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首页> 外文期刊>Journal of power sources >Plasma sprayed manganese-cobalt spinel coatings: Process sensitivity on phase, electrical and protective performance
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Plasma sprayed manganese-cobalt spinel coatings: Process sensitivity on phase, electrical and protective performance

机译:等离子喷涂锰钴尖晶石涂层:过程对相,电和保护性能的敏感性

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摘要

Manganese cobalt spinel (Mn1.5Co1.5O4, MCO) coatings are prepared by the air plasma spray (APS) process to examine their efficacy in serving as protective coatings from Cr-poisoning of the cathode side in intermediate temperature-solid oxide fuel cells (IT-SOFCs). These complex oxides are susceptible to process induced stoichiometric and phase changes which affect their functional performance. To critically examine these effects, MCO coatings are produced with deliberate modifications to the spray process parameters to explore relationship among process conditions, microstructure and functional properties. The resultant interplay among particle thermal and kinetic energies are captured through process maps, which serve to characterize the parametric effects on properties. The results show significant changes to the chemistry and phase composition of the deposited material resulting from preferential evaporation of oxygen. Post deposition annealing recovers oxygen in the coatings and allows partial recovery of the spine! phase, which is confirmed through thermo-gravimetric analysis (TGA)/differential scanning calorimetry (DSC), X-ray Diffraction (XRD), and magnetic hysteresis measurements. In addition, coatings with high density after sintering show excellent electrical conductivity of 40 S cm(-1) at 800 degrees C while simultaneously providing requisite protection characteristics against Cr-poisoning. This study provides a framework for optimal evaluation of MCO coatings in intermediate temperature SOFCs. (C) 2015 Elsevier B.V. All rights reserved.
机译:锰钴尖晶石(Mn1.5Co1.5O4,MCO)涂层是通过空气等离子喷涂(APS)工艺制备的,以检查它们在中温固体氧化物燃料电池中用作阴极侧Cr中毒的保护性涂层的功效( IT-SOFC)。这些复合氧化物易受过程诱导的化学计量和相变的影响,这些化学变化会影响其功能性能。为了严格检查这些影响,在制造MCO涂层时要对喷涂工艺参数进行适当的修改,以探索工艺条件,微观结构和功能特性之间的关系。颗粒热能和动能之间的相互作用是通过过程图捕获的,该过程图用于表征对性能的参数影响。结果表明,由于氧气的优先蒸发,沉积材料的化学和相组成发生了显着变化。沉积后退火可回收涂层中的氧气,并使脊柱部分回收!相通过热重分析(TGA)/差示扫描量热法(DSC),X射线衍射(XRD)和磁滞测量确定。此外,烧结后具有高密度的涂层在800摄氏度时显示出40 S cm(-1)的出色电导率,同时提供了针对铬中毒的必要保护特性。这项研究为中温SOFC中的MCO涂层的最佳评估提供了框架。 (C)2015 Elsevier B.V.保留所有权利。

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