Fr. 179.00

The Designer's Guide to High-Purity Oscillators

English · Paperback / Softback

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Description

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try to predict it using mathematical expressions. His heuristic model without mathematical proof is almost universally accepted. However, it entails a c- cuit specific noise factor that is not known a priori and so is not predictive. In this work, we attempt to address the topic of oscillator design from a diff- ent perspective. By introducing a new paradigm that accurately captures the subtleties of phase noise we try to answer the question: 'why do oscillators behave in a particular way?' and 'what can be done to build an optimum design?' It is also hoped that the paradigm is useful in other areas of circuit design such as frequency synthesis and clock recovery. In Chapter 1, a general introduction and motivation to the subject is presented. Chapter 2 summarizes the fundamentals of phase noise and timing jitter and discusses earlier works on oscillator's phase noise analysis. Chapter 3 and Chapter 4 analyze the physical mechanisms behind phase noise generation in current-biased and Colpitts oscillators. Chapter 5 discusses design trade-offs and new techniques in LC oscillator design that allows optimal design. Chapter 6 and Chapter 7 discuss a topic that is typically ignored in oscillator design. That is flicker noise in LC oscillators. Finally, Chapter 8 is dedicated to the complete analysis of the role of varactors both in tuning and AM-FM noise conversion.

List of contents

Basics of LC Oscillators.- Oscillator Purity Fundamentals.- Current Biased Oscillator.- Colpitts Oscillator.- Design for Low Thermal Phase Noise.- Flicker Noise.- Design for Low Flicker Phase Noise.- The Role of the Varactor.

Summary

try to predict it using mathematical expressions. His heuristic model without mathematical proof is almost universally accepted. However, it entails a c- cuit specific noise factor that is not known a priori and so is not predictive. In this work, we attempt to address the topic of oscillator design from a diff- ent perspective. By introducing a new paradigm that accurately captures the subtleties of phase noise we try to answer the question: 'why do oscillators behave in a particular way?' and 'what can be done to build an optimum design?' It is also hoped that the paradigm is useful in other areas of circuit design such as frequency synthesis and clock recovery. In Chapter 1, a general introduction and motivation to the subject is presented. Chapter 2 summarizes the fundamentals of phase noise and timing jitter and discusses earlier works on oscillator's phase noise analysis. Chapter 3 and Chapter 4 analyze the physical mechanisms behind phase noise generation in current-biased and Colpitts oscillators. Chapter 5 discusses design trade-offs and new techniques in LC oscillator design that allows optimal design. Chapter 6 and Chapter 7 discuss a topic that is typically ignored in oscillator design. That is flicker noise in LC oscillators. Finally, Chapter 8 is dedicated to the complete analysis of the role of varactors both in tuning and AM-FM noise conversion.

Product details

Authors Asad Abidi, Emad Eldi Hegazi, Emad Eldin Hegazi, Jaco Rael, Jacob Rael
Publisher Springer, Berlin
 
Languages English
Product format Paperback / Softback
Released 21.10.2010
 
EAN 9781441954060
ISBN 978-1-4419-5406-0
No. of pages 204
Dimensions 154 mm x 12 mm x 241 mm
Weight 332 g
Illustrations XII, 204 p.
Series The Designer's Guide Book Series
The Designer's Guide Book Series
Subjects Natural sciences, medicine, IT, technology > Technology > Electronics, electrical engineering, communications engineering

C, engineering, Electrical Engineering, Electrical and Electronic Engineering, Circuits and Systems, Electronic circuits, Electronic Circuits and Systems

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