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Proposal and thermo-economic optimization of using LNG cold exergy for compressor inlet cooling in an integrated biomass fueled triple combined power cycle

机译:对压缩机入口的使用LNG感冒冷却的建议和热经济优化在集成生物量燃料中的三重组合电源循环中冷却

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摘要

Utilization of renewable energy resources and efficiency improvement of energy conversion systems are of great importance due to energy crisis and environmental issues. Renewable energy driven Triple Combined Cycle (TCC) is a relatively new idea in this respect. In this paper, a biomass gasification-fueled TCC is presented in which the conventional gas turbine, as the topping cycle, is combined with a Closed Brayton Cycle (CBC) and an Organic Rankine Cycle (ORC). The proposed TCC is integrated with LNG regasification process to exploit its cold exergy for compressor inlet cooling of the CBC. For the CBC three working fluids (namely: helium, nitrogen and carbon dioxide) are considered. There is a good thermal match between the LNG and these fluids in heat rejection process and they can be cooled down to temperatures of below 0 degrees C at the compressor inlet for net power augmentation. Thermoeconomic method is applied to evaluate the TCC performance and optimization using genetic algorithm is employed to minimize the Levelized Cost of Electricity (LCOE). In the economic analysis the cost rate of environmental impacts due to pollutant emissions is also considered. The results indicated the superiority of helium over the other investigated working fluids from the economic perspective for which the LCOE is found to be 51.38 $/MWh. However, as an interesting outcome it is found that, from thermodynamic standpoint using CO2 as the working fluid yields higher exergy efficiency by 6.7% than the helium. (C) 2021 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
机译:由于能源危机和环境问题,可再生能源资源的利用和能源转换系统的效率提高具有重要意义。可再生能源驱动三重组合周期(TCC)是这方面的一个相对态度。在本文中,提出了一种生物质气化的TCC,其中传统的燃气轮机作为顶部循环与闭合的Brayton循环(CBC)和有机朗肯循环(ORC)组合。所提出的TCC与LNG再溶液过程集成,以利用其冷冻机CBC的压缩机入口冷却。考虑CBC三个工作流体(即:氦,氮和二氧化碳)。 LNG和散热过程中的这些流体之间存在良好的热匹配,并且可以在压缩机入口处冷却至低于0摄氏度的温度以进行净功率。应用热经济方法以评估使用遗传算法的TCC性能和优化来最小化电力(LCoE)的调用成本。在经济分析中,还考虑了由于污染物排放导致的环境影响成本率。结果表明,来自其他调查的工作流体的氦的优越性来自LCoE的经济角度为51.38 $ / MWH。然而,作为一个有趣的结果,发现,从使用CO2的热力学立场,因为工作流体产生更高的高效率比氦气更高为6.7%。 (c)2021氢能量出版物LLC。 elsevier有限公司出版。保留所有权利。

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