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March 3, 20260 citationsOpen Access

Analysis and Experiment of a Low-Cost Multi-Panel Reconfigurable Intelligent Surface System for Signal Enhancement at mm-Wave

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PAPeyman AghabeykiPMPeng; id_orcid 0000-0002-3128-1963 MeiZYZhinong Ying

Key Points

  • The system enhances signal levels significantly, focusing power on user equipment.
  • Results show ±50° beam steering at 26 GHz with around 10% gain bandwidth measured.
  • Full-wave electromagnetic simulations guided the design and functionality of the system.
  • The low-cost approach reduces power consumption compared to conventional systems, enabling wider deployment.

Abstract

This study presents a novel approach to enhance the power level at Millimeter (mm)-waves with very low cost. Considering a (mm)-wave Base Station (BS) in a fixed location, and the User Equipment (UE) in the far-field region, a plane wave with a known direction of propagation reaches a specific region. A very large, pre-designed fixed focal spot passive surface (S1) is designed and installed within the viewing angle of the plane wave to reflect and focus it in the Near-Field (NF) region on another wall. A Small Reconfigurable Intelligent Surface (RIS) device is installed on the other wall to be illuminated by the focused beam, and the RIS steers the beam dynamically inside the desired region toward the UE. By using this scheme, a large amount of power can be focused on the UEs to enhance the signal level. The components are modeled with full-wave electromagnetic simulation, and the best approach to design the mm-waves system is discussed. A prototype was fabricated and measured at 26 GHz to demonstrate the 2D beam-steering. The large passive fixed-beam surface is a single-layer Printed Circuit Board (PCB) with 20 × 20 cm, and the RIS is 7 × 7 cm (14×14 elements). For demonstration, 1-bit mechanical tuning elements are used for simplicity. Measurement results show ≈ ±50° of 2D beam-steering with around 10% gain bandwidth. The radiation characteristics of both surfaces are analyzed and an expression for received power under the general condition is obtained. The entire system can be implemented at a very low cost due to its simple PCB design and small-scale RIS. Moreover, due to the large passive surface and small RIS, the power consumption can be significantly reduced compared to conventional RIS.

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Cite This Study

Aghabeyki et al. (2025) studied this question.

synapsesocial.com/papers/69a7684abadf0bb9e87e4468https://vbn.aau.dk/da/publications/a73059e0-f816-4a4e-9d7a-a837d82bafe6
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