver system. A first voltage-current converter is comprised of Ls and Cs, a second voltage-current converter is comprised of Lsi and Csi, and a third voltage-current converter is comprised of Ls3 and Csi- Thus, a single full bridge inverter and auxiliary circuit block 232 with the three voltage current converters and three associated diode bridges 320, 950 and 960, together drive three LED strings 310, 910, and 930, respectively, using a system that has a reduced total number of components relative to conventional architectures, while achieving constant current for all output voltage conditions of the circuit. Note that "constant current" as used herein is not intended to imply a literal constant current; rather, reference to constant current is intended to be a current that varies only within a given tolerance that is relatively small, such as a +/-10 variation, or a +1-5% variation, or a +1-2% variation, or a +/-1% variation, or a +1-0.5% variation. Further note that the tolerance may be asymmetric in some cases. In a more general sense, the tolerance of the constant current may vary from one embodiment to the next, depending on the given application.
[0032] Numerous variations and configurations will be apparent in light of this disclosure. For example, one example embodiment of the present disclosure provides a power supply system having a full bridge inverter, an auxiliary circuit, a voltage-current converter and a diode bridge. The full bridge inverter may be configured to convert energy from a DC power source to an AC voltage waveform using phase-shift modulation, the full bridge inverter having a leading leg and a lagging leg. The auxiliary circuit may be configured to maintain zero voltage switching of the switches in the leading leg for all output voltage conditions of the power supply system. The voltage-current converter may be configured to generate an AC current that is proportional to a fundamental harmonic of the AC voltage waveform generated by the full bridge inverter. The diode bridge may be configured to rectify the AC current from the voltage-current converter and produce a rectified output current. In some cases, the power supply system includes a filter configured to reduce ripple content of the rectified output current. In some cases, the full bridge inverter and the auxiliary circuit collectively operate to provide a phase shift modulated AC waveform between the AC nodes of the leading leg and the lagging leg of the full bridge inverter. In some cases, the leading leg includes a first top switch and a first bottom switch, and the lagging leg includes a second top switch and a second bottom switch. In some cases, all the switches operate with the same switching frequency. In some cases, the voltage-current converter includes a first inductor and a first capacitor that are tuned to the switching frequency. In some cases, the auxiliary circuit includes two auxiliary capacitors connected in series and an auxiliary inductor having one of it terminals connected between the two auxiliary capacitors. In some cases, the full bridge inverter, the auxiliary circuit, and the voltage-current converter together act as an AC current source with its output AC current to be rectified and filtered to feed a light emitting diode (LED) string. In some cases, the power supply system further includes one or more light emitting diode (LED) strings, and each LED string shares the full bridge inverter to draw power from the DC power source. In some cases, the power supply system also includes a second voltage-current converter configured to generate a second AC current that is proportional to the fundamental harmonic of the AC voltage waveform generated by the full bridge inverter, and a second diode bridge that is configured to rectify the second AC current from the second voltage-current converter and produce a second rectified output current.
[0033] Another example embodiment of the present disclosure provides a method of delivering constant current from a DC power source. The method includes converting, by a full bridge inverter, DC power provided by the DC power source into an AC voltage waveform with a constant first harmonic using phase-shift modulation; maintaining, by an auxiliary circuit that is operatively connected to the full bridge inverter, zero voltage switching (ZVS) for all output voltage conditions; generating, by a voltage-current converter that is operatively connected to the full bridge inverter, an AC current that is proportional to a fundamental harmonic of the AC voltage waveform generated by the full bridge inverter; and rectifying, by a diode bridge that is operatively connected to the voltage -current converter, the AC current to produce a rectified output current. In some cases, the full bridge inverter comprises a leading leg having a first top switch and a first bottom switch, and a lagging leg having a second top switch and a second bottom switch that all operate at the same switching frequency. In some cases, the auxiliary circuit is further configured to reduce the current in the leading leg of the full bridge inverter. In some cases, the method further includes reducing, by a filter circuit, ripple content of the rectified output current from the diode bridge. In some cases, the method further includes providing a low impedance path for a main harmonic of the ripple content by a branch inductor and a branch capacitor in parallel with a capacitor of the voltage-current converter. In some cases, the method further includes filtering, by an electromagnetic interference (EMI) filter, high frequency current components of the DC power from the DC power source before the full bridge invert converts the DC power into the AC voltage waveform.
[0034] In another example embodiment of the present disclosure, a light emitting diode (LED) driver for driving one or more LEDs in an LED string includes a full bridge inverter, an auxiliary circuit, a voltage-current converter, and a diode bridge. The full bridge inverter can be configured to convert a signal from a DC power source to an AC waveform using phase- shift modulation. The auxiliary circuit can be configured to maintain zero voltage switching for all output voltage conditions of the driver. The voltage-current converter can be configured to generate an AC current that is proportional to a fundamental harmonic of the AC waveform generated by the full bridge inverter. The diode bridge can be configured to rectify the AC current and produce a rectified output current. In some cases, the full bridge inverter includes a leading leg having a first top switch and a first bottom switch, and a lagging leg having a second top switch and a second bottom switch. In some cases, the voltage-current converter includes a first inductor and a first capacitor that are tuned to a switching frequency. In some cases, the LED driver further includes a second voltage- current converter configured to generate a second AC current that is proportional to the fundamental harmonic of the AC voltage waveform generated by the full bridge inverter, and a second diode bridge that is configured to rectify the second AC current from the second voltage-current converter and produce a second rectified output current.
[0035] The foregoing description of the embodiments of the disclosure has been presented for the purposes of illustration and description. It is not intended to be exhaustive or to limit the disclosure to the precise form disclosed. Many modifications and variations are possible in light of this disclosure. It is intended that the scope of the disclosure be limited not by this detailed description, but rather by the claims appended hereto.

