EP4295649A1 - Adaptive in-service mitigation of light flicker - Google Patents

Adaptive in-service mitigation of light flicker

Info

Publication number
EP4295649A1
EP4295649A1 EP22718151.8A EP22718151A EP4295649A1 EP 4295649 A1 EP4295649 A1 EP 4295649A1 EP 22718151 A EP22718151 A EP 22718151A EP 4295649 A1 EP4295649 A1 EP 4295649A1
Authority
EP
European Patent Office
Prior art keywords
vbus
converter
bus voltage
duration
switching period
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.)
Pending
Application number
EP22718151.8A
Other languages
German (de)
French (fr)
Inventor
Manuel EGLE
Harald Netzer
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.)
Tridonic GmbH and Co KG
Original Assignee
Tridonic GmbH and Co KG
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 Tridonic GmbH and Co KG filed Critical Tridonic GmbH and Co KG
Publication of EP4295649A1 publication Critical patent/EP4295649A1/en
Pending 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]
    • H05B45/30Driver circuits
    • H05B45/37Converter circuits
    • H05B45/3725Switched mode power supply [SMPS]
    • H05B45/382Switched mode power supply [SMPS] with galvanic isolation between input and 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
    • H02M1/0003Details of control, feedback or regulation circuits
    • H02M1/0016Control circuits providing compensation of output voltage deviations using feedforward of disturbance parameters
    • H02M1/0022Control circuits providing compensation of output voltage deviations using feedforward of disturbance parameters the disturbance parameters being input voltage fluctuations
    • 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
    • H02M1/0003Details of control, feedback or regulation circuits
    • H02M1/0025Arrangements for modifying reference values, feedback values or error values in the control loop of a converter
    • 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
    • H02M3/33507Conversion 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 with automatic control of the output voltage or current, e.g. flyback converters
    • H02M3/33523Conversion 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 with automatic control of the output voltage or current, e.g. flyback converters with galvanic isolation between input and output of both the power stage and the feedback loop
    • 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
    • H05B45/14Controlling the intensity of the light using electrical feedback from LEDs or from LED modules
    • 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
    • H05B45/32Pulse-control circuits
    • H05B45/325Pulse-width modulation [PWM]
    • 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
    • H05B45/345Current stabilisation; Maintaining constant current
    • 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]
    • H05B45/50Circuit arrangements for operating light-emitting diodes [LED] responsive to malfunctions or undesirable behaviour of LEDs; responsive to LED life; Protective circuits
    • H05B45/59Circuit arrangements for operating light-emitting diodes [LED] responsive to malfunctions or undesirable behaviour of LEDs; responsive to LED life; Protective circuits for reducing or suppressing flicker or glow effects

