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Thermodynamic and thermoeconomic analysis of a novel power and hydrogen cogeneration cycle based on solid SOFC

机译:基于固体SOFC的新型电力和氢气热电联产循环热力学和热经济分析

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To enhance the performance of the thermodynamic systems, reduce the pollutants emission to the environment, and decline the fuel utilization, waste heat recovery methods are in high interest. In this paper, a new configuration of an integrated solid oxide fuel cell and gas turbine combined with a biogas reforming cycle is presented for the cogeneration of power and hydrogen. The thermal energy discharged from the SOFC-GT system is used to supply the energy required for the reforming reaction in the biogas reforming cycle for hydrogen production. Comprehensive thermodynamic and thermoeconomic modeling has been performed using EES software. Also, a parametric study has been performed to demonstrate the effect of different parameters on the main performance metrics of the devised system. The results revealed that the energy efficiency and exergy efficiency of the proposed combined system have increased compared to the SOFC-GT system by 23.31% and 28.19%, respectively. The net output power and hydrogen production rate are obtained by 2726 kW and 0.07453 kg/s, respectively. From the exergy viewpoint, the afterburner causes a considerable amount of exergy destruction for the system by approximately 26% of the total exergy destruction rate. Besides, the sensitivity analysis revealed that by increasing the inlet temperature of the fuel cell, the cell voltage reaches a maximum value at a temperature of 679 K and then decreases. Moreover, the total exergy destruction rate and SUCP of the cogeneration system is calculated by 1532 kW and 9400 $/GJ, respectively. (c) 2021 Elsevier Ltd. All rights reserved.
机译:为了增强热力学系统的性能,将污染物排放到环境中,并降低燃料利用,废热回收方法高。本文提出了一种新的固体氧化物燃料电池和燃气轮机与沼气重整循环结合的新配置,用于电力和氢气的热量。从SOFC-GT系统中排出的热能用于提供用于氢生产的沼气重整循环中的重整反应所需的能量。使用EES软件进行了全面的热力学和热经济建模。此外,已经进行了参数研究以展示不同参数对设计系统的主要性能度量的影响。结果表明,与SOFC-GT系统相比,所提出的组合系统的能量效率和高度效率分别增加23.31%和28.19%。净输出功率和氢气生产率分别获得2726千瓦和0.07453千克/秒。从Deergy Viewpoint来看,后台燃烧器会使系统具有相当大量的漏洞破坏,占总毁灭率的约26%。此外,灵敏度分析显示,通过增加燃料电池的入口温度,电池电压在679k的温度下达到最大值,然后减少。此外,热电联产系统的总漏洞破坏率和SUCP分别由1532千瓦和9400美元/ GJ计算。 (c)2021 elestvier有限公司保留所有权利。

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