Power System Analysis and Design, SI Edition

Höfundar: J. Duncan Glover; Mulukutla S. Sarma; Thomas Overbye; Adam Birchfield (Útgáfa: 7)
Power System Analysis and Design, SI Edition

Kaup valmöguleikar

Kynntu þér grunnhugtök nútíma raforkukerfa og þau verkfæri sem þarf til að beita nýfenginni þekkingu við raunverulegar aðstæður með POWER SYSTEM ANALYSIS AND DESIGN, SI, 7th Edition. Nýjustu uppfærslur þessarar útgáfu endurspegla helstu strauma á fræðasviðinu. Höfundar leggja áherslu á mikilvæg eðlisfræðileg hugtök og útskýra lykilaðferðir stærðfræðinnar á skýran hátt.

Adam Birchfield bætist í hóp virtra höfunda og veitir nýja innsýn í nýjustu tækniframfarir. Höfundarnir byggja kenningar og líkön upp frá einföldum grunni og sýna skýrt hvernig beita má meginreglunum við nýjar og flóknari aðstæður. Ný námsmarkmið og gagnlegar samantektir á dæmisögum auðvelda nemendum að einbeita sér að lykilatriðum.

Nánar um bókina

Útgefandi
Cengage Learning US
ISBN
9798214352695
Print ISBN
9780357676196
Format
ePub
Útgáfa
7
Höfundar
J. Duncan Glover; Mulukutla S. Sarma; Thomas Overbye; Adam Birchfield
Tungumál
English
Útgefið
2022-06-17
Prent takmörkun á líftíma
100

