論文

査読有り
2017年6月

Distributed Real-Time Power Cooperation Algorithm for Residences Based on Local Information in Smart Grid

JOURNAL OF ENERGY ENGINEERING
  • Mitsuyasu Endo
  • ,
  • Kosuke Asami
  • ,
  • Ryo Kutsuzawa
  • ,
  • Soushi Yamamoto
  • ,
  • Makoto Tanaka
  • ,
  • Hidetoshi Takeshita
  • ,
  • Eiji Oki
  • ,
  • Naoaki Yamanaka

143
3
記述言語
英語
掲載種別
研究論文(学術雑誌)
DOI
10.1061/(ASCE)EY.1943-7897.0000379
出版者・発行元
ASCE-AMER SOC CIVIL ENGINEERS

With smart grid, the power supply will shift from the 1: N tree structure with centralized power plants to the M:N structure with various kinds of distributed energy resources based on renewable energy, batteries, and so on. Deregulation of the electricity market will yield a truly competitive market, where anyone can become a power seller or buyer, which will necessitate a real-time multiseller-multibuyer power trading system. However, it is difficult to realize such a system without centralized control, because of the additional trade complexity created by a large number of sellers, including ordinary homes. In this paper, the authors propose a novel distributed power cooperation algorithm that maximizes each home's welfare based on local information. The proposed algorithm enables each home to calculate the same electricity market price from only local household information, to trade, and to maximize all members' satisfaction in smart grid by balancing consumption against supply. The authors formulate a distributed optimization problem and logically prove that the authors' algorithm can obtain the same optimal user welfare as the global optimal approach but within a much shorter time. (C) 2016 American Society of Civil Engineers.

リンク情報
DOI
https://doi.org/10.1061/(ASCE)EY.1943-7897.0000379
Web of Science
https://gateway.webofknowledge.com/gateway/Gateway.cgi?GWVersion=2&SrcAuth=JSTA_CEL&SrcApp=J_Gate_JST&DestLinkType=FullRecord&KeyUT=WOS:000399658800008&DestApp=WOS_CPL
ID情報
  • DOI : 10.1061/(ASCE)EY.1943-7897.0000379
  • ISSN : 0733-9402
  • eISSN : 1943-7897
  • Web of Science ID : WOS:000399658800008

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