Modern Power Systems Analysis
by Wang, Xi-Fan; Song, Yonghua; Irving, MalcolmRent Textbook
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Summary
Table of Contents
| Mathematical Model and Solution of Electric Network | p. 1 |
| Introduction | p. 1 |
| Basic Concepts | p. 2 |
| Node Equation and Loop Equation | p. 2 |
| Equivalent Circuit of Transformer and Phase Shift Transformer | p. 9 |
| Nodal Admittance Matrix | p. 13 |
| Basic Concept of Nodal Admittance Matrix | p. 13 |
| Formulation and Modification of Nodal Admittance Matrix | p. 17 |
| Solution to Electric Network Equations | p. 22 |
| Gauss Elimination Method | p. 22 |
| Triangular Decomposition and Factor Table | p. 27 |
| Sparse Techniques | p. 34 |
| Sparse Vector Method | p. 38 |
| Optimal Ordering Schemes of Electric Network Nodes | p. 43 |
| Nodal Impedance Matrix | p. 48 |
| Basic Concept of Nodal Impedance Matrix | p. 48 |
| Forming Nodal Impedance Matrix Using Admittance Matrix | p. 50 |
| Forming Nodal Impedance Matrix by Branch Addition Method | p. 56 |
| Load Flow Analysis | p. 71 |
| Introduction | p. 71 |
| Formulation of Load Flow Problem | p. 73 |
| Classification of Node Types | p. 73 |
| Node Power Equations | p. 76 |
| Load Flow Solution by Newton Method | p. 79 |
| Basic Concept of Newton Method | p. 79 |
| Correction Equations | p. 83 |
| Solution Process of Newton Method | p. 88 |
| Solution of Correction Equations | p. 89 |
| Fast Decoupled Method | p. 101 |
| Introduction to Fast Decoupled Method | p. 101 |
| Correction Equations of Fast Decoupled method | p. 104 |
| Flowchart of Fast Decoupled Method | p. 107 |
| Static Security Analysis and Compensation Method | p. 113 |
| Survey of Static Security Analysis | p. 113 |
| Compensation Method | p. 114 |
| DC Load Flow Method | p. 119 |
| Model of DC Load Flow | p. 120 |
| Outage Analysis by DC Load Flow Method | p. 122 |
| N-1 Checking and Contingency Ranking Method | p. 123 |
| Stochastic Security Analysis of Electrical Power Systems | p. 129 |
| Introduction | p. 129 |
| Basic Concepts of Probability Theory | p. 130 |
| Probability of Stochastic Events | p. 130 |
| Random Variables and its Distribution | p. 132 |
| Numeral Character of Random Variable | p. 133 |
| Convolution of Random Variables | p. 135 |
| Several Usual Random Variable Distributions | p. 136 |
| Markov Process | p. 138 |
| Probabilistic Model of Power Systems | p. 140 |
| Probabilistic Model of Load | p. 140 |
| Probabilistic Model of Power System Components | p. 141 |
| Outage Table of Power System Components | p. 142 |
| Monte Carlo Simulation Method | p. 145 |
| Fundamental Theory of Monte Carlo Simulation Method | p. 145 |
| Sampling of System Operation State | p. 148 |
| State Evaluation Model | p. 150 |
| Indices of Reliability Evaluation | p. 151 |
| Flowchart of Composite System Adequacy Evaluation | p. 152 |
| Markov Chain Monte Carlo (MCMC) Simulation Method | p. 156 |
| Probabilistic Load Flow Analysis | p. 161 |
| Cumulants of Random Distribution | p. 162 |
| Linearization of Load Flow Equation | p. 168 |
| Computing Process of Probabilistic Load Flow | p. 171 |
| Probabilistic Network-Flow Analysis | p. 178 |
| Introduction | p. 178 |
| Network-Flow Model | p. 180 |
| Lower Boundary Points of Feasible Flow Solutions | p. 186 |
| Reliability of Transmission System | p. 188 |
| Power Flow Analysis in Market Environment | p. 193 |
| Introduction | p. 193 |
| Transmission Owner | p. 193 |
| Independent Operator | p. 194 |
| Power Exchange | p. 194 |
| Ancillary Service | p. 195 |
| Scheduling Coordinator | p. 195 |
| Optimal Power Flow | p. 196 |
| General Formulation of OPF Problem | p. 196 |
| Approaches to OPF | p. 198 |
| Interior Point Method (IPM) for OPF Problem | p. 202 |
| Application of Optimal Power Flow in Electricity Market | p. 217 |
| Survey | p. 217 |
| Congestion Management Method Based On OPF | p. 223 |
| Power Flow Tracing | p. 228 |
| Current Decomposition Axioms | p. 230 |
| Mathematical Model of Loss Allocation | p. 232 |
| Usage Sharing Problem of Transmission Facilities | p. 234 |
| Methodology of Graph Theory | p. 238 |
| Available Transfer Capability of Transmission System | p. 241 |
| Introduction To Available Transfer Capability | p. 241 |
| Application of Monte Carlo Simulation in ATC Calculation | p. 245 |
| ATC Calculation with Sensitivity Analysis Method | p. 246 |
| HVDC and FACTS | p. 255 |
| Introduction | p. 255 |
| HVDC Basic Principles and Mathematical Models | p. 258 |
| HVDC Basic Principles | p. 258 |