Claims

CLAIMS What is claimed is:
1. A power supply system, comprising:
a full bridge inverter configured to convert energy from a direct current (DC) power source to an alternating current (AC) voltage waveform using phase-shift modulation, the full bridge inverter having a leading leg and a lagging leg; an auxiliary circuit configured to maintain zero voltage switching of one or more switches in the leading leg for all output voltage conditions of the power supply system;
a voltage-current converter configured to generate an AC current that is proportional to a fundamental harmonic of the AC voltage waveform generated by the full bridge inverter; and
a diode bridge that is configured to rectify the AC current from the voltage-current converter and produce a rectified output current.
2. The power supply system of claim 1 further comprising:
a filter configured to reduce ripple content of the rectified output current.
3. The power supply system of claim 1, wherein the full bridge inverter and the auxiliary circuit collectively operate to provide a phase shift modulated AC waveform between AC nodes of the leading leg and the lagging leg of the full bridge inverter.
4. The power supply system of claim 1, wherein the leading leg comprises a first top switch and a first bottom switch, and the lagging leg comprises a second top switch and a second bottom switch.
5. The power supply system of claim 4, where all the switches operate with the same switching frequency.
6. The power supply system of claim 5, wherein the voltage -current converter comprises a first inductor and a first capacitor that are tuned to the switching frequency.
7. The power supply system of claim 1, wherein the auxiliary circuit includes two auxiliary capacitors connected in series and an auxiliary inductor having one of it terminals connected between the two auxiliary capacitors.
8. The power supply system of claim 1, wherein the full bridge inverter, the auxiliary circuit, and the voltage-current converter together act as an AC current source with its output AC current to be rectified and filtered to feed a light emitting diode (LED) string.
9. The power supply system of claim 1, further comprising one or more light emitting diode (LED) strings, and wherein each LED string shares the full bridge inverter to draw power from the DC power source.
10. The power supply system of claim 1, further comprising:
a second voltage-current converter configured to generate a second AC current that is proportional to the fundamental harmonic of the AC voltage waveform generated by the full bridge inverter; and
a second diode bridge that is configured to rectify the second AC current from the second voltage-current converter and produce a second rectified output current.
11. A method of delivering constant current from a DC power source, the method comprising:
converting, by a full bridge inverter, DC power provided by the DC power source into an AC voltage waveform with a constant first harmonic using phase-shift modulation;
maintaining, by an auxiliary circuit that is operatively connected to the full bridge inverter, zero voltage switching (ZVS) for all output voltage conditions;
generating, by a voltage-current converter that is operatively connected to the full bridge inverter, an AC current that is proportional to a fundamental harmonic of the AC voltage waveform generated by the full bridge inverter; and rectifying, by a diode bridge that is operatively connected to the voltage-current converter, the AC current to produce a rectified output current.
12. The method of claim 11, wherein the full bridge inverter comprises a leading leg having a first top switch and first a bottom switch, and a lagging leg having a second top switch and a second bottom switch that all operate at the same switching frequency.
13. The method of claim 12, wherein the auxiliary circuit is further configured to reduce the current in the leading leg of the full bridge inverter.
14. The method of claim 11, further comprising:
reducing, by a filter circuit, ripple content of the rectified output current from the diode bridge.
