Claims
- 1. A sustainer voltage driver circuit for a flat plasma display panel comprising:
a driver inductor having at least a first end and a second end, said second end of said inductor adapted to be connected to an input port of the flat plasma display panel; a first electronic switch connected to said first end of said driver inductor; a second electronic switch also connected to said first end of said driver inductor; at least one variable voltage supply connected across said first and second electronic switches; a first driver capacitor connected between said second electronic switch and ground; a second driver capacitor connected between said second electronic switch and a voltage feedback point; a first driver diode connected between said second end of said driver inductor and said voltage feedback point; a second driver diode connected between said second end of said driver inductor and ground; and a logic circuit connected to and operative to control said first and second electronic switches and said variable voltage supply.
- 2. The driver circuit according to claim 1 wherein when the driver circuit is connected to a plasma display panel the circuit resonates with the panel such that the total power required to operate the panel is reduced.
- 3. The driver circuit according to claim 1 wherein said first and second electronic switches include a series connection of an IGBT and a diode.
- 4. The driver circuit according to claim 1 wherein said logic circuit is also is connected to said feedback point and is responsive to the voltage level at said voltage feedback point to adjust the output voltage level of said voltage supply.
- 5. The driver circuit according to claim 4 wherein said logic circuit is operative to set said variable voltage supply at an appropriate level to inject sufficient energy during a transition of a sustaining voltage to a resonant condition to establish a plasma discharge within the flat plasma display panel.
- 6. A sustainer voltage driver circuit for a flat plasma display panel comprising:
a driver inductor having a first end and a second end, said second end of said inductor adapted to be connected to an input port of the flat plasma display panel; a first electronic switch connected between said first end of said driver inductor and a first terminal of a first variable voltage supply, said first variable voltage supply also having a second terminal; a second electronic switch connected between said first end of said driver inductor and a second terminal end of a second variable voltage supply, said second variable voltage supply also having a first terminal that is connected to said second terminal of said first variable voltage supply; a first driver capacitor connected between said first terminal of said second variable voltage supply and ground; a second driver capacitor connected between said first terminal of said second variable voltage supply and a voltage feedback point; a first driver diode connected between said second end of said driver inductor and a voltage feedback point; a second driver diode connected between said second end of said driver inductor and ground; and a logic circuit connected to and operative to control said first and second electronic switches and said variable voltage supplies.
- 7. The driver circuit according to claim 6 wherein when the driver circuit is connected to a plasma display panel the circuit resonates with the panel such that the total power required to operate the panel is reduced.
- 8. The driver circuit according to claim 6 wherein said first and second electronic switches include a series connection of an IGBT and a diode.
- 9. The driver circuit according to claim 6 wherein said logic circuit is also is connected to said feedback point and is responsive to the voltage level at said voltage feedback point to adjust the output voltage level of said voltage supply.
- 10. The driver circuit according to claim 9 wherein said logic circuit is operative to set said variable voltage supply at an appropriate level to inject sufficient energy during a transition of a sustaining voltage to a resonant condition to establish a plasma discharge within the flat plasma display panel.
- 11 A method for operating a flat plasma display panel driver circuit comprising the steps of:
(a) providing a driver circuit that includes at least one adjustable voltage supply; (b) determining an energy requirement for the display panel; (c) setting voltage supply levels to correspond to the desired energy requirement; (d) beginning transition to the a resonant condition for the sustaining voltage; and (e) if desired, supplying sufficient energy during the transition stage to establish a plasma discharge within the flat plasma display panel.
- 12. The method according to claim 11 wherein during step (c) the voltage driver power supplies are set at an appropriate level to inject sufficient energy during a transition to a resonant condition to establish a plasma discharge.
- 13. The method according to claim 12 further including, subsequent to step (e), feeding back the sustaining voltage level and, if necessary, adjusting the voltage supply levels.
- 14. A sustainer voltage driver circuit for a flat plasma display panel comprising:
a first electronic switch having a first end and a second end, said first electronic switch operable to be switched between conducting and non-conducting states; a first fixed sustainer voltage supply connected to said first end of said first electronic switch; a second electronic switch having a first end and a second end, said second electronic switch operable to be switched between conducting and non-conducting states, said first end of said second electronic switch being connected to said second end of said first electronic switch; a second fixed sustainer voltage supply having a polarity opposite to said first sustainer voltage supply connected to said second end of said second electronic switch; a transformer having a primary coil and secondary coil, one end of said transformer primary coil being connected to said second end of said first electronic switch, the other end of said transformer primary coil being adapted to be connected to the flat plasma display panel; a pair of electronic switches connected in series, said pair of electronic switches being operable to be switched between conducting and non-conducting states, said series connection of said pair of electronic switches being connected across said transformer secondary coil; and a logic control connected to said electronic switches, said logic control being operable to switch said electronic switches between their conducting and non-conducting states to apply said sustainer voltages to the flat plasma display panel and to inject sufficient energy into the panel during a resonant condition to establish a plasma discharge within the panel.
- 15. The driver circuit according to claim 14 wherein the injected energy is sufficient to both transition the voltage across the flat plasma display panel to a desired sustainer voltage level and to provide current to initiate the desired gas discharges within the flat plasma display panel.
- 16. The driver circuit according to claim 15 wherein said logic control is connected to the control circuit for the flat plasma display panel and receives information from said display panel control circuit concerning the extent of desired illumination to the panel, control circuit responsive to said display panel information to adjust the amount of energy injected into the display panel to assure that voltage across the panel is transitioned to said desired voltage level and that there also is sufficient current to initiate the desired gas discharges within the flat plasma display panel.
