IP Library Granted Patent US 7,183,724
Granted Patent B2
US 7,183,724 · App. 11/011,754 · Granted Feb 27, 2007

Inverter with two switching stages for driving lamp

View Patent ↗
Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US 7,183,724
App. No.
11/011,754
Filed
Dec 14, 2004
Granted
Feb 27, 2007
Kind
B2
Art Unit
2821
USPC
315/274
Abstract

An efficient and flexible current-mode driver delivers power to one or more light sources in a backlight system. In one application, the current-mode driver is configured as an inverter with an input current regulator, a non-resonant polarity-switching network, and a closely-coupled output transformer. The input current regulator can output a regulated current source in a variety of programmable wave shapes. The current-mode driver may further include a rectifier circuit and a second polarity-switching network between the closely-coupled output transformer and a lamp load. In another application, the current-mode driver delivers power to a plurality of light sources in substantially one polarity by providing a regulated current to a network of time-sharing semiconductor switches coupled in series with different light sources coupled across each semiconductor switch.

Claims (37)

1. A multi-stage switching inverter comprising:

a first switching stage configured to periodically couple an input current through a primary winding of a transformer in alternating sense to generate a primary AC driving current, wherein a secondary winding of the transformer conducts a secondary AC driving current with a proportional amplitude and a relatively high AC voltage;

a rectifier circuit coupled across the secondary winding to generate a relatively high voltage and substantially DC current source; and

a second switching stage coupled between the outputs of the rectifier circuit and inputs of a lamp load, wherein the at least two semiconductor switches in the second switching stage are directly coupled to the lamp load and wherein the at least two semiconductor switches alternately conduct to generate an AC lamp current through the lamp load.

2. The multi-stage switching inverter of claim 1 , wherein the first switching stage is arranged in a push-pull configuration with the input current provided to a center tap of the transformer and a pair of semiconductor switches coupled to respective ends of the primary winding.

3. The multi-stage switching inverter of claim 1 , wherein the first switching stage is arranged in a full-bridge configuration.

4. The multi-stage switching inverter of claim 3 , wherein the full-bridge configuration comprises a pair of p-type transistors coupled between the input current and respective ends of the primary winding and a pair of n-type transistors coupled between the respective ends of the primary winding and a reference terminal.

5. The multi-stage switching inverter of claim 1 , wherein the rectifier circuit is a full-wave bridge rectifier comprising of at least four diodes.

6. A multi-stage switching inverter comprising:

a first switching stage configured to periodically couple an input current through a primary winding of a transformer in alternating sense to generate a primary AC driving current, wherein a secondary winding of the transformer conducts a secondary AC driving current with a proportional amplitude and a relatively high AC voltage;

a rectifier circuit coupled across the secondary winding to generate a relatively high voltage and substantially DC current source, wherein the rectifier circuit is a pair of half-wave voltage doublers, each of the half-wave voltage doublers comprising two diodes and two capacitors; and

a second switching stage coupled between the outputs of the rectifier circuit and inputs of a lamp load, wherein semiconductor switches in the second switching stage are directly coupled to the lamp load and alternately conduct to generate an AC lamp current through the lamp load.

7. A multi-stage switching inverter comprising:

a first switching stage configured to periodically couple an input current through a primary winding of a transformer in alternating sense to generate a primary AC driving current, wherein a secondary winding of the transformer conducts a secondary AC driving current with a proportional amplitude and a relatively high AC voltage:

a rectifier circuit coupled across the secondary winding to generate a relatively high voltage and substantially DC current source, wherein the rectifier circuit is a pair of half-wave voltage doublers, each of the half-wave voltage doublers comprising two diodes and one capacitor; and

a second switching stage coupled between the outputs of the rectifier circuit and inputs of a lamp load, wherein semiconductor switches in the second switching stage are directly coupled to the lamp load and alternately conduct to generate an AC lamp current through the lamp load.

8. The multi-stage switching inverter of claim 1 , wherein the second switching stage comprises a plurality of semiconductor transistors arranged in a full-bridge topology to periodically alternate conduction paths for the relatively high voltage and substantially DC current source through the lamp load to generate the AC lamp current.

9. The multi-stage switching inverter of claim 1 , wherein the operating frequency of the first switching stage is higher than the operating frequency of the second switching stage.

10. The multi-stage switching inverter of claim 1 , wherein the first switching stage and the second switching stage use non-resonant circuits.

