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Thermoeconomic analysis of a CO_2 plume geothermal and supercritical CO_2 Brayton combined cycle using solar energy as auxiliary heat source

机译:CO_2羽流地热和超临界CO_2 Brayton使用太阳能作为辅助热源的热经济分析

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This study presents an investigation of a CO2 plume geothermal and supercritical CO2 Brayton (CPGs-CO2) combined cycle using solar energy as auxiliary heat source. This combined cycle may help solve the problems of CO2 sequestration and geothermal energy utilization simultaneously. The CPG production is heated by a solar power generation system with solar tower and molten salt. Then a recompression sCO(2) cycle utilizes geothermal energy and solar energy directly. A solution procedure is performed to analyze the thermoeconomic performance of the CPG-sCO(2) combined cycle. Results show that the combined cycle has an optimal main compressor inlet pressure and split ratio for maximum combined cycle efficiency. It can achieve 19.57% by genetic algorithm (GA) optimization, which is 5.65% and 4.07% higher than CPG systems with indirect sCO(2) cycle and organic Rankine cycle, respectively. Moreover, it indicates that the combined cycle efficiency and total capital cost have opposite variation trends with the increase of parameters, including main compressor inlet pressure (p(5)), split ratio (sr), well distance (d(8,11)) and injection temperature (T-8). Based on multi-objective GA optimization and optimal solution selection, it is concluded that the most thermoeconomic CPG-sCO(2) combined cycle has a combined cycle efficiency of 18.09% and a total capital cost of $5.959 x 10(7), respectively. Findings suggest that the CPG-sCO(2) combined cycle has potential to combine CO2 sequestration with geothermal energy utilization. (C) 2020 Elsevier Ltd. All rights reserved.
机译:本研究介绍了使用太阳能作为辅助热源的CO 2羽流地热和超临界CO2 BRAYTON(CPGS-CO2)组合循环。该组合循环可以帮助同时解决CO2隔离和地热能量利用的问题。 CPG生产由带有太阳能塔和熔盐的太阳能发电系统加热。然后,重新调整SCO(2)循环直接利用地热能和太阳能。进行解决方法以分析CPG-SCO(2)组合循环的热经济性能。结果表明,组合循环具有最佳的主压缩机入口压力和分流比,以实现最大组合循环效率。通过遗传算法(GA)优化可以实现19.57%,分别比具有间接SCO(2)循环和有机朗肯循环的CPG系统高5.65%和4.07%。此外,它表明,随着参数的增加,组合循环效率和总资本成本具有相反的变化趋势,包括主压缩机入口压力(P(5)),分流比(SR),距离(D(8,11) )和注射温度(T-8)。基于多目标GA优化和最佳解决方案选择,得出结论,最热调CPG-SCO(2)组合循环的组合效率分别为18.09%,总资本成本分别为5.959 x 10(7)。研究结果表明,CPG-SCO(2)组合循环有可能将CO2封存与地热能利用相结合。 (c)2020 elestvier有限公司保留所有权利。

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