WO2017069786A1 - Regulated power supply voltage and triac hold-up current for a switching power converter - Google Patents

Regulated power supply voltage and triac hold-up current for a switching power converter Download PDF

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Publication number
WO2017069786A1
WO2017069786A1 PCT/US2015/057258 US2015057258W WO2017069786A1 WO 2017069786 A1 WO2017069786 A1 WO 2017069786A1 US 2015057258 W US2015057258 W US 2015057258W WO 2017069786 A1 WO2017069786 A1 WO 2017069786A1
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Prior art keywords
current
switch
switching power
node
cycling
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Ceased
Application number
PCT/US2015/057258
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French (fr)
Inventor
Chenglong Zhang
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Renesas Design North America Inc
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Dialog Semiconductor Inc
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Application filed by Dialog Semiconductor Inc filed Critical Dialog Semiconductor Inc
Priority to DE112015007048.6T priority Critical patent/DE112015007048B4/en
Priority to PCT/US2015/057258 priority patent/WO2017069786A1/en
Publication of WO2017069786A1 publication Critical patent/WO2017069786A1/en
Priority to US15/948,713 priority patent/US10237931B2/en
Anticipated expiration legal-status Critical
Ceased legal-status Critical Current

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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
    • H05B45/357Driver circuits specially adapted for retrofit LED light sources
    • H05B45/3574Emulating the electrical or functional characteristics of incandescent lamps
    • H05B45/3575Emulating the electrical or functional characteristics of incandescent lamps by means of dummy loads or bleeder circuits, e.g. for dimmers
    • 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
    • H02M3/02Conversion of DC power input into DC power output without intermediate conversion into AC
    • H02M3/04Conversion of DC power input into DC power output without intermediate conversion into AC by static converters
    • H02M3/10Conversion of DC power input into DC power output without intermediate conversion into AC by static converters using discharge tubes with control electrode or semiconductor devices with control electrode
    • H02M3/145Conversion of DC power input into DC power output without intermediate conversion into AC 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
    • H02M3/155Conversion of DC power input into DC power output without intermediate conversion into AC 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
    • H02M3/156Conversion of DC power input into DC power output without intermediate conversion into AC 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 with automatic control of output voltage or current, e.g. switching regulators
    • 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
    • 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]
    • 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
    • H02M1/0006Arrangements for supplying an adequate voltage to the control circuit of converters
    • 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
    • H02M1/0009Devices or circuits for detecting current in a converter
    • 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]
    • H05B45/375Switched mode power supply [SMPS] using buck topology
    • 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]
    • H05B45/385Switched mode power supply [SMPS] using flyback topology
    • 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]

