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Modeling and simulation for solid oxide fuel cell power systems.

机译:固体氧化物燃料电池动力系统的建模和仿真。

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The solid oxide fuel cell is one of the most promising means for direct conversion of chemical to electrical energy and with its high temperature waste heat there are multiple cogeneration applications. The problem is that no models have been created that accurately scale up results from a single cell to a stack module and finally to a system configuration. Another problem is that all present single cell models at some point use data obtained by reverse curve fitting empirical performance results. These issues lead to the motivation for this research.; To further unite these different modeling levels, three models were created for the tubular solid oxide geometry, each representing a different stage of development. The first model was an integrated electrochemical and thermal model of a single solid oxide fuel cell tube. This model accurately predicted the power and current density of a single cell under multiple design parameters. This model allowed for the use of natural gas, and not simply hydrogen, as the fuel and determined the probability of carbon formation under the operating conditions imposed by the use of a normal hydrocarbon fuel. The results from this model agreed well with field data from a 3 kW test module run at Osaka Gas in Japan.; The next level of modeling performed simulated the performance of a power module, or 'stack'. To date, no researcher has generated any true stack models. This model not only shows that single cell results cannot be multiplied linearly to produce stack results, but it also addresses the issues of off-design performance. Whether a cell becomes open or shorts the circuit, a decrease in power will result which is a conclusion that is not easily determined from a single cell model.; The final stage of modeling was the prediction of solid oxide fuel cell performance in a power system configuration. Building on the results generated from the single cell and stack models, performance curves were developed for a solid oxide fuel cell power module. These performance curves address issues such as power output, exhaust stream temperatures, and exhaust stream compositions. By utilizing these curves, a design engineer can now determine the effects of placing a solid oxide fuel cell power module in an overall power system.
机译:固体氧化物燃料电池是将化学物质直接转化为电能的最有前途的手段之一,并且由于其高温废热而存在多种热电联产应用。问题在于尚未创建任何模型来准确地将结果从单个单元扩展到堆栈模块,最后扩展到系统配置。另一个问题是,所有当前的单细胞模型在某个点都使用通过反向曲线拟合经验性能结果获得的数据。这些问题导致了这项研究的动机。为了进一步统一这些不同的建模级别,针对管状固体氧化物几何结构创建了三个模型,每个模型代表不同的开发阶段。第一个模型是单个固体氧化物燃料电池管的集成电化学模型和热模型。该模型可以在多个设计参数下准确预测单个电池的功率和电流密度。该模型允许使用天然气而不是简单的氢气作为燃料,并确定了在使用普通烃类燃料施加的操作条件下形成碳的可能性。该模型的结果与日本大阪煤气公司运行的3 kW测试模块的现场数据非常吻合。执行的下一级别建模模拟了电源模块或“堆栈”的性能。迄今为止,还没有研究人员生成任何真实的堆栈模型。该模型不仅表明单个单元的结果不能线性相乘以产生堆栈结果,而且还解决了设计外性能的问题。无论电池是开路还是短路,都会导致功率降低,这是一个不容易从单个电池模型确定的结论。建模的最后阶段是预测电力系统配置中固体氧化物燃料电池的性能。基于从单电池和堆栈模型生成的结果,开发了固体氧化物燃料电池功率模块的性能曲线。这些性能曲线解决了诸如功率输出,废气流温度和废气流成分等问题。通过利用这些曲线,设计工程师现在可以确定将固体氧化物燃料电池电源模块放置在整个电源系统中的效果。

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