| Converter Basic Equations Neglecting Lc | p. 261 |
| Converter Basic Equations Considering Lc | p. 267 |
| Converter Equivalent Circuits | p. 273 |
| Multiple Bridge Operation | p. 276 |
| Converter Control | p. 279 |
| Power Flow Calculation of AC/DC Interconnected Systems | p. 281 |
| Converter Basic Equations in per Unit System | p. 282 |
| Power Flow Equations | p. 283 |
| Jacobian Matrix of Power Flow Equations | p. 286 |
| Integrated Iteration formula of AC/DC Interconnected Systems | p. 289 |
| Alternating Iteration for AC/DC Interconnected Systems | p. 294 |
| HVDC Dynamic Mathematical Models | p. 299 |
| Basic Principles and Mathematical Models of FACTS | p. 301 |
| Basic Principle and Mathematical Model of SVC | p. 302 |
| Basic Principle and Mathematical Model of STATCOM | p. 308 |
| Basic Principle and Mathematical Model of TCSC | p. 313 |
| Basic Principle and Mathematical Model of SSSC | p. 319 |
| Basic Principle and Mathematical Model of TCPST | p. 322 |
| Basic Principle and Mathematical Model of UPFC | p. 325 |
| Mathematical Model of Synchronous Generator and Load | p. 333 |
| Introduction | p. 333 |
| Mathematical Model of Synchronous Generator | p. 335 |
| Basic Mathematical Equations of Synchronous Generator | p. 336 |
| Mathematical Equations of Synchronous Generator Using Machine Parameters | p. 343 |
| Simplified Mathematical Model of Synchronous Generator | p. 351 |
| Steady-State Equations and Phasor Diagram | p. 354 |
| Mathematical Equations Considering Effect of Saturation | p. 357 |
| Rotor Motion Equation of Synchronous Generator | p. 360 |
| Mathematical Model of Generator Excitation Systems | p. 363 |
| Mathematical Model of Exciter | p. 365 |
| Voltage Measurement and Load Compensation Unit | p. 375 |
| Limiters | p. 376 |
| Mathematical Model of Power System Stabilizer | p. 377 |
| Mathematical Model of Excitation Systems | p. 377 |
| Mathematical Model of Prime Mover and Governing System | p. 381 |
| Mathematical Model of Hydro-Turbine and Governing System | p. 382 |
| Mathematical Model of Steam Turbine and Governing System | p. 389 |
| Mathematical Model of Load | p. 393 |
| Static Load Model | p. 395 |
| Dynamic Load Model | p. 397 |
| Power System Transient Stability Analysis | p. 405 |
| Introduction | p. 405 |
| Numerical Methods for Transient Stability Analysis | p. 407 |
| Numerical Methods for Ordinary Differential Equations | p. 408 |
| Numerical Methods for Differential-Algebraic Equations | p. 425 |
| General Procedure for Transient Stability Analysis | p. 427 |
| Network Mathematical Model for Transient Stability Analysis | p. 430 |
| The Relationship Between Network and Dynamic Devices | p. 431 |
| Modeling Network Switching and Faults | p. 439 |
| Transient Stability Analysis with Simplified Model | p. 446 |
| Computing Initial Values | p. 447 |
| Solving Network Equations with Direct Method | p. 448 |
| Solving Differential Equations by Modified Euler Method | p. 450 |
| Numerical Integration Methods for Transient Stability Analysis under Classical Model | p. 457 |
| Transient Stability Analysis with FACTS Devices | p. 463 |
| Initial Values and Difference Equations of Generators | p. 464 |
| Initial Values and Difference Equations of FACTS and HVDC | p. 475 |
| Forming Network Equations | p. 484 |
| Simultaneous Solution of Difference and Network Equations | p. 487 |
| Small-Signal Stability Analysis of Power Systems | p. 489 |
| Introduction | p. 489 |
| Linearized Equations of Power System Dynamic Components | p. 493 |
| Linearized Equation of Synchronous Generator | p. 493 |
| Linearized Equation of Load | p. 500 |
| Linearized Equation of FACTS Components | p. 502 |
| Linearized Equation of HVDC Transmission System | p. 503 |
| Steps in Small-Signal Stability Analysis | p. 506 |
| Network Equation | p. 506 |
| Linearized Differential Equations of Whole Power System | p. 508 |
| Program Package for Small-Signal Stability Analysis | p. 510 |
| Eigenvalue Problem in Small-Signal Stability Analysis | p. 519 |
| Characteristics of State Matrix Given by Its Eigensolution | p. 519 |
| Modal Analysis of Linear Systems | p. 523 |
| Computation of Eigenvalues | p. 526 |
| Eigensolution of Sparse Matrix | p. 530 |
| Application of Eigenvalue Sensitivity Analysis | p. 533 |
| Oscillation Analysis of Power Systems | p. 534 |
| References | p. 543 |
| Index | p. 555 |
| Table of Contents provided by Ingram. All Rights Reserved. |
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