Reconfigurable smart metamaterial for energy transfer control in alternating magnetic fields

Authors

  • Adam Steckiewicz Bialystok University of Technology, Faculty of Electrical Engineering, Wiejska 45D Str., 15-351 Białystok, Poland https://orcid.org/0000-0001-9723-8602
  • Aneta Stypułkowska Bialystok University of Technology, Faculty of Electrical Engineering, Wiejska 45D Str., 15-351 Białystok, Poland

DOI:

https://doi.org/10.24425/bpasts.2024.149169

Abstract

The paper presents a metamaterial with reconfigurable effective properties, intended to operate in alternating magnetic fields. The structure of a resonator, based on a series connection of a planar inductor and a lumped capacitor, is expanded using an additional capacitor with a MOSFET transistor. Due to the presence of the controllable active element, it is possible to dynamically change the phase of the current flowing through a meta-cell and shift a frequency response within an assumed range. Since the transistor is driven by the unipolar square wave with a changeable duty cycle and time delay, two closed-loop controllers were utilized to achieve a smart material, able to automatically attain and maintain the imposed resonant frequency. As a result, the complex effective magnetic permeability of the metamaterial can be smoothly changed, during its operation, via an electrical signal, i.e. by adjusting the parameters of a control signal of the active element. The design of the meta-cell, as well as the measuring, data operation and control part, are presented in detail. An illustrative system is examined in terms of achieving the user-defined resonance point of the metamaterial. Transient responses with estimated settling times and steady-state errors and the effective permeability characteristics for the exemplary cases are shown. The meta-cell is also tested experimentally to validate the theoretically determined effective properties.

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Published

2024-08-30

How to Cite

Steckiewicz, Adam, and Aneta Stypułkowska. “Reconfigurable Smart Metamaterial for Energy Transfer Control in Alternating Magnetic Fields”. Bulletin of the Polish Academy of Sciences Technical Sciences, vol. 72, no. 5, Aug. 2024, p. e149169, doi:10.24425/bpasts.2024.149169.

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