Claims
- 1. A method of powering a programmable processor comprising the steps of:
a. accepting at least a first buck converter power input; b. affecting said first buck converter power input with at least one high effective input inductance; c. creating a first directional effect in a passive electrical element from said first buck converter input; d. accepting at least a second buck converter power input; e. affecting said second buck converter power input with at least one high effective input inductance; f. creating a second directional effect in said passive electrical element from said second buck converter power input wherein said second directional effect opposes said first directional effect; g. combining said at least two power inputs to create a combined power signal; h. creating a low effective output inductance power output from said combined power signal; i. establishing a high current, low voltage power output from said low effective output inductance power output; j. providing said high current, low voltage power output to a programmable processor; and k. at least partially powering said programmable processor by said high current, low voltage power output.
- 2. A method of powering a programmable processor as described in claim 1 wherein said steps of affecting said at least two power inputs with at least one high effective input inductance and establishing a high current, low voltage power output from said low effective output inductance power output comprises the step of utilizing an identical network.
- 3. A method of powering a programmable processor as described in claim 2 wherein said step of utilizing an identical network comprises the step of utilizing transformer circuitry.
- 4. A method of powering a programmable processor as described in claim 2 wherein said step of providing said power output to said programmable processor comprises the step of providing a power output selected from a group consisting of:
providing a voltage of less than about 2, 1.8, 1.5, 1.3, 1.0, or 0.4V, providing a maximum current of greater than about 20, 50, 100, or 200 amps, providing a voltage of less than about 2, 1.8, 1.5, 1.3, 1.0, or 0.4V and a maximum current of greater than about 20, 50, 100, or 200 amps in any combination, providing a high rate of current change, providing a typical current change of greater than about 0.1, 1, 5, or 10 A/ns, and providing a power output where the voltage drop of the output conductor is significant relative to the voltage delivered.
- 5. A method of powering a programmable processor as described in claim 4 wherein said step of providing said power output to said programmable processor further comprises the step of providing circuitry exhibiting an output inductance selected from a group consisting of:
an output inductance less than about {fraction (1/10)}, {fraction (1/100)}, or {fraction (1/1000)} of said input inductance, an output inductance less than about 50 nH, an output inductance less than about 20 nH, an output inductance less than about 10 nH, an output inductance less than about 2 nH, an effective input inductance greater than about 100 nH, an effective input inductance greater than about 200 nH, an effective input inductance greater than about 500 nH, and an effective input inductance greater than about 1000 nH.
- 6. A method of powering a programmable processor as described in claim 5 and further comprising the step of creating at least one of said power inputs from a power element selected from a group consisting of: an isolated source, an interleaved switched voltage source, a bipolar source, an interleaved bipolar source, any permutations or combinations of the foregoing, an isolated source with substantially only a regulation delta filter element, an interleaved switched voltage source with substantially only a regulation delta filter element, a bipolar source with substantially only a regulation delta filter element, an interleaved bipolar source with substantially only a regulation delta filter element, an isolated source with substantially only a parasitic element filter, an interleaved switched voltage source with substantially only a parasitic element filter, a bipolar source with substantially only a parasitic element filter, and an interleaved bipolar source with substantially only a parasitic element filter.
- 7. A method of powering a programmable processor as described in claim 2 wherein said step of utilizing transformer circuitry comprises the step of utilizing a non-air gap transformer.
- 8. A method of powering a programmable processor as described in claim 3 wherein said step of utilizing transformer circuitry comprises the step of utilizing a substantially coincident transformer.
- 9. A method of powering a programmable processor as described in claim 2 and further comprising the steps of accepting at least three buck converter power inputs and wherein said step of combining said at least two power inputs comprises the step of utilizing a tiered coupling of said at least three buck converter power inputs.
- 10. A method of powering a programmable processor as described in claim 9 wherein said step of utilizing a tiered coupling of said at least three buck converter power inputs comprises the steps of:
a. establishing a first order connection network having a plurality of first order inputs and a first order output; and b. establishing a second order connection network having a plurality of second order inputs and which outputs said first order inputs.
- 11. A method of powering a programmable processor as described in claim 10 wherein said step of utilizing a tiered coupling of said at least three buck converter power inputs further comprises the step of establishing a third order connection network having a plurality of third order inputs and which outputs said second order inputs.
- 12. A method of powering a programmable processor as described in claim 11 wherein said step of utilizing a tiered coupling of said at least three buck converter power inputs further comprises the step of establishing a fourth order connection network having a plurality of fourth order inputs and which outputs said third order inputs.
- 13. A method of powering a programmable processor as described in claim 9 wherein said step of utilizing a tiered coupling of said at least three buck converter power inputs comprises the step of utilizing components selected from a group consisting of: magnetically coupled and series connected inductor elements, magnetically coupled inductor elements, transformers, transformers connected in part to a power input and in part to another of said transformers, magnetically coupled and series connected inductor elements linking multiple power inputs, unequal transformers, equal transformers, and transformers linking multiple power inputs.
- 14. A method of powering a programmable processor as described in claim 9 wherein said step of utilizing a tiered coupling of said at least three buck converter power inputs comprises the steps of:
a. connecting a first power input to a second power input by first and second inductor elements connected at a first intermediate series connection; b. magnetically coupling said first and second inductor elements; c. establishing a first intermediate output from said first intermediate series connection; d. connecting a third power input to a fourth power input by third and fourth inductor elements connected at a second intermediate series connection; e. magnetically coupling said third and fourth inductor elements; f. establishing a second intermediate output from said second intermediate series connection; g. connecting said first intermediate output to said second intermediate output by fifth and sixth inductor elements connected at a third intermediate series connection; h. magnetically coupling said fifth and sixth inductor elements; and i. establishing said power output from said third intermediate series connection.
- 15. A method of powering a programmable processor as described in claim 9 wherein said step of utilizing a tiered coupling of said at least three buck converter power inputs comprises the steps of:
a. connecting a first power input to a first transformer; b. connecting a second power input to a second transformer; c. connecting a third power input to a third transformer; d. connecting a fourth power input to a fourth transformer; e. connecting said first transformer to said second transformer; f. connecting said second transformer to said third transformer; g. connecting said third transformer to said fourth transformer; h. connecting said fourth transformer to said first transformer; i. connecting said first transformer to a common intermediate output; j. connecting said second transformer to a common intermediate output; k. connecting said third transformer to a common intermediate output; l. connecting said fourth transformer to a common intermediate output; m. connecting said intermediate output to a filter element; and n. providing said power output from said filter element.
- 16. A method of powering a programmable processor as described in claim 2 or 9 and further comprising the step of driving at least two of said buck converter power inputs by a substantially uninterrupted sequenced conduction drive element.
- 17. A method of powering a programmable processor as described in claim 16 wherein said step of driving at least two of said buck converter power inputs by a substantially uninterrupted sequenced conduction drive comprises the step of driving said at least two buck converter power inputs substantially centered at a constant conduction timing.
- 18. A method of powering a programmable processor as described in claim 2 or 9 and further comprising the step of driving said at least two buck converter power inputs by a multiphase drive element.
- 19. A method of powering a programmable processor as described in claim 16 and further comprising the step of affecting said power output by a series inductive element after accomplishing said step of combining said at least two power inputs to create a combined power signal.
- 20. A method of powering a programmable processor as described in claimss 2, 3, 4, 5, 7, 8 or 9 wherein said step of providing said power output to said programmable processor comprises the step of providing said power output to an element selected from a group consisting of:
at least a portion of a computer system, a microprocessor, a computer component, a microprocessor running at at least hundreds of megahertz, a microprocessor running at at least 1, 2, 5, or 10 gigahertz, memory management circuitry, graphic display circuitry, input-output circuitry, a central processing element, telecommunication circuitry, radar circuitry, and vehicle power circuitry.
- 21. A method of powering a programmable processor as described in claim 17 wherein said step of providing said power output to said programmable processor comprises the step of providing said power output to an element selected from a group consisting of:
at least a portion of a computer system, a microprocessor, a computer component, a microprocessor running at at least hundreds of megahertz, a microprocessor running at at least 1, 2, 5, or 10 gigahertz, memory management circuitry, graphic display circuitry, input-output circuitry, a central processing element, telecommunication circuitry, radar circuitry, and vehicle power circuitry.
- 22. A method of powering a programmable processor comprising the steps of:
a. accepting at least two power inputs; b. affecting said at least two power inputs with at least one high effective input inductance; c. combining said at least two power inputs to create a combined power signal; d. creating a low effective output inductance power output affecting said combined power signal; e. establishing a high current, low voltage power output affecting said low effective output inductance power output; f. providing said high current, low voltage power output to said programmable processor; and g. at least partially powering said programmable processor by said high current, low voltage power output.
