Claims
- 1. A supply assembly for a LED lighting module comprising:
a direct current (DC) voltage source having a first and a second supply terminal; a switched-mode converter connected to said first and second supply terminals for supplying power to an LED lighting module connectable to said converter, said converter comprising a controllable switch coupled to at least one of said first and second supply terminals for switchably connecting said DC voltage source; and a controller for controlling the switching of the controllable switch, said controller having means for supplying a dual pulse-width modulated switching signal to said controllable switch at two frequencies including a high frequency pulse-width modulated switching signal component for controlling a magnitude of an LED current in said LED lighting module, and a low frequency pulse-width modulated switching signal component for controlling a duration of the LED current.
- 2. A supply assembly for a LED lighting module comprising:
a direct current (DC) voltage source having a first and a second supply terminal; a series arrangement of a diode and a controllable switch connected across the first and second supply terminals of the DC voltage source; an inductor connecting the first supply terminal of the DC voltage source to an first output terminal, a node between the diode and the controllable switch forming a second output terminal, said LED lighting module being connectable between the first and second output terminals; and a controller for controlling the switching of the controllable switch, said controller having means for supplying a dual pulse-width modulated switching signal to said controllable switch at two frequencies including a high frequency pulse-width modulated switching signal component for controlling a magnitude of an LED current in said LED lighting module, and a low frequency pulse-width modulated switching signal component for controlling a duration of the LED current.
- 3. The supply assembly as claimed in claim 2, wherein the controller further comprises an input for receiving a sensed current indicative of the LED current, and means for modifying said low frequency pulse-width modulated switching signal component in dependence on said sensed current.
- 4. The supply assembly as claimed in claim 3, wherein the controller comprises:
a current source for supplying a reference current; a source for supplying a high frequency sawtooth signal; a current mode pulse width modulator coupled to receive said sensed current, said reference current and said high frequency sawtooth signal, said current mode pulse width modulator supplying said high frequency PWM switching signal component; a source for said low frequency PWM switching signal component; and an AND-gate having a first input for receiving said high frequency PWM switching signal component, and a second input for receiving said low frequency PWM switching signal component, said AND-gate supplying said dual PWM switching signal.
- 5. The supply assembly as claimed in claim 3, wherein the controller comprises:
an adder for receiving a voltage reference signal and a high frequency sawtooth signal; a comparator having an inverting input coupled to an output of said adder, and a non-inverting input coupled to receive said sensed current; an RS flip-flop having a reset input coupled to an output of said comparator and a set input coupled to receive a high frequency clock signal; and an AND-gate having a first input coupled to an output of said RS flip-flop, and a second input coupled to receive the low frequency PWM switching signal component, said AND-gate supplying said dual PWM switching signal.
- 6. The supply assembly as claimed in claim 3, wherein the controller comprises:
an integrator coupled to receive said sensed current, said integrator forming an average of said sensed current; a low frequency sawtooth generator having a variable user control input for varying a generated low frequency sawtooth signal; a first reference current source; a low frequency pulse width modulator coupled to receive said average sensed current, said low frequency sawtooth signal and said first reference current, said low frequency pulse width modulator varying a pulse width of the generated low frequency PWM switching signal component in dependence on the average sensed current and the low frequency sawtooth signal; a sample-and-hold circuit also coupled to receive said sensed current, said sample-and-hold circuit having a control input for receiving the low frequency PWM switching signal component as a gate signal, said sample-and-hold circuit supplying a peak current signal of said sensed current; a second reference current source; a high frequency sawtooth generator for generating a high frequency sawtooth signal; a high frequency pulse width modulator coupled to receive said peak current signal, said second reference current and said high frequency sawtooth signal, said high frequency pulse width modulator varying a pulse width of the generated high frequency PWM switching signal component in dependence on the peak current signal and the high frequency sawtooth signal; and an AND-gate having a first input for receiving the low frequency PWM switching signal component, and a second input for receiving the high frequency PWM switching signal component, said AND-gate supplying said dual PWM switching signal.
Priority Claims (1)
| Number |
Date |
Country |
Kind |
| 00200370.5 |
Feb 2000 |
EP |
|
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This is a continuation-in-part of U.S. patent application Ser. No. 09/773,159, filed Jan. 31, 2001, now Pub. No. US 2001/0024112 A1, published Sep. 27, 2001.
Continuation in Parts (1)
|
Number |
Date |
Country |
| Parent |
09773159 |
Jan 2001 |
US |
| Child |
10323445 |
Dec 2002 |
US |