Energy Storage Science and Technology ›› 2022, Vol. 11 ›› Issue (4): 1121-1130.doi: 10.19799/j.cnki.2095-4239.2022.0119
• Special issue of International Outstanding Young Scientists for Energy Storage • Previous Articles Next Articles
Zhenyu WANG1(), Zixiao GUO1, Xinzhuang FAN1(), Tianshou ZHAO1,2()
Received:
2022-03-07
Revised:
2022-03-12
Online:
2022-04-05
Published:
2022-04-11
Contact:
Xinzhuang FAN,Tianshou ZHAO
E-mail:zwangeg@connect.ust.hk;mexzfan@ust.hk;metzhao@ust.hk
CLC Number:
Zhenyu WANG, Zixiao GUO, Xinzhuang FAN, Tianshou ZHAO. Comparative study between serpentine and interdigitated flow fields for vanadium redox flow batteries[J]. Energy Storage Science and Technology, 2022, 11(4): 1121-1130.
Fig. 2
Velocity distribution of the electrolyte in the electrode with SFF and IFF under specific flow rate of 3.2 mL/(min·cm2) (a) velocity cloud map of SFF; (b) velocity cloud map of IFF; (c) comparison of velocity at the middle of rip; and specific flow rate of 10.6 mL/(min·cm2) (d) velocity cloud map of SFF; (e) velocity cloud map of IFF; (f) comparison of velocity at the middle of rip"
1 | 华经产业研究院.2022-2027年中国火力发电行业市场全景评估及发展战略研究报告[R/OL]. [2022-03-01]. https://m.huaon.com/detail/787124.html#chart. |
2 | XU Q, ZHAO T S, LEUNG P K. Numerical investigations of flow field designs for vanadium redox flow batteries[J]. Applied Energy, 2013, 105: 47-56. |
3 | KE X Y, PRAHL J M, ALEXANDER J I D, et al. Rechargeable redox flow batteries: Flow fields, stacks and design considerations[J]. Chemical Society Reviews, 2018, 47(23): 8721-8743. |
4 | LU M Y, DENG Y M, YANG W W, et al. A novel rotary serpentine flow field with improved electrolyte penetration and species distribution for vanadium redox flow battery[J]. Electrochimica Acta, 2020, 361: doi: 10.1016/j.electacta.2020.137089. |
5 | BODDU R, MARUPAKULA U K, SUMMERS B, et al. Development of bipolar plates with different flow channel configurations for fuel cells[J]. Journal of Power Sources, 2009, 189(2): 1083-1092. |
6 | KUMAR S, JAYANTI S. Effect of electrode intrusion on pressure drop and electrochemical performance of an all-vanadium redox flow battery[J]. Journal of Power Sources, 2017, 360: 548-558. |
7 | ZENG Y K, LI F H, LU F, et al. A hierarchical interdigitated flow field design for scale-up of high-performance redox flow batteries[J]. Applied Energy, 2019, 238: 435-441. |
8 | SUN J, ZHENG M L, YANG Z S, et al. Flow field design pathways from lab-scale toward large-scale flow batteries[J]. Energy, 2019, 173: 637-646. |
9 | HOUSER J, PEZESHKI A, CLEMENT J T, et al. Architecture for improved mass transport and system performance in redox flow batteries[J]. Journal of Power Sources, 2017, 351: 96-105. |
10 | HOUSER J, CLEMENT J, PEZESHKI A, et al. Influence of architecture and material properties on vanadium redox flow battery performance[J]. Journal of Power Sources, 2016, 302: 369-377. |
11 | ZHANG B W, LEI Y, BAI B F, et al. A two-dimensional model for the design of flow fields in vanadium redox flow batteries[J]. International Journal of Heat and Mass Transfer, 2019, 135: 460-469. |
12 | MAURYA S, NGUYEN P T, KIM Y S, et al. Effect of flow field geometry on operating current density, capacity and performance of vanadium redox flow battery[J]. Journal of Power Sources, 2018, 404: 20-27. |
13 | LIU B, TANG C W, JIANG H R, et al. Carboxyl-functionalized TEMPO catholyte enabling high-cycling-stability and high-energy-density aqueous organic redox flow batteries[J]. ACS Sustainable Chemistry & Engineering, 2021, 9(18): 6258-6265. |
14 | MARRACINO J M, COEURET F, LANGLOIS S. A first investigation of flow-through porous electrodes made of metallic felts or foams[J]. Electrochimica Acta, 1987, 32(9): 1303-1309. |
15 | WEI L, GUO Z X, SUN J, et al. A convection-enhanced flow field for aqueous redox flow batteries[J]. International Journal of Heat and Mass Transfer, 2021, 179: doi: 10.1016/j.ijheatmasstransfer.2021.121747. |