- 23. A method of powering a programmable processor as described in claim 22 wherein said step of establishing a high current, low voltage power output from said low effective output inductance power output comprises the step of utilizing only passive elements.
- 24. A method of powering a programmable processor as described in claim 22 wherein said steps of affecting said at least two power inputs with at least one high effective input inductance and establishing a high current, low voltage power output from said low effective output inductance power output comprises the step of utilizing an identical network.
- 25. A method of powering a programmable processor as described in claim 24 wherein said step of utilizing an identical network comprises the step of utilizing transformer circuitry.
- 26. A method of powering a programmable processor as described in claim 25 and further comprising the step of affecting said power output by a series inductive element after accomplishing said step of utilizing transformer circuitry.
- 27. A method of powering a programmable processor as described in claim 26 wherein said step of affecting said power output by a series inductive element after accomplishing said step of utilizing transformer circuitry comprises the step of affirmatively affecting said power output by an inherent output inductance.
- 28. A method of powering a programmable processor comprising the steps of:
a. accepting at least a first power input; b. creating a first directional effect in a passive electrical element from said first power input; c. accepting at least a second power input; d. creating a second directional effect in said passive electrical element from said second power input wherein said second directional effect opposes said first directional effect; e. combining said at least two power inputs to create a high current, low voltage power output; f. providing said high current, low voltage power output to said programmable processor; and g. at least partially powering said programmable processor by said high current, low voltage power output.
- 29. A method of powering a programmable processor as described in claim 28 wherein said step of combining said at least two power inputs to create a high current, low voltage power output comprises the step of utilizing only passive elements.
- 30. A method of powering a programmable processor as described in claim 29 wherein said step of utilizing only passive elements comprises the step of utilizing an inductive element.
- 31. A method of powering a programmable processor as described in claim 28 wherein said steps of creating a first directional effect in a passive electrical element from said first power input and creating a second directional effect in said passive electrical element from said second power input wherein said second directional effect opposes said first directional effect each comprise the step of establishing a magnetic field.
- 32. A method of powering a programmable processor as described in claim 31 wherein said step of creating a second directional effect in said passive electrical element from said second power input wherein said second directional effect opposes said first directional effect comprises the step of establishing a magnetic field which has a direction opposite to that established by said step of creating a first directional effect in a passive electrical element from said first power input.
- 33. A method of powering a programmable processor as described in claim 28 and further comprising the steps of:
a. affecting said at least two power inputs with at least one high effective input inductance; and b. creating a low effective output inductance power output responsive to said first and second power inputs.
- 34. A method of powering a programmable processor as described in claim 30 wherein said step of utilizing an inductive element comprises the step of utilizing transformer circuitry.
- 35. A method of powering a programmable processor as described in claim 34 and further comprising the step of utilizing a series inductor element after said transformer circuitry.
- 36. A method of powering a programmable processor as described in claim 35 wherein said step of utilizing a series inductor element comprises the step of affirmatively utilizing an inherent inductance.
- 37. A method of powering a programmable processor comprising the steps of:
a. accepting at least two power inputs; b. combining said at least two power inputs to create a high current, low voltage power output; c. providing said high current, low voltage power output to a programmable processor having a current draw; d. at least partially powering said programmable processor by said high current, low voltage power output; and e. abruptly changing said current draw of said programmable processor while maintaining a substantially constant voltage on said power output.
- 38. A method of powering a programmable processor as described in claim 37 wherein said step of abruptly changing said current draw of said programmable processor while maintaining a substantially constant voltage on said power output comprises the step of abruptly changing said current draw of said programmable processor to a current selected from a group consisting of: greater than about 20 amps, greater than about 50 amps, greater than about 100 amps, greater than about 200 amps, changing a current by at least about 100% of said current draw, and changing a current by at least about 100% of a maximum current draw.
- 39. A method of powering a programmable processor as described in claim 38 wherein said step of providing said power output to said programmable processor comprises the step of providing a power output selected from a group consisting of: providing a voltage of less than about 2, 1.8, 1.5, 1.3, 1.0, or 0.4V.
- 40. A method of powering a programmable processor as described in claim 37 wherein said step of abruptly changing a current draw from said high current, low voltage power output while not substantially changing said low voltage of said high current, low voltage power output comprises the step of not substantially changing said low voltage of said high current, low voltage power output by more than a voltage change selected from a group consisting of: less than about 20% of said low voltage power output, less than about 10% of said low voltage power output, less than about 5% of said low voltage power output, and less than about 2% of said low voltage power output.
- 41. A method of powering a programmable processor as described in claim 39 wherein said step of abruptly changing a current draw from said high current, low voltage power output while not substantially changing said low voltage of said high current, low voltage power output comprises the step of not substantially changing said low voltage of said high current, low voltage power output by more than a voltage change selected from a group consisting of: less than about 20% of said low voltage power output, less than about 10% of said low voltage power output, less than about 5% of said low voltage power output, and less than about 2% of said low voltage power output.
- 42. A method of powering a programmable processor as described in claim 40 wherein said step of abruptly changing a current draw from said high current, low voltage power output while not substantially changing said low voltage of said high current, low voltage power output comprises the step of abruptly changing said current draw selected from a group consisting of: a typical current change of greater than about 0.1, 1, 5, or 10 A/ns.
- 43. A method of powering a programmable processor as described in claim 41 wherein said step of abruptly changing a current draw from said high current, low voltage power output while not substantially changing said low voltage of said high current, low voltage power output comprises the step of abruptly changing said current draw selected from a group consisting of: a typical current change of greater than about 0.1, 1,5,or 10 A/ns.
- 44. A method of powering a programmable processor as described in claim 22, 28, or 37 wherein said step of providing said power output to said programmable processor comprises the step of providing a power output selected from a group consisting of:
providing a voltage of less than about 2, 1.8, 1.5, 1.3, 1.0, or 0.4V, providing a maximum current of greater than about 20, 50, 100, or 200 amps, providing a voltage of less than about 2, 1.8, 1.5, 1.3, 1.0, or 0.4V and a maximum current of greater than about 20, 50, 100, or 200 amps in any combination, providing a high rate of current change, providing a typical current change of greater than about 0. 1, 1, 5, or 10 A/ns, and providing a power output where the voltage drop of the output conductor is significant relative to the voltage delivered.
- 45. A method of powering a programmable processor as described in claim 22, 33, or 37 wherein said step of providing said power output to said programmable processor further comprises the step of providing circuitry exhibiting an output inductance selected from a group consisting of:
an output inductance less than about {fraction (1/10)}, {fraction (1/100)}, or {fraction (1/1000)} of said input inductance, an output inductance less than about 50 nH, an output inductance less than about 20 nH, an output inductance less than about 10 nH, an output inductance less than about 2 nH, an effective input inductance greater than about 100 nH, an effective input inductance greater than about 200 nH, an effective input inductance greater than about 500 nH, and an effective input inductance greater than about 1000 nH.
- 46. A method of powering a programmable processor as described in claim 22, 28 or 28 and further comprising the step of creating at least one of said power inputs from a buck converter element.
- 47. A method of powering a programmable processor as described in claim 45 wherein said step of creating at least one of said power inputs from a buck converter element comprises the steps of:
a. repetitively operating a first active element; b. feeding power through said first active element to said power input during a first input time; c. sequentially and repetitively operating a second active element; and d. feeding power through said second active element to said power input during a second input time which is different from said first input time.
- 48. A method of powering a programmable processor as described in claim 45 wherein said step of creating at least one of said power inputs from a buck converter element comprises the step of repetitively operating active elements selected from a group consisting of: a switch element, a diode element, a buck converter element having two switch elements, and a buck converter element having a switch element and a diode element.
- 49. A method of powering a programmable processor as described in claim 22, 28, or 37 and further comprising the step of creating at least one of said power inputs from a power element selected from a group consisting of: an isolated source, an interleaved switched voltage source, a bipolar source, at least two bipolar sources, an interleaved bipolar source, any permutations or combinations of the foregoing, an isolated source with substantially only a regulation delta filter element, an interleaved switched voltage source with substantially only a regulation delta filter element, a bipolar source with substantially only a regulation delta filter element, an interleaved bipolar source with substantially only a regulation delta filter element, an isolated source with substantially only a parasitic element filter, an interleaved switched voltage source with substantially only a parasitic element filter, a bipolar source with substantially only a parasitic element filter, and an interleaved bipolar source with substantially only a parasitic element filter.
