首页> 外文期刊>Energy Conversion & Management >Performance improvement of the bottoming steam Rankine cycle (SRC) and organic Rankine cycle (ORC) systems for a triple combined system using gas turbine (GT) as topping cycle
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Performance improvement of the bottoming steam Rankine cycle (SRC) and organic Rankine cycle (ORC) systems for a triple combined system using gas turbine (GT) as topping cycle

机译:使用燃气轮机(GT)作为顶部循环的三重组合系统的底部蒸汽Quanque循环(SRC)和有机朗肯循环(ORC)系统的性能改进

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In the present study, performance improvement of SRC and ORC systems used as a bottoming system in a GT based triple combined system was evaluated for varying turbine inlet temperature and pressure. In the first step, SRC was parametrically optimized for a varying pressure (from 10 bar to 100 bar) and temperature (from saturated steam temperature to 480 degrees C). In the second step, a parametric optimization is performed to comprehensively evaluate the effects of acetone, R113, R141b, R152a, R245fa and R365mfc on thermodynamic performances of ORC (Organic Rankine Cycle) with the increasing turbine inlet pressure and temperature. Along with the optimization, the ORC turbine inlet pressure was heightened from 7.5 bar to the critical pressures of the working fluids with the increments of 2.5 bar. The ORC turbine inlet temperature was varied between saturation temperature and the maximum working temperature of selected working fluids. Finally, energy and exergy efficiencies of the overall triple combined system (GT-SRC-ORC) was calculated by depending on pressure, temperature and working fluids. As a result, the best working fluids among the selected fluids was found as R141b. Maximum net thermal efficiency, exergy efficiency and a net power of the ORC with R141b were calculated as 22.6%, 64.76% and 780.35 kW at 40 bar and 225 degrees C, respectively. Net thermal and exergy efficiency of the overall system (GT-SRC-ORC) with R141b was found 47.65%, 67.35%, respectively. By this way, the waste heat recovery corresponding to 734.57 kg/h natural gas which is equivalent to 2203.73 kg-CO2/h emissions was carried out.
机译:在本研究中,评估了在基于GT基组合系统中用作底部系统的SRC和ORC系统的性能改进,以进行不同的涡轮机入口温度和压力。在第一步中,SRC参数化针对不同的压力(从10巴至100巴)和温度(从饱和蒸汽温度至480℃)的温度优化。在第二步中,进行参数化优化以全面地评估丙酮,R113,R141B,R152A,R245FF和R365MFC对涡轮机入口压力和温度的增加对兽人(有机朗肯循环)的热力学性能的影响。随着优化,兽人涡轮机入口压力从7.5巴到工作流体的临界压力,增强为2.5巴。逆涡轮机入口温度在饱和温度和所选择的工作流体的最大工作温度之间变化。最后,通过根据压力,温度和工作流体来计算整个三重组合系统(GT-SRC-ORC)的能量和漏洞效率。结果,发现所选流体中的最佳工作流体作为R141B。具有R141B的最高净热效率,高级效率和兽磁净功率,分别计算为40.6%,64.76%和780.35千瓦,分别为40巴,225℃。总系统(GT-SRC-ORC)的净热量和漏极效率,R141B分别为47.65%,67.35%。通过这种方式,进行了对应于734.57kg / h天然气的废热回收,其等于2203.73kg-CO 2 / h排放。

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