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EFFECT OF GRADIENT ANODE ON MASS TRANSFER PERFORMANCE FOR ANODE-SUPPORTED PLANAR SOLID OXIDE FUEL CELLS

机译:梯度阳极对阳极支撑的平面固体氧化物燃料电池传质性能的影响

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For anode-supported planar solid oxide fuel cells (SOFCs), the thick anode support layer (ASL) prevents the supply of fuel gas to the anode functional layer (AFL) where the electrochemical reactions take place. Shortage of the fuel gas at the active region results in concentration polarization. SOFC designs with porosity gradient anode may improve the cell performance. In order to investigate the effect of the porosity distributions on mass transfer characteristics of SOFC, a three dimensional half-cell model is developed based on the computational fluid dynamics (CFD) method. The numerical model solves continuity equation, conservation of momentum, multi-component mass transfer and electrochemical reaction. According to the numerical results, a SOFC design with a higher porosity gradient anode could effectively enhance mass transport of the fuel gas in the AFLs, which would lead to the reduction of polarization loss. It is also found that high porosity gradient among the anode layers could improve the H_2 concentration gradient in the porous anode, which is beneficial to facilitate diffusion of the fuel gas in the porous anode. Concentration overpotentials of the SOFC decrease with the increase of the porosity gradient, especially for the low inlet H2 molar fraction. These findings indicate that the comprehensive performance of SOFC can be effectively improved by employing a high porosity gradient anode.
机译:对于阳极支撑的平面固体氧化物燃料电池(SOFC),厚的阳极支撑层(ASL)阻止了向发生电化学反应的阳极功能层(AFL)提供燃料气体。活性区域中燃料气体的短缺导致浓度极化。具有孔隙率梯度阳极的SOFC设计可以改善电池性能。为了研究孔隙度分布对SOFC传质特性的影响,基于计算流体动力学(CFD)方法建立了三维半单元模型。数值模型求解了连续性方程,动量守恒,多组分传质和电化学反应。根据数值结果,具有较高孔隙率梯度阳极的SOFC设计可以有效地增强AFL中燃料气体的质量传输,从而减少极化损失。还发现阳极层之间的高孔隙率梯度可以改善多孔阳极中的H_2浓度梯度,这有利于促进燃料气体在多孔阳极中的扩散。 SOFC的浓度超电势随孔隙度梯度的增加而降低,特别是对于低入口H2摩尔分数而言。这些发现表明,通过使用高孔隙率梯度阳极可以有效地提高SOFC的综合性能。

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