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Thermo-economic assessment of molten carbonate fuel cell hybrid system combined between individual sCO(2) power cycle and district heating

机译:熔融碳酸盐燃料电池混合系统的热经济评估组合各个SCO(2)功率循环和区供暖

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摘要

A molten carbonate fuel cell (MCFC) is a high-performance electric power generation system, but much research is still required to develop technologies to enhance its power efficiency, because the exhaust gases of an MCFC contain sensible energy. The high level of heat energy in the exhaust gases leads to a poor performance, with an increased electricity rate and decreased efficiency. This study investigated the supercritical carbon dioxide cycle with three different configurations as a bottoming cycle using the exhaust gases of an MCFC stand-alone system and compared the supercritical carbon dioxide cycle with a combined heat and power system in terms of economical operational strategies. The thermodynamic characteristics of each cycle were determined by varying the turbine inlet pressure and isentropic efficiency of the turbomachinery. The results of an analysis found that optimal discharge pressure of compressor, are remarkable parameter for supercritical carbon dioxide cycle. Furthermore, the net power efficiency was increased (3.41%-4.6%) compared to that of the MCFC stand-alone system. In addition, the levelized cost of electricity values for the supercritical carbon dioxide cycle and combined heat and power system were calculated, and sensitivity analyses were conducted for factors such as the heating cost and major equipment cost. The results showed that using the supercritical carbon dioxide cycle as the MCFC bottoming cycle was more economical when the heating cost was less than $28/Gcal and the printed circuit heat exchanger cost was less than $100/kW.
机译:熔融碳酸盐燃料电池(MCFC)是一种高性能发电系统,但仍然需要多种研究来开发技术以提高其功率效率,因为MCFC的废气含有合理的能量。废气中的高水平的热能导致性能差,电力率增加并降低效率。本研究研究了使用MCFC独立系统的废气的三种不同配置的超临界二氧化碳循环,作为底部循环,并将超临界二氧化碳循环与综合的热量和动力系统相比,在经济的经济策略方面。通过改变涡轮机入口压力和涡轮机械的等熵效率来确定每个循环的热力学特性。分析结果发现压缩机的最佳排放压力是超临界二氧化碳循环的显着参数。此外,与MCFC独立系统相比,净功率增加(3.41%-4.6%)。此外,计算了超临界二氧化碳循环和组合热量和电力系统的电力值的调整成本,对加热成本和主要设备成本等因素进行了敏感性分析。结果表明,当加热成本小于28美元/高速公路时,使用超临界二氧化碳循环作为MCFC底部循环更经济,印刷电路热交换器成本低于100美元/千瓦。

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