Claims
- 1. A wireless communications transmitter circuit comprising, in combination:
a local oscillator for producing a signal at a multiple of an intermediate frequency; a quadrature modulator harmonic rejection mixer responsive to the signal at the multiple of the intermediate frequency for modulating an in-phase base-band signal and a quadrature-phase base-band signal to produce an intermediate frequency signal; a filter responsive to the intermediate frequency signal for producing a filtered intermediate frequency signal; and an RF output offset phase-locked loop responsive to the filtered intermediate frequency signal and responsive to the signal at the multiple of the intermediate frequency for producing an RF transmission signal.
- 2. The wireless communications transmitter circuit as claimed in claim 1, wherein the local oscillator produces a frequency equal to a frequency of the RF transmission signal multiplied by said multiple and divided by a sum of one plus the multiple.
- 3. The wireless communications transmitter circuit as claimed in claim 2, wherein the local oscillator includes a phase locked loop and a voltage-controlled oscillator.
- 4. The wireless communications transmitter circuit as claimed in claim 3, wherein the phase-locked loop is an integer-N phase-locked loop.
- 5. The wireless communications transmitter circuit as claimed in claim 3, wherein the phase-locked loop is a fractional-N phase-locked loop.
- 6. The wireless communications transmitter circuit as claimed in claim 1, wherein the local oscillator is switchable for changing the intermediate frequency by a factor of two, and the filter is switchable for producing a filtered intermediate frequency signal when the intermediate frequency is changed by a factor of two.
- 7. The wireless communications transmitter circuit as claimed in claim 1, wherein the filter is a third order low pass filter.
- 8. The wireless communications transmitter circuit as claimed in claim 1, wherein the filter is a fourth order low pass filter.
- 9. The wireless communications transmitter as claimed in claim 1, wherein the quadrature modulator harmonic mixer includes a shift register counter for producing multiple phases of a digital signal at the intermediate frequency, and multiple Gilbert cells, each of the Gilbert cells being responsive to a respective phase of the digital signal at the intermediate frequency.
- 10. The wireless communications transmitter as claimed in claim 1, wherein the RF output offset phase-locked loop includes a voltage-controlled oscillator responsive to a frequency control signal for producing the RF transmission signal, an offset mixer for down-converting the RF transmission signal with the signal at the multiple of the intermediate frequency to produce a difference frequency signal, and a phase detector for comparing phase of the difference frequency signal with phase of the filtered intermediate frequency signal to produce the frequency control signal.
- 11. The wireless communications transmitter circuit as claimed in claim 10 and 11, wherein the offset mixer is a double balanced mixer.
- 12. The wireless communications transmitter circuit as claimed in claim 10 and 11, wherein the offset mixer is an image reject double balanced mixer.
- 13. The wireless communications transmitter as claimed in claim 1, wherein the RF output offset phase-locked loop includes a voltage-controlled oscillator responsive to a frequency control signal for producing the RF transmission signal, an offset mixer for down-converting the RF transmission signal with the filtered intermediate frequency signal to produce a difference frequency signal, and a phase detector for comparing phase of the difference frequency signal with phase of the signal at the multiple of the intermediate frequency to produce the frequency control signal.
- 14. The wireless communications transmitter circuit as claimed in claim 13 and 11, wherein the offset mixer is a double balanced mixer.
- 15. The wireless communications transmitter circuit as claimed in claim 13 and 11, wherein the offset mixer is an image reject double balanced mixer.
- 16. A wireless communications transmitter circuit comprising, in combination:
a local oscillator for producing a signal at four times an intermediate frequency; a quadrature modulator harmonic rejection mixer responsive to the signal at four times the intermediate frequency for modulating an in-phase base-band signal and a quadrature-phase base-band signal to produce an intermediate frequency signal; a filter responsive to the intermediate frequency signal for producing a filtered intermediate frequency signal; and an RF output offset phase-locked loop responsive to the filtered intermediate frequency signal and responsive to the signal at four times the intermediate frequency for producing an RF transmission signal; wherein the local oscillator includes a phase-locked loop having digital circuits for channel selection.
- 17. The wireless communications transmitter circuit as claimed in claim 16, wherein the local oscillator produces a frequency equal to a frequency of the RF transmission signal multiplied by said multiple and divided by a sum of one plus the multiple.
- 18. The wireless communications transmitter circuit as claimed in claim 16, wherein the local oscillator includes phase locked loop and a voltage-controlled oscillator.
