Claims
- 1. A fluorescent lamp ballast circuit comprising:a phase cut dimmer connectable to a source of AC power, the phase cut dimmer comprising a user selectable control for setting a brightness level of the lamp and an electronic switch having a trigger voltage and a conduction period, the conduction period of the electronic switch being controlled by the user selectable control whereby to pass a phase cut signal comprising a selectable portion of a half cycle of the AC power from a firing angle when the electronic switch triggers to the end of the half cycle; a rectifying and charging circuit coupled to the output of the phase cut dimmer for providing a DC voltage across a DC bus and for charging an energy storage device from the selectable portion of the AC power and for drawing a continuous current from the phase cut dimmer during the selectable portion of the half cycle of the AC power; a filter circuit receiving the output of said phase cut dimmer and converting the output to a control signal related to the firing angle of the electronic switch; an output stage coupled to the lamp, the output stage having at least one electronic switching device; and a ballast control circuit for driving the output stage, the at least one electronic switching device of the output stage being coupled to said DC bus and being controlled by the ballast control circuit to provide a pulsed power signal to the fluorescent lamp adapted to be coupled hereto, the ballast control circuit including a control input for changing a frequency of said pulsed power signal, the control input being coupled to said control signal, the control signal varying in accordance with the firing angle of he electronic switch, thereby varying the brightness level of said fluorescent lamp.
- 2. The ballast circuit of claim 1, wherein said control signal is a DC level signal and said filter circuit further comprises an offset circuit for shifting said DC level signal into a shifted DC level signal so that a minimum level of said shifted DC level signal is approximately 0 volts.
- 3. The ballast circuit of claim 2, wherein said offset circuit for shifting said DC level signal comprises an amplifier and a voltage divider circuit providing a reference voltage to said amplifier whereby when the phase cut dimmer is set to a minimum brightness level, an output of said amplifier will be approximately zero.
- 4. The ballast circuit of claim 3, further comprising an error circuit coupled between said filter circuit and said ballast control circuit, said error circuit receiving as inputs a first signal from said filter circuit comprising said shifted DC level signal related to a desired brightness level and a second signal related to a current level in said fluorescent lamp, said error circuit comparing said first and second inputs and providing an error signal to said ballast control circuit to drive said lamp to the desired brightness level.
- 5. The ballast circuit of claim 4, further comprising a lamp current sense circuit coupled to said flourescent lamp for sensing a current level in said lamp and providing a current feedback signal as said second signal to said error circuit.
- 6. The ballast circuit of claim 2, further comprising a second rectifying circuit coupled between said phase cut dimmer and said filter circuit and providing only a selected half cycle of said phase cut signal to said filter circuit.
- 7. The ballast circuit of claim 6, wherein said second rectifying circuit provides only the positive half cycle of said phase cut signal to said filter circuit.
- 8. The ballast circuit of claim 1, wherein said rectifying and charging circuit comprises a voltage doubling circuit, said voltage doubling circuit having an output coupled across said DC bus.
- 9. The ballast circuit of claim 8, wherein said rectifying and charging circuit has a control input from said output stage, and further comprises first and second storage capacitors, said first storage capacitor being charged in response to said control input from said output stage during a positive half cycle of said AC power and said second storage capacitor being charged in response to said control input from said output stage during a negative half cycle of said AC power.
- 10. The ballast circuit of claim 9, further comprising third and fourth storage capacitors, said third storage capacitor being charged from said first storage capacitor in response to said control input from said output stage and said fourth storage capacitor being charged from said second stage capacitor in response to said control input from said output stage.
- 11. The ballast circuit of claim 10, wherein the output stage comprises a half bridge output circuit comprising first and second electronic switching devices connected in series across said DC bus, with an output at a common point between said first and second electronic switching devices, said output being coupled to said fluorescent lamp through an LC circuit, and wherein said control input from said power stage to said rectifying and charging circuit comprises a connection to said output.
