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Modeling and Simulation of Non-Aqueous Redox Flow Batteries: A Mini-Review

  • Haotian Zhou
  • , Ruiping Zhang
  • , Qiang Ma
  • , Zhuo Li
  • , Huaneng Su
  • , Ping Lu
  • , Weiwei Yang
  • , Qian Xu
  • Jiangsu University

Research output: Contribution to journalReview articlepeer-review

6 Scopus citations

Abstract

Redox flow batteries (RFBs) have been widely recognized in the domain of large-scale energy storage due to their simple structure, long lifetime, quick response, decoupling of capacity and power, and structural simplicity. Because of the limited open circuit voltage (OCV) by hydrogen and oxygen evolution reactions, together with the relatively low solubility of active species, RFBs with aqueous electrolytes are challenging to reach high energy densities. Researchers have been trying to develop new solvent systems without water to remove the electrochemical window limitation of water and pursue higher cell potential. However, non-aqueous solvents are also hindered by some key problems, such as high viscosity and poor safety. Meeting these challenges require a comprehensive understanding of relevant structural design parameters and multi-variable operation in the non-aqueous flow battery (NAFB) system. Modeling and simulation are not only an effective way to understand the basic mechanism of flow batteries at different scales of size and time but also an ideal tool for optimizing the reaction process, battery assembly, and the whole flow battery installation. This review paper introduces the development of the non-aqueous flow battery, the challenges it faces, and the research progress of related modeling and simulation for verification or optimization. Finally, the future development prospects of the non-aqueous flow battery model are pointed out, especially for those systems and fields that have not yet been explored.

Original languageEnglish
Article number215
JournalBatteries
Volume9
Issue number4
DOIs
StatePublished - Apr 2023

Keywords

  • electrochemical window limitation
  • flow battery
  • high energy density
  • large-scale energy storage
  • multi-variable operation
  • non-aqueous solution
  • numerical simulation
  • structure design parameter

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