IP Library Granted Patent US 11,811,476
Granted Patent B2
US 11,811,476 · App. 17/941,863 · Granted Nov 7, 2023

Channel aggregation digital beamforming

Inventors: Alireza Mehrnia (Tustin, CA); Masoud Kahrizi (Irvine, CA); Ka Shun Carson Pun (Irvine, CA); Omid Nasiby (Laguna Niguel, CA); Alex Ahmad Mirzaei (Tustin, CA)
Assignee: Space Exploration Technologies Corp.
H04B7/0617H04B7/0837H04W72/046
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Quick Facts
Patent No.
US 11,811,476
App. No.
17/941,863
Granted
Nov 7, 2023
Kind
B2
Abstract

In an embodiment, an apparatus includes a digital beamforming section. The digital beamforming section is configured to encode each data beam of a first plurality of data beams of a first channel with a first plurality of respective time delays and phases to generate an encoded first plurality of data beams and encode each data beam of a second plurality of data beams of a second channel with a second plurality of respective time delays and phases to generate an encoded second plurality of data beams. The second plurality of data beams is different from the first plurality of data beams. The apparatus includes a channel combiner, electrically coupled to the digital beamforming section, and configured to generate a combined channel comprising an aggregation of at least a portion of the encoded first plurality of data beams and at least a portion of the encoded second plurality of data beams.

Claims (64)

1. An apparatus comprising:

a digital beamforming section configured to:

encode each data beam of a first plurality of data beams of a first channel with a first plurality of respective time delays and phases to generate an encoded first plurality of data beams; and

encode each data beam of a second plurality of data beams of a second channel with a second plurality of respective time delays and phases to generate an encoded second plurality of data beams, wherein the second plurality of data beams is different from the first plurality of data beams; and

a channel combiner, electrically coupled to the digital beamforming section, and configured to generate a combined channel comprising an aggregation of at least a portion of the encoded first plurality of data beams and at least a portion of the encoded second plurality of data beams.

2. The apparatus of claim 1 , further comprising a first digital mixer and a second digital mixer electrically coupled between the channel combiner and the digital beamforming section, wherein the first digital mixer is configured to shift a first central frequency associated with the first channel to a shifted first central frequency and the second digital mixer is configured to shift a second central frequency associated with the second channel to a shifted second central frequency.

3. The apparatus of claim 2 , wherein a third central frequency associated with the combined channel is between the shifted first central frequency and the shifted second central frequency.

4. The apparatus of claim 2 , wherein the first digital mixer is configured to shift the first central frequency by Δf and the second digital mixer is configured to shift the second central frequency by −Δf.

5. The apparatus of claim 1 , wherein the plurality of first and second plurality of data beams comprise 2N data beams and the digital beamforming section comprises 2N digital beamformers, wherein first N digital beamformers are associated with the first plurality of data beams and second N digital beamformers are associated with the second plurality of data beams, and further comprising:

a plurality of channel combiners electrically coupled to the digital beamforming section, wherein the plurality of channel combiners comprises M channel combiners and the channel combiner is included in the plurality of channel combiners; and

a plurality of RF transmission sections electrically coupled to the plurality of channel combiners, wherein:

the plurality of RF transmission sections comprises M RF transmission sections;

the plurality of RF transmission sections is configured to generate M output signals; and

the plurality of RF transmission sections electrically couple to M antennas of a phased array antenna to provide the M output signals for transmission.

6. The apparatus of claim 5 , wherein the M output signals each contain at least a portion of the encoded first plurality of data beams and the encoded second plurality of data beams.

7. The apparatus of claim 1 , wherein at least one particular digital beamformer of a plurality of beamformers included in the digital beamforming section is dynamically disabled with a zero gain setting if a data beam associated with the at least one particular digital beamformer comprises inactive data, null data, is missing data, or data not to be transmitted.

8. The apparatus of claim 1 , wherein:

the first channel has a first bandwidth, the second channel has a second bandwidth, and the combined channel has a third bandwidth; and

the third bandwidth is equal to the first bandwidth, the second bandwidth, or both the first and second bandwidths.

9. The apparatus of claim 1 , wherein:

the first channel has a first bandwidth, the second channel has a second bandwidth, and the combined channel has a third bandwidth; and

the third bandwidth is greater than the first bandwidth and the second bandwidth.

10. The apparatus of claim 9 , wherein the third bandwidth is equal to a sum of the first bandwidth and the second bandwidth.

11. An apparatus comprising:

a digital beamforming section configured to:

encode each data beam of a first plurality of data beams of a first channel to generate an encoded first plurality of data beams; and

encode each data beam of a second plurality of data beams of a second channel to generate an encoded second plurality of data beams; and

a channel combiner, electrically coupled to the digital beamforming section, and configured to generate a combined channel comprising an aggregation of at least a portion of the encoded first plurality of data beams and at least a portion of the encoded second plurality of data beams.

12. The apparatus of claim 11 , further comprising a first digital mixer and a second digital mixer, wherein the first digital mixer is electrically coupled between digital beamforming section and the channel combiner and the second digital mixer is electrically coupled between the digital beamforming section and the channel combiner, and wherein the first digital mixer is configured to shift a first central frequency associated with the first channel to a shifted first central frequency and the second digital mixer is configured to shift a second central frequency associated with the second channel to a shifted second central frequency.

13. The apparatus of claim 12 , wherein a third central frequency associated with the combined channel is between the shifted first central frequency and the shifted second central frequency.