Definitions

  • This application relates to switching power converters, and more particularly to the regulation of a power supply voltage for a switching power converter while maintaining sufficient triac hold-up current.
  • Solid state light emitting diode (LED) lighting applications are rapidly replacing conventional incandescent and florescent lighting systems.
  • an LED cannot be exposed to the AC mains like an incandescent bulb.
  • Solid state lighting applications thus include a switching power converter to convert the AC input voltage into a rectified output voltage that may power the LED.
  • incandescent light bulbs it is also conventional for incandescent light bulbs to be powered through a dimmer switch that includes a triac.
  • the triac requires a minimum level of current known as the holding current for its operation.
  • the bulb directly connects to the dimmer such that there is no issue with regard to supporting the triac holding current.
  • conventional SSL switching power converters may include a switch that couples a storage capacitor through a resistance to a charged node. Since the internal power supply voltage is commonly denoted as VCC, the corresponding switch is designated herein at the VCC switch to distinguish it from the power switch that the switching power converter cycles to regulate the output voltage.
  • VCC the internal power supply voltage
  • the VCC voltage drops when the VCC switch is cycled off by a product of the charging current drawn by and an equivalent series resistance (ESR) for the storage capacitor. If the capacitor ESR and charging current product is large, the VCC voltage may drop below a minimum required value such that the power converter performs a power on reset (POR). The storage capacitor may then be charged back, whereupon the VCC switch is cycled off and the VCC voltage again drops below the minimum required value. The result is that the LED bulb powered by the corresponding SSL switching power converter is unable to properly startup.
  • ESR equivalent series resistance
  • a switching power converter includes a power switch controlled by a controller to regulate an output voltage.
  • the controller is powered by an internal power supply voltage.
  • the switching power converter includes a current mirror that controls a current charging a storage capacitor.
  • the internal power supply voltage is provided by the charged storage capacitor.
  • Figure 1 is a circuit diagram of an example switching power converter in accordance with an aspect of the disclosure.
  • Figure 2 illustrates a startup waveform for the internal power supply voltage for the switching power converter of Figure 1.
  • Figure 3 is a circuit diagram of an example switching power converter in accordance with an aspect of the disclosure.
  • a switching power converter is provided with a controlled current source configured to charge a storage capacitor to provide the internal power supply voltage.
  • the storage capacitor is thus charged at a rate that is substantially independent of the voltage applied to the controlled current source.
  • the switching power converter is provided a stable internal power supply voltage to ensure a startup and subsequent operation may be achieved without power on resets being triggered as the internal power supply voltage is maintained above a power-on-reset-triggering level.
  • a rectified input voltage V_IN is received at a first terminal of an inductor LI and a resistor Rl .
  • a bridge rectifier (not illustrated) or other suitable AC-to-DC rectifier may rectify the AC input voltage from an AC mains to provide rectified input voltage that is processed through a phase-cut dimming switch (not illustrated) to produce rectified input voltage V_IN.
  • Power converter 100 includes a cascode transistor SI (e.g., an NMOS transistor) that has its gate coupled to a second terminal of resistor Rl at a node 105.
  • the source of cascode transistor S3 couples to a node 130 that in turn couples to a drain of a power switch transistor S2 (e..g., another NMOS transistor) having a gate voltage controlled by a controller Ul .
  • the source for power switch transistor S2 couples to ground.
  • Controller Ul is configured to control a cycling of power switch S2 to regulate the amount of current pulsed into at least one LED (LEDl).
  • Output filtering is provided by an output capacitor C2 that couples in parallel with LEDl and also by a load diode that couples between a drain for cascode transistor S I and a second terminal for inductor LI .