- 12. The ballast circuit claim 11, wherein said first and second electronic switching devices comprises a high side device and a low side device, said control input to said rectifying and charging circuit controlling said first and second storage capacitors whereby said first capacitor charges during the positive half cycle of the AC power when said low side device is conductive and said high side device is nonconductive; and when said low side device is nonconductive and said high side device is conductive, said first capacitor discharges into said third capacitor; and further wherein said second capacitor charges during the negative half cycle of the AC power when said low side device is conductive and said high side device is nonconductive; and when said low side device is nonconductive and said high side device is conductive, said second capacitor discharges into said fourth capacitor; thereby providing a DC voltage across said DC bus.
- 13. The ballast circuit of claim 11, wherein the LC circuit comprises a series circuit comprising an inductor and a capacitor, the flourescent lamp being coupled in series with said series circuit.
- 14. The ballast circuit of claim 1, further wherein said rectifying and charging circuit draws a continuous current from said phase cut dimmer during the selectable portion of the half cycle of the AC power from the firing angle when the electronic switch triggers to the end of the half cycle.
- 15. The ballast circuit of claim 1, further comprising an inductance provided between said phase cut dimmer and said rectifying and charging circuit, said inductance maintaining a continuous current draw from said phase cut dimmer to said rectifying and charging circuit during said selectable portion of the half cycle.
- 16. The ballast circuit of claim 1, further comprising a lamp removal protection circuit for stopping operation of said control circuit if a lamp is not connected to the circuit when power is applied.
- 17. The ballast circuit of claim 16, wherein the lamp removal protection circuit comprises an RC circuit including a capacitor that charges above a threshold when the lamp is disconnected when power is applied to the lamp.
- 18. The ballast circuit of claim 1, further comprising a lamp ignition failure circuit for stopping operation of said control circuit if the lamp fails to ignite as the output signal frequency approaches resonance during ignition mode.
- 19. The ballast circuit of claim 18, wherein the lamp ignition failure circuit comprises an RC circuit for charging a capacitor above a threshold if lamp current exceeds a preset level.
- 20. A fluorescent lamp ballast circuit comprising:a phase cut dimmer connectable to a source of AC power, the phase cut dimmer comprising a user selectable control for setting a brightness level of the lamp and an electronic switch having a trigger voltage and a conduction period, the conduction period of the electronic switch being controlled by the user selectable control whereby to pass a phase cut signal comprising a selectable portion of a half cycle of the AC power from a firing angle when the electronic switch triggers to the end of the half cycle; a rectifying circuit coupled to the output of the phase cut dimmer for providing a DC voltage across a DC bus; a charging circuit for charging an energy storage device from the selectable portion of the AC power and for providing a continuous current draw from said phase cut dimmer during the selectable portion of the halfcycle of the AC power; a filter circuit receiving the output of said phase cut dimmer and converting the output to a DC level signal related to the firing angle of the electronic switch; a ballast control circuit for driving an output stage comprising at least one electronic switching device, the at least one electronic switching device of the output stage being coupled to said DC bus and being controlled by the ballast control circuit to provide a pulsed power signal to the fluorescent lamp adapted to be coupled hereto, the ballast control circuit including a control input for changing a frequency of said pulsed power signal, the control input being coupled to said DC level signal, the DC level signal varying in accordance with the selectable portion of the AC power provided by said phase cut dimmer, thereby varying the brightness level of said fluorescent lamp.
- 21. The ballast circuit of claim 20, wherein said filter circuit further comprises an offset circuit for shifting said DC level signal into a shifted DC level signal so that a minimum level of said shifted DC level signal is approximately 0 volts.
- 22. The ballast circuit of claim 21, wherein said offset circuit for shifting said DC level signal comprises an amplifier and a voltage divider circuit providing a reference voltage to said amplifier whereby when the phase cut dimmer is set to a minimum brightness level, an output of said amplifier will be approximately zero.
- 23. The ballast circuit of claim 22, further comprising an error circuit coupled between said filter circuit and said ballast control circuit, said error circuit receiving as inputs a first signal from said filter circuit comprising said shifted DC level signal related to a desired brightness level and a second signal related to a current level in said fluorescent lamp, said error circuit comparing said first and second inputs and providing an error signal to said ballast control circuit to drive said lamp to the desired brightness level.