15. The method of claim 14, further comprising:
providing a low impedance path for a main harmonic of the ripple content by a branch inductor and a branch capacitor in parallel with a capacitor of the voltage- current converter.
16. The method of claim 11, further comprising:
filtering, by an electromagnetic interference (EMI) filter, high frequency current components of the DC power from the DC power source before the full bridge invert converts the DC power into the AC voltage waveform.
17. A light emitting diode (LED) driver for driving one or more LEDs in an LED string, the LED driver comprising:
a full bridge inverter configured to convert a signal from a DC power source to an AC waveform using phase- shift modulation;
an auxiliary circuit configured to maintain zero voltage switching for all output voltage conditions of the driver;
a voltage-current converter configured to generate an AC current that is proportional to a fundamental harmonic of the AC waveform generated by the full bridge inverter; and
a diode bridge configured to rectify the AC current and produce a rectified output current.
18. The LED driver of claim 17, wherein the full bridge inverter comprises a leading leg having a first top switch and a first bottom switch, and a lagging leg having a second top switch and a second bottom switch.
19. The LED driver of claim 17, wherein the voltage-current converter includes a first inductor and a first capacitor that are tuned to a switching frequency.
20. The LED driver of claim 17, further comprising:
a second voltage-current converter configured to generate a second AC current that is proportional to the fundamental harmonic of the AC voltage waveform generated by the full bridge inverter; and
a second diode bridge that is configured to rectify the second AC current from the second voltage-current converter and produce a second rectified output current.
PCT/US2018/024774 2017-04-04 2018-03-28 Constant output current led driver Ceased WO2018187119A1 (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
DE112018001847.4T DE112018001847T5 (en) 2017-04-04 2018-03-28 CONSTANT OUTPUT CURRENT LED DRIVER

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
US15/478,360 US10356861B2 (en) 2017-04-04 2017-04-04 Constant output current LED driver
US15/478,360 2017-04-04

Publications (1)

Publication Number Publication Date
WO2018187119A1 true WO2018187119A1 (en) 2018-10-11

Family

ID=61972637

Family Applications (1)

Application Number Title Priority Date Filing Date
PCT/US2018/024774 Ceased WO2018187119A1 (en) 2017-04-04 2018-03-28 Constant output current led driver

Country Status (3)

Country Link
US (1) US10356861B2 (en)
DE (1) DE112018001847T5 (en)
WO (1) WO2018187119A1 (en)

Families Citing this family (10)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP3503684B1 (en) * 2017-12-19 2022-08-10 Aptiv Technologies Limited Head lamp lighting system of a vehicle and its control method
TWI671984B (en) * 2018-11-14 2019-09-11 群光電能科技股份有限公司 Power supply device
DE102019103755A1 (en) * 2019-02-14 2020-08-20 HELLA GmbH & Co. KGaA Method for reducing the maximum current drawn by an LED matrix
AU2020226734A1 (en) * 2019-02-21 2021-09-30 Dialight Corporation Led lighting assembly with integrated power conversion and digital transceiver
CN111130355B (en) * 2019-12-30 2021-05-04 四川甘华电源科技有限公司 Full-bridge direct-current converter for realizing full-range soft switching
JP6953566B2 (en) * 2020-02-14 2021-10-27 株式会社京三製作所 High frequency power supply and its output control method
WO2023001714A1 (en) 2021-07-23 2023-01-26 Signify Holding B.V. A driver for delivering current to a led load
US11742752B2 (en) 2022-01-21 2023-08-29 Inventronics Gmbh DC-DC converter having two resonant circuits and method for control and operation of a DC-DC converter
US12160178B2 (en) * 2022-07-08 2024-12-03 Delta Electronics, Inc. Soft-switched resonant DC-DC converter with wide gain range
KR102522372B1 (en) * 2022-10-31 2023-04-17 에스케이시그넷 주식회사 Phase Shift Full Bridge Converter circuit for Eliminating Lagging Leg

