IP Library Granted Patent US 8,471,497
Granted Patent B2
US 8,471,497 · App. 13/081,074 · Granted Jun 25, 2013

Control circuit and method for LED drivers

Inventors: Chen-Jie Ruan (Shanghai, CN); Chin-Hui Wang (New Taipei, TW); Liang Mao (Shanghai, CN)
Assignee: Richpower Microelectronics Corporation
View Patent ↗
Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US 8,471,497
App. No.
13/081,074
Granted
Jun 25, 2013
Kind
B2
Abstract

A control circuit and method for a LED driver accurately control the output current of the LED driver by adjusting a reference voltage or a feedback voltage according to the input voltage of the LED driver such that the output current decreases with the decrease of the input voltage. Therefore, it enhances the efficiency of the LED driver and maximizes the battery use time of a battery powered system.

Claims (63)

1. A control circuit for a LED driver having a feedback circuit detecting an output current of the LED driver to generate a feedback voltage, the control circuit comprising:

a reference voltage adjuster connected to a power input terminal of the LED driver, detecting an input voltage of the LED driver and adjusting a first reference voltage accordingly, to thereby generate a second reference voltage; and

an error amplifier connected to the feedback circuit and the reference voltage adjuster, generating an error signal according to a difference between the feedback voltage and the second reference voltage, for controlling the output current;

wherein the reference voltage adjuster comprises:

a first resistor configured to determine a first current according to a difference between the input voltage and a third reference voltage;

an operational circuit operating with the first current and a reference current to generate a second current; and

a second resistor connected to the operational circuit, configured to generate an adjust voltage according to the second current;

wherein the second reference voltage is derived by subtracting the adjust voltage from the first reference voltage.

2. The control circuit of claim 1 , wherein the error amplifier comprises a transconductance amplifier.

3. A control method for a LED driver having a feedback circuit detecting an output current of the LED driver to generate a feedback voltage, the control method comprising the steps of:

(A) detecting an input voltage of the LED driver and adjusting a first reference voltage accordingly, to thereby generate a second reference voltage; and

(B) generating an error signal according to a difference between the feedback voltage and the second reference voltage, for controlling the output current;

wherein the step A comprises the steps of:

determining a first current according to a difference between the input voltage and a third reference voltage;

operating with the first current and a reference current to generate a second current;

generating an adjust voltage according to the second current; and

subtracting the adjust voltage from the first reference voltage to generate the second reference voltage.

4. A control circuit for a LED driver having a feedback circuit detecting an output current of the LED driver to generate a first feedback voltage, the control circuit comprising:

a feedback voltage adjuster connected to the feedback circuit and a power input terminal of the LED driver, detecting an input voltage of the LED driver and adjusting the first feedback voltage accordingly, to thereby generate a second feedback voltage; and

an error amplifier connected to the feedback voltage adjuster, generating an error signal according to a difference between the second feedback voltage and a first reference voltage, for controlling the output current;

wherein the feedback voltage adjuster comprises:

a first resistor configured to determine a fast current according to difference between the input voltage and a second reference voltage;

an operational circuit operating with the first current and a reference current to generate a second current; and

a second resistor connected to the operational circuit, configured to generate an adjust voltage according to the second current;

wherein the second feedback voltage is derived by adding the adjust voltage to the first feedback voltage.

5. The control circuit of claim 4 , wherein the error amplifier comprises a transconductance amplifier.

6. A control method for a LED driver having a feedback circuit detecting an output current of the LED driver to generate a first feedback voltage, the control method comprising the steps of:

(A) detecting an input voltage of the LED driver and adjusting the first feedback voltage accordingly, to thereby generate a second feedback voltage; and

(B) generating an error signal according to a difference between the second feedback voltage and a first reference voltage, for controlling the output current;

wherein the step A comprises the steps of:

determining a first current according to a difference between the input voltage and a second reference voltage;

operating with the first current and a reference current to generate a second current;

generating an adjust voltage according to the second current; and

adding the adjust voltage to the first feedback voltage to generate the second feedback voltage.

7. A control circuit for a LED driver having a feedback circuit detecting an output current of the LED driver to generate a first feedback voltage, the control circuit comprising:

a reference voltage adjuster connected to a power input terminal of the LED driver, detecting an input voltage of the LED driver and adjusting a first reference voltage accordingly, to thereby generate a second reference voltage; and

a feedback voltage adjuster connected to the feedback circuit and a power input terminal of the LED driver, detecting the input voltage and adjusting the first feedback voltage accordingly, to thereby generate a second feedback voltage; and

an error amplifier connected to the reference voltage adjuster and the feedback voltage adjuster, generating an error signal according to a difference between the second feedback voltage and the second reference voltage, for controlling the output current.

8. The control circuit of claim 7 , wherein the reference voltage adjuster comprises:

a first resistor configured to determine a first current according to a difference between the input voltage and a third reference voltage;

an operational circuit operating with the first current and a reference current to generate a second current; and

a second resistor connected to the operational circuit, configured to generate an adjust voltage according to the second current;

wherein the second reference voltage is derived by subtracting the adjust voltage from the first reference voltage.

9. The control circuit of claim 7 , wherein the feedback voltage adjuster comprises:

a first resistor configured to determine a first current according to a difference between the input voltage and a third reference voltage;

an operational circuit operating with the first current and a reference current to generate a second current; and

a second resistor connected to the operational circuit, configured to generate an adjust voltage according to the second current;

wherein the second feedback voltage is derived by adding the adjust voltage to the first feedback voltage.

10. The control circuit of claim 7 , wherein the error amplifier comprises a transconductance amplifier.

11. A control method for a LED driver having a feedback circuit detecting an output current of the LED driver to generate a first feedback voltage, the control method comprising the steps of:

(A) detecting an input voltage of the LED driver and adjusting a first reference voltage accordingly, to thereby generate a second reference voltage;

(B) detecting the input voltage and adjusting the first feedback voltage accordingly, to thereby generate a second feedback voltage; and

(C) generating an error signal according to a difference between the second feedback voltage and the second reference voltage, for controlling the output current.

12. The control method of claim 11 , wherein the step A comprises the steps of:

determining a first current according to a difference between the input voltage and a third reference voltage;

operating with the first current and a reference current to generate a second current;

generating an adjust voltage according to the second current; and

subtracting the adjust voltage from the first reference voltage to generate the second reference voltage.

13. The control method of claim 11 , wherein the step B comprises the steps of:

determining a first current according to a difference between the input voltage and a third reference voltage;

operating with the first current and a reference current to generate a second current;

generating an adjust voltage according to the second current; and

adding the adjust voltage to the first feedback voltage to generate the second feedback voltage.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 11, 2020
From: RICHPOWER MICROELECTRONICS CORPORATION (KY)
To: RICHTEK TECHNOLOGY CORPORATION
Reel/Frame 052080/0758 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 22, 2011
From: RUAN, CHEN-JIE; WANG, CHIN-HUI; MAO, LIANG
To: RICHPOWER MICROELECTRONICS CORPORATION
Reel/Frame 026786/0717 →
Priority Claims (1)
CN 2010 1 0146431 · Apr 14, 2010 · national
Continuity (1)
Related Publication 20110254462A1 · Oct 20, 2011