IP Library › Granted Patent US 8,373,356
Granted Patent B2
US 8,373,356 · App. 12/384,983 · Granted Feb 12, 2013

System and method for a constant current source LED driver

Inventors: Jianwen Shao (Hoffman Estates, IL); John S. Lo Giudice (Palatine, IL); Thomas A. Stamm (Chicago, IL)
Assignee: STMicroelectronics, Inc.
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Quick Facts
Patent No.
US 8,373,356
App. No.
12/384,983
Granted
Feb 12, 2013
Kind
B2
Abstract

A system and method for providing a constant current source driver for a light emitting diode string. The converter includes a current sensor that derives feedback signal corresponding to a peak current through the light emitting diode string. The feedback signal is used by a controller to vary a duty cycle of the controller to regulate the average current. The controller is operable to regulate the average current as the number of light emitting diodes is increased and/or decreased.

Claims (52)

1. A converter, comprising:

a current sensor configured to derive a feedback signal corresponding to an average current through a light emitting diode string;

a switch coupled on a first end to the current sensor; and

a controller coupled on a first port to a second end of the switch and on a second port to the current sensor, wherein the controller is configured to modulate a peak current through the light emitting diodes and to vary a switching frequency of the light emitting diodes, and wherein the controller is configured to regulate the average current to reduce reactivity of the average current to a voltage across the light emitting diode string by at least one of:

modulating the peak current through the light emitting diode string; and

varying the switching frequency.

2. The converter as set forth in claim 1 , wherein the current sensor comprises a voltage divider, the voltage divider coupled at one terminal to the light emitting diode string, at a second terminal to the second port of the controller and on a third terminal to a sense resistor.

3. The converter as set forth in claim 2 , wherein the current sensor comprises a transformer coupled between the light emitting diode string and the voltage divider.

4. The converter as set forth in claim 1 , wherein the feedback signal is at least one of a source voltage and the voltage across the light emitting diode string.

5. A converter, comprising:

a current sensor configured to derive a feedback signal corresponding to a peak current through a light emitting diode string;

a switch coupled on a first end to the current sensor; and

a controller coupled on a first port to a second end of the switch and on a second port to the current sensor, wherein the controller is configured to use the feedback signal corresponding to the peak current to regulate the average current to reduce reactivity of the average current to a voltage across the light emitting diode string, wherein the current sensor comprising:

a first resistor coupled on a first end to a cathode of a last light emitting diode in the light emitting diode string and on a second end to the second port of the controller, wherein an anode of a first light emitting diode in the light emitting diode string is coupled to ground; and

a second resistor coupled on a first end via a third resistor to the anode of the first light emitting diode.

6. The converter as set forth in claim 1 , wherein the controller and the switch are included in a control module.

7. The converter as set forth in claim 1 , wherein the current sensor comprises a voltage divider coupled to a reference port of the controller and a transformer coupled between the voltage divider and the light emitting diode string.

8. A light emitting diode system, comprising:

a light emitting diode string; and

a power converter, the power converter comprising:

a current sensor configured to derive a feedback signal corresponding to an average current through the light emitting diode string;

a switch coupled on a first end to the current sensor; and

a controller coupled on a first port to a second end of the switch and on a second port to the current sensor, wherein the controller is configured to modulate a peak current through the light emitting diodes and to vary a switching frequency of the light emitting diodes, and wherein the controller is configured to regulate the average current based on the feedback signal to reduce reactivity of the average current to a voltage across the light emitting diode string by at least one of:

modulating the peak current through the light emitting diode string; and

varying the switching frequency.

9. The light emitting diode system as set forth in claim 8 , wherein the current sensor comprises a voltage divider, the voltage divider coupled at one terminal to the light emitting diode string, at a second terminal to the second port of the controller and on a third terminal to a sense resistor.

10. The light emitting diode system as set forth in claim 9 , wherein the current sensor comprises a transformer coupled between the light emitting diode string and the voltage divider.

11. The light emitting diode system as set forth in claim 8 , wherein the feedback signal is at least one of a source voltage and a voltage across the light emitting diode string.

12. A light emitting diode system, comprising:

a light emitting diode string; and

power converter, the power converter comprising:

a current sensor configured to derive a feedback signal corresponding to a peak current through the light emitting diode string;

a switch coupled on a first end to the current sensor; and

a controller coupled on a first port to a second end of the switch and on a second port to the current sensor, wherein the controller is configured to use the feedback signal corresponding to the peak current to regulate the average current to reduce reactivity of the average current to a voltage across the light emitting diode string, wherein the current sensor comprising:

a first resistor coupled on a first end to a cathode of a last light emitting diode in the light emitting diode string and on a second end to the second port of the controller, wherein an anode of a first light emitting diode in the light emitting diode string is coupled to ground; and

a second resistor coupled on a first end via a third resistor to the anode of the first light emitting diode.

13. The light emitting diode system as set forth in claim 8 , wherein the controller and the switch are included in a control module.

14. The light emitting diode system as set forth in claim 8 , wherein the current sensor comprises a voltage divider coupled to a reference port of the controller and a transformer coupled between the voltage divider and the light emitting diode string.

15. For use in a light emitting diode system, a method of providing a constant current source, the method comprising:

sensing a current through a plurality of light emitting diodes;

deriving a feedback signal corresponding to the current;

regulating an average current based on the feedback signal to reduce reactivity of the average current to a voltage across the plurality of light emitting diodes, wherein regulating further comprises selecting and performing at least one of: modulating a peak current through the light emitting diode string; and varying a frequency.

16. The method as set forth in claim 15 , wherein the sensing is performed by a current sensor, the current sensor comprising a voltage divider, the voltage divider coupled at one terminal to the light emitting diode string, at a second terminal to the second port of the controller and on a third terminal to a sense resistor.

17. The method as set forth in claim 16 , wherein the current sensor further comprises a transformer coupled between the light emitting diode string and the voltage divider.

18. The method as set forth in claim 15 , wherein the feedback signal is at least one of a source voltage and a voltage across the plurality of light emitting diodes.

19. For use in a light emitting diode system, a method of providing a constant current source, the method comprising:

sensing a peak current through a plurality of light emitting diodes;

deriving a feedback signal corresponding to the peak current;

regulating the average current based on the feedback signal to reduce reactivity of the average current to a voltage across the plurality of light emitting diodes, wherein regulating further comprises varying a duty cycle of a controller, wherein sensing is performed by a current sensor, the current sensor comprising:

a first resistor coupled on a first end to a cathode of a last light emitting diode in the plurality light emitting diodes and on a second end to the second port of the controller, wherein an anode of a first light emitting diode in the plurality of light emitting diodes is coupled to ground; and

a second resistor coupled on a first end via a third resistor to the anode of the first light emitting diode.

20. The method as set forth in claim 15 , wherein the regulating the average current is performed by a control module, the control module comprising a controller and a switch.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 18, 2024
From: STMICROELECTRONICS, INC.
To: STMICROELECTRONICS INTERNATIONAL N.V.
Reel/Frame 068433/0883 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 10, 2009
From: SHAO, JIANWEN; GIUDICE, JOHN S. LO; STAMM, THOMAS A.
To: STMICROELECTRONICS, INC.
Reel/Frame 022581/0932 →
Continuity (2)
Provisional Application 61204070 · Dec 31, 2008
Related Publication 20100164404A1 · Jul 1, 2010