Claims
- 1. A method of regulating an operating current conducted through a plasma between cathodes of a fluorescent lamp while the lamp is continuously lighted by energy supplied from an AC electrical source, the source delivering AC source current at a predetermined source frequency in half-cycles having a periodic half-cycle interval established by the source frequency, said regulating method comprising the steps of:
- connecting a resonant circuit including at least one electrical energy storage element in series in a current path through the plasma and the cathodes and the source;
- conducting half-cycles of primary source current to the resonant circuit during each entire periodic half-cycle interval;
- storing a normal amount of energy in the resonant circuit during each periodic half cycle interval as a result of conducting the primary source current to the resonant circuit;
- deriving the operating current from the energy stored in the resonant circuit;
- conducting the operating current through the plasma during lamp illumination intervals which occur at the same predetermined frequency as the half-cycles of the primary source current;
- during a predetermined conductive time interval of a duration less than the entire periodic half-cycle interval of each half-cycle of primary source current, conducting a charging current in addition to the primary current from the source to the resonant circuit, the charging current storing additional energy in the resonant circuit in a predetermined amount greater than that normal amount of energy stored in the resonant circuit by the primary source current;
- releasing the additional stored energy along with the normal stored energy as operating current during a lamp illumination interval occurring after the half cycle in which the charging current was conducted and the additional energy was stored to regulate the operating current delivered to the plasma; and
- performing said steps during each half-cycle and lamp illumination interval while the lamp is lighted.
- 2. A method as defined in claim 1 further comprising the step of:
- releasing the additional stored energy over a plurality of lamp illumination intervals.
- 3. A method as defined in claim 1 further comprising the step of:
- adjusting the time duration of the conduction time interval to vary the amount of operating current conducted during the lamp illumination intervals.
- 4. A method as defined in claim 3 further comprising the step of:
- adjusting the time duration of the conduction time interval occurring during each of a plurality of subsequently occurring half-cycles of primary source current.
- 5. A method as defined in claim 3 further comprising the steps of:
- sensing a voltage across the cathodes during the lamp illumination interval; and
- adjusting the conduction time interval in relation to the voltage sensed.
- 6. A method as defined in claim 5 further comprising the step of:
- sensing the voltage across the cathodes a predetermined consistent time point during the occurrence of each of a plurality of lamp illumination intervals.
- 7. A method as defined in claim 1 further comprising the step of:
- short circuiting the cathodes for the conductive time interval to increase the current flow from the source to the resonant circuit by the amount of the charging current.
- 8. A method as defined in claim 1 further comprising the step of:
- forming the resonant circuit by connecting a capacitor and an inductor, and the energy storage element is at least one of the capacitor or the inductor.
- 9. A method as defined in claim 8 further comprising the step of:
- connecting the capacitor and the inductor in series in the resonant circuit.
- 10. A method as defined in claim 9 wherein the inductor has a characteristic saturation current, and the sum of the primary source current and the charging current is less than the saturation current.
- 11. A method as defined in claim 1 further comprising the step of:
- timing the conductive time interval to occur at the end of the lamp illumination interval.
- 12. A method as defined in claim 11 further comprising the step of:
- delivering a high voltage pulse to the plasma at the end of the lamp illumination interval.
- 13. A method as defined in claim 3 further comprising the steps of:
- sensing a voltage across the cathodes during the lamp illumination interval; and
- adjusting the conduction time interval based on a predetermined relationship between the voltage sensed and an impedance characteristic of the plasma.
- 14. A method as defined in claim 1 further comprising the step of:
- decreasing an impedance between the cathodes below a value of a characteristic impedance of the plasma for the conductive time interval to increase the current flow from the source to the resonant circuit by the amount of the charging current.
- 15. A method as defined in claim 1 further comprising the step of:
- decreasing an impedance within the series current path formed by the resonant circuit and the cathodes and the plasma for the conductive time interval to increase the current flow from the source to the resonant circuit by the amount of the charging current.
- 16. A method as defined in claim 15 further comprising the step of:
- timing the conductive time interval to be equal to the difference between the lamp illumination interval and the periodic half-cycle interval.
