Impedance Source Power Electronic Converters. (2016)
- Record Type:
- Book
- Title:
- Impedance Source Power Electronic Converters. (2016)
- Main Title:
- Impedance Source Power Electronic Converters
- Further Information:
- Note: Yushan Liu, Haitham Abu-Rub, Baoming Ge, Frede Blaabjerg, Omar Ellabban, Poh Chiang Loh.
- Authors:
- Liu, Yushan
Abu-Rub, Haitham
Ge, Baoming
Blaabjerg, Frede
Ellabban, Omar
Loh, Poh Chiang - Contents:
- 1. Background and Current Status 1.1 General Introduction of Electrical Power Generation 1.1.1 Energy Systems 1.1.2 Existing Power Converter Topologies 1.2 Z-Source Converter as Single-Stage Power Conversion System 1.3 Background and Advantages Compared to Existing Technology 1.4 Classification and Current Status 1.5 Future Trends 1.6 Contents Overview 2. Voltage-Fed Z-Source/Quasi-Z-Source Inverters 2.1 Topologies of Voltage-Fed Z-Source/Quasi-Z-Source Inverters 2.2 Modeling of Voltage-Fed qZSI 2.2.1 Steady-State Model 2.2.2 Dynamic Model 2.3 Simulation Results 2.3.1 Simulation of qZSI Modeling 2.3.2 Circuit Simulation Results of Control System 2.4 Conclusion 3. Current-Fed Z-Source Inverter 3.1 Introduction 3.2 Topology Modification 3.3 Operation Principles 3.3.1 Current-Fed Z-Source Inverter 3.3.2 Current-Fed Quasi-Z-Source Inverter 3.4 Modulation 3.5 Modeling and Control 3.6 Passive Components Design Guidelines 3.7 Discontinuous Operation Modes 3.8 Current-Fed Z-source Inverter/ Current-Fed quasi-Z-source Inverter Applications 3.9 Summary 4. Modulation Methods and Comparison 4.1 Sinewave Pulsewidth Modulations 4.1.1 Simple Boost Control 4.1.2 Maximum Boost Control 4.1.3 Maximum Constant Boost Control 4.2 Space Vector Modulations 4.2.1 Traditional SVM 4.2.2 SVMs for ZSI/qZSI 4.3 Pulsewidth Amplitude Modulation 4.4 Comparison of All Modulation Methods 4.4.1 Performance Analysis 4.4.2 Simulation and Experimental Results 4.5 Conclusion 5. Control of Shoot-Through Duty Cycle:1. Background and Current Status 1.1 General Introduction of Electrical Power Generation 1.1.1 Energy Systems 1.1.2 Existing Power Converter Topologies 1.2 Z-Source Converter as Single-Stage Power Conversion System 1.3 Background and Advantages Compared to Existing Technology 1.4 Classification and Current Status 1.5 Future Trends 1.6 Contents Overview 2. Voltage-Fed Z-Source/Quasi-Z-Source Inverters 2.1 Topologies of Voltage-Fed Z-Source/Quasi-Z-Source Inverters 2.2 Modeling of Voltage-Fed qZSI 2.2.1 Steady-State Model 2.2.2 Dynamic Model 2.3 Simulation Results 2.3.1 Simulation of qZSI Modeling 2.3.2 Circuit Simulation Results of Control System 2.4 Conclusion 3. Current-Fed Z-Source Inverter 3.1 Introduction 3.2 Topology Modification 3.3 Operation Principles 3.3.1 Current-Fed Z-Source Inverter 3.3.2 Current-Fed Quasi-Z-Source Inverter 3.4 Modulation 3.5 Modeling and Control 3.6 Passive Components Design Guidelines 3.7 Discontinuous Operation Modes 3.8 Current-Fed Z-source Inverter/ Current-Fed quasi-Z-source Inverter Applications 3.9 Summary 4. Modulation Methods and Comparison 4.1 