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首页> 外文期刊>Journal of power sources >Development of mathematical transfer functions correlating Solid Oxide Fuel Cell degradation to operating conditions for Accelerated Stress Test protocols design
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Development of mathematical transfer functions correlating Solid Oxide Fuel Cell degradation to operating conditions for Accelerated Stress Test protocols design

机译:数学转移功能的发展将固体氧化物燃料电池的劣化与加速应力测试方案设计的操作条件相关性

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摘要

This work presents an innovative model-based approach for the development of mathematical transfer functions capable of correlating Solid Oxide Fuel Cells (SOFCs) degradation rate to the applied operating conditions. Such functions can be used for fuel cell lifetime prediction and Accelerated Stress Test (AST) protocols design. The proposed approach relies on multiscale modelling methodology and links local degradation to high level per-formance models to evaluate the key operating variables accelerating voltage decay over time. A thorough simulation analysis is performed to convey the correlation among operating variables and degradation rate into mathematical transfer functions. To better illustrate the overall design and application process of such functions, a case study accounting for Ni agglomeration is addressed. The multiscale modelling framework is applied to correlate microscale (i.e., Ni particles size change) and macroscale (i.e., SOFC voltage reduction) levels through the most affected mesoscale parameters. The model is then used to simulate voltage decay over time and link degradation rates to the applied operating conditions. Afterwards, a parametric analysis is performed to inves-tigate the influence exerted by each operating variable on the degradation rate and derive the transfer functions. An example of application for Accelerated Stress Test (AST) protocols design is then given.
机译:该工作提出了一种基于模型的基于模型的方法,用于开发能够将固体氧化物燃料电池(SOFC)降解速率与所施加的操作条件相关联的数学转移功能。这种功能可用于燃料电池寿命预测和加速应力测试(AST)协议设计。所提出的方法依赖于多尺度建模方法,并将局部劣化与高水平的每种型号联系起来,以评估随时间加速电压衰减的关键操作变量。进行彻底的仿真分析以传达运行变量和降解速率之间的相关性,进入数学传递函数。为了更好地说明此类功能的整体设计和应用程序,解决了NI集聚的案例研究。应用MultiScale建模框架以通过最影响最大的Messcale参数将微观(即,Ni粒子尺寸变化)和宏观(即,SOFC电压降低)水平相关联。然后,该模型用于模拟电压衰减随时间并将劣化速率链接到应用的操作条件。之后,执行参数分析以引用每个操作变量对劣化率施加的影响并导出传递函数。然后给出了加速应力测试(AST)协议设计的应用示例。

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