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Neural Control of Renewable Electrical Power Systems

BookHardcover
Ranking86747inTechnik
CHF137.00

Description

This book presents advanced control techniques that use neural networks to deal with grid disturbances in the context renewable energy sources, and to enhance low-voltage ride-through capacity, which is a vital in terms of ensuring that the integration of distributed energy resources into the electrical power network. It presents modern control algorithms based on neural identification for different renewable energy sources, such as wind power, which uses doubly-fed induction generators, solar power, and battery banks for storage. It then discusses the use of the proposed controllers to track doubly-fed induction generator dynamics references: DC voltage, grid power factor, and stator active and reactive power, and the use of simulations to validate their performance. Further, it addresses methods of testing low-voltage ride-through capacity enhancement in the presence of grid disturbances, as well as the experimental validation of the controllers under both normal and abnormalgrid conditions. The book then describes how the proposed control schemes are extended to control a grid-connected microgrid, and the use of an IEEE 9-bus system to evaluate their performance and response in the presence of grid disturbances. Lastly, it examines the real-time simulation of the entire system under normal and abnormal conditions using an Opal-RT simulator.
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Details

ISBN/GTIN978-3-030-47442-3
Product TypeBook
BindingHardcover
Publishing date10/05/2020
Edition1st ed. 2020
Series no.278
Pages232 pages
LanguageEnglish
SizeWidth 160 mm, Height 241 mm, Thickness 19 mm
Weight518 g
Article no.21838133
CatalogsBuchzentrum
Data source no.34059223
Product groupTechnik
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