IP Library Granted Patent US 11,265,073
Granted Patent B2
US 11,265,073 · App. 16/203,553 · Granted Mar 1, 2022

Method and apparatus for a metastructure reflector in a wireless communication system

Inventor: Maha Achour (Palo Alto, CA)
H04B7/145H01Q3/44H01Q15/002H01Q15/0086H04B1/40
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Quick Facts
Patent No.
US 11,265,073
App. No.
16/203,553
Granted
Mar 1, 2022
Kind
B2
Abstract

Examples disclosed herein relate to a metastructure reflector in a wireless communication system. The metastructure reflector has a transceiver unit adapted to receive transmissions from a base station, a radiating structure having a plurality of subarrays of radiating cells to radiate the transmissions to at least one user equipment, the at least one user equipment in a non-line-of-sight area of the base station, and a subarray controller to control a plurality of subarrays of the radiating structure to radiate the transmissions in multiple directions.

Claims (31)

1. A metastructure reflector in a wireless communication system, comprising:

a transceiver unit configured to receive a plurality of transmissions from a base station;

a radiating structure comprising a plurality of subarrays of radiating cells configured to radiate the plurality of transmissions to a plurality of user equipments (UEs) that are respectively located in a non-line-of-sight area with respect to the base station, wherein at least one cell of the plurality of subarrays of radiating cells is coupled to a varactor, the varactor disposed between a conductive area of the at least one cell and a conductive outer loop of the at least one cell, the conductive outer loop laterally surrounding the conductive area with a space between the conductive area and the conductive outer loop, the varactor configured to alter a reactance of the at least one cell to provide a beamform having a beam width and a direction as determined by the varactor of the at least one cell; and

a subarray controller configured to control the plurality of subarrays of the radiating structure and to radiate the plurality of transmissions in multiple directions as multiple directional beamforms, each directional beamform of the multiple directional beamforms having a respective beam width, using respective subarrays of the plurality of subarrays operating at different frequencies, each subarray of the plurality of subarrays configured to radiate the transmissions at a given direction provided by the transceiver unit and in response to an identification of a position of at least one UE of the plurality of UEs with respect to the base station.

2. The metastructure reflector of claim 1 , wherein the radiating structure comprises a metastructure.

3. The metastructure reflector of claim 1 , wherein at least one radiating cell of the plurality of subarrays of the radiating cells comprises a metamaterial cell.

4. The metastructure reflector of claim 1 , wherein the transceiver unit adjusts at least one subarray of the plurality of subarrays based on a control signal received from the base station on a control channel.

5. The metastructure reflector of claim 1 , further comprising an antenna feed configured to distribute the plurality of transmissions to the radiating structure in a plurality of transmission lines.

6. The metastructure reflector of claim 1 , wherein each radiating cell of the plurality of subarrays of radiating cells is coupled to a varactor.

7. The metastructure reflector of claim 1 , wherein each radiating cell of the plurality of subarrays of radiating cells is configured on a dielectric layer.

8. The metastructure reflector of claim 1 , wherein the plurality of subarrays are arranged in layers.

9. A metastructure antenna for use in a reflector in a wireless communications system, comprising:

a first set of metastructure cells configured to reflect a first set of transmissions from a base station to a first direction as a first set of directional beamforms operating at a first frequency;

a second set of metastructure cells configured to reflect a second set of transmissions from the base station to a second direction as a second set of directional beamforms operating at a second frequency different from the first frequency,

wherein at least one metastructure cell from the first and second sets of metastructure cells is coupled to a varactor, the varactor disposed laterally between a conductive area of the at least one metastructure cell and a conductive outer loop of the at least one metastructure cell with a space between the conductive area and the conductive outer loop, the varactor configured to alter a reactance of the at least one metastructure cell to provide a beamform having a beam width and a direction as determined by the varactor of the at least one metastructure cell; and

a set of reactance control devices, wherein each of the set of reactance control devices is configured to alter a reactance of at least one metastructure cell from the first and second sets of metastructure cells in response to identification of a position of at least one user equipment with respect to the base station.