- 19. The wireless communications transmitter circuit as claimed in claim 16, wherein the the local oscillator includes a flip-flop producing a signal at one-half of the frequency produced by the voltage-controlled oscillator, a multiplexer having a first input coupled to the voltage-controlled oscillator, a second input coupled to the flip-flop, and an output for providing the signal at four times the intermediate frequency, and the multiplexer is responsive to a select signal for selecting either the frequency produced by the voltage-controlled oscillator or one-half of the frequency produced by the voltage-controlled oscillator to be four times the IF local oscillator frequency.
- 20. The wireless communications transmitter circuit as claimed in claim 16, wherein the local oscillator is switchable for changing the intermediate frequency by a factor of two, and the filter is switchable for producing a filtered intermediate frequency signal when the intermediate frequency is changed by a factor of two.
- 21. The wireless communications transmitter circuit as claimed in claim 16, wherein the filter is a third order low pass filter.
- 22. The wireless communications transmitter circuit as claimed in claim 16, wherein the filter is a fourth order low pass filter.
- 23. The wireless communications transmitter as claimed in claim 16, wherein the quadrature modulator harmonic mixer includes a shift register counter having four gated latches and six Gilbert cells, each of the four gated latches produces a respective one of four phases of a digital signal at the intermediate frequency, and each of the Gilbert cells is responsive to a respective phase of the digital signal at the intermediate frequency.
- 24. The wireless communications transmitter as claimed in claim 16, wherein the RF output offset phase-locked loop includes a voltage-controlled oscillator responsive to a frequency control signal for producing the RF transmission signal, an offset mixer for down-converting the RF transmission signal with the signal at four times the intermediate frequency to produce a difference frequency signal, and a phase detector for comparing phase of the difference frequency signal with phase of the filtered intermediate frequency signal to produce the frequency control signal.
- 25. The wireless communications transmitter as claimed in claim 16, wherein the RF output offset phase-locked loop includes a voltage-controlled oscillator responsive to a frequency control signal for producing the RF transmission signal, an offset mixer for down-converting the RF transmission signal with the filtered intermediate frequency signal to produce a difference frequency signal, and a phase detector for comparing phase of the difference frequency signal with phase of the signal at four times the intermediate frequency to produce the frequency control signal.
- 26. A wireless communications transceiver circuit comprising, in combination:
a local oscillator including a channel-selecting voltage-controlled oscillator for producing a signal at a multiple of an intermediate frequency for transmission and for producing a receiver local oscillator signal; a quadrature modulator responsive to the signal at the multiple of the intermediate frequency for modulating an in-phase base-band signal and a quadrature-phase base-band signal for producing an intermediate frequency signal; an RF output offset phase-locked loop responsive to the intermediate frequency signal and responsive to the signal at the multiple of the intermediate frequency for producing an RF transmission signal; and a direct conversion receiver responsive to the receiver local oscillator signal; wherein the local oscillator includes a receiver local oscillator generator circuit for producing the receiver local oscillator signal responsive to channel selection by the channel-selecting voltage-controlled oscillator.
- 27. The wireless transceiver as claimed in claim 26, wherein the receiver local oscillator generator circuit includes a divider for dividing the frequency produced by the channel selection voltage-controlled oscillator by four, and a single sideband mixer responsive to the divider and the channel selection voltage control oscillator for scaling the frequency produced by the channel selection voltage control oscillator by a factor of five divided by four.
- 28. The wireless transceiver circuit as claimed in claim 27, wherein the receiver local oscillator generator circuit further includes a flip-flop for producing a signal at one-half of a frequency produced by the single sideband mixer and a multiplexer having a first input coupled to the single sideband mixer, a second input coupled to the flip-flop, and an output for providing the receiver local oscillator signal to the direct conversion receiver, and the multiplexer is responsive to a select signal for selecting either the frequency produced by the single sideband mixer or one-half of the frequency produced by the single sideband mixer to be the receiver local oscillator frequency signal.
- 29. A plural-band wireless communications transceiver circuit for EGSM and DCS or PCS operation comprising, in combination:
a local oscillator including a channel-selecting voltage-controlled oscillator for producing a signal at a multiple of an intermediate frequency for the transmitter, the intermediate frequency being switchable between EGSM operation and DCS or PCS operation; a quadrature modulator harmonic rejection mixer responsive to the signal at the multiple of the intermediate frequency for modulating an in-phase base-band signal and a quadrature-phase base-band signal for producing an intermediate frequency signal; a switchable filter responsive to the intermediate frequency signal for producing a filtered intermediate frequency signal, the switchable filter being switchable between EGSM transmission and DCS or PCS transmission; an RF output offset phase-locked loop responsive to the filtered intermediate frequency signal and responsive to the signal at the multiple of the intermediate frequency for producing an RF transmission signal; and a direct conversion receiver responsive to the local oscillator signal for EGSM reception and DCS or PCS reception; wherein the local oscillator includes a receiver local oscillator generator circuit for producing a receiver local oscillator signal responsive to channel selection by the channel-selecting voltage-controlled oscillator.