Definitions

  • the present disclosure relates to lighting technology, and in particular to a driver for an LED load and a lighting system comprising these two.
  • Typical multi-stage LED drivers convert an AC input voltage into a DC bus voltage such as 400V, which forms a basis for a supply of a constant DC output current for an LED load.
  • a known issue of such LED drivers is that the DC bus voltage may pick up undesirable noise components such as a residual 100Hz ripple arising from rectification of the 50Hz AC input voltage and/or noise originating from an DALI power supply integrated into the LED driver. These noise components translate into corresponding noise components of the DC output current and thus into light flicker issues.
  • the relatively slow feedback control of the DC output current may be accompanied by a relatively fast feedforward control that enables an immediate response to fluctuations of the DC bus voltage.
  • Such a feedforward control is based on a feedforward gain which describes an extent of change of a switching period of the LED driver for a given change of the DC bus voltage in order to maintain a constant DC output current. Yet the feedforward gain may vary between different operating points, which may emerge in connection with dimming adjustments, for example. Summary
  • the object of the present disclosure is to provide a driver for an LED load which is capable of performing adaptive in-service mitigation of such light flicker.
  • a first aspect of the present disclosure relates to a driver for an LED load.
  • the driver comprises a DC/DC converter configured to provide a DC output current for the LED load in dependence of a DC bus voltage, preferably the amplitude of the DC bus voltage, and a duration of a switching period of the DC/DC converter.
  • the driver further comprises a control unit configured to perform a feedback control of a nominal duration of the switching period of the DC/DC converter in dependence of a target value for the DC output current; perform a feedforward control of the duration of the switching period of the DC/DC converter in dependence of the nominal duration of the switching period, the DC bus voltage and a feedforward gain; and determine the feedforward gain by a variation of the DC bus voltage.
  • the control unit may farther be configured, so as to determine the feedforward gain by the variation of the DC bus voltage, to: determine the feedforward gain by a variation of the DC bus voltage in response to a variation of the target value for the output current.
  • the control unit may farther be configured, so as to determine the feedforward gain by the variation of the DC bus voltage, to: measure a first average value of the duration of the switching period of the DC/DC converter at a first nominal value of the DC bus voltage over a given plurality of the duration of the switching period; measure a second average value of the duration of the switching period of the DC/DC converter at a second nominal value of the DC bus voltage that differs from the first nominal value over the given plurality of the duration of the switching periods; and determine the feedforward gain as a differential quotient of the difference of the first and second average values of the duration of the switching period and the difference of the first and second nominal values of the DC bus voltage.
  • the difference of the first and second nominal values of the DC bus voltage may comprise up to 1/80, and more preferably up to 1/200, of the first or second nominal value of the DC bus voltage.
  • the control unit may further be configured, so as to measure the second average value of the duration of the switching period of the DC/DC converter at the second nominal value of the DC bus voltage, to; ramp the DC bus voltage from the first nominal value to the second nominal value in dependence of a time constant of the feedback control of the DC/DC converter.
