IP Library › Granted Patent US 12,341,247
Granted Patent B2
US 12,341,247 · App. 18/346,545 · Granted Jun 24, 2025

Multi-port multi-functional meta-surface coplanar antenna system for beam steering control

Inventors: Tapas Chakravarty (Kolkata, IN); Amartya Banerjee (Kolkata, IN); Arpan Pal (Kolkata, IN); Rowdra Ghatak (Kolkata, IN)
Assignee: Tata Consultancy Services Limited
H01Q15/0006H01Q3/24H01Q3/2682H01Q19/30
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Quick Facts
Patent No.
US 12,341,247
App. No.
18/346,545
Granted
Jun 24, 2025
Kind
B2
Abstract

This disclosure relates generally to multi-port multi-functional meta-surface coplanar antenna system. Conventional electronic or mechanical solutions for beam steering incur high installation costs with less performance speed and bulk structures. The present disclosure provides multi-port multi-functional meta-surface coplanar antenna system for beam steering control. The disclosed antenna system enables radiator to have a performance diversity application through beam steering functionalities. The disclosed antenna system provides a minimal design complexity and minimal usage of active or passive lumped components. The disclosed system comprises Gradient Refractive Index Meta-surface (GRIM) and the antenna disposed on the same side of a substrate. Beam steering control is performed using port excitations and controlling the phase between the concerned ports externally.

Claims (34)

1. A multi-port multi-functional meta-surface coplanar antenna system comprising:

a set of coplanar antennas having a set of antenna ports positioned on a first side of a substrate and communicating with a Radio Frequency (RF) input to receive and transmit radio waves;

a set of Gradient Refractive Index Meta-surface (GRIM) disposed on the first side of the substrate at a pre-defined gap and at a pre-defined offset from the set of antennas along a direction of the radio waves, wherein the GRIM is configured to tilt the radio waves in a desired direction, wherein each GRIM comprises a set of metamaterial unit cells having a rectangular stub at center of each metamaterial unit cell;

a switched time-delay network (STDN) unit connected to the set of coplanar antennas and configured for phase shifting the radio waves wherein the STDN unit having one or more radio frequency cables and two or more Single Pole Double Throw (SPDT) switches; and

a controller unit in communication with the STDN unit wherein the controller unit comprises:

one or more data storage devices configured to store instructions;

one or more communication interfaces (and

one or more hardware processors operatively coupled to the one or more data storage devices via the one or more communication interfaces, wherein the one or more hardware processors are configured to be operated by the instructions to:

obtain a pre-defined excitation matrix such that the pre-defined excitation matrix programs phase gradient values of radio waves using the STDN unit for beam steering control by exciting one or more antenna ports amongst the set of antenna ports, wherein the beam steering control is one or more of (i) steering of beams of the radio waves (ii) obtaining a set of beam patterns of the radio waves and (iii) controlling beam-width of the radio waves, wherein the excitation matrix is for 2-port, 4-port and 8-port integrated coplanar antenna, wherein in the 2-port integrated coplanar antenna, a phase gradient value ranges from 0 to 260, in the 4-port integrated coplanar antenna, the phase gradient value is 0 or 180.

2. The multi-port multi-functional meta-surface coplanar antenna system of claim 1 , wherein the pre-defined gap and the pre-defined offset is optimized based on parametric simulations.

3. The multi-port multi-functional meta-surface coplanar antenna system of claim 1 , wherein each GRIM is disposed on the first side of the substrate at the pre-defined gap and the pre-defined offset from at most two coplanar antennas amongst the set of antennas.

4. The multi-port multi-functional meta-surface coplanar antenna system of claim 1 , wherein the set of coplanar antennas are periodically positioned at an equidistance from each other along the length of the substrate.

5. The multi-port multi-functional meta-surface coplanar antenna system of claim 1 , wherein the phase shifting of radio waves is performed with a 180-degree phase difference being introduced between the one or more antenna ports using the STDN, wherein 180-degree phase difference being introduced only to conceive beam diversity characteristics.

6. The multi-port multi-functional meta-surface coplanar antenna system of claim 1 , wherein the set of beam patterns are one or more of (i) single (ii) dual or (iii) triple.

7. A processor implemented method comprising the steps of:

positioning a set of coplanar antennas having a set of antenna ports on a first side of a substrate and cooperating with a Radio Frequency (RF) input to receive and transmit radio waves;

disposing a set of Gradient Refractive Index Meta-surface (GRIM) on the first side of the substrate at a pre-defined gap and at a pre-defined offset from the set of coplanar antennas along a direction of the radio waves and configuring to tilt the radio waves in a desired direction wherein each GRIM comprises a set of metamaterial unit cells having a rectangular stub at center of each metamaterial unit cell;

connecting a switched time-delay network (STDN) unit to the set of coplanar antennas and configuring for phase shifting the radio waves wherein the STDN having one or more radio frequency cables and two or more Single Pole Double Throw (SPDT) switches; and

obtaining a pre-defined excitation matrix by a controller unit, that the pre-defined excitation matrix programs phase gradient values of radio waves using the STDN unit for beam steering control by exciting one or more antenna ports wherein the beam steering control is one or more of (i) steering of beams of the radio waves (ii) obtaining a set of beam patterns of the radio waves and (iii) controlling beam-width of the radio waves, wherein the excitation matrix is for 2-port, 4-port and 8-port integrated coplanar antenna, wherein in the 2-port integrated coplanar antenna, a phase gradient value ranges from 0 to 260, in the 4-port integrated coplanar antenna, the phase gradient value is 0 or 180.

