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Thermoeconomic analysis and multiobjective optimization of a combined gas turbine, steam, and organic Rankine cycle

机译:燃气轮机,蒸汽和有机朗肯循环的热经济分析和多目标优化

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Because of the fossil fuels crisis in recent years, efficient working of power producing cycles has gained considerable importance. This study presents a detailed exergoeconomic analysis of a proposed combination of a gas turbine (GT), a steam Rankine cycle (SRC), and an organic Rankine cycle (ORC), which are coupled together to obtain the maximum heat recovery of the GT exhaust gas. The proposed cycle was analyzed from both thermodynamic and economic viewpoints. The exergy efficiency and product cost rate of the introduced cycle were optimized simultaneously using multiobjective optimization with seven decision variables, including steam turbine inlet pressure and temperature, ORC turbine inlet pressure, ORC and steam turbine back pressures, and pinch point of heat exchangers. Sensitivity analysis revealed that the steam turbine back pressure and inlet pressure had the highest impact on product cost rate and exergy efficiency, followed by ORC turbine inlet pressure and back pressure. Also, the exergoeconomic analysis showed that the combustion chamber had the highest sum of exergy destruction costs and investment costs; more attention should thus be paid to its design procedure. Under the design conditions, the exergy efficiency of 40.75% and product cost rate of 439 million $/year could be achieved.
机译:由于近年来的化石燃料危机,发电循环的有效工作已变得相当重要。这项研究对燃气轮机(GT),蒸汽朗肯循环(SRC)和有机朗肯循环(ORC)的拟议组合进行了详细的人体工程学分析,这些组合在一起以获得GT排气的最大热量回收加油站。从热力学和经济角度分析了拟议的循环。引入的循环的火用效率和产品成本率通过多目标优化同时优化,具有七个决策变量,包括汽轮机入口压力和温度,ORC汽轮机入口压力,ORC和汽轮机背压以及热交换器的夹点。敏感性分析显示,蒸汽轮机的背压和入口压力对产品成本率和火用效率的影响最大,其次是ORC涡轮机的入口压力和背压。另外,从能效经济分析来看,燃烧室的火用破坏成本和投资成本之和最高。因此,应更加注意其设计过程。在设计条件下,能效效率为40.75%,产品成本率为4.39亿美元/年。

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