- 50. A method of powering a programmable processor as described in claim 45 wherein said step of providing said power output to said programmable processor comprises the step of providing a power output selected from a group consisting of:
providing a voltage of less than about 2, 1.8, 1.5, 1.3, 1.0, or 0.4V, providing a maximum current of greater than about 20, 50, 100, or 200 amps, providing a voltage of less than about 2, 1.8, 1.5, 1.3, 1.0, or 0.4V and a maximum current of greater than about 20, 50, 100, or 200 amps in any combination, providing a high rate of current change, providing a typical current change of greater than about 0.1, 1, 5, or 10 A/ns, and providing a power output where the voltage drop of the output conductor is significant relative to the voltage delivered.
- 51. A method of powering a programmable processor as described in claim 50 wherein said step of providing said power output to said programmable processor further comprises the step of providing circuitry exhibiting an output inductance selected from a group consisting of:
an output inductance less than about {fraction (1/10)}, {fraction (1/100)}, or {fraction (1/1000)} of said input inductance, an output inductance less than about 50 nH, an output inductance less than about 20 nH, an output inductance less than about 10 nH, an output inductance less than about 2 nH, an effective input inductance greater than about 100 nH, an effective input inductance greater than about 200 nH, an effective input inductance greater than about 500 nH, and an effective input inductance greater than about 1000 nH.
- 52. A method of powering a programmable processor as described in claim 51 and further comprising the step of creating at least one of said power inputs from a power element selected from a group consisting of: an isolated source, an interleaved switched voltage source, a bipolar source, an interleaved bipolar source, any permutations or combinations of the foregoing, an isolated source with substantially only a regulation delta filter element, an interleaved switched voltage source with substantially only a regulation delta filter element, a bipolar source with substantially only a regulation delta filter element, an interleaved bipolar source with substantially only a regulation delta filter element, an isolated source with substantially only a parasitic element filter, an interleaved switched voltage source with substantially only a parasitic element filter, a bipolar source with substantially only a parasitic element filter, and an interleaved bipolar source with substantially only a parasitic element filter.
- 53. A method of powering a programmable processor as described in claim 22, 28, or 37 wherein said step of combining said at least two power inputs comprises the step of magnetically coupling said at least two power inputs.
- 54. A method of powering a programmable processor as described in claim 53 wherein said step of magnetically coupling said at least two power inputs comprises the step of affecting said at least two power inputs by transformer circuitry.
- 55. A method of powering a programmable processor as described in claim 54 wherein said step of affecting said at least two power inputs by transformer circuitry comprises the step of affecting said at least two power inputs by a reduced magnetic field stored energy transformer.
- 56. A method of powering a programmable processor as described in claim 54 wherein said step of affecting said at least two power inputs by transformer circuitry comprises the step of affecting said at least two power inputs by a non-air gap transformer.
- 57. A method of powering a programmable processor as described in claim 54 wherein said step of affecting said at least two power inputs by transformer circuitry comprises the step of affecting said at least two power inputs by a substantially coincident transformer.
- 58. A method of powering a programmable processor as described in claim 54 wherein said step of affecting said at least two power inputs by transformer circuitry comprises the step of affecting said at least two power inputs by a substantially insaturable transformer.
- 59. A method of powering a programmable processor as described in claim 56 wherein said step of providing said power output to said programmable processor comprises the step of providing a power output selected from a group consisting of:
providing a voltage of less than about 2, 1.8, 1.5, 1.3, 1.0, or 0.4V, providing a maximum current of greater than about 20, 50, 100, or 200 amps, providing a voltage of less than about 2, 1.8, 1.5, 1.3, 1.0, or 0.4V and a maximum current of greater than about 20, 50, 100, or 200 amps in any combination, providing a high rate of current change, providing a typical current change of greater than about 0.1, 1, 5, or 10 A/ns, and providing a power output where the voltage drop of the output conductor is significant relative to the voltage delivered.
- 60. A method of powering a programmable processor as described in claim 59 wherein said step of providing said power output to said programmable processor further comprises the step of providing circuitry exhibiting an output inductance selected from a group consisting of:
an output inductance less than about {fraction (1/10)}, {fraction (1/100)}, or {fraction (1/1000)} of said input inductance, an output inductance less than about 50 nH, an output inductance less than about 20 nH, an output inductance less than about 10 nH, an output inductance less than about 2 nH, an effective input inductance greater than about 100 nH, an effective input inductance greater than about 200 nH, an effective input inductance greater than about 500 nH, and an effective input inductance greater than about 1000 nH.
- 61. A method of powering a programmable processor as described in claim 22 or 28 and further comprising the step of creating at least one of said power inputs from a buck converter element.
- 62. A method of powering a programmable processor as described in claim 22, 28 or 37, wherein said step of combining said at least two power inputs comprises the step of utilizing a reverse polarity element.
- 63. A method of powering a programmable processor as described in claim 62 wherein said step of utilizing a reverse polarity element comprises the step of utilizing a reverse polarity transformer.
- 64. A method of powering a programmable processor as described in claim 63 wherein said step of utilizing a reverse polarity transformer comprises the steps of:
a. establishing a first coil having a positive side; b. establishing a second coil having a negative side; c. connecting said positive side of said first coil to said negative side of said second coil; and d. magnetically coupling said first and second coils.
- 65. A method of powering a programmable processor as described in claim 56 and further comprising the step of utilizing a reverse polarity transformer.
- 66. A method of powering a programmable processor as described in claim 57 and further comprising the step of utilizing a reverse polarity transformer.
- 67. A method of powering a programmable processor as described in claim 63 wherein said step of providing said power output to said programmable processor comprises the step of providing a power output selected from a group consisting of:
providing a voltage of less than about 2, 1.8, 1.5, 1.3, 1.0, or 0.4V, providing a maximum current of greater than about 20, 50, 100, or 200 amps, providing a voltage of less than about 2, 1.8, 1.5, 1.3, 1.0, or 0.4V and a maximum current of greater than about 20, 50, 100, or 200 amps in any combination, providing a high rate of current change, providing atypical current change of greater than about 0.1, 1, 5, or 10 A/ns, and providing a power output where the voltage drop of the output conductor is significant relative to the voltage delivered.
- 68. A method of powering a programmable processor as described in claim 67 wherein said step of providing said power output to said programmable processor further comprises the step of providing circuitry exhibiting an output inductance selected from a group consisting of:
an output inductance less than about {fraction (1/10)}, {fraction (1/100)}, or {fraction (1/1000)} of said input inductance, an output inductance less than about 50 nH, an output inductance less than about 20 nH, an output inductance less than about 10 nH, an output inductance less than about 2 nH, an effective input inductance greater than about 100 nH, an effective input inductance greater than about 200 nH, an effective input inductance greater than about 500 nH, and an effective input inductance greater than about 1000 nH.
- 69. A method of powering a programmable processor as described in claim 68 and further comprising the step of creating at least one of said power inputs from a buck converter element.
- 70. A method of powering a programmable processor as described in claim 22, 28, or 37 wherein said step of accepting said power inputs comprises the step of accepting at least three power inputs and wherein said step of combining said at least two power inputs comprises the step of utilizing a tiered coupling of said at least three power inputs.
- 71. A method of powering a programmable processor as described in claim 70 wherein said step of utilizing a tiered coupling of said at least three power inputs comprises the steps of:
a. establishing a first order connection network having a plurality of first order inputs and a first order output; and b. establishing a second order connection network having a plurality of second order inputs and which outputs said first order inputs.
- 72. A method of powering a programmable processor as described in claim 71 wherein said step of utilizing a tiered coupling of said at least three power inputs further comprises the step of establishing a third order connection network having a plurality of third order inputs and which outputs said second order inputs.
- 73. A method of powering a programmable processor as described in claim 72 wherein said step of utilizing a tiered coupling of said at least three power inputs further comprises the step of establishing a fourth order connection network having a plurality of fourth order inputs and which outputs said third order inputs.
- 74. A method of powering a programmable processor as described in claim 70 wherein said step of utilizing a tiered coupling of said at least three power inputs comprises the step of utilizing components selected from a group consisting of: magnetically coupled and series connected inductor elements, magnetically coupled inductor elements, transformers, transformers connected in part to a power input and in part to another of said transformers, magnetically coupled and series connected inductor elements linking multiple power inputs, unequal transformers, equal transformers, and transformers linking multiple power inputs.
- 75. A method of powering a programmable processor as described in claim 70 wherein said step of utilizing a tiered coupling of said at least three power inputs comprises the steps of:
a. connecting a first power input to a second power input by first and second inductor elements connected at a first intermediate series connection; b. magnetically coupling said first and second inductor elements; c. establishing a first intermediate output from said first intermediate series connection; d. connecting a third power input to a fourth power input by third and fourth inductor elements connected at a second intermediate series connection; e. magnetically coupling said third and fourth inductor elements; f. establishing a second intermediate output from said second intermediate series connection; g. connecting said first intermediate output to said second intermediate output by fifth and sixth inductor elements connected at a third intermediate series connection; h. magnetically coupling said fifth and sixth inductor elements; and i. establishing said power output from said third intermediate series connection.
