Claims
- 1. A resonant power converter comprising:
a pulse input source adapted to generate a plurality of pulses; a resonator operatively coupled to said pulse input source and having a resonant frequency at or substantially near a carrier frequency; and a transmission medium operatively coupled to said resonator's output and adapted to transmit a plurality of RF signals; wherein said resonator is further adapted to selectively reinforce at least portions of a plurality of said generated pulses so as to optimize the efficiency of said power converter.
- 2. A digitally actuated resonant power (DARP) converter comprising:
a noise-shaping encoder for receiving digital data at a clock rate Fc/L1 where L1 is a multiple of a carrier frequency Fc and encoding said digital data; a power supply, having a frequency at or substantially near DC; a resonator having a resonant frequency at or substantially near said carrier frequency Fc; a load impedance coupled to said resonator for receiving energy stored in said resonator; and a charging switch, said charging switch coupled to said noise-shaping encoder, said power supply, said resonator, and a clock having a clock rate L2Fc, where L2 is a multiple of said carrier frequency Fc, said charging switch adapted to: (i) receive encoded data from said noise-shaping encoder; (ii) sample the voltage or current of said power supply; and (iii) deliver said power supply voltage or current samples to said resonator.
- 3. A resonant power converter comprising:
a pulse input source adapted to generate a plurality of pulses; a resonator operatively coupled to said pulse input source and having a resonant frequency; noise shaping encoder apparatus operatively coupled to said resonator and being configured to suppress quantization noise at least at one frequency; and a transmission medium operatively coupled to said resonator's output and adapted to transmit a plurality of RF signals.
- 4. The converter of claim 3, wherein said noise shaping encoder apparatus is of the first-order.
- 5. A method of processing a plurality of data in an RF communications system, comprising:
filtering said data; and encoding said data such that quantization noise generated by said act of encoding is distributed substantially outside at least one frequency band of interest.
- 6. The method of claim 5, further comprising separating said data into first and second components before said acts of filtering and encoding.
- 7. The method of claim 6, wherein said act of separating into first and second components comprises separating into I and Q components.
- 8. The method of claim 6, further comprising:
quadrature modulating said encoded first and second components to form first and second modulated signals; and combining said signals.
- 9. The method of claim 5, further comprising quadrature modulating said filtered data before said act of encoding.
- 10. The method of claim 9, further comprising separating said data into first and second components before said act of filtering and modulating, and then combining said quadrature modulated and filtered signals before said encoding.
- 11. A digital power converter architecture useful in an RF device, comprising:
at least one first component adapted for data processing; and at least one second component adapted for RF signal generation; wherein said at least one first component is rendered in a first process different than a second process in which said at least one second component is rendered.
- 12. The architecture of claim 11, wherein said first process comprises CMOS, and said second process comprises a Group III-V compound semiconductors process.
- 13. The architecture of claim 11, wherein said at least one first component comprises a digital processor, and said at least one second component comprises at least one modulator and noise shaping encoder.
- 14. The architecture of claim 13, wherein said at least one first component is disposed on a CMOS device, and said at least one second component is disposed on a GaAs device.
- 15. The architecture of claim 14, further comprising serial-to-parallel and parallel-to-serial logic between said at least one first and second components.
- 16. A resonator architecture useful with an RF circuit, comprising:
a first resonator receiving input signals; a second resonator operatively coupled to and receiving signals from the output of said first resonator and generating a second output to a receiver; and a load impedance disposed between said first and second resonators adapted to facilitate transmission and/or reception of RF signals.
PRIORITY
[0001] This application claims priority benefit of U.S. provisional patent application Serial No. 60/361,812 entitled “RESONANT POWER CONVERTER FOR RADIO FREQUENCY TRANSMISSION AND METHOD” filed Mar. 4, 2002, which is incorporated by reference herein in its entirety.
[0002] This application is related to co-owned and co-pending U.S. patent application Ser. No. 10/______ entitled “CODER APPARATUS FOR RESONANT POWER CONVERSION AND METHOD” filed contemporaneously herewith, which claims priority benefit of U.S. provisional patent application Serial No. 60/361,813 of the same title filed Mar. 4, 2002, both of which are incorporated by reference herein in their entirety.
Provisional Applications (2)
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Number |
Date |
Country |
|
60361812 |
Mar 2002 |
US |
|
60361813 |
Mar 2002 |
US |