Simulation Technology on SOFC Durability With an Emphasis on Conductivity Degradation of ZrO2-Base Electrolyte

Author:

Yokokawa Harumi1,Kishimoto Haruo2,Shimonosono Taro2,Yamaji Katsuhiko2,Muramatsu Mayu3,Terada Kenjiro4,Yashiro Keiji3,Kawada Tatsuya3

Affiliation:

1. Institute of Industrial Science, The University of Tokyo, Tokyo 153-8505, Japan e-mail:

2. National Institute of Advanced Industrial Science and Technology (AIST), Ibaraki 305-8565, Japan

3. Graduate School of Environmental Studies, Tohoku University, Sendai 980-8579, Japan

4. International Research Institute of Disaster Science, Tohoku University, Sendai 980-0845, Japan

Abstract

Attempts have been made to simulate numerically the conductivity degradation of solid oxide fuel cell (SOFC) YSZ electrolyte; physicochemical model has been constructed on the basis of experimental conductivities of Pt/1%NiO-doped YSZ/Pt cells under OCV condition. The temperature effect was extracted from the time constant for degradation caused by one thermal activation process (namely Y-diffusion), whereas the oxygen potential effect was determined by those Raman peak ratios between the tetragonal and the cubic phases which linearly change in relation to the conductivity. The electrical properties of the YSZ electrolyte before and after the transformation are taken into account. The time constant is directly correlated with Y-diffusion with proper critical diffusion length (∼10 nm), while the Y-diffusion can be enhanced on the reduction of NiO; this gives rise to the oxygen potential dependence. The most important objective of simulating the conductivity degradation is to reproduce the oxygen potential profile shift on transformation. Detailed comparison between experimental and simulation results reveal that the shift of oxygen potential profile, therefore, the conductivity profile change inside the YSZ electrolyte can well account for the Raman spectra profile. This also reveals that with decreasing temperature, there appear other kinetic factors of weakening or diminishing enhancing effects by NiO reduction. This may be important in interpreting the ohmic losses in real stacks, because there are differences in time constant or in magnitude of degradation between the pellets and those industrial stacks in which transformation was confirmed by Raman spectroscopy.

Funder

New Energy and Industrial Technology Development Organization

Publisher

ASME International

Subject

Mechanical Engineering,Mechanics of Materials,Energy Engineering and Power Technology,Renewable Energy, Sustainability and the Environment,Electronic, Optical and Magnetic Materials

Reference93 articles.

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