- 76. A method of powering a programmable processor as described in claim 70 wherein said step of utilizing a tiered coupling of said at least three power inputs comprises the steps of:
a. connecting a first power input to a first transformer; b. connecting a second power input to a second transformer; c. connecting a third power input to a third transformer; d. connecting a fourth power input to a fourth transformer; e. connecting said first transformer to said second transformer; f. connecting said second transformer to said third transformer; g. connecting said third transformer to said fourth transformer; h. connecting said fourth transformer to said first transformer; i. connecting said first transformer to a comion intermediate output; j connecting said second transformer to said common intermediate output; k. connecting said third transformer to said common intermediate output; l. connecting said fourth transformer to said common intermediate output; m. connecting said intermediate output to a filter element; and n. providing said power output from said filter element.
- 77. A method of powering a programmable processor as described in claim 76 wherein said steps of:
connecting said first transformer to said second transformer, connecting said second transformer to said third transformer, connecting said third transformer to said fourth transformer, and connecting said fourth transformer to said first transformer each have an input side to their respective transformers, and wherein said steps of: connecting said first transformer to said second transformer, connecting said second transformer to said third transformer, connecting said third transformer to said fourth transformer, and connecting said fourth transformer to said first transformer each comprise the step of utilizing said input side to connect to the respective adjacent transformer, and wherein said steps of: connecting said first transformer to said second transformer, connecting said second transformer to said third transformer, connecting said third transformer to said fourth transformer, and connecting said fourth transformer to said first transformer each comprise the step of utilizing a reverse polarity transformer connection.
- 78. A method of powering a programmable processor as described in claim 37 wherein said step of accepting said power inputs comprises the step of accepting at least three power inputs and wherein said step of combining said at least two power inputs comprises the step of utilizing a tiered coupling of said at least three power inputs.
- 79. A method of powering a programmable processor as described in claim 46 wherein said step of accepting said power inputs comprises the step of accepting at least three power inputs and wherein said step of combining said at least two power inputs comprises the step of utilizing a tiered coupling of said at least three power inputs.
- 80. A method of powering a programmable processor as described in claim 22 or 28 wherein said step of accepting said power inputs comprises the step of accepting at least three power inputs and wherein said step of combining said at least two power inputs comprises the step of utilizing a tiered coupling of said at least three power inputs.
- 81. A method of powering a programmable processor as described in claim 50 wherein said step of accepting said power inputs comprises the step of accepting at least three power inputs and wherein said step of combining said at least two power inputs comprises the step of utilizing a tiered coupling of said at least three power inputs.
- 82. A method of powering a programmable processor as described in claim 56 wherein said step of accepting said power inputs comprises the step of accepting at least three power inputs and wherein said step of combining said at least two power inputs comprises the step of utilizing a tiered coupling of said at least three power inputs.
- 83. A method of powering a programmable processor as described in claim 22, 28 or 37 and further comprising the step of driving at least two of said power inputs by a substantially uninterrupted sequenced conduction drive element.
- 84. A method of powering a programmable processor as described in claim 83 wherein said step of driving at least two of said power inputs by a substantially uninterrupted sequenced conduction drive comprises the step of driving said at least two power inputs substantially centered at a constant conduction timing.
- 85. A method of powering a programmable processor as described in claim 22, 28 or 37 and further comprising the step of driving said at least two power inputs by a multiphase drive element.
- 86. A method of powering a programmable processor as described in claim 44 and further comprising the step of driving at least two of said power inputs by a substantially uninterrupted sequenced conduction drive element.
- 87. A method of powering a programmable processor as described in claim 86 wherein said step of driving at least two of said power inputs by a substantially uninterrupted sequenced conduction drive comprises the step of driving said at least two power inputs substantially centered at a constant conduction timing.
- 88. A method of powering a programmable processor as described in claim 44 and further comprising the step of driving said at least two power inputs by a multiphase drive element.
- 89. A method of powering a programmable processor as described in claim 45 and further comprising the step of driving at least two of said power inputs by a substantially uninterrupted sequenced conduction drive element.
- 90. A method of powering a programmable processor as described in claim 89 wherein said step of driving at least two of said power inputs by a substantially uninterrupted sequenced conduction drive comprises the step of driving said at least two power inputs substantially centered at a constant conduction timing.
- 91. A method of powering a programmable processor as described in claim 45 and further comprising the step of driving said at least two power inputs by a multiphase drive element.
- 92. A method of powering a programmable processor as described in claim 46 and further comprising the step of driving at least two of said power inputs by a substantially uninterrupted sequenced conduction drive element.
- 93. A method of powering a programmable processor as described in claim 92 wherein said step of driving at least two of said power inputs by a substantially uninterrupted sequenced conduction drive comprises the step of driving said at least two power inputs substantially centered at a constant conduction timing.
- 94. A method of powering a programmable processor as described in claim 46 and further comprising the step of driving said at least two power inputs by a multiphase drive element.
- 95. A method of powering a programmable processor as described in claim 50 and further comprising the step of driving at least two of said power inputs by a substantially uninterrupted sequenced conduction drive element.
- 96. A method of powering a programmable processor as described in claim 95 wherein said step of driving at least two of said power inputs by a substantially uninterrupted sequenced conduction drive comprises the step of driving said at least two power inputs substantially centered at a constant conduction timing.
- 97. A method of powering a programmable processor as described in claim 50 and further comprising the step of driving said at least two power inputs by a multiphase drive element.
- 98. A method of powering a programmable processor as described in claim 56 and further comprising the step of driving at least two of said power inputs by a substantially uninterrupted sequenced conduction drive element.
- 99. A method of powering a programmable processor as described in claim 98 wherein said step of driving at least two of said power inputs by a substantially uninterrupted sequenced conduction drive comprises the step of driving said at least two power inputs substantially centered at a constant conduction timing.
- 100. A method of powering a programmable processor as described in claim 56 and further comprising the step of driving said at least two power inputs by a multiphase drive element.
- 101. A method of powering a programmable processor as described in claim 62 and further comprising the step of driving at least two of said power inputs by a substantially uninterrupted sequenced conduction drive element.
- 102. A method of powering a programmable processor as described in claim 101 wherein said step of driving at least two of said power inputs by a substantially uninterrupted sequenced conduction drive comprises the step of driving said at least two power inputs substantially centered at a constant conduction timing.
- 103. A method of powering a programmable processor as described in claim 62 and further comprising the step of driving said at least two power inputs by a multiphase drive element.
- 104. A method of powering a programmable processor as described in claim 70 and further comprising the step of driving at least two of said power inputs by a substantially uninterrupted sequenced conduction drive element.
- 105. A method of powering a programmable processor as described in claim 104 wherein said step of driving at least two of said power inputs by a substantially uninterrupted sequenced conduction drive comprises the step of driving said at least two power inputs substantially centered at a constant conduction timing.
- 106. A method of powering a programmable processor as described in claim 70 and further comprising the step of driving said at least two power inputs by a multiphase drive element.
- 107. A method of powering a programmable processor as described in claim 49 and further comprising the step of driving at least two of said power inputs by a substantially uninterrupted sequenced conduction drive element.
- 108. A method of powering a programmable processor as described in claim 107 wherein said step of driving at least two of said power inputs by a substantially uninterrupted sequenced conduction drive comprises the step of driving said at least two power inputs substantially centered at a constant conduction timing.
- 109. A method of powering a programmable processor as described in claim 49 and further comprising the step of driving said at least two power inputs by a multiphase drive element.
- 110. A method of powering a programmable processor as described in claim 55 and further comprising the step of affecting said power output by a series inductive element after accomplishing said step of affecting said at least two power inputs by transformer circuitry.
- 111. A method of powering a programmable processor as described in claim 22, 28, or 37 and further comprising the step of affecting said power output by a series inductive element after accomplishing said step of combining said at least two power inputs.
- 112. A method of powering a programmable processor as described in claim 111 wherein said step of affecting said power output by a series inductive element comprises the step of affecting said power output by an uncoupled inductive element.
- 113. A method of powering a programmable processor as described in claim 112 wherein said step of affecting said power output by an uncoupled inductive element comprises the step of affirmatively affecting said power output by an inherent output inductance.
- 114. A method of powering a programmable processor as described in claim 49 and further comprising the step of affirmatively affecting said power output by an inherent output inductance after accomplishing said step of affecting said at least two power inputs by transformer circuitry.
