IP Library Granted Patent US 9,155,163
Granted Patent B2
US 9,155,163 · App. 14/012,775 · Granted Oct 6, 2015

Trailing edge dimmer compatibility with dimmer high resistance prediction

Inventors: John L. Melanson (Austin, TX); Eric J. King (Dripping Springs, TX)
Assignee: Cirrus Logic, Inc.
H05B37/02H05B33/0815H05B33/0851H05B39/048
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Quick Facts
Patent No.
US 9,155,163
App. No.
14/012,775
Granted
Oct 6, 2015
Kind
B2
Abstract

In at least one embodiment, an electronic system includes a controller, and the controller provides compatibility between an electronic light source and a trailing edge dimmer. In at least one embodiment, the controller is capable of predicting an estimated occurrence of a trailing edge of a phase cut AC voltage and accelerating a transition of the phase cut AC voltage from the trailing edge to a predetermined voltage threshold. In at least one embodiment, the controller predicts an estimated occurrence of the trailing edge of the phase cut AC voltage on the basis of actual observations from one or more previous cycles of the phase cut AC voltage.

Claims (76)

1. An apparatus comprising:

a controller to provide compatibility between a lamp and a trailing edge dimmer, wherein the controller is configured to:

predict an estimated time when the trailing edge dimmer enters a high resistance state, wherein the time when the trailing edge dimmer enters the high resistance state occurs when the trailing edge dimmer begins phase cutting an alternating current (AC) voltage signal;

operate in a high current mode based on the estimated predicted occurrence of the high resistance state of the trailing edge dimmer; and

operate in a low impedance mode after the AC voltage signal reaches a low voltage threshold.

2. The apparatus of claim 1 wherein the controller is further configured to predict the estimated time when the trailing edge dimmer enters a high resistance state of the trailing edge dimmer from prior determined times when the trailing edge dimmer enters the high resistive state.

3. The apparatus of claim 2 wherein the controller is further configured to:

predict the estimated time when the trailing edge dimmer enters a high resistance state of the trailing edge dimmer from trends indicated by multiple preceding times when the trailing edge dimmer entered a high resistance state.

4. The apparatus of claim 3 wherein the controller is further configured to predict the estimated time when the trailing edge dimmer enters a high resistance state of the trailing edge dimmer from changes between an immediately preceding time when the trailing edge dimmer enters a high resistance state and at least an earlier preceding time when the trailing edge dimmer enters a high resistance state.

5. The apparatus of claim 1 wherein the controller is further configured to predict the estimated time when the trailing edge dimmer enters a high resistance state separately for odd cycles of the AC voltage signal and even cycles of the AC voltage signal.

6. The apparatus of claim 1 wherein the controller is further configured to:

compare the phase-cut AC voltage signal with a threshold value that represents an approximate zero voltage level of the AC voltage signal;

determine an elapsed time between when comparisons of the AC voltage signal with the threshold value indicates the AC voltage signal has approached two consecutive zero voltage level of the AC voltage signal;

determine an approximate active time period of the trailing edge dimmer, detect a third consecutive zero voltage level of the AC voltage signal; and

predict the estimated time when the trailing edge dimmer enters the high resistance state of the trailing edge dimmer by adding the determined approximate active time period to a time when the third consecutive zero voltage level of the AC voltage signal was detected and subtracting an estimated decay time of a trailing edge of the phase-cut the AC voltage signal.

7. The apparatus of claim 1 wherein the controller is capable to operate in the high current mode prior to when the trailing edge dimmer begins phase cutting an alternating current (AC) voltage signal.

8. The apparatus of claim 7 wherein the controller is capable to operate in the high current mode within 0.1 milliseconds prior to when the trailing edge dimmer begins phase cutting an alternating current (AC) voltage signal.

9. The apparatus of claim 1 wherein the controller is capable to operate in the high current mode prior to the estimated predicted occurrence of the high resistance state of the trailing edge dimmer.

10. The apparatus of claim 1 wherein the lamp comprises one or more light emitting diodes, and the apparatus further comprises:

a switching power converter coupled to the controller.

