With the rise of bi-directional charging such as Vehicle-to-Grid (V2G), and other related technologies on the horizon, transportation electrification and microgrids will continue to overlap and provide complementary benefits.
As electric vehicle (EV) technology improves, the energy, operational, and up-front costs of EVs are becoming increasingly competitive with their gasoline and diesel counterparts. Driven by the financial and
This paper investigates multi-period optimal energy scheduling and trading for multi-microgrids (MMGs) integrated with an urban transportation network (UTN). Specifically, an optimization
A Review of Seaport Microgrids for Green Maritime Transportation: The Shore and the Seaside. Emerging from the field of microgrids is an efficient and persuasive transitional technology with
IET Electrical Systems in Transportation Research Article Hierarchical control architecture for resilient interconnected microgrids for mass transit systems ISSN 2042-9738 Received on 6th
3 天之前· Booming in electric vehicles and the progress of dynamic wireless charging are deepening the interdependence of transportation networks (TNs) and microgrids (MGs). An
The construction of highway microgrids is evolving into a new highway energy system that integrates "Source-Network-Load-Storage". This paper provides a comprehensive evaluation of expressway microgrids from
One of the main characteristics of EVs is that they are not only seen as mean for transportation but also potentially as a flexible energy storage resource in vehicle-to-grid (V2G) applications.
Car-charging microgrids cater to small, self-sustained microgrids that generate electric power to supply electric vehicle charging stations with no or limited support from the
Microgrids are considered as a viable solution for integrating various renewable energy sources to provide an efficient and reliable energy supply, as well as a potentially reliable carrier for
The term “microgrid” refers to the concept of a small number of DERs connected to a single power subsystem. DERs include both renewable and /or conventional resources . The electric grid is no longer a one-way system from the 20th-century . A constellation of distributed energy technologies is paving the way for MGs , , .
1. Introduction Electricity distribution networks globally are undergoing a transformation, driven by the emergence of new distributed energy resources (DERs), including microgrids (MGs). The MG is a promising potential for a modernized electric infrastructure , .
This study underscores the importance of integrated microgrid planning for sustainable and resilient urban transformation amid environmental and societal challenges. Improving the resilience of energy systems to natural hazards cannot rely only on strengthening technical aspects of energy grids.
Besides, this type of MGs may be classified into three categories based on frequency: high-frequency , , low-frequency , and standard-frequency AC MGs. AC microgrids have been the predominant and widely adopted architecture among the other options in real-world applications.
Planning urban microgrids must consider the possibility of outages affecting critical services at both city and municipal levels, hence decision-making processes in a city must entail assessing social vulnerabilities, household needs and the criticality of critical services (Fig. 2 ).
Microgrid control MGs’ resources are distributed in nature . In addition, the uncertain and intermittent output of RESs increases the complexity of the effective operation of the MG. Therefore, a proper control strategy is imperative to provide stable and constant power flow. MG Central Controller (MGCC) is used to control and manage the MG.
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