- 115. A method of powering a programmable processor as described in claim 22, 28, or 37 wherein said power output comprises a power output which is the algebraic mean of said at least two power inputs.
- 116. A method of powering a programmable processor as described in claim 22, 28, or 37 wherein said power output comprises a power output which is the algebraic average of said at least two power inputs.
- 117. A method of powering a programmable processor as described in claim 22, 28, or wherein said step of providing said power output to said programmable processor comprises the step of providing said power output to an element selected from a group consisting of:
at least a portion of a computer system, a microprocessor, a computer component, a microprocessor running at at least hundreds of megahertz, a microprocessor running at at least 1, 2, 5, or 10 gigahertz, memory management circuitry, graphic display circuitry, input-output circuitry, a central processing element, telecommunication circuitry, radar circuitry, and vehicle power circuitry.
- 118. A programmable processor power supply comprising:
a. at least a first buck converter element; b. at least one high effective input inductance to which said first buck converter element is responsive; c. a first passive directional effect element responsive to said first buck converter element; d. at least a second buck converter element; e. at least one high effective input inductance to which said second buck converter element is responsive; f. a second passive directional effect element responsive to said second buck converter element wherein said second passive directional effect opposes said first directional effect; g. a combiner network responsive to said first and said second buck converter elements; h. a low effective output inductance power output responsive to said combiner network; i. a high current, low voltage power output from said low effective output inductance power output; and j. a programmable processor which is responsive to said high current, low voltage power output.
- 119. A programmable processor power supply as described in claim 118 wherein said at least one high effective input inductance and said low effective output inductance power output each comprise an identical network.
- 120. A programmable processor power supply as described in claim 119 wherein said identical network comprises a transformer circuitry.
- 121. A programmable processor power supply as described in claim 119 wherein said high current, low voltage power output comprises a high current, low voltage power output selected from a group consisting of:
a low voltage output of less than about 2, 1.8, 1.5, 1.3, 1.0, or 0.4V, an output having a maximum current of greater than about 20, 50, 100, or 200 amps, an output having a voltage of less than about 2, 1.8, 1.5, 1.3, 1.0, or 0.4V and a maximum current of greater than about 20, 50, 100, or 200 amps in any combination, a high rate of current change output, a typical current change of greater than about 0. 1, 1, 5, or 10 A/ns output, and a power output where the voltage drop of the output conductor is significant relative to the voltage delivered.
- 122. A programmable processor power supply as described in claim 121 wherein said high current, low voltage power output comprises a high current, low voltage power output selected from a group consisting of:
an output inductance less than about {fraction (1/10)}, {fraction (1/100)}, or {fraction (1/1000)} of said input inductance, an output with an inductance less than about 50 nH, an output with an inductance less than about 20 nH, an output with an inductance less than about 10 nH, and an output with an inductance less than about 2 nH, and wherein said inputs are effected by elements selected from a group consisting of: an effective input inductance greater than about 100 nH, an effective input inductance greater than about 200 nH, an effective input inductance greater than about 500 nH, and an effective input inductance greater than about 1000 nH.
- 123. A programmable processor power supply as described in claim 122 wherein said power inputs comprise an element selected from a group consisting of: an isolated source, an interleaved switched voltage source, a bipolar source, an interleaved bipolar source, any permutations or combinations of the foregoing, an isolated source with substantially only a regulation delta filter element, an interleaved switched voltage source with substantially only a regulation delta filter element, a bipolar source with substantially only a regulation delta filter element, an interleaved bipolar source with substantially only a regulation delta filter element, an isolated source with substantially only a parasitic element filter, an interleaved switched voltage source with substantially only a parasitic element filter, a bipolar source with substantially only a parasitic element filter, and an interleaved bipolar source with substantially only a parasitic element filter.
- 124. A programmable processor power supply as described in claim 120 wherein said transformer circuitry comprises a non-air gap transformer.
- 125. A programmable processor power supply as described in claim 120 wherein said transformer circuitry comprises a substantially coincident transformer.
- 126. A programmable processor power supply as described in claim 119 wherein said power inputs comprise at least three power inputs and further comprising a tiered coupling of said at least three power inputs.
- 127. A programmable processor power supply as described in claim 126 wherein said tiered coupling comprises:
a. a first order connection network having a plurality of first order inputs and a first order output; and b. a second order connection network having a plurality of second order inputs and which outputs said first order inputs.
- 128. A programmable processor power supply as described in claim 126 wherein said tiered coupling further comprises a third order connection network having a plurality of third order inputs and which outputs said second order inputs.
- 129. A programmable processor power supply as described in claim 128 wherein said tiered coupling further comprises a fourth order connection network having a plurality of fourth order inputs and which outputs said third order inputs.
- 130. A programmable processor power supply as described in claim 126 wherein said tiered coupling comprises components selected from a group consisting of:
magnetically coupled and series connected inductor elements, magnetically coupled inductor elements, transformers, transformers connected in part to a power input and in part to another of said transformers, magnetically coupled and series connected inductor elements linking multiple power inputs, unequal transformers, equal transformers, and transformers linking multiple power inputs.
- 131. A programmable processor power supply as described in claim 126 wherein said tiered coupling comprises:
a. a first power input; b. a second power input connected to said first power input by first and second inductor elements connected at a first intermediate series connection; c. a magnetic coupling between said first and second inductor elements; d. a first intermediate output from said first intermediate series connection; e. a third power input; f. a fourth power input connected to said third power input by third and fourth inductor elements connected at a second intermediate series connection; g. a magnetic coupling between said third and fourth inductor elements; h. a second intermediate output from said second intermediate series connection; i. fifth and sixth inductor elements connecting said first intermediate output and said second intermediate output and connected at a third intermediate series connection; j. a magnetically coupling between said fifth and sixth inductor elements; and k. a power output from said third intermediate series connection.
- 132. A programmable processor power supply as described in claim 126 wherein said tiered coupling comprises:
a. a first power input connected to a first transformer; b. a second power input connected to a second transformer; c. a third power input connected to a third transformer; d. a fourth power input connected to a fourth transformer; e. a connection between said first transformer and said second transformer; f. a connection between said second transformer and said third transformer; g. a connection between said third transformer and said fourth transformer; h. a connection between said fourth transformer and said first transformer; i. a connection between said first transformer and a common intermediate output; j. a connection between said second transformer and said common intermediate output; k. a connection between said third transformer and said common intermediate output; l. a connection between said fourth transformer and said common intermediate output; m. a connection between said intermediate output to a filter element; and n. a power output connected to said filter element.
- 133. A programmable processor power supply as described in claim 119 or 126 and further comprising a substantially uninterrupted sequenced conduction drive element to which said power inputs are responsive.
- 134. A programmable processor power supply as described in claim 133 wherein said substantially uninterrupted sequenced conduction drive element is substantially centered at a constant conduction timing.
- 135. A programmable processor power supply as described in claim 119 or 126 and further comprising a multiphase drive element to which said power inputs are responsive.
- 136. A programmable processor power supply as described in claim 134 and further comprising a series inductive element responsive to said transformer circuitry and to which said programmable processor is responsive.
- 137. A programmable processor power supply as described in claim 119, 120, 121, 122, 124, 125, or 126 wherein said programmable processor comprises a programmable processor selected from a group consisting of:
at least a portion of a computer system, a microprocessor, a computer component, a microprocessor running at at least hundreds of megahertz, a microprocessor running at at least 1, 2, 5, or 10 gigahertz, memory management circuitry, graphic display circuitry, input-output circuitry, a central processing element, telecommunication circuitry, radar circuitry, and vehicle power circuitry.
- 138. A programmable processor power supply as described in claim 133 wherein said programmable processor comprises a programmable processor selected from a group consisting of:
at least a portion of a computer system, a microprocessor, a computer component, a microprocessor running at at least hundreds of megahertz, a microprocessor running at at least 1, 2, 5, or 10 gigahertz, memory management circuitry, graphic display circuitry, input-output circuitry, a central processing element, telecommunication circuitry, radar circuitry, and vehicle power circuitry.
- 139. A programmable processor power supply comprising:
a. at least two power inputs; b. at least one high effective input inductance to which said at least two power inputs are responsive; c. a combiner network responsive to said at least two power inputs d. a low effective output inductance power output responsive to said combiner network; e. a high current, low voltage power output responsive to said low effective output inductance power output; and f. a programmable processor power connection which is responsive to said high current, low voltage power output.
- 140. A programmable processor power supply as described in claim 139 wherein said at least one high effective input inductance and said low effective output inductance power output each are substantially affected by only passive elements.
- 141. A programmable processor power supply as described in claim 139 wherein said at least one high effective input inductance and said low effective output inductance power output each comprise an identical network.
- 142. A programmable processor power supply as described in claim 141 wherein said identical network comprises transformer circuitry.
