Exploring the Potentials of the Multi-Modal Equivalent Circuit Approach for Stacks of 2-D Apertures Arrays
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Alex Amor, Antonio; Mesa, Francisco; Palomares Caballero, Ángel; Molero Jiménez, Carlos; Padilla De La Torre, PabloEditorial
Institute of Electrical and Electronics Engineers (IEEE)
Materia
3-D periodic stacks Analytical treatment Dispersion analysis Equivalent circuit approach (ECA),
Date
2021-04-06Referencia bibliográfica
A. Alex-Amor, F. Mesa, Á. Palomares-Caballero, C. Molero and P. Padilla, "Exploring the Potential of the Multi-Modal Equivalent Circuit Approach for Stacks of 2-D Aperture Arrays," in IEEE Transactions on Antennas and Propagation, vol. 69, no. 10, pp. 6453-6467, Oct. 2021, doi: 10.1109/TAP.2021.3070150
Sponsorship
Departamento de Teoría de la Señal, Telemática y Comunicaciones / Grupo SWAT TIC 244; Spanish Research and Development National Program under Project TIN2016-75097-P, Project RTI2018-102002-A-I00, Project B-TIC-402-UGR18, Project TEC2017-84724-P, and the Predoctoral Grant FPU18/01965; Junta de Andalucía under Project P18-RT-4830Abstract
Many frequency-selective surface (FSS) structures
are based on the use of a single periodic array of slot/apertures in
a conducting sheet embedded in a layered medium. However, it is
well known that stacking several conducting sheets and breaking
the alignment of the stack can bring multiple benefits to the
structure. In this article, the analysis and design of stacks of 2-D
aperture arrays are carried out by exploiting as much as possible
all the potential of a rigorous and systematic formulation based
on the multimodal equivalent circuit approach (ECA). A key feature of the formulation is that linear transformations between the
apertures of adjacent plates (rotation, translation, and scaling)
can be dealt with from a purely analytical perspective. This fact
is of potential interest for many practical applications, such as
the design of polarization converters, absorbers, filters, and thin
matching layers. When the apertures have an arbitrary geometry,
it can be applied a hybrid approach that combines the ability
of commercial simulators to handle arbitrary geometries with
the fast computation times and physical insight of the ECA.
In general, either the purely analytical or the hybrid approach
can be applied in those many practical scenarios where the
spatial profile of the electric field on the considered apertures
hardly changes with frequency. As an additional feature of the
approach, the dispersion properties (phase/attenuation constants
and Bloch impedance) of infinite periodic stacks can be derived,
and in particular, analytical expressions for the mirror- and
glide-symmetric configurations are provided