  • Node 105 also couples to a zener diode D2 that in turn couples to ground.
  • V_IN rectified input voltage
  • the voltage of node 105 will equal the zener breakdown voltage for zener diode D2 minus a gate-to-source voltage for power switch S 1.
  • bleeder circuit 1 10 may include a current source 115 that is controlled by a control signal CNTL.
  • a switching power converter such as power converter 100 to include a dimming detection circuit 120 that detects whether a phase cut dimming has been applied to the AC input voltage from which rectified input voltage V_IN is sourced.
  • Dimming detection circuit may be configured to assert control signal CNTL to trigger bleeder circuit 1 10 by switching on current source 115.
  • bleeder circuit 110 may include a current mirror formed by transistors 125 that each have a drain coupled to node 130.
  • An internal power supply 135 regulates an internal power supply voltage VCC through a current source 140 that couples between node 130 and an output node 145 carrying the internal supply voltage VCC.
  • a storage capacitor C I having an equivalent series resistance (ESR) has a first terminal coupled to output node 145 and a second terminal coupled to ground.
  • a feedback circuit 150 is configured to switch current source 140 off once the internal supply voltage VCC has reached the desired operating level. It will be appreciated that current source 140 may instead be coupled to storage capacitor CI through a switch that is regulated by feedback circuit 150.
  • the charging rate of storage capacitor CI is
  • Power converter 100 continues to draw an operating current such that voltage VCC then declines. But since voltage VCC was not increased at a relatively fast rate, its decline is also gradual such that voltage VCC does not fall below the required minimum value. In this fashion, startup proceeds normally and is not vexed by repeated resets as may happen in conventional architectures.
  • FIG. 3 An alternative embodiment for a switching power converter 300 is shown in Figure 3.
  • Inductor LI, output diode Dl and capacitor C2, LED1, dimming detection circuit 120, resistor Rl, zener diode D2, controller Ul, power switch S2, and cascode transistor SI are all arranged as discussed with regard to power converter 100.
  • power converter 300 includes a combined bleeder and internal voltage regulator circuit 305.
  • Combined circuit 300 includes current source 140 and the current mirror formed through transistors 125.
  • the current mirror current I Source couples to ground through a bleeder switch transistor S3 controlled by a controller U2.
  • a source of one of the current mirror transistors 125 couples to a node 310 that in turn couples to a drain for bleeder switch transistor S3.
  • a regulator switch transistor S4 also couples between node 310 and an output node 315 carrying the internal power supply voltage VCC.
  • Storage capacitor CI having an equivalent series resistance ESR couples between output node 315 and ground. Power converter 300 thus advantageously conserves component cost by using current source 140 for both bleeder and voltage regulating purposes.
  • Controller U2 regulates a switching rate for regular switch transistor S4 to regulate internal power supply voltage VCC to the desired value.
  • regulator switch transistor S4 conducts a current I _VCC that is greater than a bleeder current I_Bleeder that is conducted by bleeder switch transistor S3.
  • a dimming switch 320 includes a triac 325 controlled by a user's dimming input 330. Should a user apply dimming through dimming input 330, controller U2 responds to a dimming detection by dimming circuit 120 to ensure that a sufficient holding current is drawn through triac 325.
  • controller U2 may be configured to respond to dimming detection by merely cycling regulator switch transistor S4 while the internal power supply voltage VCC is less than a maximum amount. This reduces power dissipation and improves operational efficiency. Should no dimming be detected, controller U2 maintains bleeder switch transistor S3 off. On the other hand, should dimming be detected but the power supply voltage VCC is already at or near it maximum level, controller U2 may cycle bleeder switch S3 while maintaining regulator switch transistor S4 off. If no dimming is detected but the internal power supply voltage VCC require boosting, controller U2 may again cycle regulator switch transistor S4 while maintaining bleeder switch transistor off.

