IP Library Granted Patent US 11,784,638
Granted Patent B2
US 11,784,638 · App. 17/503,238 · Granted Oct 10, 2023

Switch control systems for light emitting diodes and methods thereof

Inventors: Liqiang Zhu (Shanghai, CN); Jun Zhou (Shanghai, CN)
Assignee: On-Bright Electronics (Shanghai) Co., Ltd.
H03K5/24H05B45/10H05B45/3575H05B45/395G01R19/16538Y02B20/30
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Quick Facts
Patent No.
US 11,784,638
App. No.
17/503,238
Granted
Oct 10, 2023
Kind
B2
Abstract

System and method for controlling one or more light emitting diodes. For example, the system for controlling one or more light emitting diodes includes a current generator configured to generate a first current flowing through one or more light emitting diodes. The one or more light emitting diodes are configured to receive a rectified voltage generated by a rectifying bridge coupled to a TRIAC dimmer. Additionally, the system includes a bleeder configured to receive the rectified voltage, and a controller configured to receive a sensing voltage from the current generator and output a control signal to the bleeder. The sensing voltage indicates a magnitude of the first current.

Claims (61)

1. A system for controlling one or more light emitting diodes, the system comprising:

a current generator configured to generate a first current flowing through one or more light emitting diodes, the one or more light emitting diodes being configured to receive a rectified voltage generated by a rectifying bridge coupled to a TRIAC dimmer;

a bleeder configured to receive the rectified voltage; and

a controller configured to:

receive a sensing voltage from the current generator, the sensing voltage indicating a magnitude of the first current;

receive an input voltage generated by a voltage divider, the voltage divider being configured to receive a dimmer output voltage generated by the TRIAC dimmer and received by the rectifying bridge, the input voltage indicating a magnitude of the dimmer output voltage; and

output a control signal to the bleeder;

wherein the controller is further configured to:

generate the control signal to turn off the bleeder if the sensing voltage and the input voltage satisfy a first condition so that the bleeder does not generate a second current, the second current being larger than zero in magnitude; and

generate the control signal to turn on the bleeder if the sensing signal and the input voltage satisfy a second condition so that the bleeder generates the second current;

wherein the second condition is different from the first condition.

2. The system of claim 1 wherein the controller is further configured to:

generate the control signal at a first logic level from a first time to a second time, during which the sensing voltage is smaller than a first reference voltage in magnitude and the input voltage is smaller than a second reference voltage in magnitude;

generate the control signal at a second logic level from the second time to a third time, during which the sensing voltage is larger than the first reference voltage in magnitude and the input voltage is larger than the second reference voltage in magnitude;

generate the control signal at the second logic level from the third time to a fourth time, during which the sensing voltage is smaller than the first reference voltage in magnitude and the input voltage is larger than the second reference voltage in magnitude; and

generate the control signal at the first logic level from the fourth time to a fifth time, during which the sensing voltage is smaller than the first reference voltage in magnitude and the input voltage is smaller than the second reference voltage in magnitude;

wherein the first logic level and the second logic level are different.

3. The system of claim 2 wherein:

the control signal at the first logic level is configured to turn on the bleeder so that the bleeder generates the second current; and

the control signal at the second logic level is configured to turn off the bleeder so that the bleeder does not generate the second current.

4. The system of claim 1 wherein the rectifying bridge is coupled to the TRIAC dimmer through a fuse.

5. A system for controlling one or more light emitting diodes, the system comprising:

a current generator configured to generate a first current flowing through one or more light emitting diodes, the one or more light emitting diodes being configured to receive a rectified voltage generated by a rectifying bridge coupled to a TRIAC dimmer;

a bleeder configured to receive the rectified voltage; and

a controller configured to:

receive a sensing voltage from the current generator, the sensing voltage indicating a magnitude of the first current;

receive an input voltage generated by a voltage divider, the voltage divider being configured to receive a dimmer output voltage generated by the TRIAC dimmer and received by the rectifying bridge, the input voltage indicating a magnitude of the dimmer output voltage; and

output a control signal to the bleeder;

wherein the controller is further configured to:

generate the control signal to turn off the bleeder if the input voltage satisfies a first condition so that the bleeder does not generate a second current, the second current being larger than zero in magnitude; and

generate the control signal to turn on the bleeder if the input voltage satisfies a second condition so that the bleeder generates the second current;

wherein the second condition is different from the first condition.

