Claims
- 1. An analog phase modulator operable for linearly phase modulating an input signal in relation to an applied bias signal, said analog phase modulator comprising:
- a quadrature signal coupler having an input port for receiving an input signal,
- an output port for providing an output signal derived from said input signal,
- an in-phase terminating port,
- a quadrature phase-shifted terminating port, and
- an electrical ground;
- first and second variable reactance networks where each of said first and second variable reactance networks includes,
- first and second electrical node terminating means,
- a first transmission line segment having a first transmission line terminating end means coupled to said first electrical node terminating means through a series connected capacitance, and having a second transmission line terminating end means,
- a second transmission line segment having a first transmission line terminating end means electrically connected to said second terminating end means of said first transmission line segment, and having a second transmission line terminating end means electrically connected to said second electrical node terminating means,
- a first variable reactance means for providing a variable reactance which varies in relation to said applied bias signal, said variable reactance having a first reactance terminating means electrically connected to said first terminating end means of said second transmission line segment and a second reactance terminating means coupled to said electrical ground, and
- a second variable reactance means for providing a variable reactance which varies in relation to said applied bias signal, said variable reactance having a first reactance terminating means electrically connected to said second terminating end means of said second transmission line segment, and a second reactance terminating means coupled to said electrical ground;
- means for electrically connecting said first electrical node terminating means of said first variable reactance network directly to said in-phase terminating port;
- means for electrically connecting said first electrical node terminating means of said second variable reactance network directly to said phase-shifted terminating port; and
- a bias input port means for receiving said applied bias signal, said bias input port means electrically connected to said second electrical node terminating means of said first variable reactance network, and to said second electrical node terminating means of said second variable reactance network.
- 2. The analog phase modulator claim 1 further comprising:
- a first bias filter network including a third transmission line segment electrically connected between said bias means and said second electrical node terminating means of said first variable reactance network, and a fourth transmission line segment electrically connected as a shunt at the juncture of said third transmission line segment and said bias input port means; and
- a second bias filter network including a fifth transmission line segment electrically connected between said bias input port means and said electrical node terminating means of said second variable reactance network, and a sixth transmission line segment electrically connected as a shunt at the juncture of said fifth transmission line segment and said bias input port means.
- 3. The analog phase modulator of claim 2 is symmetrically implemented on a monolithic integrated circuit.
- 4. The analog phase modulator of claim 3 where in said first and second variable reactance means is a varactor diode selected from the group consisting of PN junction and Schottky junction varactor diodes including at least one semiconductor region, and wherein the capacitance voltage characteristic is predetermined in accordance with selected doping profiles of said at least one selected regions, and where said predetermined capacitance voltage characteristic is selected so as to compensate for other circuit component induced non-linearities and enhance linearity of phase modulating said input signal in proportion to said applied bias signal.
- 5. The analog phase modulator of claim 2 wherein in said second, third, and fifth transmission line segments have a length substantially equal to 1/4 of wavelength of the intended operating input signal frequency.
- 6. The analog phase modulator of claim 5 wherein:
- the characteristic impedance of said first and second transmission line segment is in the order of 50 ohms,
- the characteristic impedance of said third and fifth transmission line segments is greater than said characteristic impedance of said second transmission line segments, and
- the characteristic impedance of said fourth and sixth transmission line segments is less than said characteristic impedance of said second transmission line segments.
- 7. The analog phase modulator of claim 5 wherein:
- the characteristic impedance of said first and second transmission line segments is substantially 50 ohms,
- the characteristic impedance of said third and fifth transmission line segments is approximately 70 ohms, and
- the characteristic of said fourth and sixth transmission line segments is 30 ohms.
- 8. The analog phase modulator of claim 1 is symmetrically implemented on a monolithic integrated circuit.
- 9. The analog phase modulator claim 1 where in said second transmission line segment has a length substantially equal to 1/4 of the wavelength of the intended operating input signal.
- 10. The analog phase modulator of claim 1 wherein the characteristic impedance of said first and second transmission line segments is in order of 50 ohms.
- 11. The analog phase modulator of claim 1 where in each of said first and second variable reactance means is a varactor diode.
- 12. The analog phase modulator of claim 11 where in each of said first and second variable reactance means is a hyperabrupt varactor diode.
- 13. The analog phase modulator of claim 1 where in said first and second variable reactance means is a varactor diode having a selected capacitance voltage characteristic so as to compensate for other circuit component induced non-linearities and enhance linearity of phase modulating said input signal in proportion to said applied bias signal.
