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基于多物理场耦合模型的碱性水电解槽工作特性
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作者 王润东 黎静华 韦善阳 《高电压技术》 EI CAS CSCD 北大核心 2024年第7期3209-3220,I0019-I0021,共15页
风电制氢系统将富余的风电用于电解水制取氢气,有效提高了风电的消纳能力。碱性水电解槽是电制氢的重要设备,通过数值方法研究其工作特性对于提高制氢效率具有重要意义。然而,现有电解槽模型通常只关注其电学性能,难以对各工况下设备运... 风电制氢系统将富余的风电用于电解水制取氢气,有效提高了风电的消纳能力。碱性水电解槽是电制氢的重要设备,通过数值方法研究其工作特性对于提高制氢效率具有重要意义。然而,现有电解槽模型通常只关注其电学性能,难以对各工况下设备运行状态进行准确预测。为此,提出了碱性水电解槽电场-流场-浓度场多物理场耦合模型。首先对碱性水电解槽进行了几何建模;接着建立电解槽电场、流场、浓度场数学模型,并基于COMSOL平台进行多物理场模型搭建;在验证模型有效性后,分析了电压、温度、压力、电解液浓度与流速对电解槽稳态、瞬态工作特性的影响。模拟结果表明:升高温度与降低压力减小了单位电流所需电压;降低电流、升高温度与压力增大了电解效率。单位电流所需电压随电解液浓度增加先减小后增大,而电解效率随浓度增加而先升后降,50℃时在质量分数为30%处达到最大电解效率。电压突变会产生电流过冲现象;流速突变不会发生电流过冲现象。研究成果可为碱性水电解槽设计与性能预测提供理论指导。 展开更多
关键词 可再生能源制氢 碱性水电解槽 COMSOL 多物理场仿真 工作特性分析
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碱性水电解槽氧气除碱工艺改进研究
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作者 窦勤成 吴栋 +2 位作者 尹玉国 阮皓 胡石林 《山东化工》 CAS 2020年第14期145-145,150,共2页
本文针对碱性水电解槽氧气碱脱除工艺进行研究,结合工艺改进过程实例,逐步探索氧气高效除碱的最优工艺,提高电解槽长期运行的稳定性。在此研究的基础上,提出了电解气除碱的总体工艺改进措施,保证生产安全性,满足用户的需求。
关键词 氧气除碱 碱性水电解槽 工艺改进
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Optimization of Channel Structure of Alkaline Water Electrolyzer by Using an Expanded Mesh as a Bipolar Plate
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作者 Hai-Yan Xiong Zhen-Xiao Zhu +3 位作者 Xin Gao Chen-Ming Fan Hui-Bao Luan Bing Li 《电化学(中英文)》 CAS 2024年第9期25-38,共14页
Alkaline water electrolysis(AWE)is the most mature technology for hydrogen production by water electrolysis.Alkaline water electrolyzer consists of multiple electrolysis cells,and a single cell consists of a diaphragm... Alkaline water electrolysis(AWE)is the most mature technology for hydrogen production by water electrolysis.Alkaline water electrolyzer consists of multiple electrolysis cells,and a single cell consists of a diaphragm,electrodes,bipolar plates and end plates,etc.The existing industrial bipolar plate channel is concave-convex structure,which is manufactured by complicated and high-cost mold punching.This structure still results in uneven electrolyte flow and low current density in the electrolytic cell,further increasing in energy consumption and cost of AWE.Thereby,in this article,the electrochemical and flow model is firstly constructed,based on the existing industrial concave and convex flow channel structure of bipolar plate,to study the current density,electrolyte flow and bubble distribution in the electrolysis cell.The reliability of the model was verified by comparison with experimental data in literature.Among which,the electrochemical current density affects the bubble yield,on the other hand,the generated bubbles cover the electrode surface,affecting the active specific surface area and ohmic resistance,which in turn affects the electrochemical reaction.The result indicates that the flow velocity near the bottom of the concave ball approaches zero,while the flow velocity on the convex ball surface is significantly higher.Additionally,vortices are observed within the flow channel structure,leading to an uneven distribution of electrolyte.Next,modelling is used to optimize the bipolar plate structure of AWE by simulating the electrochemistry and fluid flow performances of four kinds of structures,namely,concave and convex,rhombus,wedge and expanded mesh,in the bipolar plate of alkaline water electrolyzer.The results show that the expanded mesh channel structure has the largest current density of 3330 A/m^(2)and electrolyte flow velocity of 0.507 m/s in the electrolytic cell.Under the same current density,the electrolytic cell with the expanded mesh runner structure has the smallest potential and energy consumption.This work provides a useful guide for the comprehensive understanding and optimization of channel structures,and a theoretical basis for the design of large-scale electrolyzer. 展开更多
关键词 Alkaline water electrolyzer Expanded mesh channel structure Numerical simulation
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