Modern Power Systems Analysis

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Format: Hardcover
Pub. Date: 2008-10-30
Publisher(s): Springer Verlag
List Price: $235.38

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Summary

The complexity of the nature of modern power systems is largely due to the growing size of the system through interconnection, which is the use of advanced technologies and the worldwide tendency of industry restructuring. The capability to effectively analyze such complex systems is fundamental to any activities in the operation, management and planning of power systems. This book not only offers a broad coverage of essential power system concepts but also features a complete and in-depth account of all the major latest developments, which include Power Flow Analysis in Market Environment; Power Flow Calculation of AC/DC Interconnected Systems and Power Flow Control and Calculation for Systems Having FACTS Devices and recent results in system stability.

Table of Contents

Mathematical Model and Solution of Electric Networkp. 1
Introductionp. 1
Basic Conceptsp. 2
Node Equation and Loop Equationp. 2
Equivalent Circuit of Transformer and Phase Shift Transformerp. 9
Nodal Admittance Matrixp. 13
Basic Concept of Nodal Admittance Matrixp. 13
Formulation and Modification of Nodal Admittance Matrixp. 17
Solution to Electric Network Equationsp. 22
Gauss Elimination Methodp. 22
Triangular Decomposition and Factor Tablep. 27
Sparse Techniquesp. 34
Sparse Vector Methodp. 38
Optimal Ordering Schemes of Electric Network Nodesp. 43
Nodal Impedance Matrixp. 48
Basic Concept of Nodal Impedance Matrixp. 48
Forming Nodal Impedance Matrix Using Admittance Matrixp. 50
Forming Nodal Impedance Matrix by Branch Addition Methodp. 56
Load Flow Analysisp. 71
Introductionp. 71
Formulation of Load Flow Problemp. 73
Classification of Node Typesp. 73
Node Power Equationsp. 76
Load Flow Solution by Newton Methodp. 79
Basic Concept of Newton Methodp. 79
Correction Equationsp. 83
Solution Process of Newton Methodp. 88
Solution of Correction Equationsp. 89
Fast Decoupled Methodp. 101
Introduction to Fast Decoupled Methodp. 101
Correction Equations of Fast Decoupled methodp. 104
Flowchart of Fast Decoupled Methodp. 107
Static Security Analysis and Compensation Methodp. 113
Survey of Static Security Analysisp. 113
Compensation Methodp. 114
DC Load Flow Methodp. 119
Model of DC Load Flowp. 120
Outage Analysis by DC Load Flow Methodp. 122
N-1 Checking and Contingency Ranking Methodp. 123
Stochastic Security Analysis of Electrical Power Systemsp. 129
Introductionp. 129
Basic Concepts of Probability Theoryp. 130
Probability of Stochastic Eventsp. 130
Random Variables and its Distributionp. 132
Numeral Character of Random Variablep. 133
Convolution of Random Variablesp. 135
Several Usual Random Variable Distributionsp. 136
Markov Processp. 138
Probabilistic Model of Power Systemsp. 140
Probabilistic Model of Loadp. 140
Probabilistic Model of Power System Componentsp. 141
Outage Table of Power System Componentsp. 142
Monte Carlo Simulation Methodp. 145
Fundamental Theory of Monte Carlo Simulation Methodp. 145
Sampling of System Operation Statep. 148
State Evaluation Modelp. 150
Indices of Reliability Evaluationp. 151
Flowchart of Composite System Adequacy Evaluationp. 152
Markov Chain Monte Carlo (MCMC) Simulation Methodp. 156
Probabilistic Load Flow Analysisp. 161
Cumulants of Random Distributionp. 162
Linearization of Load Flow Equationp. 168
Computing Process of Probabilistic Load Flowp. 171
Probabilistic Network-Flow Analysisp. 178
Introductionp. 178
Network-Flow Modelp. 180
Lower Boundary Points of Feasible Flow Solutionsp. 186
Reliability of Transmission Systemp. 188
Power Flow Analysis in Market Environmentp. 193
Introductionp. 193
Transmission Ownerp. 193
Independent Operatorp. 194
Power Exchangep. 194
Ancillary Servicep. 195
Scheduling Coordinatorp. 195
Optimal Power Flowp. 196
General Formulation of OPF Problemp. 196
Approaches to OPFp. 198
Interior Point Method (IPM) for OPF Problemp. 202
Application of Optimal Power Flow in Electricity Marketp. 217
Surveyp. 217
Congestion Management Method Based On OPFp. 223
Power Flow Tracingp. 228
Current Decomposition Axiomsp. 230
Mathematical Model of Loss Allocationp. 232