Sinewave Pulsewidth Modulations 4.1.1 Simple Boost Control 4.1.2 Maximum Boost Control 4.1.3 Maximum Constant Boost Control 4.2 Space Vector Modulations 4.2.1 Traditional SVM 4.2.2 SVMs for ZSI/qZSI 4.3 Pulsewidth Amplitude Modulation 4.4 Comparison of All Modulation Methods 4.4.1 Performance Analysis 4.4.2 Simulation and Experimental Results 4.5 Conclusion 5. Control of Shoot-Through Duty Cycle: An Overview 5.1 Summary of Closed-Loop Control Methods 5.2 Single-Loop Methods 5.3 Double-Loop Methods 5.4 Conventional Regulators and Advanced Control Methods 6. Z-Source Inverter: Topology Improvements Review 6.1 Introduction 6.2 Basic Topology Improvements 6.2.1 Bidirectional Power Flow 6.2.2 High-Performance Operation 6.2.3 Low Inrush Current 6.2.4 Soft-Switching 6.2.5 Neutral Point 6.2.6 Reduced Leakage Current 6.2.7 Joint Earthing 6.2.8 Continuous Input Current 6.2.9 Distributed Z-network 6.2.10 Embedded Source 6.3 Extended Boost Topologies 6.3.1 Switched Inductor Z-Source Inverter 6.3.2 Tapped-Inductor Z-Source Inverter 6.3.3 Cascaded Quasi-Z-Source Inverter 6.3.4 Transformer-Based Z-Source Inverter 6.3.5 High Frequency Transformer Isolated Z-Source Inverter 6.4 L-Z-Source Inverter 6.5 Changing the ZSI Topology Arrangement 6.6 Conclusion 7. Typical Transformer-Based Z-Source/Quasi-Z Source Inverters 7.1 Fundamental of Trans-ZSI 7.1.1 Configuration of Current-Fed and Voltage-Fed Tran-ZSI 7.1.2 Operating Principle of Voltage-Fed Tran-ZSI 7.1.3 Steady-State Model 7.1.4 Dynamic Model 7.1.5 Simulation Results 7.2 LCCT-ZSI/qZSI 7.2.1 Configuration and Operation of LCCT-ZSI 7.2.2 Configuration and Operation of LCCT-qZSI 7.2.3 Simulation Results 7.3 Conclusion 8. Z-Source/Quasi-Z-Source AC-DC Rectifiers 8.1 Topologies of Voltage-Fed Z-Source/Quasi-Z-Source Rectifiers 8.2 Operating Principle 8.3 Dynamic Modeling 8.3.1 DC-Side Dynamic Model of qZSR 8.3.2 AC-Side Dynamic Model of Rectifier Bridge 8.4 Simulation Results 8.5 Conclusion 9. Z-Source DC-DC Converters 9.1 Topologies 9.2 Comparison 9.3 Example Simulation Model and Results 10. Z-Source Matrix Converters 10.1 Introduction 10.2 Z-Source Indirect Matrix Converter (all-silicon solution) 10.2.1 Different Topology Configurations 10.2.2 Operating Principle and Equivalent Circuits 10.2.3 Parameter Design of the QZS-Network 10.2.4 QZSIMC (all-silicon solution) Applications 10.3 Z-Source Indirect Matrix Converter (not all-silicon solution) 10.3.1 Topology Different Configurations 10.3.2 Operating Principle and Equivalent Circuits 10.3.3 Parameter Design of the QZS Network 10.3.4 ZS/QZSIMC (not all-silicon solution) Applications 10.4 Z-Source Direct Matrix Converter 10.4.1 Alternative Topology Configurations 10.4.2 Operating Principle and Equivalent Circuits 10.4.3 Shoot-Through Boost Control Method 10.4.4 Applications of the QZSDMC 10.5 Summary 11. Energy Stored Z-Source/Quasi-Z-Source Inverters 11.1 Energy Stored Z-Source/Quasi-Z Source Inverters 11.1.1 Modeling of qZSI with Battery 11.1.2 Controller Design 11.2 Example Simulations 11.2.1 Case 