IP Library Granted Patent US 8,952,752
Granted Patent B1
US 8,952,752 · App. 13/712,676 · Granted Feb 10, 2015

Smart power combiner

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Quick Facts
Patent No.
US 8,952,752
App. No.
13/712,676
Granted
Feb 10, 2015
Kind
B1
Abstract

A power-combined amplifier and method are provided. In one aspect, the power-combined amplifier and method overcome problems associated with decreased output power efficiency caused by phase mismatch between constituent amplifiers.

Claims (75)

1. A power-combined amplifier, comprising:

first and second constituent amplifiers each having a respective power output;

a power combiner electrically connected to the power outputs of the first and second constituent amplifiers, the power combiner having an output configured to deliver the combined power outputs of the constituent amplifiers and having a respective isolated termination for each of the first and second constituent amplifiers; and

at least one detector operably connected to the isolated terminations of the first and second constituent amplifiers and configured to measure a load excitation at each of the isolated terminations.

2. The power-combined amplifier according to claim 1 , comprising a controller operably connected to the at least one detector to receive the measured load excitations of the first and second constituent amplifiers, the controller configured to analyze the measured load excitations and determine a phase mismatch between the first and second constituent amplifiers.

3. The power-combined amplifier according to claim 2 , wherein the first constituent amplifier comprises an amplifier input and the power-combined amplifier comprises a phase shifter in electrical communication with the amplifier input, and wherein the phase shifter is operably connected to the controller and the controller is configured to communicate a signal to the phase shifter to correct the phase mismatch between the first and second constituent amplifiers.

4. The power-combined amplifier according to claim 2 , wherein the controller is configured to determine a magnitude and sign of the phase mismatch between the first and second constituent amplifiers.

5. The power-combined amplifier according to claim 2 , wherein the controller is configured to determine the frequency of a load excitation null at the respective power output of each of the first and second constituent amplifiers and is configured to determine the phase difference between the first and second constituent amplifiers from the respective determined frequencies of the load excitation nulls of the first and second constituent amplifiers.

6. The power-combined amplifier according to claim 2 , wherein the controller is configured to determine the phase mismatch between the first and second constituent amplifiers according to the formula Δφ=−0.9 ΔF, where Δφ is the transmission phase difference between the first and second constituent amplifiers measured in degrees and ΔF is the frequency difference in nulls of the measured load excitations measured as a percentage of bandwidth.

7. The power-combined amplifier according to claim 1 , wherein the at least one detector comprises a first detector operably connected to the isolated termination of the first constituent amplifier and a second detector operably connected to the isolated termination of the second constituent amplifier.

8. The power-combined amplifier according to claim 1 , wherein the first constituent amplifier and the at least one detector are disposed on a MMIC.

9. The power-combined amplifier according to claim 1 , wherein the power combiner comprises a Gysel power combiner.

10. The power-combined amplifier according to claim 1 , wherein the first constituent amplifier comprises an amplifier input and the power-combined amplifier comprises a phase shifter in electrical communication with the amplifier input.

11. The power-combined amplifier according to claim 1 , comprising a shunt coupler in electrical communication with the power combiner output, the shunt coupler having a high-impedance quarter-wave line configured to shunt the power output to ground and having a port tapped-off proximate to the ground.

12. The power-combined amplifier according to claim 11 , comprising a shunt detector in electrical communication with the port and configured to detect the power at the power output of the power combiner.

13. The power-combined amplifier according to claim 1 , wherein the at least one detector comprises an impedance-matched RF termination including a load resistor capable of dissipating RF power.

14. The power-combined amplifier according to claim 13 , wherein the at least one detector comprises a Schottky diode.

15. The power-combined amplifier according to claim 13 , wherein the at least one detector comprises an impedance-matched RF input port and a high-impedance DC output port that is decoupled from the RF input port.

16. A power-combined amplifier, comprising:

N constituent amplifiers each having a respective power input and power output, where N is three or more;

a power combiner electrically connected to the power outputs of the N constituent amplifiers, the power combiner having an output configured to deliver the combined power outputs of the constituent amplifiers;

a plurality of reflection-phase correction lines, each of the lines electrically connected to the power input or power output of a respective constituent amplifier, the reflection-phase correction lines are selected from the set of values of

{

x

·

180

°

N

|

x

I

,

1

x

N

-

1

}

.

17. The power-combined amplifier according to claim 16 , wherein a selected first of the plurality of reflection-phase correction lines is electrically connected to the input of a selected constituent amplifier, a selected second of the plurality of reflection-phase correction lines is electrically connected to the output of the selected constituent amplifier, and wherein the sum of the values of the selected first and second lines is

(

N

-

1

)

·

180

°

N

.

18. The power-combined amplifier according to claim 16 , wherein the plurality of reflection-phase correction lines comprises 2N−2 lines selected from the set of values.

