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412 Pages
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Switch-Mode Power Converters introduces an innovative, highly analytical approach to symbolic, closed-form solutions for switched-mode power converter circuits. This is a highly relevant topic to power electronics students and professionals who are involved in the design and analysis of electrical power converters. The author uses extensive equations to explain how solid-state switches convert electrical voltages from one level to another, so that electronic devices (e.g., audio speakers, CD players, DVD players, etc.) can use different voltages more effectively to perform their various functions. Most existing comparable books published as recently as 2002 do not discuss closed-loop operations, nor do they provide either DC closed-loop regulation equations or AC loop gain (stability) formulae. The author Wu, a leading engineer at Lockheed Martin, fills this gap and provides among the first descriptions of how error amplifiers are designed in conjunction with closed-loop bandwidth selection.
BENEFIT TO THE READER: Readers will gain a mathematically rigorous introduction to numerous, closed-form solutions that are readily applicable to the design and development of various switch-mode power converters.
- Provides symbolic, closed-form solutions for DC and AC studies
- Provides techniques for expressing close-loop operation
- Gives readers the ability to perform closed-loop regulation and sensitivity studies
- Gives readers the ability to design error amplifiers with precision
- Employs the concept of the continuity of states in matrix form
- Gives accelerated time-domain, steady-state studies using Laplace transform
- Gives accelerated time-domain studies using state transition
- Extensive use of matrix, linear algebra, implicit functions, and Jacobian determinants
- Enables the determination of power stage gain that otherwise could not be obtained
| Preface | p. xiii |
| Isolated Step-Down (Buck) Converter | p. 1 |
| CCM Open-Loop Output and Duty Cycle Determination | p. 1 |
| DCM Open-Loop Output and Duty Cycle Determination | p. 5 |
| CCM to DCM Transition, Critical Inductance | p. 6 |
| Gain Formula for Nonideal Operational Amplifiers | p. 7 |
| Feedback under Voltage-Mode Control | p. 9 |
| Voltage-Mode CCM Closed Loop | p. 11 |
| Voltage-Mode DCM Closed Loop | p. 13 |
| Voltage-Mode CCM Small-Signal Stability | p. 14 |
| Current-Mode Control | p. 19 |
| CCM Current-Mode Control in a Closed-Loop Steady State | p. 21 |
| CCM Current-Mode Control Small-Signal Stability | p. 24 |
| Output Capacitor Size and Accelerated Steady-State Analysis | p. 26 |
| A Complete Example | p. 33 |
| State Transition Technique | p. 45 |
| Push-Pull Converter with Current-Mode Control and Slope Compensation | p. 49 |
| Power Stage of a Center-Tapped Push-Pull Converter | p. 50 |
| Discontinuous Conduction-Mode Operation | p. 51 |
| Continuous Conduction-Mode Operation | p. 61 |
| Nonisolated Forward Converter with Average Current-Mode Control | p. 67 |
| Average Current Feedback | p. 67 |
| Duty Cycle Determination | p. 71 |
| Steady-State Closed Loop | p. 72 |
| Closed-Loop Regulation and Output Sensitivity | p. 73 |
| Small-Signal Loop Gain and Stability | p. 74 |
| Example | p. 75 |
| State Transition Technique | p. 76 |
| Phase-Shifted Full-Bridge Converter | p. 83 |
| Power-Stage Operation | p. 84 |
| Current Doubler | p. 84 |
| Steady-State Duty Cycle | p. 86 |
| Steady-State Output Waveforms | p. 87 |
| Steady-State Output Waveforms Example | p. 93 |
| Current-Fed Push-Pull Converters | p. 95 |
| Overlapping Continuous-Conduction Mode | p. 97 |
| Overlapping Continuous Conduction, Steady State | p. 101 |
| Overlapping Continuous Conduction, Example | p. 105 |
| Nonoverlapping Continuous-Conduction Mode | p. 105 |
| Load Current Sharing and Parallel Operation | p. 108 |
| AC Small-Signal Studies Using State-Space Averaging | p. 113 |
| State-Transition Technique | p. 116 |
| Isolated Flyback Converters | p. 119 |
| DCM Duty-Cycle Determination, Another Approach | p. 120 |
| CCM Duty-Cycle Determination | p. 121 |
| Critical Inductance | p. 123 |
| Voltage-Mode DCM Closed Loop | p. 123 |
| Voltage-Mode DCM Small-Signal Stability | p. 124 |
| Voltage-Mode CCM Closed Loop | p. 125 |
| Voltage-Mode CCM Small-Signal Stability | p. 126 |
