Elucidating Effects of Faradaic Imbalance on Vanadium Redox Flow Battery Performance: Experimental Characterization

被引:28
|
作者
Nourani, Mahnaz [1 ]
Dennison, Christopher R. [1 ]
Jin, Xinfang [1 ]
Liu, Fuqiang [1 ]
Agar, Ertan [1 ]
机构
[1] Univ Massachusetts Lowell, Dept Mech Engn, Lowell, MA 01854 USA
关键词
CAPACITY DECAY; HYDROGEN EVOLUTION; GRAPHITE ELECTRODE; CORROSION; ENERGY; TEMPERATURE; TRANSPORT; CROSSOVER; BEHAVIOR; STATE;
D O I
10.1149/2.0851915jes
中图分类号
O646 [电化学、电解、磁化学];
学科分类号
081704 ;
摘要
Long-term performance and lifetime of vanadium redox flow batteries (VRFBs) are critical metrics in widespread implementation of this technology. One challenging issue that negatively affects these parameters is the faradaic imbalance, which is not comprehensively investigated in the literature. Faradaic imbalance is known as the shift in the average oxidation state (AOS) of the electrolyte due to side reactions. This type of imbalance requires chemical/electrochemical mitigation rather than simple electrolyte remixing. Herein, we investigate faradaic imbalance by preparing unbalanced electrolytes with differentAOS values. The performance characteristics of the flow cell utilizing electrolytes with different AOS values are reported. Based on the results of charge-discharge cycling, polarization testing, and electrochemical impedance spectroscopy measurements, faradaic imbalance is found to significantly affect discharge capacity, maximum power density, cell resistances, and efficiency values. While the ratio of discharge capacity to theoretical capacity is 83% for the ideally balanced case (AOS 3.5+), it drops to 53.4% for the AOS 3.9+ case. Additionally, there is a substantial decrease of 44% in the maximum available power density for the most unbalanced case. This noticeable performance degradation highlights the importance of faradaic imbalance as a critical factor which requires further attention especially during extended cycling. (c) The Author(s) 2019. Published by ECS.
引用
收藏
页码:A3844 / A3851
页数:8
相关论文
共 50 条
  • [21] Effect of Baffles in Flow Channel on the Performance of Vanadium Redox Flow Battery
    Wu, Horng-Wen
    Zeng, Yi-Kai
    PROCESSES, 2023, 11 (02)
  • [22] Modeling and characterization of the biochar electrodes for vanadium redox flow battery
    Yao, Sen
    Zhou, Jiali
    Zhang, Yajun
    Hu, Jianjun
    Xie, Tao
    ELECTROCHIMICA ACTA, 2021, 400 (400)
  • [23] Vanadium redox flow battery capacity loss mitigation strategy based on a comprehensive analysis of electrolyte imbalance effects
    Puleston, Thomas
    Serra, Maria
    Costa-Castello, Ramon
    APPLIED ENERGY, 2024, 355
  • [24] Numerical analysis of cycling performance of vanadium redox flow battery
    Jeong, Daein
    Jung, Seunghun
    INTERNATIONAL JOURNAL OF ENERGY RESEARCH, 2020, 44 (07) : 5209 - 5222
  • [25] Performance Modeling of a Vanadium Redox Flow Battery during Discharging
    Yang, W. W.
    He, Y. L.
    Li, S.
    ELECTROCHIMICA ACTA, 2015, 155 : 279 - 287
  • [26] Nanofiltration membrane improves performance of vanadium redox flow battery
    McCormick, Colin
    MRS BULLETIN, 2011, 36 (06) : 410 - 411
  • [27] Perovskite enables high performance vanadium redox flow battery
    Jiang, Yingqiao
    Liu, Zihe
    Lv, Yanrong
    Tang, Ao
    Dai, Lei
    Wang, Ling
    He, Zhangxing
    CHEMICAL ENGINEERING JOURNAL, 2022, 443
  • [28] Mathematic Modeling and Performance Analysis of Vanadium Redox Flow Battery
    Gu, Feng-Chang
    Chen, Hung-Cheng
    Li, Kun-Yi
    ENERGY & FUELS, 2020, 34 (08) : 10142 - 10147
  • [29] Performance of the all-vanadium redox flow battery stack
    Park, Dong-Jun
    Jeon, Kwang-Sun
    Ryu, Cheol-Hwi
    Hwang, Gab-Jin
    JOURNAL OF INDUSTRIAL AND ENGINEERING CHEMISTRY, 2017, 45 : 387 - 390
  • [30] Performance of a vanadium redox flow battery with tubular cell design
    Ressel, Simon
    Laube, Armin
    Fischer, Simon
    Chica, Antonio
    Flower, Thomas
    Struckmann, Thorsten
    JOURNAL OF POWER SOURCES, 2017, 355 : 199 - 205