Prospects for synergies between low-voltage DC microgrid technology and peer-to-peer energy trading markets

被引:10
作者
Ben Abdeljawed, Hamza [1 ]
El Amraoui, Lilia [1 ]
机构
[1] Univ Carthage, Natl Engn Sch Carthage, Res Lab Smart Elect & ICT, SE&ICT Lab,LR18ES44, Charguia Ii, Tunisia
关键词
Peer-to-peer energy trading; Low voltage DC microgrid; Electricity market; Environmental sustainability; Renewable energy technologies; Collaborative energy governance; BLOCKCHAIN; INTERNET; ARCHITECTURES; INNOVATION; OPERATION; FRAMEWORK; NETWORKS; GERMANY; IMPACT; WIND;
D O I
10.1016/j.spc.2021.07.029
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Electric power systems are experiencing an unprecedented technological revolution that poses operational and commercial challenges for today's electric power industry. In this context, low voltage DC microgrid technology is attracting growing interest regarding its energy efficiency and local reliability. These micro grids support the innovation and implementation of new local electricity markets such as the emergent peer-to-peer energy trading paradigm which is perceived as a promising solution for tomorrow's power grid. Although, several pilot projects are under test, research is mainly concerned with the development of hardware and software infrastructure and the design of new business models. This paper deals with the prospects for synergies between low-voltage DC microgrid technology and P2P energy trading markets. After focusing on the fundamentals and the links between both concepts, the paper surveys the most innovative peer-to-peer electricity trading projects. A multi-aspect SWOT (strengths, weaknesses, opportunities and threats) analysis approach is conducted. Finally, the environmental impact is evaluated in a vision of sustainable and collaborative energy governance. (C) 2021 Institution of Chemical Engineers. Published by Elsevier B.V. All rights reserved.
引用
收藏
页码:1286 / 1296
页数:11
相关论文
共 88 条
[31]   Microgrids: A review of technologies, key drivers, and outstanding issues [J].
Hirsch, Adam ;
Parag, Yael ;
Guerrero, Josep .
RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2018, 90 :402-411
[32]   Incorporated Operation Control of DC Microgrid and Electric Vehicle [J].
Hu, Kai-Wei ;
Liaw, Chang-Ming .
IEEE TRANSACTIONS ON INDUSTRIAL ELECTRONICS, 2016, 63 (01) :202-215
[33]   Optimization of Peer-to-Peer Power Trading in a Microgrid with Distributed PV and Battery Energy Storage Systems [J].
Huang, Hui ;
Nie, Shilin ;
Lin, Jin ;
Wang, Yuanyuan ;
Dong, Jun .
SUSTAINABILITY, 2020, 12 (03)
[34]   Smart Grid to Energy Internet: A Systematic Review of Transitioning Electricity Systems [J].
Joseph, Akhil ;
Balachandra, Patil .
IEEE ACCESS, 2020, 8 :215787-215805
[35]   AC-microgrids versus DC-microgrids with distributed energy resources: A review [J].
Justo, Jackson John ;
Mwasilu, Francis ;
Lee, Ju ;
Jung, Jin-Woo .
RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2013, 24 :387-405
[36]  
Kaipia Tero, 2017, CIRED - Open Access Proceedings Journal, V2017, P454, DOI 10.1049/oap-cired.2017.1215
[37]   Implications of energy and CO2 emission changes in Japan and Germany after the Fukushima accident [J].
Kharecha, Pushker A. ;
Sato, Makiko .
ENERGY POLICY, 2019, 132 :647-653
[38]   Market framework for local energy trading: a review of potential designs and market clearing approaches [J].
Khorasany, Mohsen ;
Mishra, Yateendra ;
Ledwich, Gerard .
IET GENERATION TRANSMISSION & DISTRIBUTION, 2018, 12 (22) :5899-5908
[39]  
Kim H., 2017, CIRED2017 JUN
[40]   Conjoint analysis of Japanese households' energy-saving behavior after the earthquake: The role of the preferences for renewable energy [J].
Kinoshita, Shin .
ENERGY & ENVIRONMENT, 2020, 31 (04) :676-691