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首页> 外文期刊>Journal of Thermal Spray Technology >Development and characterization of vacuum plasma sprayed thin film solid oxide fuel cells
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Development and characterization of vacuum plasma sprayed thin film solid oxide fuel cells

机译:真空等离子喷涂薄膜固体氧化物燃料电池的开发与表征

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The vacuum plasma spraying (VPS) process allows the production of thin solid oxide fuel cells (SOFCs) with low internal resistances. This enables the reduction of the cell operating temperature without a significant decrease in power density. Consequently, the long-term stability of the cells can be improved and low-cost materials can be used. Different material combinations and spray parameter variations were applied to develop thin-film SOFCs, which were plasma sprayed in a consecutive deposition process onto different porous metallic substrates. The use of Laval nozzles, which were developed at the German Aerospace Center (DLR), and the use of conical F4V standard nozzles enable the fabrication of thin gas tight yttria- and scandia-stabilized ZrO{sub}2 (YSZ and ScSZ) electrolyte layers and of porous electrode layers with high material deposition rates. The optimization of the VPS parameters has been supported by laser doppler anemometry (LDA) investigations. The development of the plasma-sprayed cells with a total thickness of approximately 100 μm requires an overall electrical and electrochemical characterization process of the single layers and of the completely plasma-sprayed cell assembly. The plasma-sprayed cell layers reveal high electrical conductivities. The plasma-sprayed cells show very good electrochemical performance and low internal resistances. Power densities of 300 to 400 mW/cm{sup}2 at low operating temperatures of 750 to 800 ℃ were achieved. These cells can be assembled to high performance SOFC stacks with active cell areas up to 400 cm{sup}2, which can be operated at reduced temperatures and good long-term stability.
机译:真空等离子喷涂(VPS)工艺允许生产具有低内阻的薄固体氧化物燃料电池(SOFC)。这使得能够降低电池工作温度而不会显着降低功率密度。因此,可以改善电池的长期稳定性,并且可以使用低成本的材料。应用不同的材料组合和喷涂参数变化来开发薄膜SOFC,然后在连续的沉积过程中将其等离子喷涂到不同的多孔金属基材上。使用德国航空航天中心(DLR)开发的Laval喷嘴,以及使用圆锥形F4V标准喷嘴,可制造出薄的气密性氧化钇和scan稳定的ZrO {sub} 2(YSZ和ScSZ)电解质层和具有高材料沉积速率的多孔电极层。激光多普勒风速仪(LDA)研究支持了VPS参数的优化。总厚度约为100μm的等离子喷涂电池的开发需要单层和完全等离子喷涂的电池组件的整体电学和电化学表征过程。等离子体喷涂的细胞层显示出高电导率。等离子体喷涂的电池显示出非常好的电化学性能和低内阻。在750至800℃的低工作温度下,功率密度达到300至400 mW / cm {sup} 2。可以将这些电池组装成具有高达400 cm {sup} 2的有源电池面积的高性能SOFC电池堆,该电池可以在降低的温度下工作并具有良好的长期稳定性。

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