Preconditioning Operation of Membraneless Vanadium Micro Redox Flow Batteries

Author:

Oraá‐Poblete Beatriz12,Perez‐Antolin Daniel1,Maurice Ange A.3ORCID,Palma Jesus4ORCID,Kjeang Erik5ORCID,Quintero Alberto E.13ORCID

Affiliation:

1. R&D Department Micro Electrochemical Technologies S.L. Avenida Juan Caramuel 1 28918 Leganés Madrid Spain

2. Departamento de Ingeniería Química Industrial y del Medio Ambiente Escuela Técnica Superior de Ingenieros Industriales Universidad Politécnica de Madrid C/José Gutierrez Abascal, 2 28006 Madrid Spain

3. Departamento de Ingeniería Térmica y de Fluidos Universidad Carlos III de Madrid Escuela Politécnica Superior Universidad Carlos III de Madrid 28911 Leganés Spain

4. Electrochemical Processes Unit IMDEA Energy Av. Ramón de La Sagra, 3 28933 Móstoles Madrid Spain

5. School of Mechatronic Systems Engineering Simon Fraser University 250-13450 102 Avenue Surrey BC-V3T 0A3 Canada

Abstract

AbstractDevelopment of a Membraneless Vanadium Micro Redox Flow Battery (MVMRFB) with an automated closed‐loop control, using micro actuators and micro sensors, is presented for the first‐time during electrolyte preconditioning operation in recirculation mode. The progress of preconditioning is tracked with UV‐vis spectroscopy by 3D printed micro flow cuvettes. Influence of flow rate, reactor internal resistance, and presence of side reactions in the preconditioning process are studied. Optimal flow rate ratio between negative and positive electrolytes is determined and significant performance improvements achieved by operating at lower flow rates are obtained. Influence of reactor internal resistance, which is directly related with the maximum power density, is evaluated demonstrating that operating at a high‐power density can be a source of inefficiency due to the presence of side reactions. Finally, presence of side reactions is evaluated through a dual measurement of electrolytes concentrations in both negative and positive side, and it is demonstrated to be a cause for charge imbalance between the two half‐cells. This work lays a solid foundation for the successful implementation of a charge‐discharge cycle in MVMRFBs operating in recirculation mode.

Publisher

Wiley

Subject

Electrochemistry,Electrical and Electronic Engineering,Energy Engineering and Power Technology

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