- 14. The analog phase modulator of claim 1 where in said first and second variable reactance means is a varactor diode selected from the group consisting of PN junction and Schottky junction varactor diodes including at least one semiconductor region, and wherein the capacitance voltage characteristic is predetermined in accordance with selected doping profiles of said at least one selected regions, and where said predetermined capacitance voltage characteristic is selected so as to compensate for other circuit component induced non-linearities and enhance linearity of phase modulating said input signal in proportion to said applied bias signal.
- 15. An analog phase modulator operable for linearly phase modulating an input signal in relation to an applied bias signal, said analog phase modulator comprising:
- a 3-port signal circulator having in sequence,
- an input port for receiving an input signal,
- a first output port, and
- a second output port for providing an output signal derived from said input signal, and
- said 3-port signal circulator further including an electrical ground;
- a variable reactance network including,
- first and second electrical node terminating means,
- a first transmission line segment having a first transmission line terminating end means coupled to said first electrical node terminating means through a series connected capacitance, and having a second transmission line terminating end means,
- a second transmission line segment having a first transmission line terminating end means electrically connected to said second terminating end means of said first transmission line segment, and having a second transmission line terminating end means electrically connected to said second electrical node terminating means,
- a first variable reactance means for providing a variable reactance which varies in relation to said applied bias signal, said variable reactance means having a first reactance terminating means electrically connected to said first terminating end means of said second transmission line segment, and a second reactance terminating means coupled to said electrical ground, and
- a second variable reactance means for providing a variable reactance which varies in relation to said applied bias signal, said variable reactance means having a first reactance terminating means electrically connected to said second transmission line terminating end means of said second transmission line segment, and a second reactance terminating means coupled to said electrical ground;
- means for electrically connecting said first electrical node terminating means of said variable reactance network directly to said first output port of said circulator; and
- a bias input port means for receiving said applied bias signal, said bias input port means electrically connected to said second electrical node terminating means of said variable reactance network.
- 16. The analog phase modulator of claim 15 where in said second transmission line segment has a length substantially equal to 1/4 of the wavelength of the intended operating input signal.
- 17. The analog phase modulator of claim 15 wherein the characteristic impedance of said first and second transmission line segment means is in the order of 50 ohms.
- 18. The analog phase modulator of claim 15 where in said first, second, and third transmission line segment means have a length substantially equal to the 1/4 wavelength of the intended operating input signal.
- 19. The analog phase modulator of claim 15 further comprising:
- a bias filter network including a third transmission line segment electrically connected between said bias input port and said second electrical node terminating means of said variable reactance network, and a fourth transmission line segment electrically connected as a shunt at the junction of said third transmission line segment and said bias input means.
- 20. The analog phase modulator of claim 19 wherein:
- the characteristic impedance of said first and second transmission line segment means is substantially 50 ohms,
- the characteristic impedance of said third transmission line segment means is approximately 70 ohms, and
- the characteristic impedance of said fourth transmission line segment means is 30 ohms.
- 21. The analog phase modulator of claim 19 wherein:
- the characteristic impedance of said first and second transmission line segment means is in the order of 50 ohms,
- the characteristic impedance of said third transmission line segment means is greater than said characteristic impedance of said second transmission line segment means, and
- the characteristic impedance of said fourth transmission line segment means is less than said characteristic impedance of said second transmission line segment means.
- 22. The analog phase modulator of claim 15 where in each of said first and second variable reactance means is a varactor diode.
- 23. The analog phase modulator of claim 22 where in each of said first and second variable reactance means is a hyperabrupt varactor diode.
- 24. The analog phase modulator of claim 15 where in said first and second variable reactance means is a varactor diode having a selected capacitance voltage characteristic so as to compensate for other circuit component induced non-linearities and enhance linearity of phase modulating said input signal in proportion to said applied bias signal.
- 25. The analog phase modulator of claim 15 where in said first and second variable reactance means is a varactor diode selected from the group consisting of PN junction and Schottky junction varactor diodes including at least one semiconductor region, and wherein the capacitance voltage characteristic is predetermined in accordance with selected doping profiles of said at least one selected regions, and where said predetermined capacitance voltage characteristic is selected so as to compensate for other circuit component induced non-linearities and enhance linearity of phase modulating said input signal in proportion to said applied bias signal.