- 17. A method as defined in claim 1 further comprising the step of:
- timing the conductive time interval to be equal to the difference between the lamp illumination interval and the periodic half-cycle interval.
- 18. A method as defined in claim 1 wherein the resonant circuit has a predetermined natural resonant frequency, and said method further comprises the step of:
- establishing the natural resonant frequency at a predetermined frequency which is different from the predetermined source frequency.
- 19. A method as defined in claim 18 wherein the natural resonant frequency is greater than the predetermined source frequency.
- 20. A method as defined in claim 18 further comprising the step of:
- selecting the natural resonant frequency to establish an impedance of the resonant circuit sufficient to limit the operating current conducted by the cathodes to a predetermined value selected to achieve substantially optimum longevity of use of the lamp.
- 21. A method as defined in claim 18 wherein the resonant circuit has a predetermined energy storage capability, and said method further comprises the step of:
- selecting the energy storage capability of the resonant circuit to accept more than the normal and additional amounts of energy.
- 22. A method of increasing the magnitude of an operating current conducted through a plasma existing between cathodes of a fluorescent lamp during continuously-occurring illumination intervals of the lamp, comprising the steps of:
- connecting a resonant circuit including at least one electrical energy storage element in series with a current path through the plasma and the cathodes and an electrical source which supplies energy to illuminate the lamp;
- conducting an energizing current in half-cycles from the source to the resonant circuit to store energy in the resonant circuit;
- deriving the operating current from the energy stored in the resonant circuit;
- conducting the operating current through the plasma for a first predetermined lamp illumination time interval which is less than the whole of each half-cycle of energizing current;
- ceasing conducting the operating current through the plasma during a second predetermined time interval which is less than the whole of each half-cycle of energizing current;
- storing a predetermined additional amount of energy in the resonant circuit by increasing the magnitude of the energizing current supplied by the source to the resonant circuit during the second predetermined time interval; and
- releasing the additional stored energy simultaneously with the energy stored from the energizing current delivered during the first interval as an increased operating current during an illumination time interval occurring subsequently after the storage of the additional amount of energy and during continuous operation of the lamp.
- 23. A method as defined in claim 22 wherein the additional energy is greater than that amount of energy stored in the resonant circuit by the source under a condition where the first illumination interval occupies the entirety of each half-cycle of energizing current.
- 24. A method as defined in claim 22 wherein the first and second intervals consume the entirety of the interval of each half-cycle of energizing current conducted from the source.
CROSS REFERENCE TO RELATED INVENTIONS AND APPLICATIONS
This is a continuation of U.S. patent application Ser. No. 08/530,563 for a "Resonant Voltage-Multiplication, Current-Regulating and Ignition Circuit for a Fluorescent Lamp+ filed Sep. 19, 1995, and Ser. No. 530,673 for a "Preheating and Starting Circuit and Method for a Fluorescent Lamp" filed Sep. 19, 1995.
US Referenced Citations (12)
Foreign Referenced Citations (6)
Number |
Date |
Country |
46395 |
Feb 1982 |
EPX |
197035 |
Oct 1986 |
EPX |
471215 |
Feb 1992 |
EPX |
471332 |
Feb 1992 |
EPX |
2517211 |
Oct 1976 |
DEX |
WOA9535646 |
Dec 1995 |
WOX |
Non-Patent Literature Citations (4)
Entry |
Co-pending Patent Application S.N. 08/404,880; Attorney Docket No. (083-321); filed Mar. 16, 1995. |
Co-pending Patent Application S.N. 08/406,183; Attorney Docket No. (083-322) filed Mar. 16, 1995. |
Co-pending Patent Application S.N. 08/530,563; Attorney Docket No. (083-323) filed Sep. 19, 1995. |
Co-pending Patent Application S.N. 08/530,673, Attorney Docket No. (083-324); filed Sep. 19, 1995. |
Continuations (1)
|
Number |
Date |
Country |
Parent |
530563 |
Sep 1995 |
|