Gas bubble removal in alkaline water electrolysis with utilization of pressure swings

被引:52
作者
Bakker, Mischa M. [1 ]
Vermaas, David A. [1 ,2 ]
机构
[1] Delft Univ Technol, Dept Chem Engn, Van der Maasweg 9, NL-2628 CJ Delft, Netherlands
[2] AquaBattery BV, Lijnbaan 3C, NL-2352 CK Leiderdorp, Netherlands
关键词
Water electrolysis; Gas bubbles; Hydrogen evolution; Electrolyte resistance; Process intensification; HYDROGEN-PRODUCTION; OHMIC RESISTANCE; ELECTRODES; BEHAVIOR; INTENSIFICATION; EFFICIENCY; EVOLUTION;
D O I
10.1016/j.electacta.2019.06.049
中图分类号
O646 [电化学、电解、磁化学];
学科分类号
081704 ;
摘要
The energy consumption in hydrogen production through water electrolysis remains a major bottleneck for practical application. Gas bubbles that inevitably form during water electrolysis significantly increase the overall cell resistance; thereby reducing the energy efficiency. This added bubble resistance may be mitigated by enhancing the bubble removal in the system. In this work, we study the accelerated growth and detachment process of gas bubbles on electrodes, i.e. the screening layer, via pressure swings. The influence of these pressure swings on the cell voltage was experimentally investigated, by imposing temporarily low system pressure. We demonstrate that pressure swings are a means to compensate the cell voltage accumulation caused by the screening layer build up (i.e. a relaxation process). A reduction of approximately 0.1 V is realized this way, with the largest energy saving when a pressure swing is applied every 100-300 s (equivalent to a cumulative H-2 production of 0.03-0.09 mmol/cm(2)). The reduction of cell voltage due to pressure swings increases nearly linearly with increasing current density. Furthermore, investigation of the voltage-time curves indicates a synergistic effect between bubbles for its release. It is concluded that the pressure swings are a means to effectively remove gas bubbles from the screening layer. (C) 2019 Published by Elsevier Ltd.
引用
收藏
页码:148 / 157
页数:10
相关论文
共 39 条
[31]   Purification of hydrogen by pressure swing adsorption [J].
Sircar, S ;
Golden, TC .
SEPARATION SCIENCE AND TECHNOLOGY, 2000, 35 (05) :667-687
[32]   Hydrogen Production From Water Electrolysis: Current Status and Future Trends [J].
Ursua, Alfredo ;
Gandia, Luis M. ;
Sanchis, Pablo .
PROCEEDINGS OF THE IEEE, 2012, 100 (02) :410-426
[33]   The Quantities Affecting the Bubble Coverage of Gas-Evolving Electrodes [J].
Vogt, H. .
ELECTROCHIMICA ACTA, 2017, 235 :495-499
[34]   The actual current density of gas-evolving electrodes-Notes on the bubble coverage [J].
Vogt, H. .
ELECTROCHIMICA ACTA, 2012, 78 :183-187
[35]   The intensification technologies to water electrolysis for hydrogen production - A review [J].
Wang, Mingyong ;
Wang, Zhi ;
Gong, Xuzhong ;
Guo, Zhancheng .
RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2014, 29 :573-588
[36]   Ohmic resistance of solution in a vertical gas-evolving cell [J].
Weijs, MPMG ;
Janssen, LJJ ;
Visser, GJ .
JOURNAL OF APPLIED ELECTROCHEMISTRY, 1997, 27 (04) :371-378
[37]   ISOTHERMAL GROWTH OF HYDROGEN BUBBLES DURING ELECTROLYSIS [J].
WESTERHEIDE, DE ;
WESTWATER, JW .
AICHE JOURNAL, 1961, 7 (03) :357-362
[38]   Recent progress in alkaline water electrolysis for hydrogen production and applications [J].
Zeng, Kai ;
Zhang, Dongke .
PROGRESS IN ENERGY AND COMBUSTION SCIENCE, 2010, 36 (03) :307-326
[39]   Evaluating the Behavior of Electrolytic Gas Bubbles and Their Effect on the Cell Voltage in Alkaline Water Electrolysis [J].
Zhang, Dongke ;
Zeng, Kai .
INDUSTRIAL & ENGINEERING CHEMISTRY RESEARCH, 2012, 51 (42) :13825-13832