基于不同能量回收模式的燃料电池系统性能增益研究

An Efficiency Enhancement Mode of Fuel Cell Systems Based on Different Energy Recovery Modes

  • 摘要: 为减小燃料电池进气增压寄生功、提高系统效率,建立了以径流涡轮回收阴极排气能量的高功率燃料电池电化学、动力学与热力学系统模型,修正了基于NTU-ε法的中冷器性能预测方法,研究了单级增压−能量回收与顺序增压−能量回收模式下径流涡轮回收燃料电池阴极废气能量的效能. 结果表明,整体能量回收效率随着电堆负载电流增加呈降低趋势;相比于单级增压−能量回收模式,在额定工况点与非额定工况点下顺序增压−能量回收模式的能量利用率增益显著. 优化后的运行方案阴极排气能量利用率最高可提升28.9%,系统效率提升幅值达2.79%.

     

    Abstract: To decrease the parasitic power required for the air compressor and enhance the fuel cell system's overall efficiency for high-power fuel cell system, a comprehensive model encompassing electrochemistry, kinetics, and thermodynamics was developed based on recovering cathode exhaust energy of a radial turbine. Firstly, the intercooler performance prediction model was corrected based on the NTU-ε method with improved accuracy. And then, the performance of cathode exhaust gas energy recovery was investigated for radial turbine under the influence of single-stage and sequential compression-energy recovery modes. The results show that the overall energy recovery efficiency tends to decrease as the stack loading current increases. Compared to the single-stage compression-energy recovery model, the sequential compression-energy recovery model demonstrates a significant enhancement in energy utilization at both rated and non-rated operating points. Implementing optimized operational strategy, the energy utilization rate of cathode exhaust gas can be improved up to 28.9% and system efficiency can be improved up to 2.79%.

     

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