Magnetic field Pre-polarization enhances the efficiency of alkaline water electrolysis for hydrogen production

被引:26
作者
Zhao, Pengcheng [1 ]
Wang, Jingang [1 ]
He, Wei [1 ]
Xia, Haiting [1 ]
Cao, Xing [1 ]
Li, Yun [2 ]
Sun, Liming [2 ]
机构
[1] Chongqing Univ, State Key Lab Power Transmiss Equipment & Syst Sec, Chongqing, Peoples R China
[2] Chongqing Yuxin Pingrui Elect Co Ltd, Chongqing, Peoples R China
关键词
Industrial alkaline water electrolyzer; Energy efficiency; Magnetic Field; Pre-polarization; CONDUCTIVITY; SURFACE; ENERGY;
D O I
10.1016/j.enconman.2023.116906
中图分类号
O414.1 [热力学];
学科分类号
摘要
Water electrolysis can become a promising mean to produce clean hydrogen. Improving the efficiency of water electrolysis is of great significance for accelerating the development of large-scale hydrogen production equip-ment and low-carbon economy. This paper presents a novel method for enhancing the alkaline water electrolysis (AWE) efficiency by Magnetic Field Pre-polarization (MFPP), which is easily matched to high-power industrial AWE system. Firstly, compactly-assembled structure and energy consumption of industrial AWE electrolyzer are analyzed. Secondly, the MFPP method was proposed to enhance the efficiency of AWE. The structure parameters of MFPP equipment are optimized by simulation and the physical model is designed. Finally, a system-level equipment was developed to evaluate the effect of MFPP on the performance of the alkaline water electrolysis (AWE) system. Repeatability measurement, I-V characteristic analysis and error statistics were carried out under different working conditions. The effectiveness of MFPP method has been proved on industrial electrolyzer (with 22 cells). Compared with the electrolysis voltage of 40 V-42 V@22_cell, the efficiency improvement is more significant when the voltage is in the range of 42-46 V@22_cell. Under the 0.75 T MFPP, the maximum hydrogen production efficiency increased by 9.2 %. The mean absolute deviation (MAD) of test results is less than 1.88 (with a proportion of 0.11 %) and the mean squared error (MSE) is less than 0.49.
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页数:13
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共 41 条
  • [31] The future of hydrogen: Challenges on production, storage and applications
    Rasul, M. G.
    Hazrat, M. A.
    Sattar, M. A.
    Jahirul, M. I.
    Shearer, M. J.
    [J]. ENERGY CONVERSION AND MANAGEMENT, 2022, 272
  • [32] Physics of Electrolytic Gas Evolution
    Sequeira, C. A. C.
    Santos, D. M. F.
    Sljukic, B.
    Amaral, L.
    [J]. BRAZILIAN JOURNAL OF PHYSICS, 2013, 43 (03) : 199 - 208
  • [33] Structure design and control strategy of a new alkaline water electrolyzer based on heat exchange
    Shen, Xiaojun
    Zhang, Xiaoyun
    Lv, Hong
    Li, Guojie
    Lie, Tek-Tjing
    [J]. INTERNATIONAL JOURNAL OF ENERGY RESEARCH, 2019, 43 (09) : 4729 - 4742
  • [34] Novel components in anion exchange membrane water electrolyzers (AEMWE's): Status, challenges and future needs. A mini review
    Shirvanian, Paige
    Loh, Adeline
    Sluijter, Soraya
    Li, Xiaohong
    [J]. ELECTROCHEMISTRY COMMUNICATIONS, 2021, 132
  • [35] Influence of magnetic field on physical-chemical properties of the liquid water: Insights from experimental and theoretical models
    Toledo, Evelyn J. L.
    Ramalho, Teodorico C.
    Magriotis, Zuy M.
    [J]. JOURNAL OF MOLECULAR STRUCTURE, 2008, 888 (1-3) : 409 - 415
  • [36] Non-precious-metal catalysts for alkaline water electrolysis: operando characterizations, theoretical calculations, and recent advances
    Wang, Jian
    Gao, Yang
    Kong, Hui
    Kim, Juwon
    Choi, Subin
    Ciucci, Francesco
    Hao, Yong
    Yang, Shihe
    Shao, Zongping
    Lim, Jongwoo
    [J]. CHEMICAL SOCIETY REVIEWS, 2020, 49 (24) : 9154 - 9196
  • [37] Wang K, 2020, REMOVAL GAS BUBBLES, P6
  • [38] The intensification technologies to water electrolysis for hydrogen production - A review
    Wang, Mingyong
    Wang, Zhi
    Gong, Xuzhong
    Guo, Zhancheng
    [J]. RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2014, 29 : 573 - 588
  • [39] Water electrolysis enhanced by super gravity field for hydrogen production
    Wang, Mingyong
    Wang, Zhi
    Guo, Zhancheng
    [J]. INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2010, 35 (08) : 3198 - 3205
  • [40] Wang S, 2021, NANO CONVERG, V8