Claims
- 1. A distributed active transformer comprising:
a primary winding having one or more pairs of amplifiers; a secondary winding disposed adjacent to the primary winding; and wherein the primary winding and the secondary winding are disposed on a semiconductor substrate.
- 2. The distributed active transformer of claim 1 further comprising one or more switches that can be used to bypass one or more of the amplifiers.
- 3. The distributed active transformer of claim 1 wherein the primary winding further comprises:
two or more sections, wherein each section terminates in one of the pairs of amplifiers; and a switch connected to one of the amplifiers from the first section and to one of the amplifiers from the second section, wherein the switch can be used to bypass the amplifier from the first section and the amplifier from the second section so as to combine two of the sections into a single section.
- 4. The distributed active transformer of claim 1 wherein the primary winding further comprises:
four sections, wherein each section terminates in one of the pairs of amplifiers; a first switch connected to one of the amplifiers from a first section and to one of the amplifiers from a second section, where the switch can be used to bypass the two push/pull amplifiers so connected; a second switch connected to another of the amplifiers from the second section and to one of the amplifiers from a third section, where the switch can be used to bypass the two amplifiers so connected; a third switch connected to another of the amplifiers from the third section and to one of the amplifiers from a fourth section, where the switch can be used to bypass the two amplifiers so connected; a fourth switch connected to another of the amplifiers from the fourth section and to another of the amplifiers from the first section, where the switch can be used to bypass the two amplifiers so connected; and wherein the distributed active transformer operates in a high power mode when all four switches are open, in a medium high power mode when three switches are open, in a medium low power mode when two switches are open, and in a low power mode when a single switch is open.
- 5. The distributed active transformer of claim 1 further comprising a second primary winding having one or more pairs of push/pull amplifiers, wherein the number of sets of push/pull amplifiers in the first primary winding is more than the number of sets of push/pull amplifiers in the second primary winding, and the distributed active transformer operates in a high power mode when the secondary primary winding is active and in a low power mode when the first primary winding is active.
- 6. The distributed active transformer of claim 1 further comprising a second primary winding, wherein the spacing between the second primary winding and the primary winding is increased so as to reduce power loss due to circulating currents in the second primary when the first primary is driven.
- 7. The distributed active transformer of claim 1 further comprising:
a second primary winding having one or more pairs of push/pull amplifiers; one or more switches connected to the second primary; and one or more capacitors, each capacitor connected to one of the switches, wherein the second primary winding can be placed in resonance by closing one or more of the switches.
- 8. The distributed active transformer of claim 7 further comprising a second primary winding, wherein the spacing between the second primary winding and the primary winding is adjusted so as to reduce power loss due to circulating currents when the first primary is driven.
- 9. The distributed active transformer of claim 1 further comprising:
a second primary winding having one or more pairs of push/pull amplifiers; a first switch connected to the first primary; a second switch connected to the second primary; a first capacitor connected to the first switch, wherein the first primary winding can be placed in resonance by closing the first switch; a second capacitor connected to the second switch, wherein the second primary winding can be placed in resonance by closing the second switch; and wherein the distributed active transformer operates in a first power mode when the first switch is closed and the second switch is open, and in a second power mode when the first switch is open and the second switch is closed.
- 10. The distributed active transformer of claim 9 further comprising a plurality of first switches and a corresponding plurality of first capacitors, each connected to one of the first switches and one of the push/pull amplifiers.
- 11. The distributed active transformer of claim 9 further comprising a plurality of first switch pairs and a corresponding plurality of first capacitor pairs, each connected to one of the first switches, and where each capacitor of the first capacitor pairs is connected to one of the amplifiers in one of the sets of push/pull amplifiers.
- 12. The distributed active transformer of claim 1 further comprising one or more additional primary windings.
- 13. A method for providing a distributed active transformer on a semiconductor substrate comprising:
controlling a first amplifier at a first point on a primary winding section and a second amplifier at a second point on the primary winding section so as to cause current to flow in a first direction on the primary winding section; controlling the first amplifier and the second amplifier so as to cause current to flow in a second direction on the primary winding section; and wherein the current flowing in the first direction and the second direction in the primary winding section induce an alternating current in a secondary winding.
- 14. The method of claim 13 further comprising providing a current source from a point between the first point and the second point.
- 15. The method of claim 13 further comprising controlling a third amplifier at a first point on a second primary winding section and a fourth amplifier at a second point on the second primary winding section so as to cause current to flow in the same direction on the second primary winding section as the current on the first primary winding section.
- 16. The method of claim 15 further comprising bypassing the second amplifier and the third amplifier so as to cause current to flow over a portion of the first primary winding section and the second primary winding section.
- 17. The method of claim 13 further comprising:
turning off the first amplifier and the second amplifier; and inducing an alternating current in the secondary winding using a second primary winding.
- 18. A distributed active transformer comprising:
a primary winding having two or more sections, where each section has a pair of push/pull amplifiers; a secondary winding disposed adjacent to the primary winding; and wherein the primary winding and the secondary winding are disposed on a semiconductor substrate.
- 19. The distributed active transformer of claim 18 wherein the push/pull amplifiers of each section can be independently controlled.
- 20. The distributed active transformer of claim 18 further comprising a second primary winding having one or more sets of push/pull amplifiers disposed adjacent to the secondary winding.
- 21. A system for amplifying a signal comprising:
a distributed active transformer having a primary and a secondary winding; and a low noise amplifier coupled to the secondary winding of the distributed active transformer through a switch.
- 22. The system of claim 21 wherein the system operates in a receive mode when the switch is opened and in a transmit mode when the switch is closed.
- 23. The system of claim 21 wherein the low noise amplifier is coupled to the distributed active transformer when the switch is opened and the low noise amplifier is bypassed when the switch is closed.
- 24. The system of claim 21 wherein the low noise amplifier comprises a differential low noise amplifier having a first input and a second input, and the secondary winding further comprises a first section coupled to the first input through the switch and a second section coupled to the second input through a second switch.
- 25. The system of claim 24 wherein the system operates in a receive mode when the switches are opened and in a transmit mode when the switches are closed.
- 26. The system of claim 24 wherein the low noise amplifier is coupled to the distributed active transformer when the switches are opened and the low noise amplifier is bypassed when the switches are closed.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application claims priority to provisional U.S. Patent Application serial No. 60/363,424, filed Mar. 11, 2002, and 09/974,578, filed Oct. 9, 2001 which are expressly incorporated by reference for all purposes.
Provisional Applications (1)
|
Number |
Date |
Country |
|
60363424 |
Mar 2002 |
US |
Continuation in Parts (1)
|
Number |
Date |
Country |
Parent |
09974578 |
Oct 2001 |
US |
Child |
10386001 |
Mar 2003 |
US |