IP Library Granted Patent US 12,267,116
Granted Patent B2
US 12,267,116 · App. 18/096,224 · Granted Apr 1, 2025

Mutual coupling based calibration

Inventors: Sriram Jayasimha (Leicester, GB); Christos Kasparis (Miami, FL); Peter King (Miami, FL); David Wheeler (Miami, FL); Huiwen Yao (Potomac, MD)
Assignee: AST & Science, LLC
H04B17/12H04L27/2626
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Quick Facts
Patent No.
US 12,267,116
App. No.
18/096,224
Granted
Apr 1, 2025
Kind
B2
Abstract

OFDM-BPSK symbol sequences are used for mutual-coupling based phase array calibration. Such substitution allows phase to be estimated more accurately using a given estimation duration without compromising other estimates (amplitude and group delay) accuracies.

Claims (42)

1. An antenna array, comprising:

a plurality of antenna elements, each of the plurality of antenna elements having a transmit path; and

a processing device configured to feed an orthogonal-frequency-division-multiplexing (OFDM) calibration signal to the transmit path to perform transmit calibration, and to compute phase and amplitude of a given one of the plurality of antenna elements and each neighboring antenna element of the plurality of direct neighboring antenna elements, according to a plurality of received OFDM signals;

wherein the OFDM calibration signal is orthogonalized to reduce cross-interference among multiple active transmitting ones of the plurality of antenna elements.

2. The antenna array of claim 1 , wherein the plurality of antenna elements each have a receive path and the processing device is configured to feed an orthogonal-frequency-division-multiplexing (OFDM) calibration signal to the receive path to perform receive calibration.

3. An antenna array, comprising:

a plurality of antenna elements, each of the plurality of antenna elements having a transmit path; and

a processing device configured to feed an orthogonal-frequency-division-multiplexing (OFDM) calibration signal to the transmit path to perform transmit calibration;

wherein the processing device is configured to superimpose the OFDM calibration signal onto a carrier signal, whereby the OFDM calibration signal's power is at least an order of magnitude smaller than the carrier signal's power, and does not deteriorate the carrier signal PAPR below a threshold.

4. An antenna array, comprising:

a plurality of antenna elements, each of the plurality of antenna elements having a transmit path; and

a processing device configured to feed an orthogonal-frequency-division-multiplexing (OFDM) calibration signal to the transmit path to perform transmit calibration

wherein the OFDM calibration signal is composed of multiple sub-carriers that are independently estimated and combined into a calibration estimate.

5. The antenna array of claim 1 , wherein the transmit path includes a baseband to Radio Frequency converter, oscillator, Digital-to-Analog Converter, transmit Front End Module, and transmit antenna.

6. The antenna array of claim 2 , wherein the receive path includes a Radio-Frequency to baseband converter, oscillator, Analog-to-Digital Converter, receive Front End Module, and receive antenna.

7. The antenna array of claim 2 , wherein the receive path receives a superposed carrier signal and the OFDM calibration signal, whereby the OFDM calibration signal's power is at least an order of magnitude smaller than the carrier signal's power, and thereby does not deteriorate the carrier signal PAPR below a threshold.

8. The antenna array of claim 1 , said processing device further configured to:

select the given antenna element from amongst the plurality of antenna elements, the given antenna element having the plurality of direct neighboring antenna elements of the plurality of antenna elements, each of the plurality of direct neighboring antenna elements being directly adjacent the given antenna element;

transmit, via the transmit path of the neighboring antenna elements, a plurality of OFDM calibration signals; and

receive, via a receive path of the given antenna element, the plurality of OFDM calibration signals.

9. The antenna array of claim 1 , wherein the OFDM calibration signal is pre-computed.

10. An antenna array, comprising:

a plurality of antenna elements, each of the plurality of antenna elements having a receive path; and

a processing device configured to feed an orthogonal-frequency-division-multiplexing (OFDM) calibration signal to the receive path to perform receive calibration;

wherein the OFDM calibration signal includes a set of symbols chosen according to a carrier signal bandwidth.

11. The antenna array of claim 10 , wherein the plurality of antenna elements each have a transmit path and the processing device is configured to feed an orthogonal-frequency-division-multiplexing (OFDM) calibration signal to the transmit path to perform receive calibration.

12. The antenna array of claim 11 , wherein the processing device is configured to superimpose the OFDM calibration signal onto a carrier signal, whereby the OFDM calibration signal's power is at least an order of magnitude smaller than the carrier signal's power, and does not deteriorate the carrier signal PAPR below a threshold.

13. The antenna array of claim 10 , wherein the OFDM calibration signal is composed of multiple sub-carriers that are independently estimated and combined into a calibration estimate.

14. The antenna array of claim 11 , wherein the transmit path includes a baseband to Radio Frequency converter, oscillator, Digital-to-Analog Converter, transmit Front End Module, and transmit antenna.

15. The antenna array of claim 10 , wherein the receive path includes a Radio-Frequency to baseband converter, oscillator, Analog-to-Digital Converter, receive Front End Module, and receive antenna.

16. The antenna array of claim 10 , wherein the receive path has a receives a superposed carrier signal and the OFDM calibration signal, whereby the OFDM calibration signal's power is at least an order of magnitude smaller than the carrier signal's power, and does not deteriorate the carrier signal PAPR below a threshold.

17. The antenna array of claim 10 , said processing device further configured to:

select a given antenna element from amongst the plurality of antenna elements, the given antenna element having a plurality of direct neighboring antenna elements of the plurality of antenna elements, each of the plurality of direct neighboring antenna elements being directly adjacent the given antenna element;

transmit, via a transmit path of the neighboring antenna elements, a plurality of OFDM calibration signals; and

receive, via the receive path of the given antenna element, the plurality of OFDM calibration signals; and

compute phase and amplitude of the given antenna element and each neighboring antenna element of the plurality of direct neighboring antenna elements, according to the plurality of received OFDM signals.

18. The antenna array of claim 1 , wherein the OFDM calibration signal is comprised of a set of OFDM symbols, and each symbol is fed sequentially to the transmit path.

19. The antenna array of claim 1 , wherein the OFDM calibration signal is comprised of a set of OFDM symbols, and one or more of the OFDM symbols is repeatedly fed to the transmit path.

20. An antenna array, comprising:

a plurality of antenna elements, each of the plurality of antenna elements having a receive path; and

a processing device configured to feed an orthogonal-frequency-division-multiplexing (OFDM) calibration signal to the receive path to perform receive calibration;

wherein the OFDM calibration signal is comprised of a set of OFDM symbols, and during receive calibration the processing device is configured to discard one or more of the OFDM symbols.

Assignments (3)
RELEASE OF SECURITY INTEREST Recorded Feb 20, 2025
From: ACP POST OAK CREDIT II LLC
To: AST & SCIENCE, LLC; AST SPACE MOBILE USA LLC
Reel/Frame 070284/0297 →
SECURITY INTEREST Recorded Aug 15, 2023
From: AST & SCIENCE, LLC; AST SPACE MOBILE USA LLC
To: ACP POST OAK CREDIT II LLC
Reel/Frame 064587/0503 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 13, 2023
From: JAYASIMHA, SRIRAM; KASPARIS, CHRISTOS; KING, PETER; WHEELER, DAVID; YAO, HUIWEN
To: AST & SCIENCE, LLC
Reel/Frame 062964/0795 →
Continuity (3)
Continuation 17696547 · Mar 16, 2022
Provisional Application 63161701 · Mar 16, 2021
Related Publication 20230239060A1 · Jul 27, 2023
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Cited By (1)
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