Deflection and control of the mixing region in membraneless vanadium micro redox flow batteries: Modeling and experimental validation

被引:0
作者
de las Heras, Miguel [1 ,2 ]
Quintero, Alberto E. [1 ,2 ]
Maurice, Ange A. [2 ]
Vera, Marcos [2 ]
Ibanez, Santiago E. [3 ]
机构
[1] Micro Electrochem Technol SL, R&D Dept, Avda Juan Caramuel 1, Leganes 28919, Madrid, Spain
[2] Univ Carlos III Madrid, Dept Ingn Term & Fluidos, Avda Univ 30, Leganes 28911, Madrid, Spain
[3] Repsol Technol Lab, km 18, Mostoles 28939, Madrid, Spain
关键词
Membraneless vanadium micro RFBs; Modeling; Viscosity variations; Experimental validation; Interface control; Crossover; MICROFLUIDIC FUEL-CELLS; ELECTROLYTE VISCOSITY; PERFORMANCE; DESIGN;
D O I
10.1016/j.ijheatmasstransfer.2024.125921
中图分类号
O414.1 [热力学];
学科分类号
摘要
Membraneless micro redox flow batteries operate within the laminar flow regime to mitigate the convective mixing between catholyte and anolyte. The absence of an ion-exchange membrane reduces manufacturing costs and overall cell resistance, thereby enhancing battery performance. However, it also poses a new challenge: the precise control of the thin mixing layer established between the two co-flowing electrolytes. Undesired displacements of the mixing region lead to increased crossover losses and significant liquid transfer between tanks. This work addresses the deflection of the mixing region under varying flow conditions, considering electrolyte viscosity variations due to the changes in the local state of charge arising during battery operation. This is achieved through a combination of mathematical analysis, numerical simulations, and experimental results. The conservation equations and non-dimensional parameters governing the problem are first written and discussed. The model is then integrated numerically incorporating different inlet and outlet boundary conditions to simulate the effect of various flow control strategies. Next, the numerical results are validated against experimental realizations of the flow. Finally, three case studies are presented and discussed. This work highlights the relevance of variable viscosity in the operation of co-laminar membraneless micro redox flow batteries, and proposes for the first time feasible control methods to mitigate undesired disturbances in the hydraulic circuit, thereby minimizing crossover losses.
引用
收藏
页数:13
相关论文
共 49 条
[1]  
[Anonymous], 2015, THE PARIS AGREEMENT
[2]   Improved fuel utilization in microfluidic fuel cells: A computational study [J].
Bazylak, A ;
Sinton, D ;
Djilali, N .
JOURNAL OF POWER SOURCES, 2005, 143 (1-2) :57-66
[3]   All-vanadium redox flow batteries with graphite felt electrodes treated by atmospheric pressure plasma jets [J].
Chen, Jian-Zhang ;
Liao, Wei-Yang ;
Hsieh, Wen-Yen ;
Hsu, Cheng-Che ;
Chen, Yong-Song .
JOURNAL OF POWER SOURCES, 2015, 274 :894-898
[4]  
Choban ER, 2003, FUEL CELL SCIENCE, ENGINEERING AND TECHNOLOGY, P261
[5]  
de Quiros A.B., 2023, Innovative Product Development By Additive Manufacturing 2021, P257, DOI [10.1007/978-3-031-05918-617, DOI 10.1007/978-3-031-05918-617]
[6]   Adaptive Microfluidic Modeling of a Membraneless Micro Redox Flow Battery Using Extended Kalman Filter [J].
De Quiros, Alberto Bernaldo ;
Quintero, Alberto E. ;
Frances, Airan ;
Uceda, Javier .
IEEE ACCESS, 2023, 11 :100207-100217
[7]   Electrical Model of a Membraneless Micro Redox Flow Battery-Fluid Dynamics Influence [J].
De Quiros, Alberto Bernaldo ;
Quintero, Alberto E. ;
Frances, Airan ;
Maurice, Ange A. ;
Uceda, Javier .
IEEE ACCESS, 2023, 11 :46132-46143
[8]  
European Commission, 2019, A European green deal. Priorities 2019-2024
[9]   Membraneless vanadium redox fuel cell using laminar flow [J].
Ferrigno, R ;
Stroock, AD ;
Clark, TD ;
Mayer, M ;
Whitesides, GM .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2002, 124 (44) :12930-12931
[10]  
Finlayson B.A., 2010, COMSOL C, P1