IP Library Granted Patent US 10,088,511
Granted Patent B2
US 10,088,511 · App. 14/870,000 · Granted Oct 2, 2018

Estimation of complex antenna impedance using scalar measurements

View Patent ↗
Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US 10,088,511
App. No.
14/870,000
Granted
Oct 2, 2018
Kind
B2
Abstract

Described herein are architectures, platforms and methods for deriving a complex antenna impedance based on scalar measurements. Three significantly different electrical characterizations such as scattering parameter (S-parameter) settings that correspond to at least three perturbation applications may facilitate the derivation of the complex antenna impedance at an output port antenna load plane ( L plane).

Claims (34)

1. A transceiver power detection circuitry comprising:

a front-end module coupled to an antenna;

a switchable controlled circuit that is perturbed to generate a different electrical characterization for each perturbation application, the perturbation application comprising a change in frequency or hardware values; and

a scalar measurement detector configured to perform a scalar measurement of a power reflection coefficient for each different electrical characterization, wherein the scalar measurement is transformed from an input port reflection coefficient plane to an output port antenna load plane, data points associated with the scalar measurement at the output port antenna load plane are stored, and a vector measurement is derived based upon a determined intersection of the stored data points of at least three scalar measurements at the output port antenna load plane.

2. The transceiver power detection circuitry of claim 1 , wherein different perturbation applications generate substantially different electrical characterizations.

3. The transceiver power detection circuitry of claim 2 , wherein at least three perturbation applications are performed on the switchable controlled circuit to generate at least three substantially different electrical characterizations corresponding to the at least three scalar measurements at the output port antenna load plane.

4. The transceiver power detection circuitry of claim 3 , wherein a complex antenna load as seen at the output port antenna load plane remains constant for the at least three scalar measurements corresponding to three different electrical characterizations.

5. The transceiver power detection circuitry of claim 1 , wherein the transformation of the scalar measurement from the input port reflection coefficient plane to the output port antenna load the lane comprises a calculation of an equivalent center and a radius of the detected scalar measurement for each electrical characterization.

6. The transceiver power detection circuitry of claim 1 , wherein the scalar measurement comprises a magnitude measurement.

7. The transceiver power detection circuitry of claim 1 , further comprising:

a directional coupler configured to sample a forward power and a reflected power, wherein the scalar measurement is based upon the sampled forward and reflected powers.

8. A device comprising:

a processor;

a transceiver power detection circuitry coupled to the processor, wherein the transceiver power detection circuitry comprises:

a front-end module coupled to an antenna;

a switchable controlled circuit that is perturbed to generate a different electrical characterization for each perturbation application, the perturbation application comprising a change in frequency or hardware values; and

a scalar measurement detector configured to perform a scalar measurement of a power reflection coefficient for each different electrical characterizations, wherein the scalar measurement is transformed from an input port reflection coefficient plane to an output port antenna load plane, data points associated with the scalar measurement at the output port antenna load plane are stored, and a vector measurement is derived based upon a determined intersection of the stored data points between at least three scalar measurements at the output port antenna load plane.

9. The device of claim 8 , wherein different perturbation applications generate substantially different electrical characterizations.

10. The device of claim 9 , wherein at least three perturbation applications are performed on the switchable controlled circuit to generate at least three substantially different electrical characterizations corresponding to the at least three scalar measurements at the output port antenna load plane.

11. The device of claim 8 , wherein a complex antenna load as seen at the output port antenna load plane remains constant for the at least three scalar measurements.

12. The device of claim 8 , wherein the transformation of the scalar measurement from the input port reflection coefficient plane to the output port antenna load plane comprises a calculation of an equivalent center and a radius of the scalar measurement for each electrical characterization.

13. The device of claim 8 , wherein the scalar measurement comprises a magnitude measurement.

14. The device of claim 8 , further comprising:

a directional coupler configured to sample a forward power and a reflected power, wherein the scalar measurement is based upon the sampled forward and reflected powers.

15. A method of estimating complex antenna impedance in a device, the method comprising:

applying a perturbation application to generate an electrical characterization, by applying a change in frequency or hardware values;

performing a scalar measurement based on the generated electrical characterization;

transforming the scalar measurement from an input port reflection coefficient plane to an output port antenna load plane;

storing data points associated with the scalar measurement at the output port antenna load plane; and

determining a common intersection of the stored data points between at least three scalar measurements on the output port antenna load plane, wherein the at least three scalar measurements correspond to at least three different perturbation applications, and a vector measurement is derived from the determined intersection between the at least three scalar measurements at the output port antenna load plane.

16. The method of claim 15 , wherein different perturbation applications generate substantially different electrical characterizations.

17. The method of claim 15 , wherein a complex antenna load for the at least three scalar measurements remains constant.

18. The method of claim 15 , wherein the scalar measurement comprises sampling a forward power and a reflected power to obtain a magnitude of a power reflection coefficient.

19. The method of claim 15 , wherein the transformation of the scalar measurement from the input port reflection coefficient plane to the output port antenna load plane comprises a calculation of an equivalent center and a radius of the scalar measurement for each electrical characterization.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 8, 2021
From: INTEL IP CORPORATION
To: INTEL CORPORATION
Reel/Frame 056524/0373 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 30, 2015
From: NAHMANNY, DANNIEL; COSSOY, FABIAN
To: INTEL IP CORPORATION
Reel/Frame 036693/0602 →