1: SOCmin11.2.2 Case 2: Avoidance of Battery Overcharging 11.3 Conclusion 12. Z-Source Multilevel Inverters 12.1 Z-Source NPC Inverter 12.1.1 Configuration 12.1.2 Operating Principles 12.1.3 Modulation Scheme 12.2 Z-Source/Quasi-Z Source Cascade Multilevel Inverter 12.2.1 Configuration 12.2.2 Operating Principles 12.2.3 Modulation Scheme 12.2.4 System-Level Modeling and Control 12.2.5 Simulation Results 12.3 Conclusion 13. Design of Z-Source/Quasi-Z-Source inverter 13.1 Z-Source Network Parameters 13.1.1 Inductance and Capacitance of Three-Phase qZSI 13.1.2 Inductance and Capacitance of Single-Phase qZSI 13.2 Loss Calculation Method 13.2.1 H-bridge Device Power Loss 13.2.2 qZS Diode Power Loss 13.2.3 qZS Inductor Power Loss 13.2.4 qZS Capacitor Power Loss 13.3 Voltage and Current Stress 13.4 Coupled Inductor Design 13.5 Efficiency, Cost, and Volume Comparison to Conventional Inverter 13.5.1 Efficiency Comparison 13.5.2 Cost and Volume Comparison 13.6 Conclusion 14. Applications in Photovoltaic Power Systems 14.1 Photovoltaic Power Characteristics 14.2 Typical Configurations of Single-Phase and Three-Phase Systems 14.3 Parameter Design Method 14.4 MPPT Control and System Control Methods 14.5 Examples Demonstration 14.5.1 Single-Phase qZS PV System and Simulation Results 14.5.2 Three-Phase qZS PV Power System and Simulation Results 14.5.3 1-MW/11-kV qZS CMI Based PV Power System and Simulation Results 14.6 Conclusion 15. Applications in Wind Power 15.1 Wind Power Characteristics 15.2 Typical Configurations 15.3 Parameters Design 15.4 MPPT Control and System Control Methods 15.5 Simulation Results of a qZS Wind Power System 15.6 Conclusion 16. Z-Source Inverter for Motor Drives Application: A Review 16.1 Introduction 16.2 Z-Source Inverter Feeding a Permanent Magnet Brushless DC Motor 16.3 Z-Source Inverter Feeding a Switched Reluctance Motor 16.4 Z-Source Inverter Feeding a Permanent Magnet Synchronous Motor 16.5 Z-Source Inverter Feeding an Induction Motor 16.5.1 Scalar Control (V/F) Technique for ZSI-IM drive system 16.5.2 Field Oriented Control Technique for ZSI-IM Drive System 16.5.3 Direct Torque Control (DTC) Technique for ZSI-IM Drive System 16.5.4 Predictive Torque Control for ZSI-IM Drive System< … (more)
- Edition:
- 1st
- Publisher Details:
- Wiley-IEEE Press
- Publication Date:
- 2016
- Extent:
- 1 online resource (424 pages)
- Subjects:
- 621.3815322
- Languages:
- English
- ISBNs:
- 9781119037101
- Access Rights:
- Legal Deposit; Only available on premises controlled by the deposit library and to one user at any one time; The Legal Deposit Libraries (Non-Print Works) Regulations (UK).
- Access Usage:
- Restricted: Printing from this resource is governed by The Legal Deposit Libraries (Non-Print Works) Regulations (UK) and UK copyright law currently in force.
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- Available online (eLD content is only available in our Reading Rooms) ↗
- Physical Locations:
- British Library HMNTS - ELD.DS.82655
- Ingest File:
- 04_008.xml