- 143. A programmable processor power supply as described in claim 142 and further comprising a series inductive element responsive to said transformer circuitry and to which said programmable processor power connection is responsive.
- 144. A programmable processor power supply as described in claim 143 wherein said series inductive element responsive to said transformer circuitry comprises an affirmatively utilized inherent output inductance.
- 145. A programmable processor power supply comprising:
a. at least a first power input; b. a first passive directional effect element responsive to said first power input; c. at least a second power input; d. a second passive directional effect element responsive to said second power input wherein said second passive directional effect opposes said first directional effect; e. a combiner network responsive to said first and said second power inputs; f. a high current, low voltage power output; g. a programmable processor power connection which is responsive to said high current, low voltage power output.
- 146. A programmable processor power supply as described in claim 145 wherein said first passive directional effect element and said second passive directional effect element each are substantially affected by only passive elements.
- 147. A programmable processor power supply as described in claim 146 wherein said first passive directional effect element and said second passive directional effect element comprise an inductive element.
- 148. A programmable processor power supply as described in claim 145 wherein said first passive directional effect element and said second passive directional effect element comprise a magnetic field element.
- 149. A programmable processor power supply as described in claim 145 and further comprising:
a. at least one high effective input inductance to which said first and second power inputs are responsive; and b. at least one low effective output inductance power output responsive to said first and second power inputs.
- 150. A programmable processor power supply as described in claim 147 wherein said inductive element comprises transformer circuitry.
- 151. A programmable processor power supply as described in claim 150 and further comprising a series inductive element responsive to said transformer circuitry and to which said programmable processor power connection is responsive.
- 152. A programmable processor power supply as described in claim 151 wherein said series inductive element responsive to said transformer circuitry comprises an affirmatively utilized inherent output inductance.
- 153. A programmable processor power supply comprising:
a. at least two power inputs; b. a combiner network responsive to said at least two power inputs; c. a high current, low voltage, abruptly changable, substantially constant voltage power output responsive to said combiner network; and d. a programmable processor responsive to said high current, low voltage, abruptly changable, substantially constant power output.
- 154. A programmable processor power supply as described in claim 153 wherein said high current, low voltage, abruptly changable, substantially constant voltage power output comprises a power output selected from a group consisting of: a power output having at least about a 20 amp maximum current, a power output having at least about a 50 amp maximum current, a power output having at least about a 100 amp maximum current, a power output having at least about a 200 amp maximum current, a power output having a current change of at least about 100% of a current draw, and a power output having a current change of at least about 100% of a maximum current draw.
- 155. A programmable processor power supply as described in claim 154 wherein said high current, low voltage, abruptly changable, substantially constant voltage power output comprises a power output selected from a group consisting of: a power output outputting less than about 2 volts, a power output outputting less than about 1.8 volts, a power output outputting less than about 1.5 volts, a power output outputting less than about 1.3 volts, a power output outputting less than about 1.0 volts, and a power output outputting less than about 0.4 volts.
- 156. A programmable processor power supply as described in claim 153 wherein said high current, low voltage, abruptly changable, substantially constant voltage power output comprises a power output selected from a group consisting of: a power output preventing a changes in voltage of less than about 20% of said low voltage output, a power output preventing a changes in voltage of less than about 10% of said low voltage output, a power output preventing a changes in voltage of less than about 5% of said low voltage output, and a power output preventing a changes in voltage of less than about 2% of said low voltage output.
- 157. A programmable processor power supply as described in claim 155 wherein said high current, low voltage, abruptly changable, substantially constant voltage power output comprises a power output selected from a group consisting of: a power output preventing a changes in voltage of less than about 20% of said low voltage output, a power output preventing a changes in voltage of less than about 10% of said low voltage output, a power output preventing a changes in voltage of less than about 5% of said low voltage output, and a power output preventing a changes in voltage of less than about 2% of said low voltage output.
- 158. A programmable processor power supply as described in claim 156 wherein said high current, low voltage, abruptly changable, substantially constant voltage power output comprises a power output selected from a group consisting of: a power output adapted to provide a change in current of greater than about 0.1, 1, 5, or 10 A/ns.
- 159. A programmable processor power supply as described in claim 157 wherein said high current, low voltage, abruptly changable, substantially constant voltage power output comprises a power output selected from a group consisting of: a power output adapted to provide a change in current of greater than about 0.1, 1, 5, or 10 A/ns.
- 160. A programmable processor power supply as described in claim 139, 145, or 153 wherein said high current, low voltage power output comprises a high current, low voltage power output selected from a group consisting of:
a low voltage output of less than about 2, 1.8, 1.5, 1.3, 1.0, or 0.4V, an output having a maximum current of greater than about 20, 50, 100, or 200 amps, an output having a voltage of less than about 2, 1.8, 1.5, 1.3, 1.0, or 0.4V and a maximum current of greater than about 20, 50, 100, or 200 amps in any combination, a high rate of current change output, a typical current change of greater than about 0.1, 1, 5, or 10 A/ns output, and a power output where the voltage drop of the output conductor is significant relative to the voltage delivered.
- 161. A programmable processor power supply as described in claim 139, 147, or 153 wherein said high current, low voltage power output comprises a high current, low voltage power output selected from a group consisting of:
an output inductance less than about {fraction (1/10)}, {fraction (1/100)}, or {fraction (1/1000)} of said input inductance, an output with an inductance less than about 50 nH, an output with an inductance less than about 20 nH, an output with an inductance less than about 10 nH, an output with an inductance less than about 2 nH, and wherein said inputs are effected by elements selected from a group consisting of: an effective input inductance greater than about 100 nH, an effective input inductance greater than about 200 nH, an effective input inductance greater than about 500 nH, and an effective input inductance greater than about 1000 nH.
- 162. A programmable processor power supply as described in claim 139, 145, or 153 wherein said power inputs comprise buck converter elements.
- 163. A programmable processor power supply as described in claim 162 wherein said buck converter elements comprise:
a. a first active element; b. a second active element; and c. sequential and repetitive active element control element to which said first active element and said second active element are sequentially responsive.
- 164. A programmable processor power supply as described in claim 162 wherein said buck converter elements comprise an element selected from a group consisting of:
a switch element, a diode element, a buck converter element having two switch elements, and a buck converter element having a switch element and a diode element.
- 165. A programmable processor power supply as described in claim 139, 145, or 153 wherein said power inputs comprise an element selected from a group consisting of: an isolated source, an interleaved switched voltage source, a bipolar source, an interleaved bipolar source, any permutations or combinations of the foregoing, an isolated source with substantially only a regulation delta filter element, an interleaved switched voltage source with substantially only a regulation delta filter element, a bipolar source with substantially only a regulation delta filter element, an interleaved bipolar source with substantially only a regulation delta filter element, an isolated source with substantially only a parasitic element filter, an interleaved switched voltage source with substantially only a parasitic element filter, a bipolar source with substantially only a parasitic element filter, and an interleaved bipolar source with substantially only a parasitic element filter.
- 166. A programmable processor power supply as described in claim 162 wherein said high current, low voltage power output comprises a high current, low voltage power output selected from a group consisting of:
a low voltage output of less than about 2, 1.8, 1.5, 1.3, 1.0, or 0.4V, an output having a maximum current of greater than about 20, 50, 100, or 200 amps, an output having a voltage of less than about 2, 1.8, 1.5, 1.3, 1.0, or 0.4V and a maximum current of greater than about 20, 50, 100, or 200 amps in any combination, a high rate of current change output, a typical current change of greater than about 0.1, 1, 5, or 10 A/ns output, and a power output where the voltage drop of the output conductor is significant relative to the voltage delivered.
- 167. A programmable processor power supply as described in claim 166 wherein said high current, low voltage power output comprises a high current, low voltage power output selected from a group consisting of:
an output inductance less than about {fraction (1/10)}, {fraction (1/100)}, or {fraction (1/1000)} of said input inductance, an output with an inductance less than about 50 nH, an output with an inductance less than about 20 nH, an output with an inductance less than about 10 nH, an output with an inductance less than about 2 nH, and wherein said inputs are effected by elements selected from a group consisting of: an effective input inductance greater than about 100 nH, an effective input inductance greater than about 200 nH, an effective input inductance greater than about 500 nH, and an effective input inductance greater than about 1000 nH.
- 168. A programmable processor power supply as described in claim 167 wherein said power inputs comprise an element selected from a group consisting of: an isolated source, an interleaved switched voltage source, a bipolar source, an interleaved bipolar source, any permutations or combinations of the foregoing, an isolated source with substantially only a regulation delta filter element, an interleaved switched voltage source with substantially only a regulation delta filter element, a bipolar source with substantially only a regulation delta filter element, an interleaved bipolar source with substantially only a regulation delta filter element, an isolated source with substantially only a parasitic element filter, an interleaved switched voltage source with substantially only a parasitic element filter, a bipolar source with substantially only a parasitic element filter, and an interleaved bipolar source with substantially only a parasitic element filter.
