首页> 外文会议>ASME turbo expo: turbine technical conference and exposition >THERMO-ECONOMIC ANALYSIS OF A RECOMPRESSION SUPERCRITICAL CO_2 CYCLE COMBINED WITH A TRANSCRITICAL CO_2 CYCLE
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THERMO-ECONOMIC ANALYSIS OF A RECOMPRESSION SUPERCRITICAL CO_2 CYCLE COMBINED WITH A TRANSCRITICAL CO_2 CYCLE

机译:压缩超临界CO_2与传质CO_2结合的热经济学分析

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The transcritical CO_2 cycle (TCO_2 cycle) exhibits good performance in low-grade waste heat recovery area. In this study, a TCO_2 cycle was employed as a bottoming cycle to recover the waste heat in the topping recompression supercritical CO_2 Brayton cycle (SCO_2 cycle). A detailed system analysis was performed of a recompression SCO_2 cycle combined with a TCO_2 cycle to improve the efficiency of energy conversion. Thermodynamic analysis, calculation of heat exchangers' area and economic analysis were considered. The SCO_2 turbine expansion ratio, TCO_2 turbine inlet pressure, high temperature recuperator (HTR) effectiveness and condensation temperature were studied to investigate their effect on the system performance. For the basic analysis, SCO_2 turbine inlet temperature was conservatively selected to be 550 °C and the compressor outlet pressure set at 20 MPa. For these operating conditions the proposed combined SCO_2-TCO_2 cycle yielded about 46% thermal efficiency at a SCO_2 turbine expansion ratio of 2.7 and TCO_2 turbine inlet pressure of 10 MPa. Similarly, the capital cost per net power output of the combined cycle was found as 6.6 k$/kW, which was ~ 6% more expensive than that of the recompression SCO_2 cycle without the bottoming cycle under the same operating condition. An optimum TCO_2 turbine inlet pressure and an optimum SCO_2 turbine expansion ratio existed where the system thermal efficiency reached the maximum value. Furthermore, the system thermal efficiency was very sensitive to the changes in the condensation temperature and the HTR effectiveness. The HTR effectiveness also had a strong effect on the ratio of heat exchangers' cost to the plant capital cost. Additionally, increasing SCO_2 turbine inlet temperature would significantly improve the cycle overall thermal efficiency and decrease the plant capital cost per net power output.
机译:跨临界CO_2循环(TCO_2循环)在低品位废热回收区表现出良好的性能。在这项研究中,TCO_2循环被用作底部循环,以回收顶部再压缩超临界CO_2 Brayton循环(SCO_2循环)中的废热。对再压缩SCO_2循环与TCO_2循环相结合进行了详细的系统分析,以提高能量转换的效率。考虑了热力学分析,换热器面积的计算和经济分析。研究了SCO_2透平膨胀比,TCO_2透平入口压力,高温换热器(HTR)的有效性和冷凝温度,以研究它们对系统性能的影响。对于基础分析,保守地将SCO_2涡轮机入口温度选择为550°C,并将压缩机出口压力设置为20 MPa。对于这些工况,建议的SCO_2-TCO_2联合循环在SCO_2涡轮膨胀比为2.7和TCO_2涡轮入口压力为10 MPa时产生了约46%的热效率。同样,在相同的运行条件下,联合循环的每净功率输出的资本成本为6.6 k $ / kW,比没有底循环的再压缩SCO_2循环的成本高6%左右。在系统热效率达到最大值的情况下,存在最佳的TCO_2涡轮入口压力和最佳的SCO_2涡轮膨胀比。此外,系统的热效率对冷凝温度和HTR效率的变化非常敏感。 HTR的有效性对热交换器成本与工厂资本成本之比也有很大影响。另外,增加SCO_2涡轮机入口温度将显着提高循环的整体热效率,并降低每单位净功率输出的工厂投资成本。

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