11. The multi-stage switching inverter of claim 1 , wherein a ground reference is connected to one terminal of the secondary winding, one of the outputs of the rectifier circuit, or one of the inputs of the lamp load.

12. A method to drive a lamp using at least two switching stages, the method comprising the acts of:

operating a first switching stage at relatively high frequency to produce a relatively high voltage AC current source, wherein the first switching stage is coupled to a primary winding of a transformer and the relatively high voltage AC current source is generated in a secondary winding of the transformer;

rectifying the relatively high voltage AC current source to a relatively high voltage DC current source; and

alternately conducting at least two semiconductor switches in a second switching stage at relatively low frequency to generate an AC lamp current through a lamp load, wherein the second switching stage is directly coupled across the lamp load.

13. The method of claim 12 , wherein the range of the relatively high frequency for the first switching stage is 100 kilohertz to 4 Megahertz.

14. The method of claim 12 , wherein the range of relatively low frequency for the second switching stage is 100 hertz to 4 kilohertz.

15. The method of claim 12 , wherein the first switching stage operates at approximately 2 Megahertz and the second switching stage operates at approximately 400 hertz.

16. The method of claim 12 , further comprising supplying a substantially DC input current to the first switching stage.

17. The method of claim 12 , further comprising grounding one terminal of the secondary winding to provide balanced connections to the lamp load.

18. The method of claim 12 , wherein the peak voltage of the relatively high voltage DC current source is approximately four times the peak voltage of the relatively high voltage AC current source.

19. A multi-stage switching inverter comprising:

means for generating a relatively high voltage AC current from a substantially DC current source, wherein the frequency of the relatively high voltage AC current is in a first range of frequencies;

means for generating a relatively high voltage and substantially DC current from the relatively high voltage AC current; and

means for directly coupling the relatively high voltage and substantially DC current across a lamp load in alternating sense with at least two semiconductor switches to produce an AC lamp current through the lamp load, wherein the frequency of the AC lamp current is in a second range of frequencies that is lower than the first range of frequencies.

20. The multi-stage switching inverter of claim 19 , wherein the first range of frequencies is 100 kilohertz to 4 Megahertz.

21. The multi-stage switching inverter of claim 19 , wherein the second range of frequencies is 100 hertz to 4 kilohertz.

22. The multi-stage switching inverter of claim 19 , wherein the lamp load comprises a plurality of cold cathode fluorescent lamps.

Assignments (5)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 29, 2018
From: MICROSEMI CORPORATION
To: POLARIS POWERLED TECHNOLOGIES, LLC
Reel/Frame 046746/0483 →
RELEASE OF SECURITY INTEREST Recorded Jan 19, 2016
From: BANK OF AMERICA, N.A.
To: MICROSEMI CORPORATION; MICROSEMI CORP.-ANALOG MIXED SIGNAL GROUP, A DELAWARE CORPORATION; MICROSEMI SOC CORP., A CALIFORNIA CORPORATION; MICROSEMI SEMICONDUCTOR (U.S.) INC., A DELAWARE CORPORATION; MICROSEMI FREQUENCY AND TIME CORPORATION, A DELAWARE CORPORATION; MICROSEMI COMMUNICATIONS, INC. (F/K/A VITESSE SEMICONDUCTOR CORPORATION), A DELAWARE CORPORATION; MICROSEMI CORP.-MEMORY AND STORAGE SOLUTIONS (F/K/A WHITE ELECTRONIC DESIGNS CORPORATION), AN INDIANA CORPORATION
Reel/Frame 037558/0711 →
NOTICE OF SUCCESSION OF AGENCY Recorded Apr 9, 2015
From: ROYAL BANK OF CANADA (AS SUCCESSOR TO MORGAN STANLEY & CO. LLC)
To: BANK OF AMERICA, N.A., AS SUCCESSOR AGENT
Reel/Frame 035657/0223 →
PATENT SECURITY AGREEMENT Recorded Feb 11, 2011
From: WHITE ELECTRONIC DESIGNS CORP.; ACTEL CORPORATION; MICROSEMI CORPORATION
To: MORGAN STANLEY & CO. INCORPORATED
Reel/Frame 025783/0613 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 31, 2005
From: BALL, NEWTON E.
To: MICROSEMI CORPORATION
Reel/Frame 016409/0636 →