IP Library Granted Patent US 8,901,831
Granted Patent B2
US 8,901,831 · App. 13/722,581 · Granted Dec 2, 2014

Constant current pulse-width modulation lighting system and associated methods

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Quick Facts
Patent No.
US 8,901,831
App. No.
13/722,581
Granted
Dec 2, 2014
Kind
B2
Abstract

A lighting system comprising a constant current power source one or more sets of light emitting elements, and associated circuitry. The light emitting elements may be light emitting diodes (LEDs) that have been selected to emit light having specific wavelengths corresponding to specific colors. The lighting system may selectively control the intensity of each set of LED by utilizing pulse-width modulation. The sets of LEDs may be serially connected and selectively operated independently of each other set of LEDs.

Claims (54)

1. A lighting circuit comprising:

a constant current power source;

a first set of light-emitting elements electrically coupled with the constant current power source;

a first drive circuit electrically coupled to the first set of light-emitting elements in parallel;

a second set of light-emitting elements serially electrically coupled to each of the first set of light-emitting elements and the first drive circuit; and

a second drive circuit serially electrically coupled to each of the first set of light-emitting elements and the first drive circuit and electrically coupled to the second set of light-emitting elements in parallel;

wherein the first drive circuit is configured to receive a first control input;

wherein the first drive circuit is configured to operate the first set of light-emitting elements responsive to the first control input;

wherein the second drive circuit is configured to receive a second control input;

wherein the second drive circuit is configured to operate the second set of light-emitting elements responsive to the second control input;

wherein the first drive circuit is configured such that electricity will flow to each of the second set of light-emitting elements and the second drive circuit through the first drive circuit when the first control input is in a first state, and through the first set of light-emitting elements when the control input is in a second state.

2. A lighting circuit according to claim 1 wherein each of the first control input and the second control input are a pulse-width modulation signal.

3. A lighting circuit according to claim 1 wherein a light-emitting element of the first and second sets of light-emitting elements is a light-emitting diode.

4. A lighting circuit according to claim 1 wherein the light-emitting elements of the first set of light-emitting elements emits light having a first wavelength, and wherein the light-emitting elements of the second set of light-emitting elements emit light having a second wavelength.

5. A lighting circuit according to claim 4 wherein the first wavelength is different from the second wavelength.

6. A lighting circuit according to claim 1 wherein the first state of the first control signal is one of a high state and a low state, and wherein the second state of the first control signal is the opposite.

7. A lighting circuit according to claim 1 wherein at least one of the first drive circuit and the second drive circuit comprises a zener diode electrically coupled in parallel with the respective set of light-emitting elements, the zener diode being selected to have a breakdown voltage of approximately 4.7 volts.

8. A light circuit according to claim 1 wherein the first drive circuit comprises a first metal-oxide semiconductor field-effect transistor (MOSFET) electrically coupled to the first set of light-emitting elements in parallel; and wherein each of the second drive circuit and the second set of light-emitting elements are serially electrically coupled with the first MOSFET.

9. A lighting circuit according to claim 1 wherein the first set of light-emitting elements has a peak operational efficiency voltage that is greater than a peak operational efficiency voltage of the second set of light-emitting elements.

10. A lighting circuit according to claim 1 further comprising:

a third set of light-emitting elements serially electrically coupled to each of the second set of light-emitting elements and the second drive circuit; and

a third drive circuit serially electrically coupled to each of the second set of light-emitting elements and the second drive circuit and electrically coupled to the third set of light-emitting elements in parallel;

wherein the third drive circuit is configured to receive a third control input;

wherein the third drive circuit is configured to operate the third set of light-emitting elements responsive to the third control input; and

wherein the second drive circuit is configured such that electricity will flow to each of the third set of light-emitting elements and the third drive circuit through the second drive circuit when the second control input is in a first state, and through the second set of light-emitting elements when the control input is in a second state.

11. A lighting circuit according to claim 9 wherein the light-emitting elements of the first set of light-emitting elements emits light having a first wavelength; wherein the light-emitting elements of the second set of light-emitting elements emit light having a second wavelength; and wherein the light-emitting elements of the third set of light-emitting elements emit light having a third wavelength; wherein the first wavelength is different from each of the second wavelength and the third wavelength; and wherein the second wavelength is different from the third wavelength.

12. A light circuit according to claim 9 wherein the second drive circuit comprises a second MOSFET electrically coupled to the first set of light-emitting elements in parallel; and wherein each of the third drive circuit and the third set of light-emitting elements are serially electrically coupled with the second MOSFET.

13. A lighting circuit according to claim 9 wherein the third drive circuit comprises a third MOSFET electrically coupled to the third set of light-emitting elements in parallel.

14. A lighting circuit according to claim 9 wherein the second set of light-emitting elements has a peak operational efficiency voltage that is greater than a peak operational efficiency voltage of the third set of light-emitting elements.

