Power System Dynamics

Höfundar: Jan Machowski; Zbigniew Lubosny; Janusz W. Bialek; James R. Bumby (Útgáfa: 3)
Power System Dynamics

Kaup valmöguleikar

An authoritative guide to the most up-to-date information on power system dynamics The revised third edition of Power System Dynamics and Stability contains a comprehensive, state-of-the-art review of information on the topic. The third edition continues the successful approach of the first and second editions by progressing from simplicity to complexity. It places the emphasis first on understanding the underlying physical principles before proceeding to more complex models and algorithms.

The book is illustrated by a large number of diagrams and examples. The third edition of Power System Dynamics and Stability explores the influence of wind farms and virtual power plants, power plants inertia and control strategy on power system stability. The authors--noted experts on the topic--cover a range of new and expanded topics including:  Wide-area monitoring and control systems.

Improvement of power system stability by optimization of control systems parameters. Impact of renewable energy sources on power system dynamics. The role of power system stability in planning of power system operation and transmission network expansion. Real regulators of synchronous generators and field tests. Selectivity of power system protections at power swings in power system. Criteria for switching operations in transmission networks.

Influence of automatic control of a tap changing step-up transformer on the power capability area of the generating unit. Mathematical models of power system components such as HVDC links, wind and photovoltaic power plants.   Data of sample (benchmark) test systems. Power System Dynamics: Stability and Control, Third Edition is an essential resource for students of electrical engineering and for practicing engineers and researchers who need the most current information available on the topic.

Nánar um bókina

Útgefandi
Wiley Global Research (STMS)
ISBN
9781119526360
Print ISBN
9781119526346
Format
ePub
Útgáfa
3
Höfundar
Jan Machowski; Zbigniew Lubosny; Janusz W. Bialek; James R. Bumby
Tungumál
English
Útgefið
2020-02-25
Prent takmörkun á líftíma
100
Prent takmörkun
10
Afritunar takmörkun
2