- 17. The driver circuit according to claim 15 wherein said logic control switches said pair of electronic switches connected to transformer secondary coil while voltage is applied to the flat plasma display panel to store energy with in the field generated by said transformer coils, said stored energy being injected into the flat plasma display panel at an appropriate time.
- 18. The driver circuit according to claim 17 wherein the driver circuit is a first driver circuit and further including a second driver circuit that is a mirror image of the first driver circuit, said second driver circuit also connected to the flat plasma display panel for driving flat plasma display panel with opposite sustainer voltages.
- 19. The driver circuit according to claim 18 further including a pair of secondary transformers, each of said secondary transformers having a primary coil connected between one of the driver circuits and the flat plasma display panel, said secondary transformers having one end of their secondary coils connected together and the other ends of their secondary coils connected to ground whereby the voltages applied to flat plasma display panel by the first and second driver circuits are balanced.
- 20. The driver circuit according to claim 17 wherein said electronic switches are field effect transistors.
- 21. The driver circuit according to claim 17 wherein said transformer is an air core transformer.
- 22. The driver circuit according to claim 17 further including a feedback circuit adapted to monitor the amount energy delivered to the flat plasma display panel, said feedback circuit operable to adjust the operation of said logic control to vary the amount of energy delivered to the flat panel display during operation of the driver circuit.
- 23. The driver circuit according to claim 17 wherein the voltage applied to the flat plasma display panel is a pulse width modulated voltage having an adjustable duty cycle and further wherein the driver circuit includes a feedback circuit adapted to monitor the amount energy delivered to the flat panel plasma display, said feedback circuit operable to adjust the duty cycle of the pulse width modulated voltage supplied to the flat panel display to vary the amount of energy delivered to the flat panel display during operation of the driver circuit.
- 24. The driver circuit according to claim 17 further including a capacitor connected across said transformer secondary coil, said capacitor forming a resonant circuit with said transformer secondary coil.
- 25. A method for operating a flat plasma display panel comprising the steps of:
(a) supplying a driver circuit having a first switching device adapted to connect a sustaining voltage supply to the flat plasma display panel with a primary coil of a transformer connected between the driver circuit and the display panel, the secondary transformer coil being connected across a second switching device; (b) placing the first switching device in a conducting state while the second switching device is in a non-conducting state to cause a voltage to begin to increase at a generally increasing rate upon the display panel; (c) placing the first switching device in a non-conducting state while the second switching device is in a non-conducting state to cause the voltage upon the display panel to continue to increase at a generally constant rate; (d) returning the first switching device to a conducting state while also placing the second switching device in a conducting state to cause the voltage upon the display panel to continue to increase at a slower rate and to be clamped at predetermined voltage level while energy is stored within the B-field established in the transformer coils by the flow of current within the transformer secondary coil; (e) placing the first switching device in a non-conducting state while the second switching device remains in a conducting state to continue to store energy within the B-field established in the transformer coils by the flow of current within the transformer secondary coil; and (f) returning the second switching device to a non-conducting state to inject the stored energy into the display panel while maintaining the voltage applied to the flat plasma display panel at essentially a clamped voltage level.
- 26. The method according to claim 25 wherein the injected energy is sufficient to both transition the voltage across the flat plasma display panel to a desired sustainer voltage level and to provide current to initiate the desired gas discharges within the flat plasma display panel.
- 27. The method according to claim 26 wherein the switching devices include field effect transistors and a logic control connected to the field effect transistors, the logic control operative to selective change the field effect transistors between their conducting and non-conducting states.
- 28. The method according to claim 26 wherein the transformer is an air core transformer.
- 29. A sustainer voltage driver circuit for a flat plasma display panel comprising:
a first switching device having a first end and a second end, the first end adapted to be connected to a sustaining voltage supply; a transformer having a primary winding and a secondary winding, said primary winding having a first end and a second end, said first end of said primary winding being connected to said second end of said first switching device, said second end of said primary winding being adapted to be connected to a sustaining voltage input port of the flat plasma display panel; and a second switching device connected across said secondary winding of said transformer, said first and second switching devices being selectively switched between conducting and non-conducting states such that energy is stored in a field generated by said transformer windings for injection into the plasma display panel.
- 30. The driver circuit according to claim 29 wherein the injected energy is sufficient to both transition the voltage across the flat plasma display panel to a desired sustainer voltage level and to provide current to initiate the desired gas discharges within the flat plasma display panel.
- 31. The driver circuit according to claim 30 wherein said first and second switching devices being selectively switched between conducting and non-conducting states such that the voltage applied to the flat plasma display panel increases and is clamped at a voltage level corresponding to the output of the first sustainer voltage supply.
- 32. The driver circuit according to claim 30, wherein said first and second switching devices each include at least one electronic switch.
- 33. The driver circuit according to claim 32 wherein said transformer is an air core transformer.
- 34. The driver circuit according to claim 30 wherein said sustaining voltage supply is a first sustaining voltage supply and further wherein the driver circuit includes a third switching device having first and second ends, said first end of said third switching device being connected to the second end of said first switching device and said second end of said third switching device adapted to be connected to a second sustaining voltage supply, said second sustaining voltage supply having a polarity that is opposite from the polarity of said first sustaining voltage supply, said third and second switching devices being selectively switched between conducting and non-conducting states such that energy is stored in a field generated by said transformer windings for injection into the plasma display panel and that the voltage applied to the flat plasma display panel decreases and is clamped at a voltage level corresponding to the initial voltage level or the display panel.
CROSS REFERENCE TO RELATED APPLICATIONS
[0001] This application claims the benefit of U.S. Provisional Application No. 60/334,246, filed Dec. 28, 2001.
Provisional Applications (1)
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Number |
Date |
Country |
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60344246 |
Dec 2001 |
US |