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Mechanical Characterization of Thin SOFC Electrolytes With Honeycomb Support

机译:蜂窝状薄SOFC电解质的机械表征

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Planar solid oxide fuel cells are made up of repeating sequences of electrolytes, electrodes, seals, and current collectors. The electrolyte should be as thin as possible for optimal electrochemical efficiency; however, for electrolyte-supported cells, the thin electrolytes are susceptible to damage during production, assembly, and operation. To produce cells that are sufficiently mechanically robust, electrolytes can be made having a cosintered honeycomb structure that supports thin, electrochemically efficient electrolyte membranes. Use of finite element analysis is desirable to mechanically characterize such electrolytes. To maintain reasonable numbers of elements and element aspect ratios, it is not possible to simultaneously model the small-scale details together with the overall membrane response. A two-scale approach is devised: the smaller mesoscale analyzes a representative area of the electrolyte, while the larger macroscale examines the electrolyte as a whole. Elastic properties for the mesoscale model are measured over a range of temperatures using a sonic resonance technique. Effective properties for the macroscale are obtained over a range of mesoscale geometries and can be obtained without needing to rerun the mesoscale simulations. The effective properties are experimentally validated using four-point bend experiments on representative samples. The bulk properties and the effective properties can then be used as material inputs for the macroscale model in order to design cells that are more sufficiently mechanically robust without sacrificing electrochemical performance.
机译:平面固体氧化物燃料电池由重复的电解质,电极,密封件和集电器组成。为了获得最佳的电化学效率,电解质应尽可能薄。但是,对于电解质支持的电池,稀薄的电解质在生产,组装和操作过程中容易损坏。为了生产具有足够机械强度的电池,可以制成具有共烧结蜂窝结构的电解质,该蜂窝结构支撑着电化学效率高的薄电解质膜。希望使用有限元分析来机械表征这种电解质。为了维持合理数量的元素和元素长宽比,不可能同时对小规模细节和整个膜响应进行建模。设计了两个尺度的方法:较小的介观尺度分析电解质的代表性区域,而较大的宏观尺度检查整个电解质。使用声共振技术在一定温度范围内测量中尺度模型的弹性特性。可以在一定范围的中尺度几何形状上获得宏观尺度的有效属性,并且无需重新运行中尺度模拟即可获得该有效尺度。使用代表性样品的四点弯曲实验对有效特性进行了实验验证。然后可以将整体性质和有效性质用作宏观模型的材料输入,以便设计在不牺牲电化学性能的情况下机械上更坚固的电池。

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