Reprint

Integration of AC/DC Microgrids into Power Grids

Edited by
July 2020
154 pages
  • ISBN978-3-03936-180-9 (Hardback)
  • ISBN978-3-03936-181-6 (PDF)

This book is a reprint of the Special Issue Integration of AC/DC Microgrids into Power Grids that was published in

Business & Economics
Environmental & Earth Sciences
Social Sciences, Arts & Humanities
Summary

AC/DC Microgrids are a small part of low voltage distribution networks that are located far from power substations, and are interconnected through the point of common coupling to power grids. These systems are important keys for the flexible, techno-economic, and environmental-friendly generation of units for the reliable operation and cost-effective planning of smart electricity grids. Although AC/DC microgrids, with the integration of renewable energy resources and other energy systems, such as power-to-gas, combined heat and power, combined cooling heat and power, power-to-heat, power-to-vehicle, pump and compressed air storage, have several advantages, there are some technical aspects that must be addressed. This Special Issue aims to study the configuration, impacts, and prospects of AC/DC microgrids that enable enhanced solutions for intelligent and optimized electricity systems, energy storage systems, and demand-side management in power grids with an increasing share of distributed energy resources. It includes AC/DC microgrid modeling, simulation, control, operation, protection, dynamics, planning, reliability and security, as well as considering power quality improvement, load forecasting, market operations, energy conversion, cyber/physical security, supervisory and monitoring, diagnostics and prognostics systems.

Format
  • Hardback
License
© 2020 by the authors; CC BY-NC-ND license
Keywords
DC microgrid; experimental evaluation; grid fault conditions; power flow control strategy; reliable DC-link voltage restoration; bidirectional power flow; charging station; Distributed Generations (DGs); microgrids; Plug-in Electric Vehicles (PHEVs); State of Charge (SoC); DC Circuit Breaker (CB); DC Fault; Hybrid DC Circuit Breaker (HDCCB); Multi-Terminal VSC-HVDC (MT-HVDC) Grids; distributed generation; dynamic stability; microgrid; and PQ Control; communication network problems; DC microgrid; distributed control; improved power management; multi-agent systems; grid recovery; Congestion Management; FACTS devices; Multi-Objective Genetic Algorithm (MOGA); Power Loss Reduction; Thyristor-Controlled Series Compensator (TCSC); AC/DC Microgrids; Distributed Generations (DGs); Microgrid Control Systems; Power Systems Operation; Power Systems Optimization; Power Systems Planning; Power Systems Protection