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首页> 外文期刊>International journal of hydrogen energy >Performance assessment of industrial-sized solid oxide cells operated in a reversible mode: Detailed numerical and experimental study
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Performance assessment of industrial-sized solid oxide cells operated in a reversible mode: Detailed numerical and experimental study

机译:在可逆模式下操作的工业尺寸固体氧化物细胞的性能评估:详细数值和实验研究

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Reversible solid oxide cells (rSOCs) present a unique possibility in comparison to other available technologies to generate electricity, heat and valuable fuels in one system, in a highly-efficient manner. The major issue hindering their commercialization are system reliability and durability. A detailed understanding of the processes and mechanisms that occur within rSOCs of industrial-size, is of critical importance for addressing this challenge. This study provides in-depth insight into behavior of large planar rSOCs based on a comprehensive experimental and numerical study. All the numerical data obtained are validated with the in-house made cells and experiments. The sensitivity analysis, which covers a wide range of operating conditions relevant for industrial-sized systems, such as varying operating temperature, H-2/H2O-ratio, operating current etc., provides very good accordance of the cell performance measured and simulated. It reveals that lowering fuel volume and thus causing fuel starvation has more pronounced effect in an electrolysis mode, which is visible in both the low-frequency and the middle-frequency range. Moreover, both co- and counter-flow are appropriate for the reversible operation. However, more uniform current density distribution is achievable for the counter-flow, which is of crucial importance for the real system design. The most accurate performance prediction can be achieved when dividing the cell into 15 segments. Slightly lower accuracy is reached by logarithmic averaging the fuel compositions, thus reducing the calculation time required. A computationally- and time-efficient model with very precise performance prediction for industrial-sized cells is thus developed and validated. (C) 2020 The Author(s). Published by Elsevier Ltd on behalf of Hydrogen Energy Publications LLC.
机译:可逆的固体氧化物细胞(RSOCs)与其他可用技术相比,在一个系统中以高效的方式比较了与其他系统产生电力,热和有价值的燃料的可能性。妨碍了他们商业化的主要问题是系统可靠性和耐用性。详细了解在工业大小的RSOC中发生的过程和机制,对解决这一挑战至关重要。本研究提供了基于全面的实验和数值研究的大平面RSOC的行为深入了解。所获得的所有数值数据与内部制造的细胞和实验验证。涵盖对工业尺寸系统相关的广泛操作条件的灵敏度分析,例如不同的操作温度,H-2 / H2-比率,操作电流等,提供了测量和模拟的电池性能非常好。它揭示了降低燃料量,从而导致燃料饥饿在电解模式中具有更明显的效果,在低频和中间频率范围内可见。此外,还适用于可逆运行。然而,可以实现更均匀的电流密度分布对于反流,这对于真实系统设计至关重要。当将细胞分成15个段时,可以实现最准确的性能预测。通过对数平均燃料组合物来达到略低的精度,从而减少所需的计算时间。因此,制定和验证了具有非常精确的性能预测的计算和时间效率模型。 (c)2020提交人。由elsevier有限公司发布代表氢能出版物LLC。

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