Multiconductor transmission lines form the basic building blocks of microwave and millimetre-wave integrated circuits, and are omnipresent in digital systems. The early chapters of this book give a detailed account of the way in which self-consistent CAD circuit models for such coupled lines, carrying either TEM or hybrid modes, can be obtained from a full-wave solution of Maxwell's equations. Most of the knowledge in the field is covered, including the latest advances for lossy lines. Subsequent chapters discuss the full-wave integral equation solution for basic transmission structures on MMICs, PCBs, and Multiwire® and Microwire® boards with the method of moments. For thin coupled microstrips and striplines the proposed space domain solution offers an alternative for the classical spectral domain approach. This book is the first to handle the full-wave analysis of discrete wire structures and of lossy polygonal conductors. The modal propogation constants and all (coupling) impedances necessary to construct a circuit model are determined.
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Multiconductor transmission lines form the basic building blocks of microwave and millimetre-wave integrated circuits, and are omnipresent in digital systems. The early chapters of this book give a detailed account of the way in which self-consistent CAD circuit models for such coupled lines, carrying either TEM or hybrid modes, can be obtained from a full-wave solution of Maxwell's equations. Most of the knowledge in the field is covered, including the latest advances for lossy lines. Subsequent chapters discuss the full-wave integral equation solution for basic transmission structures on MMICs, PCBs, and Multiwire® and Microwire® boards with the method of moments. For thin coupled microstrips and striplines the proposed space domain solution offers an alternative for the classical spectral domain approach. This book is the first to handle the full-wave analysis of discrete wire structures and of lossy polygonal conductors. The modal propogation constants and all (coupling) impedances necessary to construct a circuit model are determined.
Les informations fournies dans la section « A propos du livre » peuvent faire référence à une autre édition de ce titre.
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Hardcover. Etat : new. Hardcover. Multiconductor transmission lines form the basic building blocks of microwave and millimetre-wave integrated circuits, and are omnipresent in digital systems. The early chapters of this book give a detailed account of the way in which self-consistent CAD circuit models for such coupled lines, carrying either TEM or hybrid modes, can be obtained from a full-wave solution of Maxwell's equations. Most of the knowledge in the field is covered, including the latestadvances for lossy lines. Subsequent chapters discuss the full-wave integral equation solution for basic transmission structures on MMICs, PCBs, and Multiwire and Microwire boards with the method ofmoments. For thin coupled microstrips and striplines the proposed space domain solution offers an alternative for the classical spectral domain approach. This book is the first to handle the full-wave analysis of discrete wire structures and of lossy polygonal conductors. The modal propogation constants and all (coupling) impedances necessary to construct a circuit model are determined. This book describes how self-consistent CAD circuit models for coupled lines, carrying either TEM or hybrid modes, can be obtained from a full-wave solution of Maxwell's equations and explores the full-wave integral equation solution for basic transmission structures on MMICs, PCBs, and Multiwire R and Microwire R boards with the method of moments. This item is printed on demand. Shipping may be from our UK warehouse or from our Australian or US warehouses, depending on stock availability. N° de réf. du vendeur 9780198562504
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