  • the control unit may further be configured, so as to measure the second average value of the duration of the switching period of the DC/DC converter at the second nominal value of the DC bus voltage, to: ramp the DC bus voltage from the second nominal value back to the first nominal value in dependence of the time constant of the feedback control of the DC/DC converter.
  • the DC/DC converter may comprise a half-bridge resonant converter configured to provide the DC output current for the LED load in dependence of the DC bus voltage and the duration of the switching period of the DC/DC converter.
  • the driver may further comprise a power factor correcting, PFC, converter configured to provide the DC bus voltage for the DC/DC converter.
  • PFC power factor correcting
  • the control unit may comprise a proportional- integral feedback controller configured to perform the feedback control of the nominal duration of the switching period of the DC/DC converter.
  • a second aspect of the present disclosure relates to a lighting system.
  • the lighting system comprises a dri ver according to any one of the preceding claims; and an LED load configured to be supplied by the driver.
  • the present disclosure provides a driver for an LED load which is capable of adaptive in-service adjustment of a feedforward gain to mitigate undesirable noise components and corresponding light flicker at every conceivable operating point of the driver.
  • FIG. 1 illustrates a driver 1 for an LED load in accordance with the present disclosure
  • FIG. 2 illustrates a feedback control and a feedforward control in accordance with the present disclosure.
  • FIG, 1 illustrates a driver 1 for an LED load in accordance with the present disclosure.
  • the driver 1 comprises a DC/DC converter 103 configured to provide a DC output current 21, ILED for the LED load in dependence of a DC bus voltage 26, VBUS , preferably the amplitude of the DC bus voltage 26, VBUS, and a duration of a switching period 28, TUB of the DC/DC converter 103.
  • the DC/DC converter 103 may comprise a half-bridge (HB) resonant converter, which may in turn comprise a resonant tank circuit of LLC type, for example.
  • HB half-bridge
  • the driver 1 of FIG, 1 may further comprise a power factor correction (PFC) converter 102, such as a boost converter, configured to provide the DC bus voltage 26, VBUS for the DC/DC converter 103, and a filter and rectifier circuitry 101 configured to filter electromagnetic noise and to rectify an AC mains input voltage at an input of the PFC converter 102.
  • PFC power factor correction
  • the driver 1 of FIG. 1 may further comprise an isolating transformer 104 and a subsequent rectifier and sensing circuitry 105 configured to provide, via a further isolating transformer 108, an indication of the DC output current 21, ILED for the LED load.
  • the driver 1 further comprises a control unit 106, 109 which will be explained in more detail in connection with FIG. 2 below.
  • the control unit 106, 109 includes an application- specific integrated circuit (ASIC) 106 and a microcontroller (pC) 109 and is supplied by a DC/DC converter 107.
  • the m € 109 is configured to measure and detect an AC or DC mains input voltage by means of a mains detection circuitry 110.
  • FIG. 1 further shows a digital addressable lighting interface (DALI) unit 111 interconnected with the control unit 106, 109 by means of optocouplers 112.
  • the DALI unit 111 may receive dimming commands for varying an operating point of the DC/DC converter 103.
  • FIG. 2 illustrates a feedback control and a feedforward control in accordance with the present disclosure.
  • the control unit 106, 109 is configured to perform a feedback control of a nominal duration of the switching period 25, THB_( L ⁇ I of the DC/DC converter 103 in dependence of a target value 23, lLED_avg_target for the DC output current 21, ILED.
