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A thorough and exhaustive presentation of theoretical analysis and practical techniques for the small-signal analysis and control of large modern electric power systems as well as an assessment of their stability and damping performance.
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This book describes the variety of new methodologies and technologies that are changing the way modern electric power systems are modelled, simulated and operated. It mixes theoretical aspects with practical considerations, as well as benchmarks test systems and real-world applications.
Electric power systems --- Electric power systems --- Electric power system stability. --- Mathematical models. --- Control.
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This book presents the research and development results on power systems oscillations in three categories of analytical methods. First is damping torque analysis which was proposed in 1960’s, further developed between 1980-1990, and widely used in industry. Second is modal analysis which developed between the 1980’s and 1990’s as the most powerful method. Finally the linearized equal-area criterion analysis that is proposed and developed recently. The book covers three main types of controllers: Power System Stabilizer (PSS), FACTS (Flexible AC Transmission Systems) stabilizer, and ESS (Energy Storage Systems) stabilizer. The book provides a systematic and detailed introduction on the subject as the reference for industry applications and academic research.
Electrical Engineering --- Electrical & Computer Engineering --- Engineering & Applied Sciences --- Electric power system stability. --- Electric power systems --- Oscillations. --- Control. --- Control of electric power systems --- Electric power system control --- Stability of electric power systems --- Cycles --- Fluctuations (Physics) --- Vibration --- Electric power system stability --- Transients (Electricity) --- Control --- Production of electric energy or. --- Energy Systems. --- Power Electronics, Electrical Machines and Networks. --- Energy systems. --- Power electronics. --- Electronics, Power --- Electric power --- Electronics
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Electric power systems --- Electric power system stability. --- Electric power distribution --- Electromagnetic pulse --- Magnetic storms --- Infrastructure (Economics) --- Cyberterrorism --- Security measures --- Risk assessment --- Prevention.
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Electric power systems --- Electric power system stability. --- Electric power distribution --- Electromagnetic pulse --- Magnetic storms --- Infrastructure (Economics) --- Cyberterrorism --- Security measures --- Security measures --- Risk assessment --- Risk assessment --- Security measures --- Prevention.
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power system relay protection --- power system protection and control --- power system analysis --- power system automation and stability --- electricity market --- energy generation --- Electric power systems --- Control of electric power systems --- Electric power system control --- Electric power system stability --- Power systems, Electric --- Systems, Electric power --- Electric power production --- Protection --- Control --- Control. --- Protection. --- Electrical Engineering --- Electricity
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Electric power systems --- Electric power system stability. --- Infrastructure (Economics) --- Public-private sector cooperation --- Electric power failures --- Emergency management --- Risk assessment --- Cyberterrorism --- Natural disasters --- Cyberterrorism. --- Electric power failures. --- Electric power system stability. --- Electric power systems --- Emergency management. --- Infrastructure (Economics) --- Natural disasters. --- Public-private sector cooperation. --- Risk assessment. --- Control --- Control. --- United States. --- United States. --- Rules and practice. --- United States.
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Electric power systems --- Electric power system stability. --- Infrastructure (Economics) --- Public-private sector cooperation --- Electric power failures --- Emergency management --- Risk assessment --- Cyberterrorism --- Natural disasters --- Control --- United States. --- Rules and practice.
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This monograph explores a consistent modeling and analytic framework that provides the tools for an improved understanding of the behavior and the building of efficient models of power systems. It covers the essential concepts for the study of static and dynamic network stability, reviews the structure and design of basic voltage and load-frequency regulators, and offers an introduction to power system optimal control with reliability constraints. A set of Mathematica tutorial notebooks providing detailed solutions of the examples worked-out in the text, as well as a package that will enable readers to work out their own examples and problems, supplements the text. A key premise of the book is that the design of successful control systems requires a deep understanding of the processes to be controlled; as such, the technical discussion begins with a concise review of the physical foundations of electricity and magnetism. This is followed by an overview of nonlinear circuits that include resistors, inductors, capacitors, and memristors, along with an examination of basic circuit mathematical models and formulations. AC power systems are considered next, in which models for their basic components are derived. The following chapters address power system dynamics using both the ordinary differential equation and differential-algebraic equation models of a power network, as well as bifurcation analysis and the behavior of a network as it approaches voltage instability. Two classic control problems – voltage regulation and load-frequency control – are then described, including the coordination of economic dispatch with load-frequency control. Finally, power system control problems involving operation in highly nonlinear regimes and subjected to discrete failure modes are discussed. Power System Dynamics and Control will appeal to practicing power system engineers, control systems engineers interested in power systems, and graduate students in these areas. Because it provides sufficient information about their modelling and behavior, control engineers without a background in power systems will also find it to be a valuable resource.
Mathematics. --- System theory. --- Control engineering. --- Robotics. --- Mechatronics. --- Systems Theory, Control. --- Control, Robotics, Mechatronics. --- Electric power systems. --- Electric power systems --- Control. --- Control of electric power systems --- Electric power system control --- Power systems, Electric --- Systems, Electric power --- Electric power system stability --- Electric power production --- Systems theory. --- Mechanical engineering --- Microelectronics --- Microelectromechanical systems --- Automation --- Machine theory --- Control engineering --- Control equipment --- Control theory --- Engineering instruments --- Programmable controllers --- Systems, Theory of --- Systems science --- Science --- Philosophy
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