Kaflar

  • Cover Page
  • Title Page
  • Copyright Page
  • Dedication
  • Preface
  • Preface to the SI Edition
  • Acknowledgments
  • List of Symbols, Units, and Notation
  • Chapter 1. Learning Objectives
  • Chapter 1. Learning Objectives
  • 1. Introduction
  • 1.1. History of Electric Power Systems
  • 1.2. Present and Future Trends
  • 1.3. Electric Utility Industry Structure
  • 1.4. Computers in Power System Engineering
  • 1.5. Powerworld Simulator
  • References
  • Chapter 2. Learning Objectives
  • Chapter 2. Learning Objectives
  • 2. Fundamentals
  • 2.1. Phasors
  • 2.2. Instantaneous Power in Single-Phase AC Circuits
  • Purely Resistive Load
  • Purely Inductive Load
  • Purely Capacitive Load
  • General RLC Load
  • Real Power
  • Power Factor
  • Reactive Power
  • Physical Significance of Real and Reactive Power
  • 2.3. Complex Power
  • 2.4. Network Equations
  • 2.5. Balanced Three-Phase Circuits
  • Balanced Y Connections
  • Balanced Line-To-Neutral Voltages
  • Balanced Line-to-Line Voltages
  • Balanced Line Currents
  • Balanced- Δ Loads
  • Δ - Y Conversion for Balanced Loads
  • Equivalent Line-To-Neutral Diagrams
  • 2.6. Power in Balanced Three-Phase Circuits
  • Instantaneous Power: Balanced Three-Phase Generators
  • Instantaneous Power: Balanced Three-Phase Motors and Impedance Loads
  • Complex Power: Balanced Three-Phase Generators
  • Complex Power: Balanced Three-Phase Motors
  • Complex Power: Balanced-Y and Balanced- Δ Impedance Loads
  • 2.7. Advantages of Balanced Three-Phase versus Single-Phase Systems
  • 2.8. Energy Conversion
  • Non-Electric to Electric Energy Conversion
  • Electric to Non-Electric Energy Conversion
  • Electric to Electric Energy Conversion
  • Problems
  • References
  • Chapter 3. Learning Objectives
  • Chapter 3. Learning Objectives
  • 3. Power Transformers
  • 3.1. The Ideal Transformer
  • 3.2. Equivalent Circuits for Practical Transformers
  • Saturation
  • Inrush Current
  • Nonsinusoidal Exciting Current
  • Surge Phenomena
  • 3.3. The Per-Unit System
  • 3.4. Three-Phase Transformer Connections and Phase Shift
  • 3.5. Per-Unit Equivalent Circuits of Balanced Three-Phase Two-Winding Transformers
  • 3.6. Three-Winding Transformers
  • 3.7. Autotransformers
  • 3.8. Transformers with Off-Nominal Turns Ratios
  • Problems
  • References
  • Chapter 4. Learning Objectives
  • Chapter 4. Learning Objectives
  • 4. Transmission Line Parameters
  • 4.1. Transmission Line Design Considerations
  • Conductors
  • Insulators
  • Support Structures
  • Shield Wires
  • Electrical Factors
  • Mechanical Factors
  • Environmental Factors
  • Economic Factors
  • 4.2. Resistance
  • 4.3. Conductance
  • 4.4. Inductance: Solid Cylindrical Conductor
  • 4.5. Inductance: Single-Phase Two-Wire Line and Three-Phase Three-Wire Line with Equal Phase Spacing
  • 4.6. Inductance: Composite Conductors, Unequal Phase Spacing, Bundled Conductors
  • 4.7. Series Impedances: Three-Phase Line with Neutral Conductors and Earth Return
  • 4.8. Electric Field and Voltage: Solid Cylindrical Conductor
  • 4.9. Capacitance: Single-Phase, Two-Wire Line and Three-Phase, Three-Wire Line with Equal Phase Spacing
  • 4.10. Capacitance: Stranded Conductors, Unequal Phase Spacing, Bundled Conductors
  • 4.11. Shunt Admittances: Lines with Neutral Conductors and Earth Return
  • 4.12. Electric Field Strength at Conductor Surfaces and at Ground Level
  • 4.13. Parallel Circuit Three-Phase Lines
  • Problems
  • References
  • Chapter 5. Learning Objectives
  • Chapter 5. Learning Objectives
  • 5. Transmission Lines: Steady-State Operation
  • 5.1. Medium and Short Line Approximations
  • 5.2. Transmission-Line Differential Equations
  • 5.3. Equivalent π Circuit
  • 5.4. Lossless Lines
  • Surge Impedance
  • ABCD Parameters
  • Equivalent π Circuit
  • Wavelength
  • Surge Impedance Loading
  • Voltage Profiles
  • Steady-State Stability Limit
  • 5.5. Maximum Power Flow
  • 5.6. Line Loadability
  • 5.7. Reactive Compensation Techniques
  • Problems
  • References
  • Chapter 6. Learning Objectives
  • Chapter 6. Learning Objectives
  • 6. Power Flows
  • 6.1. Direct Solutions to Linear Algebraic Equations: Gauss Elimination
  • 6.2. Iterative Solutions to Linear Algebraic Equations: Jacobi and Gauss-Seidel
  • 6.3. Iterative Solutions to Nonlinear Algebraic Equations: Newton-Raphson
  • 6.4. The Power Flow Problem
  • 6.5. Power Flow Solution by Gauss-Seidel
  • 6.6. Power Flow Solution by Newton-Raphson
  • 6.7. Control of Power Flow
  • 6.8. Sparsity Techniques
  • 6.9. Fast Decoupled Power Flow
  • 6.10. The “DC” Power Flow
  • 6.11. Power Flow Modeling of Wind and Solar Generation
  • 6.12. Realistic and Large-Scale Power Flow Models
  • Problems
  • Design Project 1: New Solar
  • Design Project 1: Transmission System Design Costs
  • Design Project 2: Electric grid Voltage Control Design
  • Design Project 3: Power Flow/Short Circuits
  • References
  • Chapter 7. Learning Objectives
  • Chapter 7. Learning Objectives
  • 7. Power System Economics and Optimization
  • 7.1. Generator and Load Economics
  • 7.2. Economic Dispatch
  • Unconstrained Economic Dispatch