  • a feedback controller 201 such as a proportional-integral (PI) feedback controller provides the nominal duration of the switching period 25, Tmp ctri in dependence of a feedback control error between the target value 23, lLED_avg_target for the DC output current 21 , ILED and an indication 22, iLED jivg of the DC output current 21, ILED.
  • the indication 22, lLED_avg may be provided by an LED current sensing unit 203 implemented by the rectifier and sensing circuitry 105 as well as by the sensing transformer 108 of FIG. 1.
  • the target value 23, lLED_avgjarget and the indication 22 may comprise analog or digital values.
  • the duration of the switching period 28, TU B of the DC/DC converter 103 corresponds to the nominal duration of the switching period 25, TU BJ »).
  • noise components picked up by the DC bus voltage 26, VBIJS translate into corresponding noise components of the DC output current 21 , ILED and thus into light flicker issues.
  • control unit 106, 109 is further configured to perforin said feedforward control of the duration of the switching period 28, TUB of the DC/DC converter 103 in dependence of the nominal duration of the switching period 25, T HB_ctr], the DC bus voltage 26, VBIJS, preferably the amplitude of the DC bus voltage 26, VBOS, and a feedforward gain ATHB/AVBUS.
  • a feedforward controller 202 is provided for said feedforward control.
  • the control unit 106, 109 is further configured to determine the feedforward gain DTHB/AVBUS by a variation of the DC bus voltage 26, VBIJS, and may further be configured to determine the feedforward gain AIHB/AVBUS by a variation of the DC bus voltage 26, VBIJS in response to a variation of the target value 23, l LED-avgja3 ⁇ 4et for the output current 21, l LED-avg .
  • This variation of the target value 23, lLED_avg_target may be caused by dimming commands, for example.
  • control unit 106, 109 may further be configured to:
  • the second nominal value VBUSI of the DC bus voltage 26, VBUS may be greater or less than the first nominal value VBUSI of the DC bus voltage 26, VBUS.
  • the difference of the first and second nominal values AVBUS of the DC bus voltage 26, VBU S may comprise up to 1/80, and more preferably up to 1/200, of the nominal values VBUSI , VB U SI of the DC bus voltage 26, VBUS.
  • AVBUS 400V
  • AVBUS may comprise up to 5V and more preferably up to 2V, In other words, a magnitude of AVBUS is small relative to the magnitudes of the nominal values VBUSI, VBUS2, SO that a resulting variation of the illumination is kept small
  • control unit 106, 109 may further be configured, so as to measure the second average value THBI of the duration of the switching period 28, THB of the DC/DC converter 103 at the second nominal value VBUSI of the DC bus voltage 26, VBUS, to: ramp the DC bus voltage 26, VBUS from the first nominal value VBUSI to the second nominal value Veus2 in dependence of a time constant of the feedback control of the DC/DC converter 103.
  • a slope of the ramp of the DC bus voltage 26, VBUS is small enough as to enable the feedback control of the DC/DC converter 103 to correct the control error that emerges due to the changing DC bus voltage 26, VBUS without producing a time lag or overswings.
  • control unit 106, 109 may further be configured, so as to measure the second average value I of the duration of the switching period 28, TU B of the DC/DC converter 103 at the second nominal value V of the DC bus voltage 26, VBUS, to: ramp the DC bus voltage 26, VBUS from the second nominal value VBUS2 back to the first nominal value VBLJSI in dependence of the time constant of the feedback control of the DC/DC converter 103.
  • the duration of the switching period 28, THB of the DC/DC converter 103 corresponds to a sum of the nominal duration of the switching period 25, THB_ CIT 1 and an adjustment value 27, T HB-fefo that depends on the determined feedforward gain and the noise components picked up by the DC bus voltage 26, expressed as a difference between the instantaneous DC bus voltage 26, VBUS and the nominal DC bus voltage 26,