- 24. The ballast circuit of claim 23, further comprising a lamp current sense circuit coupled to said flourescent lamp for sensing a current level in said lamp and providing a current feedback signal as said second signal to said error circuit.
- 25. The ballast circuit of claim 21, further comprising a second rectifying circuit coupled between said phase cut dimmer and said filter circuit and providing only a selected half cycle of said phase cut signal to said filter circuit.
- 26. The ballast circuit of claim 25, wherein said second rectifying circuit provides only the positive half cycle of said phase cut signal to said filter circuit.
- 27. The ballast circuit of claim 20, wherein said rectifying circuit comprises a voltage doubling circuit, said voltage doubling circuit having an output coupled across said DC bus.
- 28. The ballast circuit of claim 27, wherein said charging circuit has a control input from said output stage, and further comprises first and second storage capacitors, said first storage capacitor being charged in response to said control input from said output stage during a positive half cycle of said AC power and said second storage capacitor being charged in response to said control input from said output stage during a negative half cycle of said AC power.
- 29. The ballast circuit of claim 28, wherein said voltage doubling circuit includes third and fourth storage capacitors, said third storage capacitor being charged from said first storage capacitor in response to said control input from said output stage and said fourth storage capacitor being charged from said second stage capacitor in response to said control input from said output stage.
- 30. The ballast circuit of claim 29, wherein the output stage comprises a half bridge output circuit comprising first and second electronic switching devices connected in series across said DC bus, with an output at a common point between said first and second electronic switching devices, said output being coupled to said fluorescent lamp through an LC circuit, and wherein said control input from said power stage to said charging circuit comprises a connection to said output.
- 31. The ballast circuit claim 30, wherein said first and second electronic switching devices comprises a high side device and a low side device, said control input to said charging circuit controlling said first and second storage capacitors whereby said first capacitor charges during the positive half cycle of the AC power when said low side device is conductive and said high side device is nonconductive; and when said low side device is nonconductive and said high side device is conductive, said first capacitor discharges into said third capacitor; and further wherein said second capacitor charges during the negative half cycle of the AC power when said low side device is conductive and said high side and device is nonconductive; and when said low side device is nonconductive and said high side device is conductive, said second capacitor discharges into said fourth capacitor; thereby providing a DC voltage across said DC bus.
- 32. The ballast circuit of claim 30, wherein the LC circuit comprises a series circuit comprising an inductor and a capacitor, the flourescent lamp being coupled in series with said series circuit.
- 33. The ballast circuit of claim 20, wherein said rectifying circuit and said charging circuit draw a continuous current from said phase cut dimmer during the selectable portion of the half cycle of the AC power.
- 34. The ballast circuit of claim 20, further comprising an inductance provided between said phase cut dimmer and said rectifying circuit, said inductance maintaining a continuous current draw from said phase cut dimmer to said rectifying circuit during said selectable portion of the half cycle of the AC power.
- 35. The ballast circuit of claim 20, further comprising a lamp removal protection circuit for stopping operation of said control circuit if a lamp is not connected to the circuit when power is applied.
- 36. The ballast circuit of claim 35, wherein the lamp removal protection circuit comprises an RC circuit including a capacitor that charges above a threshold when the lamp is disconnected when power is applied to the lamp.
- 37. The ballast circuit of claim 20, further comprising a lamp ignition failure circuit for stopping operation of said control circuit if the lamp fails to ignite as the output signal frequency approaches resonance during ignition mode.
- 38. The ballast circuit of claim 37, wherein the lamp ignition failure circuit comprises an RC circuit for charging a capacitor above a threshold if lamp current exceeds a present level.