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

Abstract

A switching power converter is provided that includes a current source that controls the charging of a storage capacitor to provide a regulated internal power supply voltage.

Description

Regulated Power Supply Voltage and Triac Hold-up Current for a Switching Power
Converter
TECHNICAL FIELD
[0001] This application relates to switching power converters, and more particularly to the regulation of a power supply voltage for a switching power converter while maintaining sufficient triac hold-up current.
BACKGROUND
[0002] Due to their advantageous low power consumption and lack of toxic materials, solid state light emitting diode (LED) lighting applications are rapidly replacing conventional incandescent and florescent lighting systems. However, an LED cannot be exposed to the AC mains like an incandescent bulb. Solid state lighting applications thus include a switching power converter to convert the AC input voltage into a rectified output voltage that may power the LED. It is also conventional for incandescent light bulbs to be powered through a dimmer switch that includes a triac. The triac requires a minimum level of current known as the holding current for its operation. In an incandescent application, the bulb directly connects to the dimmer such that there is no issue with regard to supporting the triac holding current.
[0003] Since the users expect an LED to mimic the behavior of incandescent bulbs, the corresponding switching power converter needs to support the required holding current. It is thus conventional for solid state lighting (SSL) switching power supplies to include a bleeder circuit that is active during periods of applied dimming through the dimming switch. The bleeder circuit conducts sufficient current despite the application of dimming so that the triac in the dimmer for the SSL switching power converter conducts its required holding current.
[0004] To supply the internal power supply voltage, conventional SSL switching power converters may include a switch that couples a storage capacitor through a resistance to a charged node. Since the internal power supply voltage is commonly denoted as VCC, the corresponding switch is designated herein at the VCC switch to distinguish it from the power switch that the switching power converter cycles to regulate the output voltage. The VCC voltage drops when the VCC switch is cycled off by a product of the charging current drawn by and an equivalent series resistance (ESR) for the storage capacitor. If the capacitor ESR and charging current product is large, the VCC voltage may drop below a minimum required value such that the power converter performs a power on reset (POR). The storage capacitor may then be charged back, whereupon the VCC switch is cycled off and the VCC voltage again drops below the minimum required value. The result is that the LED bulb powered by the corresponding SSL switching power converter is unable to properly startup.
[0005] Accordingly, there is a need in the art for a switching power converter with an improved regulation of the internal power supply voltage.
SUMMARY
[0006] A switching power converter is provided that includes a power switch controlled by a controller to regulate an output voltage. The controller is powered by an internal power supply voltage. To provide a stable startup for the internal power supply voltage, the switching power converter includes a current mirror that controls a current charging a storage capacitor. The internal power supply voltage is provided by the charged storage capacitor. [0007] These advantageous features may be better appreciated through a consideration of the detailed description below.
BRIEF DESCRIPTION OF THE DRAWINGS
[0008] Figure 1 is a circuit diagram of an example switching power converter in accordance with an aspect of the disclosure.
[0009] Figure 2 illustrates a startup waveform for the internal power supply voltage for the switching power converter of Figure 1.
[0010] Figure 3 is a circuit diagram of an example switching power converter in accordance with an aspect of the disclosure.
[0011] Embodiments of the present disclosure and their advantages are best understood by referring to the detailed description that follows. It should be appreciated that like reference numerals are used to identify like elements illustrated in one or more of the figures.
DETAILED DESCRIPTION
[0012] To address the need for improved regulation of the internal power supply voltage, a switching power converter is provided with a controlled current source configured to charge a storage capacitor to provide the internal power supply voltage. The storage capacitor is thus charged at a rate that is substantially independent of the voltage applied to the controlled current source. In this fashion, the switching power converter is provided a stable internal power supply voltage to ensure a startup and subsequent operation may be achieved without power on resets being triggered as the internal power supply voltage is maintained above a power-on-reset-triggering level. S [0013] Turning now to the drawings, an example buck-boost converter 100 is illustrated. However, it will be appreciated that the circuits and methods discussed herein may be applied to a diverse array of alternative switching converter topologies such as a flyback converter or a buck converter. A rectified input voltage V_IN is received at a first terminal of an inductor LI and a resistor Rl . For example, a bridge rectifier (not illustrated) or other suitable AC-to-DC rectifier may rectify the AC input voltage from an AC mains to provide rectified input voltage that is processed through a phase-cut dimming switch (not illustrated) to produce rectified input voltage V_IN.
[0014] Power converter 100 includes a cascode transistor SI (e.g., an NMOS transistor) that has its gate coupled to a second terminal of resistor Rl at a node 105. The source of cascode transistor S3 couples to a node 130 that in turn couples to a drain of a power switch transistor S2 (e..g., another NMOS transistor) having a gate voltage controlled by a controller Ul . The source for power switch transistor S2 couples to ground. Controller Ul is configured to control a cycling of power switch S2 to regulate the amount of current pulsed into at least one LED (LEDl). Output filtering is provided by an output capacitor C2 that couples in parallel with LEDl and also by a load diode that couples between a drain for cascode transistor S I and a second terminal for inductor LI . Node 105 also couples to a zener diode D2 that in turn couples to ground. When the rectified input voltage V_IN is initially applied at startup of power converter 100, the voltage of node 105 will equal the zener breakdown voltage for zener diode D2 minus a gate-to-source voltage for power switch S 1.
