Battery Technologies for Grid-Level Large-Scale Electrical Energy Storage

被引:0
|
作者
Xiayue Fan
Bin Liu
Jie Liu
Jia Ding
Xiaopeng Han
Yida Deng
Xiaojun Lv
Ying Xie
Bing Chen
Wenbin Hu
Cheng Zhong
机构
[1] Tianjin University,Key Laboratory of Advanced Ceramics and Machining Technology (Ministry of Education), School of Materials Science and Engineering
[2] Tianjin University,Tianjin Key Laboratory of Composite and Functional Materials, School of Materials Science and Engineering
[3] International Campus of Tianjin University,Joint School of National University of Singapore and Tianjin University
[4] State Grid Zhejiang Zhedian Tendering Consulting Co.,undefined
[5] Ltd.,undefined
来源
关键词
Battery technologies; Grid-level large-scale electrical energy storage; Peak shaving and load leveling; Voltage and frequency regulation; Emergency response;
D O I
暂无
中图分类号
学科分类号
摘要
Grid-level large-scale electrical energy storage (GLEES) is an essential approach for balancing the supply–demand of electricity generation, distribution, and usage. Compared with conventional energy storage methods, battery technologies are desirable energy storage devices for GLEES due to their easy modularization, rapid response, flexible installation, and short construction cycles. In general, battery energy storage technologies are expected to meet the requirements of GLEES such as peak shaving and load leveling, voltage and frequency regulation, and emergency response, which are highlighted in this perspective. Furthermore, several types of battery technologies, including lead–acid, nickel–cadmium, nickel–metal hydride, sodium–sulfur, lithium-ion, and flow batteries, are discussed in detail for the application of GLEES. Moreover, some possible developing directions to facilitate efforts in this area are presented to establish a perspective on battery technology, provide a road map for guiding future studies, and promote the commercial application of batteries for GLEES.
引用
收藏
页码:92 / 103
页数:11
相关论文
共 50 条
  • [1] Battery Technologies for Grid-Level Large-Scale Electrical Energy Storage
    Xiayue Fan
    Bin Liu
    Jie Liu
    Jia Ding
    Xiaopeng Han
    Yida Deng
    Xiaojun Lv
    Ying Xie
    Bing Chen
    Wenbin Hu
    Cheng Zhong
    [J]. Transactions of Tianjin University, 2020, (02) - 103
  • [2] Battery Technologies for Grid-Level Large-Scale Electrical Energy Storage
    Xiayue Fan
    Bin Liu
    Jie Liu
    Jia Ding
    Xiaopeng Han
    Yida Deng
    Xiaojun Lv
    Ying Xie
    Bing Chen
    Wenbin Hu
    Cheng Zhong
    [J]. Transactions of Tianjin University, 2020, 26 (02) : 92 - 103
  • [3] Battery Technologies for Grid-Level Large-Scale Electrical Energy Storage
    Fan, Xiayue
    Liu, Bin
    Liu, Jie
    Ding, Jia
    Han, Xiaopeng
    Deng, Yida
    Lv, Xiaojun
    Xie, Ying
    Chen, Bing
    Hu, Wenbin
    Zhong, Cheng
    [J]. TRANSACTIONS OF TIANJIN UNIVERSITY, 2020, 26 (02) : 92 - 103
  • [4] Grid-Level Application of Electrical Energy Storage
    Zhang, Yingchen
    Gevorgian, Vahan
    Wang, Caixia
    Lei, Xuejiao
    Chou, Ella
    Yang, Rui
    Li, Qionghui
    Jiang, Liping
    [J]. IEEE POWER & ENERGY MAGAZINE, 2017, 15 (05): : 51 - 58
  • [5] A large-scale grid-level scheduling model
    School of Economics and Management, Hebei University of Engineering, No. 199, Guangming South Street, Handan 056038, China
    [J]. ICIC Express Lett Part B Appl., 5 (1315-1320):
  • [6] Battery Technologies for Large-Scale Stationary Energy Storage
    Soloveichik, Grigorii L.
    [J]. ANNUAL REVIEW OF CHEMICAL AND BIOMOLECULAR ENGINEERING, VOL 2, 2011, 2 : 503 - 527
  • [8] Impact of battery degradation on energy arbitrage revenue of grid-level energy storage
    Wankmueller, Florian
    Thimmapuram, Prakash R.
    Gallagher, Kevin G.
    Botterud, Audun
    [J]. JOURNAL OF ENERGY STORAGE, 2017, 10 : 56 - 66
  • [9] Evaluation and Analysis of Battery Technologies Applied to Grid-Level Energy Storage Systems Based on Rough Set Theory
    Zhiyuan Xie
    Liang Du
    Xiaojun Lv
    Qing Wang
    Jianglei Huang
    Tianyi Fu
    Shengyue Li
    [J]. Transactions of Tianjin University, 2020, 26 : 228 - 235
  • [10] Lithium–antimony–lead liquid metal battery for grid-level energy storage
    Kangli Wang
    Kai Jiang
    Brice Chung
    Takanari Ouchi
    Paul J. Burke
    Dane A. Boysen
    David J. Bradwell
    Hojong Kim
    Ulrich Muecke
    Donald R. Sadoway
    [J]. Nature, 2014, 514 : 348 - 350