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Finite-volume modeling and hybrid-cycle performance of planar and tubular solid oxide fuel cells

机译:平面和管状固体氧化物燃料电池的有限体积建模和混合循环性能

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The paper describes two 2D steady-state models for solid oxide fuel cells (SOFC) with planar and tubular geometries fuelled by methane. Following a description of the basic geometries and general premises the approaches, assumptions and simplifications for the calculation of ohmic resistance, convective, conductive and radiative heat transfer are given. The modeling approach of the chemical reactions and molar and thermal balances are depicted in detail with the intention to allow for reproduction of the models. The required boundary conditions and input parameters of the models are also discussed. Relying on models, a bottoming GT cycle is introduced and specified and a base case for operation defined. The influence of pressure ratio, air inlet temperature, air flow rate and anode gas recycling are investigated in a parameter study. For both designs air flow rate and pressure ratio are the most important parameters considering the system performance, but for the tubular system these parameters have less impact than for the planar design. Based on the parameter study, a near-optimum case is defined specifically for both systems and the conditions in the fuel cells are investigated. The cycle balance is different in both systems, as the tubular fuel cell requires a lower air inlet temperature. Both fuel cell systems achieve above 65 percent electric efficiency.
机译:本文描述了固态氧化物燃料电池(SOFC)的两个二维稳态模型,这些模型具有由甲烷提供燃料的平面和管状几何形状。在描述了基本几何形状和一般前提之后,给出了计算欧姆电阻,对流,传导和辐射传热的方法,假设和简化方法。详细描述了化学反应以及摩尔平衡和热平衡的建模方法,旨在允许模型的再现。还讨论了模型所需的边界条件和输入参数。依靠模型,引入并指定了底部GT循环,并定义了操作的基本情况。在参数研究中研究了压力比,进气温度,空气流速和阳极气体再循环的影响。对于这两种设计,考虑到系统性能,空气流量和压力比都是最重要的参数,但是对于管状系统,这些参数的影响要小于平面设计。基于参数研究,专门为两个系统定义了一个接近最佳的情况,并研究了燃料电池中的条件。两种系统的循环平衡不同,因为管状燃料电池需要较低的进气温度。两种燃料电池系统均达到65%以上的电效率。

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