Claims
- 1. A digitally controlled voltage regulator comprising:
a plurality of power integrated circuits adapted for coupling to a load having variable power requirements and for providing regulated power to said load, at least one of said plurality of power integrated circuits also sensing voltages at said load; a control integrated circuit coupled to said plurality of power integrated circuits for providing digital control signals to said plurality of power integrated circuits and for receiving digital signals from said power integrated circuits; said control integrated circuit adjusting the digital control signals in response to the signals received from said power integrated circuits.
- 2. A digitally controlled voltage regulator as in claim 1, wherein said load having variable power requirements is a microprocessor.
- 3. A digitally controlled voltage regulator as in claim 1 wherein said control integrated circuit further comprises:
a programmable storage device providing stored instructions, said control integrated circuit adjusting the digital control signals in response to the signals received from both said programmable storage device and said power integrated circuits.
- 4. A digitally controlled voltage regulator as in claim 3 wherein said programmable storage device comprises an electrically erasable programmable memory (EEPROM).
- 5. A digitally controlled voltage regulator as in claim 1, wherein said digital control signals are digital pulses of variable width providing pulse width modulated (PWM) digital control signals to control a high side power switch.
- 6. A digitally controlled voltage regulator as in claim 5, wherein said digital control signals also provide signals to control a low side power switch.
- 7. A digitally controlled voltage regulator as in claim 1, wherein at least one of said power integrated circuits comprises a window comparator sensing voltage variations at said load and providing an output that initiates an active transient response to voltage variations sensed at said load.
- 8. A digitally controlled voltage regulator as in claim 7, wherein said window comparator comprises:
a first digital to analog converter providing a signal to a first comparator enabling it to provide a high active transient response signal; and a second digital to analog converter providing a signal to a second comparator enabling it to provide a low active transient response signal.
- 9. A digitally controlled voltage regulator as in claim 7, wherein said window comparator comprises a circuit for sensing over voltage and under voltage conditions.
- 10. A digitally controlled voltage regulator as in claim 1, wherein at least one of said power integrated circuits comprises a temperature sensing device.
- 11. A digitally controlled voltage regulator as in claim 10, wherein said temperature sensing device is formed on the same semiconductor substrate as the power integrated circuit.
- 12. A digitally controlled voltage regulator as in claim 1, wherein at least one of said plurality of power integrated circuits comprises:
a voltage analog to digital converter circuit for sensing the voltages at said load; said voltage analog to digital converter circuit providing a digital error signal to said control integrated circuit in response to the voltages sensed at said load and a reference voltage.
- 13. A digitally controlled voltage regulator as in claim 12, wherein said digital error signal is the difference between a programmable reference voltage and a regulated output voltage.
- 14. A digitally controlled voltage regulator as in claim 1, wherein at least one of said power integrated senses the voltage directly at the load by means of a Kelvin connection to the load.
- 15. A digitally controlled voltage regulator as in claim 1, wherein all of said power integrated circuits comprise:
a high side power switch; and a driver circuit responsive to digital control signals from said control integrated circuit to selectively turn said power switch on and off.
- 16. A digitally controlled voltage regulator as in claim 15, further comprising:
a low side power switch; and a driver circuit responsive to digital control signals from said control integrated circuit to selectively turn said power switch on and off.
- 17. A digitally controlled voltage regulator as in claim 15, wherein each of said plurality of power integrated circuits provides a different phase of power to said load.
- 18. A digitally controlled voltage regulator as in claim 15, further comprising:
a current mirror circuit for generating a current that is a ratio of the current delivered to the load; and a current analog to digital converter for providing the digital value of the fractional peak current to said control integrated circuit.
- 19. A digitally controlled voltage regulator as in claim 18, wherein said current mirror circuit is formed on the same semiconductor substrate and by the same process as said high side switch assuring accurate scaling with automatic process and temperature variation compensation.
- 20. A digitally controlled voltage regulator as in claim 18, said current analog to digital converter comprises:
a capacitor for storing the peak current provided by the current mirror; and a comparator for comparing the peak current with a reference and providing as its output a serial digital output IDIG.
