Symmetry Properties in Transmission Lines Loaded with Electrically Small Resonators

Circuit Modeling and Applications

Nonfiction, Science & Nature, Technology, Microwaves, Material Science
Cover of the book Symmetry Properties in Transmission Lines Loaded with Electrically Small Resonators by Jordi Naqui, Springer International Publishing
View on Amazon View on AbeBooks View on Kobo View on B.Depository View on eBay View on Walmart
Author: Jordi Naqui ISBN: 9783319245669
Publisher: Springer International Publishing Publication: October 16, 2015
Imprint: Springer Language: English
Author: Jordi Naqui
ISBN: 9783319245669
Publisher: Springer International Publishing
Publication: October 16, 2015
Imprint: Springer
Language: English

This book discusses the analysis, circuit modeling, and applications of transmission lines loaded with electrically small resonators (mostly resonators inspired by metamaterials), focusing on the study of the symmetry-related electromagnetic properties of these loaded lines. It shows that the stopband functionality (resonance) that these lines exhibit can be controlled by the relative orientation between the line and the resonator, which determines their mutual coupling. Such resonance controllability, closely related to symmetry, is essential for the design of several microwave components, such as common-mode suppressed differential lines, novel microwave sensors based on symmetry disruption, and spectral signature radio-frequency barcodes. Other interesting aspects, such as stopband bandwidth enhancement (due to inter-resonator coupling, and related to complex modes) and magnetoelectric coupling between the transmission lines and split-ring resonators, are also included in the book.

View on Amazon View on AbeBooks View on Kobo View on B.Depository View on eBay View on Walmart

This book discusses the analysis, circuit modeling, and applications of transmission lines loaded with electrically small resonators (mostly resonators inspired by metamaterials), focusing on the study of the symmetry-related electromagnetic properties of these loaded lines. It shows that the stopband functionality (resonance) that these lines exhibit can be controlled by the relative orientation between the line and the resonator, which determines their mutual coupling. Such resonance controllability, closely related to symmetry, is essential for the design of several microwave components, such as common-mode suppressed differential lines, novel microwave sensors based on symmetry disruption, and spectral signature radio-frequency barcodes. Other interesting aspects, such as stopband bandwidth enhancement (due to inter-resonator coupling, and related to complex modes) and magnetoelectric coupling between the transmission lines and split-ring resonators, are also included in the book.

More books from Springer International Publishing

Cover of the book Electrophysiology of Unconventional Channels and Pores by Jordi Naqui
Cover of the book The Underactive Bladder by Jordi Naqui
Cover of the book High Performance Computing by Jordi Naqui
Cover of the book Mechanism Design for Robotics by Jordi Naqui
Cover of the book Silvopastoral Systems in Southern South America by Jordi Naqui
Cover of the book Place and Health as Complex Systems by Jordi Naqui
Cover of the book Quantifiers, Quantifiers, and Quantifiers: Themes in Logic, Metaphysics, and Language by Jordi Naqui
Cover of the book Model Validation and Uncertainty Quantification, Volume 3 by Jordi Naqui
Cover of the book Bursty Human Dynamics by Jordi Naqui
Cover of the book Decentralisation and Regional Development by Jordi Naqui
Cover of the book Pedestrian Fall Safety Assessments by Jordi Naqui
Cover of the book Black Rice by Jordi Naqui
Cover of the book Advances in Aeronautical Informatics by Jordi Naqui
Cover of the book Complex Fluid-Flows in Microfluidics by Jordi Naqui
Cover of the book Surface Plasmon Resonance Sensors by Jordi Naqui
We use our own "cookies" and third party cookies to improve services and to see statistical information. By using this website, you agree to our Privacy Policy