10. The metastructure antenna of claim 9 , wherein the first set and second set of metastructure cells comprise metamaterial cells.

11. The metastructure antenna of claim 9 , wherein the varactor is a first varactor, and at least one of the set of reactance control devices comprises a second varactor.

12. The metastructure antenna of claim 9 , wherein a set of reactance control devices for the first set of metastructure cells alters the reactance of the first set of metastructure cells to direct a radiation beam in the first direction.

13. The metastructure antenna of claim 9 , wherein the set of transmissions is transmitted to the metastructure antenna by an antenna feed having a plurality of transmission lines.

14. The metastructure antenna of claim 9 , further comprising a subarray controller configured to control subarrays of metastructure cells.

15. The metastructure antenna of claim 9 , wherein each metastructure cell from the first and second sets of metastructure cells has a corresponding reactance control device and the reactance of each metastructure cell from the first and second sets of metastructure cells is adjusted individually.

16. A method to enhance wireless coverage to non-line-of-sight users, comprising:

intercepting a transmission and a control signal from a base station;

identifying a first user in a first non-line-of-sight area from the base station and a second user in a second non-line-of-sight area from the base station based on the control signal; and

controlling a first subarray of metastructure cells to reflect the transmission to the first user as a first directional beamform operating at a first frequency and a second subarray of metastructure cells to reflect the transmission to the second user as a second directional beamform operating at a second frequency different from the first frequency, in response to identifying a position of the first user and the second user with respect to the base station,

wherein at least one metastructure cell from the first and second subarray of metastructure cells is coupled to a varactor disposed between a conductive area of the at least one metastructure cell and a conductive outer loop that laterally surrounds the conductive area with a space between the conductive area and the conductive outer loop, the varactor configured to alter a reactance of the at least one metastructure cell to provide a beamform having a beam width and a direction as determined by the varactor of the at least one metastructure cell.

17. The method of claim 16 , further comprising controlling a second subarray of metastructure cells to direct the transmission to a second user.

18. The method of claim 16 , wherein controlling a first subarray of metastructure cells comprises controlling a reactance of each metastructure cell in the first subarray.

19. The method of claim 16 , wherein each of the first subarray of metastructure cells and the second subarray of metastructure cells comprise metamaterial cells, and wherein the first subarray of metastructure cells and the second subarray of metastructure cells are included in a multi-layer metastructure antenna.

20. The method of claim 16 , wherein the metastructure cells are hexagonal cells organized in a lattice.

Assignments (8)
RELEASE OF SECURITY INTEREST Recorded Sep 11, 2023
From: TRANSACTIONSIP LLC
To: PIVOTAL COMMWARE INC.
Reel/Frame 064859/0429 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 6, 2023
From: METAWAVE CORPORATION
To: PIVOTAL COMMWARE, INC.
Reel/Frame 064812/0229 →
LIEN Recorded Jul 25, 2023
From: METAWAVE CORPORATION
To: TRANSACTIONSIP LLC
Reel/Frame 064372/0530 →
TERMINATION OF SECURITY INTEREST Recorded Jun 22, 2023
From: BDCM A2 LLC
To: METAWAVE CORPORATION
Reel/Frame 064058/0797 →
RELEASE OF SECURITY INTEREST Recorded May 2, 2022
From: VENTURE LENDING & LEASING VIII, INC.; VENTURE LENDING & LEASING IX, INC.
To: METAWAVE CORPORATION
Reel/Frame 059846/0731 →
SECURITY INTEREST Recorded Mar 21, 2022
From: METAWAVE CORPORATION
To: BDCM A2 LLC
Reel/Frame 059454/0555 →
SECURITY INTEREST Recorded Jan 23, 2019
From: METAWAVE CORPORATION
To: VENTURE LENDING & LEASING IX, INC.; VENTURE LENDING & LEASING VIII, INC.
Reel/Frame 048117/0966 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 17, 2018
From: ACHOUR, MAHA, DR.
To: METAWAVE CORPORATION
Reel/Frame 047795/0288 →
Continuity (2)
Provisional Application 62591396 · Nov 28, 2017
Related Publication 20190165850A1 · May 30, 2019