16 | SUN C N, DELNICK F M, AARON D S, et al. Resolving losses at the negative electrode in all-vanadium redox flow batteries using electrochemical impedance spectroscopy[J]. Journal of the Electrochemical Society, 2014, 161(6): A981-A988. |
17 | BECKER M, BREDEMEYER N, TENHUMBERG N, et al. Polarization curve measurements combined with potential probe sensing for determining current density distribution in vanadium redox-flow batteries[J]. Journal of Power Sources, 2016, 307: 826-833. |
[1] | Qunbin ZHANG, Tao DONG, Jingjing LI, Yanxia LIU, Haitao ZHANG. Research progress on the recovery and high-value utilization of spent electrolyte from lithium ion batteries [J]. Energy Storage Science and Technology, 2022, (): 1-14. |
[2] | Lu WANG, Feng WANG, Jing XU, Yanpeng ZHAO, Wei LI, Yanyan WANG, Yingbiao WANG. Sorting of retired lithium-ion batteries based on SOM+SVM [J]. Energy Storage Science and Technology, 2022, (): 1-9. |
[3] | Long CHEN, Quan XIA, Yi REN, Gaoping CAO, Jingyi QIU, Hao ZHANG. Research prospect on reliability of Li-ion battery packs under coupling of multiple physical fields [J]. Energy Storage Science and Technology, 2022, 11(7): 2316-2323. |
[4] | Xiongwen XU, Yang NIE, Jian TU, Zheng XU, Jian XIE, Xinbing ZHAO. Abuse performance of pouch-type Na-ion batteries based on Prussian blue cathode [J]. Energy Storage Science and Technology, 2022, 11(7): 2030-2039. |
[5] | Yuzuo WANG, Jin WANG, Yinli LU, Dianbo RUAN. Study on the effects of pore structure on lithium-storage performances for soft carbon [J]. Energy Storage Science and Technology, 2022, 11(7): 2023-2029. |
[6] | Fengrong HE, Qiwen ZHANG, Dechao GUO, Yimin GUO, Xiaodong GUO. Influences of electrode structure on the electrical properties of (NMC+AC)/HC hybrid capacitor [J]. Energy Storage Science and Technology, 2022, 11(7): 2051-2058. |
[7] | Haitao LI, Lingli KONG, Xin ZHANG, Chuanjun YU, Jiwei WANG, Lin XU. The effects of N/P design on the performances of Ni-rich NCM/Gr lithium ion battery [J]. Energy Storage Science and Technology, 2022, 11(7): 2040-2045. |
[8] | Yuzuo WANG, Yinli LU, Miao DENG, Bin YANG, Xuewen YU, Ge JIN, Dianbo RUAN. Research progress of self-discharge in supercapacitors [J]. Energy Storage Science and Technology, 2022, 11(7): 2114-2125. |
[9] | Jiayu YUAN, Xinguang LI, Wenchao WANG, Chengkuo FU. Simulation of serpentine cooling structure of battery pack considering mass flow [J]. Energy Storage Science and Technology, 2022, 11(7): 2274-2281. |
[10] | Xianxi LIU, Anliang SUN, Chuan TIAN. Research on liquid cooling and heat dissipation of lithium-ion battery pack based on bionic wings vein channel cold plate [J]. Energy Storage Science and Technology, 2022, 11(7): 2266-2273. |
[11] | Zhiying LU, Shan JIANG, Quanlong LI, Kexin MA, Teng FU, Zhigang ZHENG, Zhicheng LIU, Miao LI, Yongsheng LIANG, Zhifei DONG. Open-circuit voltage variation during charge and shelf phases of an all-vanadium liquid flow battery [J]. Energy Storage Science and Technology, 2022, 11(7): 2046-2050. |
[12] | Peng HUANG, Zhigen NIE, Zheng CHEN, Xing SHU, Shiquan SHEN, Jipeng YANG, Jiangwei SHEN. Capacity prediction of lithium battery based on optimized Elman neural network [J]. Energy Storage Science and Technology, 2022, 11(7): 2282-2294. |
[13] | Shunmin YI, Linbo XIE, Li PENG. Remaining useful life prediction of lithium-ion batteries based on VF-DW-DFN [J]. Energy Storage Science and Technology, 2022, 11(7): 2305-2315. |
[14] | Xiaosa ZHANG, Hongyuan WANG, Zhenbiao LI, Zhimei XIA. New process of sulfated roasting-water leaching for treating electrode material of spent lithium iron phosphate batteries [J]. Energy Storage Science and Technology, 2022, 11(7): 2066-2074. |
[15] | Qingwei ZHU, Xiaoli YU, Qichao WU, Yidan XU, Fenfang CHEN, Rui HUANG. Semi-empirical degradation model of lithium-ion battery with high energy density [J]. Energy Storage Science and Technology, 2022, 11(7): 2324-2331. |
Viewed | ||||||
Full text |
|
|||||
Abstract |
|
|||||