Pulse-width Modulated DC-DC Power Converters
(Sprache: Englisch)
This book studies switch-mode power supplies (SMPS) in great detail. This type of converter changes an unregulated DC voltage into a high-frequency pulse-width modulated (PWM) voltage controlled by varying the duty cycle, then changes the PWM AC voltage to...
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This book studies switch-mode power supplies (SMPS) in great detail. This type of converter changes an unregulated DC voltage into a high-frequency pulse-width modulated (PWM) voltage controlled by varying the duty cycle, then changes the PWM AC voltage to a regulated DC voltage at a high efficiency by rectification and filtering. Used to supply electronic circuits, this converter saves energy and space in the overall system.With concept-orientated explanations, this book offers state-of-the-art SMPS technology and promotes an understanding of the principle operations of PWM converters, as well as enabling the readers to evaluate their characteristics. Design-orientated analysis (including a steady-state analysis for both continuous and discontinuous conduction modes) and numerous real-world practical examples (including circuit models of the PWM converters) demonstrate how to design these from scratch.
The book provides an in-depth presentation of topologies of PWM DC-DC power converters, voltage- and current-mode control of PWM DC-DC power converters, considers power losses in all components, device stresses, output voltage ripple, converter efficiency and power factor correction (PFC). It also includes extensive coverage of the following:
topologies of high-efficiency switching-mode PWM and soft-switching DC-DC power converters;
DC voltage transfer functions (conversion ratios), component values, losses, efficiency, and stresses;
small-signal averaged circuit models;
current-mode and voltage-mode feedback controls;
metal-oxide-semiconductor field-effect power transistors (MOSFETs);
silicon (Si) and silicon carbide (SiC) power semiconductor devices. Before now, there has been no book that covers silicon carbide devices.
Pulse-width Modulated DC-DC Power Converters is a comprehensive textbook for senior undergraduate and graduate students in the areas of electrical, electronics, and telecommunications engineering. It includes end-of-chapter review
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questions, problems, and thorough summaries of the key concepts to aid learning, and a Solutions Manual is available for professors. Scientists and practicing design engineers working with SMPS, within such applications as computers, telecommunications, industrial systems, automobile electronics, medical equipment, aerospace power technology, and radars (amongst others) will also find this text insightful.
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Inhaltsverzeichnis zu „Pulse-width Modulated DC-DC Power Converters “
Preface.About the Author.
List of Symbols.
1 Introduction.
1.1 Classification of Power Supplies.
1.2 Basic Functions of Voltage Regulators.
1.3 Power Relationships in DC-DC Converters.
1.4 DC Transfer Functions of DC-DC Converters.
1.5 Static Characteristics of DC Voltage Regulators.
1.6 Dynamic Characteristics of DC Voltage Regulators.
1.7 Linear Voltage Regulators.
1.8 Topologies of PWM DC-DC Converters
1.9 Relationships among Current, Voltage, Energy, and Power.
1.10 Electromagnetic Compatibility.
1.11 Summary.
1.12 References.
1.13 Review Questions.
1.14 Problems.
2 BuckPWMDC-DCConverter.
2.1 Introduction.
2.2 DC Analysis of PWM Buck Converter for CCM.
2.3 DC Analysis of PWM Buck Converter for DCM.
2.4 Buck Converter with Input Filter.
2.5 Buck Converter with Synchronous Rectifier.
2.6 Buck Converter with Positive Common Rail.
2.7 Tapped-Inductor Buck Converters.
2.8 Multiphase Buck Converter.
2.9 Summary.
2.10 References.
2.11 Review Questions.
2.12 Problems.
3 Boost PWM DC-DC Converter.
3.1 Introduction.
3.2 DC Analysis of PWM Boost Converter for CCM.
3.3 DC Analysis of PWM Boost Converter for DCM.
3.4 Bidirectional Buck and Boost Converters.
3.5 Tapped-Inductor Boost Converters.
3.6 Duality.
3.7 Power Factor Correction.
3.8 Summary.
3.9 References.
3.10 Review Questions.
3.11 Problems.
4 Buck-Boost PWM DC-DC Converter.
4.1 Introduction.
4.2 DC Analysis of PWM Buck-Boost Converter for CCM.
4.3 DC Analysis of PWM Buck-Boost Converter for DCM.
4.4 Bidirectional Buck-Boost Converter.
4.5 Synthesis of Buck-Boost Converter.
4.6 Synthesis of Boost-Buck (Cuk) Converter.
4.7 Noninverting Buck-Boost Converters.
4.8 Tapped-Inductor Buck-Boost Converters.
4.9 Summary.
4.10 References.
4.11 Review Questions.
4.12 Problems.
5 Flyback PWM DC-DC Converter.
5.1 Introduction.
5.2 Transformers.
5.3 DC
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Analysis of PWM Flyback Converter for CCM.
