Flow field characterization between vertical plate electrodes in a bench-scale cell of electrochemical water softening

被引:5
作者
Chen, Qi [1 ]
Lin, Wei [1 ]
Wang, Zhonghao [1 ]
Yu, Jiuyang [1 ]
Li, Jimin [1 ]
Wang, Zhangwei [1 ]
机构
[1] Wuhan Inst Technol, Sch Mech & Elect Engn, Wuhan, Peoples R China
关键词
bubble; electrochemistry; particle image velocimetry; velocity distribution; vertical plate electrodes; HYDROGEN-PRODUCTION; REMOVAL;
D O I
10.2166/wst.2022.070
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
To analyze the effect of flow characteristics on electrochemical water softening, characteristics of flow fields in the vicinity of vertical plate electrodes in a bench-scale electrolysis cell for electrochemical water softening were visualized using particle image velocimetry technology, and the hardness drop values under different process conditions were measured. Properly increasing the current density or reducing the electrode spacing can increase the average flow velocity in the electrode gap. Excessive current density will cause bubble accumulation, form bubble vortex, interfere with the orderly flow of surrounding liquid and reduce mass transfer efficiency. When the electrode spacing is 120 mm, the highest water softening efficiency measured at the current density of 60 A/m(2) is 16.56%. When the current density is 50 A/m(2), the highest average speed measured at the electrode spacing of 60 mm is 0.00169 m/s, but the highest water softening efficiency measured at the electrode spacing of 90 mm is 23.3%.The circulation efficiency in the electrode gap of semi-closed structure is lower than that of free convection structure. The behavior of bubbles is the key to flow and mass transfer. It is important to consider its influence on bubble behavior when optimizing electrochemical parameters.
引用
收藏
页码:1736 / 1753
页数:18
相关论文
共 25 条
[1]   Electrochemical tap water softening: A zero chemical input approach [J].
Clauwaert, Peter ;
De Paepe, Jolien ;
Jiang, Fu ;
Alonso-Farinas, Bernabe ;
Vaiopoulou, Eleni ;
Verliefde, Arne ;
Rabaey, Korneel .
WATER RESEARCH, 2020, 169
[2]   Antifouling strategies and corrosion control in cooling circuits [J].
Cristiani, P. ;
Perboni, G. .
BIOELECTROCHEMISTRY, 2014, 97 :120-126
[3]   Clean electrochemical deposition of calcium carbonate to prevent scale formation in cooling water systems [J].
Dirany, Ahmad ;
Drogui, Patrick ;
El Khakani, My Ali .
ENVIRONMENTAL CHEMISTRY LETTERS, 2016, 14 (04) :507-514
[4]   Electrochemical water softening: principle and application [J].
Gabrielli, C. ;
Maurin, G. ;
Francy-Chausson, H. ;
Thery, P. ;
Tran, T. T. M. ;
Tlili, M. .
DESALINATION, 2006, 201 (1-3) :150-163
[5]   Low electrode area electrochemical scale removal system [J].
Hasson, David ;
Sidorenko, Georgiy ;
Semiat, Raphael .
DESALINATION AND WATER TREATMENT, 2011, 31 (1-3) :35-41
[6]   Calcium carbonate hardness removal by a novel electrochemical seeds system [J].
Hasson, David ;
Sidorenko, Georgiy ;
Semiat, Raphael .
DESALINATION, 2010, 263 (1-3) :285-289
[7]   Electrogenerated bubbles induced convection in narrow vertical cells: A review [J].
Hreiz, Rainier ;
Abdelouahed, Lokmane ;
Fuenfschilling, Denis ;
Lapicque, Francois .
CHEMICAL ENGINEERING RESEARCH & DESIGN, 2015, 100 :268-281
[8]   Production of high purity water using membrane-free electrodeionization with improved resin layer structure [J].
Hu, Jiayuan ;
Chen, Yujie ;
Zhu, Liwei ;
Qian, Zhouhai ;
Chen, Xueming .
SEPARATION AND PURIFICATION TECHNOLOGY, 2016, 164 :89-96
[9]   Chemical-free ion exchange and its application for desalination [J].
Hu, Jiayuan ;
Chen, Yuxia ;
Guo, Lingli ;
Chen, Xueming .
DESALINATION, 2015, 365 :144-150
[10]   Study on bubble visualization of gas-evolving electrolysis in forced convective electrolyte [J].
Lee, Jae Won ;
Sohn, Dong Kee ;
Ko, Han Seo .
EXPERIMENTS IN FLUIDS, 2019, 60 (10)