[0015] Cascode transistor isolates power switch S2 from the relatively high voltage for rectified input voltage V_1N. Should a user be applying dimming through a dimmer switch including a triac, the triac will require a sufficient holding current. To maintain this minimum holding current while dimming is applied, power converter 100 includes a bleeder circuit 1 10. For example, bleeder circuit 1 10 may include a current source 115 that is controlled by a control signal CNTL. In that regard, it is conventional for a switching power converter such as power converter 100 to include a dimming detection circuit 120 that detects whether a phase cut dimming has been applied to the AC input voltage from which rectified input voltage V_IN is sourced. Dimming detection circuit may be configured to assert control signal CNTL to trigger bleeder circuit 1 10 by switching on current source 115. For example, bleeder circuit 110 may include a current mirror formed by transistors 125 that each have a drain coupled to node 130.
[0016] An internal power supply 135 regulates an internal power supply voltage VCC through a current source 140 that couples between node 130 and an output node 145 carrying the internal supply voltage VCC. A storage capacitor C I having an equivalent series resistance (ESR) has a first terminal coupled to output node 145 and a second terminal coupled to ground. A feedback circuit 150 is configured to switch current source 140 off once the internal supply voltage VCC has reached the desired operating level. It will be appreciated that current source 140 may instead be coupled to storage capacitor CI through a switch that is regulated by feedback circuit 150.
[0017] Advantageously, the charging rate of storage capacitor CI is
substantially independent of the voltage for node 130. Depending upon the breakdown voltage for zener diode D2, the voltage of node 130 will generally be around 12 to 18 volts upon startup. Current source 140 charges storage capacitor CI at substantially the same rate regardless of the voltage for node 130. For example, a power on reset cycle for the internal power supply voltage is illustrated in Figure 2. Power is applied at time tO, whereupon the internal power supply voltage VCC is charged at a rate determined by the current supplied by current source 140 and the capacitance of storage capacitor CI . When the desired (POR) level is reached for voltage VCC, current source 140 is switched off or otherwise prevented such as through the opening of a switch to stop the charging of the storage capacitor C 1. Power converter 100 continues to draw an operating current such that voltage VCC then declines. But since voltage VCC was not increased at a relatively fast rate, its decline is also gradual such that voltage VCC does not fall below the required minimum value. In this fashion, startup proceeds normally and is not vexed by repeated resets as may happen in conventional architectures.
[0018] An alternative embodiment for a switching power converter 300 is shown in Figure 3. Inductor LI, output diode Dl and capacitor C2, LED1, dimming detection circuit 120, resistor Rl, zener diode D2, controller Ul, power switch S2, and cascode transistor SI are all arranged as discussed with regard to power converter 100. However, power converter 300 includes a combined bleeder and internal voltage regulator circuit 305. Combined circuit 300 includes current source 140 and the current mirror formed through transistors 125. However, the current mirror current I Source couples to ground through a bleeder switch transistor S3 controlled by a controller U2. In particular a source of one of the current mirror transistors 125 couples to a node 310 that in turn couples to a drain for bleeder switch transistor S3. A regulator switch transistor S4 also couples between node 310 and an output node 315 carrying the internal power supply voltage VCC. Storage capacitor CI having an equivalent series resistance ESR couples between output node 315 and ground. Power converter 300 thus advantageously conserves component cost by using current source 140 for both bleeder and voltage regulating purposes.
[0019] Controller U2 regulates a switching rate for regular switch transistor S4 to regulate internal power supply voltage VCC to the desired value. In particular, regulator switch transistor S4 conducts a current I _VCC that is greater than a bleeder current I_Bleeder that is conducted by bleeder switch transistor S3. A dimming switch 320 includes a triac 325 controlled by a user's dimming input 330. Should a user apply dimming through dimming input 330, controller U2 responds to a dimming detection by dimming circuit 120 to ensure that a sufficient holding current is drawn through triac 325. For example, controller U2 may be configured to respond to dimming detection by merely cycling regulator switch transistor S4 while the internal power supply voltage VCC is less than a maximum amount. This reduces power dissipation and improves operational efficiency. Should no dimming be detected, controller U2 maintains bleeder switch transistor S3 off. On the other hand, should dimming be detected but the power supply voltage VCC is already at or near it maximum level, controller U2 may cycle bleeder switch S3 while maintaining regulator switch transistor S4 off. If no dimming is detected but the internal power supply voltage VCC require boosting, controller U2 may again cycle regulator switch transistor S4 while maintaining bleeder switch transistor off.
[0020] As those of some skill in this art will by now appreciate and depending on the particular application at hand, many modifications, substitutions and variations can be made in and to the materials, apparatus, configurations and methods of use of the devices of the present disclosure without departing from the spirit and scope thereof. In light of this, the scope of the present disclosure should not be limited to that of the particular embodiments illustrated and described herein, as they are merely by way of some examples thereof, but rather, should be fully commensurate with that of the claims appended hereafter and their functional equivalents.

