Claims
- 1. A direct conversion circuit for radio frequency signals, said circuit comprising:
a pair of quadrature related mixers coupled to a radio frequency signal input port for mixing down radio frequency input signals residing within a first bandwidth; phase shift means in communication with at least one of said pair of mixers for phase shifting a local oscillator signal; and a local oscillator for producing said local oscillator signal, said local oscillator including non-integer frequency multiplier means for multiplying the frequency of a first voltage controlled oscillator signal by a first non-integer value to produce said local oscillator signal, said non-integer frequency multiplier means including a phase locked loop having a second bandwidth that is at least as large as the first bandwidth.
- 2. A direct conversion circuit as claimed in claim 1, wherein said phase locked loop includes a reference path, a feedback path, and a frequency divider device in at least one of said reference and feedback paths.
- 3. A direct conversion circuit as claimed in claim 1, wherein said phase locked loop includes a reference path, a feedback path, and a frequency divider in each of said reference and feedback paths.
- 4. A direct conversion circuit as claimed in claim 1, wherein said phase locked loop includes a second voltage controlled oscillator in a feedback path of said phase locked loop.
- 5. A direct conversion circuit as claimed in claim 1, wherein said local oscillator further includes a second voltage controlled oscillator on the same integrated circuit as said pair of quadrature mixers.
- 6. A direct conversion circuit as claimed in claim 1, wherein said local oscillator includes a second voltage controlled oscillator in a feedback path of said phase locked loop, said phase locked loop for removing spurious signals from said voltage controlled oscillator.
- 7. A direct conversion circuit as claimed in claim 1, wherein said local oscillator includes a phase sensitive detector that includes two input ports and an output port, one of said input ports being in communication with a reference path, and the other of said input ports being in communication with a feedback path that is coupled to said output port of said phase sensitive detector.
- 8. A direct conversion circuit as claimed in claim 7, wherein said reference path includes a voltage controlled oscillator and a frequency divider.
- 9. A direct conversion circuit as claimed in claim 7, wherein said feedback path includes a frequency divider.
- 10. A direct conversion circuit as claimed in claim 7, wherein said feedback path includes a second voltage controlled oscillator.
- 11. A direct conversion circuit as claimed in claim 1, wherein a value given by the first factor value divided by the second factor value is a second non-integer value.
- 12. A direct conversion circuit as claimed in claim 1, wherein the first factor value is 3 and the second factor value is 4.
- 13. A direct conversion receiver for receiving radio frequency signals, said receiver comprising:
a pair of quadrature related mixers coupled to a radio frequency signal input port for mixing down radio frequency input signals residing within a first bandwidth; phase shift means in communication with at least one of said pair of mixers for phase shifting a local oscillator signal; and a local oscillator for producing said local oscillator signal, said local oscillator including a first voltage controlled oscillator for producing a first oscillator signal, and a phase locked loop including a reference path and a feedback path, at least one of said reference and feedback paths including a frequency divider for multiplying the frequency of said first oscillator signal by a first non-integer, said phase locked loop having a second bandwidth that is at least as large as the first bandwidth.
- 14. A direct conversion receiver as claimed in claim 13, wherein each of said reference and feedback paths includes a frequency divider.
- 15. A direct conversion receiver as claimed in claim 13, wherein said phase locked loop includes a second voltage controlled oscillator in said feedback path.
- 16. A direct conversion circuit as claimed in claim 13, wherein a value given by the inverse of the first non-integer value is a second non-integer value.
- 17. A direct conversion circuit as claimed in claim 13, wherein the first non-integer value is {fraction (4/3)}.
- 18. A direct conversion receiver for receiving radio frequency signals, said receiver comprising:
a pair of quadrature related mixers coupled to a radio frequency signal input port for mixing down radio frequency input signals residing within a first bandwidth; phase shift means in communication with at least one of said pair of mixers for phase shifting a local oscillator signal; and a local oscillator for producing said local oscillator signal, said local oscillator including a first voltage controlled oscillator for producing a first oscillator signal, and a phase locked loop including a reference path and a feedback path, said reference path including a first frequency divider having a first factor value, and said feedback path including a second frequency divider having a second factor value, said local oscillator being characterized by a frequency that is defined by the frequency of said first voltage oscillator signal multiplied by a first non-integer value given by the second factor value divided by the first factor value, said phase locked loop having a second bandwidth that is at least as large as the first bandwidth.
- 19. A direct conversion circuit as claimed in claim 18, wherein a value given by the first factor value divided by the second factor value is also a second non-integer value.
