IP Library Granted Patent US 10,412,598
Granted Patent B2
US 10,412,598 · App. 15/480,192 · Granted Sep 10, 2019

Steerable microwave backhaul transceiver

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 10,412,598
App. No.
15/480,192
Granted
Sep 10, 2019
Kind
B2
Abstract

A first microwave backhaul transceiver may comprise a reflector and a signal processing subassembly. The signal processing subassembly may comprise a plurality of antenna elements positioned at a focal plane of the reflector. The signal processing subassembly may process a plurality of microwave signals corresponding to the plurality of antenna elements using a corresponding plurality of phase coefficients and a corresponding plurality of amplitude coefficients. The signal processing subassembly may adjust a radiation pattern of the plurality of antenna elements during operation of the signal processing subassembly through adjustment of the phase coefficients and/or the amplitude coefficients.

Claims (60)

1. A microwave backhaul device comprising:

a local oscillator generator;

a plurality of phase shifters operable to adjust a radiation pattern of a plurality of antenna elements, each of the plurality of phase shifters being operably coupled to an output of the local oscillator generator and a corresponding antenna element of the plurality of antenna elements, the plurality of antenna elements being positioned at a focal plane of a reflector, wherein the adjustment is performed via a phase adjustment of one or more signals from the plurality of antenna elements;

a plurality of analog front-ends operable to generate a plurality of down-converted signals from a plurality of microwave signals corresponding to the plurality of antenna elements; and

a plurality of analog-to-digital converters operable to digitize the plurality of down-converted signals, wherein the digitized plurality of down-converted signals are received by the plurality of phase shifters.

2. The microwave backhaul device of claim 1 , wherein the adjustment is performed via an amplitude adjustment of one or more signals from the plurality of antenna elements.

3. The microwave backhaul device of claim 1 , wherein the microwave backhaul device comprises a plurality of mixers operable to produce a plurality of phase-shifted down-converted signals, each of the plurality of mixers being operably coupled to receive an output of one of the plurality of phase shifters.

4. The microwave backhaul device of claim 3 , wherein the microwave backhaul device comprises a combiner operable to generate a weighted sum of the plurality of phase-shifted down-converted signals, wherein weights used for said weighted sum are one or more amplitude coefficients.

5. The microwave backhaul device of claim 1 , wherein the microwave backhaul device comprises one or more sensors operable to detect an orientation of the microwave backhaul transceiver, wherein the phase adjustment of the one or more signals is based on the orientation of the microwave backhaul transceiver.

6. The microwave backhaul device of claim 1 , wherein the microwave backhaul device comprises one or more sensors operable to detect a geographic location of the microwave backhaul transceiver, wherein the phase adjustment of the one or more signals is based on the geographic location of the microwave backhaul transceiver.

7. The microwave backhaul device of claim 1 , wherein the microwave backhaul device is operable to determine a performance metric for a microwave backhaul link, wherein the phase adjustment of the one or more signals is based on the performance metric.

8. The microwave backhaul device of claim 1 , wherein the microwave backhaul device comprises one or more sensors operable to determine one or more atmospheric conditions, wherein the phase adjustment of the one or more signals is based on the one or more atmospheric conditions.

9. The microwave backhaul device of claim 1 , wherein the radiation pattern of the plurality of antenna elements has multiple lobes pointed in multiple directions for concurrently supporting multiple microwave backhaul links in the multiple directions.

10. A method comprising:

in a microwave backhaul transceiver comprising a signal processor, wherein the signal processor is operably coupled to a plurality of antenna elements positioned at a focal plane of a reflector:

generating a local oscillator signal;

generating a plurality of phase-shifted local oscillator signals, each phase-shifted local oscillator signal corresponding to a phase coefficient of a plurality of phase coefficients;

generating a plurality of down-converted signals from a plurality of microwave signals corresponding to the plurality of antenna elements;

digitizing the plurality of down-converted signals, wherein the digitized plurality of down-converted signals are received by a plurality of phase shifters;

processing, in the plurality of phase shifters, the digitized plurality of down-converted signals using the plurality of phase-shifted local oscillator signals to produce a plurality of phase-shifted microwave signals, wherein the digitized plurality of down-converted signals correspond to a plurality of microwave signals that correspond to the plurality of antenna elements; and

adjusting a radiation pattern of the plurality of antenna elements by adjusting one or more phase coefficients of the plurality of phase coefficients or adjusting the amplitude of one or more phase-shifted microwave signals.

