Broadband equivalent circuit models for canonical chiral elements
Brett Long, Douglas H. Werner
Abstract
Brett Long, Douglas H. Werner
Abstract
Abstract This article introduces broadband equivalent circuit models for both series‐connected and parallel‐connected canonical chiral elements. Each connection method results in a different terminal impedance behavior and therefore requires a different equivalent circuit model. These equivalent circuit models have a variety of applications including allowing for convenient analysis of chiral antennas as well as meta‐materials composed of passively or actively loaded chiral elements. © 2002 Wiley Periodicals, Inc. Microwave Opt Technol Lett 34: 181–183, 2002; Published online in Wiley InterScience (www.interscience.wiley.com). DOI 10.1002/mop.10410
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Abstract This article introduces broadband equivalent circuit models for both series‐connected and parallel‐connected canonical chiral elements. Each connection method results in a different terminal impedance behavior and therefore requires a different equivalent circuit model. These equivalent circuit models have a variety of applications including allowing for convenient analysis of chiral antennas as well as meta‐materials composed of passively or actively loaded chiral elements. © 2002 Wiley Periodicals, Inc. Microwave Opt Technol Lett 34: 181–183, 2002; Published online in Wiley InterScience (www.interscience.wiley.com). DOI 10.1002/mop.10410
Key concepts: Equivalent circuit, Broadband, Equivalent impedance transforms, Microwave, Electrical impedance, Electronic engineering, RLC circuit, Connection (principal bundle)