Claims

CLAIMS I claim:
1 A method, comprising:
sourcing a current through a current source until a storage capacitor is charged to a desired level for an internal power supply voltage; and
in a controller powered by an internal power supply voltage, regulating an output voltage by cycling a power switch coupled to a rectified input voltage,
2. The method of claim 1, further comprising shutting off the current source responsive to the storage capacitor being charged to the desired level.
3. The method of claim 1, further comprising isolating the current source through a regulator switch responsive to the storage capacitor being charged to the desired level.
4. The method of claim 1, further comprising
dimming an AC input voltage through a dimmer including a triac to produce a dimmed AC input voltage; and
rectifying the dimmed AC input voltage to produce the rectified input voltage, wherein sourcing the current through the current source maintains a minimum holding current in the triac during the dimming.
5. The method of claim 4, further comprising:
mirroring the current through the current source to produce a mirror current; and cycling a regulator switch to charge the storage capacitor with the mirror current.
6. The method of claim 5, further comprising cycling a bleeder switch to couple the mirror current to ground while the regulator switch is not cycled.
7. The method of claim 1, wherein cycling the power switch comprises cycling the power switch t>f a flyback converter.
8. The method of claim 1, wherem cycling the power switch comprises cycling the power switch of a DC-DC switching power converter.
9. The method of claim 8, wherein the DC-DC switching power converter is a buck-boost converter.
10. A switching power converter, comprising:
a power switch;
a first controller configured to cycle the power switch to regulate an output voltage; and
a current mirror configured to charge a storage capacitor to provide an internal power supply voltage for the first controller.
11. The switching power converter of claim 10, further comprising a current mirror configured to min-or a current from the current mirror into a mirror current provided to an internal node; a regulator switch coupled between the internal node and the storage capacitor; and
a second controller configured to control a cycling of the regulator switch to regulate the internal power supply voltage.
12. The switching power converter of claim 11, further comprising a bleeder switch coupled between the internal node and ground, wherein the second controller is further configured to control a cycling of the bleeder switch in response to a dimming detection and the internal power supply voltage equaling a maximum level.
13. The switching power converter of claim 10, further comprising:
an inductor having a first terminal coupled to an input node;
a cascode transistor coupled between the inductor and the power switch;
a resistor coupled between the input node and a second node; and
a zener diode coupled between the second node and ground, wherein the second node is coupled to a gate of the cascode transistor.
14. The switching power converter of claim 13, further comprising an LED coupled to the input node.
15. The switching power converter of claim 14, further comprising an output diode coupled between the LED and a second terminal for the inductor.
16. The switching power of claim 14, wherein the power switch comprises an NMOS transistor.
17. The switching power of claim 14, wherein the power switch comprises a bipolar junction transistor.
PCT/US2015/057258 2015-10-23 2015-10-23 Regulated power supply voltage and triac hold-up current for a switching power converter Ceased WO2017069786A1 (en)

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DE112015007048.6T DE112015007048B4 (en) 2015-10-23 2015-10-23 Regulated power supply voltage and triac holding current for a switching power converter
PCT/US2015/057258 WO2017069786A1 (en) 2015-10-23 2015-10-23 Regulated power supply voltage and triac hold-up current for a switching power converter
US15/948,713 US10237931B2 (en) 2015-10-23 2018-04-09 Regulated power supply voltage and triac hold-up current for a switching power converter

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US10237931B2 (en) 2019-03-19

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