5.4 DC Analysis of PWM Flyback Converter for DCM.
5.5 Multiple-Output Flyback Converter.
5.6 Bidirectional Flyback Converter.
5.7 Ringing in Flyback Converter.
5.8 Flyback Converter with Active Clamping.
5.9 Two-Transistor Flyback Converter.
5.10 Summary.
5.11 References.
5.12 Review Questions.
5.13 Problems.
6 Forward PWM DC-DC Converter.
6.1 Introduction.
6.2 DC Analysis of PWM Forward Converter for CCM.
6.3 DC Analysis of PWM Forward Converter for DCM.
6.4 Multiple-Output Forward Converter.
6.5 Forward Converter with Synchronous Rectifier.
6.6 Forward Converters with Active Clamping.
6.7 Two-Switch Forward Converter.
6.8 Summary.
6.9 References.
6.10 Review Questions.
6.11 Problems.
7 Half-Bridge PWM DC-DC Converter.
7.1 Introduction.
7.2 DC Analysis of PWM Half-Bridge Converter for CCM.
7.3 DC Analysis of PWM Half-Bridge Converter for DCM.
7.4 Summary.
7.5 References.
7.6 Review Questions.
7.7 Problems.
8 Full-Bridge PWM DC-DC Converter.
8.1 Introduction.
8.2 DC Analysis of PWM Full-Bridge Converter for CCM.
8.3 DC Analysis of PWM Full-Bridge Converter for DCM.
8.4 Phase-Controlled Full-Bridge Converter.
8.5 Summary.
8.6 References.
8.7 Review Questions.
8.8 Problems.
9 Push-Pull PWM DC-DC Converter.
9.1 Introduction.
9.2 DC Analysis of PWM Push-Pull Converter for CCM.
9.3 DC Analysis of PWM Push-Pull Converter for DCM.
9.4 Comparison of PWM DC-DC Converters.
9.5 Summary.
9.6 References.
9.7 Review Questions.
9.8 Problems.
10 Small-Signal Models of PWM Converters for CCM and DCM.
10.1 Introduction.
10.2 Assumptions.
10.3 Averaged Model of Ideal Switching Network for CCM.
10.4 Averaged Values of Switched Resistances.
10.5 Model Reduction.
10.6 Large-Signal Averaged Model for CCM.
10.7 DC and Small-Signal Circuit Linear Models of Switching Network for CCM.
5.4 DC Analysis of PWM Flyback Converter for DCM.
5.5 Multiple-Output Flyback Converter.
5.6 Bidirectional Flyback Converter.
5.7 Ringing in Flyback Converter.
5.8 Flyback Converter with Active Clamping.
5.9 Two-Transistor Flyback Converter.
5.10 Summary.
5.11 References.
5.12 Review Questions.
5.13 Problems.
6 Forward PWM DC-DC Converter.
6.1 Introduction.
6.2 DC Analysis of PWM Forward Converter for CCM.
6.3 DC Analysis of PWM Forward Converter for DCM.
6.4 Multiple-Output Forward Converter.
6.5 Forward Converter with Synchronous Rectifier.
6.6 Forward Converters with Active Clamping.
6.7 Two-Switch Forward Converter.
6.8 Summary.
6.9 References.
6.10 Review Questions.
6.11 Problems.
7 Half-Bridge PWM DC-DC Converter.
7.1 Introduction.
7.2 DC Analysis of PWM Half-Bridge Converter for CCM.
7.3 DC Analysis of PWM Half-Bridge Converter for DCM.
7.4 Summary.
7.5 References.
7.6 Review Questions.
7.7 Problems.
8 Full-Bridge PWM DC-DC Converter.
8.1 Introduction.
8.2 DC Analysis of PWM Full-Bridge Converter for CCM.
8.3 DC Analysis of PWM Full-Bridge Converter for DCM.
8.4 Phase-Controlled Full-Bridge Converter.
8.5 Summary.
8.6 References.
8.7 Review Questions.
8.8 Problems.
9 Push-Pull PWM DC-DC Converter.
9.1 Introduction.
9.2 DC Analysis of PWM Push-Pull Converter for CCM.
9.3 DC Analysis of PWM Push-Pull Converter for DCM.
9.4 Comparison of PWM DC-DC Converters.
9.5 Summary.
9.6 References.
9.7 Review Questions.
9.8 Problems.
10 Small-Signal Models of PWM Converters for CCM and DCM.
10.1 Introduction.
10.2 Assumptions.
10.3 Averaged Model of Ideal Switching Network for CCM.
10.4 Averaged Values of Switched Resistances.
10.5 Model Reduction.
10.6 Large-Signal Averaged Model for CCM.
10.7 DC and Small-Signal Circuit Linear Models of Switching Network for CCM.
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Autoren-Porträt von Marian K. Kazimierczuk
Professor Marian K. Kazimierczuk is at the Department of Electrical Engineering,Wright State University. Over 22 years, Professor Kazimierczuk has taught three highly attended graduate courses in the area of high-frequency power electronics. Enrolment has steadily increased so that his course today has the largest graduate in the College of Engineering and Computer Science at Wright State University. Professor Kazimierczuk has won the Excellence in Teaching Award several times, has over thirty years experience researching power electronics amplifiers, and holds seven patents.His Science Citation Index is over 1000, one of the highest in the field. As well as being published in over 110 papers in the IEE Transactions and over 150 papers in the IEEE international conferences on power conversion, he has written three textbooks. An IEEE Fellow, Kazimierczuk has served as an Associate Editor for the IEEE Transactions on Circuits and Systems several times, and is currently Associate Editor of the IEEE Transactions on Industrial Electronics. He has twice been a Chair of the Technical Committee of Power Electronics and Power Systems for the IEEE Circuits and Systems Society. He has also been a track chair and a member of the program and steering committees of many international conferences and served as a session chair many times.
Bibliographische Angaben
- Autor: Marian K. Kazimierczuk
- 2008, 1. Auflage, 816 Seiten, Maße: 17,5 x 24,9 cm, Gebunden, Englisch
- Verlag: Wiley & Sons
- ISBN-10: 0470773014
- ISBN-13: 9780470773017
- Erscheinungsdatum: 23.09.2008
Sprache:
Englisch
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