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

Abstract

Disclosed is a driver (1) for an LED load. The driver (1) comprises a DC/DC converter (103) configured to provide a DC output current (21, ILED) for the LED load in dependence of a DC bus voltage (26, VBUS) and a duration of a switching period (28, THB) of the DC/DC converter (103). The driver (1) further comprises a control unit (106, 109) configured to perform a feedback control of a nominal duration of the switching period (25, THB_ctrl) of the DC/DC converter (103) in dependence of a target value (23, ILED _avg_target) for the DC output current (21, ILED avg); perform a feedforward control of the duration of the switching period (28, THB) of the DC/DC converter (103) in dependence of the nominal duration of the switching period (25, THB_ctrl), the DC bus voltage (26, VBUS) and a feedforward gain (ΔTHB/Δ VBUS); and determine the feedforward gain (ΔTHB/Δ VBUS) by a variation of the DC bus voltage (26, VBUS). The driver (1) is capable of performing adaptive in-service mitigation of light flicker.

Description

ADAPTIVE IN-SERVICE MITIGATION OF LIGHT FLICKER
Description:
Technical Field
The present disclosure relates to lighting technology, and in particular to a driver for an LED load and a lighting system comprising these two.
Background Art
Typical multi-stage LED drivers convert an AC input voltage into a DC bus voltage such as 400V, which forms a basis for a supply of a constant DC output current for an LED load.
A known issue of such LED drivers is that the DC bus voltage may pick up undesirable noise components such as a residual 100Hz ripple arising from rectification of the 50Hz AC input voltage and/or noise originating from an DALI power supply integrated into the LED driver. These noise components translate into corresponding noise components of the DC output current and thus into light flicker issues.
In order to mitigate the light flicker spectrum, the relatively slow feedback control of the DC output current may be accompanied by a relatively fast feedforward control that enables an immediate response to fluctuations of the DC bus voltage.
Such a feedforward control is based on a feedforward gain which describes an extent of change of a switching period of the LED driver for a given change of the DC bus voltage in order to maintain a constant DC output current. Yet the feedforward gain may vary between different operating points, which may emerge in connection with dimming adjustments, for example. Summary
The object of the present disclosure is to provide a driver for an LED load which is capable of performing adaptive in-service mitigation of such light flicker.
The invention is defined by the appended independent claims. Preferred embodiments are set forth in the dependent claims and in the following description and drawings.
A first aspect of the present disclosure relates to a driver for an LED load. The driver comprises a DC/DC converter configured to provide a DC output current for the LED load in dependence of a DC bus voltage, preferably the amplitude of the DC bus voltage, and a duration of a switching period of the DC/DC converter. The driver further comprises a control unit configured to perform a feedback control of a nominal duration of the switching period of the DC/DC converter in dependence of a target value for the DC output current; perform a feedforward control of the duration of the switching period of the DC/DC converter in dependence of the nominal duration of the switching period, the DC bus voltage and a feedforward gain; and determine the feedforward gain by a variation of the DC bus voltage.
The control unit may farther be configured, so as to determine the feedforward gain by the variation of the DC bus voltage, to: determine the feedforward gain by a variation of the DC bus voltage in response to a variation of the target value for the output current.
The control unit may farther be configured, so as to determine the feedforward gain by the variation of the DC bus voltage, to: measure a first average value of the duration of the switching period of the DC/DC converter at a first nominal value of the DC bus voltage over a given plurality of the duration of the switching period; measure a second average value of the duration of the switching period of the DC/DC converter at a second nominal value of the DC bus voltage that differs from the first nominal value over the given plurality of the duration of the switching periods; and determine the feedforward gain as a differential quotient of the difference of the first and second average values of the duration of the switching period and the difference of the first and second nominal values of the DC bus voltage. The difference of the first and second nominal values of the DC bus voltage may comprise up to 1/80, and more preferably up to 1/200, of the first or second nominal value of the DC bus voltage.
The control unit may further be configured, so as to measure the second average value of the duration of the switching period of the DC/DC converter at the second nominal value of the DC bus voltage, to; ramp the DC bus voltage from the first nominal value to the second nominal value in dependence of a time constant of the feedback control of the DC/DC converter.