6. The system of claim 5 wherein the controller is further configured to:

generate the control signal at a first logic level from a first time to a second time, during which the input voltage is smaller than a reference voltage in magnitude;

generate the control signal at a second logic level from the second time to a third time, during which the input voltage is larger than the reference voltage in magnitude; and

generate the control signal at the first logic level from the third time to a fourth time, during which the input voltage is smaller than the second reference voltage in magnitude;

wherein the first logic level and the second logic level are different.

7. The system of claim 6 wherein:

the control signal at the first logic level is configured to turn on the bleeder so that the bleeder generates the second current; and

the control signal at the second logic level is configured to turn off the bleeder so that the bleeder does not generate the second current.

8. The system of claim 5 wherein the rectifying bridge is coupled to the TRIAC dimmer through a fuse.

9. A method for controlling one or more light emitting diodes, the method comprising:

generating a first current flowing through one or more light emitting diodes, the one or more light emitting diodes being configured to receive a rectified voltage generated by a rectifying bridge coupled to a TRIAC dimmer;

receiving, by a bleeder, the rectified voltage;

receiving, by a controller, a sensing voltage, the sensing voltage indicating a magnitude of the first current;

receiving, by the controller, an input voltage generated by a voltage divider, the voltage divider being configured to receive a dimmer output voltage generated by the TRIAC dimmer and received by the rectifying bridge, the input voltage indicating a magnitude of the dimmer output voltage; and

outputting, by the controller, a control signal to the bleeder;

wherein the outputting, by the controller, a control signal to the bleeder includes:

generating the control signal to turn off the bleeder if the sensing voltage and the input voltage satisfy a first condition so that the bleeder does not generate a second current, the second current being larger than zero in magnitude; and

generating the control signal to turn on the bleeder if the sensing signal and the input voltage satisfy a second condition so that the bleeder generates the second current;

wherein the second condition is different from the first condition.

10. A method for controlling one or more light emitting diodes, the method comprising:

generating a first current flowing through one or more light emitting diodes, the one or more light emitting diodes being configured to receive a rectified voltage generated by a rectifying bridge coupled to a TRIAC dimmer;

receiving, by a bleeder, the rectified voltage;

receiving, by a controller, a sensing voltage, the sensing voltage indicating a magnitude of the first current;

receiving, by the controller, an input voltage generated by a voltage divider, the voltage divider being configured to receive a dimmer output voltage generated by the TRIAC dimmer and received by the rectifying bridge, the input voltage indicating a magnitude of the dimmer output voltage; and

outputting, by the controller, a control signal to the bleeder;

wherein the outputting, by the controller, a control signal to the bleeder includes:

generating the control signal to turn off the bleeder if the input voltage satisfies a first condition so that the bleeder does not generate a second current, the second current being larger than zero in magnitude; and

generating the control signal to turn on the bleeder if the input voltage satisfies a second condition so that the bleeder generates the second current;

wherein the second condition is different from the first condition.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 17, 2021
From: ZHU, LIQIANG; ZHOU, JUN
To: ON-BRIGHT ELECTRONICS (SHANGHAI) CO., LTD.
Reel/Frame 058144/0907 →
Priority Claims (1)
CN 201710557179.4 · Jul 10, 2017 · national
Continuity (3)
Division 16809405 · Mar 4, 2020
Continuation 16124739 · Sep 7, 2018
Related Publication 20220038085A1 · Feb 3, 2022
Cited By (7)
US 12,193,124 US 12,396,079 US 12,408,243 US 12,438,534 US 12,464,620 US 12,609,622 US 12,720,651