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Power System Monitoring and Control (PSMC) is becoming increasingly
significant in the design, planning, and operation of modern
electric power systems. In response to the existing challenge of
integrating advanced metering, computation, communication, and
control into appropriate levels of PSMC, Power System Monitoring
and Control presents a comprehensive overview of the basic
principles and key technologies for the monitoring, protection, and
control of contemporary wide-area power systems. A variety of
topical issues are addressed, including renewable energy sources,
smart grids, wide-area stabilizing, coordinated voltage regulation,
and angle oscillation damping as well as the advantages of phasor
measurement units (PMUs) and global positioning systems (GPS) time
signal. End-of-chapter problems and solutions, along with case
studies, add depth and clarity to all topics. Timely and important,
Power System Monitoring and Control is an invaluable resource for
addressing the myriad of critical technical engineering
considerations in modern electric power system design and
operation. Provides an updated and comprehensive reference for
researcher and engineers working on wide-area power system
monitoring and control (PSMC) Links fundamental concepts of PSMC,
advanced metering and control theory/techniques, and practical
engineering considerations Covers PSMC problem understanding,
design, practical aspects, and timely topics such as
smart/microgrid control and coordinated voltage regulation and
angle oscillation damping Incorporates authors experiences teaching
and researching in various international locales including Japan,
Thailand, Singapore, Malaysia, Iran, and Australia
This book discusses relevant microgrid technologies in the context
of integrating renewable energy and also addresses challenging
issues. The authors summarize long term academic and research
outcomes and contributions. In addition, this book is influenced by
the authors practical experiences on microgrids (MGs), electric
network monitoring, and control and power electronic systems. A
thorough discussion of the basic principles of the MG modeling and
operating issues is provided. The MG structure, types, operating
modes, modelling, dynamics, and control levels are covered. Recent
advances in DC microgrids, virtual synchronousgenerators, MG
planning and energy management are examined. The physical
constraints and engineering aspects of the MGs are covered, and
developed robust and intelligent control strategies are discussed
using real time simulations and experimental studies.
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