Application of Magnetic Nanostructures to the Design of Microwave Circuits


Première édition

The growing interest in integrated microwave devices for automotive and wireless communication demands new innovative concepts. Reducing device dimension by increasing bandwidth and operating frequency is a major challenge. This thesis presents the design of such devices using arrays of ferromagnetic nanowired substrate (MNWS) embedded in insulating templates of polycarbonate or alumina. Due to the magnetic character of the nanowires, reciprocal as well as non-reciprocal devices can be obtained that are tunable in frequency by applying external magnetic fields. Circulators, isolators, phase shifters, inductors and leaky-wave antennas have been developed on MNWS. For their design, the effective parameters of the composite material have to be known precisely. Therefore analytical models have been developed for determination of permittivity and permeability on MNWS, since these parameters are influenced by the ferromagnetic inclusions. Furthermore the fact that MNWS materials contain nanoscale zones five times smaller than their wavelength, places a severe limitation on the calculation capability of commercially available simulators regarding simulation time and convergence. The accuracy of these models has been verified by transmission line measurements. A special focus has been given to the development of metamaterials on MNWS. In this thesis a single negative material, which has negative permeability, has been successfully measured on such a substrate for the first time.


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Spécifications


Éditeur
Presses universitaires de Louvain
Partie du titre
Numéro 224
Auteur
Judith Spiegel,
Collection
Thèses de l'École polytechnique de Louvain | n° 224
Langue
anglais
BISAC Subject Heading
TEC000000 TECHNOLOGY & ENGINEERING
Code publique Onix
06 Professionnel et académique
CLIL (Version 2013-2019 )
3069 TECHNIQUES ET SCIENCES APPLIQUEES
Date de première publication du titre
01 novembre 2009
Type d'ouvrage
Thèse
Avec
Bibliographie

Paperback


Date de publication
01 janvier 2007
ISBN-13
9782874631030
Ampleur
Nombre de pages de contenu principal : 178
Code interne
76959
Format
16 x 24 x 1 cm
Poids
293 grams
Prix
32,00 €
ONIX XML
Version 2.1, Version 3

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Sommaire


Chapter 1 Introduction p.7
1.1 State of the art p.14
1.2 Structure p.24
Chapter 2 Reactor model p.27
2.1 A general formulation p. 29
2.2 Model for a class of fed-batch reactors p.31
2.3 A second order model p.36
Chapter 3 Finite time observer p.39
3.1. Finite time observer for LTI systems p.43
3.2 FTO for a class of nonlinear systems p.49
3.3 FTO for exothermic reactors p.63
Chapter 4 Interval observer p.73
4.1 Definition p.76
4.2 Interval observer design p.78
4.8 Interval observer for exothermic reactors p.84
Chapter 5 Application p.96
5.1 Estimation algorithms p.99
5.2 Benchmark model p.105
5.3 Numerical simulations p.108
5.4 Experimental results p.137
Chapter 6 Conclusion p.161
Chapter 7 Notation p.165
Bibliography p.171