Claims
- 1. A power output controller comprising:
an output stage; a sensing circuit for providing an output representative of an output voltage of the output stage; and a digital controller that controls output pulses that charge the output stage with a frequency that is dependent on the output of the sensing circuit.
- 2. The power output controller of claim 1, wherein the output stage includes a capacitor being charged by the output pulses.
- 3. The power output controller of claim 1, wherein the sensing circuit scales the output voltage prior to inputting the output voltage into a comparator.
- 4. The power output controller of claim 1, wherein the sensing circuit includes an op amp for scaling the output voltage prior to inputting the output voltage into a comparator.
- 5. The power output controller of claim 1, further including a pulse generator for generating the output pulses, the pulse generator being controlled by the digital controller.
- 6. The power output controller of claim 1, wherein the digital controller includes a logic circuit having N states S1 through SN corresponding to N pulse frequencies fi (i=1 through N) and that controls output to the output stage, the pulse frequencies fi monotonically increasing.
- 7. The power output controller of claim 6, wherein the N states include M states S1 through SM with lower frequencies f1 through fM and states SM+1 through SN with higher frequencies fM+1 through fN,
wherein the logic circuit switches to state SN from any of states S1 through SM when a number of pulses needed to charge the output stage exceeds a threshold number NAi for each state S1 through SN, wherein the logic circuit switches to a next higher state from any of states SM+1 through SN−1 when the number of pulses needed to charge the output stage exceeds NAi for each corresponding state SM+1 through SN−1, and wherein the logic circuit switches to a next lower state when the number of pulses needed to charge the output stage is less than a threshold number NBi for each state S2 through SN.
- 8. The power controller of claim 7, wherein NAi>NBi for each state.
- 9. The power controller of claim 6, wherein the frequencies fi are programmable.
- 10. A power controller comprising:
an output stage; a sensing circuit for providing an output corresponding to a voltage of the output stage; a pulse generator that charges the output stage; and a multi-state digital logic circuit having N states S1 through SN corresponding to N pulse frequencies fi (i=1 through N) and that controls the pulse generator, the pulse frequencies fi monotonically increasing, wherein the N states include states S1 through SM with lower frequencies f1 through fM and states SM+1 through SN with higher frequencies fM+1 through fN, and wherein the logic circuit switches to state SN from any of states S1 through SM when a number of pulses needed to charge the output stage exceeds a threshold number NAi for each state S1 through SM.
- 11. The power controller of claim 10, wherein the multi-state digital logic circuit switches to a next higher state from any of states SM+1 through SN−1 when the number of pulses needed to charge the output stage exceeds NAi for each state SM+1 through SN−1.
- 12. The power controller of claim 10, wherein the multi-state digital logic circuit switches to a next lower state when the number of pulses needed to charge the output stage is less than a threshold number NBi for each state S2 through SN.
- 13. The power controller of claim 12, wherein NAi>NBi for each state.
- 14. The power controller of claim 10, wherein the frequencies fi are programmable.
- 15. The power output controller of claim 10, wherein the sensing circuit scales the output voltage prior to inputting the output voltage into a comparator.
- 16. The power output controller of claim 15, wherein the sensing circuit includes an op amp for scaling the output voltage prior to inputting the output voltage into the comparator.
- 17. The power controller of claim 10, wherein the sensing circuit includes a comparator that compares the voltage of the output stage with a reference voltage.
- 18. The power controller of claim 17, wherein the reference voltage is outputted by the multi-state digital logic circuit.
- 19. The power controller of claim 10, wherein the output stage includes a capacitor being charged by the output pulses.
- 20. A power controller comprising:
a sensing circuit that provides an output corresponding to a voltage of an output stage; a pulse generator that charges the output stage; and a digital logic circuit having N states S1 through SN corresponding to N pulse frequencies fi (i=1 through N) and that controls the pulse generator based on the output of the sensing circuit, the pulse frequencies fi monotonically increasing, wherein the N states include states S1 through SM with lower frequencies f1 through fM and states SM+1 through SN with higher frequencies fM+1 through fN, wherein the logic circuit switches to state SN from any of states S1 through SM when a number of pulses needed to charge the output stage exceeds a threshold number NAi for each state S1 through SM, wherein the logic circuit switches to a next higher state from any of states SM+1 through SN−1 when a number of pulses needed to charge the output stage exceeds NA for each state SM+1 through SN−1, and wherein the logic circuit switches to a next lower state when the number of pulses needed to charge the output stage is less than a threshold number NBi for each state S2 through SN.