11. A method to provide compatibility between a lamp and a trailing edge dimmer, the method comprising:

predicting an estimated time when the trailing edge dimmer enters a high resistance state, wherein the time when the trailing edge dimmer enters the high resistance state occurs when the trailing edge dimmer begins phase cutting an alternating current (AC) voltage signal;

operating a controller of at least a power converter in a high current mode based on the estimated predicted occurrence of the high resistance state of the trailing edge dimmer; and

operating the controller in a low impedance mode after the AC voltage signal reaches a low voltage threshold.

12. The method of claim 11 wherein predicting an estimated time when the trailing edge dimmer enters a high resistance state of the trailing edge dimmer comprises predicting the estimated time when the trailing edge dimmer enters a high resistance state of the trailing edge dimmer from prior determined times when the trailing edge dimmer enters the high resistive state.

13. The method of claim 12 wherein predicting an estimated time when the trailing edge dimmer enters a high resistance state of the trailing edge dimmer further comprises:

predicting the estimated time when the trailing edge dimmer enters a high resistance state of the trailing edge dimmer from trends indicated by multiple preceding times when the trailing edge dimmer entered a high resistance state.

14. The method of claim 13 wherein predicting an estimated time when the trailing edge dimmer enters a high resistance state of the trailing edge dimmer further comprises:

predicting the estimated time when the trailing edge dimmer enters a high resistance state of the trailing edge dimmer from changes between an immediately preceding time when the trailing edge dimmer enters a high resistance state and at least an earlier preceding time when the trailing edge dimmer enters a high resistance state.

15. The method of claim 11 wherein predicting an estimated time when the trailing edge dimmer enters a high resistance state of the trailing edge dimmer further comprises:

predicting the estimated time when the trailing edge dimmer enters a high resistance state separately for odd cycles of the AC voltage signal and even cycles of the AC voltage signal.

16. The method of claim 11 wherein predicting an estimated time when the trailing edge dimmer enters a high resistance state of the trailing edge dimmer further comprises:

comparing the phase-cut AC voltage signal with a threshold value that represents an approximate zero voltage level of the AC voltage signal;

determining an elapsed time between when comparisons of the AC voltage signal with the threshold value indicates the AC voltage signal has approached two consecutive zero voltage level of the AC voltage signal;

determining an approximate active time period of the trailing edge dimmer, detect a third consecutive zero voltage level of the AC voltage signal; and

predicting the estimated time when the trailing edge dimmer enters the high resistance state of the trailing edge dimmer by adding the determined approximate active time period to a time when the third consecutive zero voltage level of the AC voltage signal was detected and subtracting an estimated decay time of a trailing edge of the phase-cut the AC voltage signal.

17. The method of claim 11 further comprising:

operating the controller in the high current mode prior to when the trailing edge dimmer begins phase cutting an alternating current (AC) voltage signal.

18. The method of claim 17 further comprising:

operating the controller in the high current mode within 0.1 milliseconds prior to when the trailing edge dimmer begins phase cutting an alternating current (AC) voltage signal.

19. The method of claim 11 further comprising:

operating the controller in the high current mode prior to the estimated predicted occurrence of the high resistance state of the trailing edge dimmer.

20. The method of claim 11 wherein the lamp comprises one or more light emitting diodes.

21. An apparatus comprising:

a controller configured to:

predict an estimated time when the trailing edge dimmer enters a high resistance state, wherein the time when the trailing edge dimmer enters the high resistance state occurs when the trailing edge dimmer begins phase cutting an alternating current (AC) voltage signal; and

accelerate a transition of the AC voltage from the trailing edge to a predetermined voltage threshold.

22. The apparatus of claim 20 wherein the controller is further configured to predict the estimated time when the trailing edge dimmer enters a high resistance state of the trailing edge dimmer from prior determined times when the trailing edge dimmer enters the high resistive state.

23. The apparatus of claim 21 wherein the controller is further configured to:

predict the estimated time when the trailing edge dimmer enters a high resistance state of the trailing edge dimmer from trends indicated by multiple preceding times when the trailing edge dimmer entered a high resistance state.

24. The apparatus of claim 22 wherein the controller is further configured to predict the estimated time when the trailing edge dimmer enters a high resistance state of the trailing edge dimmer from changes between an immediately preceding time when the trailing edge dimmer enters a high resistance state and at least an earlier preceding time when the trailing edge dimmer enters a high resistance state.

25. The apparatus of claim 20 wherein the controller is further configured to predict the estimated time when the trailing edge dimmer enters a high resistance state separately for odd cycles of the AC voltage signal and even cycles of the AC voltage signal.