- 39. A method of dimming a fluorescent lamp comprising:applying an AC power source waveform to a phase cut dimmer; triggering on an electronic switch of the phase cut dimmer at a selected point in a half cycle of the AC power source waveform, thereby providing a phase cut signal, the selected point being related to a desired dimming level of the fluorescent lamp; rectifying said phase cut signal and charging a storage device to thereby generate a DC power supply voltage across a DC bus; continuously drawing current from said electronic switch of the phase cut dimmer from the selected point in the half cycle of the AC power source waveform to the end of the half cycle; filtering at least a portion of the phase cut signal to provide a control signal related to the desired dimming level; providing the control signal to a ballast control circuit for driving at least one output electronic switch to provide a pulsed power signal comprising pulses of said DC power supply voltage; providing said pulses of said DC power supply voltage to said fluorescent lamp.
- 40. The method of clam 39, wherein said control signal comprises a DC level control signal.
- 41. The method of claim 40, further comprising level shifting said DC level control signal so that a minimum brightness level corresponds to a shifted DC level control signal of substantially zero.
- 42. The method of claim 41, further comprising providing a lamp current signal related to electrical current in said fluorescent lamp, comparing said lamp current signal to said shifted DC level control signal and generating an error signal to drive said ballast control circuit thereby causing said fluorescent lamp to assume a brightness level in accordance with said shifted DC level control signal.
- 43. The method of claim 40, wherein said step of filtering further comprises passing only one of the positive and negative half cycles of said phase cut signal to produce said DC level control signal.
- 44. The method of claim 39, further comprising providing said pulses of said DC power supply voltage to said lamp through an LC circuit.
- 45. The method of claim 39, wherein the steps of rectifying and charging comprise using a voltage doubling circuit to rectify said phase cut signal, and charging a capacitor to provide the DC power supply voltage to the DC bus.
- 46. The method of claim 45, wherein said steps of rectifying and charging comprise controlling the passage of said phase cut signal into a charging circuit in dependence on a conduction state of said at least one output electronic switch.
- 47. The method of claim 46, wherein said steps of rectifying and charging comprise:charging a first storage capacitor in response to the conduction state of said output electronic switch during a positive half cycle of the AC power source waveform; and charging a second storage capacitor in response to the conduction state of said output electronic switch during a negative half cycle of the AC power source waveform.
- 48. The method of claim 47, further comprising:charging a third storage capacitor from said first storage capacitor in response to said conduction state of said output electronic switch; and charging a fourth storage capacitor from said second storage capacitor in response to said conduction state of said output electronic switch.
- 49. The method of claim 48, wherein the output electronic switch comprises a pair of output electronic switches arranged in a half bridge configuration across the DC bus, said pair of output electronic switches comprising a high side device and a low side device, further comprising:controlling said first and second storage capacitors whereby said first capacitor charges during the positive half cycle of the AC power when said low side device is conductive and said high side device is nonconductive; and when said low side device is nonconductive and said high side device is conductive, said first capacitor discharges into said third capacitor; and further wherein said second capacitor charges during the negative half cycle of the AC power when said low side device is conductive and said high side device is nonconductive; and when said low side device is nonconductive and said high side device is conductive, said second capacitor discharges into said fourth capacitor; thereby providing a DC voltage across said DC bus.
- 50. The method of claim 39, wherein said ballast control circuit drives a pair of output electronic switches connected in series across said DC bus in a half-bridge configuration, said pair of electronic power switches being pulse width modulated by said ballast control circuit to provide said pulses of said DC power supply voltage to said fluorescent lamp.
- 51. The method of claim 39, further comprising providing an inductance in a current path for said phase-cut signal to allow said electronic switch of said phase-cut dimmer to continuously pass current during the time following the selected point in the half cycle of the AC power source waveform to the end of the half cycle for rectifying in said step of rectifying and charging.
CROSS REFERENCE TO RELATED APPLICATION
This application claims the benefit and priority of U.S. Provisional Application Serial No. 60/280,118, filed Apr. 2, 2001 entitled “DIMMING BALLAST FOR COMPACT FLUORESCENT LAMPS” and U.S. Provisional Application Serial No. 60/330,612, filed Oct. 26, 2001 entitled “DIMMING BALLAST FOR COMPACT FLUORESCENT LAMPS” the entire disclosures of which are incorporated herein by reference.
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