The control unit may further be configured, so as to measure the second average value of the duration of the switching period of the DC/DC converter at the second nominal value of the DC bus voltage, to: ramp the DC bus voltage from the second nominal value back to the first nominal value in dependence of the time constant of the feedback control of the DC/DC converter.
The DC/DC converter may comprise a half-bridge resonant converter configured to provide the DC output current for the LED load in dependence of the DC bus voltage and the duration of the switching period of the DC/DC converter.
The driver may further comprise a power factor correcting, PFC, converter configured to provide the DC bus voltage for the DC/DC converter.
The control unit may comprise a proportional- integral feedback controller configured to perform the feedback control of the nominal duration of the switching period of the DC/DC converter.
A second aspect of the present disclosure relates to a lighting system. The lighting system comprises a dri ver according to any one of the preceding claims; and an LED load configured to be supplied by the driver. Advantageous Effects
The present disclosure provides a driver for an LED load which is capable of adaptive in-service adjustment of a feedforward gain to mitigate undesirable noise components and corresponding light flicker at every conceivable operating point of the driver.
Brief Description of Drawings
The above-described aspects and implementations will now be explained with reference to the accompanying drawings, in which the same or similar reference numerals designate the same or similar elements.
The features of these aspects and implementations may be combined with each other unless specifically stated otherwise.
The drawings are to be regarded as being schematic representations, and elements illustrated in the drawings are not necessarily shown to scale. Rather, the various elements are represented such that their function and general purpose become apparent to those skilled in the art.
FIG. 1 illustrates a driver 1 for an LED load in accordance with the present disclosure; and
FIG. 2 illustrates a feedback control and a feedforward control in accordance with the present disclosure.
Detailed Descriptions of Drawings
FIG, 1 illustrates a driver 1 for an LED load in accordance with the present disclosure.
The driver 1 comprises a DC/DC converter 103 configured to provide a DC output current 21, ILED for the LED load in dependence of a DC bus voltage 26, VBUS , preferably the amplitude of the DC bus voltage 26, VBUS, and a duration of a switching period 28, TUB of the DC/DC converter 103. The DC/DC converter 103 may comprise a half-bridge (HB) resonant converter, which may in turn comprise a resonant tank circuit of LLC type, for example.
On an input side, the driver 1 of FIG, 1 may further comprise a power factor correction (PFC) converter 102, such as a boost converter, configured to provide the DC bus voltage 26, VBUS for the DC/DC converter 103, and a filter and rectifier circuitry 101 configured to filter electromagnetic noise and to rectify an AC mains input voltage at an input of the PFC converter 102.
On an output side, the driver 1 of FIG. 1 may further comprise an isolating transformer 104 and a subsequent rectifier and sensing circuitry 105 configured to provide, via a further isolating transformer 108, an indication of the DC output current 21, ILED for the LED load.
The driver 1 further comprises a control unit 106, 109 which will be explained in more detail in connection with FIG. 2 below. In the example of FIG. 1 , the control unit 106, 109 includes an application- specific integrated circuit (ASIC) 106 and a microcontroller (pC) 109 and is supplied by a DC/DC converter 107. The m€ 109 is configured to measure and detect an AC or DC mains input voltage by means of a mains detection circuitry 110.
FIG. 1 further shows a digital addressable lighting interface (DALI) unit 111 interconnected with the control unit 106, 109 by means of optocouplers 112. The DALI unit 111 may receive dimming commands for varying an operating point of the DC/DC converter 103.
FIG. 2 illustrates a feedback control and a feedforward control in accordance with the present disclosure.
The control unit 106, 109 is configured to perform a feedback control of a nominal duration of the switching period 25, THB_(L·I of the DC/DC converter 103 in dependence of a target value 23, lLED_avg_target for the DC output current 21, ILED.
To that end, a feedback controller 201 such as a proportional-integral (PI) feedback controller provides the nominal duration of the switching period 25, Tmp ctri in dependence of a feedback control error between the target value 23, lLED_avg_target for the DC output current 21 , ILED and an indication 22, iLEDjivg of the DC output current 21, ILED. According to FIG.2, the indication 22, lLED_avg may be provided by an LED current sensing unit 203 implemented by the rectifier and sensing circuitry 105 as well as by the sensing transformer 108 of FIG. 1. Depending on the implementation, the target value 23, lLED_avgjarget and the indication 22 may comprise analog or digital values.