11. The method of claim 10 , wherein adjusting the radiation pattern of the plurality of antenna elements comprises adjusting the one or more phase coefficients of the plurality of phase coefficients and adjusting the amplitude of the one or more phase-shifted microwave signals.

12. The method of claim 10 , wherein the method comprises mixing the plurality of phase-shifted microwave signals to produce a plurality of phase-shifted down-converted signals.

13. The method of claim 12 , wherein the method comprises combining the plurality of phase-shifted down-converted signals to generate a weighted sum of the plurality of phase-shifted down-converted signals.

14. The method of claim 10 , wherein the method comprises detecting an orientation of the microwave backhaul transceiver, wherein the one or more phase coefficients are adjusted based on the orientation of the microwave backhaul transceiver.

15. The method of claim 10 , wherein the method comprises detecting a geographic location of the microwave backhaul transceiver, wherein the one or more phase coefficients are adjusted based on the geographic location of the microwave backhaul transceiver.

16. The method of claim 10 , wherein the method comprises determining a performance metric for a microwave backhaul link, wherein the one or more phase coefficients are adjusted based on the performance metric.

17. The method of claim 10 , wherein the method comprises determining one or more atmospheric conditions, wherein the one or more phase coefficients are adjusted based on the one or more atmospheric conditions.

18. The method of claim 10 , wherein the radiation pattern has multiple lobes pointed in multiple directions for concurrently supporting multiple microwave backhaul links in the multiple directions.

19. A microwave backhaul device comprising:

a local oscillator generator;

a plurality of phase shifters operable to adjust a radiation pattern of a plurality of antenna elements, each of the plurality of phase shifters being operably coupled to an output of the local oscillator generator and a corresponding antenna element of the plurality of antenna elements, the plurality of antenna elements being positioned at a focal plane of a reflector, wherein the adjustment is performed via a phase adjustment of one or more signals from the plurality of antenna elements; and

a plurality of mixers operable to produce a plurality of phase-shifted down-converted signals, each of the plurality of mixers being operably coupled to receive an output of one of the plurality of phase shifters.

20. The microwave backhaul device of claim 19 , wherein the adjustment is performed via an amplitude adjustment of one or more signals from the plurality of antenna elements.

21. The microwave backhaul device of claim 19 , wherein the microwave backhaul device comprises a combiner operable to generate a weighted sum of the plurality of phase-shifted down-converted signals, wherein weights used for said weighted sum are one or more amplitude coefficients.

22. The microwave backhaul device of claim 19 , wherein the microwave backhaul device comprises:

a plurality of analog front-ends operable to generate a plurality of down-converted signals from a plurality of microwave signals corresponding to the plurality of antenna elements; and

a plurality of analog-to-digital converters operable to digitize the plurality of down-converted signals, wherein the digitized plurality of down-converted signals are received by the plurality of phase shifters.

23. The microwave backhaul device of claim 19 , wherein the microwave backhaul device comprises one or more sensors operable to detect an orientation of the microwave backhaul transceiver, wherein the phase adjustment of the one or more signals is based on the orientation of the microwave backhaul transceiver.

24. The microwave backhaul device of claim 19 , wherein the microwave backhaul device comprises one or more sensors operable to detect a geographic location of the microwave backhaul transceiver, wherein the phase adjustment of the one or more signals is based on the geographic location of the microwave backhaul transceiver.

25. The microwave backhaul device of claim 19 , wherein the microwave backhaul device is operable to determine a performance metric for a microwave backhaul link, wherein the phase adjustment of the one or more signals is based on the performance metric.

