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Study to characterise the performance of micro tubular solid oxide fuel cells by the invention of an avant garde experimental apparatus and computational modelling.

机译:研究通过前卫实验装置和计算模型的发明来表征微管状固体氧化物燃料电池的性能。

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摘要

The content of this PhD thesis deals with the development of Micro Tubular Solid Oxide Fuel Cells (MT-SOFCs) and provides a body of information for any future MT-SOFC stack or testing apparatus design. This information has been achieved through a combination of experimental work, CFD modelling and numerical analysis. CFD models with an additional fuel cell module have been compared to experimental results for single cells with relation to oxygen concentration, fuel utilisation, I/V curves and external cell temperature profiles. All of the above multi physical phenomena match very well to the experimental results.udA key finding of the thesis is the importance of including radiation equations in the CFD models. Neglecting radiation can result in temperature errors of up to 200°C for a single cell in cross flow inside a high temperature wind tunnel. . This is interesting information as most modelling work in the field to date has neglected radiation effects. 3D models that include the experimental apparatus and radiation equations have been completed. These models show how the experimental apparatus or stack design may cause large temperature losses if not properly designed. Furthermore the radial temperature gradient across the cell has been experimentally measured using an impedance spectroscopy technique. A thermographic photography technique has been developed to measure the temperature profile on the cathodeudwall of a MT-SOFC in cross flow within a high temperature wind tunnel. Other simplified 3D CFD models have been compared to numerical calculations to predict the conditions when buoyant flows may occur in bundles of MT-SOFCs in cross flow.udThe results show that a stack oxidant flow rate, even greater than a few mm per second, can dramatically inhibit the effect of buoyant flows to the point where they will not occur. This is important information that should be useful when designing MT-SOFC stack flow channels. The measurement of the concentration around the perimeter of a MT-SOFC in cross-flow has also been attempted. While it has not been shown conclusively that a methoduddeveloped in this thesis surely works, it has been shown that there is massive potential for it to work.
机译:本博士学位论文的内容涉及微管式固体氧化物燃料电池(MT-SOFC)的开发,并为将来的任何MT-SOFC堆或测试设备设计提供了大量信息。这些信息是通过结合实验工作,CFD建模和数值分析获得的。已将带有附加燃料电池模块的CFD模型与单电池的实验结果进行了比较,结果涉及氧气浓度,燃料利用率,I / V曲线和外部电池温度曲线。以上所有多种物理现象都与实验结果非常吻合。 ud论文的主要发现是在CFD模型中包括辐射方程的重要性。忽略辐射会导致高温风洞内的单个电池在横流中产生高达200°C的温度误差。 。这是有趣的信息,因为迄今为止,该领域中的大多数建模工作都忽略了辐射效应。包含实验装置和辐射方程的3D模型已完成。这些模型表明,如果设计不当,实验设备或烟囱设计将如何造成较大的温度损失。此外,已经使用阻抗谱技术通过实验测量了整个电池的径向温度梯度。已经开发了一种热成像摄影技术来测量高温风洞内横向流动中MT-SOFC的阴极外壁上的温度分布。将其他简化的3D CFD模型与数值计算进行了比较,以预测MT-SOFC束中可能在横流中出现浮流的情况。 ud结果显示,堆氧化剂流速甚至大于每秒几毫米,可以极大地抑制浮力的影响,使其不会发生。这是重要的信息,在设计MT-SOFC堆栈流动通道时应该会有用。还尝试了测量错流中MT-SOFC周围的浓度。尽管尚未最终证明本文中开发的方法确实有效,但已表明该方法具有巨大的潜力。

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    Lawlor Vincent;

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  • 年度 2010
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  • 正文语种 en
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