LEADER 05406nam 2200661 450 001 9910139148703321 005 20230713125117.0 010 $a1-118-70223-9 010 $a1-118-70221-2 010 $a1-118-70222-0 035 $a(CKB)2550000001280592 035 $a(EBL)1680605 035 $a(SSID)ssj0001194593 035 $a(PQKBManifestationID)11679311 035 $a(PQKBTitleCode)TC0001194593 035 $a(PQKBWorkID)11155644 035 $a(PQKB)10455588 035 $a(OCoLC)875404420 035 $a(MiAaPQ)EBC1680605 035 $a(DLC) 2014012811 035 $a(Au-PeEL)EBL1680605 035 $a(CaPaEBR)ebr10865379 035 $a(CaONFJC)MIL601876 035 $a(EXLCZ)992550000001280592 100 $a20140505h20142014 uy 0 101 0 $aeng 135 $aur|n|---||||| 181 $ctxt 182 $cc 183 $acr 200 10$aSoft-switching PWM full-bridge converters $etopologies, control, and design /$fXinbo Ruan 210 1$aSingapore :$cWiley :$cScience Press,$d2014. 210 4$dİ2014 215 $a1 online resource (234 p.) 300 $aDescription based upon print version of record. 311 $a1-118-70220-4 311 $a1-306-70625-4 320 $aIncludes bibliographical references and index. 327 $aCover; Title Page; Copyright; Contents; About the Author; Preface; Acknowledgment; List of Abbreviations; Chapter 1 Topologies and Operating Principles of Basic Full-Bridge Converters; 1.1 Introduction; 1.1.1 Development Trends of Power Electronics Technology; 1.1.2 Classification and Requirements of Power Electronics Converters; 1.1.3 Classification and Characterization of dc-dc Converters; 1.2 Isolated Buck-Derived Converters; 1.2.1 Forward Converter; 1.2.2 Push-Pull Converter; 1.2.3 Half-Bridge Converter; 1.2.4 Full-Bridge Converter; 1.2.5 Comparison of Isolated Buck-Derived Converters 327 $a1.3 Output Rectifier Circuits1.3.1 Half-Wave Rectifier Circuit; 1.3.2 Full-Wave Rectifier Circuit; 1.3.3 Full-Bridge Rectifier Circuit; 1.3.4 Current-Doubler Rectifier Circuit; 1.4 Basic Operating Principle of Full-Bridge Converters; 1.4.1 Topologies of Full-Bridge Converters; 1.4.2 Pulse-Width Modulation Strategies for Full-Bridge Converters; 1.4.3 Basic Operating Principle of a Full-Bridge Converter with a Full-Wave Rectifier Circuit and a Full-Bridge Rectifier Circuit; 1.4.4 Basic Operating Principle of a Full-Bridge Converter with a Current-Doubler Rectifier Circuit; 1.5 Summary 327 $aReferencesChapter 2 Theoretical Basis of Soft Switching for PWM Full-Bridge Converters; 2.1 PWM Strategies for Full-Bridge Converters; 2.1.1 Basic PWM Strategy; 2.1.2 Definition of On-Time of Power Switches; 2.1.3 A Family of PWM Strategies; 2.2 Two Types of PWM Strategy; 2.2.1 The Two Diagonal Power Switches Turn Off Simultaneously; 2.2.2 The Two Diagonal Power Switches Turn Off in a Staggered Manner; 2.3 Classification of Soft-Switching PWM Full-Bridge Converters; 2.4 Summary; Reference; Chapter 3 Zero-Voltage-Switching PWM Full-Bridge Converters 327 $a3.1 Topologies and Modulation Strategies of ZVS PWM Full-Bridge Converters3.1.1 Modulation of the Lagging Leg; 3.1.2 Modulation of the Leading Leg; 3.1.3 Modulation Strategies of the ZVS PWM Full-Bridge Converters; 3.2 Operating Principle of ZVS PWM Full-Bridge Converter; 3.3 ZVS Achievement of Leading and Lagging Legs; 3.3.1 Condition for Achieving ZVS; 3.3.2 Condition for Achieving ZVS for the Leading Leg; 3.3.3 Condition for Achieving ZVS for the Lagging Leg; 3.4 Secondary Duty Cycle Loss; 3.5 Commutation of the Rectifier Diodes; 3.5.1 Full-Bridge Rectifier; 3.5.2 Full-Wave Rectifier 327 $a3.6 Simplified Design Procedure and Example3.6.1 Turn Ratio of Transformer; 3.6.2 Resonant Inductor; 3.6.3 Output Filter Inductor and Capacitor; 3.6.4 Power Devices; 3.6.5 Load Range of ZVS; 3.7 Experimental Verification; 3.8 Summary; References; Chapter 4 Zero-Voltage-Switching PWM Full-Bridge Converters with Auxiliary-Current-Source Networks; 4.1 Current-Enhancement Principle; 4.2 Auxiliary-Current-Source Network; 4.3 Operating Principle of a ZVS PWM Full-Bridge Converter with Auxiliary-Current-Source Network; 4.4 Conditions for Achieving ZVS in the Lagging Leg; 4.5 Parameter Design 327 $a4.5.1 Parameter Selection for the Auxiliary-Current-Source Network 330 $aSoft-switching PWM full-bridge converters have been widely used in medium-to-high power dc-dc conversions for topological simplicity, easy control and high efficiency. Early works on soft-switching PWM full-bridge converter by many researchers included various topologies and modulation strategies. However, these works were scattered, and the relationship among these topologies and modulation strategies had not been revealed. This book intends to describe systematically the soft-switching techniques for pulse-width modulation (PWM) full-bridge converters, including the topologies, control a 606 $aPWM power converters 606 $aSwitching power supplies 615 0$aPWM power converters. 615 0$aSwitching power supplies. 676 $a621.3815/37 700 $aRuan$b Xinbo$0961302 801 0$bMiAaPQ 801 1$bMiAaPQ 801 2$bMiAaPQ 906 $aBOOK 912 $a9910139148703321 996 $aSoft-switching PWM full-bridge converters$92179284 997 $aUNINA