26. The microwave backhaul device of claim 19 , wherein the microwave backhaul device comprises one or more sensors operable to determine one or more atmospheric conditions, wherein the phase adjustment of the one or more signals is based on the one or more atmospheric conditions.

27. The microwave backhaul device of claim 19 , wherein the radiation pattern of the plurality of antenna elements has multiple lobes pointed in multiple directions for concurrently supporting multiple microwave backhaul links in the multiple directions.

28. A method comprising:

in a microwave backhaul transceiver comprising a signal processor, wherein the signal processor is operably coupled to a plurality of antenna elements positioned at a focal plane of a reflector:

generating a local oscillator signal;

generating a plurality of phase-shifted local oscillator signals, each phase-shifted local oscillator signal corresponding to a phase coefficient of a plurality of phase coefficients;

processing, in a plurality of phase shifters, a plurality of microwave signals corresponding to the plurality of antenna elements using the plurality of phase-shifted local oscillator signals to produce a plurality of phase-shifted microwave signals;

adjusting a radiation pattern of the plurality of antenna elements by adjusting one or more phase coefficients of the plurality of phase coefficients or adjusting the amplitude of one or more phase-shifted microwave signals; and

mixing the plurality of phase-shifted microwave signals to produce a plurality of phase-shifted down-converted signals.

29. The method of claim 28 , wherein adjusting the radiation pattern of the plurality of antenna elements comprises adjusting the one or more phase coefficients of the plurality of phase coefficients and adjusting the amplitude of the one or more phase-shifted microwave signals.

30. The method of claim 28 , wherein the method comprises combining the plurality of phase-shifted down-converted signals to generate a weighted sum of the plurality of phase-shifted down-converted signals.

31. The method of claim 28 , wherein the method comprises:

generating a plurality of down-converted signals from the plurality of microwave signals corresponding to the plurality of antenna elements; and

digitizing the plurality of down-converted signals, wherein the digitized plurality of down-converted signals are received by the plurality of phase shifters.

32. The method of claim 28 , wherein the method comprises detecting an orientation of the microwave backhaul transceiver, wherein the one or more phase coefficients are adjusted based on the orientation of the microwave backhaul transceiver.

33. The method of claim 28 , wherein the method comprises detecting a geographic location of the microwave backhaul transceiver, wherein the one or more phase coefficients are adjusted based on the geographic location of the microwave backhaul transceiver.

34. The method of claim 28 , wherein the method comprises determining a performance metric for a microwave backhaul link, wherein the one or more phase coefficients are adjusted based on the performance metric.

35. The method of claim 28 , wherein the method comprises determining one or more atmospheric conditions, wherein the one or more phase coefficients are adjusted based on the one or more atmospheric conditions.

36. The method of claim 28 , wherein the radiation pattern has multiple lobes pointed in multiple directions for concurrently supporting multiple microwave backhaul links in the multiple directions.

Assignments (4)
SECURITY AGREEMENT Recorded Jul 9, 2021
From: MAXLINEAR, INC.; MAXLINEAR COMMUNICATIONS, LLC; EXAR CORPORATION
To: WELLS FARGO BANK, NATIONAL ASSOCIATION
Reel/Frame 056816/0089 →
RELEASE OF SECURITY INTEREST Recorded Jun 23, 2021
From: MUFG UNION BANK, N.A.
To: MAXLINEAR, INC.; EXAR CORPORATION; MAXLINEAR COMMUNICATIONS LLC
Reel/Frame 056656/0204 →
SUCCESSION OF AGENCY (REEL 042453 / FRAME 0001) Recorded Jul 1, 2020
From: JPMORGAN CHASE BANK, N.A.
To: MUFG UNION BANK, N.A.
Reel/Frame 053115/0842 →
SECURITY AGREEMENT Recorded May 12, 2017
From: MAXLINEAR, INC.; ENTROPIC COMMUNICATIONS, LLC (F/K/A ENTROPIC COMMUNICATIONS, INC.); EXAR CORPORATION
To: JPMORGAN CHASE BANK, N.A., AS COLLATERAL AGENT
Reel/Frame 042453/0001 →