首页> 外文会议>ASME turbo expo: turbine technical conference and exposition >THERMODYNAMIC ANALYSIS OF A SCO_2 PART-FLOW CYCLE COMBINED WITH AN ORGANIC RANKINE CYCLE WITH LIQUEFIED NATURAL GAS AS HEAT SINK
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THERMODYNAMIC ANALYSIS OF A SCO_2 PART-FLOW CYCLE COMBINED WITH AN ORGANIC RANKINE CYCLE WITH LIQUEFIED NATURAL GAS AS HEAT SINK

机译:液化天然气作为热沉的SCO_2部分流动循环与有机RANK循环结合的热力学分析

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The supercritical carbon dioxide (SCO_2) part-flow cycle can achieve higher efficiency compared with conventional Brayton cycle as it can avoid the pinch point problem inside the regenerative heat exchanger. To recover the waste heat from the pre-cooler in the cycle and improve the overall cycle efficiency, a new integrated power system driven by nuclear reactor is proposed to achieve the energy cascade utilization. This system combines a SCO_2 part-flow cycle with an organic Rankine cycle (ORC) using liquefied natural gas (LNG) as heat sink to utilize the cold energy of LNG. In this paper a mathematical model is established to simulate the SCO_2 part-flow cycle coupled with an ORC under steady state condition, and a thermodynamic parametric analysis is conducted to investigate the effects of some key parameters, including the turbine inlet pressure, the turbine and compressor isentropic efficiency and pressure drop ratio, on the system performance. The results indicate that the integrated power system is effective to recover the waste heat and may achieve the overall cycle thermal efficiency of 52.12% under the operating conditions of 20MPa, 800K and part-flow ratio 0.68, which can be further improved with parametric optimization of the system.
机译:与传统的布雷顿循环相比,超临界二氧化碳(SCO_2)分流循环可以实现更高的效率,因为它可以避免再生热交换器内部的夹点问题。为了在循环中从预冷器中回收废热并提高整体循环效率,提出了一种由核反应堆驱动的新型综合电力系统,以实现能量的级联利用。该系统将SCO_2部分流循环与有机兰金循环(ORC)结合在一起,利用液化天然气(LNG)作为散热器来利用LNG的冷能。本文建立了一个数学模型来模拟稳态条件下结合ORC的SCO_2部分流循环,并进行了热力学参数分析,研究了一些关键参数的影响,包括涡轮机入口压力,涡轮机和压缩机的等熵效率和压降比,对系统性能的影响。结果表明,该集成电力系统在20MPa,800K和部分流量比0.68的工作条件下可以有效地回收废热,并且可以达到52.12%的总循环热效率,这可以通过以下参数优化来进一步提高:系统。

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