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Glass Ceramic Seal for Electrochemical Devices

机译:电化学装置的玻璃陶瓷密封

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This paper details the recent progress in the investigation of the long term behavior of selected Saint-Gobain Glass Ceramic Seal under operating conditions that play an important role in the performance of electrochemical devices like solid oxide fuel cell (SOFC), high temperature electrolysis (HTE) and ceramic membrane reactors. In addition to gas tightness and electrical resistivity, a seal material must have a set of thermo-mechanical and chemical properties in order to efficiently seal the SOFC cell components and to maintain performance at elevated temperature over extended operating time. The seal must be stable in oxidizing and reducing atmospheres and withstand thermal cycles between room and the cell typical operating temperature (800 to 900°C). Chemical reaction with the SOFC components should be minimal so as to keep integrity of the seal/cell-interface and prevent degradation in seal reliability over time. In this work, the glass-ceramic seal is discussed for which optimal sintering/crystallization behaviors and thermal stability have been demonstrated. The investigation of the sealant was performed from the point of view of sealing ability and crystallization behavior using Differential Scanning Calorimetry (DSC). The evolution of the seal Coefficient of Thermal Expansion (CTE) has been followed by dilatometric analysis, crystalline phase evolution has been investigated by X-Ray Diffraction (XRD) and the chemical interaction between sealant and cell components has been evaluated by Scanning Electron Microscope (SEM) and Electron Probe Micro Analysis (EPMA). The microstructure of the sealing material has been evaluated after aging by Transmission Electron Microscope (TEM).
机译:本文详述了最近在经营条件下调查了所选圣甘地玻璃陶瓷密封的长期行为的进展,在实际氧化物燃料电池(SOFC),高温电解(HTE)等电化学装置的性能中起重要作用的重要作用)和陶瓷膜反应器。除了气体密封和电阻率之外,密封材料必须具有一组热机械和化学性质,以便有效地密封SOFC电池组分并在延长的工作时间内保持高温下的性能。密封件必须在氧化和减少气氛中稳定,并在室内和电池典型工作温度(800至900℃)之间承受热循环。与SOFC部件的化学反应应该是最小的,以保持密封/电池界面的完整性,并防止密封可靠性随时间的降解。在这项工作中,讨论了玻璃陶瓷密封,用于证实了最佳的烧结/结晶行为和热稳定性。使用差示扫描量热法(DSC)的密封能力和结晶行为的观点来进行密封剂的研究。热膨胀(CTE)的密封系数的演变一直是稀释分析,通过X射线衍射(XRD)研究了结晶相进化,并通过扫描电子显微镜评估密封剂和细胞成分之间的化学相互作用( SEM)和电子探针微分析(EPMA)。通过透射电子显微镜(TEM)老化后,已经评估了密封材料的微观结构。

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