- 20. A direct conversion circuit as claimed in claim 18, wherein the first factor value is 3 and the second factor value is 4.
- 21. A direct conversion circuit for radio frequency signals, said circuit comprising:
a pair of quadrature related mixers coupled to a radio frequency signal input port for mixing down radio frequency input signals having a frequency of f1 in a first mode of operation, and alternatively for mixing down radio frequency input signals of a second frequency f2 in a second mode of operation where f1=2f2; and a local oscillator for producing said local oscillator signal, said local oscillator including a phase locked loop frequency multiplier for multiplying the frequency of a first voltage controlled oscillator signal by {fraction (4/3)} while said circuit is operating in said first mode of operation, said phase locked loop frequency multiplier including a frequency divider for dividing the signal by an in integer that is a factor of 2 in the feedback path of the phase locked loop.
- 22. A direct conversion circuit as claimed in claim 21, wherein said first voltage controlled oscillator produces a signal having a frequency of about 1350 MHz.
- 23. A direct conversion circuit for radio frequency signals, said circuit comprising:
a pair of quadrature related mixers coupled to a radio frequency signal input port for mixing down radio frequency input signals of about 1800 MHz in a first mode of operation, and for mixing down radio frequency input signals of about 900 MHz in a second mode of operation; and a local oscillator for producing said local oscillator signal at a frequency of fLo, said local oscillator including a non-integer frequency multiplier means for multiplying the frequency of a first voltage controlled oscillator signal by a non-integer number greater than one while said circuit is operating in said first mode of operation, and for dividing the frequency of the first voltage oscillator by a non-integer number greater than one while said circuit is operating in said second mode of operation.
- 24. A direct conversion circuit as claimed in claim 23, wherein said voltage controlled oscillator produces a signal having a frequency of 1350 MHz.
- 25. A direct conversion circuit for radio frequency signals, said circuit comprising:
a pair of quadrature related mixers coupled to a radio frequency signal input port for mixing down radio frequency input signals of about 1800 MHz in a first mode of operation, and for mixing down radio frequency input signals of about 900 MHz in a second mode of operation; a phase shift device coupled to said pair of quadrature related mixers; a local oscillator for producing said local oscillator signal at a frequency of fLo, said local oscillator including a non-integer frequency multiplier means for multiplying the frequency of a first voltage controlled oscillator signal by a non-integer number; and a local oscillator path through which a local oscillator signal may pass from said local oscillator to said phase shift device, said local oscillator path including a local oscillator path switch and a frequency divider, the local oscillator path switch being movable between first and second positions such that said local oscillator signal may pass through said frequency divider when said switch is in said first position, and said local oscillator signal may by-pass said frequency divider when said switch is in said second position.
- 26. A direct conversion circuit as claimed in claim 25, wherein said frequency divider is a divide by two frequency divider.
- 27. A direct conversion circuit for radio frequency signals, said circuit comprising:
a pair of quadrature related mixers coupled to a radio frequency signal input port for mixing down radio frequency input signals of about 1800 MHz in a first mode of operation, and for mixing down radio frequency input signals of about 900 MHz in a second mode of operation; and a local oscillator for producing said local oscillator signal at a frequency of fLo, said local oscillator including a non-integer frequency multiplier means for multiplying the frequency of a first voltage controlled oscillator signal by a non-integer number, said non-integer frequency multiplier means including a feedback loop through which a feedback signal may pass, said feedback loop including first and second frequency dividers, and a switch that is movable between first and second positions, said feedback signal passing through both frequency dividers when said switch is in said first position, and said feedback signal passing through one of the first or second dividers when said switch is in said second position.
- 28. A direct conversion circuit as claimed in claim 27, wherein each of said first and second frequency dividers is a divide by two frequency divider.
- 29. A direct conversion circuit as claimed in claim 27, wherein said voltage controlled oscillator signal has a frequency of 1350 MHz., and said local oscillator provides non-integer frequency multiplication of {fraction (4/3)} while said circuit is operating in said first mode of operation, and provides non-integer frequency multiplication of ⅔ while said circuit is operating in said second mode of operation.
Parent Case Info
[0001] This patent application is a continuation-in-part patent application of U.S. Ser. No. 09/133,781 filed on Aug. 12, 1998.
Continuation in Parts (1)
|
Number |
Date |
Country |
Parent |
09133781 |
Aug 1998 |
US |
Child |
09785383 |
Feb 2001 |
US |