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首页> 外文期刊>Journal of Energy Storage >An extensive model for renewable energy electrochemical storage with Solid Oxide Cells based on a comprehensive analysis of impedance deconvolution
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An extensive model for renewable energy electrochemical storage with Solid Oxide Cells based on a comprehensive analysis of impedance deconvolution

机译:基于综合分析阻抗卷积的固体氧化物细胞可再生能源电化学储存的广泛模型

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摘要

Solid Oxide Cells are potentially one of the most efficient energy conversion systems, yet unfavourable operating conditions may cause a performance drop. These electrochemical devices can be operated in reversible mode (fuel cell /electrolysers); therefore, they are suitable in chemical storage applications. However, reversible operation and inversion cycles further jeopardise performance stability. Advanced processing of experimental data such as Distribution of Relaxation Times (DRT) on Electrochemical Impedance Spectroscopy (EIS) measurements is a powerful tool to investigate physicochemical processes occurring in Solid Oxide Cells and to analyse ageing mechanisms.This paper presents a method to identify the main processes behind polarisation losses in order to build an equivalent circuit model (ECM) suitable for real-time diagnosis based on EIS. The fuel cell operation is chosen as a reference for degradation detection and diagnosis. A comprehensive experimental campaign was executed on a commercial cell operated in fuel cell mode in a laboratory test apparatus by systematically varying operating temperature, current density, fuel flow and its composition. DRT deconvolution highlights five main processes, namely: oxygen transport and charge transfer in the anode, anodic diffusion, charge transfer at the cathode and cathodic diffusion. Therefore, the proposed ECM for the cell can be schematised as LR0(R(a1)Q(a1))(R(a2)Q(a2))W-FLWaG(R(c1)Q(c1)). Beyond determining the model, a complete look-up table for the circuital elements is built thanks to EIS measurements fit. This is a rich database for solid oxide fuel cell electrochemical performance simulation, and it allows the future implementation of the model in a useful diagnostic tool, even in the broader case of reversible operation in energy storage systems.
机译:固体氧化物电池是最有效的能量转换系统之一,但不利的操作条件可能导致性能下降。这些电化学装置可以以可逆模式(燃料电池/电囊)操作;因此,它们适用于化学储存应用。然而,可逆操作和反演循环进一步危及性能稳定性。电化学阻抗光谱(EIS)测量上的弛豫时间分布(DRT)的实验数据的高级处理是研究在固体氧化物细胞中发生的物理化学过程并分析老化机制的强大工具。本文呈现了识别主要的方法偏振损耗后面的处理,以便构建适用于基于EIS的实时诊断的等效电路模型(ECM)。选择燃料电池操作作为降解检测和诊断的参考。通过系统地改变工作温度,电流密度,燃料流动及其组合物在实验室测试装置中以燃料电池模式运行的商业细胞上执行全面的实验活动。 DRT解卷积突出了五个主要过程,即:阳极中的氧气输送和电荷转移,阳极扩散,阴极和阴极扩散处的电荷转移。因此,可以将所提出的电池ECM示意为LR0(R(A1)Q(A1))(R(A2)Q(A2))W-FLWAG(R(C1)Q(C1))。除了确定模型之外,由于EIS测量适合,因此建立了用于电路元件的完整查找表。这是一种用于固体氧化物燃料电池电化学性能模拟的丰富的数据库,它允许在有用的诊断工具中实现模型的未来实现,即使在储能系统中的可逆操作的更广泛的情况下,也是如此。

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