Kaflar

  • Cover
  • About the Authors
  • List of Symbols & Abbreviations
  • Part I: Introduction to Power Systems
  • 1 Introduction
  • 1.1 Stability and Control of a Dynamic System
  • 1.2 Classification of Power System Dynamics
  • 1.3 Two Pairs of Important Quantities
  • 1.4 Stability of a Power System
  • 1.5 Security of a Power System
  • 2 Power System Components
  • 2.1 Introduction
  • 2.2 Structure of the Electric Power System
  • 2.3 Generating Units
  • 2.4 Substations
  • 2.5 Transmission and Distribution Network
  • 2.6 Protection
  • 2.7 Wide Area Measurement Systems
  • 3 The Power System in the Steady State
  • 3.1 Transmission Lines
  • 3.2 Transformers
  • 3.3 Synchronous Generators
  • 3.4 Power System Loads
  • 3.5 Network Equations
  • 3.6 Power Flows in Transmission Networks
  • Part II: Introduction to Power System Dynamics
  • 4 Electromagnetic Phenomena
  • 4.1 Fundamentals
  • 4.2 Three‐phase Short Circuit on a Synchronous Generator
  • 4.3 Phase‐to‐phase Short Circuit
  • 4.4 Switching Operations
  • 4.5 Subsynchronous Resonance
  • 5 Electromechanical Dynamics – Small Disturbances
  • 5.1 Swing Equation
  • 5.2 Damping Power
  • 5.3 Equilibrium Points
  • 5.4 Steady‐state Stability of Unregulated System
  • 5.5 Steady‐state Stability of the Regulated System
  • 6 Electromechanical Dynamics – Large Disturbances
  • 6.1 Transient Stability
  • 6.2 Swings in Multi‐machine Systems
  • 6.3 Direct Method for Stability Assessment
  • 6.4 Synchronization
  • 6.5 Asynchronous Operation and Resynchronization
  • 6.6 Out‐of‐step Protection System
  • 7 Wind Power
  • 7.1 Wind Turbines
  • 7.2 Generator Systems
  • 7.3 Induction Machine Equivalent Circuit
  • 7.4 Induction Generator Coupled to the Grid
  • 7.5 Induction Generators with Slightly Increased Speed Range via External Rotor Resistance
  • 7.6 Induction Generators with Significantly Increased Speed Range
  • 7.7 Fully Rated Converter Systems (Wide Speed Control)
  • 7.8 Peak Power Tracking of Variable Speed Wind Turbines
  • 7.9 Connections of Wind Farms
  • 7.10 Fault Behavior of Induction Generators
  • 7.11 Influence of Wind Generators on Power System Stability
  • 8 Voltage Stability
  • 8.1 Network Feasibility
  • 8.2 Stability Criteria
  • 8.3 Critical Load Demand and Voltage Collapse
  • 8.4 Static Analyses
  • 8.5 Dynamic Analysis
  • 8.6 Prevention of Voltage Collapse
  • 8.7 Self‐excitation of a Generator Operating on a Capacitive Load
  • 9 Frequency Stability and Control
  • 9.1 Automatic Generation Control
  • 9.2 Stage I – Rotor Swings in the Generators
  • 9.3 Stage II – Frequency Drop
  • 9.4 Stage III – Primary Control
  • 9.5 Stage IV – Secondary Control
  • 9.6 Simplified Simulation Models
  • 9.7 Series FACTS Devices in Tie‐lines
  • 9.8 Static Analysis by Snapshots of Power Flow
  • 10 Stability Enhancement
  • 10.1 Excitation Control System
  • 10.2 Turbine Control System
  • 10.3 Braking Resistors
  • 10.4 Generator Tripping
  • 10.5 Shunt FACTS Devices
  • 10.6 Series Compensators
  • 10.7 Unified Power Flow Controller
  • 10.8 HVDC Links in Transmission Network
  • Part III: Advanced Topics in Power System Dynamics
  • 11 Advanced Power System Modeling
  • 11.1 Synchronous Generator
  • 11.2 Excitation Systems
  • 11.3 Turbines and Turbine Governors
  • 11.4 Wind Turbine Generator Systems and Wind Farms
  • 11.5 Photovoltaic Power Plants
  • 11.6 HVDC Links
  • 11.7 Facts Devices
  • 11.8 Dynamic Load Models
  • 12 Steady‐state Stability of Multi‐machine Systems
  • 12.1 Mathematical Background
  • 12.2 Steady‐state Stability of Unregulated System
  • 12.3 Steady‐state Stability of the Regulated System
  • 13 Power System Dynamic Simulation
  • 13.1 Numerical Integration Methods
  • 13.2 The Partitioned Solution
  • 13.3 The Simultaneous Solution Methods
  • 13.4 Comparison Between the Methods
  • 13.5 Modeling of Unbalanced Faults
  • 13.6 Evaluation of Power System Dynamic Response
  • 14 Stability Studies in Power System Planning
  • 14.1 Purposes and Kinds of Analyses
  • 14.2 Planning Criteria
  • 14.3 Automation of Analyses and Reporting
  • 15 Optimization of Control System Parameters
  • 15.1 Grid Code Requirements
  • 15.2 Optimization Methods
  • 15.3 Linear Regulators
  • 15.4 Optimal Regulators LQG, LQR, and LQI
  • 15.5 Robust Regulators H2, h∞
  • 15.6 Nonlinear Regulators
  • 15.7 Adaptive Regulators
  • 15.8 Real Regulators and Field Tests
  • 16 Wide‐Area Monitoring and Control
  • 16.1 Wide Area Measurement Systems
  • 16.2 Examples of WAMS Applications
  • 17 Impact of Renewable Energy Sources on Power System Dynamics
  • 17.1 Renewable Energy Sources
  • 17.2 Inertia in the Electric Power System
  • 17.3 Virtual Inertia
  • 18 Power System Model Reduction – Equivalents
  • 18.1 Types of Equivalents
  • 18.2 Network Transformation
  • 18.3 Aggregation of Generating Units
  • 18.4 Equivalent Model of External Subsystem
  • 18.5 Coherency Recognition
  • 18.6 Properties of Coherency Based Equivalents
  • Appendix
  • A.1 Per‐unit System
  • A.2 Partial Inversion
  • A.3 Linear Ordinary Differential Equations
  • A.4 Prony Analysis
  • A.5 Limiters and Symbols in Block Diagrams
  • References
  • Index
  • End User License Agreement