Claims
- 1. A control circuit for controlling the light emission of a cold cathode gas discharge lamp, comprising:a dc power source, and a control circuit for converting dc power from the dc power source into a high frequency drive signal across the lamp, wherein each cycle of the drive signal includes an ignition period with a signal level sufficient to initiate gas conduction, a sustaining period with a signal level sufficient to sustain gas conduction, and an off period with a signal level below the sustaining level.
- 2. A control circuit for generating a high frequency drive signal controlling the light emission of a cold cathode gas discharge lamp, comprising:a transformer having a primary winding connected from a dc power source and in series with a switching transistor, and a secondary winding connected across the lamp, and a drive signal timing circuit, including a feedback winding of the transformer connected between the base of the switching transistor and a timing control output of a resistor-capacitor ramp generator, wherein each cycle of the drive signal includes an ignition period with a signal level sufficient to initiate gas conduction, a sustaining period with a signal level sufficient to sustain gas conduction, and an off period with a signal level below the sustaining level.
- 3. The control circuit of claim 2, wherein:in each cycle of the drive signal, during the off period, the drive signal timing circuit generates a timing control output having a voltage level increasing with time until the timing control output reaches a base-emitter turn on voltage of the transistor, during the ignition period, current flows through the transistor and in the primary winding, the current flow being initiated by the timing control output and sustained by feedback from the primary winding to the feedback winding, until the transformer saturates and the feedback signal to transistor is terminated, driving the transistor into the non-conducting state, and a magnetic field in the transformer collapses, inducing a drive signal in the secondary winding having a signal level sufficient to initiate gas conduction in the lamp, during the sustaining period, continued collapse of the magnetic field induces a drive signal in the secondary winding having a signal level sufficient to sustain gas conduction, and during the off period, the magnetic field has collapsed and the induced drive signal in the secondary winding is at a signal level below the sustaining level.
- 4. The control circuit of claim 2, wherein:the dc power source is an ac to dc adaptor connected from an ac power source.
- 5. The control circuit of claim 2, wherein:the resistor-capacitor ramp generator of the drive signal timing circuit includes a variable resistor to select the period of the drive signal.
- 6. A lighting unit, comprising:a cold cathode gas discharge lamp, and a control circuit for generating a high frequency drive signal controlling the light emission of the cold cathode gas discharge lamp, including a transformer having a primary winding connected from a dc power source and in series with a switching transistor, and a secondary winding connected across the lamp, and a drive signal timing circuit, including a feedback winding of the transformer connected between the base of the switching transistor and a timing control output of a resistor-capacitor ramp generator, wherein each cycle of the drive signal includes an ignition period with a signal level sufficient to initiate gas conduction, a sustaining period with a signal level sufficient to sustain gas conduction, and an off period with a signal level below the sustaining level.
- 7. A lighting system, comprising:a plurality of lighting units, each lighting unit including a cold cathode gas discharge lamp, and a control circuit for generating a high frequency drive signal controlling the light emission of the cold cathode gas discharge lamp, including a transformer having a primary winding connected from a dc power source and in series with a switching transistor, and a secondary winding connected across the lamp, and a drive signal timing circuit, including a feedback winding of the transformer connected between the base of the switching transistor and a timing control output of a resistor-capacitor ramp generator, wherein each cycle of the drive signal includes an ignition period with a signal level sufficient to initiate gas conduction, a sustaining period with a signal level sufficient to sustain gas conduction, and an off period with a signal level below the sustaining level.
- 8. The lighting system of claim 7, wherein:the dc power source of at least one of the lighting units is a central dc power source.
- 9. The lighting system of claim 8, wherein:in at least certain of the lighting units, the dc power source includes a dc adapter located at the lighting unit and providing dc power to the lighting unit, the dc adapter being connected from an ac power source.
- 10. A lighting unit, comprising:a tubular lamp housing, a U-shaped cold cathode gas discharge lamp mounted in the housing with all electrodes of the lamp located at a base end of the housing, a control circuit mounted in the base end of the housing for converting dc power from the dc power source into a high frequency drive signal across the lamp, wherein each cycle of the drive signal includes an ignition period with a signal level sufficient to initiate gas conduction, a sustaining period with a signal level sufficient to sustain gas conduction, and an off period with a signal level below the sustaining level.
- 11. The light unit of claim 10, further comprising:a mounting bracket for attaching the light unit to a support.
- 12. The light unit of claim 10, wherein:the dc power source includes a dc adapter located at the lighting unit and providing dc power to the lighting unit, the dc adapter being connected from an ac power source.
- 13. The light unit of claim 10, further comprising:at least one canopy mounted to the tubular housing to direct the emitted light.
Parent Case Info
This application claims the benefit of Provisional application Ser. No. 60/350,649 filed Nov. 13, 2001.
US Referenced Citations (2)
Number |
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Kind |
6130509 |
Kates et al. |
Oct 2000 |
A |
6316883 |
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Provisional Applications (1)
|
Number |
Date |
Country |
|
60/350649 |
Nov 2001 |
US |