Effect of battery material and operation on dynamic performance of a vanadium redox flow battery under electrolyte imbalance conditions

被引:18
作者
Jienkulsawad, Prathak [1 ,2 ]
Jirabovornwisut, Tossaporn [3 ]
Chen, Yong-Song [4 ,5 ]
Arpornwichanop, Amornchai [3 ,6 ]
机构
[1] Mae Fah Luang Univ, Sch Sci, Chiang Rai 57100, Thailand
[2] Mae Fah Luang Univ, Ctr Innovat Mat Sustainabil iMatS, Chiang Rai 57100, Thailand
[3] Chulalongkorn Univ, Fac Engn, Ctr Excellence Proc & Energy Syst Engn PESE, Dept Chem Engn, Bangkok 10330, Thailand
[4] Natl Chung Cheng Univ, Adv Inst Mfg Hightech Innovat, Chiayi 621301, Taiwan
[5] Natl Chung Cheng Univ, Dept Mech Engn, Chiayi 621301, Taiwan
[6] Chulalongkorn Univ, Fac Engn, Biocircular Green Econ Technol & Engn Ctr, Dept Chem Engn, Bangkok 10330, Thailand
关键词
Vanadium redox flow battery; Electrolyte imbalance; Dynamic model; Battery performance; Life cycle analysis; ION CROSSOVER; EVOLUTION; CAPACITY; MODEL;
D O I
10.1016/j.energy.2023.126708
中图分类号
O414.1 [热力学];
学科分类号
摘要
An electrolyte imbalance in a vanadium redox flow battery (VRFB) is a significant problem that can degrade the performance of VRFB during a long-term operation. The systematic analysis of a VRFB is, therefore, performed to examine the battery performance and capacity degradation caused by an electrolyte imbalance through the use of different electrode materials and membranes, which consider carbon felt structures and their treatment, and cation- and anion-exchange types of membrane. A dynamic model of the VRFB explains the gas evolutions and self-discharge side reactions coupled with the mass balance of the vanadium and proton ions. Investigation of the VRFB performance reveals that the rate of capacity loss resulting from the electrolyte imbalance considerably depends on the material and operating conditions. The variation of the vanadium ions during long-term operation depends on the gassing and self-discharge side reactions. The VRFB using Type 3 electrodes and an AMV membrane provides the highest energy efficiency. The battery operating time is considered a key factor in managing the vanadium variation caused by self-discharge reactions. Current density, temperature, and total vanadium concentration are found to affect the battery capacity degradation rate. A high-capacity degradation rate is observed under low current density, high temperature, and high total vanadium concentration conditions. However, changes in the electrolyte flow rate do not improve the battery capacity during long-term operation because the state of charge of the VRFB decreases due to the electrolyte imbalance.
引用
收藏
页数:13
相关论文
共 36 条
[1]   Modelling the effects of oxygen evolution in the all-vanadium redox flow battery [J].
Al-Fetlawi, H. ;
Shah, A. A. ;
Walsh, F. C. .
ELECTROCHIMICA ACTA, 2010, 55 (09) :3192-3205
[2]   Mitigation of carbon footprint with 100% renewable energy system by 2050: The case of Galapagos islands [J].
Arevalo, Paul ;
Cano, Antonio ;
Jurado, Francisco .
ENERGY, 2022, 245
[3]   Modeling of Ion Crossover in Vanadium Redox Flow Batteries: A Computationally-Efficient Lumped Parameter Approach for Extended Cycling [J].
Boettcher, Philipp A. ;
Agar, Ertan ;
Dennison, C. R. ;
Kumbur, E. Caglan .
JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 2016, 163 (01) :A5244-A5252
[4]   Numerical modelling and in-depth analysis of multi-stack vanadium flow battery module incorporating transport delay [J].
Chen, Hui ;
Li, Xiangrong ;
Gao, Hai ;
Liu, Jianguo ;
Yan, Chuanwei ;
Tang, Ao .
APPLIED ENERGY, 2019, 247 :13-23
[5]   Analysis of storage capacity and energy conversion on the performance of gradient and double-layered porous electrode in all vanadium redox flow batteries [J].
Chen, Wei ;
Kang, Jialun ;
Shu, Qing ;
Zhang, Yunsong .
ENERGY, 2019, 180 :341-355
[6]   Locating Shunt Currents in a Multistack System of All-Vanadium Redox Flow Batteries [J].
Chou, Han-Wen ;
Chang, Feng-Zhi ;
Wei, Hwa-Jou ;
Singh, Bhupendra ;
Arpornwichanop, Amornchai ;
Jienkulsawad, Prathak ;
Chou, Yi-Sin ;
Chen, Yong-Song .
ACS SUSTAINABLE CHEMISTRY & ENGINEERING, 2021, 9 (12) :4648-4659
[7]   Mathematical Model to Study Vanadium Ion Crossover in an All-Vanadium Redox Flow Battery [J].
Chou, Yi-Sin ;
Yen, Shi-Chern ;
Arpornwichanop, Amornchai ;
Singh, Bhupendra ;
Chen, Yong-Song .
ACS SUSTAINABLE CHEMISTRY & ENGINEERING, 2021, 9 (15) :5377-5387
[8]   2D-dynamic phenomenological modelling of vanadium redox flow batteries - Analysis of the mass transport related overpotentials [J].
Delgado, Nuno M. ;
Monteiro, Ricardo ;
Abdollahzadeh, M. ;
Ribeirinha, Paulo ;
Bentien, Anders ;
Mendes, Adelio .
JOURNAL OF POWER SOURCES, 2020, 480
[9]   Ion/Molecule-selective transport nanochannels of membranes for redox flow batteries [J].
Hu, Lei ;
Gao, Li ;
Di, Mengting ;
Jiang, Xiaobin ;
Wu, Xuemei ;
Yan, Xiaoming ;
Li, Xianfeng ;
He, Gaohong .
ENERGY STORAGE MATERIALS, 2021, 34 (34) :648-668
[10]   Vanadium redox flow battery parameters optimization in a transportation microgrid: A case study [J].
Jefimowski, Wlodzimierz ;
Szelag, Adam ;
Steczek, Marcin ;
Nikitenko, Anatolii .
ENERGY, 2020, 195