8. The processor implemented method of claim 7 , wherein the pre-defined gap and the pre-defined offset is optimized based on parametric simulations.

9. The processor implemented method of claim 7 , wherein each GRIM is disposed on the first side of the substrate at the pre-defined gap and the pre-defined offset from at most two coplanar antennas amongst the set of antennas.

10. The processor implemented method of claim 7 , wherein the set of coplanar antennas are periodically positioned at an equidistance from each other along the length of the substrate.

11. The processor implemented method of claim 7 , wherein the phase shifting of radio waves is performed with a 180-degree phase difference being introduced between the one or more antenna ports using the STDN, wherein 180-degree phase difference being introduced only to conceive a beam diversity characteristics.

12. The processor implemented method of claim 7 , wherein the set of beam patterns are one or more of (i) single (ii) dual or (iii) triple.

13. One or more non-transitory machine-readable information storage mediums comprising one or more instructions which when executed by one or more hardware processors cause:

positioning a set of coplanar antennas having a set of antenna ports on a first side of a substrate and cooperating with a Radio Frequency (RF) input to receive and transmit radio waves;

disposing a set of Gradient Refractive Index Meta-surface (GRIM) on the first side of the substrate at a pre-defined gap and at a pre-defined offset from the set of coplanar antennas along a direction of the radio waves and configuring to tilt the radio waves in a desired direction wherein each GRIM comprises a set of metamaterial unit cells having a rectangular stub at center of each metamaterial unit cell;

connecting a switched time-delay network (STDN) unit to the set of coplanar antennas and configuring for phase shifting the radio waves wherein the STDN having one or more radio frequency cables and two or more Single Pole Double Throw (SPDT) switches; and

obtaining a pre-defined excitation matrix by a controller unit, that the pre-defined excitation matrix programs phase gradient values of radio waves using the STDN unit for beam steering control by exciting one or more antenna ports wherein the beam steering control is one or more of (i) steering of beams of the radio waves (ii) obtaining a set of beam patterns of the radio waves and (iii) controlling beam-width of the radio waves, wherein the excitation matrix is for 2-port, 4-port and 8-port integrated coplanar antenna, wherein in the 2-port integrated coplanar antenna, a phase gradient value ranges from 0 to 260, in the 4-port integrated coplanar antenna, the phase gradient value is 0 or 180.

14. The one or more non-transitory machine-readable information storage mediums of claim 13 , wherein the pre-defined gap and the pre-defined offset is optimized based on parametric simulations.

15. The one or more non-transitory machine-readable information storage mediums of claim 13 , wherein each GRIM is disposed on the first side of the substrate at the pre-defined gap and the pre-defined offset from at most two coplanar antennas amongst the set of antennas.

16. The one or more non-transitory machine-readable information storage mediums of claim 13 , wherein the set of coplanar antennas are periodically positioned at an equidistance from each other along the length of the substrate.

17. The one or more non-transitory machine-readable information storage mediums of claim 13 , wherein the phase shifting of radio waves is performed with a 180-degree phase difference being introduced between the one or more antenna ports using the STDN, wherein 180-degree phase difference being introduced only to conceive a beam diversity characteristics.

18. The one or more non-transitory machine-readable information storage mediums of claim 13 , wherein the set of beam patterns are one or more of (i) single (ii) dual or (iii) triple.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 3, 2023
From: CHAKRAVARTY, TAPAS; BANERJEE, AMARTYA; PAL, ARPAN; GHATAK, ROWDRA
To: TATA CONSULTANCY SERVICES LIMITED
Reel/Frame 064140/0483 →
Priority Claims (1)
IN 202221040497 · Jul 14, 2022 · national
Continuity (1)
Related Publication 20240022003A1 · Jan 18, 2024
References Cited (7)
US 10553947B2 · Scarborough · 2020 [cited by examiner]
US 10931004B2 · Yoo et al. · 2021 [cited by applicant]
US 20200358205A1 · Sun · 2020 [cited by examiner]
Dadgarpour et al. “Beam-Deflection Using Gradient Refractive-Index Media for 60-GHz End-Fire Antenna”, IEEE Transactions on Antennas and Propagation, IEEE, USA, vol. 63, No. 8, Aug. 1, 2015 (Year: 2015). [cited by examiner]
Fan, Tingting et al., “A multibeam slot antenna using dual-layer metasurface”, Title of the item: Electromagnetics, Date: Nov. 2021, pp. 393-408, vol. 41, No. 6, Publisher: Taylor & Francis Group, LLC, https://www.tandf… [cited by applicant]
Abdulkarim, Yadgar I. et al., “A Low-Profile Antenna Based on Single-Layer Metasurface for Ku-Band Applications”, Title of the item: International Journal of Antennas and Propagation, Date: Dec. 2020, vol. 2020, Publish… [cited by applicant]
Hongnara, Tanan et al., “Design of Compact Beam-Steering Antennas Using a Metasurface Formed by Uniform Square Rings”, Title of the item: IEEE Access, Date: Jan. 30, 2018 pp. 9420-9429, Publisher: IEEE, https://ieeexplo… [cited by applicant]