Without a feedforward control of the duration of the switching period 28, TUB of the DC/DC converter 103, the duration of the switching period 28, TUB of the DC/DC converter 103 corresponds to the nominal duration of the switching period 25, TUBJ»), In such a configuration, noise components picked up by the DC bus voltage 26, VBIJS translate into corresponding noise components of the DC output current 21 , ILED and thus into light flicker issues.
To mitigate such noise components in the DC output current 21, ILED, the control unit 106, 109 is further configured to perforin said feedforward control of the duration of the switching period 28, TUB of the DC/DC converter 103 in dependence of the nominal duration of the switching period 25, T HB_ctr], the DC bus voltage 26, VBIJS, preferably the amplitude of the DC bus voltage 26, VBOS, and a feedforward gain ATHB/AVBUS. For said feedforward control, a feedforward controller 202 is provided.
The control unit 106, 109 is further configured to determine the feedforward gain DTHB/AVBUS by a variation of the DC bus voltage 26, VBIJS, and may further be configured to determine the feedforward gain AIHB/AVBUS by a variation of the DC bus voltage 26, VBIJS in response to a variation of the target value 23, lLED-avgja¾et for the output current 21, lLED-avg. This variation of the target value 23, lLED_avg_target may be caused by dimming commands, for example.
More specifically, to determine the feedforward gain DTHB/D VBIJS by the variation of the DC bus voltage 26, VBUS, the control unit 106, 109 may further be configured to:
- disable feedforward control of the duration of the switching period 28, TUB (i.e., disable the feedforward controller 202) while determining the feedforward gain ATBB/AVBUS (see next); - measure a first average value THBI of the duration of the switching period 28, THE of the DC/DC converter 103 at a first nominal value VBUSI of the DC bus voltage 26, VBUS over a given plurality of the duration of the switching period 28, THE;
- measure a second average value THB2 of the duration of the switching period 28, TUB of the DC/DC converter 103 at a second nominal value VBUSI of the DC bus voltage 26, VBUS that differs from the first nominal value VBUSI over the given plurality of the duration of the switching periods 28, TUB; and
- determine the feedforward gain DTHB/AVBUS as a differential quotient of the difference of the first and second average values DTHB of the duration of the switching period 28, THB and the difference of the first and second nominal values AVBUS of the DC bus voltage 26, VBUS:
In particular, the second nominal value VBUSI of the DC bus voltage 26, VBUS may be greater or less than the first nominal value VBUSI of the DC bus voltage 26, VBUS. The difference of the first and second nominal values AVBUS of the DC bus voltage 26, VBUS may comprise up to 1/80, and more preferably up to 1/200, of the nominal values VBUSI , VBUSI of the DC bus voltage 26, VBUS. As an example, for VBUS = 400V, AVBUS may comprise up to 5V and more preferably up to 2V, In other words, a magnitude of AVBUS is small relative to the magnitudes of the nominal values VBUSI, VBUS2, SO that a resulting variation of the illumination is kept small
To mitigate the resulting variation of the illumination even more, the control unit 106, 109 may further be configured, so as to measure the second average value THBI of the duration of the switching period 28, THB of the DC/DC converter 103 at the second nominal value VBUSI of the DC bus voltage 26, VBUS, to: ramp the DC bus voltage 26, VBUS from the first nominal value VBUSI to the second nominal value Veus2 in dependence of a time constant of the feedback control of the DC/DC converter 103. In other words, a slope of the ramp of the DC bus voltage 26, VBUS is small enough as to enable the feedback control of the DC/DC converter 103 to correct the control error that emerges due to the changing DC bus voltage 26, VBUS without producing a time lag or overswings.
The same may apply in a reverse direction of the variation of the DC bus voltage 26, V as the control unit 106, 109 may further be configured, so as to measure the second average value I of the duration of the switching period 28, TUB of the DC/DC converter 103 at the second nominal value V of the DC bus voltage 26, VBUS, to: ramp the DC bus voltage 26, VBUS from the second nominal value VBUS2 back to the first nominal value VBLJSI in dependence of the time constant of the feedback control of the DC/DC converter 103.
When the feedforward control of the duration of the switching period 28, THB of the DC/DC converter 103 is used in addition to the feedback control, the duration of the switching period 28, THB of the DC/DC converter 103 corresponds to a sum of the nominal duration of the switching period 25, THB_CIT1 and an adjustment value 27, THB-fefo that depends on the determined feedforward gain and the noise components picked up by the DC bus voltage 26, expressed as a difference between the instantaneous DC bus voltage 26, VBUS and the nominal DC bus voltage 26,
In such a configuration, a translation of the noise components picked up by the DC bus voltage 26, VBUS into corresponding noise components of the DC output current 21, 1 LED and thus into light flicker issues is effectively minimized.

