Claims
- 1. A discrete modulation frequency step operation for arc stabilization of device susceptible to acoustic resonance having an arc tube excitable to a discharge state upon introduction thereto of a drive signal having multiple individual discrete frequency steps in a periodic cycle therewith, said discrete modulation operation comprising:
means for modulating said drive signal with a period cycling of discrete frequency steps associated with said drive signal; means for modulating said drive signal using electronic and solid-state components; means for modulating individual discrete frequency steps; wherein said frequency of said modulating signal is set to multiple individual discrete non-continuous frequencies.
- 2. The discrete modulation operation of claim 1, wherein said arc stabilization device is a gas discharge lighting system.
- 3. The gas discharge lighting system of claim 2, wherein said gas discharge lighting system is comprised of gas discharge lamps selected from the group of fluorescent, sodium, metal halide, mercury-free, xenon and combinations of individual gases.
- 4. The electronic and solid-state components of claim 1, wherein said components include analog circuitry, microprocessor, and R-C circuitry.
- 5. The drive signal of claim 1, wherein said drive signal has a waveform selected from the group of sinusoidal, triangle, saw-tooth, and square.
- 6. The waveform of claim 6, wherein said waveform is sinusoidal.
- 7. The discrete frequency steps of claim 1, wherein the number of steps is selected from the group of three to twenty individual frequencies.
- 8. The individual frequencies of claim 7, wherein the individual frequencies are selected from a predetermined basis.
- 9. The individual frequencies selected from a predetermined basis of claim 8, wherein an individual discrete frequency is replaced in accordance to feedback analysis and adaptive control algorithm.
- 10. The feedback analysis of claim 9, wherein the feedback analysis is based on monitored arc stability parameters to determine a replaced individual frequency.
- 11. The adaptive control algorithm of claim 9, wherein the algorithm is selected from the group of an incremental increase of step size from the original individual step to be replaced, as an incremental decrease of step size from the original individual step to be replaced, as an incremental increase of step size from the upper most step, as an incremental decrease of step size from the lower most step, and a random step selected from within a specified frequency range.
- 12. The algorithm of claim 11, wherein the replaced individual frequency is replaced with another individual frequency plus 0.5 kHz from the opposite spectrum of all of the individual steps range.
- 13. The number of steps of claim 7, wherein the number of steps is six.
- 14. The periodic cycle of claim 1, wherein the time basis for each step is selected from the group ranging from 0.1 milliseconds to 100 milliseconds.
- 15. A R-C circuit of claim 4, wherein one of the R-C circuits is utilized to generate a square wave drive signal at twice the actual switching frequency into a “flip flop” to generate two square waves out of phase, then “and” them with a R-C circuit to introduce a time delay in order to eliminate overlap of each output.
- 16. The time basis of claim 14, wherein the time basis is 10 milliseconds.
- 17. The individual frequencies of claim 7, wherein the individual steps are sequenced as selected from the group of sequential discrete steps, discrete steps forming a sinusoidal shape, discrete steps in a semi-random shape.
- 18. The individual frequencies of claim 17, wherein the individual steps are sequenced in a semi-random shape.
- 19. The means of modulating individual discrete frequency steps of claim 1, wherein the entire range of individual steps are modulated as a group to achieve dimming in accordance to a dimming algorithm.
- 20. The dimming algorithm of claim 19, wherein the algorithm is selected from a group of an increase in frequency of fixed steps for an incremental decrease in light level, an increase in frequency of fixed percentage for an incremental decrease in light level, a time based ramp in incremental fixed step size for an incremental decrease in light level through a light level feedback loop, a time based ramp in incremental fixed step percentage size for an incremental decrease in light level through a light level feedback loop, and an externally determined incremental step size as determined by an energy management system.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application references the now abandoned U.S. Provisional Patent Application No. 60/250,961 filed Dec. 4, 2000.
Provisional Applications (1)
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Number |
Date |
Country |
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60250961 |
Dec 2000 |
US |