Citations (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20110273909A1 (en) * 2010-05-04 2011-11-10 Chicony Power Technology Co., Ltd. Full-bridge phase-shift converter with auxiliary zero-voltage-switching circuit

Family Cites Families (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US6034489A (en) * 1997-12-04 2000-03-07 Matsushita Electric Works R&D Laboratory, Inc. Electronic ballast circuit
FR2926745B1 (en) * 2008-01-28 2013-04-12 Hacoma METHOD AND DEVICE FOR PERFORMING DRILLING IN THERMOPLASTIC COMPOSITE MATERIAL
US8629627B2 (en) * 2010-06-29 2014-01-14 Texas Instruments Incorporated Multi-transformer LLC resonant converter circuits and methods
US8723487B2 (en) 2012-03-09 2014-05-13 Majid Pahlevaninezhad Zero voltage switching interleaved boost AC/DC converter

Patent Citations (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20110273909A1 (en) * 2010-05-04 2011-11-10 Chicony Power Technology Co., Ltd. Full-bridge phase-shift converter with auxiliary zero-voltage-switching circuit

Also Published As

Publication number Publication date
DE112018001847T5 (en) 2019-12-24
US10356861B2 (en) 2019-07-16
US20180288839A1 (en) 2018-10-04

Similar Documents

Publication Publication Date Title
US10356861B2 (en) Constant output current LED driver
US9924569B2 (en) LED driving circuit
CN102474189B (en) Low-cost electric source circuit and method
Zhang et al. A precise passive current balancing method for multioutput LED drivers
US8310165B2 (en) High-voltage LED drive scheme with partial power regulation
US20100052568A1 (en) Light emitting diode array driver
EP3186877B1 (en) Floating output voltage boost-buck regulator using a buck controller with low input and low output ripple
US20120104964A1 (en) Led driver with pwm dimming and method thereof
US10256712B2 (en) Current ripple sensing controller for a single-stage LED driver
US20080036526A1 (en) Control circuit for multi-phase converter
CA2703320A1 (en) Electronic ballast with step up/down power factor correction dc-dc converter suitable for high input voltage applications
WO2016028224A1 (en) Single-stage multi-string led driver with dimming
US9992826B1 (en) Dual mode constant current LED driver
CN1387307A (en) Self-excitation oscillation synchronous step-up transducer
Qiu et al. Current-ripple-based control strategy to achieve low-frequency ripple cancellation in single-stage high-power LED driver
Wang et al. A family of capacitive current balancing methods for multi-output LED drivers
Suthar et al. A composite converter based automotive LED driver
CN113286398A (en) Load driving circuit and driving method
KR20090105229A (en) Parallel Connection Switching Converter Using Charge Sharing
Reddy et al. Input controlled series-resonant converter for LED lighting application
EP2923531B1 (en) Driver for led lighting and method of driving led lighting
Sekhar et al. Input regulated soft switched ripple free current LED driver
EP4199331B1 (en) Hybrid switched-mode converter, method of operating the same, and lighting system
de Souza et al. Street lighting system based on led modular drivers
EP4312359A1 (en) Lcc converter for an led load, and led luminaire

Legal Events

Date Code Title Description
121 Ep: the epo has been informed by wipo that ep was designated in this application

Ref document number: 18718073

Country of ref document: EP

Kind code of ref document: A1

122 Ep: pct application non-entry in european phase

Ref document number: 18718073

Country of ref document: EP

Kind code of ref document: A1