Claims

Claims:
1. A driver (1) for an LED load, comprising a DC/DC converter (103) configured to provide a DC output current (21 , ILED) for the LED load in dependence of a DC bus voltage (26, VBUS) and a duration of a switching period (28, THB) of the DC/DC converter (103); and a control unit (106, 109) configured to perform a feedback control of a nominal duration of the switching period (25,
THB ctri) of the DC/DC converter (103) in dependence of a target value (23, ILED avgjarget) for the DC output current (21, ILED avg); perform a feedforward control of the duration of the switching period (28, THB) of the DC/DC converter (103) in dependence of the nominal duration of the switching period (25,
THB ctri), the DC bus voltage (26, VBUS) and a feedforward gain (DTHB/D VBUS); and determine the feedforward gain (DTHB/D VBUS) by a variation of the DC bus voltage
(26, VBUS).
2. The driver (1) of claim 1, wherein the control unit (106, 109) is further configured, so as to determine the feedforward gain (DTHB/D VBUS) by the variation of the DC bus voltage (26, VBUS), to: determine the feedforward gain (DTHB/D VBUS) by a variation of the DC bus voltage (26, VBUS) in response to a variation of the target value (23, ILED avgjarget) for the output current (21, iLED avg).
3. The driver (1) of claim 1 or claim 2, wherein the control unit (106, 109) is further configured, so as to determine the feedforward gain (DTHB/D VBUS) by the variation of the DC bus voltage (26, VBUS), to: measure a first average value (THBI) of the duration of the switching period (28,
THB) of the DC/DC converter (103) at a first nominal value (VBUSI) of the DC bus voltage (26, VBUS) over a given plurality of the duration of the switching period (28, THB); measure a second average value (THB2) of the duration of the switching period (28, THB) of the DC/DC converter (103) at a second nominal value (VBUS2) of the DC bus voltage (26, VBUS) that differs from the first nominal value (VBUSI) over the given plurality of the duration of the switching periods (28, THB); and determine the feedforward gain (ATHB/AVBUS) as a differential quotient of the difference of the first and second average values (DTHB = THB2 - THBI) of the duration of the switching period (28, THB) and the difference of the first and second nominal values (AVBUS = VBUS2 - VBUSI) of the DC bus voltage (26, VBUS).
4. The driver (1) of claim 3, wherein the difference of the first and second nominal values (AVBUS) of the DC bus voltage (26, VBUS) comprises up to 1/80, and more preferably up to 1/200, of the first or second nominal value (VBUSI, VBUS2) of the DC bus voltage (26, VBUS).
5. The driver (1) of claim 3 or claim 4, wherein the control unit (106, 109) is further configured, so as to measure the second average value (THB2) of the duration of the switching period (28, THB) of the DC/DC converter (103) at the second nominal value (VBUS2) of the DC bus voltage (26, VBUS), to: ramp the DC bus voltage (26, VBUS) from the first nominal value (VBUSI) to the second nominal value (VBUS2) in dependence of a time constant of the feedback control of the DC/DC converter (103).
6. The driver (1) of any one of the claims 3 to 5, wherein the control unit (106, 109) is further configured, so as to measure the second average value (THB2) of the duration of the switching period (28, THB) of the DC/DC converter (103) at the second nominal value (VBUS2) of the DC bus voltage (26, VBUS), to: ramp the DC bus voltage (26, VBUS) from the second nominal value (VBUS2) back to the first nominal value (VBUSI) in dependence of the time constant of the feedback control of the DC/DC converter (103).
7. The driver (1) of any one of the preceding claims, the DC/DC converter (103) comprises a half-bridge resonant converter configured to provide the DC output current (21, ILED) for the LED load in dependence of the DC bus voltage (26, VBUS) and the duration of the switching period (28, THB) of the DC/DC converter (103).
8. The driver (1) of any one of the preceding claims, wherein the driver (1) further comprises a power factor correcting, PFC, converter (102) configured to provide the DC bus voltage (26, VBUS) for the DC/DC converter (103).
9. The driver (1) of any one of the preceding claims, wherein the control unit (106, 109) comprises a proportional-integral (PI) feedback controller (201) configured to perform the feedback control of the nominal duration of the switching period (25,
THB ctri) of the DC/DC converter (103).
10. A lighting system, comprising a driver (1) according to any one of the preceding claims; and an LED load configured to be supplied by the driver (1).
EP22718151.8A 2021-04-06 2022-03-24 Adaptive in-service mitigation of light flicker Pending EP4295649A1 (en)

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
EP21166892.6A EP4072245A1 (en) 2021-04-06 2021-04-06 Adaptive in-service mitigation of light flicker
PCT/EP2022/057798 WO2022214326A1 (en) 2021-04-06 2022-03-24 Adaptive in-service mitigation of light flicker

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EP22718151.8A Pending EP4295649A1 (en) 2021-04-06 2022-03-24 Adaptive in-service mitigation of light flicker

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Publication number Priority date Publication date Assignee Title
JP6605829B2 (en) * 2015-03-31 2019-11-13 ルネサスエレクトロニクス株式会社 LED lighting device, LED lighting device
CN107683630B (en) * 2015-04-23 2020-11-10 港大科桥有限公司 AC-DC Single Inductor Multiple Output LED Driver
WO2018031757A1 (en) * 2016-08-11 2018-02-15 Finsix Corporation Control of power converters
EP3767811A1 (en) * 2019-07-15 2021-01-20 Tridonic GmbH & Co. KG Switched power converter

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