- 169. A programmable processor power supply as described in claim 139, 145, or 153 wherein said combiner network comprises a magnetic coupling.
- 170. A programmable processor power supply as described in claim 169 wherein said combiner network comprises transformer circuitry.
- 171. A programmable processor power supply as described in claim 170 wherein said transformer circuitry comprises a reduced magnetic field stored energy transformer.
- 172. A programmable processor power supply as described in claim 170 wherein said transformer circuitry comprises a non-air gap transformer.
- 173. A programmable processor power supply as described in claim 170 wherein said transformer circuitry comprises a substantially coincident transformer.
- 174. A programmable processor power supply as described in claim 170 wherein said transformer circuitry comprises a substantially insaturable transformer.
- 175. A programmable processor power supply as described in claim 172 wherein said high current, low voltage power output comprises a high current, low voltage power output selected from a group consisting of:
a low voltage output of less than about 2, 1.8, 1.5, 1.3, 1.0, or 0.4V, an output having a maximum current of greater than about 20, 50, 100, or 200 amps, an output having a voltage of less than about 2, 1.8, 1.5, 1.3, 1.0, or 0.4V and a maximum current of greater than about 20, 50, 100, or 200 amps in any combination, a high rate of current change output, a typical current change of greater than about 0.1, 1, 5, or 10 A/ns output, and a power output where the voltage drop of the output conductor is significant relative to the voltage delivered.
- 176. A programmable processor power supply as described in claim 175 wherein said high current, low voltage power output comprises a high current, low voltage power output selected from a group consisting of:
an output inductance less than about {fraction (1/10)}, {fraction (1/100)}, or {fraction (1/1000)} of said input inductance, an output with an inductance less than about 50 nH, an output with an inductance less than about 20 nH, an output with an inductance less than about 10 nH, an output with an inductance less than about 2 nH, and wherein said inputs are effected by elements selected from a group consisting of: an effective input inductance greater than about 100 nH, an effective input inductance greater than about 200 nH, an effective input inductance greater than about 500 nH, and an effective input inductance greater than about 1000 nH.
- 177. A programmable processor power supply as described in claim 176 wherein said power inputs comprise buck converter elements.
- 178. A programmable processor power supply as described in claim 139, 145, or 153 wherein said combiner network comprises a reverse polarity element.
- 179. A programmable processor power supply as described in claim 178 wherein said reverse polarity element comprises a reverse polarity transformer.
- 180. A programmable processor power supply as described in claim 179 wherein said reverse polarity transformer comprises:
a. a first coil having a positive side; b. a second coil having a negative side; c. a connection between said positive side of said first coil and said negative side of said second coil; and d. a magnetic coupling between said first and second coils.
- 181. A programmable processor power supply as described in claim 172 wherein said combiner network comprises a reverse polarity transformer.
- 182. A programmable processor power supply as described in claim 173 wherein said combiner network comprises a reverse polarity transformer.
- 183. A programmable processor power supply as described in claim 179 wherein said high current, low voltage power output comprises a high current, low voltage power output selected from a group consisting of:
a low voltage output of less than about 2, 1.8, 1.5, 1.3, 1.0, or 0.4V, an output having a maximum current of greater than about 20, 50, 100, or 200 amps, an output having a voltage of less than about 2, 1.8, 1.5, 1.3, 1.0, or 0.4V and a maximum current of greater than about 20, 50, 100, or 200 amps in any combination, a high rate of current change output, a typical current change of greater than about 0.1, 1, 5, or 10 A/ns output, and a power output where the voltage drop of the output conductor is significant relative to the voltage delivered.
- 184. A programmable processor power supply as described in claim 183 wherein said high current, low voltage power output comprises a high current, low voltage power output selected from a group consisting of:
an output inductance less than about {fraction (1/10)}, {fraction (1/100)}, or {fraction (1/1000)} of said input inductance, an output with an inductance less than about 50 nH, an output with an inductance less than about 20 nH, an output with an inductance less than about 10 nH, an output with an inductance less than about 2 nH, and wherein said inputs are effected by elements selected from a group consisting of: an effective input inductance greater than about 100 nH, an effective input inductance greater than about 200 nH, an effective input inductance greater than about 500 nH, and an effective input inductance greater than about 1000 nH.
- 185. A programmable processor power supply as described in claim 184 wherein said power inputs comprise buck converter elements.
- 186. A programmable processor power supply as described in claim 139, 145, or 153 wherein said power inputs comprise at least three power inputs and further comprising a tiered coupling of said at least three power inputs.
- 187. A programmable processor power supply as described in claim 186 wherein said tiered coupling comprises:
a. a first order connection network having a plurality of first order inputs and a first order output; and b. a second order connection network having a plurality of second order inputs and which outputs said first order inputs.
- 188. A programmable processor power supply as described in claim 187 wherein said tiered coupling further comprises a third order connection network having a plurality of third order inputs and which outputs said second order inputs.
- 189. A programmable processor power supply as described in claim 188 wherein said tiered coupling further comprises a fourth order connection network having a plurality of fourth order inputs and which outputs said third order inputs.
- 190. A programmable processor power supply as described in claim 186 wherein said tiered coupling comprises components selected from a group consisting of: magnetically coupled and series connected inductor elements, magnetically coupled inductor elements, transformers, transformers connected in part to a power input and in part to another of said transformers, magnetically coupled and series connected inductor elements linking multiple power inputs, unequal transformers, equal transformers, and transformers linking multiple power inputs.
- 191. A programmable processor power supply as described in claim 186 wherein said tiered coupling comprises:
a. a first power input; b. a second power input connected to said first power input by first and second inductor elements connected at a first intermediate series connection; c. a magnetic coupling between said first and second inductor elements; d. a first intermediate output from said first intermediate series connection; e. a third power input; f. a fourth power input connected to said third power input by third and fourth inductor elements connected at a second intermediate series connection; g. a magnetic coupling between said third and fourth inductor elements; h. a second intermediate output from said second intermediate series connection; i. fifth and sixth inductor elements connecting said first intermediate output and said second intermediate output and connected at a third intermediate series connection; j. a magnetically coupling between said fifth and sixth inductor elements; and k. a power output from said third intermediate series connection.
- 192. A programmable processor power supply as described in claim 186 wherein said tiered coupling comprises:
a. a first power input connected to a first transformer; b. a second power input connected to a second transformer; c. a third power input connected to a third transformer; d. a fourth power input connected to a fourth transformer; e. a connection between said first transformer and said second transformer; f. a connection between said second transformer and said third transformer; g. a connection between said third transformer and said fourth transformer; h. a connection between said fourth transformer and said first transformer; i. a connection between said first transformer and a common intermediate output; j. a connection between said second transformer and said common intermediate output; k. a connection between said third transformer and said common intermediate output; l. a connection between said fourth transformer and said common intermediate output; m. a connection between said intermediate output to a filter element; and n. a power output connected to said filter element.
- 193. A programmable processor power supply as described in claim 192 wherein said
connection between said first transformer and said second transformer, connection between said second transformer and said third transformer, connection between said third transformer and said fourth transformer, and connection between said fourth transformer and said first transformer each have an input side to their respective transformers, and wherein said connection between said first transformer and said second transformer, connect ion between said second transformer and said third transformer, connection between said third transformer and said fourth transformer, and connection between said fourth transformer and said first transformer each comprise a connection between said input side to an adjacent transformer, and wherein said connection between said first transformer and said second transformer, connection between said second transformer and said third transformer, connection between said third transformer and said fourth transformer, and connection between said fourth transformer and said first transformer each comprise a reverse polarity transformer connection.
- 194. A programmable processor power supply as described in claim 160 wherein said power inputs comprise at least three power inputs and further comprising a tiered coupling of said at least three power inputs.
- 195. A programmable processor power supply as described in claim 162 wherein said power inputs comprise at least three power inputs and further comprising a tiered coupling of said at least three power inputs.
- 196. A programmable processor power supply as described in claim 165 wherein said power inputs comprise at least three power inputs and further comprising a tiered coupling of said at least three power inputs.
- 197. A programmable processor power supply as described in claim 166 wherein said power inputs comprise at least three power inputs and further comprising a tiered coupling of said at least three power inputs.
- 198. A programmable processor power supply as described in claim 172 wherein said power inputs comprise at least three power inputs and further comprising a tiered coupling of said at least three power inputs.
