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PMID: 39985943 Published · ppublish English Journal Article

Two-Phase flow model-driven optimization of charge percolation in flow-electrode capacitive deionization.

Water research ·Vol. 276 ·2025-05-15 ·页码 123283

Wang H, Shi C, Zhu G, He K, Tang K

Abstract

Flow electrode capacitive deionization (FCDI) is a simple and efficient desalination technology but is limited by high energy consumption due to the high resistance of the flow-electrode. In this study, we simulated the collision and charge transfer processes within the flow-electrode using a CFD-DEM-based two-phase flow model. The model accurately simulated the conductivity of flow-electrodes in both long straight and serpentine channels under various flow rates and carbon loadings, revealing that particle-collector collisions play a decisive role in electrode conductivity. Based on these findings, we proposed two optimized flow channels to increase the effective collisions between carbon particles and collector plates: a serpentine channel with a central cylindrical obstacle (FCDI-O) and a zigzag-shaped channel (FCDI-Z). The results demonstrate that both FCDI-O and FCDI-Z significantly enhance flow-electrode conductivity (80.4% for FCDI-O and 188.3% for FCDI-Z) and reduce desalination energy consumption (21.3% for FCDI-O and 25.1% for FCDI-Z), compared to the original FCDI serpentine channel. We further analyzed the energy consumption distribution across FCDI components using a steady-state electrochemical model. The results indicate that, under various operating conditions, the total energy consumption decreases, and the proportion of energy consumed by the flow-electrode is lower in the FCDI-Z channel than in the FCDI-O channel. However, the flow-electrode remains the largest energy consumer in the FCDI desalination process. This study provides valuable insights for the development and practical application of new flow channels for FCDI desalination.

Keywords
Energy saving Flow channel optimization Flow simulation Water desalination
MeSH 主题词
Electrodes Water Purification/methods Models, Theoretical Electric Conductivity
作者与单位
共 5 位作者,点击展开单位 / ORCID
Wang Hongyang
State Key Laboratory of Environmental Criteria and Risk Assessment, Chinese Research Academy of Environmental Sciences, Beijing 100012, PR China. Electronic address: [email protected].
Shi Chufeng
State Key Laboratory of Environmental Criteria and Risk Assessment, Chinese Research Academy of Environmental Sciences, Beijing 100012, PR China; School of Energy and Environment, Southeast University, Nanjing 210096, PR China.
Zhu Guangcan
School of Energy and Environment, Southeast University, Nanjing 210096, PR China.
He Kai
Center of Water Resources and Environment, School of Civil Engineering, Sun Yat-sen University, Guangzhou, Guangdong 510275, PR China.
Tang Kexin
Center of Water Resources and Environment, School of Civil Engineering, Sun Yat-sen University, Guangzhou, Guangdong 510275, PR China. Electronic address: [email protected].
Article Info
Journal
Water research
Abbr.
Water Res
ISSN
1879-2448
Published
2025-05-15
电子出版
2025-00-12
页码
123283
Language
English
Country/Region
England
NLM ID
0105072
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