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  xmlns:dcterms="http://purl.org/dc/terms/"><dc:Title>Grid converters for photovoltaic and wind power systems / Remus Teodorescu, Marco Liserre, Pedro Rodríguez. [electronic resource]</dc:Title>
<dc:Creator>Teodorescu, Remus, author aut</dc:Creator>
<dc:Creator>Liserre, Marco, author aut</dc:Creator>
<dc:Creator>Rodríguez, Pedro, author aut</dc:Creator>
<dc:Subject>Electric current converters.</dc:Subject>
<dc:Subject>Photovoltaic power systems Equipment and supplies.</dc:Subject>
<dc:Subject>Wind energy conversion systems Equipment and supplies.</dc:Subject>
<dc:Subject>TK7872.C8 T46 2011</dc:Subject>
<dc:Subject>621.31/244 22</dc:Subject>
<dc:Description>Includes bibliographical references and index.</dc:Description>
<dc:Description>Print version record and online resource; title from PDF title page (IEEE Xplore, viewed April 8, 2014).</dc:Description>
<dc:Description>"Advancements in grid converter technology have been pivotal in the successful integration of renewable energy. The high penetration of renewable energy systems is calling for new more stringent grid requirements. As a consequence, the grid converters should be able to exhibit advanced functions like: dynamic control of active and reactive current injection during faults, and grid services support. This book explains the topologies, modulation and control of grid converters for both photovoltaic and wind power applications. In addition to power electronics, coverage focuses on the specific applications in photovoltaic and wind power systems where grid condition is an essential factor. With a review of the most recent grid requirements for photovoltaic and wind power systems, the relevant issues are discussed: Modern grid inverter topologies for photovoltaic and wind turbines; Islanding detection methods for photovoltaic systems; Synchronization techniques based on second order generalized integrators (SOGI); Advanced synchronization techniques with robust operation under grid unbalance condition; Resonant controller techniques for current control and harmonic compensation; Grid filter design and active damping techniques; Power control under grid fault conditions, considering both positive and negative sequences. Throughout, the authors include practical examples, exercises, and simulation models and an accompanying website sets out further modeling techniques using MATLAB® and Simulink environments and physical security information management (PSIM) software. Grid Converters for Photovoltaic and Wind Power Systems is intended as a course book for graduate students with a background in electrical engineering and for professionals in the evolving renewable energy industry."--Publisher's description.</dc:Description>
<dc:Description>"Grid Converters for Photovoltaic and Wind Power Systems provides a comprehensive description of the control of grid converters for photovoltaic and wind power systems. The authors present a range of control methods for meeting the latest application, power quality and power conversion requirements and standards, as well as looking towards potential future control functions. Practical examples, exercises, and an accompanying website with simulation models using Matlab and Simulink environments, and PSIM software make this text a pragmatic resource for electrical engineers as well as students taking related courses"-- Provided by publisher.</dc:Description>
<dc:Date>2011</dc:Date>
<dc:Type>Text</dc:Type>
<dc:Format>1 online resource (xvi, 398 pages) :</dc:Format>
<dc:Identifier>http://onlinelibrary.wiley.com/book/10.1002/9780470667057</dc:Identifier>
<dc:Language>eng</dc:Language>
<dc:Relation>Grid converters for photovoltaic and wind power systems.</dc:Relation>
<dc:Relation>Grid converters for photovoltaic and wind power systems.</dc:Relation>

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