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首页> 外文期刊>Journal of new materials for electrochemical systems >Mechanical Properties and Plastic Behaviour Mechanism Induced by Nanoindentation Technique of YSZ and GDC Materials used as Electrolytes in Fuel Cells Devices
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Mechanical Properties and Plastic Behaviour Mechanism Induced by Nanoindentation Technique of YSZ and GDC Materials used as Electrolytes in Fuel Cells Devices

机译:YSZ和GDC纳米压痕技术在燃料电池装置中用作电解质的力学性能和塑性行为机理

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In this study, mechanical characterization at nanometric scale was carried out for different ceramic Materials (Yttrium-Stabilized Zirconium, YSZ, and Gadolinium-doped Cerium, GDC) both widely employed as electrolytes in Solid Oxide Fuel Cells (SOFCs). The applied load (P)-displacement (h) curves, and the energy data (total, plastic, and elastic energy) were analysed to evaluate the minimum work necessary to produce plastic deformation. The different mechanical properties were calculated by the Oliver and Pharr approach, and the work of indentation method As a result, it was determined that the hardness for YSZ is higher than for GDC materials, and the Young's modulus for both studied materials is similar. Finally, fracture behaviour of each of the materials during indentation (chipping. cracks, and other mechanisms) was also discussed in detail from the residual imprints observed with Atomic Force Microscopy (AFM).
机译:在这项研究中,对两种都广泛用作固体氧化物燃料电池(SOFC)电解质的陶瓷材料(钇稳定的锆,YSZ和掺d的铈,GDC)进行了纳米尺度的机械表征。分析了施加的载荷(P)-位移(h)曲线以及能量数据(总能量,塑性能量和弹性能量),以评估产生塑性变形所需的最小功。通过Oliver和Pharr方法计算出不同的机械性能,并采用压痕法进行工作。结果,可以确定YSZ的硬度高于GDC材料,两种研究材料的杨氏模量相似。最后,还通过原子力显微镜(AFM)观察到的残留痕迹详细讨论了每种材料在压痕过程中的断裂行为(碎裂,裂纹和其他机理)。

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