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Evaluation of Performance and Degradation Profiles of a Metal Supported Solid Oxide Fuel cell Under Electrolysis Operation

机译:电解操作下金属负载固体氧化物燃料电池性能和降解型材的评价

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In the context of energy transition, the use of renewable energies through the conversion of different resources with promising technologies into storable energy carriers is of eminent importance for a sustainable energy supply. Hydrogen production from steam using solid oxide electrolysis cells (SOEC) is part of this so called "energy mix". Recently, promising progress appeared from the investigation of metal supports in the solid oxide cell architecture. Metal-supported solid oxide fuel cells (MS-SOFCs) show not only good mechanical strength, relatively low operating temperature (500-750°C) and improved sealing capability but also low materials cost and tolerance towards rapid thermal cycling and redox cycling (1-3). In the present study, a MS-SOFC was tested under electrolysis conditions. The cell consisted of Ni-catalyst-loaded La_(0.1)Sr_(0.9)TiO_(3-α)/gadolinium-doped ceria (Ni-LST/GDC) as fuel electrode, gadolinium-doped ceria/yttrium-stabilized zirconia (GDC/YSZ) as electrolyte and La_(0.6)Sr_(0.4)Co_(0.2)Fe_(0.8)O_(3-δ) (LSCF) as O_2 electrode. The cell was first tested in fuel cell mode under different gas compositions. Subsequently, a first evaluation of the cell performance profile in electrolysis mode was performed. Thus, a series of current-voltage curves as well as impedance diagrams (under OCV and under load) was recorded. Furthermore, degradation under electrolysis operation was also investigated based on the evolution of the cell voltage against time.
机译:在能量转型的背景下,通过将不同资源转换为可商品能源载体的不同资源的使用对可持续能源供应的重要性。使用固体氧化物电解细胞(SOEC)从蒸汽产生的氢气产生如此称为“能量混合”的一部分。最近,从固体氧化物电池架构的金属支撑件的研究中出现了有希望的进展。金属支撑的固体氧化物燃料电池(MS-SOFC)不仅显示出良好的机械强度,相对较低的工作温度(500-750°C)和改善的密封能力,而且还具有低材料成本和耐热循环和氧化还原循环的材料成本和耐受性(1 -3)。在本研究中,在电解条件下测试MS-SOFC。该电池由Ni催化剂加载的LA_(0.1)SR_(0.9)TiO_(3-α)/钆掺杂的二氧化铈(Ni-LST / GDC)组成,作为燃料电极,钆掺杂的二氧化铈/钇稳定的氧化锆(GDC / YSZ)作为电解质和LA_(0.6)SR_(0.4)CO_(0.2)FE_(0.8)O_(0.8)O_(3-Δ)(LSCF)作为O_2电极。首先在不同的气体组合物下以燃料电池模式测试细胞。随后,进行电解模式中细胞性能轮廓的第一次评估。因此,记录了一系列电流电压曲线以及阻抗图(在OCV下和负载下)。此外,还基于电池电压的进化来研究电解操作下的降解。

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