- 21. The power controller of claim 20, wherein NAi>NBi for each state.
- 22. The power controller of claim 20, wherein the sensing circuit includes a comparator that compares the voltage of the output stage with a reference voltage.
- 23. The power output controller of claim 22, wherein the sensing circuit scales the output voltage prior to inputting the output voltage into the comparator.
- 24. The power controller of claim 22, wherein the sensing circuit includes an op amp for scaling the output voltage before inputting the output voltage into the comparator.
- 25. The power controller of claim 20, wherein the frequencies f, are programmable.
- 26. The power controller of claim 20, wherein the output stage includes a capacitor being charged by the output pulses.
- 27. A power output controller comprising:
a sensing circuit that senses an output voltage of an output stage; a frequency modulated pulse generator that charges the output stage; and a multi-state digital controller that controls a frequency of pulses generated by the pulse generator based on information from the sensing circuit.
- 28. The power controller of claim 27, wherein the sensing circuit includes a comparator that compares the output voltage with a reference voltage.
- 29. The power output controller of claim 28, wherein the sensing circuit scales the output voltage prior to inputting the output voltage into a comparator.
- 30. The power controller of claim 28, wherein the sensing circuit includes an op amp for scaling the output voltage before inputting the output voltage into the comparator.
- 31. The power output controller of claim 27, wherein the output stage includes a capacitor being charged by the output pulses.
- 32. The power output controller of claim 27, wherein the multi-state controller includes a logic circuit having N states S1 through SN corresponding to N pulse frequencies fi (i=1 through N) and that controls output to the output stage, the pulse frequencies fi monotonically increasing.
- 33. The power output controller of claim 32, wherein the N states include M states S1 through SM with lower frequencies fi through fM and states SM+1 through SN with higher frequencies fM+1 through fN,
wherein the logic circuit switches to state SN from any of states S through SM when a number of pulses needed to charge the output stage exceeds a threshold number NAi for each corresponding state S1 through SM, wherein the logic circuit switches to a next higher state from any of states SM+1 through SN−1 when a number of pulses needed to charge the output stage exceeds NAi for each state SM+1 through SN−1, and wherein the logic circuit switches to a next lower state when the number of pulses needed to charge the output stage is less than a threshold number NBi for each state S2 through SN.
- 34. The power controller of claim 33, wherein NAi>NBi for each state.
- 35. The power controller of claim 32, wherein the frequencies fi are programmable.
- 36. A method of controlling power output comprising the steps of:
sensing a voltage of an output stage; driving a pulse generator to charge the output stage; and controlling the pulse generator by using a multi-state digital logic circuit having N states S1 through SN corresponding to N pulse frequencies fi (i=1 through N), the pulse frequencies fi monotonically increasing, wherein the N states include M states S1 through SM with lower frequencies f1 through fM and states SM+1 through SN with higher frequencies fM+1 through fN, and wherein the digital logic circuit switches to state SN from any of states S1 through SM when a number of pulses needed to charge the output stage exceeds a threshold number NAi for each state S1 through SM.
- 37. The method of claim 36, wherein the digital logic circuit switches to a next higher state from any of states SM+1 through SN−1 when the number of pulses needed to charge the output stage exceeds NAi for each state SM+1 through SN−1.
- 38. The method of claim 37, wherein the digital logic circuit switches to a next lower state when the number of pulses needed to charge the output stage is less than a threshold number NBi for each state S2 through SN.
- 39. The method of claim 38, wherein NAi>NBi for each state.
- 40. The method of claim 36, wherein the frequencies fi are programmable.
- 41. A power output controller comprising:
an output stage; a sensing circuit for providing an output representative of an output voltage of the output stage; and a controller that controls output pulses that charge the output stage with a frequency selected from a plurality of discrete frequencies and dependent on the output of the sensing circuit.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application claims priority to U.S. Provisional Patent Application No. 60/350,896, filed on Jan. 25, 2002, entitled “Programmable Output, Load Dependent, Variable Bandwidth, Dual Mode Hysteretic Switch Mode Controller Functional Description,” which is incorporated herein by reference.
Provisional Applications (1)
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Number |
Date |
Country |
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60350896 |
Jan 2002 |
US |