IP Library Granted Patent US 11,606,115
Granted Patent B2
US 11,606,115 · App. 17/091,100 · Granted Mar 14, 2023

Transmitter signal cancellation in phased array receivers

Inventor: Gregg S. Nardozza (Madison, NJ)
Assignee: Blue Danube Systems, Inc.
H04B1/525H01Q3/36H04L5/1461
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Quick Facts
Patent No.
US 11,606,115
App. No.
17/091,100
Granted
Mar 14, 2023
Kind
B2
Abstract

A method employing an array of antenna elements and a plurality of transceivers, each including (1) a transmitter chain; (2) a receiver chain; and (3) a duplexer having an input electrically connected to the transmitter chain, an output electrically connected to the receiver chain, and a duplexed port electrically connected to a different antenna element, the method involving: identifying among the plurality of transceivers a first and second subsets of transceivers such that together the first and second subsets of transceivers constitute all of the transceivers among the plurality of transceivers; for each transceiver within the first subset of transceivers, but not for the transceivers within the second subset of transceivers, introducing a Φ degree phase shift between the duplexed port of the duplexer and the antenna element to which the duplexed port is electrically connected, wherein Φ=−(2n+1)90°, and wherein n is an integer.

Claims (31)

1. A phased array system comprising:

an array of antenna elements; and

a plurality of transceivers, each including (1) a transmitter chain; (2) a receiver chain; and (3) a duplexer having a transmit input electrically connected to the transmitter chain, a receive output electrically connected to the receiver chain, and a duplexed port electrically connected to a corresponding different antenna element within the array of antenna elements,

wherein the plurality of transceivers constitutes a first subset of transceivers and a second subset of transceivers, wherein the first subset of transceivers differs from the second subset of transceivers in that each transceiver within the first subset of transceivers further comprises a Φ degree phase shifting element connected between the duplexed port of the duplexer within that transceiver and the antenna element to which the duplexed port of that duplexer is electrically connected, wherein Φ=−(2n+1) 90°, and wherein n is an integer.

2. The phased array system of claim 1 , wherein n=0.

3. The phased array system of claim 1 , wherein the number of transceivers in the first subset of transceivers and the number of transceivers in the second subset of transceivers differ.

4. The phased array system of claim 1 , wherein the number of transceivers in the first subset of transceivers and the number of transceivers in the second subset of transceivers are equal.

5. The phased array system of claim 1 , wherein the antenna elements within the array of antenna elements are organized into a plurality of columns, wherein the antenna elements in the odd numbered columns are connected to transceivers in the first subset of transceivers, and wherein the antenna elements in the even numbered columns are connected to transceivers in the second subset of transceivers.

6. The phased array system of claim 1 , wherein the antenna elements within the array of antenna elements are organized into a plurality of rows, wherein the antenna elements in the odd numbered rows are connected to transceivers in the first subset of transceivers, and wherein the antenna elements in the even numbered rows are connected to transceivers in the second subset of transceivers.

7. A method employing an array of antenna elements and a plurality of transceivers, each including (1) a transmitter chain; (2) a receiver chain; and (3) a duplexer having a transmit input electrically connected to the transmitter chain, a receive output electrically connected to the receiver chain, and a duplexed port electrically connected to a corresponding different antenna element within the array of antenna elements, said method comprising:

identifying among the plurality of transceivers a first subset of transceivers and a second subset of transceivers such that together the first and second subsets of transceivers constitute all of the transceivers among the plurality of transceivers;

for each transceiver within the first subset of transceivers, but not for the transceivers within the second subset of transceivers, introducing a Φ degree phase shift between the duplexed port of the duplexer within that transceiver and the antenna element to which the duplexed port of that duplexer is electrically connected, wherein Φ=−(2n+1)90°, and wherein n is an integer.

8. The method of claim 7 , wherein n=0.

9. The method of claim 8 , wherein, within each transceiver among the plurality of transceivers the transmitter chain for that transceiver defines a transmit signal path for that transceiver and wherein the method further comprises,

for each transceiver within the first subset of transceivers, but not for the transceivers within the second subset of transceivers, introducing a +90° phase shift in the transmit signal path of that transceiver.

10. The method of claim 9 , wherein within each transceiver among the plurality of transceivers the receiver chain for that transceiver defines a receive signal path for that transceiver, and wherein the method further comprises,

for each transceiver within the first subset of transceivers, but not for the transceivers within the second subset of transceivers, introducing a +90° phase shift in the receive signal path of that transceiver.

11. A phased array system comprising:

an array of antenna elements,

a first transceiver subset that comprises at least one transceiver, and

a second transceiver subset that comprises at least one transceiver,

wherein each of the transceivers comprises

a transceiver input,

a transmitter chain that receives a transmit signal via the transceiver input,

a transceiver output;

a receiver chain that carries a residual transmit signal and a receive signal to the transceiver output,

a duplexer having a transmit-input electrically coupled to the transceiver input via the transmitter chain, a receive-output electrically coupled to the transceiver output to the receiver chain, and a duplexed port electrically connected to a corresponding antenna element within the array, and

wherein a residual path is defined between the transceiver input and the transceiver output;

wherein for each transceiver in the first subset there exists a transceiver in the second subset such that the residual paths of the first and second transceivers differ by 180° in phase at an operating frequency of the phased array system.

12. The phased array system of claim 1 , wherein the number of transceivers in the first subset of transceivers and the number of transceivers in the second subset of transceivers differ.

13. The phased array system of claim 1 , wherein the number of transceivers in the first subset of transceivers and the number of transceivers in the second subset of transceivers are equal.

Assignments (2)
CHANGE OF NAME Recorded Mar 1, 2024
From: BLUE DANUBE SYSTEMS, INC.
To: NEC ADVANCED NETWORKS, INC.
Reel/Frame 066714/0194 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 6, 2021
From: NARDOZZA, GREGG S.
To: BLUE DANUBE SYSTEMS, INC.
Reel/Frame 054822/0602 →
Continuity (2)
Provisional Application 62934148 · Nov 12, 2019
Related Publication 20210143862A1 · May 13, 2021