| Peak Current-Mode DCM Closed Loop | p. 126 |
| Peak Current-Mode DCM Small-Signal Stability | p. 128 |
| Peak Current-Mode CCM Closed Loop | p. 129 |
| Peak Current-Mode CCM Small-Signal Stability | p. 130 |
| Output Capacitor | p. 132 |
| Accelerated Steady-State Output | p. 133 |
| A Complete DCM Example | p. 136 |
| Nonisolated Boost Converter | p. 149 |
| Duty-Cycle Determination | p. 149 |
| Critical Inductance | p. 151 |
| Peak Current-Mode Closed-Loop Steady State in CCM | p. 151 |
| Peak Current-Mode Small-Signal Stability in CCM | p. 152 |
| Peak Current-Mode Closed-Loop Steady State in DCM | p. 153 |
| Peak Current-Mode Small-Signal Stability in DCM | p. 154 |
| DCM Output Capacitor Size | p. 155 |
| CCM Output Capacitor Size | p. 156 |
| Quasi-Resonant Converters | p. 157 |
| How Does It Work? | p. 158 |
| Mathematical Analysis | p. 159 |
| Steady-State Closed Loop and Stability | p. 165 |
| Design Issues | p. 167 |
| Example and Dilemma | p. 168 |
| Class-E Resonant Converter | p. 171 |
| Starting States of the Steady State | p. 175 |
| Time-Domain Steady-State Solutions | p. 182 |
| Closed-Loop DC Analysis | p. 184 |
| Closed-Loop AC Analysis | p. 187 |
| Type II Amplifier | p. 189 |
| Example | p. 191 |
| Discussion | p. 199 |
| AC-DC Power-Factor Correction Supplies | p. 203 |
| Fundamental Definition | p. 204 |
| Single-Phase Single-Stage Nonisolated Boost PFC | p. 206 |
| Output Capacitor Size | p. 207 |
| DCM Boost Inductor Selection | p. 210 |
| CCM Boost Inductor Selection | p. 214 |
| High-Power PFC and Load Sharing | p. 217 |
| Surge Protection | p. 220 |
| Load Short-Circuit Protection | p. 222 |
| Three-Phase PFC | p. 223 |
| Error Amplifiers | p. 237 |
| Amplifier Category | p. 238 |
| Innate Phase of the Control Loop | p. 242 |
| Type II Amplifier Implementation | p. 243 |
| Type III Amplifier Implementation | p. 245 |
| Example for Type II Amplifier Implementation | p. 247 |
| Supporting Circuits | p. 249 |
| Bipolar Switch Drivers | p. 249 |
| MOSFET Switch Drivers | p. 255 |
| Dissipative Snubber | p. 259 |
| Lossless Snubber | p. 260 |
| Isolated Feedback | p. 261 |
| Soft Start | p. 263 |
| Negative-Charge Pump | p. 264 |
| Single-Phase Full-Wave Rectifier with RC Filter | p. 267 |
| Duty-Cycle Clamping | p. 273 |
| State-Space Averaging and the Cuk Converter | p. 279 |
| State-Space Averaging | p. 279 |
| General Procedure | p. 282 |
| Example: Cuk Converter | p. 282 |
| Simulation | p. 291 |
| Dynamic Equations for a Forward Converter with Voltage-Mode Control | p. 292 |
| Turn-on Forward Converter with Voltage-Mode Control | p. 298 |
| Steady-State Forward Converter with Voltage-Mode Control | p. 298 |
| Steady State, Zoomed In | p. 298 |
| Load-Transient Forward Converter with Voltage-Mode Control | p. 303 |
| Dynamic Equations for a Forward Converter with Peak Current-Mode Control | p. 306 |
| Simulation, Forward Converter with Peak Current-Mode Control | p. 310 |
| State Transition Technique: Accelerated Steady State | p. 313 |
| Power Quality and Integrity | p. 327 |
| Tolerance of Components, Devices, and Operating Conditions | p. 329 |
| DC Output Regulation and Worst Case Analysis | p. 330 |
| Supply Output Ripple and Noise | p. 332 |
| Supply Output Transient Responses | p. 333 |
| The Concepts of Frequency and Harmonic Content | p. 335 |
| Control-Loop Bandwidth | p. 339 |
| Step Response Test | p. 342 |
| Bandwidth and Stability | p. 343 |
| Electromagnetic Harmonic Emissions | p. 347 |
| Power Quality | p. 348 |
| Appendixes | p. 353 |
| Additional Filtering for Forward-Converter Current Sensing | p. 353 |
| MathCAD Listing, Steady-State Output for Figure 1.42 | p. 355 |
| MATLAB Listing, Steady-State Output for Figure 1.42 | p. 361 |
| MathCAD Listing, Steady-State Current-Sensing Output | p. 365 |
| MATLAB Listing, Converter Simulation | p. 371 |
| Capacitor and Inductor | p. 379 |
| MATLAB Listing for an Input Filter with a Pulsating Load | p. 381 |
| References | p. 385 |
| Index | p. 387 |
| Table of Contents provided by Ingram. All Rights Reserved. |
ISBN: 9780120887958
ISBN-10: 0120887959
Published: 11th October 2005
Format: Hardcover
Language: English
Number of Pages: 412
Audience: General Adult
Publisher: Academic Press
Country of Publication: US
Dimensions (cm): 22.86 x 15.24 x 2.39
Weight (kg): 0.77
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