15. A method of operating a lighting circuit comprising a constant current power source, a first drive circuit, a first set of light-emitting elements, a second drive circuit, and a second set of light-emitting elements, the method comprising the steps of:

operating the power source to provide current to each of the first drive circuit and the first set of light-emitting elements;

transmitting a first control input to the first drive circuit;

operating the first set of light-emitting elements responsive to the first control input;

transmitting current to each of the second drive circuit and the second set of light-emitting elements through only one of the first drive circuit and the first set of light-emitting elements;

transmitting a second control input to the second drive circuit; and

operating the second set of light-emitting elements responsive to the second control input.

16. A method according to claim 15 wherein at least one of the first control input and the second control input comprise a pulse width modulation (PWM) signal.

17. A method according to claim 15 wherein the first drive circuit further comprises a zener diode electrically coupled to the first set of light-emitting elements in parallel and having a breakdown voltage, wherein the first set of light-emitting elements have a breakdown voltage greater than the breakdown voltage of the zener diode, the method further comprising the steps of:

operating the power source to provide current having voltage exceeding the breakdown voltage of each of the zener diode and the first set of light-emitting elements; and

causing the zener diode to break down, causing the current to bypass the first set of light-emitting elements.

18. A method according to claim 15 wherein the first drive circuit further comprises a first metal-oxide semiconductor field-effect transistor (MOSFET) electrically coupled to the first set of light-emitting elements in parallel, and wherein the step of operating a first set of light-emitting elements responsive to the first control input further comprises the steps of:

receiving the first control signal; and

operating the first MOSFET responsive to the first control signal;

wherein the first control signal being in a high state causes the MOSFET to turn on, thereby causing the first set of light-emitting elements to not operate; and

wherein the first control signal being in a low state causes the MOSFET to turn off, thereby causing the first set of light-emitting elements to operate.

19. A method according to claim 15 wherein the lighting circuit further comprises a third drive circuit and a third set of light-emitting elements, the method further comprising the steps of:

transmitting current to each of the third drive circuit and the third set of light-emitting elements through only one of the second drive circuit and the second set of light-emitting elements;

transmitting a third control input to the third drive circuit; and

operating the third set of light-emitting elements responsive to the third control input.

20. A method according to claim 19 wherein the third drive circuit comprises a MOSFET, and wherein the step of operating the third set of light-emitting elements responsive to the third control input comprises the steps of:

receiving the third control input at the MOSFET of the third drive circuit; and

operating the MOSFET of the third drive circuit responsive to the third control signal;

wherein the third control signal being in a high state causes the MOSFET of the third drive circuit to turn on, thereby causing the first set of light-emitting elements to not operate; and

wherein the third control signal being in a low state causes the MOSFET of the third drive circuit to turn off, thereby causing the first set of light-emitting elements to operate.

Assignments (8)
RELEASE OF SECURITY INTEREST Recorded Aug 14, 2018
From: MEDLEY CAPITAL CORPORATION
To: LIGHTING SCIENCE GROUP CORPORATION, A DELAWARE CORPORATION; BIOLOGICAL ILLUMINATION, LLC, A DELAWARE LIMITED LIABILITY COMPANY
Reel/Frame 048018/0515 →
RELEASE OF SECURITY INTEREST Recorded Apr 26, 2017
From: ACF FINCO I LP, A DELAWARE LIMITED PARTNERSHIP
To: LIGHTING SCIENCE GROUP CORPORATION, A DELAWARE CORPORATION; BIOLOGICAL ILLUMINATION, LLC, A DELAWARE LIMITED LIABILITY COMPANY
Reel/Frame 042340/0309 →
RELEASE OF SECURITY INTEREST Recorded Apr 26, 2017
From: ACF FINCO I LP, A DELAWARE LIMITED PARTNERSHIP
To: LIGHTING SCIENCE GROUP CORPORATION, A DELAWARE CORPORATION; BIOLOGICAL ILLUMINATION, LLC, A DELAWARE LIMITED LIABILITY COMPANY
Reel/Frame 042340/0471 →
SECURITY INTEREST Recorded Nov 3, 2016
From: LIGHTING SCIENCE GROUP CORPORATION; BIOLOGICAL ILLUMINATION, LLC
To: ACF FINCO I LP, AS AGENT
Reel/Frame 040555/0884 →
ASSIGNMENT AND ASSUMPTION OF SECURITY INTERESTS IN PATENTS Recorded May 26, 2015
From: FCC, LLC D/B/A FIRST CAPITAL
To: ACF FINCO I LP
Reel/Frame 035774/0632 →
SECURITY INTEREST Recorded Jun 2, 2014
From: LIGHTING SCIENCE GROUP CORPORATION; BIOLOGICAL ILLUMINATION, LLC
To: MEDLEY CAPTIAL CORPORATION, AS AGENT
Reel/Frame 033072/0395 →
SECURITY INTEREST Recorded Apr 28, 2014
From: LIGHTING SCIENCE GROUP CORPORATION; BIOLOGICAL ILLUMINATION, LLC
To: FCC, LLC D/B/A FIRST CAPITAL, AS AGENT
Reel/Frame 032765/0910 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 20, 2013
From: DU, GEORGE; MAXIK, FREDRIC S.; BARTINE, DAVID E.; SOLER, ROBERT R.
To: LIGHTING SCIENCE GROUP CORPORATION
Reel/Frame 030448/0292 →