- 26. A variable reactance network adapted to receive a bias control signal at a bias input port, and an output port adapted to be connected to a microwave or mm-wave power dividing signal coupler, said variable reactance network comprising:
- a bias input port for receiving said bias source signal and an output port adapted to be connected to a microwave or mm-wave power dividing signal coupler;
- a first transmission line segment having a first transmission line terminating end means coupled to said output port through a series connected capacitance, and having a second terminating end means;
- a second transmission line segment having a first transmission line terminating end means electrically connected to said second terminating end means of said first transmission line segment, and having a second terminating end means electrically connected to said bias input port;
- a first varactor diode for providing a variable reactance which varies in relation to said bias control signal, said varactor diode having a first reactance terminating means electrically connected to said first terminating end means of said second transmission line segment, and a second reactance terminating means coupled to said electrical ground;
- a second varactor diode for providing a variable reactance which varies in relation to said bias control signal, said varactor diode having a first reactance terminating means electrically connected to said second transmission fine terminating end means of said second transmission line segment, and a second reactance terminating means coupled to said electrical ground; and
- a bias filter network including a third transmission line segment electrically connected between said bias input port and the juncture of said first reactance terminating means of said second variable reactance means, and a fourth transmission fine segment electrically connected as a shunt at the juncture of said bias input port and said third transmission line segment.
- 27. The analog phase modulator of claim 26 wherein:
- the characteristic impedance of said first and second transmission line segment is in the order of 50 ohms;
- the characteristic of said third transmission line segment is greater than said characteristic impedance of said second transmission line segment; and
- the characteristic of said fourth transmission line segment is less than said characteristic impedance of said second transmission line segment.
- 28. The analog phase modulator of clam 26 wherein:
- the characteristic impedance of said first and second transmission line segment is substantially 50 ohms;
- the characteristic impedance of said third transmission line segment is approximately 70 ohms; and
- the characteristic impedance said fourth transmission line segment is 30 ohms.
- 29. A variable reactance network adapted to receive a bias control signal at a bias input port, and an output port adapted to be connected to a microwave or mm-wave power dividing signal coupler, said variable reactance network comprising:
- a bias input port for receiving said bias source signal and an output port adapted to be connected to a microwave or mm-wave power dividing signal coupler;
- a first transmission line segment having a first transmission line terminating end means coupled to said output port through a series connected capacitance, and having a second terminating end means;
- a second transmission line segment having a first transmission line terminating end means electrically connected to said second terminating end means of said first transmission line segment, and having a second terminating end means electrically connected to said bias input port;
- a first varactor diode for providing a variable reactance which varies in relation to said bias control signal, said varactor diode having a first reactance terminating means electrically connected to said first terminating end means of said second transmission line segment, and a second reactance terminating means coupled to said electrical ground;
- a second varactor diode for providing a variable reactance which varies in relation to said bias control signal, said varactor diode having a first reactance terminating means electrically connected to said second transmission line terminating end means of said second transmission line segment, and a second reactance terminating means coupled to said electrical ground; and
- wherein said first and second varactor diodes each have a selected capacitance voltage characteristic so as to compensate for other circuit component induced non-linearities and enhance linearity of phase modulating said input signal in proportion to said applied bias signal.
- 30. A variable reactance network adapted to receive a bias control signal at a bias input port, and an output port adapted to be connected to a microwave or mm-wave power dividing signal coupler, said variable reactance network comprising:
- a bias input port for receiving said bias source signal and an output port adapted to be connected to a microwave or mm-wave power dividing signal coupler;
- a first transmission line segment having a first transmission line terminating end means coupled to said output port through a series connected capacitance, and having a second terminating end means;
- a second transmission line segment having a first transmission line terminating end means electrically connected to said second terminating end means of said first transmission line segment, and having a second terminating end means electrically connected to said bias input port;
- a first varactor diode for providing a variable reactance which varies in relation to said bias control signal, said varactor diode having a first reactance terminating means electrically connected to said first terminating end means of said second transmission line segment, and a second reactance terminating means coupled to said electrical ground;
- a second varactor diode for providing a variable reactance which varies in relation to said bias control signal, said varactor diode having a first reactance terminating means electrically connected to said second transmission line terminating end means of said second transmission line segment, and a second reactance terminating means coupled to said electrical ground; and
- wherein said first and second varactor diodes are each selected from the group consisting of PN junction and Schottky junction varactor diodes including at least one semiconductor region, and wherein the capacitance voltage characteristic of each of said first and second varactor diodes is predetermined in accordance with selected doping profiles of said at least one semiconductor region, and where said predetermined capacitance voltage characteristic is selected so as to compensate for other circuit component induced non-linearities and enhance linearity of phase modulating said input signal in proportion to said applied bias signal.
Parent Case Info
This is a continuation-in-part of U.S. patent application Ser. No. 08/910,941, filed on Aug. 2, 1997, now abandoned.
US Referenced Citations (6)
Continuation in Parts (1)
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910941 |
Aug 1997 |
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