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Performance improvement of biomass-fueled closed cycle gas turbine via compressor inlet cooling using absorption refrigeration; thermoeconomic analysis and multi-objective optimization

机译:使用吸收制冷,通过压缩机入口冷却性能改善生物量燃料闭环燃气轮机;热经济分析和多目标优化

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摘要

Compressor inlet air cooling is a practical and applied methodology to enhance the conventional open cycle gas turbine power plants. This methodology in this paper, is proposed to be applied on an innovative biomass-fueled Closed Cycle Gas Turbine (CCGT), in which the exhaust gas waste heat is utilized to run an ammonia-water absorption refrigeration cycle for compressor inlet cooling. Thermoeconomic analysis is presented to investigate the two systems (with and without inlet cooling) and multi-objective optimization is conducted to compare their performances at optimal operating conditions. Levelized Cost of Electricity (LCOE) and exergy efficiency are selected as the two rational objectives. The results indicated that, for all the practical range of operating conditions, compressor inlet cooling significantly improves the system performance in terms of both thermodynamics and economics, despite the additional costs imposed on the overall system by adding the absorption refrigeration cycle. It is found that, under the optimal operating conditions, incorporation of compressor inlet cooling results in an improvement of net power and exergy efficiency by 30.1%, meanwhile the LCOE would be reduced by 22.5% when inlet cooling is employed.
机译:压缩机入口空气冷却是一种实用的和应用方法,可以增强传统的开放循环燃气轮机发电厂。本文的这种方法被提出应用于创新的生物量燃料闭环燃气涡轮机(CCGT),其中废气废热热量用于运行用于压缩机入口冷却的氨吸收制冷循环。提供了热经济分析来研究两个系统(有没有入口冷却),并进行多目标优化以在最佳操作条件下进行比较它们的性能。选择电力(LCoE)和高级效率的调整成本作为两个合理目标。结果表明,对于所有实用的操作条件范围,压缩机入口冷却在通过添加吸收制冷循环对整个系统施加的额外成本来显着提高了系统性能。结果发现,在最佳的操作条件下,压缩机入口冷却的掺入导致净功率和高效效率的提高30.1%,同时采用入口冷却时,LCOE将减少22.5%。

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