- 30. The wireless transceiver as claimed in claim 29, wherein the receiver local oscillator generator circuit includes a divider for dividing the frequency produced by the channel selection voltage-controlled oscillator by four, and a single sideband mixer responsive to the divider and the channel selection voltage control oscillator for scaling the frequency produced by the channel selection voltage control oscillator by a factor of five divided by four.
- 31. The wireless transceiver circuit as claimed in claim 29, wherein the receiver local oscillator generator circuit further includes a flip-flop for producing a signal at one-half of the frequency produced by the single sideband mixer and a multiplexer having a first input coupled to the single sideband mixer, a second input coupled to the flip-flop, and an output for providing the receive local oscillator signal for the direct conversion receiver, and the multiplexer is responsive to a select signal for selecting either the frequency produced by the single sideband mixer or one-half of the frequency produced by the single sideband mixer to be the receiver local oscillator frequency signal.
- 32. A plural-band wireless communications transceiver circuit for EGSM operation and DCS or PCS operation comprising, in combination:
a channel-selecting voltage-controlled oscillator; a two-step up-conversion plural-band wireless transmitter for EGSM transmission and DCS or PCS transmission upon a transmission channel selected by the channel-selecting voltage-controlled oscillator; and a direct-conversion plural-band wireless receiver for EGSM reception and DCS or PCS reception of a reception channel selected by the channel-selecting voltage-controlled oscillator.
- 33. The transceiver circuit as claimed in claim 32, wherein the wireless transmitter includes: a quadrature modulator harmonic rejection mixer for modulating an in-phase base-band signal and a quadrature-phase base-band signal for producing an intermediate frequency signal; a switchable filter responsive to the intermediate frequency signal for producing a filtered intermediate frequency signal, the switchable filter being switchable between EGSM transmission and DCS or PCS transmission; and an RF output offset phase-locked loop responsive to the filtered intermediate frequency signal for producing an RF transmission signal.
- 34. The wireless transceiver as claimed in claim 33, wherein the switchable filter is a third-order low pass filter.
- 35. The wireless transceiver as claimed in claim 33, wherein the switchable filter is a fourth-order low pass filter.
- 36 The wireless transceiver as claimed in claim 33, wherein for EGSM and DCS or PCS operation, the local oscillator produces a signal at a frequency of four times a local oscillator frequency of the quadrature modulator harmonic rejection mixer, the quadrature modulator harmonic rejection mixer divides the frequency of the signal produced by the channel-selecting voltage-controlled oscillator by four, and the RF offset phase-lock loop is responsive to the signal produced by the channel-selecting voltage-controlled oscillator to produce an RF transmission frequency at five-fourths of the frequency of the signal produced by the channel-selecting voltage-controlled oscillator.
- 37. The transceiver circuit as claimed in claim 33, wherein the wireless transceiver includes a receiver local oscillator generator circuit and a direct conversion receiver.
- 38. The wireless transceiver as claimed in claim 37, wherein the receiver local oscillator generator circuit includes a divider for dividing the frequency produced by the channel selection voltage-controlled oscillator by four, and a single sideband mixer responsive to the divider and the channel selection voltage control oscillator for scaling the frequency produced by the channel selection voltage control oscillator by a factor of five divided by four.
- 39. The wireless transceiver circuit as claimed in claim 38, wherein the receive local oscillator generator circuit further includes a flip-flop for producing a signal at one-half of the frequency produced by the single sideband mixer and a multiplexer having a first input coupled to the single sideband mixer, a second input coupled to the flip-flop, and an output for providing the receiver local oscillator signal for the direct conversion receiver, and the multiplexer is responsive to a select signal for selecting either the frequency produced by the single sideband mixer or one-half of the frequency produced by the single sideband mixer to be the receiver local-oscillator frequency signal.
RELATED APPLICATIONS
[0001] This Application claims priority to U.S. Provisional Application Serial No. 60/651,869, filed on Jan. 25, 2002.
Provisional Applications (1)
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Number |
Date |
Country |
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60351869 |
Jan 2002 |
US |