- 199. A programmable processor power supply as described in claim 139, 145, or 153 and further comprising a substantially uninterrupted sequenced conduction drive element to which said power inputs are responsive.
- 200. A programmable processor power supply as described in claim 199 wherein said substantially uninterrupted sequenced conduction drive element is substantially centered at a constant conduction timing.
- 201. A programmable processor power supply as described in claim 139, 145, or 153 and further comprising a multiphase drive element to which said power inputs are responsive.
- 202. A programmable processor power supply as described in claim 160 and further comprising a substantially uninterrupted sequenced conduction drive element to which said power inputs are responsive.
- 203. A programmable processor power supply as described in claim 202 wherein said substantially uninterrupted sequenced conduction drive element is substantially centered at a constant conduction timing.
- 204. A programmable processor power supply as described in claim 160 and further comprising a multiphase drive element to which said power inputs are responsive.
- 205. A programmable processor power supply as described in claim 161 and further comprising a substantially uninterrupted sequenced conduction drive element to which said power inputs are responsive.
- 206. A programmable processor power supply as described in claim 205 wherein said substantially uninterrupted sequenced conduction drive element is substantially centered at a constant conduction timing.
- 207. A programmable processor power supply as described in claim 161 and further comprising a multiphase drive element to which said power inputs are responsive.
- 208. A programmable processor power supply as described in claim 162 and further comprising a substantially uninterrupted sequenced conduction drive element to which said power inputs are responsive.
- 209. A programmable processor power supply as described in claim 208 wherein said substantially uninterrupted sequenced conduction drive element is substantially centered at a constant conduction timing.
- 210. A programmable processor power supply as described in claim 162 and further comprising a multiphase drive element to which said power inputs are responsive.
- 211. A programmable processor power supply as described in claim 166 and further comprising a substantially uninterrupted sequenced conduction drive element to which said power inputs are responsive.
- 212. A programmable processor power supply as described in claim 211 wherein said substantially uninterrupted sequenced conduction drive element is substantially centered at a constant conduction timing.
- 213. A programmable processor power supply as described in claim 166 and further comprising a multiphase drive element to which said power inputs are responsive.
- 214. A programmable processor power supply as described in claim 172 and further comprising a substantially uninterrupted sequenced conduction drive element to which said power inputs are responsive.
- 215. A programmable processor power supply as described in claim 214 wherein said substantially uninterrupted sequenced conduction drive element is substantially centered at a constant conduction timing.
- 216. A programmable processor power supply as described in claim 172 and further comprising a multiphase drive element to which said power inputs are responsive.
- 217. A programmable processor power supply as described in claim 178 and further comprising a substantially uninterrupted sequenced conduction drive element to which said power inputs are responsive.
- 218. A programmable processor power supply as described in claim 217 wherein said substantially uninterrupted sequenced conduction drive element is substantially centered at a constant conduction timing.
- 219. A programmable processor power supply as described in claim 178 and further comprising a multiphase drive element to which said power inputs are responsive.
- 220. A programmable processor power supply as described in claim 186 and further comprising a substantially uninterrupted sequenced conduction drive element to which said power inputs are responsive.
- 221. A programmable processor power supply as described in claim 220 wherein said substantially uninterrupted sequenced conduction drive element is substantially centered at a constant conduction timing.
- 222. A programmable processor power supply as described in claim 186 and further comprising a multiphase drive element to which said power inputs are responsive.
- 223. A programmable processor power supply as described in claim 165 and further comprising a substantially uninterrupted sequenced conduction drive element to which said power inputs are responsive.
- 224. A programmable processor power supply as described in claim 223 wherein said substantially uninterrupted sequenced conduction drive element is substantially centered at a constant conduction timing.
- 225. A programmable processor power supply as described in claim 165 and further comprising a multiphase drive element to which said power inputs are responsive.
- 226. A programmable processor power supply as described in claim 170 and further comprising a series inductive element responsive to said transformer circuitry and to which said programmable processor is responsive.
- 227. A programmable processor power supply as described in claim 139,145, or 153 and further comprising a series inductive element responsive to said combiner network and to which said programmable processor is responsive.
- 228. A programmable processor power supply as described in claim 227 wherein said series inductive element responsive comprises an uncoupled inductive element.
- 229. A programmable processor power supply as described in claim 228 wherein said uncoupled inductive element comprises an affirmatively utilized inherent output inductance.
- 230. A programmable processor power supply as described in claim 165 and further comprising an affirmatively utilized inherent output inductance responsive to said transformer circuitry and to which said programmable processor is responsive.
- 231. A programmable processor power supply as described in claim 139, 145, or 153 wherein said combiner network comprises an algebraic mean combiner network.
- 232. wherein said combiner network comprises an algebraic average combiner network.
- 233. A programmable processor power supply as described in claim 139, 145, or 153 wherein said programmable processor comprises a programmable processor selected from a group consisting of:
at least a portion of a computer system, a microprocessor, a computer component, a microprocessor running at at least hundreds of megahertz, a microprocessor running at at least 1, 2, 5, or 10 gigahertz, memory management circuitry, graphic display circuitry, input-output circuitry, a central processing element, telecommunication circuitry, radar circuitry, and vehicle power circuitry.
- 234. A method of powering electronic circuitry comprising the steps of: providing an input voltage;
a. switching said input voltage with at least two electronic switches operating at a frequency, each of said electronic switches having an on time, during which a voltage across said electronic switch is substantially zero, an off time, during which a current through said electronic switch is substantially zero, and a transition time between said on time and said off time which is substantially less than said on time and said off time; b. producing switched waveforms from said at least two electronic switches; c. combining said switched waveforms in a network to produce an average waveform which is the algebraic mean of said switched waveforms; and d. applying said average waveform to a filter to produce an output voltage which is substantially without time variation.
- 235. A method of powering electronic circuitry comprising the steps of:
a. providing an input voltage; b. switching said input voltage with at least two power conversion stages each comprising at least two electronic switches operating at a frequency, each of said electronic switches having an on time, during which a voltage across said electronic switch is substantially zero, an off time, during which a current through said electronic switch is substantially zero, and transition time between said on time and said off time which is substantially less than said on time and said off time, c. producing switched waveforms from said at least two electronic switches; d. combining said switched waveforms in a network to produce a combined current output, such that electrical current flowing in said power conversion stages is at all times equalized; and e. applying said combined current output to a filter to produce an output voltage which is substantially without time variation.
- 236. A multiphase power converter comprising:
a. at least two power conversion stages each comprising:
at least two electronic switches operating at a frequency, each of said electronic switches having an on time, during which a voltage across said electronic switch is substantially zero, an off time, during which a current through said electronic switch is substantially zero, and a transition time between said on time and said off time which is substantially less than said on time and said off time, said at least two electronic switches producing switched waveforms; b. a network of combining elements which combine said switched waveforms into a combined waveform which comprises the algebraic average of said switched waveforms; and c. an output filter which converts said combined waveform into an output voltage which is substantially without time variation.
- 237. A multiphase power converter comprising:
a. at least two power conversion stages each comprising:
at least two electronic switches operating at a frequency, each of said electronic switches having an on time, during which a voltage across said electronic switch is substantially zero, an off time, during which the current through said electronic switch is substantially zero, and transition time between said on time and said off time which is substantially less than said on time and said off time, said at least two electronic switches producing switched waveforms; b. a network of combining elements which combine said switched waveforms such that electrical current flowing in said at least two power conversion stages is at all times equalized; and c. an output filter which converts said combined waveform into an output voltage which is substantially without time variation.
- 238. A multiphase power converter as described in claims 236 or 237 wherein said at least two power conversion stages are buck converters.
- 239. A multiphase power converter as described in claims 236 or 237 wherein said network of combining elements are transformers.
- 240. A multiphase power converter as described in claims 236 or 237 wherein said output filter comprises a series combination of an inductor and a capacitor.
- 241. A multiphase power converter as described in claims 240 wherein the ratio of a ripple voltage across said inductor to an input voltage is smaller by a factor equal to the number of said at least two power conversion stages.
- 242. A multiphase power converter as described in claims 236 or 237 wherein a ripple current in each of said power conversion stages alternates with a period less than the sum of said on time and said off time.
- 243. A multiphase power converter as described in claims 236 or 237 wherein a ripple current in each of said power conversion stages has an amplitude smaller than a ripple current in said output filter.
Parent Case Info
[0001] This application is a continuation-in-part of U.S. patent application Ser. No. 09/641,584 filed Aug. 18, 2000, and assigned to the assignee of the present application.
Continuation in Parts (1)
|
Number |
Date |
Country |
Parent |
09641584 |
Aug 2000 |
US |
Child |
09932032 |
Aug 2001 |
US |