Claims
- 1. A ferroelectric phase shifter for shifting the phase of a radio frequency (RF) signal comprising:
- a conductor line;
- a ground plane;
- a ferroelectric element between the conductor line and the ground plane to form a microstrip circuit through which the RF signal propagates, said ferroelectric element having a dielectric constant that can be varied as a function of a DC voltage applied to the ferroelectric element wherein the speed of the RF signal propagating through the ferroelectric element is a function of the dielectric constant;
- a DC voltage source connected across the conductor line and the ground plane for applying a variable DC voltage to the ferroelectric element in response to a control signal thereby to vary the dielectric constant of the ferroelectric element; and
- a controller circuit for detecting changes in the dielectric constant of the ferroelectric element and providing the control signal to the DC voltage source to vary the applied DC voltage as a function of the detected changes whereby changes in the dielectric constant over time are compensated for and the phase shift is maintained substantially constant.
- 2. The phase shifter of claim 1 wherein the controller circuit includes a reference generator for applying a reference signal to the ferroelectric element at a frequency fT, said controller circuit inducing a current in the ferroelectric element as a function of the reference signal and independent of the applied DC voltage and the RF signal.
- 3. The phase shifter of claim 2 wherein the controller circuit includes a current detector for detecting the current induced in the ferroelectric element by the reference signal, said current detector providing a detected signal representative of the detected induced current.
- 4. The phase shifter of claim 3 wherein the current detector comprises a synchronous detector for comparing the reference signal to the detected signal, said synchronous detector providing an output signal representative of the dielectric constant of the ferroelectric element, said controller circuit providing the control signal to the DC voltage source to vary the applied DC voltage as a function of the output signal.
- 5. The phase shifter of claim 3 further comprising a clock circuit for synchronizing the current detector to the reference signal at the frequency f.sub.T.
- 6. The phase shifter of claim 2 further comprising a first DC blocking circuit for isolating the controller circuit from the applied DC voltage whereby the current induced in the ferroelectric element by the reference signal is independent of the applied DC voltage.
- 7. The phase shifter of claim 6 wherein the RF signal is provided by an external RF circuit and further comprising a second DC blocking circuit for isolating the RF signal propagating in the microstrip from the applied DC voltage whereby the RF signal in the external RF circuit is not DC shifted.
- 8. The phase shifter of claim 2 further comprising a high impedance, low pass filter functionally interposed between the DC voltage source and the conductor line for isolating the DC voltage source and the controller circuit from the RF signal whereby the RF signal is prevented from entering the DC voltage source and the controller circuit when the controller circuit is inducing current in the ferroelectric element thereby to calibrate the phase shifter.
- 9. A method of controlling a ferroelectric phase shifter, said phase shifter having a ferroelectric element, a conductor line and a ground plane, said ferroelectric element being between the conductor line and the ground plane to form a microstrip circuit through which a radio frequency (RF) signal propagates for phase shifting, said ferroelectric element having a dielectric constant that can be varied as a function of a DC voltage applied to the ferroelectric element wherein the speed of the RF signal propagating through the ferroelectric element is a function of the dielectric constant, said method comprising:
- applying a variable DC voltage to the ferroelectric element by connecting a DC voltage source across the conductor line and the ground plane;
- detecting changes in the dielectric constant of the ferroelectric element;
- providing a control signal to the DC voltage source as a function of the detected changes; and
- varying the applied voltage of the DC voltage source in response to the control signal thereby to vary the dielectric constant of the ferroelectric element whereby changes in the dielectric constant over time are compensated for and the phase shift is maintained substantially constant.
- 10. The method of claim 9 wherein the step of detecting changes in the dielectric constant of the ferroelectric element includes the step of applying a reference signal to the ferroelectric element at a frequency f.sub.T, said reference voltage signal inducing a current in the ferroelectric element independent of the applied DC voltage and the RF signal.
- 11. The method of claim 10 wherein the step of detecting changes in the dielectric constant of the ferroelectric element includes the steps of detecting the current induced in the ferroelectric element by the reference signal and providing a detected signal representative of the detected induced current.
- 12. The method of claim 11 further comprising the steps of comparing the reference signal to the detected signal and providing an output signal representative of the dielectric constant of the ferroelectric element, said step of providing a control signal to the DC voltage source as a function of the detected changes providing the control signal to the DC voltage source to vary the applied DC voltage as a function of the output signal.
- 13. The method of claim 11 further comprising the step of synchronizing the step of detecting the induced current to the reference signal at the frequency f.sub.T.
- 14. The method of claim 10 wherein the control signal is provided by a controller circuit and further comprising the step of isolating the controller circuit from the applied DC voltage whereby the current induced in the ferroelectric element by the reference signal is independent of the applied DC voltage.
- 15. The method of claim 14 further comprising the step of isolating the DC voltage source and the controller circuit from the RF signal whereby the RF signal is prevented from entering the DC voltage source and the controller circuit when current is induced in the ferroelectric element thereby to calibrate the phase shifter.
- 16. A real-time calibrator for a ferroelectric phase shifter, said phase shifter having a ferroelectric element, a conductor line and a ground plane, said ferroelectric element being between the conductor line and the ground plane to form a microstrip circuit through which a radio frequency (RF) signal propagates for phase shifting, said ferroelectric element having a dielectric constant that can be varied as a function of a DC voltage applied to the ferroelectric element wherein the speed of the RF signal propagating through the ferroelectric element is a function of the dielectric constant, said calibrator comprising:
- a DC voltage source connected across the conductor line and the ground plane for applying a variable DC voltage to the ferroelectric element in response to a control signal thereby to vary the dielectric constant of the ferroelectric element; and
- a controller circuit for detecting changes in the dielectric constant of the ferroelectric element and providing the control signal to the DC voltage source to vary the applied DC voltage as a function of the detected changes whereby changes in the dielectric constant over time are compensated for and the phase shift is maintained substantially constant.
GOVERNMENT INTEREST
The invention described herein may be manufactured, used, and licensed by or for the Government of the United States of America without the payment to us of any royalty thereon.
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