19. A power-combined amplifier, comprising:

N constituent amplifiers each having a respective power input and power output, where N is an even number greater than two, the N constituent amplifiers comprising first and second groups of N/2 amplifiers;

a power splitter having a power input and N power outputs, each splitter output electrically connected to the power input of a respective constituent amplifier;

a power combiner electrically connected to the power outputs of the N constituent amplifiers, the power combiner having an output configured to deliver the combined power outputs of the constituent amplifiers; and

N 90° reflection-phase correction lines, half of which are disposed in electrical communication with the power input of a respective constituent amplifier of the first group and half of which are disposed in electrical communication with the power output of a respective constituent amplifier of the second group.

20. A method for combining power outputs of constituent amplifiers with phase matching, comprising:

combining the power outputs of first and second constituent amplifiers;

determining the frequency of a load excitation null at the respective power output of each of the first and second constituent amplifiers;

determining the phase difference between the first and second constituent amplifiers from the respective determined frequencies of the load excitation nulls of the first and second constituent amplifiers; and

applying a phase correction related to the determined phase difference to at least one of the first and second constituent amplifiers to decrease phase mismatch between the first and second constituent amplifiers.

21. The method according to claim 20 , wherein Δφ=−0.9 ΔF, where Δφ is the phase difference between the amplifiers measured in degrees and ΔF is the frequency difference in load excitation nulls measured as a percentage bandwidth.

22. The method according to claim 20 , wherein the step of determining the phase difference comprises determining a magnitude and sign of the phase mismatch between the first and second constituent amplifiers.

23. The method according to claim 20 , wherein the step of applying a phase correction comprises providing a controller operably connected to at least one of the first and second constituent amplifiers, and wherein the controller provides the phase correction to at least one of the first and second constituent amplifiers to decrease phase mismatch between the first and second constituent amplifiers.

24. The method according to claim 20 , wherein the step of determining the frequency of a load excitation null comprises providing at least one detector operably connected to a respective isolated termination of each of the first and second constituent amplifiers and comprises measuring the load excitation nulls at each of the isolated terminations.

25. The method according to claim 24 , comprising providing a controller operably connected to the at least one detector to receive the measured load excitations of the first and second constituent amplifiers and analyzing, with the controller, the measured load excitations and determining a phase mismatch between the first and second constituent amplifiers.

26. A power amplification device having monitored power output, comprising:

a power amplifier having a power output;

a shunt coupler in electrical communication with the power output, the shunt coupler comprising a high-impedance quarter-wave line configured to shunt the power output to ground and having a port tapped-off proximate to the ground; and

a detector in electrical communication with the port and configured to detect the power at the power output of the power amplifier.

Assignments (9)
RELEASE OF SECURITY INTEREST Recorded Jul 30, 2025
From: ALTER DOMUS (US) LLC
To: CUBIC CORPORATION; CUBIC DIGITAL SOLUTIONS LLC; NUVOTRONICS, INC.
Reel/Frame 072281/0176 →
RELEASE OF SECURITY INTEREST AT REEL/FRAME 056393/0281 Recorded Jul 28, 2025
From: BARCLAYS BANK PLC, AS ADMINISTRATIVE AGENT
To: CUBIC CORPORATION; CUBIC DEFENSE APPLICATIONS, INC.; CUBIC DIGITAL SOLUTIONS LLC (FORMERLY PIXIA CORP.)
Reel/Frame 072282/0124 →
FIRST LIEN SECURITY AGREEMENT Recorded May 26, 2021
From: CUBIC CORPORATION; PIXIA CORP.; NUVOTRONICS, INC.
To: BARCLAYS BANK PLC
Reel/Frame 056393/0281 →
SECOND LIEN SECURITY AGREEMENT Recorded May 26, 2021
From: CUBIC CORPORATION; PIXIA CORP.; NUVOTRONICS, INC.
To: ALTER DOMUS (US) LLC
Reel/Frame 056393/0314 →
LICENSE Recorded Jun 4, 2020
From: NUVOTRONICS
To: THE UNITED STATES GOVERNMENT AS REPRESENTED BY THE SECRETARY OF THE AIR FORCE
Reel/Frame 052837/0222 →
CORRECTIVE ASSIGNMENT TO CORRECT THE EFFECTIVE DATE INSIDE THE ASSIGNMENT DOCUMENTATION PREVIOUSLY RECORDED AT REEL: 048698 FRAME: 0301. ASSIGNOR(S) HEREBY CONFIRMS THE ASSIGNMENT. Recorded Apr 10, 2019
From: NUVOTRONICS, INC.
To: CUBIC CORPORATION
Reel/Frame 048843/0801 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 26, 2019
From: NUVOTRONICS, INC.
To: CUBIC CORPORATION
Reel/Frame 048698/0301 →
CHANGE OF NAME Recorded Oct 13, 2015
From: NUVOTRONICS, LLC
To: NUVOTRONICS, INC.
Reel/Frame 036851/0027 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 19, 2012
From: HUETTNER, STEVEN E.
To: NUVOTRONICS, LLC.
Reel/Frame 029500/0861 →