CIESC Journal ›› 2025, Vol. 76 ›› Issue (8): 4129-4144.DOI: 10.11949/0438-1157.20250142

• Intelligent process engineering • Previous Articles     Next Articles

Optimization analysis of 3D modelling of SOEC stacks taking into account inhomogeneities

Yaqing HE1(), Weiqing WANG1(), Yingtian CHI2, Jiarong LI2, Haiyun WANG1, Xinyan ZHANG1, Bowen LIU1   

  1. 1.Engineering Research Center of Education Ministry for Renewable Energy Power Generation and Grid Connection, Xinjiang University, Urumqi 830017, Xinjiang, China
    2.State Key Laboratory of Control and Simulation of Power Systems and Generation Equipment, Tsinghua University, Beijing 100084, China
  • Received:2025-02-15 Revised:2025-04-26 Online:2025-09-17 Published:2025-08-25
  • Contact: Weiqing WANG

考虑不均匀性的SOEC电堆3D建模优化分析

赫亚庆1(), 王维庆1(), 池映天2, 李佳蓉2, 王海云1, 张新燕1, 刘博文1   

  1. 1.新疆大学可再生能源发电与并网控制教育部工程研究中心,新疆 乌鲁木齐 830017
    2.清华大学电力系统及发电设备控制和仿真国家重点实验室,北京 100084
  • 通讯作者: 王维庆
  • 作者简介:赫亚庆(1990—),男,博士研究生,2363423816@qq.com
  • 基金资助:
    国家自然科学基金项目(52267005)

Abstract:

To address the impact of temperature and current inhomogeneity inside the solid oxide electrolysis cell (SOEC) stack on the system's hydrogen production efficiency, safe and stable operation, and lifetime, first, based on the geometric structure of the SOEC power reactor, a three-dimensional (3D) model coupled with multi-physics fields that can accurately analyze the charge transport process, fluid flow, material transport process and heat energy transfer process of the SOEC is established. Secondly, in order to optimize the simulation process of the model, boundary constraints are imposed on the model and its structure is meshed to obtain an adaptive incremental Kriging agent model optimization that satisfies the constraints, which confirms the accuracy of the model optimization and reduces the simulation time and the total amount of computational resources. Finally, the multi-objective optimization algorithm for the steady-state operation of SOEC reactors is proposed to increase the efficiency of electrolytic hydrogen production and improve the inhomogeneity by analyzing the characteristics and causes of the inhomogeneous distribution of temperature, material, current density and voltage inside the stacks, and through numerical simulation and experimental verification, considering the optimization method of temperature and current uniformity distribution inside the stacks, it can greatly improve the safe and stable operation and hydrogen production of the stacks.

Key words: SOEC, inhomogeneity, Kriging agent model, efficiency, multi-objective optimization, steady-state operation

摘要:

针对SOEC电堆内部温度、电流不均匀性对系统制氢效率、安全稳定运行及寿命造成的影响,首先根据SOEC电堆的几何结构建立能精准分析SOEC电荷传输过程、流体流动、物质传输过程、热能传递过程的多物理场耦合的3D模型,其次为优化模型仿真过程对模型进行边界约束并将其结构网格化,得到满足约束条件的自适应增量Kriging代理模型优化方式,印证该模型优化的精准性并减少了仿真时间与计算资源总量,最后通过分析电堆内部温度、物料分布、电流密度、电压等不均匀分布特性及原因提出考虑增加电解制氢效率及改善不均匀性的SOEC电堆稳态运行多目标优化算法,并通过算例仿真和实验验证,考虑电堆内部温度、电流均匀性分布的优化方式,可大大提高电堆安全稳定运行及产氢量。

关键词: SOEC, 不均匀性, Kriging代理模型, 效率, 多目标优化, 稳态运行

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