- 21. A digitally controlled voltage regulator as in claim 1, wherein one of said power converters comprises:
a voltage analog to digital converter for sensing voltages at said load, comparing said voltages with a reference voltage and providing a digitized error signal to said control integrated circuit.
- 22. A digitally controlled voltage regulator as in claim 21, wherein said voltage analog to digital converter comprises:
a capacitor for storing the sensed load voltage; and a comparator for comparing the sensed load voltage to a reference voltage and providing as its output a serial digital output error signal.
- 23. A digital control integrated circuit comprising:
a digital current interface for receiving digital information representing current measurements; a voltage error interface for receiving a voltage error signal; a programmable storage device for storing desired parameters; a compensation network responsive to digital signals from each of said digital interface, voltage error interface and instruction storage device; and a pulse width modulator responsive to signals from said compensation network for providing signals of varying pulse width to thereby control the power to a load device.
- 24. A digital control integrated circuit as in claim 23, wherein said compensation network comprises:
a circuit for current averaging and balancing responsive to signals from said digital current interface; an active voltage positioning circuit responsive to the output of said circuit for current averaging and balancing; and a proportional integrated derivative feedback control circuit (PID) for receiving inputs from the active voltage positioning circuit and the instruction storage device, for providing signals to said pulse width modulator.
- 25. A digital control integrated circuit as in claim 23, further comprising:
an active transient response interface for providing signals to said pulse width modulator, said signals from said transient response interface overriding signals from said compensation network for controlling the width of pulses controlling the power to a load device.
- 26. A digital control integrated circuit as in claim 25, further comprising:
a state control for receiving parameters from said storage device and enabling said pulse width modulator to start producing pulse width modulated gate signals, said state control monitoring fault signals and disabling the pulse width modulator if a fault is detected.
- 27. A power integrated circuit adapted to be coupled to a load having variable power requirements and for providing regulated power to said load, comprising:
a high side power switch for providing high side power to said load; a driver circuit for supplying pulse width modulated control signals to said high side power switch; a current mirror circuit for generating a mirrored current that is a ratio of the current delivered to the load; said current mirror circuit being formed on the same semiconductor substrate and by the same process as said high side switch assuring accurate scaling with automatic process and temperature variation compensation; and a current analog to digital converter for converting said mirrored current to a digital bit stream.
- 28. A power integrated circuit as in claim 27, wherein said load having variable power requirements is a microprocessor.
- 29. A power integrated circuit as in claim 27, further comprising:
a circuit for sensing voltage variations at said load.
- 30. A power integrated circuit as in claim 29, wherein said power integrated circuit further comprises a window comparator sensing voltage variations at said load and providing an output that initiates an active transient response to voltage variations sensed at said load.
- 31. A power integrated circuit as in claim 29, wherein said circuit for sensing is connected to said load by means of a Kelvin contact at the load.
- 32. A power integrated circuit as in claim 27, further comprising:
a temperature sensing device.
- 33. A power integrated circuit as in claim 32, wherein said temperature sensing device is formed on the same semiconductor substrate as the power integrated circuit.
- 34. A power integrated circuit as in claim 27, further comprising:
a low side power switch.
- 35. A power integrated circuit as in claim 27, wherein:
a plurality of said power integrated circuits are connected in parallel, thereby providing multiple phases of power to said load.
- 36. A power integrated circuit as in claim 27, further comprising: a current limiting circuit responsive to the mirrored current for causing said driver circuit to turn off said high side power switch when the mirrored current exceeds a pre-determined value.
CROSS-REFERENCES TO RELATED PATENT APPLICATIONS
[0001] 1. U.S. patent application Ser. No. 10/237,903, filed on Sep. 9, 2002, by Trivedi et al, entitled: SYSTEM & METHOD FOR CURRENT HANDLING IN A DIGITALLY-CONTROLLED POWER CONVERTER.
[0002] 2. U.S. patent application Ser. No. is pending; filed on Nov. 12, 2002, by Duffy et al, entitled: “METHODS AND APPARATUS FOR REDUCING PARASITIC INDUCTANCE USING INTER-DIGITATED BOND WIRES”,
[0003] 3. U.S. patent application Ser. No. 9/978,296, filed on Oct. 15, 2001, by Goodfellow et al, entitled: “SYSTEM AND METHOD FOR CURRENT SENSING”.