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A Combined Power Cycle Utilizing Low-temperature Waste Heat And Lng Cold Energy

机译:利用低温废热和Lng冷能的联合动力循环

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摘要

This paper has proposed a combined power system, in which low-temperature waste heat can be efficiently recovered and cold energy of liquefied natural gas (LNG) can be fully utilized as well. This system consists of an ammonia-water mixture Rankine cycle and an LNG power generation cycle, and it is modelled by considering mass, energy and species balances for every component and thermodynamic analyses are conducted. The results show that the proposed combined cycle has good performance, with net electrical efficiency and exergy efficiency of 33% and 48%, respectively, for a typical operating condition. The power output is equal to 1.25 MWh per kg of ammonia-water mixture. About 0.2 MW of electrical power for operating sea water pumps can be saved. Parametric analyses are performed for the proposed combined cycle to evaluate the effects of key factors on the performance of the proposed combined cycle through simulation calculations. Results show that a maximum net electrical efficiency can be obtained as the inlet pressure of ammonia turbine increases and the peak value increases as the ammonia mass fraction increases. Exergy efficiency goes up with the increased ammonia turbine inlet pressure. With the ammonia mass fraction increases, the net electrical efficiency increases, whereas exergy efficiency decreases. For increasing LNG turbine inlet pressure or heat source temperature, there is also a peak of net electrical efficiency and exergy efficiency. With the increase of LNG gas turbine outlet pressure, exergy efficiency increases while net electrical efficiency drops.
机译:本文提出了一种联合电力系统,该系统可以有效地回收低温废热,并且还可以充分利用液化天然气(LNG)的冷能。该系统由氨水混合物朗肯循环和液化天然气发电循环组成,并通过考虑每个组分的质量,能量和物质平衡进行建模,并进行热力学分析。结果表明,所提出的联合循环具有良好的性能,在典型的工作条件下,其净电效率和火用效率分别为33%和48%。功率输出等于每千克氨水混合物1.25 MWh。可以节省大约0.2 MW用于运行海水泵的电能。对拟议的联合循环进行参数分析,以通过仿真计算评估关键因素对拟议的联合循环的性能的影响。结果表明,随着氨轮机入口压力的增加,可获得最大的净电效率,而随着氨气质量分数的增加,峰值将增大。火用效率随氨轮机入口压力的增加而增加。随着氨质量分数的增加,净电效率增加,而(火用)效率降低。为了增加LNG涡轮机的进口压力或热源温度,还存在净电气效率和火用效率的峰值。随着液化天然气燃气轮机出口压力的增加,火用效率增加而净电效率下降。

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