首页> 外文会议>ASME Turbo Expo: Turbomachinery Technical Conference and Exposition >PERFORMANCE COMPARISON OF INTERNAL AND EXTERNAL REFORMING FOR HYBRID SOFC-GT APPLICATIONS BY USING 1D REAL-TIME FUEL CELL MODE
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PERFORMANCE COMPARISON OF INTERNAL AND EXTERNAL REFORMING FOR HYBRID SOFC-GT APPLICATIONS BY USING 1D REAL-TIME FUEL CELL MODE

机译:一维实时燃料电池模式对混合SOFC-GT应用程序内部和外部性能的比较

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Solid oxide fuel cells integrated with gas turbine (SOFC-GT) systems are considered among the most promising power generation units, not only because of the high efficiency, low emissions and carbon capture ability, but also the flexibility to use different kinds of fuels such as natural gas, syngas and biogas directly. In the case of natural gas, Previous researches have demonstrated that solid oxide fuel cells possess the ability to utilize natural gas directly by reforming it inside the anode because of the high operating temperature. But the major problem of internal reforming is that it increases the temperature gradient at the leading edge of fuel cell which may lead to high thermal stress and damage the cells. On the other side, external reforming requires an additional reformer outside of fuel cell, which may increase the investment costs. Also, the amount of air needed to cool the fuel cell is doubled, compared with internal reforming. A full comparison between internal reforming and external reforming of the pressurized SOFC is needed for the hybrids application. In this paper, a real time equilibrium reformer model based on minimization of Gibbs free energy was built to couple with ID real time solid oxide fuel cell model. An internal on-anode reforming SOFC stack configuration for hybrid SOFC-GT system application was compared with external reforming configurations with 800K, 900K and 1000K reforming temperatures. The results show that internal reforming provides better performance of SOFC stack in the case of high fuel utilization. However, the external reforming showed a higher stack efficiency and smaller stack size compared with on-anode reforming when keeping a relatively lower SOFC stack fuel utilization, necessarily for high hybrid efficiency. Results indicated that external and internal reforming of fuel needs to be optimized depending on different design conditions of the entire hybrid system in terms of efficiency and investment cost. This paper shows that the hybrid system provides the opportunities for thermal integration on performance and efficiency improvement over fuel cell anode reforming.
机译:与燃气轮机(SOFC-GT)系统集成的固体氧化物燃料电池被认为是最有前途的发电装置之一,不仅因为其高效率,低排放和碳捕集能​​力,而且还因为其灵活使用各种燃料的能力直接用作天然气,合成气和沼气。在天然气方面,先前的研究表明,固体氧化物燃料电池由于工作温度高而具有通过在阳极内部重整天然气来直接利用天然气的能力。但是内部重整的主要问题是,它会增加燃料电池前缘的温度梯度,这可能导致高热应力并损坏电池。另一方面,外部重整需要燃料电池之外的额外重整器,这可能会增加投资成本。而且,与内部重整相比,冷却燃料电池所需的空气量增加了一倍。对于混合动力车应用,需要对加压SOFC的内部重整和外部重整进行全面比较。本文建立了基于吉布斯自由能最小化的实时平衡重整器模型,并与ID实时固体氧化物燃料电池模型耦合。将用于混合SOFC-GT系统应用的内部阳极重整SOFC堆栈配置与800K,900K和1000K重整温度的外部重整配置进行了比较。结果表明,在高燃料利用率的情况下,内部重整可以提供更好的SOFC烟囱性能。然而,当保持相对较低的SOFC堆燃料利用率时,外部重整与阳极上重整相比显示出更高的堆效率和更小的堆尺寸,这对于实现高混合效率是必不可少的。结果表明,在效率和投资成本方面,需要根据整个混合动力系统的不同设计条件优化燃料的外部和内部重整。本文表明,混合系统为燃料集成阳极重整性能和效率的改进提供了热集成的机会。

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