26. The apparatus of claim 20 wherein the controller is further configured to:

compare the phase-cut AC voltage signal with a threshold value that represents an approximate zero voltage level of the AC voltage signal;

determine an elapsed time between when comparisons of the AC voltage signal with the threshold value indicates the AC voltage signal has approached two consecutive zero voltage level of the AC voltage signal;

determine an approximate active time period of the trailing edge dimmer, detect a third consecutive zero voltage level of the AC voltage signal; and

predict the estimated time when the trailing edge dimmer enters the high resistance state of the trailing edge dimmer by adding the determined approximate active time period to a time when the third consecutive zero voltage level of the AC voltage signal was detected and subtracting an estimated decay time of a trailing edge of the phase-cut the AC voltage signal.

27. The apparatus of claim 21 wherein the lamp comprises one or more light emitting diodes, and the apparatus further comprises:

a switching power converter coupled to the controller.

28. A method comprising:

predicting an estimated time when the trailing edge dimmer enters a high resistance state, wherein the time when the trailing edge dimmer enters the high resistance state occurs when the trailing edge dimmer begins phase cutting an alternating current (AC) voltage signal; and

accelerating a transition of the AC voltage from the trailing edge to a predetermined voltage threshold.

29. The method of claim 27 wherein predicting an estimated time when the trailing edge dimmer enters a high resistance state of the trailing edge dimmer comprises predicting the estimated time when the trailing edge dimmer enters a high resistance state of the trailing edge dimmer from prior determined times when the trailing edge dimmer enters the high resistive state.

30. The method of claim 28 wherein predicting an estimated time when the trailing edge dimmer enters a high resistance state of the trailing edge dimmer further comprises:

predicting the estimated time when the trailing edge dimmer enters a high resistance state of the trailing edge dimmer from trends indicated by multiple preceding times when the trailing edge dimmer entered a high resistance state.

31. The method of claim 29 wherein predicting an estimated time when the trailing edge dimmer enters a high resistance state of the trailing edge dimmer further comprises:

predicting the estimated time when the trailing edge dimmer enters a high resistance state of the trailing edge dimmer from changes between an immediately preceding time when the trailing edge dimmer enters a high resistance state and at least an earlier preceding time when the trailing edge dimmer enters a high resistance state.

32. The method of claim 28 wherein predicting an estimated time when the trailing edge dimmer enters a high resistance state of the trailing edge dimmer further comprises:

predicting the estimated time when the trailing edge dimmer enters a high resistance state separately for odd cycles of the AC voltage signal and even cycles of the AC voltage signal.

33. The method of claim 28 wherein predicting an estimated time when the trailing edge dimmer enters a high resistance state of the trailing edge dimmer further comprises:

comparing the phase-cut AC voltage signal with a threshold value that represents an approximate zero voltage level of the AC voltage signal;

determining an elapsed time between when comparisons of the AC voltage signal with the threshold value indicates the AC voltage signal has approached two consecutive zero voltage level of the AC voltage signal;

determining an approximate active time period of the trailing edge dimmer, detect a third consecutive zero voltage level of the AC voltage signal; and

predicting the estimated time when the trailing edge dimmer enters the high resistance state of the trailing edge dimmer by adding the determined approximate active time period to a time when the third consecutive zero voltage level of the AC voltage signal was detected and subtracting an estimated decay time of a trailing edge of the phase-cut the AC voltage signal.

34. The method of claim 28 further comprising:

controlling a switching power converter coupled to one or more light emitting diodes.

Assignments (3)
CHANGE OF NAME Recorded Oct 28, 2019
From: PHILIPS LIGHTING HOLDING B.V.
To: SIGNIFY HOLDING B.V.
Reel/Frame 050837/0576 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 21, 2016
From: KONINKLIJKE PHILIPS N.V.
To: PHILIPS LIGHTING HOLDING B.V.
Reel/Frame 041170/0806 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 20, 2016
From: CIRRUS LOGIC, INC.
To: KONINKLIJKE PHILIPS N.V.
Reel/Frame 037563/0720 →
Continuity (3)
Continuation 13298002 · Nov 16, 2011
Provisional Application 61414291 · Nov 16, 2010
Related Publication 20130342123A1 · Dec 26, 2013