Integrated 3d Modeling Unravels the Measures to Mitigate Nickel 2 Migration in Solid Oxide Fuel/Electrolysis Cells

34 Pages Posted: 6 Sep 2023

See all articles by Zhenjun Jiao

Zhenjun Jiao

Harbin Institute of Science and Technology

Yunpeng Su

Harbin Institute of Science and Technology

Wenyue Yang

Harbin Institute of Science and Technology

Jianli Zhou

Harbin Institute of Science and Technology

Jin Zhang

Harbin Institute of Science and Technology

Xiaofeng Tong

North China Electric Power University

Yijing Shang

Technical University of Denmark

Ming Chen

Technical University of Denmark

Abstract

Numerical modeling plays an important role in understanding the multi-physics coupling in solid oxide fuel/electrolysis cells ( SOFCs/SOECs ) operated at elevated temperatures. During long-term operation of SOFCs and SOECs, cell durability is limited by nickel (Ni) morphological changes and migration. To reveal the mechanisms behind these phenomena, a unified numerical model utilizing the phase-field (PF) method is integrated with a finite element (FE) multi-physics coupled heterogeneous single-cell model to quantitatively investigate the microstructure evolution of hydrogen electrodes operated in different modes. Based on the 3D microstructures of single-cell components reconstructed using the focused ion beam-scanning electron microscopy technique (FIB-SEM), the performances of different cells and the corresponding microstructure evolutions caused by Ni coarsening and migration can be simulated under an identical framework in the FC and EC modes, taking into account the complex multi-physics coupling effects. It is shown that, in addition to conventional interfacial energies, the Ni migration driven by the electrochemical potential gradient induced by current also plays an important role during the microstructure evolution. The integrated model is also applied to the simulation of the microstructure evolution of the Ni-YSZ hydrogen electrode infiltrated with GDC nanoparticles to interpret its positive effect on the improvement of the electrode durability.

Keywords: Integrated modeling, SOFC/SOEC, Multi-physics, Finite element method, Phase-field method, Ni migration

Suggested Citation

Jiao, Zhenjun and Su, Yunpeng and Yang, Wenyue and Zhou, Jianli and Zhang, Jin and Tong, Xiaofeng and Shang, Yijing and Chen, Ming, Integrated 3d Modeling Unravels the Measures to Mitigate Nickel 2 Migration in Solid Oxide Fuel/Electrolysis Cells. Available at SSRN: https://ssrn.com/abstract=4561688 or http://dx.doi.org/10.2139/ssrn.4561688

Zhenjun Jiao (Contact Author)

Harbin Institute of Science and Technology ( email )

Yunpeng Su

Harbin Institute of Science and Technology ( email )

Wenyue Yang

Harbin Institute of Science and Technology ( email )

Jianli Zhou

Harbin Institute of Science and Technology ( email )

Jin Zhang

Harbin Institute of Science and Technology ( email )

Xiaofeng Tong

North China Electric Power University ( email )

School of Business Administration,NCEPU
No. 2 Beinong Road, Changqing District
Beijing, 102206
China

Yijing Shang

Technical University of Denmark ( email )

Anker Engelunds Vej 1
Building 101A
Lyngby, 2800
Denmark

Ming Chen

Technical University of Denmark ( email )

Anker Engelunds Vej 1
Building 101A
Lyngby, 2800
Denmark

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