Usage Sharing Problem of Transmission Facilitiesp. 234
Methodology of Graph Theoryp. 238
Available Transfer Capability of Transmission Systemp. 241
Introduction To Available Transfer Capabilityp. 241
Application of Monte Carlo Simulation in ATC Calculationp. 245
ATC Calculation with Sensitivity Analysis Methodp. 246
HVDC and FACTSp. 255
Introductionp. 255
HVDC Basic Principles and Mathematical Modelsp. 258
HVDC Basic Principlesp. 258
Converter Basic Equations Neglecting Lcp. 261
Converter Basic Equations Considering Lcp. 267
Converter Equivalent Circuitsp. 273
Multiple Bridge Operationp. 276
Converter Controlp. 279
Power Flow Calculation of AC/DC Interconnected Systemsp. 281
Converter Basic Equations in per Unit Systemp. 282
Power Flow Equationsp. 283
Jacobian Matrix of Power Flow Equationsp. 286
Integrated Iteration formula of AC/DC Interconnected Systemsp. 289
Alternating Iteration for AC/DC Interconnected Systemsp. 294
HVDC Dynamic Mathematical Modelsp. 299
Basic Principles and Mathematical Models of FACTSp. 301
Basic Principle and Mathematical Model of SVCp. 302
Basic Principle and Mathematical Model of STATCOMp. 308
Basic Principle and Mathematical Model of TCSCp. 313
Basic Principle and Mathematical Model of SSSCp. 319
Basic Principle and Mathematical Model of TCPSTp. 322
Basic Principle and Mathematical Model of UPFCp. 325
Mathematical Model of Synchronous Generator and Loadp. 333
Introductionp. 333
Mathematical Model of Synchronous Generatorp. 335
Basic Mathematical Equations of Synchronous Generatorp. 336
Mathematical Equations of Synchronous Generator Using Machine Parametersp. 343
Simplified Mathematical Model of Synchronous Generatorp. 351
Steady-State Equations and Phasor Diagramp. 354
Mathematical Equations Considering Effect of Saturationp. 357
Rotor Motion Equation of Synchronous Generatorp. 360
Mathematical Model of Generator Excitation Systemsp. 363
Mathematical Model of Exciterp. 365
Voltage Measurement and Load Compensation Unitp. 375
Limitersp. 376
Mathematical Model of Power System Stabilizerp. 377
Mathematical Model of Excitation Systemsp. 377
Mathematical Model of Prime Mover and Governing Systemp. 381
Mathematical Model of Hydro-Turbine and Governing Systemp. 382
Mathematical Model of Steam Turbine and Governing Systemp. 389
Mathematical Model of Loadp. 393
Static Load Modelp. 395
Dynamic Load Modelp. 397
Power System Transient Stability Analysisp. 405
Introductionp. 405
Numerical Methods for Transient Stability Analysisp. 407
Numerical Methods for Ordinary Differential Equationsp. 408
Numerical Methods for Differential-Algebraic Equationsp. 425
General Procedure for Transient Stability Analysisp. 427
Network Mathematical Model for Transient Stability Analysisp. 430
The Relationship Between Network and Dynamic Devicesp. 431
Modeling Network Switching and Faultsp. 439
Transient Stability Analysis with Simplified Modelp. 446
Computing Initial Valuesp. 447
Solving Network Equations with Direct Methodp. 448
Solving Differential Equations by Modified Euler Methodp. 450
Numerical Integration Methods for Transient Stability Analysis under Classical Modelp. 457
Transient Stability Analysis with FACTS Devicesp. 463
Initial Values and Difference Equations of Generatorsp. 464
Initial Values and Difference Equations of FACTS and HVDCp. 475
Forming Network Equationsp. 484
Simultaneous Solution of Difference and Network Equationsp. 487
Small-Signal Stability Analysis of Power Systemsp. 489
Introductionp. 489
Linearized Equations of Power System Dynamic Componentsp. 493
Linearized Equation of Synchronous Generatorp. 493
Linearized Equation of Loadp. 500
Linearized Equation of FACTS Componentsp. 502
Linearized Equation of HVDC Transmission Systemp. 503
Steps in Small-Signal Stability Analysisp. 506
Network Equationp. 506
Linearized Differential Equations of Whole Power Systemp. 508
Program Package for Small-Signal Stability Analysisp. 510
Eigenvalue Problem in Small-Signal Stability Analysisp. 519
Characteristics of State Matrix Given by Its Eigensolutionp. 519
Modal Analysis of Linear Systemsp. 523
Computation of Eigenvaluesp. 526
Eigensolution of Sparse Matrixp. 530
Application of Eigenvalue Sensitivity Analysisp. 533
Oscillation Analysis of Power Systemsp. 534
Referencesp. 543
Indexp. 555
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