IP Library Granted Patent US 11,653,431
Granted Patent B2
US 11,653,431 · App. 17/881,774 · Granted May 16, 2023

Load control device for a light-emitting diode light source

Inventors: Timothy P. Gredler (Center Valley, PA); Matthew R. Zartman (Bethlehem, PA)
Assignee: Lutron Technology Company LLC
H05B45/3725H05B45/10H05B45/335H05B45/375H05B45/385H05B45/395
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Quick Facts
Patent No.
US 11,653,431
App. No.
17/881,774
Granted
May 16, 2023
Kind
B2
Abstract

A load control device for controlling the intensity of a lighting load, such as a light-emitting diode (LED) light source, may include a power converter circuit operable to receive a rectified AC voltage and to generate a DC bus voltage, a load regulation circuit operable to receive the bus voltage and to control the magnitude of a load current conducted through the lighting load, and a control circuit operatively coupled to the load regulation circuit for pulse width modulating or pulse frequency modulating the load current to control the intensity of the lighting load to a target intensity. The control circuit may control the intensity of the lighting load by pulse width modulating the load current when the target intensity is above a predetermined threshold and control the intensity of the lighting load by pulse frequency modulating the load current when the target intensity is below the predetermined threshold.

Claims (49)

1. A lighting controller to provide power to an operatively coupled lighting load, the lighting controller comprising:

a control circuit to:

receive a value indicative of a target intensity for the lighting load;

determine at least one of:

whether the received target intensity falls within a first intensity range; or

whether the received target intensity is greater than a threshold intensity value;

cause an operatively coupled load regulation circuit to provide a pulse width modulated load current sufficient to cause the lighting load to output illumination at the received target intensity responsive to the determination of at least one of:

the received target intensity falls within the first intensity range; or

the received target intensity is greater than the threshold intensity value;

determine whether the received target intensity falls within a second intensity range; and

cause the load regulation circuit to provide a pulse frequency modulated load current sufficient to cause the lighting load to output illumination at the received target intensity responsive to the determination of at least one of:

the received target intensity falls within the second intensity range; or

the received target intensity is less than or equal to the threshold intensity value.

2. The controller of claim 1 wherein to provide the pulse frequency modulated load current sufficient to cause the lighting load to output illumination at the received target intensity, the control circuitry to further:

cause the load regulation circuit to vary a frequency of a current pulse having a fixed current maintained for a fixed temporal duration.

3. The controller of claim 1 wherein to provide the pulse width modulated load current sufficient to cause the lighting load to output illumination at the received target intensity, the control circuitry to further:

cause the load regulation circuit to vary a temporal duration of a fixed current pulse maintained at a fixed frequency.

4. A lighting load control method, comprising:

receiving, by a lighting controller control circuit, a value indicative of a target intensity for a lighting load operatively coupled to the control circuit;

determining, by the control circuit, at least one of:

whether the received target intensity falls within a first intensity range; or

whether the received target intensity is greater than a threshold intensity value;

causing, by the control circuit, an operatively coupled load regulation circuit to provide a pulse width modulated load current sufficient to cause the lighting load to output illumination at the received target intensity responsive to the determination of at least one of:

the received target intensity falls within the first intensity range; or

the received target intensity is greater than the threshold intensity value;

determining, by the control circuit, whether the received target intensity falls within a second intensity range; and

causing, by the control circuit, the load regulation circuit to provide a pulse frequency modulated load current sufficient to cause the lighting load to output illumination at the received target intensity responsive to the determination of at least one of:

the received target intensity falls within the second intensity range; or

the received target intensity is less than or equal to the threshold intensity value.

5. The method of claim 4 wherein causing the load regulation circuit to provide the pulse frequency modulated load current sufficient to cause the lighting load to output illumination at the received target intensity further comprises:

causing, by the control circuit, the load regulation circuit to vary a frequency of a current pulse having a fixed current maintained for a fixed temporal duration.

6. The method of claim 4 wherein causing the load regulation circuit to provide the pulse width modulated load current sufficient to cause the lighting load to output illumination at the received target intensity further comprises:

causing, by the control circuit, the load regulation circuit to vary a temporal duration of a fixed current pulse maintained at a fixed frequency.

7. A non-transitory, machine-readable, storage device that includes instructions, that when executed by control circuitry disposed in a lighting controller, cause the control circuitry to:

receive a value indicative of a target intensity for an operatively coupled lighting load;

determine at least one of:

whether the received target intensity falls within a first intensity range; or

whether the received target intensity is greater than a threshold intensity value;

cause an operatively coupled load regulation circuit to provide a pulse width modulated load current sufficient to cause the lighting load to output illumination at the received target intensity responsive to the determination of at least one of:

the received target intensity falls within the first intensity range; or

the received target intensity is greater than the threshold intensity value;

determine whether the received target intensity falls within a second intensity range; and

cause the load regulation circuit to provide a pulse frequency modulated load current sufficient to cause the lighting load to output illumination at the received target intensity responsive to the determination of at least one of:

the received target intensity falls within the second intensity range; or

the received target intensity is less than or equal to the threshold intensity value.

8. The non-transitory, machine-readable, storage device of claim 7 wherein the instructions that cause the control circuitry to cause the load regulation circuit to provide the pulse frequency modulated load current sufficient to cause the lighting load to output illumination at the received target intensity further cause the control circuit to:

cause the load regulation circuit to vary a frequency of a current pulse having a fixed current maintained for a fixed temporal duration.

9. The non-transitory, machine-readable, storage device of claim 7 wherein the instructions that cause the control circuitry to cause the load regulation circuit to provide the pulse width modulated load current sufficient to cause the lighting load to output illumination at the received target intensity further cause the control circuit to:

cause the load regulation circuit to vary a temporal duration of a fixed current pulse maintained at a fixed frequency.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 7, 2024
From: GREDLER, TIMOTHY P.; ZARTMAN, MATTHEW R.
To: LUTRON ELECTRONICS CO., INC.
Reel/Frame 066685/0241 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 7, 2024
From: LUTRON ELECTRONICS CO., INC.
To: LUTRON TECHNOLOGY COMPANY LLC
Reel/Frame 066765/0001 →
Continuity (11)
Continuation 17001050 · Aug 24, 2020
Continuation 16601845 · Oct 15, 2019
Continuation 16378134 · Apr 8, 2019
Continuation 15953812 · Apr 16, 2018
Continuation 15717123 · Sep 27, 2017
Continuation 15460973 · Mar 16, 2017
Continuation 15291308 · Oct 12, 2016
Continuation 14796278 · Jul 10, 2015
Continuation 14290584 · May 29, 2014
Provisional Application 61828337 · May 29, 2013
Related Publication 20220386432A1 · Dec 1, 2022