Claims
- 1. A planar fluorescent lamp comprising:
- a sealed chamber formed by a pair of sidewalls, a pair of end walls, a top plate, and a bottom plate;
- a gas within the sealed chamber, the gas being active to emit ultraviolet energy in response to an electric plasma arc therethrough;
- a plurality of divider walls extending from each of said sidewalls and from the bottom plate to the top plate to create a serpentine path having a plurality of turns within the sealed chamber;
- a electrode at each end of the serpentine path of the sealed chamber positioned for creating the electric plasma arc within the sealed chamber between the electrodes; and
- a first sidewall electrode positioned adjacent a first one of the sidewalls, the first sidewall electrode having an electric terminal that is adapted to be connected to a voltage source, the first sidewall electrode further being positioned to modify the shape of the electric plasma arc within the sealed chamber at a corresponding first one of the turn in response to an input voltage from the voltage source.
- 2. The lamp according to claim 1 wherein the sidewall electrode is a planar electrode that conforms substantially to the sidewall and extends approximately from one divider wall to an adjacent divider wall or endwall along the first one of the sidewalls.
- 3. The lamp according to claim 1 further including a second sidewall electrode positioned adjacent the second one of the sidewalls, the second sidewall electrode having a second electric terminal that is adapted for electrical connection thereto, the second sidewall electrode being positioned to modify the shape of the electric plasma arc within the sealed chamber at a corresponding second one of the turns in response to an input voltage at the second electric terminal.
- 4. The lamp according to claim 3, further including:
- a plurality of power source terminals attached to the bottom plate of the lamp; and
- an electrical connection extending from each sidewall electrode terminal to a respective power source terminal.
- 5. The lamp according to claim 4, further including a voltage source connected to each of the power source terminals.
- 6. The lamp according to claim 4, further including:
- a phosphor layer within the sealed chamber and exposed to the mercury vapor gas such that ultraviolet energy emitted by the gas strikes the phosphor layer.
- 7. The lamp according to claim 4, further including a phosphor layer outside of the sealed chamber and positioned to permit U.V. light emitted from the chamber to impinge thereon.
- 8. The lamp according to claim 3, further including a first voltage source connected to the first and second sidewall electrodes, a portion of the serpentine path providing a conductive path from the first sidewall electrode through the mercury gas vapor of the sealed chamber and to the second sidewall electrode.
- 9. The lamp according to claim 8 wherein the first voltage source is an A.C. voltage source operating at a first frequency, further including a second voltage source connected to the end electrodes, the second voltage being an A.C. voltage source operating at a second frequency, the second frequency being a different frequency than the first frequency.
- 10. The lamp according to claim 9, further including:
- a third sidewall electrode along the first sidewall, the third sidewall electrode having a third electric terminal for connection thereto, the third sidewall electrode being positioned to modify the shape of the electric plasma arc discharge within the sealed chamber at a third one of the turns;
- a fourth sidewall electrode positioned along the second sidewall, the fourth sidewall electrode having a fourth electric terminal for connection thereto, the fourth sidewall electrode being positioned to modify the shape of the electric plasma arc discharge within the sealed chamber at a fourth one of the turns; and
- a third voltage source operating at a third frequency connected to the third and fourth sidewall electrodes.
- 11. The lamp according to claim 10 wherein the third frequency is different from the first and second frequencies.
- 12. The lamp according to claim 1, further including a second sidewall electrode positioned adjacent the first one of the sidewalls, the second sidewall electrode having a second electric terminal that is adapted for electrical connection thereto, the second sidewall electrode being positioned to modify the shape of the electric plasma arc within the sealed chamber at a corresponding second one of the turns in response to an input voltage at the second electric terminal.
- 13. The lamp according to claim 12, further including a third sidewall electrode positioned adjacent the second one of the sidewalls, the third sidewall electrode having a third electric terminal for electrical connection thereto, the third sidewall electrode being positioned to modify the shape of the electric plasma arc within the sealed chamber at a corresponding third one of the turns in response to an input voltage at the third electric terminal.
- 14. The lamp according to claim 1 wherein the sidewall electrodes are within the chamber but are completely covered by a thin dielectric layer so that they are not directly exposed to the mercury vapor gas.
- 15. The lamp according to claim 1 wherein the sidewall electrodes are outside the chamber and are positioned along an outside surface of the sidewall.
- 16. The lamp according to claim 15 wherein the sidewall electrodes are composed of a conductive paint affixed along an outside surface of the sidewall.
- 17. A planar fluorescent lamp comprising:
- a lamp body having a plurality of sidewalls and end walls, and a bottom plate;
- a lamp cover overlaying the lamp body, wherein the lamp cover, sidewalls and end walls define a chamber;
- a divider wall extending from each of said sidewalls toward an opposite sidewall and projecting from the bottom plate toward the cover to define a serpentine path having a plurality of turns within the chamber;
- a gas within the chamber;
- a first electrode within the serpentine path;
- a second electrode spaced apart from the first electrode within the serpentine path, the first and second electrodes positioned for creating an electric plasma arc within the sealed chamber along a portion of the serpentine path;
- a first sidewall electrode positioned adjacent a first one of the sidewalls within the portion of the serpentine path, the first sidewall electrode being positioned to modify the shape of the electric plasma arc at a corresponding first one of the turns in response to an input voltage; and
- a second sidewall electrode positioned adjacent the second one of the sidewalls in the portion of the serpentine path, the second sidewall electrode being positioned to modify the shape of the electric plasma arc at a corresponding second one of the turns in response to an input voltage.
- 18. The lamp according to claim 17, further including a first voltage source connected to the first and second sidewall electrodes, a section of the serpentine path providing a conductive path from the first sidewall electrode through the gas of the sealed chamber and to the second sidewall electrode.
- 19. The lamp according to claim 18 wherein the first voltage source is an A.C. voltage source operating at a first frequency, further including a second voltage source connected to the end electrodes, the second voltage being an A.C. voltage source operating at a second frequency, the second frequency being a different frequency than the first frequency.
CROSS-REFERENCE TO RELATED APPLICATION
This application is a continuation of U.S. patent application Ser. No. 07/990,068, filed Dec. 14, 1992, now U.S. Pat. No. 5,343,116.
US Referenced Citations (38)
Foreign Referenced Citations (1)
Number |
Date |
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3922865A1 |
Jan 1991 |
DEX |
Continuations (1)
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Number |
Date |
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Parent |
990068 |
Dec 1992 |
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