Publication
Title
Mass transfer and hydrodynamic characterization of structured 3D electrodes for electrochemistry
Author
Abstract
Electrochemical reactors are more and more equipped with 3D electrodes such as foams and felts instead of flat electrodes, because of their large surface area and ability to reduce mass transfer limitation. Being a surface process, mass transfer limitation in electrochemical reactors limits productivity and can even result in unwanted side reactions. While 3D electrodes such as foams and felts are a significant improvement, they come with a high operating cost in terms of pumping power. Its irregular shape inflicts pressure drops three to four orders of magnitude higher than an open conduit equipped with a flat electrode. In this work we present structured 3D electrode designs derived from static mixers. Intended to maximize mass transfer at a minimal pressure drop these static mixer-derived electrodes result in similar mass transfer performance and hence electrochemical behavior as the commercial felt electrodes, but at a pressure drop that is two orders of magnitude lower. Due to their regularly structured design with a focus on minimal pressure drop these electrodes surpass the current state-of-the-art felt electrodes.
Language
English
Source (journal)
Chemical engineering journal. - Lausanne, 1996, currens
Publication
Lausanne : Elsevier Sequoia , 2020
ISSN
1385-8947 [print]
1873-3212 [online]
DOI
10.1016/J.CEJ.2019.123283
Volume/pages
384 (2020) , 10 p.
Article Reference
123283
ISI
000504405000089
Medium
E-only publicatie
Full text (Publisher's DOI)
Full text (open access)
UAntwerpen
Faculty/Department
Research group
Project info
Unraveling the influence of 3D printed electrodes on the performance of redox flow batteries
Publication type
Subject
Affiliation
Publications with a UAntwerp address
External links
Web of Science
Record
Identifier
Creation 29.10.2019
Last edited 28.11.2024
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