Relationship Between the Redox Reactions on a Bipolar Plate and Reverse Current After Alkaline Water Electrolysis

被引:0
|
作者
Yosuke Uchino
Takayuki Kobayashi
Shinji Hasegawa
Ikuo Nagashima
Yoshio Sunada
Akiyoshi Manabe
Yoshinori Nishiki
Shigenori Mitsushima
机构
[1] Asahi Kasei Corp,
[2] Yokohama National University,undefined
[3] Kawasaki Heavy Industries,undefined
[4] Ltd.,undefined
[5] ThyssenKroupp Uhde Chlorine Engineers (Japan),undefined
[6] Ltd.,undefined
[7] De Nora Permelec,undefined
[8] Ltd.,undefined
来源
Electrocatalysis | 2018年 / 9卷
关键词
Alkaline water electrolysis; Reverse current; Bipolar plate; Renewable energy; Ni electrode;
D O I
暂无
中图分类号
学科分类号
摘要
In order to efficiently operate the alkaline water electrolyzers with renewable energy, behaviors of the electrolyzer during start-up or shut-down must be unveiled, because they might be suffered by reverse current that naturally flows. The mechanism of the reverse current in alkaline water electrolyzer having relation between the electrolyzer operating conditions and cell voltage has been investigated using a bipolar-type electrolyzer which consists of two cells. The electrodes were nickel mesh, which are conventional electrodes for alkaline water electrolyzer. The amount of natural reverse current measured during off-load was proportional to the current loaded until just before stopping the operation. The increase in the charge would result from the increasing oxide on the anode of the bipolar plate. Cell voltages were above 1.4 V at all cases just when the electrolyzer is forcibly opened the circuit to stop. The major redox couple of the reverse current would be [NiO2/NiOOH] and [H2/H2O] due to the cell voltage and the redox couples. The open circuit cell voltage of the cathode terminal side cell gradually decreased to 0.3 V, while that of the anode terminal side cell was maintained above 1.1 V. Therefore, nickel oxides on the anode of the bipolar plate would be reduced, and the cathodic active material of hydrogen and nickel for the cathode side of the bipolar plate would be oxidized during the reverse current flows. Ultimately, the reverse current would stop when the redox state of both sides of the bipolar plate had the same oxidation state.Graphical Abstract[graphic not available: see fulltext]
引用
收藏
页码:67 / 74
页数:7
相关论文
共 50 条
  • [1] Relationship Between the Redox Reactions on a Bipolar Plate and Reverse Current After Alkaline Water Electrolysis (vol 9, pg 67, 2017)
    Uchino, Yosuke
    Kobayashi, Takayuki
    Hasegawa, Shinji
    Nagashima, Ikuo
    Sunada, Yoshio
    Manabe, Akiyoshi
    Nishiki, Yoshinori
    Mitsushima, Shigenori
    ELECTROCATALYSIS, 2018, 9 (01) : 75 - 75
  • [2] Dependence of the Reverse Current on the Surface of Electrode Placed on a Bipolar Plate in an Alkaline Water Electrolyzer
    Uchino, Yosuke
    Kobayashi, Takayuki
    Hasegawa, Shinji
    Nagashima, Ikuo
    Sunada, Yoshio
    Manabe, Akiyoshi
    Nishiki, Yoshinori
    Mitsushima, Shigenori
    ELECTROCHEMISTRY, 2018, 86 (03) : 138 - 144
  • [3] A BIPOLAR CELL FOR ADVANCED ALKALINE WATER ELECTROLYSIS
    DIVISEK, J
    SCHMITZ, H
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 1982, 7 (09) : 703 - 710
  • [4] Numerical simulation of the distribution of reverse currents in a practical alkaline water electrolysis stack immediately after electrolysis
    Tsukase, Naruhisa
    Araki, Takuto
    Haleem, Ashraf Abdel
    Nagasawa, Kensaku
    Kuroda, Yoshiyuki
    Mitsushima, Shigenori
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2024, 49 : 701 - 712
  • [5] Improvement of the critical current density of alkaline water electrolysis based on the hydrodynamic similarity between boiling and water electrolysis
    Wei, Xuesong
    Kakimoto, Takumi
    Umehara, Yutaro
    Nakajima, Hironori
    Ito, Kohei
    Inagaki, Hiromitsu
    Mori, Shoji
    INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 2023, 214
  • [6] Ions and electric current in a bipolar water electrolysis
    Koch, Klemens
    CHEMKON, 2020, 27 (02) : 92 - 95
  • [7] On the effect of Bipolar Plate Mechanical Properties on the Current Distribution of Proton Exchange Membrane Water Electrolysis
    Al Shakhshir, S.
    Zhou, Fan
    Kaer, S. K.
    POLYMER ELECTROLYTE FUEL CELLS AND ELECTROLYZERS 18 (PEFC&E 18), 2018, 86 (13): : 683 - 693
  • [8] Influences of a bipolar membrane and an ultrasonic field on alkaline water electrolysis
    Hung, Chi-Yuan
    Li, Sheng-De
    Wang, Cheng-Chien
    Chen, Chuh-Yung
    JOURNAL OF MEMBRANE SCIENCE, 2012, 389 : 197 - 204
  • [9] Cathodic Protection System against a Reverse-Current after Shut-Down in Zero-Gap Alkaline Water Electrolysis
    Kim, Yoona
    Jung, Sang-Mun
    Kim, Kyu-Su
    Kim, Hyun-Yup
    Kwon, Jaesub
    Lee, Jinhyeon
    Cho, Hyun-Seok
    Kim, Yong-Tae
    JACS AU, 2022, 2 (11): : 2491 - 2500
  • [10] Impact of the current fluctuation on the efficiency of Alkaline Water Electrolysis
    Dobo, Zsolt
    Palotas, Arpad Bence
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2017, 42 (09) : 5649 - 5656