14. The apparatus of claim 12 , wherein the first digital mixer is configured to shift the first central frequency by Δf and the second digital mixer is configured to shift the second central frequency by −Δf.

15. The apparatus of claim 11 , wherein the first and second plurality of data beams comprise 2N data beams, the digital beamforming section comprises 2N digital beamformers, wherein first N digital beamformers are associated with the first plurality of data beams and second N digital beamformers are associated with the second plurality of data beams, and further comprising:

a plurality of channel combiners electrically coupled to the digital beamforming section, wherein the plurality of channel combiners comprises M channel combiners, and the channel combiner is included in the plurality of channel combiners; and

a plurality of RF transmission sections electrically coupled to the plurality of channel combiners, wherein:

the plurality of RF transmission sections comprises M RF transmission sections;

the plurality of RF transmission sections is configured to generate M output signals; and

the plurality of RF transmission sections electrically couple to M antennas of a phased array antenna to provide the M output signals for transmission.

16. The apparatus of claim 15 , wherein the M output signals each contain at least a portion of the encoded first plurality of data beams and the encoded second plurality of data beams.

17. The apparatus of claim 11 , wherein:

the first channel has a first bandwidth, the second channel has a second bandwidth, and the combined channel has a third bandwidth; and

the third bandwidth is equal to the first bandwidth, the second bandwidth, or both the first and second bandwidths.

18. The apparatus of claim 11 , wherein at least one particular digital beamformer of the digital beamforming section is dynamically disabled with a zero gain setting if a data beam associated with the at least one particular digital beamformer comprises inactive data, null data, is missing data, or data not to be transmitted.

19. The apparatus of claim 11 , wherein each data beam of the at least a portion of the encoded first plurality of data beams and the at least a portion of the encoded second plurality of data beams is located in a same frequency range of the combined channel.

20. The apparatus of claim 11 , wherein:

each data beam of the at least a portion of the encoded first plurality of data beams is located in a first frequency range of the combined channel and each data beam of the at least a portion of the encoded second plurality of data beams is located in a second frequency range of the combined channel.

21. A communication node of a communications system, the communication node comprising:

a plurality of antenna elements arranged in an antenna lattice; and

an integrated circuit (IC) chip comprising:

a digital beamforming section configured to:

encode each data beam of a first plurality of data beams of a first channel to generate an encoded first plurality of data beams; and

encode each data beam of a second plurality of data beams of a second channel different from the first channel to generate an encoded second plurality of data beams;

a channel combiner, electrically coupled to the digital beamforming section, and configured to generate a combined channel comprising an aggregation of at least a portion of the encoded first plurality of data beams and at least a portion of the encoded second plurality of data beams; and

a radio frequency (RF) transmission section, electrically coupled to the channel combiner, and configured to generate an output signal to be provided to an antenna element of the plurality of antenna elements based on the combined channel.

22. The communication node of claim 21 , further comprising a first digital mixer and a second digital mixer electrically coupled between the channel combiner and the digital beamforming section, wherein the first digital mixer is configured to shift a first central frequency associated with the first channel and the second digital mixer is configured to shift a second central frequency associated with the second channel.

23. The communication node of claim 22 , wherein the first digital mixer is configured to shift the first central frequency by Δf and the second digital mixer is configured to shift the second central frequency by −Δf.

24. The communication node of claim 21 , wherein the first and second plurality of data beams comprise 2N data beams and the digital beamforming section comprises 2N digital beamformers, wherein first N digital beamformers are associated with the first plurality of data beams and second N digital beamformers are associated with the second plurality of data beams, and further comprising:

a plurality of channel combiners electrically coupled to the digital beamforming section, wherein the plurality of channel combiners comprises M channel combiners and the channel combiner is included in the plurality of channel combiners; and

a plurality of RF transmission sections electrically coupled to the plurality of channel combiners, wherein:

the plurality of RF transmission sections comprises M RF transmission sections and the RF transmission section is included in the plurality of RF transmission sections;

the plurality of RF transmission sections is configured to generate M output signals; and

the plurality of RF transmission sections electrically couple to M antenna elements of the plurality of antenna elements.

25. The communication node of claim 24 , wherein the M output signals each contain at least a portion of the encoded first plurality of data beams and the encoded second plurality of data beams.

26. The communication node of claim 21 , further comprising a plurality of IC chips, wherein the IC chip is included in the plurality of IC chips and each IC chip of the plurality of IC chips is configured to provide signals to be transmitted on a different subset of antenna elements of the plurality of antenna elements.

27. The communication node of claim 21 , wherein the communication node comprises a satellite, a user terminal, a gateway, a repeater, or a communication node of a satellite communication system.

Assignments (2)
CERTIFICATE OF CONVERSION (STATE OF DELAWARE TO STATE OF TEXAS; NEW FILE NO.: 805421124; FILED : 02-14-2024) Recorded Feb 14, 2025
From: SPACE EXPLORATION TECHNOLOGIES CORP.
To: SPACE EXPLORATION TECHNOLOGIES CORP.
Reel/Frame 070631/0644 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 19, 2022
From: MIRZAEI, ALEX AHMAD; MEHRNIA, ALIREZA; PUN, KA SHUN CARSON; KAHRIZI, MASOUD; NASIBY, OMID
To: SPACE EXPLORATION TECHNOLOGIES CORP.
Reel/Frame 061138/0942 →
Continuity (4)
Continuation 17187607 · Feb 26, 2021
Continuation 16865400 · May 3, 2020
Provisional Application 62847749 · May 14, 2019
Related Publication 20230008670A1 · Jan 12, 2023