  • Effect of Inequality Constraints
  • Effect of Transmission Losses
  • Other Economic Dispatch Considerations
  • 7.3. Optimal Power Flow
  • Formulation and Solutions of the DC OPF
  • Formulation and Solutions of the AC OPF
  • Formulation and Solutions of the SCOPF
  • 7.4. Unit Commitment and Longer Term Optimization
  • 7.5. Markets
  • Problems
  • References
  • Chapter 8. Learning Objectives
  • Chapter 8. Learning Objectives
  • 8. Symmetrical Faults
  • 8.1. Series R–L Circuit Transients
  • 8.2. Three-Phase Short Circuit—Unloaded Synchronous Machine
  • 8.3. Power System Three-Phase Short Circuits
  • 8.4. Bus Impedance Matrix
  • 8.5. Circuit Breaker and Fuse Selection
  • AC Circuit Breakers
  • Fuses
  • Problems
  • Design Project 3 (Continued): Power Flow/Short Circuits
  • References
  • Chapter 9. Learning Objectives
  • Chapter 9. Learning Objectives
  • 9. Symmetrical Components
  • 9.1. Definition of Symmetrical Components
  • 9.2. Sequence Networks of Impedance Loads
  • Diagonal Sequence Impedances
  • Off-Diagonal Sequence Impedances
  • 9.3. Sequence Networks of Series Impedances
  • 9.4. Sequence Networks of Three-Phase Lines
  • 9.5. Sequence Networks of Rotating Machines
  • 9.6. Per-Unit Sequence Models of Three-Phase Two-Winding Transformers
  • 9.7. Per-Unit Sequence Models of Three-Phase Three-Winding Transformers
  • 9.8. Power in Sequence Networks
  • Problems
  • References
  • Chapter 10. Learning Objectives
  • Chapter 10. Learning Objectives
  • 10. Unsymmetrical Faults
  • 10.1. System Representation
  • 10.2. Single Line-to-Ground Fault
  • 10.3. Line-to-Line Fault
  • 10.4. Double Line-to-Ground Fault
  • 10.5. Sequence Bus Impedance Matrices
  • Balanced Three-Phase Fault:
  • Single Line-to-Ground Fault (Phase a to Ground):
  • Line-to-Line Fault (Phase b to c):
  • Double Line-to-Ground Fault (Phase b to c to Ground):
  • Problems
  • Design Project 3 (Continued): Power Flow/Short Circuits
  • Design Project 4: Circuit Breaker Selection
  • References
  • Chapter 11. Learning Objectives
  • Chapter 11. Learning Objectives
  • 11. System Protection
  • 11.1. System Protection Components
  • 11.2. Instrument Transformers
  • 11.3. Overcurrent Relays
  • 11.4. Radial System Protection
  • 11.5. Reclosers, Fuses, and Sectionalizers
  • 11.6. Directional Relays
  • 11.7. Protection of a Two-Source System with Directional Relays
  • 11.8. Zones of Protection
  • 11.9. Line Protection with Impedance (Distance) Relays
  • 11.10. Differential Relays
  • 11.11. Bus Protection with Differential Relays
  • 11.12. Transformer Protection with Differential Relays
  • 11.13. Pilot Relaying
  • 11.14. Numeric Relaying
  • Problems
  • References
  • Chapter 12. Learning Objectives
  • Chapter 12. Learning Objectives
  • 12. Power System Stability
  • 12.1. The Swing Equation
  • 12.2. Simplified Synchronous Machine Model and System Equivalents
  • 12.3. The Equal-Area Criterion
  • 12.4. Numerical Integration of the Swing Equation
  • 12.5. Multimachine Stability
  • Power System Stability Computation Procedure
  • 12.6. A Two-Axis Synchronous Machine Model
  • 12.7. Wind Turbine and Solar PV Machine Models
  • 12.8. Load Models
  • 12.9. Design Methods for Improving Power System Stability
  • Problems
  • References
  • Chapter 13. Learning Objectives
  • Chapter 13. Learning Objectives
  • 13. Power System Controls
  • 13.1. Generator-Voltage Control
  • Synchronous Generators
  • Wind Turbine-Generators
  • 13.2. Turbine-Governor Control
  • Synchronous Generators
  • Wind Turbine-Generators
  • 13.3. Load-Frequency Control
  • Coordination of Economic Dispatch with LFC
  • 13.4. Power System Stabilizer Control
  • Problems
  • References
  • Chapter 14. Learning Objectives
  • Chapter 14. Learning Objectives
  • 14. Transmission Lines: Transient Operation
  • 14.1. Traveling Waves on Single-Phase Lossless Lines
  • 14.2. Boundary Conditions for Single-Phase Lossless Lines
  • 14.3. Bewley Lattice Diagram
  • 14.4. Discrete-Time Models of Single-Phase Lossless Lines and Lumped RLC Elements
  • Single-Phase Lossless Line
  • Lumped Inductance
  • Lumped Capacitance
  • Lumped Resistance
  • Nodal Equations
  • 14.5. Lossy Lines
  • Attenuation
  • Distortion
  • Power Losses
  • 14.6. Multiconductor Lines
  • 14.7. Power System Overvoltages
  • Lightning
  • Switching Surges
  • Power Frequency Overvoltages
  • 14.8. Insulation Coordination
  • Problems
  • References
  • Chapter 15. Learning Objectives
  • Chapter 15. Learning Objectives
  • 15. Power Distribution
  • 15.1. Introduction to Distribution
  • 15.2. Primary Distribution
  • Primary Radial Systems
  • Primary Loop Systems
  • Primary Network Systems
  • 15.3. Secondary Distribution
  • Individual Distribution Transformer Per Customer
  • Common Secondary Main
  • Secondary Network
  • Spot Network
  • 15.4. Transformers in Distribution Systems
  • Distribution Substation Transformers
  • Distribution Transformers
  • 15.5. Shunt Capacitors in Distribution Systems
  • 15.6. Distribution Software
  • 15.7. Distribution Reliability
  • 15.8. Distribution Automation
  • 15.9. Smart Grids
  • Problems
  • References
  • Appendix.